Ceramic materials for gas separation and oxygen storage
A manganese oxide contains M1, optionally M2, Mn and O. M1 is selected from the group consisting of In, Sc, Y, Dy, Ho, Er, Tm, Yb and Lu. M2 is different from M1, and M2 is selected from the group consisting of Bi, In, Sc, Y, La, Ce, Pr, Nd, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb and Lu. These ceramic materials are hexagonal in structure, and provide superior materials for gas separation and oxygen storage.
1. A manganese oxide, comprising M1, optionally M2, Mn and O , wherein:
M1 is Y,
M2 is different from M1, and M2 is selected from the group consisting of La, Ce, Pr, Nd, Sm, Eu, Gd, Tb and Dy,
Mn and O are present in an atomic ratio of 1:z, and z is at least 3.15 and
the Mn has a formal oxidation state between 3 and 4.
2. The manganese oxide of claim 1 , wherein z is at least 3.2.
3. The manganese oxide of claim 1 , wherein z is at least 3.25.
4. The manganese oxide of claim 1 , wherein M1 and M2 are present in an atomic ratio of x:1−x, and x=0.1 to 1.
5. The manganese oxide of claim 4 , wherein x=0.3 to 1.
6. The manganese oxide of claim 1 , wherein M1 is Y and M2 is Dy.
7. The manganese oxide of claim 4 , wherein M1 and Mn are present in an atomic ratio of 1:y, and 0<y≦10.
8. The manganese oxide of claim 1 , having an average temperature of maximum oxygen absorption upon heating and cooling, T maxA , of at most 400° C., and a temperature of maximum oxygen desorption, T maxD , of at most 400° C.
9. The manganese oxide of claim 1 , having a hexagonal structure.
10. An oxygen conducting membrane, comprising:
(1) the manganese oxide of claim 1 , and
(2) a support material,
wherein the membrane has first and second opposing surfaces,
the membrane is not permeable to nitrogen gas,
the manganese oxide forms a contiguous structure exposed on both the first and second opposing surfaces, and
the support material comprises at least one member selected from the group consisting of an organic polymer, a silicone rubber and glass.
11. The oxygen conducting membrane of claim 10 , wherein M1 is Y and M2 is Dy.
12. The oxygen conducting membrane of claim 10 , wherein the manganese oxide has an average temperature of maximum oxygen absorption upon heating and cooling, T maxA , of at most 400° C., and a temperature of maximum oxygen desorption, T maxD , of at most 400° C.
13. A manganese oxide, comprising M1, M2, Mn and O , wherein:
M1 is,
M2 is different from M1, and M2 is selected from the group consisting of La, Ce, Pr, Nd, Sm, Eu, Gd, Tb and Dy,
M1 and M2 are present in an atomic ratio of x:1−x, and x=0.1 to 0.9, and
Mn and O are present in an atomic ratio of 1:z, and z>3.
14. The-manganese oxide of claim 13 , wherein z is at least 3.15.
15. The manganese oxide of claim 14 , wherein z is at least 3.2.
16. The manganese oxide of claim 14 , wherein z is at least 3.25.
17. The manganese oxide of claim 13 , wherein x=0.3 to 0.9.
18. The manganese oxide of claim 13 , wherein M1 is Y and M2 is Dy.
19. The manganese oxide of claim 13 , having an average temperature of maximum oxygen absorption upon heating and cooling, T maxA , of at most 400° C., and a temperature of maximum oxygen desorption, T maxD , of at most 400° C.
20. The manganese oxide of claim 13 , having a hexagonal structure.
21. An oxygen conducting membrane, comprising:
(1) the manganese oxide of claims 13 , and
(2) a support material,
wherein the membrane has first and second opposing surfaces,
the membrane is not permeable to nitrogen gas,
the manganese oxide forms a contiguous structure exposed on both the first and second opposing surfaces, and
the support material comprises at least one member selected from the group consisting of an organic polymer, a silicone rubber and glass.