CA2139604C

Ion transport membranes with catalyzed dense layer

Abstract

The present invention relates to surface catalyzed ion transport membraneswhich demonstrate superior oxygen flux. The membranes comprise a densemulticomponent metallic oxide layer having a first surface and a second surfacewherein the first surface is coated with a catalyst such as a metal or an oxide of ametal selected from Groups II, V, VI, VII, VIII, IX, X, XI, XV and the F Blocklanthanides of the Periodic Table of the Elements. One or more porous layersformed from a mixed conducting multicomponent metallic oxide or a material whichis not mixed conducting under process operating conditions may be formed contiguousto the second surface of the dense layer. The claimed membranes are capable ofseparating oxygen from oxygen-containing gaseous mixtures.

CA2139604C, drawing sheet 1
Sheet 1 of 3

Term

Term ended

Expired 5 January 2015, 11.7 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

3 claims: 3 independent, 0 dependent

  1. 1
    CA 02139604 1998-04-22 wherein the dense mixed conducting multicomponent metallic oxide layer demonstrates an oxygen ionic conductivity ranging from 0.01 ohm^cm'1 to 100 ohm^cm'1 and an electronic conductivity ranging from about 1 ohm^cm’1 to 100 ohm'1cm1. 7. The ion transport membrane according to claim 1, wherein A, A* or A” of the enumerated formula is a Group 2 metal selected from the group consisting of calcium, strontium, barium and magnesium. 8. The ion transport membrane according to claim 1, wherein the dense layer is formed from a mixed conducting multicomponent metallic oxide represented by the formula La^^ Co Fe. 0,. wherein x is between 0 and 1, y is between 0 and 1 and A is selected from barium, strontium or calcium. 9. The ion transport membrane according to claim 1, wherein the dense layer is formed from a mixed conducting multicomponent metallic oxide selected from the group consisting of ^ο.2^0.8^0.8^εο.2θ3-ζ' ^0.2^0.8^0.8^0.2θ3-ζ an$ ^0.2^0.8^0.6^0.2^0.2^3-2 * 10. The ion transport membrane according to claim 1, wherein the dense mixed conducting multicomponent metallic oxide layer is formed from one or a mixture of multicomponent metallic oxides represented by the formula AxA’x,AMx„ByB,y,BMyl,O3.2, where A,A·,A” are chosen from the group comprising Groups 1, 2 and 3 and the F block lanthanides;and Β,Β’,Β are chosen from the D block transition metals according to the Periodic Table of the Elements wherein 0<x<l, 0<x’<l, 0<x<l, 0<y<l, 0<y'<l, 0<y<l, x+x‘+xM=l, y+y’+y”=l and z is a number which renders the compound charge neutral and the porous layer comprises a porous material which does not conduct electrons and oxygen ions at temperatures in excess of 500’C. 11. The ion transport membrane according to claim 10, wherein A,A’ or A” of the enumerated formula is a Group 2 metal selected from the group consisting of calcium, strontium, barium and magnesium. 12. The ion transport membrane according to claim 10, wherein the dense layer is formed from a mixed conducting CA 02139604 1998-04-22 multicomponent metallic oxide represented by the formula La A. Co Fe. 0,. wherein x is between 0 and 1, y is between 0 and 1 and A is selected from barium, strontium or calcium. 13. The ion transport membrane according to claim 10, wherein the dense layer is formed from a mixed conducting multicomponent metallic oxide selected from the group consisting of Lao.2Bao.8Coo.8Feo.2°3-z' ^ro.2Bao.8Coo.8Feo.2°3-z an<* ^0.2Ba0.8C°0.6Cu0.2Fe0.2°3-z· 14. The ion transport membrane according to claim 1, wherein the porous material is selected from the group consisting of a high temperature oxygen compatible metal alloy, metal oxide-stabilized zirconia such as yttria-stabilized zirconia and calcium-stabilized zirconia, ceria or materials which do not conduct electrons or oxygen ions such as alumina, magnesia, silica, titania and compounds and mixtures thereof. 15. The ion transport membrane according to claim 14, wherein the porous layer has an average pore radius which increases as a function of distance away from the dense layer. 16. An ion transport membrane comprising a mixed conducting multicomponent metallic oxide layer having a first surface which is coated with a catalyst comprising a metal or an oxide of a metal selected from Groups II, V, VI, VII, VIII, IX, X, XI and XV and the F Block lanthanides of the Periodic Table of the Elements according to the International Union of pure and Applied Chemistry and a second surface contiguous to a plurality of porous layers, each respective porous layer having a discrete average pore radius wherein the average pore radius of each respective porous layer is larger than the average pore radius of the preceding porous layer as a function of distance from the dense layer. 17. The ion transport membrane according to claim 16, wherein the catalyst comprises a metal or an oxide of a metal selected from the group consisting of platinum, palladium, gold and silver. 18. The ion transport membrane according to claim 16, wherein the catalyst comprises a metal or an oxide of a metal CA 02139604 1998-04-22 selected from the group consisting of bismuth, barium, vanadium, molybdenum, cerium, ruthenium, manganese, cobalt, rhodium and praseodymium. 