IP Library Granted Patent US 7,416,803
Granted Patent B2
US 7,416,803 · App. 10/211,882 · Granted Aug 26, 2008

Solid acid electrolytes for electrochemical devices

Assignee: California Institute of Technology
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Quick Facts
Patent No.
US 7,416,803
App. No.
10/211,882
Granted
Aug 26, 2008
Kind
B2
Abstract

Improved solid acid electrolyte materials, methods of synthesizing such materials, and electrochemical devices incorporating such materials are provided. The stable electrolyte material comprises a solid acid capable undergoing rotational disorder of oxyanion groups and capable of extended operation at elevated temperatures, that is, solid acids having hydrogen bonded anion groups; a superprotonic, trigonal, tetragonal, or cubic, disordered phase; and capable of being operating at temperatures of ˜100° C. and higher.

Claims (57)

1. A fuel cell comprising an electrolyte membrane operative in the presence of water vapor, wherein said electrolyte membrane comprises

a solid acid having a crystal structure which becomes disordered with concomitant high conductivity upon achieving a superprotonic phase; and

said electrolyte membrane being capable of operation at temperatures of at least 100° C. in the presence of water vapor.

2. An electrolyte membrane, said membrane comprising:

a solid acid of the general form: (M x M′ 1−x ) 3 H 3x (YO 4 ) 2 , where M is any alkali or transition metal or other functional group having a +1 charge, M′ is any alkaline earth or transition metal having a +2 charge, Y is selected from the group consisting of P, As, and mixture thereof, and X is less than or equal to 1; and

said electrolyte membrane being capable of operation at temperatures of at least 100° C.

3. An electrolyte membrane, said membrane comprising:

a solid acid of the general form: M′ 3 H 2x [(Y 1−x , A x )O 4 ] 2 , where M′ is any alkaline earth or transition metal having a +2 charge, A is one of either Si or Ge, Y is selected from the group consisting of P, As, and mixture thereof, and X is less than or equal to 1; and

said electrolyte membrane being capable of operation at temperatures of at least 100° C.

4. The electrolyte membrane as described in claim 2 , wherein M is selected from the group consisting of: Li, Na, K, Rb, Cs, Fr, and NH 4 .

5. The electrolyte membrane as described in claim 2 or 3 , wherein M′ is selected from the group consisting of: Be, Mg, Ca, Sr, Ba, Ra, and Pb.

6. The electrolyte membrane as described in claims 2 or 3 , further comprising a structural binder material.

7. The electrolyte membrane as described in claim 6 , wherein the structural binder material is a species selected from the group consisting of: graphite, polymers, ceramics, glasses, and metals.

8. The electrolyte membrane as described in claims 2 or 3 , further comprising a separate conducting material.

9. The electrolyte membrane as described in claim 8 , wherein the conducting material is selected from the group consisting of: conducting polymer, metals and an electronically conducting carbon material.

10. The electrolyte membrane as described in claims 2 or 3 , wherein said solid acid includes at least one variable valence element.

11. The electrolyte membrane as described in claims 2 or 3 wherein said solid acid is water insoluble.

12. The electrolyte membrane as described in claims 2 or 3 , wherein said solid acid is thermally stable at temperatures above 100° C.

13. The electrolyte membrane as described in claims 2 or 3 , wherein said solid acid conducts protons.

14. The electrolyte membrane as described in claims 2 or 3 , wherein said solid acid has a proton conductivity of about 10 −5 Ω −1 cm −1 or higher at the temperature of utilization.

15. The electrolyte as described in claim 2 or 3 , wherein said solid acid conducts both protons and electrons.

16. An electrochemical device incorporating the solid acid electrolyte membrane described in any of claim 2 or 3 .

17. The electrochemical device as described in claim 16 , wherein the device is selected from the group consisting of: fuel cells, batteries, hydrogen separation membranes, and membrane reactors.

18. An electrolyte membrane, said membrane comprising:

i) a solid acid of the general form: (M x M′ 1−x ) 3 H 3x (YO 4 ) 2 , wherein M is an alkali or a transition metal or other functional group having a +1 charge, M′ is an alkaline earth or a transition metal having a +2 charge; Y is selected from the group consisting of P, As, and mixture thereof; and X is less than or equal to 1;

ii) a separate conducting material selected from the group consisting of a conducting polymer, a metal and an electronically conducting carbon material; and

iii) said electrolyte membrane being capable of operation at temperatures of at least 100° C.

19. An electrolyte membrane, said membrane comprising:

i) a solid acid of the general form: (M x M′ 1−x ) 3 H 3x (YO 4 ) 2 , where M is any alkali or transition metal or other functional group having a +1 charge, M′ is any alkaline earth or transition metal having a +2 charge; Y is selected from the group consisting of P, As, and mixture thereof; and x is less than or equal to 1; wherein said solid acid includes at least one variable valence element; and

ii) said electrolyte membrane being capable of operation at temperatures of at least 100° C.

