Process for homo- or copolymerization of conjugated olefines
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27 claims: 4 independent, 23 dependent
- 1Claims of equivalent WO 2004076504 A2 CLAIMS 1. A metal complex according to one of the following formulae:M 1 - Formula la Formula lb Formula VII wherein: M 1 is a metal from Group 3, 4 or 5 of the Periodic Table of the Elements, a lanthanide metal or an actinide metal, provided that when the metal complex is according to Formula la or lb M is lanthanum, cerium, praseodymium, neodymium, promethium or a metal from Group 3 of the Periodic Table of the Elements, or an actinide;M π is a metal from one of the Groups 1 or 2 of the Periodic Table of the Elements T is nitrogen or phosphorus;P is a carbon atom, a nitrogen atom or a phosphorus atom R , R , R , R , R , R , R , R and R independently each occunence are hydrogen, a halide atom or a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, or hydrocarbylsilyl-substituted hydrocarbyl;neither of the groups R A and/or R B are linked to either of the groups R c and/or R D , except by means of the T-M^-T linking group;and the groups R*,R 2 and R 3 may be linked to each other;Y is a divalent bridging group joining two groups wherein Y is a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, or hydrocarbylsilyl-substituted hydrocarbyl;X independently each occurrence is an anionic ligand group having up to 60 atoms, provided however that in no occurrence is X an amide group, a phosphide group, a cyclic, delocalized, aromatic group that is π-bonded to M^- or M^ or a allylic delocalized group that is π-bonded to M 1 or M 11 ;X 1 , X 2 independently each occurrence are anionic ligand groups having up to 60 atoms, provided however that in no occunence is X or X a delocalized, aromatic group that is π-bonded to M or a allylic delocalized group that is π-bonded to M;D independently each occunence is a neutral Lewis base ligand having up to 30 nonhydrogen atoms;s is the number 0, 1, 3 or 4;provided that when the metal complex is according to Formula la or lb s is the number 0 or 1 ;o is the number 1 or 2;k is the number 0, 1, 2, 3 or 4;i, ii independently each occunence are the numbers 0, 1, 2, 3 or 4;p is the number 1, 2, 3 or 4, provided that when the metal complex is according to Formula VII p is 1 or 2;m is the numbers 0 or 1 ;a, b, c, d and e independently each occunence are the numbers 1, 2, 3 or 4;t is one of the numbers 0 to 5, provided that when the metal complex is according to Formula la or lb t is one of the numbers 0 to 3;and y is one of the numbers 1 to 20.
- 9A process for the preparation of the metal complexes according to any one of the preceding claims comprising:(A) Contacting a compound conesponding to Formula II: M J (X') 3 * t D Formula II with a compound conesponding to Formula Illa or Illb: Formula Ilia Formula Illb or a Lewis base adduct thereof, to make the metal complex of Fonnula la or lb of claim 1 or (B) Contacting a compound conesponding to Formula VIII: M I (X 1 ) 3 * t D Formula VIII with a compound of Formula DC: Formula IX to make a metal complex according to Formula VII of claim 1, wherein M 1 , M 11 , T, R A , R B , R c , R D , R 1 , R 2 , R 3 ,R 5 , R 6 , Y, P, D, X, X 1 , m and t are as defined in one of the preceding claims;n is the number zero or 1 ;and u is the number one or two.
- 14A metal complex catalyst composition for homopolymerization of one type of ethylenically unsaturated addition polymerization monomers and copolymerization of one type of ethylenically unsaturated addition polymerizable monomers with at least one different type of ethylenically unsaturated addition polymerizable monomers comprising:a) At least one metal complex according to any one of claims 1 to 8 or 13;b) One or more activator compounds and c) Optionally a catalyst support.
- 1819. A process for homopolymerization of one type of ethylenically unsaturated addition polymerization monomers and copolymerization of one type of ethylenically unsaturated addition polymerizable monomers with at least one different type of ethylenically unsaturated addition polymerizable monomers characterized in that a metal complex catalyst composition according to any one of claims 14 to 18 is used.
- 1920. The process of any one of claims 19 wherein metal complex (a) is activated with the activator (b) in situ (in the presence of the polymerizable monomers).
- 2122. The process of claim 21 comprising homopolymerization of butadiene wherein a homopolymer is produced having from 90 percent to 99 percent cis-polybutadiene and not more than 10 percent 1,2-polybutadiene.
- 2324. The process of any one of claim 23 comprising random or block copolymerization wherein the percentage of each of the conjugated diene monomers in the copolymer is at least 80 percent and the percentage of the cis-polybutadiene fraction of the polybutadiene is at least 90 percent and the percentage of 1,2-polybutadiene is not greater than 5 percent.
- 2526. Use of the polymer according to claim 25 for the production of a molded part, film, foam, golf ball, tire, hose, belt, gasket, seal, or shoe.
- 2728. Use of the metal complex of any one of claims 1 to 8 or 13 for homopolymerization of one type of ethylenically unsaturated addition polymerization monomers and υ upυ t ymenza Ti on or one type ot ethylenically unsaturated addition polymerizable monomers with at least one different type of ethylenically unsaturated addition polymerizable monomers.
Independent claims10
373 paragraphs in 1 section, as filed
Description of equivalent WO 2004076504 A2
PROCESS FOR HOMO- OR COPOLYMERIZATION OF CONJUGATED OLEFINES
0002This invention relates to metal complex compositions, their preparation and their use as catalysts to produce polymers through (homo)polymerization of ethylenically unsaturated addition polymerizable monomers or through copolymerization of ethylenically unsaturated addition polymerizable monomers with at least one different type of ethylenically unsaturated addition polymerizable monomer.
0003More particularly, this invention relates to metal complex compositions, their preparation and their use as catalysts to produce polymers of conjugated dienes through polymerization of conjugated ethylenically unsaturated addition polymerizable monomers or through copolymerization of conjugated ethylenically unsaturated addition polymerizable monomers with at least one different type of ethylenically unsaturated addition polymerizable monomer.
0004The used metal complex compositions are group 3 metal compounds including lanthanides and actinides, preferably lanthanide compounds, more preferably neodymium compounds in combination with activator compound(s) and optionally a catalyst support.
0005More particularly, the invention relates to metal complexes containing at least one metal - nitrogen or metal - phosphorus bond and in addition to it at least one metal halide bond, more particularly at least one metal - nitrogen bond and at least one metal halide bond and to the preparation of the catalyst and the use of the prepared catalyst to produce homo- or copolymers of conjugated dienes, preferably through, but not limited to, through homopolymerization of 1,3-butadiene or copolymerization of 1,3 -butadiene with styrene or isoprene. More preferably the polydiene or the polydiene sequences of the copolymer consist predominantly of cis units.
0006Polymers from conjugated ethylenically unsaturated addition polymerizable monomers and metal complex catalysts for producing the same are known.
0007Knowledge of the molecular weight and molecular weight distribution of the polymer as well as the microstructure of the polydiene part, for example the cis- 1,4-, trans- 1,4- and 1 ,2-polybutadiene ratio in case of polybutadiene, is crucial for the preparation of polymers with desired properties. Though a few patents describe some characteristics of the polydiene obtained, little effort was made to improve the polymerization activity and to change the molecular weight of the polymer while maintaining the interesting polymer cis selectivity.
0008It would be valuable to recognize that the kind and arrangement of the ligand on the metal complex can have a dominating effect on the polymer microstructure while different mixtures of the metal complex (precatalyst) with the co-catalyst can have a dominant effect on the molecular weight of the polymer and on the polymerization activity of the polymerization reaction. The desired high cis selectivity of the polydiene could be achieved by selecting suitable precatalysts in combination with specific activators while the exchange of the precatalysts under identical reaction conditions including the activator component leads to higher trans fractions. On the other hand it is desirable to tune the molecular weight of the polydienes and the polymerization activity of the polymerization reaction by selecting suitable types and amounts of co-catalysts. In addition, there is a need for catalyst precursors and catalysts which are stable in a dry state and in solution at room temperature and at higher temperatures so that these compounds may be more easily handled and stored. In addition, it would be desirable to have catalyst components that could be directly injected into the polymerization reactor without the need to "age" (stir, shake or store) the catalyst or catalyst components for a longer period of time. Especially for a solution polymerization process or a continuous polymerization process, liquid or dissolved catalyst or catalyst components are more suitable for a proper dosing into the polymerization vessel. Furthermore, it is highly desirably to have a highly active polymerization catalyst for conjugated dienes which is stable and efficient in a broad temperature range for a longer period without deactivation. It also would be beneficial if polydienes with high cis contents and high molecular weight could be produced efficiently. High molecular weight polybutadienes with a high fraction of cis- 1,4- polybutadiene are interesting materials for the production of tire tread and side walls.
0009According to the present invention for the polymerization of one type of ethylenically unsaturated addition polymerizable monomer or the copolymerization of one type of ethylenically unsaturated addition polymerizable monomer with at least one different type of ethylenically unsaturated addition polymerizable monomer there are provided metal complexes.
0010In one embodiment according to the current invention there are provided metal complexes corresponding to one of the Formulae la and lb:
0011<img file="WO2004076504A2_D0001.tif" />
0012Formula la <img file="WO2004076504A2_D0002.tif" />
0013Formula lb
0014wherein:
0015M<sup>1</sup> is lanthanum, cerium, praseodymium, neodymium, promethium or a metal from Group 3 of the Periodic Table of the Elements, or the actinides;
0016M<sup>π</sup> is a metal from one of the Groups 1 or 2 of the Periodic Table of the Elements
0017T is nitrogen or phosphorus;
0018R<sup>A</sup>, R<sup>B</sup>, R<sup>c</sup> and R<sup>D</sup> independently each occurrence are hydrogen or a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo- substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, hydrocarbylamino- substituted hydrocarbyl, or hydrocarbylsilyl-substituted hydrocarbyl; wherein neither of the groups R<sup>A</sup> and/or R<sup>B</sup> are linked to either of the groups R<sup>c</sup> and/or R<sup>D</sup>, except by means of the T-M^-T linking group;
0019X independently each occurrence is an anionic ligand group having up to 60 atoms, provided however that in no occurrence is X an amide group, a phosphide group, a cyclic, delocalized, aromatic group that is π-bonded to M-^ or M^ or a allylic delocalized group that is π-bonded to M<sup>1</sup> or M^;
0020D independently each occurrence is a neutral Lewis base ligand having up to 30 nonhydrogen ' atoms ; s is the number 0 or 1 ; o is the number 1 or 2; p is the number 1, 2, 3 or 4; t is one of the numbers 0 to 5; and y is one of the numbers 1 to 20. The formula weight of the metal complex is preferably lower than 25,000 g/mol, more preferably lower than 20,000 g/mol.
0021Additionally according to the present invention there are provided metal complexes resulting from the combination of one equivalent of a Group 3 metal, lanthanide or actinide compound corresponding to Formula II with more than one and less than three equivalents of the group 1 or group 2 complexes corresponding to Formula Illa and/or Illb:
0022M<sup>!</sup>(X)<sub>3</sub> * t D
0023Formula II
0024<img file="WO2004076504A2_D0003.tif" />
0025Formula Ilia Formula Illb wherein M<sup>1</sup>, M<sup>11</sup>, T, R<sup>A</sup>, R<sup>B</sup>, R<sup>c</sup>, R<sup>D</sup>, t, D, and X are as previously defined; n is the number zero or 1 ; and u is the number one or two.
0026Additionally, according to the present invention there is provided a process for preparing metal complexes corresponding to one of the Formulas la and lb wherein M I , Λ MΛ-II T, R<sup>A</sup>, R<sup>B</sup>, R<sup>c</sup>, R<sup>D</sup>, X, D, o, s, p, t and y are as previously defined and wherein neither of the groups R and/or R<sup>B</sup> are linked to either of the groups R and/or R , except by means of the
0027T-M^-T linking group comprising contacting a compound according to Formula II wherein M<sup>1</sup>, X, t and D are as previously defined with more than one and less than three equivalents of the group 1 or group 2 compounds corresponding to Formula Illa and/or Illb wherein M<sup>1</sup>, M<sup>11</sup>, T, R<sup>A</sup>, R<sup>B</sup>, R<sup>c</sup>, R<sup>D</sup>, t, D, and X are as previously defined, n is the number zero or 1, and u is the number one or two.
0028In another embodiment according to the present invention there are provided metal complexes corresponding to one of the formula VII: <img file="WO2004076504A2_D0004.tif" />
0029Formula VII
0030wherein:
0031M<sup>1</sup> is a metal from Group 3, 4 or 5 of the Periodic Table of the Elements, a lanthanide metal or an actinide metal;
0032M<sup>π</sup> is a metal from one of the Groups 1 or 2 of the Periodic Table of the Elements
0033T is nitrogen or phosphorus;
0034P is a carbon atom, a nitrogen atom or a phosphorus atom
0035R , R , R , R and R independently each occurrence are hydrogen, a halide atom or a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, or hydrocarbylsilyl-substituted hydrocarbyl; and the groups R ,R and R may be linked to each other;
0036Y is a divalent bridging group joining two groups wherein Y is a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, or hydrocarbylsilyl-substituted hydrocarbyl, preferably Y is (CR<sup>n</sup><sub>2</sub>)<sub>a</sub> or (CR<sup>13</sup><sub>2</sub>)bO(CR<sup>14</sup><sub>2</sub>)<sub>c</sub>. or (CR<sup>15</sup><sub>2</sub>)<sub>d</sub>S(CR<sup>16</sup><sub>2</sub>)<sub>e</sub>.or 1 ,2 -disubstituted aromatic ring system wherein R , R<sup>13</sup>, R<sup>14</sup>, R<sup>15</sup> and R<sup>16</sup> are a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy- substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, or hydrocarbylsilyl- substituted hydrocarbyl; X<sup>1</sup>, X<sup>2</sup> independently each occurrence are anionic ligand groups having up to 60 atoms, provided however that in no occurrence is X or X a delocalized, aromatic group that is π-bonded to M or a allylic delocalized group that is π-bonded to M;
0037D independently each occurrence is a neutral Lewis base ligand having up to 30 nonhydrogen atoms; s is the number 0, 1, 2, 3 or 4 (preferably 0<sub>5</sub> 1, 3 or 4); o is the number 1 or 2; k is the number 0, 1, 2, 3 or 4; i, ii independently each occurrence are the numbers 0, 1, 2, 3 or 4; p is the number 1 or 2; m is the numbers 0 or 1 ; a, b, c, d and e independently each occurrence are the numbers 1, 2, 3 or 4; t is one of the numbers 0 to 5; and y is one of the numbers 1 to 20. i and ii independently each occurrence are preferably the numbers 0, 1, 2 or 3; and preferably the sum of i and ii represents one of the numbers 1, 2, 3 or 4 and, thus may not be zero (i + ii ≠ O).
0038The formula weight of the metal complex preferably is lower than 25,000 g/mol, more preferably lower than 20,000 g/mol.
0039Additionally according to the present invention there are provided metal complexes resulting from the reaction of a compound corresponding to formula VIII with a compound corresponding to formula IX:
0040M^X'^ t D
0041Formula VIII <img file="WO2004076504A2_D0005.tif" /> Formula D£ wherein M<sup>1</sup>, M<sup>π</sup>, T, R<sup>1</sup>, R<sup>2</sup>, R<sup>3</sup>,R<sup>5</sup>, R<sup>6</sup>, Y, P, D, X<sup>1</sup>, m and t are as previously defined.
0042Additionally, according to the present invention there is provided a process for preparing metal complexes corresponding to one of the formulas Vila, Vllb and VIIc:
0043<img file="WO2004076504A2_D0006.tif" />
0044Formula Vila
0045<img file="WO2004076504A2_D0007.tif" />
0046Formula Vllb <img file="WO2004076504A2_D0008.tif" />
0047Formula VIIc
0048wherein
0049M<sup>π</sup>, T, R<sup>1</sup>, R<sup>2</sup>, R<sup>3</sup>, R<sup>4</sup>, R<sup>5</sup>, R<sup>6</sup>, Y, P, D, X<sup>1</sup>, X<sup>2</sup>, k, s, p, t, o and y are as previously defined,
0050M<sup>1</sup> is a metal from Group 3 of the Periodic Table of the Elements, a lanthanide metal or an actinide metal; i and ii independently each occurrence are as defined above, and are preferably the numbers 0, 1, 2 or 3; and preferably the sum of i and ii represents one of the numbers 1, 2, 3 or 4 and, thus may not be zero (i + ϋ ≠ 0); and
0051C is a carbon atom; comprising: contacting a compound according to formula VIII:
0052M^X^ t D
0053Formula VIII wherein M<sup>1</sup>, D, t and X<sup>1</sup> are as previously defined, with one of the compounds corresponding to formula IXa, LXb or IXc:
0054<img file="WO2004076504A2_D0009.tif" />
0055Formula IXa <img file="WO2004076504A2_D0010.tif" />
0056Formula IXb
0057<img file="WO2004076504A2_D0011.tif" />
0058Formula FXc wherein M<sup>π</sup>, T, R<sup>1</sup>, R<sup>2</sup>, R<sup>3</sup>, R<sup>4</sup>, R<sup>5</sup>, R<sup>6</sup>, Y, D, and t are as previously defined and C is a carbon atom.
0059Preferably according to the invention X<sup>1</sup> is a fluoride, chloride, bromide or iodide atom and T is a nitrogen atom.
0060Even more preferably M<sup>π</sup> is an atom of group 1 of the Periodic Table of the Elements.
0061In a preferred embodiment, the compound according to the formula VIII
0062M<sup>I</sup>(X<sup>1</sup>)<sub>3</sub> * t D
0063Formula VIII wherein M<sup>1</sup>, D and t are as previously defined and X<sup>1</sup> groups are fluoride, chloride, bromide or iodide, or a hydrocarbyl group, a hydrocarbylsilyl group, a halo-substituted hydrocarbyl group, or an -OR group, wherein R independently each occurrence is hydrogen or a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, acyl- substituted hydrocarbyl, arylcarbonyl-substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, hydrocarbylsilyl-substituted hydrocarbyl, acyl or arylcarbonyl, is contacted with compounds according to one of the formulas IXd/e or IXf: <img file="WO2004076504A2_D0012.tif" /> Formula IXd/e
0064<img file="WO2004076504A2_D0013.tif" /> Formula LXf wherein M<sup>π</sup>, R<sup>1</sup>, R<sup>2</sup>, R<sup>3</sup>, R<sup>4</sup>, R<sup>5</sup>, R<sup>6</sup>, D, N and t are as previously defined and R<sup>7</sup>, R<sup>8</sup>, R<sup>9</sup>and R<sup>10</sup> independently each occurrence are hydrogen, a halide atom or a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, or hydrocarbylsilyl-substituted hydrocarbyl; in a solvent.
0065In a preferred embodiment, one equivalent of the compound according to the formula VIII,
0066<img file="WO2004076504A2_D0014.tif" />
0067Formula VIII wherein D and t are as previously defined, M<sup>1</sup> is a lanthanide metal; X is a fluoride, chloride, bromide or iodide atom is contacted with one of the compounds corresponding to formula LXd/e and IXf (see above) wherein M<sup>π</sup>, R<sup>1</sup>, R<sup>2</sup>, R<sup>3</sup>, R<sup>4</sup>, R<sup>5</sup>, R<sup>6</sup>, D, N and t are as previously defined and R<sup>7</sup>, R<sup>8</sup>, R<sup>9</sup>and R<sup>10</sup> independently each occurrence are hydrogen, a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo- substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, hydrocarbylamino- substituted hydrocarbyl, or hydrocarbylsilyl-substituted hydrocarbyl; in a solvent.
0068Preferably according to the invention M<sup>1</sup> is one of the metals neodymium, lanthanum, cerium, praseodymium, promethium, samarium, europium, gadolinium, terbium or dysprosium; even more preferably M<sup>1</sup> is neodymium.
0069The above-described are useful for the polymerization of one type of ethylenically unsaturated addition polymerizable monomer or the copolymerization of one type of ethylenically unsaturated addition polymerizable monomer with at least one different type of ethylenically unsaturated addition polymerizable monomer as further described below.
0070Further according to the present invention there are provided catalysts for the polymerization of one type of ethylenically unsaturated addition polymerizable monomer or the copolymerization of one type of ethylenically unsaturated addition polymerizable monomer with at least one different type of ethylenically unsaturated addition polymerizable monomer comprising:
00711) a combination of one or more of the above metal complexes and one or more activators (cocatalysts) and optionally a support (carrier material) or
00722) the reaction product formed by contacting one or more of the above metal complexes with one or more activators and optionally a support or
00733) the product formed by subjecting one or more of the above metal complexes and optionally a support to activating techniques.
0074The present invention also provides a process for preparing catalysts for the polymerization of one type of ethylenically unsaturated addition polymerizable monomer or copolymerization of one type of ethylenically unsaturated addition polymerizable monomer with at least one different type of ethylenically unsaturated addition polymerizable monomer comprising (1) contacting one or more of the above metal complexes with one or more activators and optionally a support or (2) subjecting one or more of the above metal complexes and optionally a support to activating techniques.
0075The present invention also provides a polymerization process comprising contacting one or more ethylenically unsaturated addition polymerizable monomers optionally in the presence of an inert, aliphatic, alicyclic or cyclic or aromatic hydrocarbon, under polymerization conditions with a catalyst comprising:
00761) a combination of one or more of the above metal complexes and one or more activators and optionally a support or
00772) the reaction product formed by contacting one or more of the above metal complexes with one or more activators and optionally a support or
00783) the product formed by subjecting one or more of the above metal complexes and optionally a support to activating techniques.
0079The polymerization may be performed under solution, suspension, slurry, or gas phase process conditions, and the catalyst or individual components thereof may be used in a heterogeneous, that is, a supported state, or in a homogeneous state as dictated by process conditions. The catalyst can be used in combination with one or more additional catalysts of the same or different nature either simultaneously or sequentially in the same reactor and/or sequentially in separate reactors. The catalyst can be formed in situ in the presence of, or prior to addition to, a reaction mixture comprising one or more ethylenically unsaturated addition polymerizable monomers.
0080According to the present invention there are provided homopolymers comprising one ethylenically unsaturated addition polymerizable monomer, even more especially one conjugated ethylenically polyunsaturated addition polymerizable monomer.
0081Further according to the present invention there are provided copolymers comprising more than one ethylenically unsaturated addition polymerizable monomer, even more especially conjugated ethylenically polyunsaturated addition polymerizable monomers in combination with a second type of ethylenically unsaturated addition polymerizable monomer.
0082Catalysts for polymerization of ethylenically unsaturated addition polymerizable monomers, preferably catalysts for polymerization of conjugated ethylenically polyunsaturated addition polymerizable monomers, according to the invention possess improved catalytic properties and are especially useful in the polymerization of conjugated dienes. In addition, the complexes are compatible with and may be used in combination with alkylaluminum compounds which may be employed to scavenge monomer impurities without detrimental effects to their catalytic properties.
