Perovskite material for methane to ethylene conversion
A catalyst comprising a barium niobate-based cubic perovskite structure where, Mg and Ca has been used to dope the niobium sites along with Fe, Ni, Co, Y, and Pr.
1. A catalyst comprising: a barium niobate-based cubic perovskite structure where, Mg and Ca has been used to dope the niobium sites along with Fe, Ni, Co, Y, and Pr.
2. The catalyst of claim 1 wherein said barium niobate-based cubic perovskite structure has the chemical formula of BaCa 0.33 Nb 0.67-x M x O 3-δ and BaMg 0.33 Nb 0.67-x M x O 3-δ where M is one or more of Fe, Co, Ni, Y, or Pr and the M content is varied from x=0 to x=33.
3. The catalyst of claim 1 wherein said barium niobate-based cubic perovskite structure has the chemical formula of BaCa 0.33 Nb 0.67-x Fe x O 3-δ and BaMg 0.33 Nb 0.67-x Fe x O 3-δ .
4. The catalyst of claim 3 wherein the Fe content is varied from x=0 to x=33.
5. The catalyst of claim 4 wherein said Mg and said Fe are incorporated on said Nb site resulting in oxide ion vacancy creation.
6. The catalyst of claim 4 wherein said barium sites act as adsorption sites for methane while adjacent lattice oxygen remove two hydrogen atoms as water.
7. The catalyst of claim 3 wherein the Fe content is varied from x=0 to x=60.
8. A catalyst for oxidizing methane comprising: a barium niobate-based cubic perovskite structure where, Mg and Ca has been used to dope the niobium sites along with Fe.
9. The catalyst of claim 8 wherein said barium niobate-based cubic perovskite structure has the chemical formula of BaCa 0.33 Nb 0.67-x Fe x O 3-δ and BaMg 0.33 Nb 0.67-x Fe x O 3-δ .
10. The catalyst of claim 9 wherein the Fe content is varied from x=0 to x=33.
11. The claim of catalyst 9 wherein the Mg and Ca content is varied from 0.20 to 0.40.
12. The catalyst of claim 9 wherein said Ca and said Fe are incorporated on said Nb site resulting in oxide ion vacancy creation.
13. The catalyst of claim 9 wherein said barium sites act as adsorption sites for methane while adjacent lattice oxygen remove two hydrogen atoms as water.
14. The catalyst of claim 9 wherein the Fe content is varied from x=0 to x=60.
15. The catalyst of claim 8 wherein said barium niobate-based cubic perovskite structure has the chemical formula of BaCa 0.33 Nb 0.67-x M x O 3-δ and BaMg 0.33 Nb 0.67-x M x O 3-δ where M is one or more of Fe, Co, Ni, Y, or Pr and the M content is varied from x=0 to x=60.
16. A method for the oxidation of methane comprising: providing a feed comprising said light hydrocarbon mixtures; and
contacting said feed with a catalyst comprising a barium niobate-based cubic perovskite structure where, Mg and Ca has been used to dope the niobium sites along with Fe.
17. The method of claim 16 wherein said barium niobate-based cubic perovskite structure has the chemical formula of BaCa 0.33 Nb 0.67-x Fe x O 3-δ and BaMg 0.33 Nb 0.67-x Fe x O 3-δ .
18. The method of claim 16 wherein the Fe content is varied from x=0 to x=60.
19. The method of claim 17 wherein said Mg and said Fe are incorporated on said Nb site resulting in oxide ion vacancy creation.
20. The method of claim 17 wherein said barium sites act as adsorption sites for methane while adjacent lattice oxygen remove two hydrogen atoms as water.
21. The method according to claim 17 , further comprising maintaining said catalyst at a temperature between about 200° C. and about 1000° C.