EP1644136A2

Dry particle based electro-chemical device and methods of making same

Abstract

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EP1644136A2, drawing sheet 1
Sheet 1 of 8

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Projected expiry passed 8 July 2024, 2.2 years ago.

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1 claim: 1 independent, 0 dependent

  1. 1
    Claims of equivalent WO 2005008807 A2 What is Claimed is:I . A process for manufacturing an electrode for use in an electrochemical device product, the process comprising the steps of: supplying dry carbon particles;supplying dry binder;dry mixing the dry carbon particles and dry binder;and dry fibrillizing the dry binder to create a matrix within which to support the dry carbon particles as a dry material. 2. The process of claim 1 , wherein the step of dry fibrillizing comprises application of sufficiently high-shear. 3. The process of claim 2, wherein the high-shear is applied in a jet- mill. 4. The process of claim 2, wherein the application of sufficiently high-shear is effectuated by application of a high pressure. 5. The process of claim 4, wherein the high pressure is applied as a high pressure gas. 6. The process of claim 5, wherein the gas comprises oxygen. 7. The process of claim 5, wherein the pressure is greater than or equal to about 60 PSI. 8. The process of claim 6, wherein the gas is applied with a water content of less than 20 ppm. 9. The process of claim 1 , further comprising a step of compacting the dry material. 10. The process of claim 9, wherein the step of compacting is performed after one pass through a compacting apparatus. I I . The process of claim 10, wherein the compacting apparatus is a roll-mill. 12. The process of claim 10, wherein after the one pass though the compacting apparatus the dry material comprises a self supporting dry film. 13. The process of claim 12, wherein the self supporting dry film comprises a thickness of less than 250 microns. 14. The process of claim 12, wherein the self supporting dry film is formed as a continuous sheet. 15. The process of claim 14, wherein the sheet is at least one meter long. 16. The process of claim 1 , wherein the dry material is manufactured without the substantial use of any processing additives. 17. The process of claim 16, wherein the processing additives include: hydrocarbons, high boiling point solvents, antifoaming agents, surfactants, dispersion aids, water, pyrrolidone mineral 5 spirits, ketones, naphtha, acetates, alcohols, glycols, toluene, xylene, and lsopars t . 18. The process of claim 1 , further comprising a step of calendering the dry material onto a substrate. 19. The process of claim 18, wherein the substrate comprises a 10 collector. 20. The process of claim 19, wherein the collector comprises an aluminum foil. 21 . The process of claim 18, wherein the dry material is calendered directly onto the substrate without use of an intermediate layer. 15 22. The process of claim 18, wherein the dry material is calendered onto a treated substrate. 23. The process of claim 1 , wherein the dry binder comprises a fibrillizable flouropolymer. 24. The process of claim 1 , wherein the dry material consists of the 20 dry carbon particles and the dry binder. 25. The process of claim 1 , wherein the dry material comprises between about 50% to 99% activated carbon. 26. The process of claim 1 , wherein the dry material comprises between about 0% to 25% conductive carbon. 25 27. The process of claim 1 , wherein the dry material comprises between about 0.5% to 20% fluoropolymer particles. 28. The process of claim 1 , wherein the dry material comprises between about 80% to 95% activated carbon and between about 0% to 1 5% conductive carbon, and wherein the 30 dry binder comprises between about 3% to 15% fluoropolymer. 29. The process of claim 1 wherein the matrix comprises a compression density that is greater than about .45 gm/cm 3 ' 30. The process of claim 9, wherein after the compacting step the dry material comprises a density of greater 35 than about .5 gm/cm 3, 31 . A method of manufacturing an electrode, comprising the steps of: mixing dry carbon and dry binder particles;and forming a self-supporting film from the mixed dry particles without the substantial use of any processing additives. 32. The method of claim 31 , wherein the processing additives include: hydrocarbons, high boiling point solvents, antifoaming agents, surfactants, dispersion aids, water, pyrrolidone mineral spirits, ketones, naphtha, acetates, alcohols, glycols, toluene, xylene, and lsopars tm . 33. The method of claim 31 , wherein after the step of mixing, the dry particles comprise a compression density of greater than about .45 gm/cm 3' 15 34. An electro-chemical device product, comprising: a self-supporting film consisting of a dry mix of dry carbon and dry binder particles. 35. The product of claim 34, wherein the dry mix comprises a compression density that is about .485 gm/cm 3' 20 36. The product of claim 34, wherein the film comprises a density of greater between about .5 and .7 gm/cm 3' 37. The product of claim 34, wherein the dry mix is a dry fibrillized mix. 38. The product of claim 37, wherein the dry mix comprises substantially no processing additives. 