0083The homopolymers and copolymers of the invention may be used in the production of many useful shapes, molded parts, films, foams, golf balls, tires, hoses, conveyor and other belts, gaskets, seals, shoes and in the modification of plastics.
0084All reference to the Periodic Table of the Elements herein shall refer to the Periodic Table of the Elements, published and copyrighted by CRC Press, Inc., 1989. Also, any reference to a Group or Groups shall be to the Group or Groups as reflected in this Periodic Table of the Elements using the TUPAC system for numbering groups.
0085By the term "neutral Lewis base ligand" is meant uncharged groups that are sufficiently nucleophilic to be capable of forming a coordination bond to the metal atom of the metal complex of the invention. Preferred neutral Lewis base ligand groups, D, are carbon monoxide, acetylacetonate, ethers, thioethers, polyethers, amines, polyamines, phosphines, phosphites, polyphosphines, alcohols, nitriles, esters, olefins and conjugated dienes. The metal complexes according to the present invention may be present as coordination complexes of neutral Lewis base ligands. in tne preierreα metal complexes according to the present invention corresponding to one of the Formulas TVa or IVb:
0086<img file="WO2004076504A2_D0015.tif" />
0087Formula IVa
0088<img file="WO2004076504A2_D0016.tif" />
0089Formula IVb wherein:
0090M<sup>π</sup> is a metal from one of the Groups 1 or 2 of the Periodic Table of the Elements;
0091T is nitrogen or phosphorus;
0092M<sup>1</sup> comprises lanthanum, cerium, praseodymium, neodymium, or promethium;
0093R<sup>A</sup> and R<sup>B</sup> are hydrocarbyl, especially alkyl, cyclic alkyl, aryl, alkaryl, more especially methyl, ethyl, 1-methylethyl, 1,1-dimethylethyl, cyclohexyl, phenyl, 2,6-dialkylphenyl, benzyl, trimethylsilyl and hydrocarbylsilyl; and the two ligands (R<sup>A</sup>)(R<sup>B</sup>)T are not linked to each other in any way, except by means of the M^ linking group;
0094D independently each occurrence is selected from carbon monoxide; phosphines,
0095PR*3, and phosphites, P(OR<sup>1</sup>)3, wherein R<sup>1</sup> independently each occurrence is hydrocarbyl, silyl, especially trimethylphosphine, triethylphosphine, tributylphosphine, triphenylphosphine and 1 ,2-bis(dimethylphosphino)ethane, 1 ,2-bis(diphenylphosphino)ethane, bis(diphenylphosphino)methane, 1 ,3-bis(diphenylphosphino)propane, trimethylphosphite, triethylphosphite, tributylphosphite, triphenylphosphite; thioethers, especially dimethylthioether, methylphenylthioether, diethylthioether; ethers and polyethers, especially tetrahydrofuran (THF), diethylether (Et2θ), dioxane, 1,2-dimethoxyethane (DME); amines and polyamines, especially pyridine, bipyridine, pyrrolidine, piperidine, tetramethylethylenediamine (TMEDA) and triethylamine (TEA); olefins, especially ethylene, propylene, butene, hexene, octene, styrene, divinylbenzene; conjugated dienes having from 4 to 40 carbon atoms, especially butadiene, isoprene, 1,3-pentadiene, 2,4-hexadiene; alcohols, especially methanol, ethanol, propanol, butanol; nitriles, especially acetonitrile, acrylonitrile, propanenitrile, benzonitrile; esters, especially methyl acetate, ethyl acetate, butyl acetate, methyl acrylate, methyl methacrylate, methyl benzoate;
0096X groups are fluoride, chloride, bromide or iodide, or a hydrocarbyl group, a hydrocarbylsilyl group, a halo-substituted hydrocarbyl group, or an— OR group, wherein R independently each occurrence is hydrogen or a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, acyl- substituted hydrocarbyl, arylcarbonyl- substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, hydrocarbylsilyl- substituted hydrocarbyl, acyl or arylcarbonyl, and more preferred groups are fluoride, chloride, bromide or iodide; s is the number 0 or 1 ; o is the number 1 or 2; p is the number 1 , 2, 3 or 4; t is one of the numbers 0 to 3; and y is the number 1, 2, 3, 4, 5, 6, 7, 8, 9 or 10.
0097The formula weight of the metal complex preferably is lower than 20,000 g/mol, more preferably lower than 15,000 g/mol.
0098Preferably, M<sup>1</sup> comprises lanthanum, cerium, praseodymium, neodymium, promethium; even more preferably neodymium.
0099Preferably, M<sup>π</sup> comprises a lithium, sodium, potassium or magnesium atom.
0100T preferably comprises nitrogen.
0101Preferably, D comprises tetrahydrofuran (THF), diethylether (E12O), dioxane, 1,2- dimethoxyethane (DME).
0102Preferably X is a fluoride, chloride, bromide or iodide atom and T is a nitrogen atom. Even more preferably M<sup>π</sup> is an atom of Group 1 of the Periodic Table of the Elements; and n is the number zero. Even more preferably R<sup>A</sup> and R<sup>c</sup> are selected to be identical and R<sup>B</sup> and R<sup>D</sup> are selected to be identical.
0103In a preferred embodiment, the compound according to the Formula II wherein the X groups are fluoride, chloride, bromide or iodide, or a hydrocarbyl group, a hydrocarbylsilyl group, a halo-substituted hydrocarbyl group, or an —OR group, wherein R independently each occurrence is hydrogen or a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, acyl-substituted hydrocarbyl, arylcarbonyl-substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, hydrocarbylsilyl-substituted hydrocarbyl, acyl or arylcarbonyl, is contacted with more than one and less than three equivalents of the Group 1 or Group 2 compounds according to the Formulae Ilia and Illb, in a solvent.
0104Preferred metal complexes according to the present invention are metal complexes resulting from the reaction of one equivalent of a Group 3 metal, lanthanide or actinide compound corresponding to Formula II with more than 1.5 and less than 2.5 equivalents of the Group 1 compound(s) corresponding to Formula IIIc:
0105<img file="WO2004076504A2_D0017.tif" />
0106Formula IIIc wherein M a , M Λ -Π , T, R >A , R τ»B , t, D, and X are as previously defined and T is preferably nitrogen.
0107Especially preferred metal complexes according to the present invention correspond to the Formula Va or Vb:
0108s (M<sup>π</sup>(X)<sub>p</sub>) * trJ
0109<img file="WO2004076504A2_D0018.tif" />
0110Formula Va <img file="WO2004076504A2_D0019.tif" />
0111Formula Vb
0112wherein R<sup>A</sup> R<sup>B</sup> and t are as previously defined;
0113M<sup>1</sup> is lanthanum, cerium, praseodymium, neodymium, promethium;.
0114N is nitrogen;
0115M<sup>π</sup> is a metal of group 1 of the Periodic Table of the Elements, especially M<sup>π</sup> is lithium, sodium or potassium;
0116X independently each occurrence is fluoride, chloride, bromide or iodide or an— OR group, wherein R independently each occurrence is hydrogen or a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, acyl- substituted hydrocarbyl, arylcarbonyl-substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, hydrocarbylsilyl-substituted hydrocarbyl, acyl or arylcarbonyl, and more preferred groups are fluoride, chloride, bromide or iodide;
0117D is THF, DME, TEA, TMEDA, Et<sub>2</sub>O;
0118o is the number 1; p is the number 1; s is the number 0 or 1 ; and y is the number 1, 2, 3, 4, 5, or 6; and the two ligands (R<sup>A</sup>)(R<sup>B</sup>)N are not linked to each other in any way, except by means of the Ml linking group.
0119The formula weight of the metal complex preferably is lower than 15,000 g/mol, more preferably lower than 9,000 g/mol.
0120Especially preferred metal complexes according to the present invention are metal complexes resulting from the reaction of one equivalent of a lanthanide compound corresponding to Formula II with more than 1.5 and less than 2.5 equivalents of the Group 1 compound(s) corresponding to Formula IIIc wherein M^ is a group 1 metal.
0121In an even preferred embodiment, one equivalent of the compound according to the formula II, wherein M<sup>1</sup> is neodymium, t and D are as previously defined and X is a fluoride, chloride, bromide or iodide atom, is contacted with more than 1.5 and less than 2.5 equivalents of the Group 1 compound corresponding to Formula IIIc, wherein R<sup>A</sup> and R<sup>B</sup> are as previously defined and M<sup>π</sup> is an atom of Group 1 of the Periodic Table of the Elements, in a solvent.
0122Most highly preferred metal complexes according to the present invention correspond to the Formula Via or VIb:
0123<img file="WO2004076504A2_D0020.tif" />
0124Formula Via
0125<img file="WO2004076504A2_D0021.tif" />
0126Formula VIb
0127wherein
0128R<sup>A</sup> and R<sup>B</sup> are alkyl, cyclic alkyl, aryl, alkaryl, more especially methyl, ethyl, 1- methylethyl, 1,1-dimethylethyl, cyclohexyl, phenyl, 2,6-dialkylphenyl, benzyl, trimethylsilyl and benzyl(dimethyl)silyl, t-butyl(dimefhyl)silyl, n-butyl(dimethyl)silyl; and R<sup>A</sup> and R<sup>B</sup> are not connected with each other, except by means of the N linking group;
0129Nd is neodymium;
0130M<sup>π</sup> is lithium, sodium or potassium;
0131X is fluoride, chloride, bromide or iodide;
0132D is THF, DME or Et2θ;
0133t is the number 0, 1, 2 or 3; s is the number 0; y is the number 1, 2, 3 or 4; and the formula weight of the metal complex preferably is lower than 6,000 g/mol.
0134Preferably the metal complex does not contain hapto-5 bond ligands such as, but not limited to, cyclopentadienyl, indenyl or fluorenyl ligands, as well as hapto-3 bond ligands such as, but not limited to, allyl or pentadienyl ligands.
0135Exemplary, but non-limiting metal complexes according to the invention include the following neodymium complexes: lithium[bis(N,N-diisopropylamido) difluoro neodymate]; lithium [bis(N,N-diisopropylamido) dichloro neodymate]; lithium [bis(N,N-diisopropylamido) dibromo neodymate]; lithium [bis(N,N-diisopropylamido) diiodo neodymate]; sodium [bis(N,N-diisopropylamido) difluoro neodymate]; sodium [bis(Η,N-diisopropylamido) dichloro neodymate]; sodium bis(N,N-diisopropylamido) dibromo neodymate]; sodium [bis(N,N-diisopropylamido) diiodo neodymate]; potassium [bis(N,N-diisopropylamido) difluoro neodymate]; potassium [bis(N,N-diisopropylamido) dichloro neodymate]; potassium [bis(N,N-diisopropylamido) dibromo neodymate]; potassium [bis(N,N-diisopropylamido) diiodo neodymate]; lithium [bis(N,N-dipropylamido) difluoro neodymate]; lithium [bis(N,N-dipropylamido) dichloro neodymate]; lithium [bis(N,N-dipropylamido) dibromo neodymate]; lithium [bis(N,N-dipropylamido) diiodo neodymate]; sodium [bis(N,N-dipropylamido) difluoro neodymate]; sodium [bis(N,N-dipropylamido) dichloro neodymate]; sodium [bis(N,N-dipropylamido) dibromo neodymate]; sodium [bis(N,N-dipropylamido) diiodo neodymate]; potassium [bis(N,N-dipropylamido) difluoro neodymate]; potassium [bis(N,N-dipropylamido) dichloro neodymate]; potassium [bis(N,N-dipropylarnido) dibromo neodymate]; potassium [bis(N,N-dipropylamido) diiodo neodymate]; lithium [bis(N,N-diethylamido) difluoro neodymate]; lithium [bis(N,N-diethylamido) dichloro neodymate]; lithium [bis(N,N-diethylamido) dibromo neodymate]; lithium [bis(N,N-diethylamido) diiodo neodymate]; sodium [bis(N,N-diethylamido) difluoro neodymate]; sodium [bis(N,N-diethylamido) dichloro neodymate]; sodium [bis(N,N-diethylamido) dibromo neodymate]; sodium [bis(N,N-diethylamido) diiodo neodymate]; potassium [bis(N,N-diethylamido) difluoro neodymate]; potassium [bis(N,N-diethylamido) dichloro neodymate]; potassium [bis(N,N-diethylamido) dibromo neodymate]; potassium [bis(N,N-diethylamido) diiodo neodymate]; lithium [bis(N-ethylmethylamido) difluoro neodymate]; lithium [bis(N-ethylmethylamido) dichloro neodymate]; lithium [bis(N-ethylmethylamido) dibromo neodymate]; lithium [bis(N-ethylmethylamido) diiodo neodymate]; sodium [bis(N-ethylmethylamido) difluoro neodymate]; sodium [bis(N-ethylmethylamido) dichloro neodymate]; sodium [bis(N-ethylmethylamido) dibromo neodymate]; sodium [bis(N-ethylmethylamido) diiodo neodymate]; potassium [bis(N-ethylmethylamido) difluoro neodymate]; potassium [bis(N-ethylmethylamido) dichloro neodymate]; potassium [bis(N-ethylmethylamido) dibromo neodymate]; potassium [bis(N-ethylmethylamido) diiodo neodymate]; lithium [bis(N,N-dimethylamido) difluoro neodymate]; lithium [bis(N,N-dimethylamido) dichloro neodymate]; lithium [bis(N,N-dimethylamido) dibromo neodymate]; lithium [bis(N,N-dimethylamido) diiodo neodymate]; sodium [bis(N,N-dimethylamido) difluoro neodymate]; sodium [bis(N,N-dimethylamido) dichloro neodymate]; sodium [bis(N,N-dimethylamido) dibromo neodymate]; sodium [bis(N,N-dimethylamido) diiodo neodymate]; potassium [bis(N,N-dimethylamido) difluoro neodymate]; potassium [bis(N,N-dimethylamido) dichloro neodymate]; potassium [bis(N,N-dimethylamido) dibromo neodymate]; potassium [bis(N,N-dimethylamido) diiodo neodymate]; lithium [bis(N,N-dimethylamido) difluoro neodymate]; lithium [bis(N,N-dimethylamido) dichloro neodymate]; lithium [bis(N,N-dimethylamido) dibromo neodymate]; lithium [bis(N,N-dimethylamido) diiodo neodymate]; sodium [bis(N,N-dimethylamido) difluoro neodymate]; sodium [bis(N,N-dimethylamido) dichloro neodymate]; sodium [bis(N,N-dimethylamido) dibromo neodymate]; sodium [bis(N,N-dimethylamido) diiodo neodymate]; potassium [bis(N,N-dimethylamido) difluoro neodymate]; potassium [bis(N,N-dimethylamido) dichloro neodymate]; potassium [bis(N,N-dimethylamido) dibromo neodymate]; potassium [bis(N,N-dimethylamido) diiodo neodymate]; lithium [bis(N,N-diisobutylamido) difluoro neodymate]; lithium [bis(N,N-diisobutylamido) dichloro neodymate]; lithium [bis(N,N-diisobutylamido) dibromo neodymate]; lithium [bis N,N-diisobutylamido) diiodo neodymate]; sodium [bis(N,N-diisobutylamido) difluoro neodymate]; sodium [bis(N,N-diisobutylamido) dichloro neodymate]; sodium [bis(N,N-diisobutylamido) dibromo neodymate]; sodium [bis(N,N-diisobutylamido) diiodo neodymate]; potassium [bis(N,N-diisobutylamido) difluoro neodymate]; potassium [bis(N,N-diisobutylamido) dichloro neodymate]; potassium [bis(N,N-diisobutylamido) dibromo neodymate]; potassium [bis(N,N-diisobutylamido) diiodo neodymate]; lithium [bis(N,N-dibutylamido) difluoro neodymate]; lithium [bis(N,N-dibutylamido) dichloro neodymate]; lithium [bis(N,N-dibutylamido) dibromo neodymate]; lithium [bis(N,N-dibutylamido) diiodo neodymate]; sodium [bis(N,N-dibutylamido) difluoro neodymate]; sodium [bis(N,N-dibutylamido) dichloro neodymate]; sodium [bis(N,N-dibutylamido) dibromo neodymate]; sodium [bis(N,N-dibutylamido) diiodo neodymate]; potassium [bis(N,N-dibutylamido) difluoro neodymate]; potassium [bis(N,N-dibutylamido) dichloro neodymate]; potassium [bis(N,N-dibutylamido) dibromo neodymate]; potassium [bis(N,N-dibutylamido) diiodo neodymate]; lithium [bis(N-methyl-N-propylamido) difluoro neodymate]; lithium [bis(N-methyl-N-propylamido) dichloro neodymate]; lithium [bis(N-methyl-N-propylamido) dibromo neodymate]; lithium [bis(N-methyl-N-propylamido) diiodo neodymate]; sodium [bis(N-methyl-N-propylamido) difluoro neodymate]; sodium [bis(N-methyl-N-propylamido) dichloro neodymate]; sodium [bis(N-methyl-N-propylamido) dibromo neodymate]; sodium [bis(N-methyl-N-propylamido) diiodo neodymate]; potassium [bis(N-methyl-N-propylamido) difluoro neodymate]; potassium [bis(N-methyl-N-propylamido) dichloro neodymate]; potassium [bis(N-methyl-N-propylamido) dibromo neodymate]; potassium [bis(N-methyl-N-propylamido) diiodo neodymate]; lithium [bis(N-methyl-N-butylamido) difluoro neodymate]; lithium [bis(N-methyl-N-butylamido) dichloro neodymate]; lithium [bis(TST-methyl-N-butylamido) dibromo neodymate]; lithium [bis(N-methyl-N-butylamido) diiodo neodymate]; sodium [bis(N-methyl-N-butylamido) difluoro neodymate]; sodium [bis(N-methyl-N-butylamido) dichloro neodymate]; sodium [bis(N-methyl-N-butylamido) dibromo neodymate]; sodium [bis(N-methyl-N-butylamido) diiodo neodymate]; potassium [bis(N-methyl-N-butylamido) difluoro neodymate]; potassium [bis(N-methyl-N-butylamido) dichloro neodymate]; potassium [bis(N-methyl-N-butylamido) dibromo neodymate]; potassium [bis(N-methyl-N-butylamido) diiodo neodymate]; lithium [bis(N-methyl-N-isobutylamido) difluoro neodymate]; lithium [bis(N-methyl-N-isobutylamido) dichloro neodymate]; lithium [bis(N-methyl-N-isobutylamido) dibromo neodymate]; lithium [bis N-methyl-N-isobutylamido) diiodo neodymate]; sodium [bis(N-methyl-N-isobutylamido) difluoro neodymate]; sodium [bis(N-methyl-N-isobutylamido) dichloro neodymate]; sodium [bis(N-methyl-N-isobutylamido) dibromo neodymate]; sodium [bis(N-methyl-N-isobutylamido) diiodo neodymate]; potassium [bis(N-methyl-N-isobutylamido) difluoro neodymate]; potassium [bis(N-methyl-N-isobutylamido) dichloro neodymate]; potassium [bis(N-methyl-N-isobutylamido) dibromo neodymate]; potassium [bis(N-methyl-N-isobutylamido) diiodo neodymate]; lithium [bis(N-melhyl-N-t-butylamido) difluoro neodymate]; lithium [bis(N-methyl-N-t-butylamido) dichloro neodymate]; lithium [bis(N-methyl-N-t-butylamido) dibromo neodymate]; lithium [bis(N-methyl-N-t-butylamido) diiodo neodymate]; sodium [bis(N-methyl-N-t-butylamido) difluoro neodymate]; sodium [bis(N-methyl-N-t-butylamido) dichloro neodymate]; sodium [bis(N-methyl-N-t-butylamido) dibromo neodymate]; sodium [bis(N-methyl-N-t-butylamido) diiodo neodymate]; potassium [bis(N-methyl-N-t-butylamido) difluoro neodymate]; potassium [bis(N-methyl-N-t-butylamido) dichloro neodymate]; potassium [bis(N-methyl-N-t-butylamido) dibromo neodymate]; potassium [bis(N-methyl-N-t-butylamido) diiodo neodymate]; lithium [bis(N-ethyl-N-butylamido) difluoro neodymate]; lithium [bis(N-ethyl-N-butylamido) dichloro neodymate]; lithium [bis(N-ethyl-N-butylamido) dibromo neodymate]; lithium [bis(N-ethyl-N-butylamido) diiodo neodymate]; sodium [bis(N-ethyl-N-butylamido) difluoro neodymate]; sodium [bis(N-ethyl-N-butylamido) dichloro neodymate]; sodium [bis(N-ethyl-N-butylamido) dibromo neodymate]; sodium [bis(N-ethyl-N-butylamido) diiodo neodymate]; potassium [bis(N-ethyl-N-butylamido) difluoro neodymate]; potassium [bis(N-ethyl-N-butylamido) dichloro neodymate]; potassium [bis(N-ethyl-N-butylamido) dibromo neodymate]; potassium [bis(N-ethyl-N-butylamido) diiodo neodymate]; lithium [bis(N-propyl-N-butylamido) difluoro neodymate]; lithium [bis(N-propyl-N-butylamido) dichloro neodymate]; lithium [bis(N-propyl-N-butylamido) dibromo neodymate]; lithium [bis(N-propyl-N-butylamido) diiodo neodymate]; sodium [bis(N-propyl-N-butylamido) difluoro neodymate]; sodium [bis(N-propyl-N-butylamido) dichloro neodymate]; sodium [bis(N-propyl-N-butylamido) dibromo neodymate]; sodium [bis(N-propyl-N-butylamido) diiodo neodymate]; potassium [bis(N-propyl-N-butylamido) difluoro neodymate]; potassium [bis(N-propyl-N-butylamido) dichloro neodymate]; potassium [bis(N-propyl-N-butylamido) dibromo neodymate]; potassium [bis(N-propyl-N-butylamido) diiodo neodymate]; lithium [bis(N,N-dipentylamido) difluoro neodymate]; lithium [bis(N,N-dipentylamido) dichloro neodymate]; lithium [bis(N,N-dipentylamido) dibromo neodymate]; lithium [bis(N,N-dipentylamido) diiodo neodymate]; sodium [bis(N,N-dipentylamido) difluoro neodymate]; sodium [bis(N,N-dipentylamido) dichloro neodymate]; sodium [bis(N,N-dipentylamido) dibromo neodymate]; sodium [bis(N,N-dipentylamido) diiodo neodymate]; potassium [bis(N,N-dipentylamido) difluoro neodymate]; potassium [bis(N,N-diρentylamido) dichloro neodymate]; potassium [bis(N,N-dipentylamido) dibromo neodymate]; potassium [bis(N,N-dipentylamido) diiodo neodymate]; lithium [bis(N,N-dihexylamido) difluoro neodymate]; lithium [bis(N,N-dihexylamido) dichloro neodymate]; lithium [bis(N,N-dihexylamido) dibromo neodymate]; lithium [bis(N,N-dihexylamido) diiodo neodymate]; sodium [bis(N,N-dihexylamido) difluoro neodymate]; sodium [bis(N,N-dihexylamido) dichloro neodymate]; sodium [bis(N,N-dihexylamido) dibromo neodymate]; sodium [bis(N,N-dihexylamido) diiodo neodymate]; potassium [bis(N,N-dihexylamido) difluoro neodymate]; potassium [bis(N,N-dihexylamido) dichloro neodymate]; potassium [bis(N,N-dihexylamido) dibromo neodymate]; potassium [bis(N,N-dihexylamido) diiodo neodymate]; lithium [bis(N,N-dioctylamido) difluoro neodymate]; lithium [bis(N,N-dioctylamido) dichloro neodymate]; lithium [bis(N,N-dioctylamido) dibromo neodymate]; lithium [bis(N,N-dioctylamido) diiodo neodymate]; sodium [bis(N,N-dioctylamido) difluoro neodymate]; sodium [bis(N,N-dioctylamido) dichloro neodymate]; sodium [bis(N,N-dioctylamido) dibromo neodymate]; sodium [bis(N,N-dioctylamido) diiodo neodymate]; potassium [bis(N,N-dioctylamido) difluoro neodymate]; potassium [bis(N,N-dioctylamido) dichloro neodymate]; potassium [bis(N,N-dioctylamido) dibromo neodymate]; potassium [bis(N,N-dioctylamido) diiodo neodymate]; lithium [bis(N,N-didecylamido) difluoro neodymate]; lithium [bis(N,N-didecylamido) dichloro neodymate]; lithium [bis(N,N-didecylamido) dibromo neodymate]; lithium [bis(N,N-didecylamido) diiodo neodymate]; sodium [bis(N,N-didecylamido) difluoro neodymate]; sodium [bis(N,N-didecylamido) dichloro neodymate]; sodium [bis(N,N-didecylamido) dibromo neodymate]; sodium [bis(N,N-didecylamido) diiodo neodymate]; potassium [bis(N,N-didecylamido) difluoro neodymate]; potassium [bis(N,N-didecylamido) dichloro neodymate]; potassium [bis(N,N-didecylamido) dibromo neodymate]; potassium [bis(N,N-didecylamido) diiodo neodymate]; lithium [bis N-benzyl-N-propylamido) difluoro neodymate]; lithium [bis(N-benzyl-N-propylamido) dichloro neodymate]; lithium [bis(N-benzyl-N-propylamido) dibromo neodymate]; lithium [bis(N-benzyl-N-propylamido) diiodo neodymate]; sodium [bis(N-benzyl-N-propylamido) difluoro neodymate]; sodium [bis(N-benzyl-N-propylamido) dichloro neodymate]; sodium [bis(N-benzyl-N-propylamido) dibromo neodymate]; sodium [bis(N-benzyl-N-propylamido) diiodo neodymate]; potassium [bis(N-benzyl-N-propylamido) difluoro neodymate]; potassium [bis(N-benzyl-N-propylamido) dichloro neodymate]; potassium [bis(N-benzyl-N-propylamido) dibromo neodymate]; potassium [bis(N-benzyl-N-propylamido) diiodo neodymate]; lithium [bis(N-benzyl-N-methylamido) difluoro neodymate]; lithium [bis(N-benzyl-N-methylamido) dichloro neodymate]; lithium [bis(N-benzyl-N-methylamido) dibromo neodymate]; lithium [bis(N-benzyl-N-methylamido) diiodo neodymate]; sodium [bis(N-benzyl-N-methylamido) difluoro neodymate]; sodium [bis(N-benzyl-N-methylamido) dichloro neodymate]; sodium [bis(N-benzyl-N-methylamido) dibromo neodymate]; sodium [bis(N-benzyl-N-methylamido) diiodo neodymate]; potassium [bis(N-benzyl-N-methylamido) difluoro neodymate]; potassium [bis(N-benzyl-N-methylamido) dichloro neodymate]; potassium [bis(N-benzyl-N-methylamido) dibromo neodymate]; potassium [bis(N-benzyl-N-methylamido) diiodo neodymate]; lithium [bis(N-benzyl-N-butylamido) difluoro neodymate]; lithium [bis(N-benzyl-N-butylamido) dichloro neodymate]; - lithium [bis(N-benzyl-N-butylamido) dibromo neodymate]; lithium [bis(N-benzyl-N-butylamido) diiodo neodymate]; sodium [bis(N-benzyl-N-butylamido) difluoro neodymate]; sodium [bis(N-benzyl-N-butylamido) dichloro neodymate]; sodium [bis(N-benzyl-N-butylamido) dibromo neodymate]; sodium [bis(N-benzyl-N-butylamido) diiodo neodymate]; potassium [bis(N-benzyl-N-butylamido) difluoro neodymate]; potassium [bis(N-benzyl-N-butylamido) dichloro neodymate]; potassium [bis(N-benzyl-N-butylamido) dibromo neodymate]; potassium [bis(N-benzyl-N-butylamido) diiodo neodymate]; lithium [bis(N-benzyl-N-butylamido) difluoro neodymate]; lithium [bis(N-benzyl-N-butylamido) dichloro neodymate]; lithium [bis(N-benzyl-N-butylamido) dibromo neodymate]; lithium [bis(N-benzyl-N-butylamido) diiodo neodymate]; sodium [bis(N-benzyl-N-butylamido) difluoro neodymate]; sodium [bis(N-benzyl-N-butylamido) dichloro neodymate]; sodium [bis(N-benzyl-N-butylamido) dibromo neodymate]; sodium [bis(N-benzyl-N-butylamido) diiodo neodymate]; potassium [bis(N-benzyl-N-butylamido) difluoro neodymate]; potassium [bis(N-benzyl-N-butylamido) dichloro neodymate]; potassium [bis(N-benzyl-N-butylamido) dibromo neodymate]; potassium [bis(N-benzyl-N-butylamido) diiodo neodymate]; lithium [bis(N-benzyl-N-iso-butylamido) difluoro neodymate]; lithium [bis(N-benzyl-N-iso-butylamido) dichloro neodymate]; lithium [bis(N-benzyl-N-iso-butylamido) dibromo neodymate]; lithium [bis(N-benzyl-N-iso-butylamido) diiodo neodymate]; sodium [bis(N-benzyl-N-iso-butylamido) difluoro neodymate]; sodium [bis(N-benzyl-N-iso-butylamido) dichloro neodymate]; sodium [bis(N-benzyl-N-iso-butylamido) dibromo neodymate]; sodium [bis(N-benzyl-N-iso-butylamido) diiodo neodymate]; potassium [bis(N-benzyl-N-iso-butylamido) difluoro neodymate]; potassium [bis(N-benzyl-N-iso-butylamido) dichloro neodymate]; potassium [bis(N-benzyl-N-iso-butylamido) dibromo neodymate]; potassium [bis(N-benzyl-N-iso-butylamido) diiodo neodymate]; lithium [bis(N-cyclohexyl-N-propylamido) difluoro neodymate]; lithium [bis(N-cyclohexyl-N-propylamido) dichloro neodymate]; lithium [bis(N-cyclohexyl-N-propylamido) dibromo neodymate]; lithium [bis(N-cyclohexyl-N-propylamido) diiodo neodymate]; sodium [bis(N-cyclohexyl-N-propylamido) difluoro neodymate]; sodium [bis(N-cyclohexyl-N-propylamido) dichloro neodymate]; sodium [bis(N-cyclohexyl-N-propylamido) dibromo neodymate]; sodium [bis(N-cyclohexyl-N-propylamido) diiodo neodymate]; potassium [bis(N-cyclohexyl-N-propylamido) difluoro neodymate]; potassium [bis(N-cyclohexyl-N-ρropylamido) dichloro neodymate]; potassium [bis(N-cyclohexyl-N-propylamido) dibromo neodymate]; potassium [bis(N-cyclohexyl-N-propylamido) diiodo neodymate]; lithium [bis(N-cyclohexyl-N-methylamido) difluoro neodymate]; lithium [bis(N-cyclohexyl-N-methylamido) dichloro neodymate]; lithium [bis(N-cyclohexyl-N-methylamido) dibromo neodymate]; lithium [bis(N-cyclohexyl-N-methylamido) diiodo neodymate]; sodium [bis(N-cyclohexyl-N-methylamido) difluoro neodymate]; sodium [bis(N-cyclohexyl-N-methylamido) dichloro neodymate]; sodium [bis(N-cyclohej yl-N-methylamido) dibromo neodymate]; sodium [bis(N-cyclohexyl-N-methylamido) diiodo neodymate]; potassium [bis(N-cyclohexyl-N-methylamido) difluoro neodymate]; potassium [bis(N-cyclohexyl-N-methylamido) dichloro neodymate]; potassium [bis(N-cyclohexyl-N-methylamido) dibromo neodymate]; potassium [bis(N-cyclohexyl-N-methylamido) diiodo neodymate]; lithium [bis(N-cyclohexyl-N-t-butylamido) difluoro neodymate]; lithium [bis(N-cyclohexyl-N-t-butylamido) dichloro neodymate]; lithium [bis(N-cyc ;lohexyl-N-t-butylamido) dibromo neodymate]; lithium [bis(N-cyα ;lohexyl-N-t-butylamido) diiodo neodymate]; sodium [bis(N-cyα slohexyl-N-t-butylamido) difluoro neodymate]; sodium [bis(N-cyc slohexyl-N-t-butylamido) dichloro neodymate]; sodium [bis(N-cyc ;lohexyl-N-t-butylamido) dibromo neodymate]; sodium [bis(N-cyα ;lohexyl-N-t-butylamido) diiodo neodymate]; potassium [bis(N-cyclohexyl-N-t-butylamido) difluoro neodymate]; potassium [bis(N-cyclohexyl-N-t-butylamido) dichloro neodymate]; potassium [bis(N-cyclohexyl-N-t-butylamido) dibromo neodymate]; potassium [bis(N-cyclohexyl-N-t-butylamido) diiodo neodymate]; lithium [bis(N-cyclohexyl-N-butylamido) difluoro neodymate]; lithium [bis(N-cyclohexyl-N-butylamido) dichloro neodymate]; lithium [bis(N-cyclohexyl-N-butylamido) dibromo neodymate]; lithium [bis(N-cyclohexyl-N-butylamido) diiodo neodymate]; sodium [bis(N-cyclohexyl-N-butylamido) difluoro neodymate]; sodium [bis(N-cyclohexyl-N-butylamido) dichloro neodymate]; sodium [bis(N-cyclohexyl-N-butylamido) dibromo neodymate]; sodium [bis(N-cyclohexyl-N-butylamido) diiodo neodymate]; potassium [bis( -cyclohexyl-N-butylamido) difluoro neodymate]; potassium [bis(N-cyclohexyl-N-butylamido) dichloro neodymate]; potassium [bis(N-cyclohexyl-N-butylamido) dibromo neodymate]; potassium [bis(N-cyclohexyl-N-butylamido) diiodo neodymate]; lithium [bis(N-cyclohexyl-N-iso-butylamido) difluoro neodymate]; lithium [bis(N-cyclohexyl-N-iso-butylamido) dichloro neodymate]; lithium [bis(N-cyclohexyl-N-iso-butylamido) dibromo neodymate]; lithium [bis(N-cyclohexyl-N-iso-butylamido) diiodo neodymate]; sodium [bis(N-cyclohexyl-N-iso-butylamido) difluoro neodymate]; sodium [bis(N-cyclohexyl-N-iso-butylamido) dichloro neodymate]; sodium [bis(N-cyclohexyl-N-iso-butylamido) dibromo neodymate]; sodium [bis(N-cyclohexyl-N-iso-butylamido) diiodo neodymate]; potassium [bis(N-cyclohexyl-N-iso-butylamido) difluoro neodymate]; potassium [bis(N-cyclohexyl-N-iso-butylamido) dichloro neodymate]; potassium [bis(N-cyclohexyl-N-iso-butylamido) dibromo neodymate]; potassium [bis(N-cyclohexyl-N-iso-butylamido) diiodo neodymate]; lithium [bis(N,N-diphenylamido) difluoro neodymate]; lithium [bis(N,N-diphenylamido) dichloro neodymate]; lithium [bis(N,N-diphenylamido) dibromo neodymate]; lithium [bis(N,N-diphenylamido) diiodo neodymate]; sodium [bis(N,N-diphenylamido) difluoro neodymate]; sodium [bis(N,N-diphenylamido) dichloro neodymate]; sodium [bis(N,N-diphenylamido) dibromo neodymate]; sodium [bis(N,N-diphenylamido) diiodo neodymate]; potassium [bis(N,N-diphenylamido) difluoro neodymate]; potassium [bis(N,N-diphenylamido) dichloro neodymate]; potassium [bis(N,N-diphenylamido) dibromo neodymate]; potassium [bis(N,N-diphenylamido) diiodo neodymate]; lithium [bis(N-phenyl-N-benzylamido) difluoro neodymate]; lithium [bis(N-phenyl-N-benzylamido) dichloro neodymate]; lithium [bis(N-phenyl-N-benzylamido) dibromo neodymate]; lithium [bis(N-phenyl-N-benzylamido) diiodo neodymate]; sodium [bis(N-phenyl-N-benzylamido) difluoro neodymate]; sodium [bis(N-phenyl-N-benzylamido) dichloro neodymate]; sodium [bis(N-phenyl-N-benzylamido) dibromo neodymate]; sodium [bis(N-phenyl-N-benzylamido) diiodo neodymate]; potassium [bis(N-phenyl-N-benzylamido) difluoro neodymate]; potassium [bis(N-phenyl-N-benzylamido) dichloro neodymate]; potassium [bis(N-phenyl-N-benzylamido) dibromo neodymate]; potassium [bis(N-phenyl-N-benzylamido) diiodo neodymate]; lithium [bis(N-pyrrolylamido) difluoro neodymate]; lithium [bis(N-pyrrolylamido) dichloro neodymate]; lithium [bis(N-pyrrolylamido) dibromo neodymate]; lithium [bis(N-pyrrolylamido) diiodo neodymate]; sodium [bis(N-pyrrolylamido) difluoro neodymate]; sodium [bis(N-pyrrolylamido) dichloro neodymate]; sodium [bis(N-pyrrolylamido) dibromo neodymate]; sodium [bis(N-pyrrolylamido) diiodo neodymate]; potassium [bis(N-pyrrolylamido) difluoro neodymate]; potassium [bis(N-pyrrolylamido) dichloro neodymate]; potassium [bis(N-pyrrolylamido) dibromo neodymate]; potassium [bis(N-pyrrolylamido) diiodo neodymate]; lithium [bis(piperidino) difluoro neodymate]; lithium [bis(piperidino) dichloro neodymate]; lithium [bis(piperidino) dibromo neodymate]; lithium [bis(piperidino) diiodo neodymate]; sodium [bis(piperidino) difluoro neodymate]; sodium [bis(piperidino) dichloro neodymate]; sodium [bis(piperidino) dibromo neodymate]; sodium [bis(piperidino) diiodo neodymate]; potassium [bis(piperidino) difluoro neodymate]; potassium [bis(piperidino) dichloro neodymate]; potassium [bis(piperidino) dibromo neodymate]; potassium [bis(piperidino) diiodo neodymate]; lithium [N,N-bis(trimethylsilyl)amido) difluoro neodymate]; lithium [N,N-bis(trimethylsilyl)amido) dibromo neodymate]; lithium [N,N-bis(trimethylsilyl)amido) dichloro neodymate]; lithium [N,N-bis(trimethylsilyl)amido) diiodo neodymate]; sodium [N,N-bis(trimethylsilyl)amido) difluoro neodymate]; sodium [N,N-bis(trimethylsilyl)amido) dichloro neodymate]; sodium [N,N-bis(trimethylsilyl)amido) dibromo neodymate]; sodium [N,N-bis(trimethylsilyl)amido) diiodo neodymate]; potassium [N,N-bis(trimethylsilyl)amido) difluoro neodymate]; potassium [N,N-bis(trimethylsilyl)amido) dichloro neodymate]; potassium [N,N-bis(trimethylsilyl)amido) dibromo neodymate]; potassium [N,N-bis(trimethylsilyl)amido) diiodo neodymate]; lithium [N,N-bis(dimethyl-tert.butyl-silyl)amido) difluoro neodymate]; lithium [N,N-bis(dimethyl-tert.butyl-silyl)amido) dibromo neodymate]; lithium [N,N-bis(dimethyl-tert.butyl-silyl)amido) dichloro neodymate]; lithium [N,N-bis(dimethyl-tert.butyl-silyl)amido) diiodo neodymate]; sodium [N,N-bis(dimethyl-tert.butyl-silyl)amido) difluoro neodymate]; sodium [N,N-bis(dimethyl-tert.butyl-silyl)amido) dichloro neodymate]; sodium [N,N-bis(dimethyl-tert.butyl-silyl)amido) dibromo neodymate]; sodium [N,N-bis(dimethyl-tert.butyl-silyl)amido) diiodo neodymate]; potassium [N,N-bis(dimethyl-tert.butyl-silyl)amido) difluoro neodymate]; potassium pSf,N-bis(dimethyl-tert.butyl-silyl)amido) dichloro neodymate]; potassium [N,N-bis(dimethyl-tert.butyl-silyl)amido) dibromo neodymate]; potassium [N,N-bis(dimethyl-tert.butyl-silyl)amido) diiodo neodymate]; lithium N,N-bis(dimethyl-benzyl-silyl)amido) difluoro neodymate]; lithium [N,N-bis(dimethyl-benzyl-silyl)amido) dibromo neodymate]; lithium [N,N-bis(dimethyl-benzyl-silyl)amido) dichloro neodymate]; lithium [N,N-bis(dimethyl-benzyl-silyl)amido) diiodo neodymate]; sodium [N,N-bis(dimethyl-benzyl-silyl)amido) difluoro neodymate]; sodium [N,N-bis(dimethyl-benzyl-silyl)amido) dichloro neodymate]; sodium [N,N-bis(dimethyl-benzyl-silyl)amido) dibromo neodymate]; sodium pST,N-bis(dimethyl-benzyl-silyl)amido) diiodo neodymate]; potassium [N,N-bis(dimethyl-benzyl-silyl)amido) difluoro neodymate]; potassium [N,N-bis(dimethyl-benzyl-silyl)amido) dichloro neodymate]; potassium [N,N-bis(dimethyl-benzyl-silyl)amido) dibromo neodymate]; potassium [N,N-bis(dimethyl-benzyl-silyl)amido) diiodo neodymate].
0136The skilled artisan will recognize that additional members of the foregoing list will include the corresponding Lewis base adducts and Group 1 metal halide adducts thereof.