19. The ion transport membrane according to claim 16, wherein the average pore radius of the porous layer is less than about 10 micrometers. 20. The ion transport membrane according to claim 16, wherein the dense layer has a thickness ranging from 0.01 micrometer to about 500 micrometers and the porous layer has a thickness ranging from 1 micrometer to about 2 millimeters. 21. The ion transport membrane according to claim 16, wherein the dense mixed conducting multicomponent metallic oxide layer demonstrates an oxygen ionic conductivity ranging from 0.01 ohm^cm’1 to 100 ohm’1cm*1 and an electronic conductivity ranging from about 1 ohm'1 cm 1 to 100 ohm 1cm 1. 22. The ion transport membrane according to claim 16, wherein the dense mixed conducting multicomponent metallic oxide layer and the porous layer contiguous with the dense layer are independently formed from one or a mixture of multicomponent metallic oxides represented by the formula AxA,x,Ax-ByB’y.By°5-z/ where A,A·,A” are chosen from the group comprising Groups 1, 2 and 3 and the F block lanthanides;and B,B' ,B” are chosen from the D block transition metals according to the Periodic Table of the Elements wherein 0<χ<1, 0<χ·<1, 0<x'<l, 0<x<l, 0<y<l, 0<y’<l, 0<y<l, x+x’+x=l, y+y’+y=l and z is a number which renders the compound charge neutral. 23. The ion transport membrane according to claim 22, wherein A,A· or A” of the enumerated formula is a Group 2 metal selected from the group consisting of calcium, strontium, barium and magnesium. 24. The ion transport membrane according to claim 23, wherein the dense layer is formed from a mixed conducting multicomponent metallic oxide represented by the formula La A. Co Fe, 0, , wherein x is between 0 and 1, y is between 0 and 1 and A is selected from barium, strontium or calcium. 25. The ion transport membrane according to claim 22, CA 02139604 1998-04-22 wherein the dense layer is formed from a mixed conducting multicomponent metallic oxide selected from the group consisting of ^0.2^0.8^0.8^0.2^-1^ Pro.2Bao.8Coo.8Feo.2°3-z and La0.2Ba0.8CO0.6CU0.2Fe0.2°3-2* 26. The ion transport membrane according to claim 16, wherein the dense mixed conducting multicomponent metallic oxide layer is formed from one or a mixture of multicomponent metallic oxides represented by the formula ΑχΑ’ where A,A·,A” are chosen from the group comprising Groups 1, 2 and 3 and the F block lanthanides;and Β,Β’,Β are chosen from the D block transition metals according to the Periodic Table of the Elements wherein 0<χ<1, 0<χ·<1, 0<x”<l, 0<y<l, 0<y‘<l, 0<y”<l, x+x‘+x”=lr y+y’+y=l and z is a number which renders the compound charge neutral. 27. The ion transport membrane according to claim 26, wherein A,A· or A” of the enumerated formula is a Group 2 metal selected from the group consisting of calcium, strontium, barium and magnesium. 28. The ion transport membrane according to claim 26, wherein the dense layer is formed from a mixed conducting multicomponent metallic oxide represented by the formula La^ xCo F^.y^-z wherein x is between 0 and 1, y is between 0 and 1 and A is selected from barium, strontium or calcium. 29. The ion transport membrane according to claim 26, wherein the dense layer is formed from a mixed conducting multicomponent metallic oxide selected from the group consisting of Lao2Bao.8Coo.8Feo.203-z, Pro.2Bao.8Coo.eFeo.2°3-z and ^a0.2Ba0.8^’°0.6^'U0.2Fe0.2®3-z* 30. The ion transport membrane according to claim 26, wherein the porous material is selected from the group consisting of a high temperature oxygen compatible metal alloy, metal oxide-stabilized zirconia such as yttria-stabilized zirconia and calcium-stabilized zirconia, ceria or materials which do not conduct electrons or oxygen ions, such as alumina, magnesia, silica, titania and compounds and mixtures thereof. CA 02139604 1998-04-22 31. A process for recovering oxygen from an oxygencontaining gaseous mixture which utilizes the ion transport membrane according to claim 1. 32. A process for oxidizing an organic compound which utilizes the ion transport membrane according to claim 1. 33. A process for converting nitrogen oxides into gaseous nitrogen and oxygen which utilizes the ion transport membrane according to claim 1. 34. A process for converting sulfur oxides into sulfur and oxygen which utilizes the ion transport membrane according to claim 1. 35. A process for converting methane into higher hydrocarbons which utilizes the ion transport membrane according to claim 1. PATENT 173PUS05024 ABSTRACT The present invention relates to surface catalyzed ion transport membranes which demonstrate superior oxygen flux. The membranes comprise a dense multicomponent metallic oxide layer having a first surface and a second surface wherein the first surface is coated with a catalyst such as a metal or an oxide of a
  2. 2
    5 metal selected from Groups II, V, VI, VII, VIII, IX, X, XI, XV and the F Block lanthanides of the Periodic Table of the Elements. One or more porous layers formed from a mixed conducting multicomponent metallic oxide or a material which is not mixed conducting under process operating conditions may be formed contiguous to the second surface of the dense layer. The claimed membranes are capable of
  3. 3
    10 separating oxygen from oxygen-containing gaseous mixtures.