25 39. The product of claim 37, wherein the processing additives are selected from a group consisting of: hydrocarbons, high boiling point solvents, antifoaming agents, surfactants, dispersion aids, water, pyrrolidone mineral spirits, ketones, naphtha, acetates, alcohols, glycols, toluene, xylene, and lsopars tm . 30 40. The product of claim 37, wherein the dry mix is dry fibrillized by application of a high pressure. 41 . The product of claim 40, wherein the high pressure is applied by a dry high pressure gas. 42. The product of claim 40, wherein the high pressure is applied by 35 air with a dew point of between -20 and -40 degrees F. 43. An electro-chemical device product, comprising: one or more self supporting dry film consisting of a dry fibrillized mix of dry binder and dry carbon particles. 44. The product of claim 43, wherein the self supporting dry film is a compacted film. 5 45. The product of claim 43, wherein the self supporting dry film comprises a thickness of less than 250 microns. 46. The product of claim 44, wherein the self supporting dry film comprises a length of at least 1 meter. 47. The product of claim 43, wherein the self supporting dry film is 10 coupled to a substrate. 48. The product of claim 43, wherein the mix comprises between about 50% to 99% activated carbon. 49. The product of claim 43, wherein the mix comprises between about 0% to 25% conductive carbon. 15 50. The product of claim 43, wherein the mix comprises between about 0.5% to 20% fluoropolymer particles. 51 . The product of claim 43, wherein the mix comprises between about 80% to 95% activated carbon and between about 0% to 1 5% conductive carbon, and wherein the dry 20 binder comprises between about 3% to 15% fluoropolymer. 52.The product of claim 43, wherein the self supporting film comprises no processing additives. 53. The product of claim 52, wherein the processing additives are selected from a group consisting of hydrocarbons, 25 high boiling point solvents, antifoaming agents, surfactants, dispersion aids, water, pyrrolidone mineral spirits, ketones, naphtha, acetates, alcohols, glycols, toluene, xylene, and lsopars tm . 54. The product of claim 47, wherein the substrate comprises a 30 collector. 55. The product of claim 54, wherein the collector comprises aluminum. 56. The product of claim 43, wherein the product comprises a collector, and wherein the dry film is positioned directly against a 35 surface of the collector. 57. The product of claim 43, wherein the dry mix is dry fibrillized by a high-pressure gas. 58. The product of claim 56, wherein the collector comprises two sides, wherein one self supporting dry film is calendered directly against one side of the collector, and wherein a second self supporting dry film is calendered directly against a second side 5 of the collector. 59. The product of claim 43, wherein the binder comprises a thermoplastic. 60. The product of claim 58, wherein the collector is formed to comprise a roll. 10 61 . The product of claim 60, wherein the roll is disposed within a sealed aluminum housing. 62. The product of claim 61 , wherein within the housing is disposed an electrolyte, and wherein the product comprises a double-layer capacitor. 1 5 63. An electro-chemical product, consisting of: a dry fibrillized mix of dry binder and dry conductive particles formed into a continuous self supporting electrode film without the substantial use of any 20 processing additives. 64.The product of claim 63, wherein the processing additives include hydrocarbons, high boiling point solvents, antifoaming agents, surfactants, dispersion aids, water, pyrrolidone 25 mineral spirits, ketones, naphtha, acetates, alcohols, glycols, toluene, xylene, and Isopars'" 1 . 65. The product of claim 63, wherein the product is a capacitor. 66. The product of claim 63, wherein the product is a battery. 30 67. The product of claim 63, wherein the product is a fuel- cell. 68. The product of claim 63, wherein the conductive particles comprise a metal. 35 69. An electro-chemical device, comprising a film comprising a dry fibrillized mix of dry binder and dry carbon particles, the film coupled to a collector, the collector shaped into a roll, the roll impregnated with an electrolyte and disposed within a sealed aluminum housing. 70. The device of claim 69, wherein the film comprises substantially no processing additive. 5 71 . The device of claim 69, wherein the film consists of the dry carbon particles and the dry binder. 72. The device of claim 70, wherein the film is a long compacted self supporting dry film. 73. The device of claim 72, wherein the film comprises a density of 10 about .50 to .70 gm/cm 2 . 74. The device of claim 69, wherein as a dry fibrillized mix the dry particles comprise a compression density of greater than about .45 gm/cm 3' 15 75. An electro-chemical device, comprising: dry process based electrode means for providing conductive electrode functionality in an electro-chemical device. 76. A solventless method for manufacture of an electro-chemical device 20 electrode, comprising the steps of: providing dry carbon particles;providing dry binder particles;and forming the dry carbon and dry binder particles into an electro-chemical device electrode without the use of any solvent. 25 77. The solventless method of claim 71 , wherein the step of forming comprises intermixing the dry carbon and dry binder particles to form an electro-chemical device electrode without the use of any solvent. 