0137Exemplary, but non-limiting metal complexes according to the invention include the following neodymium complexes:
0138Bis(N,N-diisopropylamido)neodymium fluoride; bis(N,N-diisopropylamido)neodymium chloride; bis(N,N-diisopropylamido)neodymium bromide; bis(N,N-diisopropylamido)neodymium iodide; bis(N,N-dipropylamido)neodymium fluoride; bis(N,N-dipropylamido)neodymium chloride; bis(N,N-dipropylamido)neodymium bromide; bis(N,N-dipropylamido)neodymium iodide; bis(N,N-diethylamido)neodymium fluoride ; bis(N,N-diethylamido)neodymium chloride; bis(N,N-diethylamido)neodymium bromide; bis(N,N-diethylamido)neodymium iodide; bis(N-ethyl-N-methylamido)neodymium fluoride; bis(N-ethyl-N-methylamido)neodymium chloride; bis(N-ethyl-N-methylamido)neodymium bromide; bis(N-ethyl-N-methylamido)neodymium iodide; bis(N,N-dimethylamido)neodymium fluoride ; bis(N,N-dimethylamido)neodymium chloride; bis(N,N-dimethylamido)neodymium bromide; bis(N,N-dimethylamido)neodymium iodide; bis(N,N-diisobutylamido)neodymium fluoride; bis(N,N-diisobutylamido)neodymium chloride; bis(N,N-diisobutylamido)neodymium bromide; bis(N,N-diisobutylamido)neodymium iodide; bis(N,N-dibutylamido)neodymium fluoride; bis N,N-dibutylamido)neodymium chloride; bis(N,N-dibutylamido)neodymium bromide; bis(N,N-dibutylamido)neodymium iodide; bis(N-methyl-N-propylamido)neodymium fluoride; bis(N-methyl-N-propylamido)neodymium chloride; bis(N-methyl-N-propylamido)neodymium bromide; bis(N-methyl-N-propylamido)neodymium iodide; bis(N-methyl-N-butylamido)neodymium fluoride; bis(N-methyl-N-butylamido)neodymium chloride; bis(N-methyl-N-butylamido)neodymium bromide ; bis(N-methyl-N-butylamido)neodymium iodide; bis(N-methyl-N-isobutylamido)neodymium fluoride; bis(N-methyl-N-isobutylamido)neodymium chloride; bis(N-methyl-N-isobutylamido)neodymium bromide; bis(N-methyl-N-isobutylamido)neodymium iodide; bis(N-methyl-N-t-butylamido)neodymium fluoride; bis(N-methyl-N-t-butylamido)neodymium chloride; bis(N-methyl-N-t-butylamido)neodymium bromide; bis(N-methyl-N-t-butylamido)neodymium iodide; bis(N-ethyl-N-butylamido)neodymium fluoride; bis(N-ethyl-N-butylamido)neόdymium chloride; bis(N-ethyl-N-butylamido)neodymium bromide; bis(N-ethyl-N-butylamido)neodymium iodide; bis(N-propyl-N-butylamido)neodymium fluoride ; bis(N-propyl-N-butylamido)neodymium chloride; bis(N-propyl-N-butylamido)neodymium bromide; bis(N-propyl-N-butylamido)neodymium iodide; bis(N,N-dipentylamido)neodymium fluoride; bis(N,N-dipentylamido)neodymium chloride; bis(N,N-dipentylamido)neodymium bromide; bis(N,N-dipentylamido)neodymium iodide; bis(N,N-dihexylamido)neodymium fluoride; bis(N,N-dihexylamido)neodymium chloride; bis N,N-dihexylamido)neodymium bromide ; bis(N,N-dihexylamido)neodymium iodide; bis(N,N-dioctylamido)neodymium fluoride; bis(N,N-dioctylamido)neodymium chloride; bis(N,N-dioctylamido)neodymium bromide; bis(N,N-dioctylamido)neodymium iodide; bis(N,N-didecylamido)neodymium fluoride; bis(N,N-didecylamido)neodymium chloride; bis(N,N-didecylamido)neodymium bromide; bis(N,N-didecylamido)neodymium iodide; bis(N-benzyl-N-propylamido)neodymium fluoride ; bis(N-benzyl-N-propylamido)neodymium chloride; bis(N-benzyl-N-propylamido)neodymium bromide ; bis(N-benzyl-N-propylamido)neodymium iodide; bis(N-benzyl-N-methylamido)neodymium fluoride ; bis(N-benzyl-N-methylamido)neodymium chloride; bis(N-benzyl-N-methylamido)neodymium bromide; bis(N-benzyl-N-methylamido)neodymium iodide; bis(N-benzyl-tert.-butylamido)neodymium fluoride; bis(N-benzyl-tert.-butylamido)neodymium chloride ; bis(N-benzyl-tert.-butylamido)neodymium bromide; bis(N-benzyl-tert.-butylamido)neodymium iodide; bis(N-benzyl-N-butylamido)neodymium fluoride; bis(N-benzyl-N-butylamido)neodymium chloride; bis(N-benzyl-N-butylamido)neodymium bromide; bis(N-benzyl-N-butylamido)neodymium iodide; bis(N-benzyl-N-iso-butylamido)neodymium fluoride; bis(N-benzyl-N-iso-butylamido)neodymium chloride; bis(N-benzyl-N-iso-butylamido)neodymium bromide; bis(N-benzyl-N-iso-butylamido)neodymium iodide; bis(N-cyclohexyl-N-propylamido)neodymium fluoride; bis(N-cyclohexyl-N-propylamido)neodymium chloride; bis(N-cyclohexyl-N-propylamido)neodymium bromide; bis(N-cyclohexyl-N-propylamido)neodymium iodide; bis(N-cyclohexyl-N-methylamido)neodymium fluoride ; bis(N-cyclohexyl-N-methylamido)neodymium chloride; bis(N-cyclohexyl-N-methylamido)neodymium bromide; bis(N-cyclohexyl-N-methylamido)neodymium iodide; bis(N-cyclohexyl-N-t-butylamido)neodymium fluoride; bis(N-cyclohexyl-N-t-butylamido)neodymium chloride; bis(N-cyclohexyl-N-t-butylamido)neodymium bromide; bis(N-cyclohexyl-N-t-butylamido)neodymium iodide; bis(N-cyclohexyl-N-butylamido)neodymium fluoride; bis(N-cyclohexyl-N-butylamido)neodymium chloride; bis(N-cyclohexyl-N-butylamido)neodymium bromide; bis(N-cyclohexyl-N-butylamido)neodymium iodide; bis(N-cyclohexyl-N-iso-butylamido)neodymium fluoride; bis(N-cyclohexyl-N-iso-butylamido)neodymium chloride; bis(N-cyclohexyl-N-iso-butylamido)neodymium bromide; bis(N-cyclohexyl-N-iso-butylamido)neodymium iodide; bis(N-phenyl-N-benzylamido)neodymium fluoride; bis(N-phenyl-N-benzylamido)neodymium chloride; bis(N-phenyl-N-benzylamido)neodymium bromide; bis(N-phenyl-N-benzylamido)neodymium iodide; bis N-pyrrolylamido)neodymium fluoride; bis(N-pyrrolylamido)neodymium chloride; bis(N-pyrrolylamido)neodymium bromide; bis(N-pyrrolylamido)neodymium iodide; bis(N-piperidino)neodymium fluoride; bis(N-piperidino)neodymium chloride; bis(N-piperidino)neodymium bromide; bis(N-piperidino)neodymium iodide; bis(N,N-bis(dimethyl-tert.butyl-silyl)amido)neodymium fluoride; bis(N,N-bis(dimethyl-tert.butyl-silyl)amido)neodymium chloride; bis(N,N-bis(dimethyl-tert.butyl-silyl)amido)neodymium bromide; bis(N,N-bis(dimethyl-tert.butyl-silyl)amido)neodymium iodide; bis(N,N-bis(dimethyl-benzyl-silyl)amido)neodymium fluoride; bis(N,N-bis(dimethyl-benzyl-silyl)amido)neodymium chloride; bis N,N-bis(dimethyl-benzyl-silyl)amido)neodymium bromide; bis(N,N-bis(dimethyl-benzyl-silyl)amido)neodymium iodide.
0139The skilled artisan will recognize that additional members of the foregoing list will include the corresponding Lewis base adducts and Group 1 metal halide adducts thereof.
0140Especially preferred metal complexes according to the present invention corresponding to one of the formulas Vila, Vllb or Vile ( formulas see above) are those wherein
0141R<sup>1</sup>, R<sup>2</sup>, R<sup>3</sup>, R<sup>4</sup>,R<sup>5</sup>, R<sup>6</sup> are hydrocarbyl, especially alkyl, cyclic alkyl, aryl, alkaryl, more especially methyl, ethyl, 1-methylethyl, 1,1-dimethylethyl, cyclohexyl, phenyl, 2,6- dialkylphenyl, benzyl, trimethylsilyl and hydrocarbylsilyl;
0142D independently each occurrence is selected from carbon monoxide; phosphines,
0143PR<sup>X</sup>3, and phosphites, P(OR<sup>1</sup>)3, wherein R<sup>1</sup> independently each occurrence is hydrocarbyl, silyl, especially trimethylphosphine, triethylphosphine, tributylphosphine, triphenylphosphine and 1 ,2-bis(dimethylphosphino)ethane, 1 ,2-bis(diphenylphosphino)ethane, bis(diphenylphosphino)methane, 1 ,3-bis(diphenylphosphino)propane, trimethylphosphite, triethylphosphite, tributylphosphite, iriphenylphosphite; thioethers, especially dimethylthioether, methylphenylthioether, diethylthioether; ethers and polyethers, especially tetrahydrofuran (THF), diethylether (Et2θ), dioxane, 1 ,2-dimethoxyethane (DME); amines and polyamines, especially pyridine, bipyridine, pyrrolidine, piperidine, tetramethylethylenediamine (TMEDA) and triethylamine (TEA); olefins, especially ethylene, propylene, butene, hexene, octene, styrene, divinylbenzene; conjugated dienes having from 4 to 40 carbon atoms, especially butadiene, isoprene, 1,3-pentadiene, 2,4-hexadiene; alcohols, especially methanol, ethanol, propanol, butanol; nitriles, especially acetonitrile, acrylonitrile, propanenitrile, benzonitrile; esters, especially methyl acetate, ethyl acetate, butyl acetate, methyl acrylate, methyl methacrylate, methyl benzoate;
0144X independently each occurrence are anionic ligand groups having up to 60 atoms, provided however that in no occurrence is X an amide group, a phosphide group, a cyclic, delocalized, aromatic group that is π-bonded to M or a allylic delocalized group that is π- bonded to M; especially X<sup>1</sup> groups are fluoride, chloride, bromide or iodide, or a hydrocarbyl group, a hydrocarbylsilyl group, a halo-substituted hydrocarbyl group, or an— OR group, wherein R independently each occurrence is a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, acyl- substituted hydrocarbyl, arylcarbonyl- substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, hydrocarbylsilyl- substituted hydrocarbyl, acyl or arylcarbonyl, and preferred groups are fluoride, chloride, bromide or iodide;
0145X<sup>2</sup> independently each occurrence are anionic ligand groups having up to 60 atoms, provided however that in no occurrence is X<sup>2</sup> a cyclic, delocalized, aromatic group that is π- bonded to M or a allylic delocalized group that is π-bonded to M; especially X groups are a hydrocarbyl group, a hydrocarbylsilyl group, a halo-substituted hydrocarbyl group, a silyl group, or an -OR group, wherein R independently each occurrence is hydrogen or a group having from 1 to 80 atoms not counting hydrogen, which is hydrocarbyl, hydrocarbylsilyl, halo-substituted hydrocarbyl, hydrocarbyloxy-substituted hydrocarbyl, acyl- substituted hydrocarbyl, arylcarbonyl-substituted hydrocarbyl, hydrocarbylamino-substituted hydrocarbyl, hydrocarbylsilyl-substituted hydrocarbyl, acyl or arylcarbonyl, and preferred groups are alkyl or aryl; i, ii independently each occurrence are as defined above, or are preferably the numbers 0, 1, 2, or 3; and preferably the sum of i and ii represents one of the numbers 1, 2, 3 or 4 and thus must not be zero (i + ii ≠ 0); and M<sup>n</sup>, T, Y, k, s, p, o, y and t are as previously defined; comprising contacting one equivalent of a compound according to formula VIII (see above) with more than 0.3 and less than 4 equivalents of one of the compounds corresponding to formula IXa, IXb or LXc (see above).
0146More especially preferred metal complexes according to the present invention correspond to one of the formulae Vlld, Vile or Vllf:
0147<img file="WO2004076504A2_D0022.tif" />
0148Formula Vlld
0149<img file="WO2004076504A2_D0023.tif" />
0150Formula Vile
0151<img file="WO2004076504A2_D0024.tif" />
0152Formula Vllf wherein M<sup>1</sup> , R<sup>1</sup>, R<sup>2</sup>, R<sup>3</sup>, R<sup>4</sup>, R<sup>5</sup>, R<sup>6</sup> , R<sup>7</sup>, R<sup>8</sup>, R<sup>9</sup>, R<sup>10</sup>, M<sup>π</sup>, X<sup>1</sup>, X<sup>2</sup>, Y, D, k, s, p, o, y, i, ii and t are as previously defined; and the formula weight of the metal complex preferably is lower than 10,000 g/mol; comprising contacting one equivalent of a compound according to the formula VIII (see above) with more than 0.5 and less than 3 equivalents of one of the compounds according to the formulas IXd/e or IXf (see above) in a solvent.
0153Preferably, M<sup>1</sup> comprises a lanthanide metal; even more preferably lanthanum, cerium, praseodymium, neodymium, promethium;
0154Preferably, M° comprises a lithium, sodium, potassium or magnesium atom; even more preferably lithium, sodium and potassium; and
0155Preferably, D comprises tetrahydrofuran (THF), diethylether (Et2O), dioxane, 1,2- dimethoxyethane (DME).
0156Even more especially preferred metal complexes according to the present invention are metal complexes corresponding to one of the formulas Vllg, Vllh or Vlli:
0157<img file="WO2004076504A2_D0025.tif" />
0158Formula Vllg
0159<img file="WO2004076504A2_D0026.tif" />
0160Formula Vllh <img file="WO2004076504A2_D0027.tif" /> Formula Vlli
0161resulting from the reaction of one equivalent of a lanthanide compound corresponding to formula VIII (see above) with one of the compounds corresponding to formula IXd/e or IXf (see above) wherein
0162R<sup>1</sup>, R<sup>2</sup>, R<sup>3</sup>, R<sup>4</sup>, R<sup>5</sup>, R<sup>6</sup>, R<sup>7</sup>, R<sup>8</sup>, R<sup>9</sup>, R<sup>10</sup> and X<sup>2</sup> are alkyl, cyclic alkyl, aryl, alkaryl, more especially methyl, ethyl, 1-methylethyl, 1,1-dimethylethyl, cyclohexyl, phenyl, 2,6- dialkylphenyl, benzyl, trimethylsilyl and benzyl(dimethyl)silyl, t-butyl(dimethyl)silyl, n- butyl(dimethyl)silyl; and
0163M<sup>1</sup> is lanthanum, cerium, praseodymium, neodymium, promethium; preferably M<sup>1</sup> is neodymium;
0164N is nitrogen;
0165M<sup>π</sup> is lithium, sodium or potassium;
0166X<sup>1</sup> is fluoride, chloride, bromide or iodide;
0167X<sup>2</sup> is are hydrocarbyl, especially alkyl, cyclic alkyl, aryl, alkaryl, more especially methyl, ethyl, 1-methylethyl, 1,1-dimethylethyl, cyclohexyl, phenyl, 2,6-dialkylphenyl, benzyl, trimethylsilyl and hydrocarbylsilyl
0168D is THF, DME or Et2O; t is the number 0, 1, 2, 3, 4, 5 or 6; s is the number 0; 1 or 2; o is the number 1 or 2; k is the number 0, 1 , 2, 3 or 4; i, ii are the numbers 0, 1 or 2; and preferably the sum of i and ii represents one of the numbers 1 , 2 or 3 and thus may not be zero (i + ii ≠ 0); and the formula weight of the metal complex preferably is lower than 6,000 g/mol.
0169Preferably the metal complex does not contain hapto 5 bond ligands such as, but not limited to, cyclopentadienyl, indenyl or fluorenyl ligands.
0170In general, the complexes can be prepared by contacting a Group 3, Group 4 or Group 5 metal, lanthanide or actinide compound corresponding to the formula M^X<sup>1</sup>^ * t D (formula VIII) with one of the compounds corresponding to formula IX, IXa, IXb, IXc, IXd/e or IXf, or a Lewis base adduct thereof, wherein M<sup>1</sup>, M<sup>π</sup>, T, R<sup>1</sup>, R<sup>2</sup>, R<sup>3</sup>,R<sup>5</sup>, R<sup>6</sup>, R<sup>7</sup>, R<sup>8</sup>, R<sup>9</sup>, R<sup>10</sup>, Y, P, D, X, X<sup>1</sup>, X<sup>2</sup>, n, m, i, ii, s, p, o, y, k and t are as previously defined; and the molar ratio of the Group 3, Group 4 or Group 5 metal, lanthanide or actinide compound (formula VIII) to the compound corresponding to one of the formula LX, IXa, IXb, IXc, IXd e or IXf being from 1:0.1 to 1:5.0, preferably from 1:0.3 to 1:3.0, more preferably from 1:0.5 to 1:2.7 and most preferably from 1 :0.8 to 1 :2.5; in a suitable noninterferring solvent or reaction medium at a temperature from -100°C to 300°C, preferably from -78°C to 150°C, most preferably from -20°C to 125°C.
0171By noninterferring is meant that the solvent does not prevent formation of metal complex according to formula VII, Vila, Vllb, VTIc, Vlld, Vile, Vllf, Vllg, Vllh or Vlli. Suitable reaction media for the formation of the complexes are aliphatic and aromatic hydrocarbons and halohydrocarbons, ethers, amines, alcohols, amides, nitriles and esters. Examples include straight and branched-chain hydrocarbons such as isobutane, butane, pentane, hexane, heptane, octane, and mixtures thereof, cyclic and alicyclic hydrocarbons such as cyclohexane, cycloheptane, methylcyclohexane, methylcycloheptane, and mixtures thereof; chlorinated-, fluorinated- or chlorofluorinated hydrocarbons such as chloroform, dichloromethane, chlorobenzene, dichlorobenzene, and perfluorinated C4. 0 alkanes; aromatic and hydrocarbyl-substituted aromatic compounds such as benzene, toluene, xylene, and styrene; alkyl ethers having from 1 to 4 carbons in each alkyl group such as diethyl ether, THF and dioxane; Ci .4 dialkyl ether derivatives of (poly)alkylene glycols, such as DME; aromatic or aliphatic amines such as tetramethylethylenediamine (TMEDA) and triethylamine (TEA); dimethylformamide (DMF) and dimethylacetamide (DMA); nitriles, especially acetonitrile, propanenitrile, benzonitrile; esters, especially methyl acetate, ethyl acetate and butyl acetate. Mixtures of the foregoing are also suitable. Preferred solvents include diethylether, toluene, DME and THF.
0172The recovery procedure usually involves a separation of the product from the reaction medium and/or any possible byproducts and/or unreacted starting materials. The solvents and other volatile components are advantageously removed via devolatilization of the reaction medium. Extraction into a secondary solvent may be employed if desired. If extraction is employed unpolar aliphatic, aromatic or chlorinated solvents can be used such as but not limited to pentane, hexane, octane, cycohexane, benzene, toluene, chloroform or dichloromethane and mixtures thereof. Alternatively, if the desired product is an insoluble precipitate, filtration or other separation technique may be employed.
0173Exemplary, but non-limiting, examples for Group 3 metal, lanthanide or actinide compound according to formula VIII according to the invention include the following neodymium compounds: Neodymium tribromide; neodymium trichloride; neodymium triiodide; neodymium trifluoride, neodymium chloride dibromide; neodymium bromide dichloride; neodymium fluoride dibromide; neodymium bromide difluoride; neodymium fluoride dichloride; and neodymium chloride difluoride.
0174The skilled artisan will recognize that additional members of the foregoing list will include the corresponding Lewis base adducts thereof.
0175In general, the complexes described above can be prepared by contacting a Group 3 metal, lanthanide or actinide compound corresponding to Formula II (see above) with Group 1 or 2 compound(s), or a Lewis base adduct thereof, corresponding to Formula Ilia or Illb (see above), the molar ratio of the Group 3 metal, lanthanide or actinide compound (Formula II) to the Group 1 compound (Formula Ilia or Illb) being from 1 : 0.1 to 1 : 2.8, preferably from 1 : 0.5 to 1 : 2.5, more preferably from 1 : 1.1 to 1 : 2.5 and most preferably from 1 : 1.5 to 1 : 2.5; and the molar ratio of the Group 3 metal, lanthanide or actinide compound (Formula II) to the Group 2 compound (Formula Ilia or Illb) being from 1 : 0.05 to 1 : 1.4, preferably from 1 : 0.25 to 1 : 1.25, more preferably from 1 : 0.6 to 1 : 1.25 and most preferably from 1 : 0.75 to 1 : 1.25, in a suitable noninterfering solvent or reaction medium at a temperature from -100°C to 300°C, preferably from -78°C to 150°C, most preferably from 0°C to 125°C.
0176By noninterfering is meant that the solvent does not prevent formation of the metal complex according to Formulae la, lb, IVa, IVb, Va, Vb, Via or VIb. Suitable reaction media for the formation of the complexes are aliphatic and aromatic hydrocarbons and halohydrocarbons, ethers, amines, alcohols, amides, nitriles and esters. Examples include straight and branched-chain hydrocarbons such as isobutane, butane, pentane, hexane, heptane, octane, and mixtures thereof, cyclic and alicyclic hydrocarbons such as cyclohexane, cycloheptane, methylcyclohexane, methylcycloheptane, and mixtures thereof; chlorinated-, fluorinated- or chlorofluorinated hydrocarbons such as chloroform, dichloromethane, chlorobenzene, dichlorobenzene, and perfluorinated C4.10 alkanes; aromatic and hydrocarbyl-substituted aromatic compounds such as benzene, toluene, xylene, and styrene; alkyl ethers having from 1 to 4 carbons in each alkyl group such as diethyl ether, THF and dioxane; Cμ4 dialkyl ether derivatives of (poly)alkylene glycols, such as DME; aromatic or aliphatic amines such as tetramethylethylenediamine (TMEDA) and triethylamine (TEA); dimethylformamide (DMF) and dimethylacetamide (DMA); nitriles, especially acetonitrile, propanenitrile, benzonitrile; esters, especially methyl acetate, ethyl acetate and butyl acetate. Mixtures of the foregoing are also suitable. Preferred solvents include diethylether, toluene, DME and THF.
0177The recovery procedure usually involves a separation of the product from the reaction medium and/or any possible byproducts and/or unreacted starting materials. The solvents and other volatile components are advantageously removed via devolatilization of the reaction medium. Extraction into a secondary solvent maybe employed if desired. If extraction is employed, nonpolar aliphatic, aromatic or chlorinated solvents can be used such as but not limited to pentane, hexane, octane, cyclohexane, benzene, toluene, chloroform or dichloromethane and mixtures thereof. Alternatively, if the desired product is an insoluble precipitate, filtration or other separation technique may be employed.
0178Exemplary, but non-limiting examples for Group 3 metal, lanthanide or actinide compound according to Formula II according to the invention include the following neodymium compounds: Neodymium tribromide; neodymium trichloride; neodymium triiodide; neodymium trifluoride, neodymium chloride dibromide; neodymium bromide dichloride; neodymium fluoride dibromide; neodymium bromide difluoride; neodymium fluoride dichloride; and neodymium chloride difluoride.
0179The skilled artisan will recognize that additional members of the foregoing list will include the corresponding Lewis base adducts thereof.