20. An electrolyte membrane, said membrane comprising:

i) a solid acid of the general form: (M x M′ 1−x ) 3 H 3x (YO 4 ) 2 , where M is any alkali or transition metal or other functional group having a +1 charge, M′ is any alkaline earth or transition metal having a +2 charge; Y is selected from the group consisting of P, As, and mixture thereof; and x is less than or equal to 1; wherein said solid acid includes at least one variable valence element; and

ii) said electrolyte membrane being capable of operation at temperatures of at least 100° C. and conducting both protons and electrons.

21. An electrolyte membrane, said membrane comprising:

i) a solid acid of the general form: M′ 3 H 2x [(Y 1−x , A x )O 4 ] 2 , wherein M′ is an alkaline earth or a transition metal having a +2 charge; A is Si or Ge; Y is selected from the group consisting of P, As, and mixture thereof; and x is less than or equal to 1;

ii) a separate conducting material selected from the group consisting of a conducting polymer, a metal and an electronically conducting carbon material; and

iii) said electrolyte membrane being capable of operation at temperatures of at least 100° C.

22. An electrolyte membrane, said membrane comprising:

i) a solid acid of the general form: M′ 3 H 2x [(Y 1−x , A x )O 4 ] 2 , wherein M′ is an alkaline earth or a transition metal having a +2 charge; A is Si or Ge; Y is selected from the group consisting of P, As, and mixture thereof; and x is less than or equal to 1; wherein said solid acid includes at least one variable valence element; and

ii) said electrolyte membrane being capable of operation at temperatures of at least 100° C.

23. An electrolyte membrane, said membrane comprising:

i) a solid acid of the general form: M′ 3 H 2x [(Y 1−x , A x )O 4 ] 2 , wherein M′ is an alkaline earth or a transition metal having a +2 charge; A is Si or Ge; Y is selected from the group consisting of P, As, and mixture thereof; and x is less than or equal to 1; wherein said solid acid includes at least one variable valence element; and

ii) said electrolyte membrane being capable of operation at temperatures of at least 100° C. and conducting both protons and electrons.

24. The fuel cell of claim 1 , further comprising a structural binder material.

25. The fuel cell of claim 24 , wherein the structural binder material is a species selected from the group consisting of: graphite, polymers, ceramics, glasses, and metals.

26. The fuel cell of claim 1 , further comprising a separate conducting material.

27. The fuel cell of claim 26 , wherein the conducting material is selected from the group consisting of: conducting polymer, metals and an electronically conducting carbon material.

28. The fuel cell as described in claim 1 , wherein said solid acid is thermally stable at temperatures above 100° C.

29. The fuel cell as described in claim 1 , wherein said solid acid conducts protons.

30. The fuel cell as described in claim 1 , wherein said solid acid has a proton conductivity of about 10 −5 Ω −1 cm −1 or higher at the temperature of utilization.

31. The fuel cell as described in claim 1 , wherein said solid acid conducts both protons and electrons.

32. An electrochemical device comprising an electrolyte membrane operative in the presence of water vapor, wherein said electrolyte membrane comprises

a solid acid having a crystal structure which becomes disordered with concomitant high conductivity upon achieving a superprotonic phase;

said electrolyte membrane being capable of operation at temperatures of at least 100° C.; and

wherein the electrochemical device is selected from the group consisting of a fuel cell, a hydrogen separation membrane, membrane reactors and an electrolysis cell

said electrolyte membrane of said fuel cell, said hydrogen separation membrane and said membrane reactor being in contact with an atmosphere containing water vapor; and

said electrolyte membrane of said electrolysis cell being in contact with water.

Assignments (2)
SECURITY AGREEMENT Recorded Aug 4, 2008
From: SUPERPROTONIC, INC.
To: TRIPLEPOINT CAPITAL LLC
Reel/Frame 021328/0833 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 5, 2003
From: HAILE, SOSSINA M.; CHISOLM, CALUM; MERLE, RYAN B.; BOYSEN, DANE A.; NARAYANAN, SEKHARIPURAM R.
To: CALIFORNIA INSTITUTE OF TECHNOLOGY
Reel/Frame 013730/0884 →
Continuity (7)
Continuation In Part 0943937700 · Nov 15, 1999
Provisional Application 6035536200 · Feb 6, 2002
Provisional Application 6030980700 · Aug 1, 2001
Provisional Application 6015181100 · Aug 30, 1999
Provisional Application 6014694600 · Aug 2, 1999
Provisional Application 6011674100 · Jan 22, 1999
Related Publication 20030104258A1 · Jun 5, 2003