30 78. An energy storage device product, comprising: a mix of recyclable particles. 79.The product of claim 78, wherein at least some of the mix is dry fibrillized. 80.The product of claim 78, wherein the mix consists of no 35 processing additive. 81. An energy storage device product, comprising: a film, the film including a mix of particles, wherein at least some of the particles are recycled particles. 82.The product of claim 81 , wherein the particles are fibrillized. 83.The product of claim 82, wherein the recycled particles are fibrillized. 84.The product of claim 81 , wherein the film is a self-supporting film. 5 85.The product of claim 84, wherein the film comprises a thickness of less than 250 microns 86.The product of claim 81 , wherein the film comprises a length of at least 1 meter. 87.The product of claim 81 , wherein the film is coupled directly against a 10 substrate. 88. The product of claim 87, wherein the film comprises substantially no processing additive. 89.The product of claim 87, wherein the substrate comprises a collector. 15 90. The product of claim 81 , wherein the product comprises a collector, and wherein the film is coupled directly against a surface of the collector. 91 The product of claim 90, wherein the collector comprises two sides, wherein one film is calendered directly against one side of the collector, 20 and wherein a second film is calendered directly against a second side of the collector. 92.The product of claim 91 , wherein the collector is treated. 93.The product of claim 91 , wherein the collector is formed to comprise a roll. 25 94.The product of claim 93, wherein the roll is disposed within a sealed aluminum housing. 95.The product of claim 81 , wherein at least some of the particles comprise fibrillizable flouropolymer and carbon particles. 96.The product of claim 18, wherein the carbon particles comprise 30 activated carbon particles and conductive particles. 97.The product of claim 90, wherein at least some of the particles comprise thermoplastic particles. 98. An energy storage product, comprising: a dry mix of recyclable dry 35 binder and dry carbon particles, the particles formed into a continuous self-supporting electrode film without the substantial use of any processing additives. 99. The product of claim 98, wherein the processing additives include hydrocarbons, high boiling point solvents, antifoaming agents, surfactants, dispersion aids, water, pyrrolidone, mineral spirits, ketones, naphtha, acetates, alcohols, glycols, toluene, xylene, and/or lsopars tm . 100. The product of claim 98, wherein at least some of the dry binder comprises a dry fibrillized binder. 5 101. The product of claim 100, wherein the binder is fibrillized by a high- pressure gas. 102. The product of claim 101 , wherein the high-pressure comprises a pressure of more than 60 PSI. 103. The product of claim 102, wherein the gas comprises a water o content of less than about 20 PPM. 104.A method of making an energy storage device electrode, the method comprising the steps of: forming a first electrode film from a plurality of particles;5 and reusing one or more of the plurality of particles to form a second film. 105.The method of claim 104, wherein the plurality of particles are dry fibrillized. 106.The method of claim 104, further comprising a step of coupling a0 first side of the second film to a collector. 107.The method of claim 105, wherein the step of reusing comprises the step of fibrillizing the particles after the particles are used to make the first electrode film. 108.The method of claim 107, wherein the binder comprises a5 flouropolymer. 109.The method of claim 108, wherein the carbon particles comprise conductive carbon particles. 110.The method of claim 107, wherein the first film is self-supporting. 111. The method of claim 110, wherein the particles comprise conductive0 carbon particles and activated carbon particles. 112.The method of claim 106, wherein the films are heated dry films. 113.The method of claim 104, wherein the second film comprises a density of about .50 to .70 gm/cm 2 . 114.The method of claim 107, wherein the first film comprises between5 about 80% to 95% activated carbon, between about 0% to 15% conductive carbon, and between about 3% to 15% fibrillizable fluoropolymer. 11 δ.The method of claim 113, wherein the first film further comprises a thermoplastic.0 116.A capacitor, comprising;a plurality of dry processed particles, the dry processed particles including recycled particles. 117.The capacitor of claim 116, wherein at least some of the dry processed particles are formed as a self-supporting dry electrode film. 5 118.The capacitor of claim 116, further comprising a current collector, wherein the dry processed particles are bonded to the current collector, and wherein the current collector comprises aluminum. 119.The capacitor of claim 116, further comprising a separator, wherein the dry processed particles are bonded to the separator. o 120.The capacitor of claim 119, wherein the separator comprises paper. 121 The capacitor of claim 116, wherein the capacitor is rated to operate at a maximum voltage of 3.0 volts or less. 122The capacitor of claim 117, wherein the dry electrode film comprises a density of about .50 to .70 gm/cm 2 .5 123The capacitor of claim 116, wherein the dry processed particles are compacted into a dry self-supporting electrode film by a single pass compaction device. 