0180Exemplary, but non-limiting examples for Group 1 or 2 compound(s) according to formula Ilia, Illb, IIIc or Hid according to the invention include the following compounds:
0181Lithium [(N,N-diisopropylamide)]; sodium [(N,N-diisopropylamide)]; potassium [(N,N-diisopropylamide)] ; magnesium [(N,N-diisopropylamide)] ; lithium [(N,N-dipropylamide)]; sodium [(N,N-dipropylamide)]; potassium [(N,N-dipropylamide)]; magnesium [(N,N-dipropylamide)]; lithium [(N,N-diethylamide)]; sodium [(N,N-diethylamide)]; potassium [(N,N-diethylamide)]; magnesium [(N,N-diethylamide)]; lithium [(N-ethyl-N-methylamide)]; sodium [(N-ethyl-N-methylamide)]; potassium [(N-ethyl-N-methylamide)] ; magnesium [(N-ethyl-N-methylamide)] ; lithium [(N,N-dimethylamide)]; sodium [(N,N-dimethylamide)]; potassium [(N,N-dimethylamide)]; magnesium [(N,N-dimethylamide)]; lithium [(N,N-dimethylamide)]; sodium [(N,N-dimethylamide)]; potassium [(N,N-dimethylamide)]; magnesium [(N,N-dimethylamide)]; lithium [(N,N-diisobutylamide)]; sodium [(N,N-diisobutylamide)]; potassium [(N,N-diisobutylamide)]; magnesium [(N,N-diisobutylamide)]; lithium [(N,N-dibutylamide)]; sodium [(N,N-dibutylamide)]; potassium [(N,N-dibutylamide)]; magnesium [(N,N-dibutylamide)]; lithium [(N-methyl-N-propylamide) ]; sodium [(N-methyl-N-propylamide)] ; potassium [(N-methyl-N-propylamide)] ; magnesium [(N-methyl-N-propylamide)] ; lithium [(N-methyl-N-butylamide)] ; sodium [(N-methyl-N-butylamide)] ; potassium [(N-methyl-N-butylamide)] ; magnesium [(N-methyl-N-butylamide)] ; lithium [(N-methyl-N-isobutylamide)] ; sodium [(N-methyl-N-isobutylamide)] ; potassium [(N-methyl-N-isobutylamide)] ; magnesium [(N-methyl-N-isobutylamide)] ; lithium [(N-methyl-N-tert.-butylamide)] ; sodium [(N-methyl-N-tert.-butylamide)] ; potassium [(N-methyl-N-tert.-butylamide)] ; magnesium [(N-methyl-N-tert.-butylamide)] ; lithium [(N-ethyl-N-butylamide)] ; sodium [(N-ethyl-N-butylamide)]; potassium [(N-ethyl-N-butylamide)] ; magnesium [(N-ethyl-N-butylamide)] ; lithium [(N-propyl-N-butylamide)]; sodium [(N-propyl-N-butylamide)]; potassium [(N-propyl-N-butylamide)] ; magnesium [(N-propyl-N-butylamide)] ; lithium [(N,N-dipentylamide)]; sodium [(N,N-dipentylamide)]; potassium [(N,N-dipentylamide)]; magnesium [(N,N-dipentylamide)]; lithium [(N,N-dihexylamide)]; sodium [(N,N-dihexylamide)]; potassium [(N,N-dihexylamide)]; magnesium [(N,N-dihexylamide)]; lithium [(N,N-dioctylamide)]; sodium [(N,N-dioctylamide)]; potassium [(N,N-dioctylamide)]; magnesium [(N,N-dioctylamide)]; lithium [(N,N-didecylamide)]; sodium [(N,N-didecylamide)]; potassium [(N,N-didecylamide)]; magnesium [(N,N-didecylamide)]; lithium [(N-benzyl-N-propylamide)] ; sodium [(N-benzyl-N-propylamide)]; potassium [(N-benzyl-N-propylamide)] ; magnesium [(N-benzyl-N-propylamide)] ; lithium [(N-benzyl-N-methylamide)] ; sodium [(N-benzyl-N-methylamide)]; potassium [(N-benzyl-N-methylamide)] ; magnesium [(N-benzyl-N-methylamide)] ; lithium [(N-benzyl-N-butylamide)]; sodium [(N-benzyl-N-butylamide)]; potassium [(N-benzyl-N-butylamide)] ; magnesium [(N-benzyl-N-butylamide)] ; lithium [(N-benzyl-N-s-butylamide)] ; sodium [(N-benzyl-N-s-butylamide)]; potassium [(N-benzyl-N-s-butylamide)] ; magnesium [(N-benzyl-N-s-butylamide)] ; lithium [(N-benzyl-N-iso-butylamide)] ; sodium [(N-benzyl-N-iso-butylamide)] ; potassium [(N-benzyl-N-iso-butylamide)] ; magnesium [(N-benzyl-N-iso-butylamide)] ; lithium [(N-cyclohexyl-N-propylamide)] ; sodium [(N-cyclohexyl-N-propylamide)] ; potassium [(N-cyclohexyl-N-propylamide)] ; magnesium [(N-cyclohexyl-N-propylamide)] ; lithium [(N-cyclohexyl-N-methylamide)]; sodium [(N-cyclohexyl-N-methylamide)] ; potassium [(N-cyclohexyl-N-methylamide)] ; magnesium [(N-cyclohexyl-N-methylamide)] ; lithium [(N-cyclohexyl-N-tert.-butylamide)] ; sodium [(N-cyclohexyl-N-tert.-butylamide)] ; potassium [(N-cyclohexyl-N-tert.-butylamide)] ; magnesium [(N-cyclohexyl-N-tert.-butylamide)] ; lithium [(N,N-diphenylamide)]; sodium [(N,N-diphenylamide)]; potassium [(N,N-diphenylamide)] ; magnesium [(N,N-diphenylamide)]; lithium [(N,N-phenylbenzylamide)] ; sodium [(N,N-phenylbenzylamide)]; potassium [(N,N-phenylbenzylamide)]; magnesium [(N,N-phenylbenzylamide)] ; lithium [(N-pyrrolylamide)]; sodium [(N-pyrrolylamide)]; potassium [(N-pyrrolylamide)]; magnesium [(N-pyrrolylamide)]; lithium [(N-piperidylamide)]; sodium [(N-piperidylamide)]; potassium [(N-piperidylamide]; magnesium [(N-piperidylamide]; lithium [N,N-bis(trimethylsilyl)amide)] ; sodium [N,N-bis(trimethylsilyl)amide)] ; potassium [N,N-bis(trimethylsilyl)amide] ; magnesium [N,N-bis(trimethylsilyl)amide] ; lithium [N,N-bis(dimethyl-tert.butyl-silyl)amide)] ; sodium [N,N-bis(dimethyl-tert.butyl-silyl)amide)] ; potassium [N,N-bis(dimethyl-tert.butyl-silyl)amide] ; magnesium [N,N-bis(dimethyl-tert.butyl-silyl)amide] ; lithium [N,N-bis(dimethyl-benzyl-silyl)amide)] ; sodium [N,N-bis(dimethyl-benzyl-silyl)amide)] ; potassium [N,N-bis(dimethyl-benzyl-silyl)amide] . magnesium [N,N-bis(dimethyl-benzyl-silyl)amide] .
0182The skilled artisan will recognize that additional members of the foregoing list will include the corresponding Lewis base adducts and group 1 metal halide adducts thereof.
0183The catalyst compositions which are useful in the polymerization of ethylenically unsaturated addition polymerizable monomers or in the copolymerization of ethylenically unsaturated addition polymerizable monomers with at least one different type of ethylenically unsaturated addition polymerizable monomer, preferably catalyst compositions which are useful in the polymerization of conjugated ethylenically unsaturated addition polymerizable monomers or in the copolymerization of conjugated ethylenically unsaturated addition polymerizable monomers with at least one different type of ethylenically unsaturated addition polymerizable monomer, according to the invention comprise L) a comomation oi one or more of the above metal complexes and one or more activators (cocatalyst) and optionally a support or
01842) the reaction product formed by contacting one or more of the above metal complexes with one or more activators and optionally a support or
01853) the product formed by subjecting one or more of the above mentioned metal complexes and optionally a support to activating techniques.
0186The catalyst compositions are formed by rendering the metal complexes catalytically active in a process 1) contacting one or more of the above metal complexes with one or more activators and optionally a support or 2) by subjecting one or more of the above metal complexes to activating techniques optionally in the presence of a support.
0187The process for the activation of the metal complexes with an activator or cocatalyst or by an activating technique can be performed during a separate reaction step optionally including an isolation of the activated compound or preferably can be performed in situ in the polymerization reactor or just prior to it in an aging reactor, for example. The activation is preferably performed in situ if, after the activation of the metal complex, separation and/or purification of the activated complex is not necessary. The process for the activation of the metal complexes is carried out in a suitable noninterfering solvent or reaction medium at a temperature from -78°C to 250°C, preferably from -5°C to 160°C, more preferably from 10°C to 110°C. Suitable reaction media for the formation of the catalysts compositions are aliphatic and aromatic hydrocarbons and halohydrocarbons. Examples include straight and branched- chain hydrocarbons such as isobutane, butane, pentane, hexane, heptane, octane, and mixtures thereof, cyclic and alicyclic hydrocarbons such as cyclohexane, cycloheptane, methylcyclohexane, methylcycloheptane, and mixtures thereof; chlorinated-, fluorinated- or chlorofluorinated hydrocarbons such as chloroform, dichloromethane, chlorobenzene, dichlorobenzene, and perfluorinated C^.I Q alkanes; aromatic and hydrocarbyl-substituted aromatic compounds such as benzene, toluene, xylene, and styrene. Advantageously, the reaction medium used for the activation is the same reaction medium as is used in the subsequent polymerization, obviating the need to use a secondary solvent system. In addition to the reaction media mentioned above, this includes heptane or mineral oil fractions such as light or regular petrol, naphtha, kerosine or gas oil and other low-priced aliphatic hydrocarbons or mixtures thereof, as marketed by the petrochemical industry as solvent. An advantage of the invention is that the metal complex catalyst precursors according to the invention can be stored at room temperature or even at elevated temperatures such as, for example, but not limited to, 50°C, in the solid state for extended periods of time. In addition, solutions of the catalyst in suitable solvents also can be stored at room temperature at least for hours. This greatly increases the flexibility of production in an industrial plant. A further advantage of the invention is that the catalysts of the invention usually do not require a separate aging step (see Run 1-11, 13, 16, 18) and if it is desirable to employ an optional aging step, it advantageously does not require long aging times (see Run 12, 17). Therefore, it is possible to start the polymerization reaction just by adding the catalyst components in the desired order into the polymerization reactor. The polymerization can be started for example either by addition of the metal complex as the last component (see for example Runs 2, 3 and 5) or by the addition of the conjugated diene as the last component. If an optional aging step is incorporated into the catalyst preparation polymerization procedure, the aging time is short, such as less than 60 minutes, preferably less than 40 minutes, more preferably less than 30 min, even more preferably less than 10 min, or even shorter than that and can be performed in a broad temperature range, such as, but not limited to, 0°C to 150°C with high catalyst activity. The temperature ranges of the catalyst preparation, catalyst aging and polymerization are independently selected and are between— 50°C and +250°C, preferably between —5 and +160°C, more preferably between 10 °C and 110 °C. For example, the catalyst activity of polymerization Run 8 (polymerization temperature 70°C), amounts to 17,0 kg of polybutadiene per mmol neodymium per hour depending on the polymer conversion ([kg {polymer} /mmol {Nd}[hr]]. In another example, the catalyst activity of polymerization Run 17 (polymerization temperature 80°C), amounts to 529,1 g of polybutadiene per mmol neodymium per hour ([kg {polymer} /mmol {Nd} [hr]]). It is beneficial that the polymerization reaction can be induced without substantial waiting period (delay) upon addition of the last catalyst component into the polymerization reactor.
0188Suitable activating cocatalysts for use herein include:
01891) neutral Lewis acids, especially a) organo Group 13 compounds, especially i) CL_3Ø organoboron or organoaluminum compounds more especially (hydrocarbyl)aluminum- or (hydrocarbyl)boron compounds, even more especially triaryl and trialkyl aluminum compounds, such as triethyl aluminum, triisobutyl aluminum, trioctylaluminum; alkyl aluminum hydrides, such as diisobutylaluminum hydride; alkylalkoxy aluminum compounds, such as dibutylethoxyaluminum; halogenated aluminum compounds, such as diethylalummum chloride, ethylaluminum dichloride, diisobutylaluminum chloride, ethyl(octyl)aluminum chloride, ethylaluminum sesquichloride, ethyl(cyclohexyl)aluminum chloride, dicyclohexylaluminum chloride, dioctylaluminum chloride, and ii) organohalogenated (including perhalogenated) derivatives of organo Group 13 compounds, especially halogenated C]_3ø organoboron or organoaluminum compounds, more especially halogenated (hydrocarbyl)aluminum- or (hydrocarbyl)boron compounds, more especially fluorinated or perfluorinated tri(aryl)boron or —aluminum compounds, such as tris(ρentafluorophenyl)boron, tris(pentafluorophenyl)aluminum, tris(o- nonafluorobiphenyljboron, tris(o-nonafluorobipheiiyl)aluminum, tris[3,5- bis(trifluoromethyl)phenyl]boron, tris[3,5-bis(trifluoromethyl)phenyl]aluminum; or b) polymeric or oligomeric alumoxanes, especially methylalumoxane (MAO), triisobutyl aluminum-modified methylalumoxane (MMAO), or isobutylalumoxane; or
01902) nonpolymeric, compatible, noncoordinating, ion-forming compounds (including the use of such compounds under oxidizing conditions), especially the use of ammonium-, phosphonium-, oxonium-, carbonium-, silylium-, sulfonium-, or ferrocenium- salts of compatible, noncoordinating anions; and combinations of the foregoing activating compounds. The foregoing activating cocatalysts have been previously taught with respect to different metal complexes in the following references: U.S. Pat. Nos. 5,132,380, 5,153,157, 5,064,802, 5,321,106, 5,721,185, 5,350,723, and WO-97/04234, equivalent to U.S. Ser. No. 08/818,530, filed Mar. 14, 1997.
0191Suitable activators for use herein include hydrocarbyl sodium, hydrocarbyl lithium, hydrocarbyl zinc, hydrocarbyl magnesium halide, dihydrocarbyl magnesium, especially alkyl sodium, alkyl lithium, alkyl zinc, alkyl magnesium halide, dialkyl magnesium, such as n- octylsodium, butyllithium, neopentyllithium, methyllithium, ethyllithium, phenyllithium, diethylzinc, dibutylzinc, butylmagnesium chloride, ethylmagnesium chloride, octylmagnesium chloride, dibutylmagnesium, dioctylmagnesium, butyl(octyl)magnesium.
0192Especially desirable activating cocatalysts for use herein are combinations of neutral optional Lewis acids, especially the combination of a trialkyl aluminum compound having from 1 to 4 carbons in each alkyl group with one or more CL_30 hydrocarbyl-substituted
0193Group 13 Lewis acid compounds, especially halogenated tri(hydrocarbyl)boron or —aluminum compounds having from 1 to 20 carbons in each hydrocarbyl group, especially tris(pentafluorophenyl)borane or tris(pentafluorophenyl)alumane, further combinations of such neutral Lewis acid mixtures with a polymeric or oligomeric alumoxane, and combinations of a single neutral Lewis acid, especially tris(pentafmorophenyl)borane or tris(pentafluorophenyl)alumane, with a polymeric or oligomeric alumoxane. A benefit according to the present invention is the discovery that the most efficient catalyst activation using such a combination of tris(pentafluorophenyl)borane/ alumoxane mixture occurs at reduced levels ot alumoxane. Preferred molar ratios of the metal complex:tris(pentafluorophenylborane:alumoxane are from 1:1 :1 to 1:5:5, more preferably from 1:1:1.5 to 1:5:3. The surprising efficient use of lower levels of alumoxane with the present invention allows for the production of diene polymers with high catalytic efficiencies using less of the expensive alumoxane activator. Additionally, polymers with lower levels of aluminum residue, and hence greater clarity, are obtained.
0194Suitable ion-forming compounds useful as activators in one embodiment of the present invention comprise a cation which is a Bronsted acid capable of donating a proton, and a compatible, noncoordinating or poorly coordinating anion. As used herein, the term "noncoordinating" means an anion or substance which either does not coordinate to the metal containing precursor complex and the catalytic derivative derived therefrom, or which is only weakly coordinated to such complexes thereby remaining sufficiently labile to be displaced by a Lewis base such as olefin monomer in a manner such that the polymerization may proceed. A noncoordinating anion specifically refers to an anion which when functioning as a charge- balancing anion in a cationic metal complex does not transfer an anionic substituent or fragment thereof to said cation thereby forming neutral complexes. "Compatible anions" are anions which are not degraded to neutrality when the initially formed complex decomposes and are noninterfering with desired subsequent polymerization or other uses of the complex.
0195Preferred anions are those containing a single coordination complex comprising a charge-bearing metal or metalloid core which anion is capable of balancing the charge of the active catalyst species (the metal cation) which may be formed when the two components are combined. Also, said anion should be sufficiently labile to be displaced by olefinic, diolefinic and acetylenically unsaturated compounds or other neutral Lewis bases such as ethers or nitriles. Suitable metals include, but are not limited to, aluminum, gold and platinum. Suitable metalloids include, but are not limited to, boron, phosphorus, and silicon. Compounds containing anions which comprise coordination complexes containing a single metal or metalloid atom are, of course, well known and many, particularly such compounds containing a single boron atom in the anion portion, are available commercially. Preferably such activators may be represented by the following general formula:
0196(L*-H)+<sub>d</sub>Ad- wherein:
0197L* is a neutral Lewis base;
0198(L*-H)<sup>+</sup> is a Bronsted acid;
0199A^" is a noncoordinating, compatible anion having a charge of d-, and d is an integer from I to 3.
0200More preferably A^- corresponds to the formula:
0201[M*Q ]-; wherein:
0202M'<sup>:*</sup> is boron or aluminum in the +3 formal oxidation state; and
0203Q independently each occurrence is selected from hydride, dialkylamido, halide, hydrocarbyl, halohydrocarbyl, halocarbyl, hydrocarbyloxide, hydrocarbyloxy substituted- hydrocarbyl, organometal substituted- hydrocarbyl, organometalloid substituted-hydrocarbyl, halohydrocarbyloxy, halohydrocarbyloxy substituted hydrocarbyl, halocarbyl- substituted hydrocarbyl, and halo- substituted silylhydrocarbyl radicals (including perhalogenated hydrocarbyl-, perhalogenated hydrocarbyloxy- and perhalogenated silythydrocarbyl radicals), said Q having up to 20 carbon atoms with the proviso that in not more than one occurrence is Q halide. Examples of suitable hydrocarbyloxide Q groups are disclosed in U.S. Pat. No. 5,296,433.
0204In a more preferred embodiment, d is one, that is, the counterion has a single negative charge and is A". Activating cocatalysts comprising boron which are particularly useful in the preparation of catalysts of this invention may be represented by the following general formula:
0205(L*-H)+ (BQ<sub>4</sub>)-; wherein:
0206(L*-H)<sup>+</sup> is as previously defined;
0207B is boron in a formal oxidation state of 3; and
0208Q is a hydrocarbyl-, hydrocarbyloxy-, fluormated hydrocarbyl-, fluormated hydrocarbyloxy-, or fluorinated silylhydrocarbyl- group of up to 20 nonhydrogen atoms, with the proviso that in not more than one occasion is Q hydrocarbyl. Most preferably, Q is each occurrence a fluorinated aryl group, especially, a pentafluorophenyl or nonafluorobiphenyl group. Preferred BQ4" anions are methyltris(pentafluorophenyl)borate, tetrakis(pentafluorophenyl)borate or tetrakis(nonafluorobiphenyl)borate.
0209Illustrative, but not limiting, examples of boron compounds which may be used as an activating cocatalyst in the preparation of the improved catalysts of this invention are trisubstiruted ammonium salts such as: trimethylammonium tetraphenylborate, tri(n- butyl)ammonium tetraphenylborate, methyldioctadecylammonium tetraphenylborate, triethylammonium tetraphenylborate, tripropylammonium tetraphenylborate, tri(n- butyl)ammonium tetraphenylborate, methyltetradecyloctadecylammonium tetraphenylborate, N,N-dimethylanilinium tetraphenylborate, N,N-diethylanilinium tetraphenylborate, N,N,- 2,4,6-pentamethylanilinium) tetraphenylborate, N,N-dimethyl anilinium bis(7,8- dicarbundecaborate) cobaltate (III), trimethylammonium tetrakis(pentafluorophenyl)borate, methyldi(tetradecyl)ammonium tetrakis(pentafluorophenyl) borate, methyldi(octadecyl)ammonium tetrakis(pentafluorophenyl) borate, triethylammonium tetrakis(pentafluorophenyl)borate, tripropylammonium tetrakis(pentafluorophenyl)borate, tri(n-butyl)ammonium tetrakis(pentafluorophenyl)borate, tri(sec-butyl)ammonium tetrakis(pentafluorophenyl)borate, N,N-dimethylamlinium tetrakis(pentafluorophenyl)borate, N,N-diethylanilinium tetrakis(pentafluorophenyl)borate, N,N,2,4,6-pentamethylanilinium) tetrakis(pentafluorophenyl)borate, trimethylammonium tetrakis(2,3,4,6- tetrafluorophenyl)borate, triethylammonium tetrakis(2,3,4,6-tetrafluorophenyl)borate, tripropylammonium tetral s(2,3,4,6-tetrafluorophenyl)borate, tri(n-butyl)ammonium tetrakis(2,3,4,6-tetrafluorophenyl) borate, dimethyl(t-butyl) ammonium tetrakis(2,3,4,6- tetrafluorophenyl)borate, N,N-dimethylanilinium tetrakis(2,3,4,6-tetrafluorophenyl) borate, N,N-diethylanilinium tetrakis(2,3,4,6-tetrafluorophenyl) borate, and N,N,2,4,6- pentamethylanilinium) tetrakis-(2,3,4,6- tetrafluorophenyl)borate; dialkyl ammonium salts such as: di(octadecyl)ammonium tetrakis(pentafluorophenyl)borate, di(tetradecyl)ammomum tetrakis(pentafluorophenyl)borate, and dicyclohexylammonium tetrakis(pentafluorophenyl)borate; trisubstituted phosphonium salts such as: triphenylphosphonium tetrakis(pentafluorophenyl)borate, methyldi(octadecyl)phosphonium tetrakis(pentafluorophenyl) borate, and tris(2,6-dimethylphenyl)phosphonium tetrakis(pentafluorophenyl)borate.
0210Preferred are tetrakis(pentafluorophenyl)borate salts of long chain alkyl mono- di- and trisubstituted ammonium complexes, especially C14-C20 alkyl ammonium complexes, especially methyldi(octadecyl) ammonium tetrakis (pentafluorophenyl)borate and methyldi(tetradecyl)ammonium tetrakis(pentafluorophenyl)borate, or mixtures including the same. Such mixtures include protonated ammonium cations derived from amines comprising two C14, Cι 5 or Cι § alkyl groups and one methyl group. Such amines are available from
0211Witco Corp., under the trade name Kemamine™ T9701, and from Akzo-Nobel under the trade name Armeeii™ M2HT.
0212Examples of the most highly preferred catalyst activators herein include the foregoing trihydrocarbylammonium-, especially, methylbis(tetradecyl)ammonium- or methylbis(octadecyl)ammonium- salts of: bis(tris(pentafluorophenyl)borane)imidazolide, bis(tris(pentafluorophenyl)borane)-2- undecylimidazolide, bis(his(pentafluorophenyl)borane)-2-heptadecylimidazolide, bis(tris(pentafluorophenyl)borane)-4,5-bis(undecyl)imidazolide, bis(tris(pentafluorophenyl)borane)-4,5-bis(heptadecyl)imidazolide, bis(tris(pentafluorophenyl)borane)imidazolinide, bis(tris(pentafluorophenyl)borane)-2-undecylimidazolinide, bis(tris(pentafluorophenyl)borane)-2-heptadecylimidazolinide, bis(tris(pentafluorophenyl)borane)-4,5-bis(undecyl)imidazolinide, bis(tris(pentafluorophenyl)borane)-4,5-bis(heptadecyl)imidazolinide, bis(tris(pentafluorophenyl)borane)-5,6-dimethylbenzimidazolide, bis(tris(pentafluorophenyl)borane)-5,6-bis(undecyl)benzimidazolide, bis(tris(pentafluorophenyl)alumane)imidazolide, bis(tris(pentafluorophenyl)alumane)-2-undecylimidazolide, bis(tris(pentafluorophenyl)alumane)-2-heptadecylimidazolide, bis(tris(pentafluorophenyl)alumane)-4,5-bis(undecyl)imidazolide, bis(tris(pentafluorophenyl)alumane)-4,5-bis(heptadecyl)imidazolide, bis(tris(pentafluorophenyl)alumane)imidazolinide, bis(tris(pentafluorophenyl)alumane)-2-undecylimidazolinide, bis(tris(pentafluorophenyl)alumane)-2-heptadecylimidazolinide, bis(tris(pentafluorophenyl)alumane)-4,5-bis(undecyl)imidazolinide, bis(tris(pentafluorophenyl)alumane)-4,5-bis(heptadecyl)imidazolinide, bis(tris(pentafluorophenyl)alumane)-5,6-dimethylbenzimidazolide, and bis(tris(pentafluorophenyl)alumane)-5,6-bis(undecyl)benzimidazolide. The foregoing activating cocatalysts have been previously taught with respect to different metal complexes in the following reference: EP 1 560 752 Al.
