Claims
- 1. A two phase catalyst comprising a molecular sieve having a pore size not less than about 4 Å supported transition metal and a stabilizing oxide.
- 2. The two phase catalyst of claim 1, wherein the molecular sieve is a zeolite of one or more of zeolite Y, zeolite beta, mordenite, ferrierite, ZSM-5, and ZSM-12.
- 3. The two phase catalyst of claim 2, wherein the transition metal is one or more of Cu, Co, Fe and Mo and the stabilizing oxide is one or more of the oxides of Ce, Zr, Mo, V and Nb.
- 4. The two phase catalyst of claim 1, wherein the two phases are a physical mixture.
- 5. The two phase catalyst of claim 1, wherein the zeolite is impregnated with the stabilizing oxide.
- 6. A two phase catalyst comprising a zeolite supported transition metal and a stabilizing oxide.
- 7. The two phase catalyst of claim 6, wherein the zeolite has a pore size not less than about 4 Å.
- 8. The two phase catalyst of claim 6, wherein the zeolite has a pore size in the range of from about 4 Å to about 8 Å.
- 9. The two phase catalyst of claim 6, wherein the zeolite is one or more of zeolite beta, mordenite, ferrierite, ZSM-5, ZSM-12, and zeolite Y.
- 10. The two phase catalyst of claim 7, wherein the transition metal is one or more of Cu, Co, Fe and Mo.
- 11. The two phase catalyst of claim 7, wherein the stabilizing oxide is one or more of the rare earth oxides, zirconium oxide, molybdenum oxide, vanadium oxide and niobium oxide.
- 12. The two phase catalyst of claim 10, wherein the stabilizing oxide one or more of the oxides of Ce, Zr, Mo, V and Nb.
- 13. The two phase catalyst of claim 12, wherein the transition metal includes Cu and the stabilizing oxide includes CeO2.
- 14. The two phase catalyst of claim 13, wherein the zeolite has both Al and Si and the Si to Al ratio is between about 238 and about 17.
- 15. The two phase catalyst of claim 6, wherein the two phases are a physical mixture.
- 16. The two phase catalyst of claim 6, wherein the stabilizing oxide is impregnated on the zeolite.
- 17. A method of remediating the concentration of nitrogen oxides (NOx) in the exhaust from lean burn combustion in the presence of water comprising contacting the exhaust containing water and NOx with one or more of an alkane or alkene reductant or mixtures thereof at a temperature of not greater than about 600° C. with a two part catalyst comprising a molecular sieve having a pore size not less than about 4 Å supported transition metal and a stabilizing oxide.
- 18. The method of claim 17, wherein the molecular sieve is a zeolite.
- 19. The catalyst of claim 18, wherein the zeolite has a pore size in the range of from about 4 Å to about 8 Å.
- 20. The method of claim 18, wherein the zeolite is one or more of zeolite beta, mordenite, ferrierite, ZSM-5, ZSM-12, and zeolite Y.
- 21. The method of claim 17, wherein the transition metal is one or more of Cu, Co, Fe and Mo.
- 22. The method of claim 17, wherein the stabilizing oxide is one or more of the rare earth oxides, zirconium oxide, molybdenum oxide, vanadium oxide and niobium oxide.
- 23. The method of claim 18, wherein the stabilizing oxide is one or more of the oxides of Ce, Zr, Mo, V and Nb and the transition metal is one or more of Cu, Co, Fe and Mo.
- 24. The method of claim 23, wherein the transition metal includes Cu and the stabilizing oxide includes CeO2.
- 25. The method of claim 24, wherein the zeolite has both Al and Si and the Si to Al ratio is between about 238 and about 17.
- 26. The method of claim 17, wherein the reductant is a C1 to C16 hydrocarbon.
- 27. The method of claim 17, wherein nitrogen oxides are present in a concentration of the exhaust gas of not less than about 100 ppm.
- 28. The method of claim 17, wherein nitrogen oxides are present in a concentration of the exhaust gas in the range of from about 100 ppm to about 2000 ppm.
- 29. The method of claim 27, wherein the exhaust contacting the catalyst is at a temperature less than about 500° C.
- 30. The method of claim 27, wherein the exhaust contacting the catalyst is at a temperature less than about 350° C. and has water present in the exhaust at a concentration of not less than about 10% by volume.
CONTRACTUAL ORIGIN OF THE INVENTION
[0001] The United States Government has rights in this invention pursuant to Contract No. W-31-109-ENG-38 between the U.S. Department of Energy (DOE) and The University of Chicago representing Argonne National Laboratory.