124The capacitor of claim 116, further comprising a sealed aluminum housing, wherein the dry processed particles are disposed within the0 housing. 125The capacitor of claim 118, further comprising a sealed aluminum housing, wherein the current collector is coupled to the housing by a laser weld. 126The capacitor of claim 125, wherein the capacitor comprises a jellyroll5 type electrode. 127.A capacitor, the capacitor comprising: a plurality of reusable particles;a collector;the collector having two sides;and0 two electrode film layers, the two electrode film layers comprised of the reusable particles, wherein a first electrode film layer is bonded directly onto a first surface of the collector, and wherein a second electrode film layer is bonded directly onto a second surface of the collector. 128The capacitor of claim 127, wherein the two electrode film layers5 comprise no processing additives. 129.T he capacitor of claim 128, wherein the two electrode layers comprise dry fibrillized particles. 130The capacitor of claim 127, wherein the film layers comprise substantially zero residues as determined by a chemical analysis of the0 layers before impregnation by an electrolyte. 131.An energy storage device, comprising: one or more continuous self supporting intermixed film structure comprised of reused carbon binder particles, the film structure 5 consisting of about zero parts per million processing additive. 132The energy storage device of claim 131 , wherein the additive is selected from the group consisting of hydrocarbons, high boiling point solvents, antifoaming agents, surfactants, dispersion aids, water, pyrrolidone, mineral spirits, ketones, naphtha, acetates, alcohols, glycols, toluene, o xylene, and lsopars tm ' 133The energy storage device of claim 131 , wherein the intermixed film structure is an electrode film. 134The energy storage device of claim 132, wherein the film structure is an energy storage device electrode film. 5 135The energy storage device of claim 134, wherein the electrode film comprises a capacitor electrode film. 136.An energy storage device, comprising: a housing;0 a collector, the collector having an exposed surface;an electrolyte, the electrolyte disposed within the housing;and an electrode film, the electrode film comprised of recycled particles, wherein the electrode film is impregnated with the electrolyte, and wherein the electrode film is coupled directly to the exposed surface.5 137The device of claim 136, wherein the electrode film is substantially insoluble in the electrolyte. 138The device of claim 137, wherein the electrode comprises a binder, wherein the binder is substantially insoluble in the electrolyte. 139The device of claim 138, wherein the binder comprises a thermoplastic,0 and wherein the thermoplastic couples the electrode film to the collector. 140The device of claim 137, wherein the electrolyte is an acetonitrile type of electrolyte. 141.An energy storage device structure, comprising: one or more5 recyclable electrode film, wherein the one or more recyclable electrode film is both conductive and adhesive, and wherein the one or more recyclable electrode film is coupled directly to a current collector. 142.An energy storage device structure, comprising:0 one or more self-supporting recyclable dry process based electrode film. 143The structure of claim 142, wherein the film comprises conductive and adhesive particles. 144 The structure of claim 143, wherein the adhesive particles comprise a thermoplastic. 5 145The structure of claim 144, wherein the electrode is a capacitor electrode. 146.An electrode, comprising: a collector;and 10 a dry process based electrode film, wherein the electrode film is coupled to the collector, wherein the electrode film comprises recycled conductive particles and binder particles. 147The electrode of claim 146, wherein between the collector and the electrode film there exists only one distinct interface. 15 148The electrode structure of claim 146, wherein the binder particles comprise a thermoplastic. 149The electrode of claim 146, wherein the conductive particles comprise conductive carbon. 150The electrode of claim 148, wherein the electrode film further 20 comprises activated carbon. 151 The electrode of claim 146, wherein the conductive particles comprise a metal. 152.An energy storage device structure, comprising: 25 a plurality of recyclable dry processed carbon and binder particles formed as an electrode, wherein as compared to an electrode formed of a plurality of substantially similar carbon and binder particles processed with a processing additive, the intermixed dry processed carbon and binder particles comprises less residue. 30 153. A capacitor, comprising a continuous compacted self supporting recyclable dry electrode film comprised of a dry mix of dry binder and dry carbon particles, the film coupled to a collector, the collector shaped into a roll disposed within a 35 sealed aluminum housing. 154The capacitor of claim 153, wherein the recyclable dry electrode film comprises substantially no processing additive. 1 55. An energy storage device, comprising: 40 dry process recyclable electrode means for providing electrode functionality in an energy storage device.