0213Another suitable ammonium salt, especially for use in heterogeneous catalyst systems, is formed upon reaction of an organometal compound, especially a tri(Cι _6 alkyl)aluminum compound with an ammonium salt of a hydroxyaryltris(fluoroaryl)borate compound. The resulting compound is an organometaloxyaryltris(fluoroaryl)borate compound which is generally insoluble in aliphatic liquids. Examples of suitable compounds include the reaction product of a tri(Cι _g alkyl)aluminum compound with the ammonium salt of hydroxyaryltris(aryl)borate. Suitable hydroxyaryltris(aryl)borates include the ammonium salts, especially the foregoing long chain alkyl ammonium salts of: (4-dimethylaluminumoxyphenyl)tris(pentafluorophenyl) borate, (4-dimethylaluminumoxy- 3,5-di(trimethylsilyl)phenyl) tris(pentafluorophenyl)borate, (4- dimethylaluminumoxy-3,5- di(t-butyl)phenyl) tris(pentafluorophenyl)borate, (4-dimethylalummumoxybenzyl) tris(pentafluorophenyl) borate, (4-dimethylaluminumoxy-3 -methylphenyl) tris(pentafluorophenyl)borate, (4-dimethylaluminumoxy-tetrafluorophenyl) tris(pentafluorophenyl)borate, (5-dimethylaluminumoxy-2-naphthyl) tris(pentafluorophenyl)borate, 4-(4-dimethylaluminumoxyphenyl) phenyltris(pentafluorophenyl)borate, 4-(2-(4-(dimethylaluminumoxyphenyl)propane-2- yl)phenyloxy) tris(pentafluorophenyl)borate, (4 -diethylaluminumoxyphenyl) tris(pentafluorophenyl) borate, (4-diethylaluminumoxy-3 ,5-di(trimethylsilyl)phenyl) tris(pentafluorophenyl)borate, (4-diethylaluminumoxy-3,5-di(t-butyl)phenyl) tris(pentafluorophenyl)borate, (4-diethylaluminumoxybenzyl) tris(pentafluorophenyl)borate, (4-diethylaluminumoxy-3 -methylphenyl) tris(pentafluorophenyl)borate, (4 - diethyIaluminumoxy-tetrafluorophenyl) tris(pentafluorophenyl)borate, (5- diethylaluminumoxy-2-naphthyl) tris(pentafluorophenyl) borate, 4-(4- diethylaluminumoxyphenyl)phenyl tris(pentafluorophenyl)borate, 4-(2-(4- (diethylaluminumoxyphenyl)propane-2-yl)phenyloxy) tris(pentafluorophenyl)borate, (4- diisopropylaluminumoxyphenyl) tris(pentafluorophenyl)borate, (4-diisopropylaluminumoxy- 3,5-di(trimethylsilyl)phenyl)tris(pentafluorophenyl)borate, (4-diisopropylaluminumoxy-3,5- di(t-butyl)ρhenyl) tris(pentafluorophenyl)borate, (4-diisopropylaluminumoxybenzyI) tris(pentafluorophenyl)borate, (4-diisopropylaluminumoxy-3-methylphenyl) tris(pentafluorophenyl)borate, (4- diisopropylaluminumoxy-tetrafluorophenyl) tris(pentafluorophenyl)borate, (5-diisopropyIaluminumoxy-2-naphthyI) tris(pentafluorophenyl)borate, 4-(4-diisopropylaluminumoxyphenyl)phenyl tris(pentafluorophenyl)borate, and 4-(2-(4-(diisopropylaluminumoxyphenyl)propane-2- yl)phenyloxy) tris(pentafluorophenyl)borate .
0214Especially preferred ammonium compounds are methyldi(tetradecyl)ammonium (4- diethylaluminumoxyphenyl) tris(pentafluorophenyl)borate, methyldi(hexadecyl)ammonium (4-diethylaluminumoxyphenyl) tris(pentafluorophenyl)borate, methyldi(octadecyl)ammonium (4-diethylaluminumoxyphenyl) tris(pentafluorophenyl) borate, and mixtures thereof. The foregoing complexes are disclosed in U.S. Pat. Nos. 5,834,393 and 5,783,512.
0215Another suitable ion-forming, activating cocatalyst comprises a salt of a cationic oxidizing agent and a noncoordinating, compatible anion represented by the formula:
0216(Oχe+)<sub>d</sub>(Ad-)<sub>e</sub>, wherein
0217Ox<sup>e+</sup> is a cationic oxidizing agent having a charge of e+; d is an integer from 1 to 3; e is an integer from 1 to 3; and
0218A"<sup>~</sup> is as previously defined.
0219Examples of cationic oxidizing agents include: ferrocenium, hydrocarbyl-substituted ferrocenium, Pb<sup>+</sup>2 or Ag<sup>+</sup>. Preferred embodiments of A"- are those anions previously defined with respect to the Bronsted acid containing activating cocatalysts, especially tetrakis(pentafluorophenyl)borate.
0220Another suitable ion-forming, activating cocatalyst comprises a compound which is a salt of a carbenium ion and a noncoordinating, compatible anion represented by the formula
0221@<sup>+</sup>A" wherein:
0222@<sup>+</sup> is a Cι _20 carbenium ion; and
0223A" is a noncoordinating, compatible anion having a charge of -1. A preferred carbenium ion is the trityl cation, especially triphenylmethylium.
0224Preferred carbenium salt activating cocatalysts are triphenylmethylium tetrakis(pentafluorophenyl)borate, triphenylmethylium tetrakis(nonafluorobiphenyl)borate, tritolylmethylium tetrakis(pentafluorophenyl)borate and ether substituted adducts thereof.
0225A further suitable ion-forming, activating cocatalyst comprises a compound which is a salt of a silylium ion and a noncoordinating, compatible anion represented by the formula
0226R<sub>3</sub>Si<sup>+</sup>A" wherein:
0227R is Ci _ι o hydrocarbyl; and
0228A~ is as previously defined.
0229Preferred silylium salt activating cocatalysts are trimethylsilylium tetrakis(pentafluorophenyl)borate, trimethylsilylium tetrakis(nonafluorobiphenyl)borate, triethylsilylium tetrakis(pentafluorophenyl)borate and other substituted adducts thereof. Silylium salts have been previously generically disclosed in J. Chem Soc. Chem. Comm., 1993, 383-384, as well as Lambert, J. B., et al., Organometallics, 1994, 13, 2430-2443. The use of the above silylium salts as activating cocatalysts for addition polymerization catalysts is claimed in U.S. Pat. No. 5,625,087. Certain complexes of alcohols, mercaptans, silanols, and oximes with tris(pentafluorophenyl)borane are also effective catalyst activators and may be used according to the present invention. Such activators are disclosed in U.S. Pat. No. 5,296,433.
0230The activating cocatalysts may also be used in combination. An especially preferred combination is a mixture of a tri(hydrocarbyl)aluminum or tri(hydrocarbyl)borane compound having from 1 to 4 carbons in each hydrocarbyl group with an oligomeric or polymeric alumoxane compound.
0231The molar ratio of catalyst/activator employed preferably ranges from 1:10,000 to 10: 1 , more preferably from 1 :5000 to 10: 1 , most preferably from 1 :2500 to 1 : 1. Alumoxane, when used by itself as an activating cocatalyst, is preferably employed in large molar ratio, generally at least 50 times the quantity of metal complex on a molar basis. Tris(pentafluorophenyl)borane, where used as an activating cocatalyst, is preferably employed in a molar ratio to the metal complex of from 0.5 : 1 to 10: 1 , more preferably from 1 : 1 to 6: 1 most preferably from 1:1 to 5:1. The remaining activating cocatalysts are generally preferably employed in approximately equimolar quantity with the metal complex.
0232If the above-mentioned ion-forming compound comprising a compatible non- coordinating or poorly coordinating anion is used as the activator, it is preferable for the metal complex according to the invention to be alkylated (that is, one of the X groups of the metal complex is an alkyl or aryl group). Activators comprising boron are preferred. Most preferred are activators comprising tetrakis(pentafluorophenyl)borate, tris(pentafluorophenyl)borane, tris(o-nonafluorobiρhenyl)borane, tetrakis(3 ,5 - bis(trifluoromethyl)phenyl)borate, tris(pentafluorophenyl)alumane, tris(o-nonafluorobiphenyl)alumane.
0233The molar ratio of the activator relative to the metal center in the metal complex in the case an organometallic compound is selected as the activator, usually is in a range of from 1 : 10 to 10,000: 1 , more preferably from 1 : 10 to 5000: 1 and most preferably in a range of from 1 : 1 to 2,500: 1. If a compound containing or yielding a non-coordinating or poorly coordinating anion is selected as activator, the molar ratio usually is in a range of from 1 : 100 to 1,000:1, and preferably is in range of from 1:2 to 250:1.
0234Especially desirable activating cocatalysts for use herein are combinations of neutral optional Lewis acids, especially the combination of a trialkyl aluminum compound having from 1 to 4 carbons in each alkyl group with one or more C]_30 hydrocarbyl-substituted
0235Group 13 Lewis acid compounds, especially halogenated tetrakis(hydrocarbyl)boron or— aluminum compounds having from 1 to 20 carbons in each hydrocarbyl group, especially tetrakis(pentafluorophenyl)borate, tetrakis(3,5- bis(trifluoromethyl)phenyl)borate, further combinations of a single neutral Lewis acid, especially tetrakis(pentafluorophenyl)borate or tetrakis(3,5- bis(trifluoromethyl)phenyl)borate, with a polymeric or oligomeric alumoxane. A benefit according to the present invention is the discovery that the most efficient catalyst activation using such a combination of tetrakis(ρentafluorophenyl)borane/ alumoxane mixture occurs at reduced levels of alumoxane.
0236Preferred molar ratios of the metal complex : tetrakis(pentafluorophenylborane : alumoxane from 1:1:1 to 1:5:1.000, more preferably from 1 : 1 : 1.5 to 1 :5:500. The surprising efficient use of lower levels of alumoxane with the present invention allows for the production of diene polymers with high catalytic efficiencies using less of the expensive alumoxane activator. Additionally, polymers with lower levels of aluminum residue, and hence greater clarity, are obtained. Preferred molar ratios of the metal complex:tetrakis(pentafluorophenylborane:neutral optional Lewis acids especially trialkyl aluminum or dialkyl aluminum hydride compounds are from 1:1:10 to 1:10:1000, more preferably from 1 : 1 :20 to 1 :5:500. Also in this case polymers are obtained with lower levels of aluminum- residue, and hence greater clarity, are obtained.
0237Especially desirable activating cocatalysts for use herein are neutral optional Lewis acids, especially the combination of a trihydrocarbonyl aluminum compound, more especially trialkyl aluminum compound having from 1 to 5 carbons in each alkyl group with neutral Lewis acids containing at least one metal halide bond, especially perhalogenated metals or transition metals, especially boron trifluoride, boron trichloride, boron tribromide, aluminum trifluoride, aluminum trichloride, aluminum tribromide, scandium trifluoride, titanium tetrafluoride, further combinations of a single neutral Lewis acid, especially boron trifluoride, boron trichloride, boron tribromide, aluminum trifluoride, aluminum trichloride, aluminum tribromide, scandium trifluoride, titanium tetrafluoride, with a polymeric or oligomeric alumoxane in a molar ratio of the metal complex : metal fluoride : alumoxane from 1 : 1 : 1 to 1:5:10.000, more preferably from 1:1:10 to 1:5:5.000; and further combinations of a single neutral Lewis acid, especially boron trifluoride, boron trichloride, boron tribromide, aluminum trifluoride, aluminum trichloride, aluminum tribromide, scandium trifluoride, titanium tetrafluoride, with trialkyl aluminum or dialkyl aluminum hydride compounds in a molar ratio of the metal complex : tetrakis(pentafluorophenylborane : trialkyl aluminum or dialkyl aluminum hydride compound from 1:1:10 to 1:10:1000, more preferably from 1:1:20 to 1:5:500. In addition to the metal complex according to the invention and the activator, the catalyst composition can also contain a small amount of another organometailic compound that is used as a so-called scavenger agent. The scavenger agent is added to react with or passivate activity-decreasing impurities in the reaction mixture. It may be added at any time, but normally is added to the reaction mixture before addition of the metal complex and the activator (cocatalyst). Usually organoaluminum compounds are used as scavenger agents. Examples of suitable scavengers are trioctylaluminum, triethylaluminum, diethylalummum chloride, tri-isobutylaluminum, methylalumoxane or MMAO. The metal complex as well as the activator can be present in the catalyst composition as a single component or as a mixture of several components. For instance, a mixture may be desired where there is a need to influence the molecular properties of the polymer, such as molecular weight distribution.
0238The reaction system optionally contains a solid material, which serves as carrier or support material for the activator component and/or the metal complex. The carrier material can be chosen from one of the following materials: clay, silica, charcoal (activated carbon), graphite, expanded clay, expanded graphite, carbon black, layered silicates, and alumina. Clays and layered silicates include, but are not limited to, magadiite, montmorillonite, hectorite, sepiolite, attapulgite, smectite, and laponite. Supported catalyst systems of the invention may be prepared by several methods. The metal complex and optionally the activator can be combined before the addition of the support material. The mixture may be prepared in conventional solution in a normally liquid alkane or aromatic solvent. The solvent is preferably also suitable for use as a polymerization diluent for the liquid phase polymerization of an olefin monomer. Alternatively, the activator can be placed on the support material followed by the addition of the metal complex or conversely, the metal complex may be applied to the support material followed by the addition of the activator. The supported catalyst maybe prepolymerized. In addition, third components can be added during any stage of the preparation of the supported catalyst. Third components can be defined as compounds containing Lewis acidic or basic functionalities exemplified by, but not limited to, compounds such as N,N-dimethylaniline, tetraethoxysilane, phenyltriethoxysilane, and bis- tert-butylhydroxytoluene (BHT). The catalyst can be supported onto the carrier material using techniques such as the solid-phase immobilization (SPI) technique described by H.C.L. Abbenhuis in Angew. Chem. Int. Ed. 37 (1998) 356-58 and by M. Buisio et al., in Microporous Mater., 5 (1995) 211 and by J.S. Beck et al., in J. Am. Chem. Soc, 114 (1992) 10834, as well as the pore volume impregnation (PVI) technique (see WO 97/24344). The isolation of the impregnated carrier can be done by filtration or by removing the volatile material present (that is, solvent) under reduced pressure or by heating.
0239The support, if present, is preferably employed in an amount to provide a weight ratio of catalyst (based on metal): support from 1:100,000 to 1:10, more preferably from 1:50,000 to 1 :20, and most preferably from 1 : 10,000 to 1 :30. Suitable gas phase reactions may utilize condensation of the monomer or monomers employed in the reaction, or of an inert diluent to remove heat from the reactor.
0240In the polymerization process the catalyst is used in a catalytically effective amount, that is, any amount that successfully results in the formation of polymer. Such amounts may be readily determined by routine experimentation by the worker skilled in the art, but typically the molar ratio of catalys polyrnerizable compounds employed is from 10<sup>~</sup>12:1 to 10<sup>-1</sup>:1, more preferably from 10" 12:1 to 10"3;1.
0241The catalysts may be used to homopolymerize or copolymerize ethylenically unsaturated addition polymerizable monomers preferably conjugated ethylenically unsaturated addition polymerizable monomers having from 2 to 100,000 carbon atoms either alone for homopolymers or in combination with a different type of ethylenically unsaturated addition polymerizable monomers for copolymers. Preferred monomers include α-olefins selected from ethene, propene, 1 -butene, 1-pentene, 1 -hexene, 4-methyl-l-pentene,l -octene, styrene, alpha methylstyrene, divinyl benzene, acrylonitrile, acrylic acid ester, methylmethacrylate, ethylmethacrylate and n-butylmethacrylate and conjugated dienes chosen from the group comprising internal conjugated olefins, cyclic conjugated olefins and non-cyclic conjugated olefins. Preferred conjugated dienes are 1,3 -butadiene, isoprene (2 -methyl- 1,3-butadiene), 2,3-dimethyl-l,3-butadiene, 1,3-pentadiene, 2,4-hexadiene, 1,3-hexadiene, 1 ,4-hexadiene, 1,3- heptadiene, 1,3-octadiene, 2-methyl-2,4-pentadiene, cyclopentadiene, 2,4-hexadiene, 1,3- cyclooctadiene. More preferably butadiene, isoprene and/or cyclopentadiene is used as conjugated diene and ethylene, propene and styrene is used as α-olefin.
0242Especially desirably formed polymers using the catalyst in the polymerization process of the invention are homo-, co- and terpolymers of conjugated dienes, especially butadiene or isoprene, and random or block copolymers of at least one conjugated diene, especially butadiene, with at least one different type of conjugated diene, especially isoprene, or with an α-olefin, especially ethylene, propene and styrene. Especially preferred are homopolymerization of butadiene or isoprene and random or block copolymerization, optionally terpolymerization, of at least one conjugated diene, especially butadiene with at least one different type of conjugated diene, especially isoprene, or with at least one α-olefin, especially styrene. Highly preferred homopolymers comprise butadiene and highly preferred copolymers comprise conjugated dienes chosen from butadiene or isoprene or comprise butadiene and styrene.
0243In general, the homopolymerization of the conjugated diene or the copolymerization of one type the conjugated diene monomers with a second type of monomer, an α-olefin or a conjugated diene monomer may be accomplished at conditions well known in the prior art for Ziegler-Natta or Kaminsky-Sinn type polymerization reactions, such as temperatures from — 50 - 250°C. The polymerization can be effected at atmospheric pressure, at sub-atmospheric pressure, or at elevated pressures of up to, or even higher than 500 MPa, continuously or discontinuously. Preferably, the homo- or copolymerization is performed at pressures between 0.01 and 500 MPa, most preferably between 0.01 and 10 MPa, in particular between 0.1-2 MPa. Higher pressures can be applied. In such a high-pressure process the metal complex according to the present invention can also be used with good results. Slurry and solution polymerizations normally take place at lower pressures, preferably below 10 MPa. The polymerization can be carried out in the gas phase as well as in a liquid reaction medium. The polymerization is generally conducted under batch, continuous or semicontinuous polymerization conditions. The polymerization process can be conducted as a gas phase polymerization (for example, in a fluidized bed or stirred bed reactor), as a solution polymerization, wherein the homopolymer or copolymer formed is substantially soluble in the reaction mixture, a suspension/slurry polymerization, wherein the polymer formed is substantially insoluble in the reaction medium, as a solid phase powder polymerization or as a so-called bulk polymerization process, in which an excess of monomer to be polymerized is used as the reaction medium.
0244The catalysts may also be utilized in combination with at least one additional homogeneous or heterogeneous polymerization catalyst in the same or in separate reactors connected in series or in parallel to prepare polymer blends having desirable properties. An example of such a process is disclosed in WO 94/00500, equivalent to U.S. Ser. No. 07/904,770, as well as U.S. Pat. No. 5,844,045.
0245The quantity of catalyst to be used generally is such that its concentration in the solvent or dispersion agent amounts to 10<sup>"8</sup> -10<sup>"3</sup> mol/L, preferably 10<sup>"</sup> - 10<sup>"</sup> mol/L.
0246Suitable solvents, dispersion agents or diluents for the polymerization or copolymerization process via a solution or slurry process are typically noncoordinating, inert liquids and can be chosen from the group comprising, but not limited to, straight and branched-chain hydrocarbons such as propane, butane, isobutane, pentane, hexane, heptane, octane, cyclic and alicyclic ήydrocarbons such as cyclohexane, cycloheptane, methylcyclohexane, methylcycloheptane, aromatic and alkyl-substituted aromatic compounds such as benzene, toluene, and xylene and isomers of the foregoing and mixtures thereof as well as pentamethyl heptane or mineral oil fractions such as light or regular petrol, naphtha, kerosine or gas oil. Fluorinated hydrocarbon fluids such as perfiuorinated ^_ Q alkanes are also suitable. Further suitable solvents include liquid olefins which may act as comonomers in the polymerization process including cyclopentadiene, butadiene isoprene, butene, pentene and hexene and cyclooctadiene, including isomers of the foregoing. Mixtures of the foregoing are also suitable. Aromatic hydrocarbons, for instance benzene and toluene, can also be used. Out of cost considerations it is preferred therefore to use low-priced aliphatic hydrocarbons or mixtures thereof in polymerization processes on a technical scale as marketed by the petrochemical industry as solvent. If an aliphatic hydrocarbon is used as solvent, the solvent may optionally contain minor quantities of aromatic hydrocarbon, for instance toluene. Thus, if for instance methyl aluminoxane (MAO) is used as activator, toluene can be used as solvent for the MAO in order to supply the MAO in dissolved form to the polymerization reactor. Drying or purification of the solvents is desirable if such solvents are used; this can be done without problems by known methods by one skilled in the art.
0247Preferably the polymerization or copolymerization is conducted under batch, continuous or semicontinous solution or bulk polymerization conditions in hydrocarbons such as propylene, propane, butane, butene, pentane, hexane, heptane, cyclohexane, benzene, toluene, including isomers of the foregoing and mixtures thereof at temperatures from -10°C and 200 C, preferably from 0° to 130°C. The polymerization may be conducted in one or more continuous stirred reactors or fluidized bed, gas phase reactors, connected in series or parallel. Monomer and/or solvent may be added to the reactor as is well known in the art. The catalyst may also be supported and/or prepolymerized prior to use. A continuous process is preferred, in which event advantageously the mixture of reaction components of catalyst, solvent and dienes is substantially supplied continuously or at frequent intervals into the reactor system and is continuously monitored so as to ensure an efficient reaction and the desired product which is continuously removed therefrom. For example, it is well known that many supported coordination catalysts and catalyst systems for polymerization processes are highly sensitive, in varying degrees, to catalyst poisons such as water, oxygen, carbon oxides, acetylenic compounds and sulfur compounds. Introduction of such compounds may result in reactor upset and production of off-grade product. Typically, computer control systems may be used to maintain process variables within acceptable limits, often by measuring polymer variables such as temperature, viscosity, molecular weight, exotherm, flow rates or catalyst productivity. If the polymerization process is carried out under suspension or gas phase polymerization conditions, the temperatures typically are below 150°C.
0248Utilizing the catalysts of the present invention, high molecular weight polymers are readily attained by use of the present catalysts, even at elevated reactor temperatures. This result is highly desirable because the molecular weight of diene polymers can be readily reduced by the use of hydrogen, di- and trihydrocarbylaluminum compounds (such as but not limited to triisopropylaluminum, diisopropylaluminum hydride, triethylaluminum, trioctylaluminum, diethylalummum chloride and diisopropylaluminum chloride), 1,5- cyclooctadiene or similar chain transfer agent. In addition high molecular weights can be reduced using aromatic monomers such as but not limited to styrene (see Run 18). In addition, productivity is increased due to improved polymer solubility, decreased solution viscosity, and a higher polymer concentration.
0249Utilizing the catalysts of the present invention, homopolymers and copolymers having different comonomer incorporation may be readily prepared.
0250The homopolymers of the invention such as but not limited to polybutadiene, polyisoprene, polystyrene, polyethylene and polypropylene preferably polybutadiene, polyisoprene and polystyrene, even more preferably polybutadiene and polyisoprene and copolymers of the invention such as but not limited to diene - diene, diene - α-olefin or aromatic α-olefin - nonaromatic alpha olefin co- or terpolymers preferably butadiene - isoprene, butadiene-styrene, butadiene-ethylene and butadiene -propene copolymers, more preferably butadiene-isoprene and butadiene-styrene copolymers can be prepared as completely amorphous copolymers or as copolymers comprising more or less expanded crystalline areas.
0251With the catalyst and polymerization process of the invention, more or less crystalline, amorphous or rubber-like or rubber homopolymers or copolymers can be prepared depending on the monomers used and depending on the monomer ratios used, especially the diene type A : ethylenically unsaturated addition polymerizable monomer type B ratios or the diene type A : diene type B ratios.
0252Preferably the percentage of one type of monomers in the copolymer, preferably of one type of conjugated diene is higher than 0 and less than 100 percent. The polybutadiene content of the polybutadiene homopolymer or of the diene - diene copolymers preferably comprises high cis-l,4-polybutadiene. The polymer resulting from the polymerization or copolymerization can be worked up by a method known per se. In general the catalyst is deactivated at some point during the processing of the polymer in a manner known per se, for example, by means of water or an alcohol. Removal of the catalyst residues can mostly be omitted because the quantity of catalyst in the polymer or copolymer, in particular the content of halogen and metal, is very low owing to the use of the catalyst system according to the invention. If desired, however, the level of catalyst residues in the polymer can be reduced in a known manner, for example, by washing. The deactivation step can be followed by a stripping step (removal of organic solvent(s) from the polymer).
0253The polymerization or copolymerization can also be performed in several steps, in series as well as in parallel. If required, the catalyst composition, temperature, hydrogen concentration, pressure, residence time, etc., may be varied from step to step. In this way it is also possible to obtain products with a wide property distribution, for example, molecular weight distribution. By using the catalysts of the present invention for the polymerization of olefins, polymers may be obtained with molecular weights between 50,000 and 1,500,000 g/mol preferably between 100,000 and 1,000,000 g/mol and polydispersities (Mw/Mn) of 1.0 - 50, preferably polydispersities of 1.0 - 20.
0254The polymerization or copolymerization of conjugated dienes by an addition polymerization mechanism results in the formation of residual olefinic vinyl, E (entgegen) and Z (zusammen) double bonds. In the case of butadiene, these are designated vinyl (or 1,2-, or 1,2-polybutadiene ), trans (or trans- 1,4- or trans- 1,4-polybutadiene ) and cis (or cis- 1,4- or cis-l,4-polybutadiene ) double bonds. An advantage of the invention is the possibility to prepare high cis content polybutadiene polymers or copolymers. Preferably the fraction of the residual olefinic double bonds in the polymer or copolymer resulting from the polymerization of the conjugated dienes that are Z or cis units ranges from 50— 100 percent, even more preferably from 60 to 100 percent, even more preferably from 80 — 99 percent, yet still more preferably from 90 — 99 percent, yet still more preferably from 95 — 99 percent of the total amount of residual olefinic double bonds resulting from the polymerization of the conjugated dienes. Advantageously the conjugated diene polymers having high cis- 1,4- content also have a vinyl content (1,2-polybutadiene and/or 1,2- and 3,4- polyisoprene) between 0 and 30 percent, preferably between 0 and 20 percent, more preferably the 1,2-polybutadiene content of the polybutadiene fraction of the homo- or copolymer is between 0 and 10 percent, even more preferably between 0 and 5 percent. Advantageously according to the invention the cis content of polybutadiene can be very high such as for example but not limited to 94.0 percent (see Run 12) or to 97.9 percent (see Run 3).
0255Formed copolymerization products of one type of conjugated diene monomer with a second ethylenically unsaturated addition polymerizable monomer preferably can be chosen to be a random or block copolymer, even more preferably the copolymer comprises butadiene and styrene (see run 18) or butadiene and isoprene.
0256Such polymers of the invention are well-suited for use in the modification of plastics, particularly polystyrene in the preparation of HIPS (high impact polystyrene).
0257The polymerization process of the invention allows the production of tailor-made copolymers. In particular, the choice of the activator and of the metal complex and also the manner of preparation of catalyst, as well as the solvent used for the polymerization reaction (nonaromatic or aromatic), the concentration of the diene monomers and the polymerization temperature enable an adjustment of the polymer microstructure (ratio of cis-, trans- and vinyl content), the polymer viscosity (Mooney viscosity), the molecular weight of the resulting polymer, the molecular weight distribution and the polymerization activity of a given catalyst. Non-limiting examples are the following:
0258The average molecular weight (Mw) can be as high as 974,000 g/mol when the neodymium complex 1 was combined with modified methylalumoxane (MMAO) (Runl ) while a much lower average molecular weight of Mw = 394,000 g/mol resulted when metal complex 1 was combined with diisobutylaluminum hydride and boron trifluoride etherate (Run 11) under similar polymerization conditions. The cis content can be as high as 97.9 percent when complex 1 was combined with diisobutylaluminum hydride and isobutylalumoxane (IBAO) in cyclohexane solvent (Run 3) but also may amount to 66.6 percent when complex 1 was combined with triethylaluminum and [CPh<sub>3</sub>][B(C F<sub>5</sub>)<sub>4</sub>] (Run 10). The molecular weight distribution can be small such as for example but not limited to 2.5, typical for a single site polymerization process (Run 4) but MWD can also be 7.6 (see Run 6).
0259The Mooney viscosity can be as high as for example but not limited to 38.2 when the lanthanum complex 9 was combined with modified methylalumoxane (MMAO) (Run 17) while a lower Mooney value amounting to 25.8 resulted when neodymium complex 6 was combined with MMAO (Run 13) under similar polymerization conditions. The cis content can be as high as 94.0 percent when complex 5 was combined with (MMAO) but also may amount to 69.5 percent when complex 9 was combined with MMAO (Run 16). The molecular weight distribution (MWD) can be small such as for example but not limited to 2.2 typical for a single site polymerization process (Run 13) but the MWD can also be 4.7 (see Run 12)
0260Another advantage which was already mentioned before is the possibility to avoid catalyst aging (see above).
0261Another advantage of the invention for diene polymerization reactions is that the manner of preparation of the catalyst (for example, order of addition of the catalyst components and catalyst aging) can favorably influence the homo- and copolymer properties such as the polymer microstructure and the molecular weight.
0262The homo- and copolymers of the invention may be used in the production of many useful shapes, molded parts, films, foams, golf balls, tires, hoses, conveyor and other belts, gaskets, seals, shoes and in the modification of plastics, such as the manufacture of high impact polystyrene or impact-modified polypropylene.
0263Examples
0264It is understood that the present invention is operable in the absence of any component which has not been specifically disclosed. The following examples are provided in order to further illustrate the invention and are not to be constructed as limiting. Unless stated to the contrary, all parts and percentages are expressed on a weight basis. The term "overnight", if used, refers to a time of approximately 16-18 hours, "room temperature", if used, refers to a temperature of 20-25°C.
0265All tests in which organometallic compounds were involved were carried out in an inert nitrogen atmosphere, using standard Schlenk equipment and techniques or in a glovebox. In the following 'THF' stands for tetrahydrofuran, 'Me' stands for 'methyl', 'Et' stands for 'ethyl','Bu' stands for <sup>•</sup>butyl", 'Ph' stands for 'phenyl', 'MMAO' or 'MMAO-3a' stands for 'modified methyl alumoxane' purchased from AKZO Nobel and TMB stands for trimethoxybenzene. Pressures mentioned are absolute pressures. The polymerizations were performed under exclusion of moisture and oxygen in a nitrogen atmosphere. The products were characterized by means of SEC (size exclusion chromatography), elemental analysis, NMR (Avance 400 device (1H = 400 MHz; <sup>13</sup>C = 100 MHz) of Broker Analytic GmbH) and IR (IFS 66 FT-IR spectrometer of Bruker Optics GmbH). The IR samples were prepared using CS<sub>2</sub> as swelling agent and using a two or fourfold dissolution. DSC (differential scanning calorimetry) was measured using a DSC 2920 of TA Instruments. Mn and Mw are molecular weights and were determined by universal calibration of SEC. The ratio between the 1,4-cis-, 1,4-trans- and 1,2-polydiene content of the butadiene or isoprene polymers was determined by IR and C NMR-spectroscopy. The glass transition temperatures of the polymers were determined by DSC determination. 1. Synthesis of the transition metal complexes
0266<img file="WO2004076504A2_D0028.tif" />
02671.1. Preparation of bis(diisopropylamido)neodymium bromide * lithium bromide adduct 1.
0268In a flask were combined 6,0 g (10 mmol) NdBr (THF)3 with 200 mL THF at 0°C. About
0269100 mL of a solution of 1.28 g (20.0 mmol) of lithium dusopropylamide in 100 mL THF were added at 0°C. The mixture was allowed to warm to room temperature and was stirred for an additional 18 hours. The solvent was removed in vacuum and the residue was extracted with pentane. The extracts were centrifuged (or filtered) to remove insoluble material. The clear pentane solution was evaporated to dryness. Yield 87 percent.
0270<img file="WO2004076504A2_D0029.tif" />
02711.2. Preparation of bis(diisopropylamido)neodvmiυm chloride * lithium chloride adduct 2.
0272In a flask were combined 4.7 g (10 mmol) of NdCl3(THF)3 with 200 mL of THF at 0°C.
0273About 100 mL of a solution of 1.28 g (20.0 mmol) of lithium dusopropylamide in 100 mL of THF were added at 0°C. The mixture was allowed to warm to room temperature and stirred for additional 18 hours. The solvent was removed in vacuum and the residue was extracted with pentane. The extracts were centrifuged (or filtered) to remove insoluble material. The clear pentane solution was evaporated to dryness. Yield 78 percent.
02741.3. Preparation of (Et2θ LiN(<sup>i</sup>Pr -CH=CfMe)-CH(PhVCH(PhVC(Me =CH-N(<sup>i</sup>Pr i(Et9θ 3 A solution of 20.0 g (106.8 mmol) of the 1-aza- 1,3 -dienes CPr)N=CH-C(Me)=CH(Ph) in 100 mL diethylether were combined with 1.0 g (142.8 mmol) lithium at room temperature. The mixture was warmed up noticably upon lithium addition and was stirred for 24 hr's. Subsequently the resulting solution was separated from remining lithium by filtration and the filtrated solution was evaporated to a volume of 50 mL and stored at -5°C. Crystals of the pale yellow N,N'-dilithium-hexa-l ,5-dien-l ,6-diamides (Et<sub>2</sub>O)LiNCPr)-CH=C(Me)-CH(Ph)- CH(Ph)-C(Me)=CH-NCPr)Li(Et<sub>2</sub>O) 3 were formed at this temperature. Yield: 23.0 g (42.7 mmol, 80 percent)
02751.4. Preparation of
0276(THF^LiNr(<sup>i</sup>Pr 9C<sub>6</sub>H<sub>3</sub>l-CH=C(MeVCH(Ph -CHfPhVC(Me^=CH-Nr(<sup>i</sup>Pr^C<sub>6</sub>H<sub>3</sub>lLi(THF)<sub>3</sub> 4 A solution of 10.0 g (33.0 mmol) of the l-aza-1,3- PhCH=C(CH<sub>3</sub>)-CH=N[CPr)<sub>2</sub>C<sub>6</sub>H<sub>3</sub>] in 100 L THF were combined with 0.3 g (43.0 mmol) lithium at room temperature and stirred for 48 hr's. Subsequently, the resulting solution was evaporated. The resulting solid residue was extracted with 150 mL diethylether. After filtration of the resulting diethylether solution was stored at 0°C. Crystals of the pale yellow N,N'-dilithium-hexa-l,5-dien-l,6- (THF)<sub>3</sub>LiN[(<sup>i</sup>Pr)<sub>2</sub>C<sub>6</sub>H<sub>3</sub>]-CH=C(Me)-CH(Ph)-CH(Ph)-C(Me)=CH-N[(<sup>i</sup>Pr)<sub>2</sub>C<sub>6</sub>H<sub>3</sub>]Li(THF)<sub>3</sub> 4 were formed at this temperature. Yield: 14.0 g (13.1 mmol, 80 percent)
0277<img file="WO2004076504A2_D0030.tif" />
02781.5. Preparation of dysprosium complex C^gHj QgN4θgCL<sub>4</sub>;Li2Dy2 5
0279In a flask were combined 3.40 g (12.65 mmol) DyCl3 with 100 mL dimethoxyethane (dme) at 0°C. The solution was allowed to warm to room temperature and 6.80 g (12.65 mmol) of dilithium(hex-l,5-dien-l,6-diamide)-compound [{Li(OEt<sub>2</sub>)}2{( Pr)NCH=C(Me)CH(Ph)CH(Ph)C(Me)=CHN(zPr)}] 3 were added. The mixture was stirred for additional 24 hours. Precipitated lithium chloride (LiCl) was removed by filtration. The filtrated solution was evaporated to a volume of 50 mL and stored at 0°C.
0280Yellow crystals of the dysprosium compound 5 (M=1590.32 g/mol) were isolated by filtration and dried in the vacuum, yield: 7.47 g (9.40 mmol, 75 percent referred to DVCI3).
0281<img file="WO2004076504A2_D0031.tif" />
02821.6. Preparation of neodymium complex (C3 gH64N2θgBr2LiNd 6.
0283In a flask were combined 6.80 g (12.65 mmol) of the dilithium(hex-l,5-dien-l,6-diamide)- compound [{Li(OEt )}2{(zPr)NCH=C(Me)CH(Ph)CH(Ph)C(Me)=CHN( Pr)}] 3 in 200 mL dimethoxyethane (dme) with 8.50 g (12.65 mmol) NdBr3(THF)4 at -20°C. The mixture was allowed to warm to room temperature and stirred for 48 hours. Afterwards the reaction solvent was removed in vacuum and the oily residue was extracted with 200 ml diethylether. The solvent was cooled to a temperature of -20°C. At this temperature colorless crystals of LiBr(dme)2 precipitated, which were subsequently removed by filtration. The filtrated solution was evaporated to a volume of 100 mL and stored at room temperature. Slowly neodymium complex 6 crystals were formed. Complex 6 (M= 955.9 g)was isolated by filtration and dried in the vacuum. Yield: 2.30 g (2.40 mmol, 19 percent referred to NdBr (THF)<sub>4</sub>)
0284<img file="WO2004076504A2_D0032.tif" /><img file="WO2004076504A2_D0033.tif" />
0285In a flask were combined 6.80 g (12.65 mmol) of the dilithium(hex-l,5-dien-l,6-diamide)- compound [{Li(OEt<sub>2</sub>)}2{ <sup>'</sup>Pr)NCH=C(Me)CH(Ph)CH(Ph)C(Me)=CHN(rPr)}] 3 in 150 mL dimethoxyethane (dme) under stirring with 4.25 g (6.30 mmol) NdBr3(THF)4 at -20°C. The mixture was warmed to room temperature and stirred for 24 hours. Afterwards the reaction solvent was removed in vacuum and the residue was extracted with 100 ml diethylether. Precipitated LiBr(dme)2 was removed by filtration. The filtrated solution was cooled to a temperature of -20°C and precipitated LiBr(dme)2 was removed by filtration. The filtrated solution was stored at 5°C whereby neodymium complex 7 crystals were formed. Complex 7 (M= 1170.68 g) was isolated by filtration and dried in the vacuum. Yield: 5.50 g (4.73 mmol, 75 percent referred to NdBr3(THF)4).
0286<img file="WO2004076504A2_D0034.tif" />
02871.8. Preparation of lanthanum complex C\ oδHl 56M4Q6Br4Li2La2.i .
0288In a flask were combined 4.20 g (6.30 mmol) LaBr<sub>3</sub>(THF)4 in 200 mL tetrahydrofuran (THF) under stirring with 6.61 g (6.25 mmol) of the dilithium(hex-l,5-dien-l,6-diamide)-compound [{Li(THF)<sub>3</sub>}2{(C<sub>6</sub>H<sub>3</sub>-2,6-(zPr)2}NCH=C(Me)CH(Ph)CH(Ph)C(Me)=CHN{C<sub>6</sub>H3-2,6-
0289(z<sup>'</sup>Pr)2}] 4 at -20°C. The mixture was stirred for 48 hours. Afterwards the solvent was evaporated. The residue was solved in 250 mL diethylether and precipitated lithium bromide was removed in the vacuum. The filtrated solution was cooled to a temperature of -20°C and stored at this temperature for days. Crystals of lanthanum complex 8 were formed. Complex 8 (M- 2217.75 g) was isolated by filtration and dried in the vacuum. Yield: 2.80 g (2.52 mmol, 40 percent referred to LaBr3(THF)4). <img file="WO2004076504A2_D0035.tif" />
02901.9. Preparation of lanthanum complex C6QHggN4θ4Br4LJ2La2 9.
0291In a flask were combined 7.50 g (11.25 mmol) LaBr3(THF)4 in 200 ml dimethoxyethane
0292(dme) under stirring with 6.05 g (11.25 mmol) of the dilithium(hex-l,5-dien-l,6-diamid)- compound [{Li(OEt<sub>2</sub>)}2{(«Pr)NCH=C(Me)CH(Ph)CH(Ph)C(Me)=CHN Tr)}] 3 at a temperature of -20°C. The mixture was stirred for 48 hours. Afterwards the solvent was evaporated. The residue was solved in 200 mL diethylether and precipitated lithium bromide was removed in the vacuum. The filtrated solution was evaporated to a volume of 100 mL and stored at a -20°C. Crystals of lanthanum complex 9 were formed. Complex 9 ( = 1540.69 g) was isolated by filtration and dried in the vacuum. Yield: 8.04 g (6.19 mmol, 55 percent referred to LaBr3(THF)4).
02932. Polymerization
02942.1 Description of the polymerization procedure - Method 1
0295The polymerizations were performed in a double wall 2 L steel reactor, which was purged with nitrogen before the addition of organic solvent, metal complex, activator(s), Lewis acids or other components. The polymerization reactor was tempered to 70°C unless stated otherwise. The following components were then added in the following order: organic solvent, the activator 1 , conjugated diene monomer(s)and the mixture was allowed to stir for one hour. Then the following components were added in the following order into the 2 L steel reactor: optionally a second activator component and/or Lewis acid and subsequently the metal complex was added to start the polymerization.
0296The polymerization was performed at 70°C unless stated otherwise. The polymerization time varied depending on the experiment.
0297For the termination of the polymerization process, the polymer solution was transferred into a third double wall steel reactor containing 50 mL of methanol and Irganox 1520 as stabilizer for the polymer (1L of methanol contains 2 g of Irganox). This mixture was stirred for 15 minutes. The recovered polymer was then stripped with steam for 1 hour to remove solvent and other volatiles and dried in an oven at 45°C for 24 hours.
02982.2 Description of the polymerization procedure - Method 2
0299The polymerizations were performed in a double wall 2 L steel reactor, which was purged with nitrogen before the addition of organic solvent, metal complex, activator(s), Lewis acids or other components. The polymerization reactor was tempered to 80°C if not stated otherwise. The following components were then added in the following order: organic solvent, a portion of the activator 1, conjugated diene monomer(s) and the mixture was allowed to stir for one hour.
0300In a separate 200 mL double wall steel reactor, which was tempered to the same temperature as the polymerization reactor if the temperature value did not exceed 80°C (if higher temperatures were chosen for the polymerization process, the 200 mL reactor was still tempered to 80°C), the following components were added in the following order: organic solvent and a portion of the activator 1 and the mixture was stirred for 0.5 hours. Then optionally a second activator component and/or Lewis acid and subsequently the metal complex were added and the resulting mixture was allowed to stir for an additional 30 minutes.
0301The polymerization was started through addition of the contents of the 200 mL steel reactor into the 2 L polymerization vessel. The polymerization was performed at a 80°C unless stated otherwise. The polymerization time varied depending on the experiment. For the termination of the polymerization process, the polymer solution was transferred into a third double wall steel reactor containing 50 mL of methanol containing Irganox 1520 as stabilizer for the polymer (1L of methanol contains 2 g of Irganox). This mixture was stirred for 15 minutes. The recovered polymer was then stripped with steam for 1 hour to remove solvent and other volatiles and dried in an oven at 45 °C for 24 hours.
03022.3 Description of the polymerization procedure-Method 3
0303The polymerizations were performed in a double wall 2 L steel reactor, which was purged with nitrogen before the addition of organic solvent, metal complex, activator(s), Lewis acids or other components. The polymerization reactor was tempered to 80°C unless stated otherwise. The following components were then added in the following order: organic solvent, the activator 1, conjugated diene monomer(s)and the mixture was allowed to stir for one hour. Then the following components were added in the following order into the 2 L steel reactor: optionally a second activator component and/or Lewis acid and subsequently the metal complex was added to start the polymerization.
0304The polymerization was performed at 80°C unless stated otherwise. The polymerization time varied depending on the experiment.
0305For the termination of the polymerization process, the polymer solution was transferred into a third double wall steel reactor containing 50 mL of methanol and Irganox 1520 as stabilizer for the polymer (1L of methanol contains 2 g of Irganox). This mixture was stirred for 15 minutes. The recovered polymer was then stripped with steam for 1 hour to remove solvent and other volatiles and dried in an oven at 45 °C for 24 hours.
03063 Polymerization Examples:
03073.1 Homopolymerization of 1 ,3 -butadiene
0308A) Polymerization of 1,3 -butadiene using complex 1 and MMAO-3a (Run 1)
0309The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 540 g of cyclohexane solvent. Thus 540 g of cyclohexane, 54.1 g (1.0 mol) of 1,3-butadiene monomer and MMAO (3.9 g of a heptane solution containing 10.0 mmol of MMAO) were added into the polymerization reactor and stirred for 100 minutes. Afterwards 11.5 mg (0.02 mmol) of neodymium complex 1 dissolved in 3.8 g cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0310After 10 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 73.4 percent. 39.7 g of polybutadiene were recovered as result of the stripping process. The polymer contained 97.3 percent cis-1,4-; 2.0 percent trans-1,4-, 0.7 percent 1,2- polybutadiene according to IR determination. The molecular weight of the polymer amounted to 974,000 g/mol and the polydispersity (molecular weight distribution) amounted to 2.8. (M<sub>n</sub> = 338,000; M<sub>z</sub> = 1,820,000). The Mooney value amounted to 85.3, the melt enthalpy (DH<sup>SL</sup>) amounts to 43.3 J/g and the glass transition temperature amounted to -107.2°C.
0311B) Polymerization of 1,3-butadiene using complex 1 IBAO (Run 2)
0312The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 542 g of cyclohexane solvent at a polymerization temperature of 80°C. Thus 542 g of cyclohexane, 53.9 g (1.0 mol) of 1,3- butadiene monomer and H3AO (11.2 g of a heptane solution containing 30.0 mmol of IBAO) were added into the polymerization reactor and stirred for 75 minutes. Afterwards 28.6 mg (0.05 mmol) of neodymium complex 1 dissolved in 4.0 g of cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0313After 44 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 43.3 percent. 23.5 g of polybutadiene were recovered as result of the stripping process. The polymer contained 96.5 percent cis-1,4-; 2.0 percent trans-1,4-, 1.5 percent 1,2- polybutadiene according to IR determination. The Mooney value amounted to 88.1, the melt ςt enthalpy (DH ) amounts to 39.1 J/g and the glass transition temperature amounted to - 107.4°C.
0314C) Polymerization of 1,3-butadiene using complex 1, iBu<sub>2</sub>AlH and IBAO (Run 3)
0315The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 540 g of cyclohexane solvent at a polymerization temperature of 80°C. Thus 540 g of cyclohexane, 54.3 g (1.0 mol) of 1,3- butadiene monomer, IBAO (5.6 g of a heptane solution containing 15.0 mmol of IBAO) and 270 mg (2 mmol) diisobutylaluminum hydride in 3.7 g of cyclohexane were added into the polymerization reactor and stirred for 80 minutes. Afterwards 14.3 mg (0.025 mmol) of neodymium complex 1 dissolved in 3.5 g of cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0316After one hour and 17 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 70.2 percent. 38.0 g of polybutadiene were recovered as result of the stripping process. The polymer contained 97.9 percent cis-1,4-; 1.4 percent trans-1,4-, 0.7 percent 1,2- polybutadiene according to TR determination. The molecular weiglit of the polymer amounted to 566,000 g/mol and the polydispersity (molecular weight distribution) amounted to 3.3. (M<sub>n</sub> = 171,000; M<sub>z</sub> = 1,188,000). The Mooney value amounted to 91.0.
0317D) Polymerization of 1,3-butadiene using complex 1 and MMAO-3a (Run 4)
0318The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 541 g of toluene solvent at a polymerization temperature of 50°C. Thus 541 g of toluene, 54.0 g (1.0 mol) of 1,3-butadiene monomer and MMAO (9.8 g of a heptane solution containing 25.1 mmol of MMAO) were added into the polymerization reactor and stirred for 81 minutes. Afterwards 28.8 mg (0.05 mmol) of neodymium complex 1 dissolved in 3.1 g of toluene were added into the polymerization reactor to start the polymerization reaction.
0319After two hours and 15 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 62.3 percent. 33.7 g of polybutadiene were recovered as result of the stripping process. The polymer contained 93.0 percent cis-1,4-; 6.1 percent trans-1,4-, 0.9 percent 1,2- polybutadiene according to IR determination. The molecular weight of the polymer amounted to 477,000 g/mol and the polydispersity (molecular weight distribution) amounted to 2.5. (M<sub>n</sub> = 185,000; M<sub>z</sub> = 654,000). The Mooney value amounted to 81.3.
0320E) Polymerization of 1,3-butadiene using complex 1, Et3Al and B(CgF5)3 (Run 5)
0321The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 543 g of cyclohexane solvent. Thus 543 g of cyclohexane, 54.1 g (1.0 mol) of 1,3-butadiene monomer and 0.341 g (3.0 mmol) of triethylaluminum in 1.45 g of cyclohexane were added into the polymerization reactor and stirred for one hour 18 minutes. Afterwards 20.5 mg (0.04 mmol) of tris(pentafluorophenyl)borane dissolved in 3.4 g of cyclohexane solvent and. 11.5 mg (0.02 mmol) of neodymium complex 1 dissolved in 3.4 g of cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0322After one hour and 35 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 57.3 percent. 31.0 g of polybutadiene were recovered as result of the stripping process. The polymer contained 92.4 percent cis-1,4-; 6.9 percent trans-1,4-, 0.8 percent 1,2- polybutadiene according to IR determination. The molecular weight of the polymer amounted to 726,000 g/mol and the polydispersity (molecular weight distribution) amounted to 3.1. (M<sub>n</sub> = 233,000; M<sub>z</sub> = 1,730,000). The Mooney value amounted to 112.7.
0323F) Polymerization of 1,3-butadiene using complex 1, 1BU2AIH and B(C6F5)3 (Run 6)
0324The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 539 g of cyclohexane solvent. Thus 539 g of cyclohexane and 27 mg (1.5 mmol) of distilled and oxygen-freed (degassed) water were added into the polymerization reactor and stirred for 15 minutes at room temperature. Subsequently 227.3 mg (2.0 mmol) of triethylaluminum, 135 mg (1.0 mg) of diisobutylaluminum hydride and 54.2 g (1.0 mol) of 1 ,3 -butadiene monomer were added into the polymerization reactor and stirred for 1 hour and 18 minutes at 70°C. Afterwards 11.5 mg (0.02 mmol) of neodymium complex 1 dissolved in 3.5 g of cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0325After two hours the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 21.6 percent. 11.7 g of polybutadiene were recovered as result of the stripping process. The polymer contained 95.4 percent cis-1,4-; 3.7 percent trans-1,4-, 0.9 percent 1,2- polybutadiene according to IR determination. The molecular weight of the polymer amounted to 728,000 g/mol and the polydispersity (molecular weight distribution) amounted to 7.6. (M<sub>n</sub> = 96,000; M<sub>2</sub> = 2,050,000).
0326G) Polymerization of 1,3-butadiene using complex 2, Et3Al and B(C6F5)3 (Run 7)
0327The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 540 g of cyclohexane solvent. Thus 540 g of cyclohexane, 54.0 g (1.0 mol) of 1,3-butadiene monomer and 0.341 g (3.0 mmol) of triethylaluminum in 2.4 g of cyclohexane were added into the polymerization reactor and stirred for 28 minutes. Afterwards 20.5 mg (0.04 mmol) of tris(pentafluorophenyl)borane dissolved in 3.2 g of cyclohexane solvent and 9.7 mg (0.02 mmol) of neodymium complex 2 dissolved in 3.6 g of cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0328After one hour and 30 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 55.5 percent. 30.0 g of polybutadiene were recovered as result of the stripping process. The polymer contained 91.5 percent cis-1,4-; 7.8 percent trans-1,4-, 0.8 percent 1,2- polybutadiene according to IR determination. The molecular weight of the polymer amounted to 486,000 g/mol and the polydispersity (molecular weight distribution) amounted to 3.3. (M„ = 147,000; M<sub>z</sub> = 1,388,000). The Mooney value amounted to 54.2.
0329H) Polymerization of 1,3-butadiene using complex 1, E13AI and [Cι<sub>8</sub>H<sub>3</sub> )<sub>2</sub>NMeH][B(C<sub>6</sub>F<sub>5</sub>) ]
0330(Run 8) The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 542 g of cyclohexane solvent. Thus 542 g of cyclohexane, 53.9 g (1.0 mol) of 1,3-butadiene monomer and 0.341 g (3.0 mmol) of tnetnyiaiummum in 1.83 g ot cyclohexane were added into the polymerization reactor and stirred for one hour 41 minutes. Afterwards 36.47 mg (0.03 mmol) of [Cι<sub>8</sub>H<sub>37</sub>)<sub>2</sub>NMeH][B(C<sub>6</sub>F<sub>5</sub>)<sub>4</sub>] dissolved in 300 mg of methylcyclohexane and 11.5 mg (0.02 mmol) of neodymium complex 1 dissolved in 3.2 g of cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0331After one hour and 8 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 83.5 percent. 45.2 g of polybutadiene were recovered as result of the stripping process. The polymer contained 80.1 percent cis-1,4-; 18.8 percent trans-1,4-, 1.1 percent 1,2- polybutadiene according to IR determination. The Mooney value amounted to 155.3.
0332I) Polymerization of 1,3-butadiene using complex 1, iBu<sub>2</sub>AlH and
0333[C<sub>18</sub>H<sub>37</sub>)<sub>2</sub>NMeH][B(C<sub>6</sub>F<sub>5</sub>)<sub>4</sub>] (Run 9) The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 540 g of cyclohexane solvent. Thus 540 g of cyclohexane, 54.2 g (1.0 mol) of 1,3-butadiene monomer and 0.405 g (3.0 mmol) of diisobutylaluminum hydride in 1.5 g of cyclohexane were added into the polymerization reactor and stirred for one hour and 11 minutes. Afterwards 36.47 mg (0.03 mmol) of [C<sub>18</sub>H<sub>37</sub>)<sub>2</sub>NMeH][B(C<sub>6</sub>F<sub>5</sub>)<sub>4</sub>] dissolved in 300 mg of methylcyclohexane and 11.5 mg (0.02 mmol) of neodymium complex 1 dissolved in 3.4 g of cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0334After one hour and 2 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 66.8 percent. 36.1 g of polybutadiene were recovered as result of the stripping process. The polymer contained 83.5 percent cis-1,4-; 15.2 percent trans-1,4-, 1.3 percent 1,2- polybutadiene according to IR determination. The molecular weight of the polymer amounted to 414,000 g/mol and the polydispersity (molecular weight distribution) amounted to 5.8. (M<sub>n</sub> = 71,000; M<sub>z</sub> = 1,200,000). The Mooney value amounted to 87.3.
0335J) Polymerization of 1,3-butadiene using complex 1, E13AI and [CPh<sub>3</sub>][B(C<sub>6</sub>F ) ] (Run 10)
0336The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 540 g of toluene solvent. Thus 540 g of toluene, 54.2 g (1.0 mol) of 1,3-butadiene monomer and 0.341 g (3.0 mmol) triethylaluminum in 2.1 g of toluene were added into the polymerization reactor and stirred for one hour. Afterwards 20.1 mg (0.03 mmol) of [CPh<sub>3</sub>][B(C<sub>δ</sub>F<sub>5</sub>)<sub>4</sub>] dissolved in 3.4 g of toluene solvent and 11.5 mg (0.02 mmol) of neodymium complex 1 dissolved in 4.8 g of toluene were added into the polymerization reactor to start the polymerization reaction.
0337After one hour and 34 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 80.6 percent. 43.6 g of polybutadiene were recovered as result of the stripping process. The polymer contained 66.6 percent cis-1,4-; 31.8 percent trans-1,4-, 1.5 percent 1,2- polybutadiene according to IR determination. The molecular weight of the polymer amounted to 300,000 g/mol and the polydispersity (molecular weight distribution) amounted to 5.0. (M<sub>n</sub> = 60,000; M<sub>z</sub> = 1,900,000). The Mooney value amounted to 23.6.
0338K) Polymerization of 1,3-butadiene using complex 1, i-Bu<sub>2</sub>AlH and BF<sub>3</sub> (Run 11) The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 541 g of toluene solvent. Thus 541 g of toluene, 54.2 g (1.0 mol) of 1,3-butadiene monomer and 0.405 g (3.0 mmol) of diisopropylaluminum hydride in 3.8 g of toluene were added into the polymerization reactor and stirred for one hour and 45 minutes. Afterwards 6.5 mg (0.046 mmol) of BF<sub>3</sub> * Et<sub>2</sub>O 0.0046 dissolved in 4.6 g of toluene solvent and 11.5 mg (0.020 mmol) of neodymium complex 1 dissolved in 6.6 g of toluene were added into the polymerization reactor to start the polymerization reaction.
0339After two hours and 50 minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 83.7 percent. 45.3 g of polybutadiene were recovered as result of the stripping process. The polymer contained 86.2 percent cis-1,4-; 12.6 percent trans-1,4-, 1.2 percent 1,2- polybutadiene according to IR determination. The molecular weight of the polymer amounted to 394,000 g/mol and the polydispersity (molecular weight distribution) amounted to 4.0. (M<sub>n</sub> = 98,000; M<sub>z</sub> = 1,530,000). The Mooney value amounted to 30.5.
0340L) Polymerization of 1 ,3-butadiene using complex 5 and MMAO-3a (Run 12) The experiment was carried out according to the general polymerization procedure described above (2.2.). The polymerization was carried out in 508 g of cyclohexane solvent and 70 g of toluene solvent. Thus 508 g of cyclohexane, 55.2 g (1.0 mol) of 1,3-butadiene monomer and MMAO (5.9 g of a heptane solution containing 15.1 mmol of MMAO) were added into the polymerization reactor. 70 g of toluene and 5.9 g of a heptane solution containing 15.0 mmol of MMAO were mixed with 159 mg (0.10 mmol) of the metal complex 5 in a separate reaction vessel and stirred for 30 minutes.
0341Afterwards the resulting mixture was transferred into the polymerization reactor to start the polymerization reaction.
0342After one hours and 33 minutes the polymerization reaction was terminated as described above (see 2.2.). At this point, the conversion level of the monomers into polybutadiene was 27.7 percent. 15.3 g of polybutadiene were recovered as result of the stripping process. The polymer contained 94.0 percent cis-1,4-; 3.0 percent trans-1,4-, 3.0 percent 1,2- polybutadiene according to <sup>13</sup>C-NMR determination
0343The molecular weight of the polymer amounted to 512,000 g/mol and the polydispersity (molecular weight distribution) amounted to 4.74. (M<sub>n</sub> = 108,000; M<sub>z</sub> = 1,430,000).
0344M) Polymerization of 1,3-butadiene using complex 6 and MMAO-3a (Run 13) The experiment was carried out according to the general polymerization procedure described above (2.3). The polymerization was carried out in 500 g of cyclohexane solvent. Thus 496.7 g of cyclohexane, 54.1 g (1.0 mol) of 1,3-butadiene monomer and MMAO (11.8 g of a heptane solution containing 30.3 mmol of MMAO) were added into the polymerization reactor and stirred for one hour and 30 minutes. Afterwards 95.6 mg (0.10 mmol) of neodymium complex 6 dissolved in 3.3 g cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0345After two hours and 16 minutes the polymerization reaction was terminated as described above (see 2.3.). At this point, the conversion level of the monomers into polybutadiene was 82.1 percent. 44.4 g of polybutadiene were recovered as result of the stripping process. The polymer contained 93.5 percent cis-1,4-; 5.5 percent trans-1,4-, 1.0 percent 1,2- polybutadiene according to <sup>13</sup>C-NMR determination. The molecular weight of the polymer amounted to 283,500 g/mol and the polydispersity (molecular weight distribution) amounted to 2.23. (M„ = 127,000; M<sub>z</sub> = 592,000). The Mooney value amounted to 25.8.
0346N) Polymerization of 1,3-butadiene using complex 7 and MMAO-3a (Run 14) The experiment was carried out according to the general polymerization procedure described above (2.3). The polymerization was carried out in 500 g of cyclohexane. Thus 495.6 g of cyclohexane, 54.1 g (1.0 mol) of 1,3-butadiene monomer and MMAO (11.6 g of a heptane solution containing 30.0 mmol of MMAO) were added into the polymerization reactor and stirred for one hour and 7 minutes. Afterwards 95.0 mg (0.081 mmol) of neodymium complex 7 dissolved in 4.4 g cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0347After one hour and 39 minutes the polymerization reaction was terminated as described above (see 2.2.). At this point, the conversion level of the monomers into polybutadiene was 5.1 percent. 2.8 g of polybutadiene were recovered as result of the stripping process.
0348O) Polymerization of 1,3-butadiene using complex 8 and MMAO-3a (Run 15)
0349The experiment was carried out according to the general polymerization procedure described above (2.2.). The polymerization was carried out in 500.9 g of cyclohexane. Thus 401.0 g of cyclohexane, 55.1 g (1.0 mol) of 1,3-butadiene monomer and MMAO (6.0 g of a heptane solution containing 15.3 mmol of MMAO) were added into the polymerization reactor. 90.5 g of cyclohexane and 5.9 g of a heptane solution containing 15.2 mmol of MMAO were mixed with 103.7 mg (0.047 mmol) of the metal complex 8 dissolved in 9.4 g cyclohexane in a separate reaction vessel and stirred for one hour and 16 minutes.
0350Afterwards the resulting mixture was transfened into the polymerization reactor to start the polymerization reaction.
0351After one hours and 35 minutes the polymerization reaction was terminated as described above (see 2.2.). At this point, the conversion level of the monomers into polybutadiene was
03523.5 percent. 1.9 g of polybutadiene were recovered as result of the stripping process.
0353P) Polymerization of 1,3-butadiene using complex 9 and MMAO-3a (Run 16) The experiment was carried out according to the general polymerization procedure described above (2.3). The polymerization was carried out in 500 g of cyclohexane. Thus 491.6 g of cyclohexane, 54.1 g (1.0 mol) of 1,3-butadiene monomer and MMAO (11.8 g of a heptane solution containing 30.3 mmol of MMAO) were added into the polymerization reactor and stirred for 34 minutes. Afterwards 82.4 mg (0.053 mmol) of neodymium complex 9 dissolved in 8.4 g cyclohexane were added into the polymerization reactor to start the polymerization reaction.
0354After one hour and 46 minutes the polymerization reaction was terminated as described above (see 2.3.). At this point, the conversion level of the monomers into polybutadiene was 46.8 percent. 25.3 g of polybutadiene were recovered as result of the stripping process. The polymer contained 69.5 percent cis-1,4-; 12.5 percent trans-1,4-, 8.5 percent 1,2- polybutadiene according to IR determination. The Mooney value amounted to 33.9. Q) Polymerization of 1,3-butadiene using complex 9 and MMAO-3a (Run 17) The experiment was carried out according to the general polymerization procedure described above (2.2.). The polymerization was carried out in 2000.7 g of cyclohexane. Thus 1901 g of cyclohexane, 218.0 g (4.0 mol) of 1,3-butadiene monomer and MMAO (11.9 g of a heptane solution containing 31.0 mmol of MMAO) were added into the polymerization reactor. 91.5 g of cyclohexane and 11.9 g of a heptane solution containing 31.0 mmol of MMAO were mixed with 164.8 mg (0.107 mmol) of the metal complex 9 dissolved in 7.5 g cyclohexane in a separate reaction vessel and stirred for 44 minutes.
0355Afterwards the resulting mixture was transferred into the polymerization reactor to start the polymerization reaction.
0356After one hours and 34 minutes the polymerization reaction was terminated as described above (see 2.2.). At this point, the conversion level of the monomers into polybutadiene was 44.5 percent. 97.0 g of polybutadiene were recovered as result of the stripping process. The polymer contained 93.7 percent cis-1,4-; 4.7 percent trans-1,4-, 1.7 percent 1,2- polybutadiene according to <sup>13</sup>C-NMR determination. The Mooney value amounted to 38.2.
03573.2 Copolymerization of 1,3-butadiene and styrene
0358R) Copolymerization of 1,3-butadiene and styrene using complex 1 Et3Al and
0359[C<sub>18</sub>H<sub>37</sub>)<sub>2</sub>NMeH][B(C<sub>6</sub>F<sub>5</sub>)<sub>4</sub>] (Run 18)
0360The experiment was carried out according to the general polymerization procedure described above (2.1). The polymerization was carried out in 542 g of cyclohexane solvent. Thus 542 g of cyclohexane, 54.1 g (1.0 mol) of 1,3-butadiene monomer, 20.9 g (0.20 mol) of styrene monomer and 0.341 g (3.0 mmol) of triethylaluminum in 1.5 g of cyclohexane were added into the polymerization reactor and stirred for three hours eight minutes. Afterwards 36.47 mg (0.03 mmol) of [C<sub>18</sub>H<sub>37</sub>)<sub>2</sub>NMeH][B(C<sub>6</sub>F<sub>5</sub>)<sub>4</sub>] (RIBS 2) dissolved in 300 mg of methylcyclohexane and 11.5 mg (0.02 mmol) of neodymium complex 1 dissolved in 4.0 g of cyclohexane were added into the polymerization reactor to start the polymerization reaction. After three hours and two minutes the polymerization reaction was terminated as described above (see 2.1.). At this point, the conversion level of the monomers into polybutadiene was 27.3 percent. 14.8 g of polybutadiene were recovered as result of the stripping process. The polymer contained 85.4 percent cis-1,4-; 13.4 percent trans-1,4-, 1.0 percent 1,2- polybutadiene and 0.2 percent styrene according to IR and 1<sup>3</sup>C-NMR determination. The molecular weight of the polymer amounted to 362,000 g/mol and the polydispersity (molecular weight distribution) amounted to 5.0. (M„ = 72,000; M<sub>2</sub> = 2,363,000).
0361<img file="WO2004076504A2_D0036.tif" />
0362* measured after 15 minutes;
0363** measured after 10 minutes;
0364*** measured after 8 minutes
0365<img file="WO2004076504A2_D0037.tif" />
0366* measured after 30 minutes;
0367** measured after 60 minutes;
03683.4 Molecular weight - Comparison
0369<img file="WO2004076504A2_D0038.tif" /><img file="WO2004076504A2_D0039.tif" />
03703.5 Molecular weight distribution (MWG) & Mooney viscosity - Comparison
0371<img file="WO2004076504A2_D0040.tif" />
03723.6 Microstructure - Polybutadiene Fraction Comparison
0373<img file="WO2004076504A2_D0041.tif" /> styrene content amounts to 0.2 percent <img file="WO2004076504A2_D0042.tif" />
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Numbers
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- 1597292
- Application
- 47124060
Titles3
- German
- VERFAHREN ZUR HOMO- ODER COPOLYMERISATION VON KONJUGIERTEN OLEFINEN
- English
- PROCESS FOR HOMO- OR COPOLYMERIZATION OF CONJUGATED OLEFINES
- French
- PROCEDE POUR LA HOMO- OU COPOLYMERISATION D'OLEFINES CONJUGUEES
Classification
- CPC, 16
- B01J31/143
- C07F1/00
- B01J31/146
- B01J31/1805
- B01J2531/0216
- B01J2531/37
- B01J2531/38
- C07F5/00
- C07F15/00
- C08F10/00
- C08F36/06
- C08F297/04
- C08F297/046
- C08F297/06
- C08L53/02
- C07F9/00
- IPC, 7
- C07F15 00
- C08F4 54
- C08F10 00
- C08F36 06
- C08F297 04
- C08F297 06
- C08L53 02
Designated states2
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- Türkiye
- Extension states, 1
- North Macedonia