Claims
- 1. An oxidation catalyst comprising an activated partially-reduced metal ion polyoxometallate containing a framework metal bonded through oxygen atoms to at least one heteroatom and charge balanced with at least one Group 3-13 reducible metal ion.
- 2. The catalyst of claim 1 wherein the framework metal atom is a Group 5 or 6 atom.
- 3. The catalyst of claim 1 wherein the framework metal atom is molybdenum and the heteroatom is phosphorus.
- 4. The catalyst of claim 1 wherein the reducible metal ion is one or more ions of niobium, titanium, zirconium, vanadium, yttrium, cerium, chromium, molybdenum, tantalum, iron, bismuth, copper, tellurium, antimony, cobalt, or nickel.
- 5. The catalyst of claim 1 wherein the reducible metal ion is one or more ions of niobium, titanium, molybdenum, or zirconium.
- 6. The catalyst of claim 1 wherein the reducible metal ion is niobium ion.
- 7. The catalyst of claim 5 wherein the reducible metal ion is niobium ion, the framework atom is molybdenum and the heteroatom is phosphorus.
- 8. The catalyst of claim 1 wherein a quaternary ammonium adduct, niobium ion exchanged, polyoxomolybdate precursor is formed and activated by heating the precursor in a non-oxidizing atmosphere to an effective activation temperature and time sufficient to form a catalytically active phase.
- 9. The catalyst of claim 8 wherein the activation temperature is below the formation temperature of molybdenum oxide.
- 10. An oxidation catalyst comprising an activated partially-reduced niobium polyoxomolybdate.
- 11. An oxidation catalyst of claim 10 wherein a niobium exchanged polyoxomolybdate is activated by heating a pyridinium adduct of the polyoxomolybdate to an effective activation temperature of between 375 and 450° C. in a non-oxidizing atmosphere.
- 12. An oxidation catalyst of claim 11 also containing vanadium.
- 13. An oxidation catalyst precursor comprising:
a polyoxoanion {XxMmQqOy}−e wherein X is a Group 12-16 element, M is a Group 5-6 element, Q is a Group element, 0 is oxygen, e is the charge of the polyoxoanion, x is 1 to 5, m is 5 to 20, q is 0 to 10, and y is 18 to 62; and onto which has been exchanged a charge-balancing number of niobium and quaternary ammonium cations.
- 14. The oxidation catalyst precursor of claim 13 wherein the quaternary ammonium cation is pyridine and is added in excess of a charge balancing amount.
- 15. An oxidation catalyst precursor comprising:
a polyoxometallate: AbCc{PxMmVnOy} wherein x=1 or 2; m=10-18.; n=0-4, and y=40-62, A is quaternary ammonium ion, C is one or more Group 3-13 reducible metal ions, and b and c are calculated to balance the charge of the polyoxoanion {PxMmVnOy}.
- 16. The oxidation catalyst precursor of claim 15 wherein the quaternary ammonium ion is ammonium, tetraalkylammonium, pyridinium, quinoliuum, and protonated aromatic and aliphatic amines.
- 17. An oxidation catalyst precursor of claim 15 comprising:
a polyoxomolybdate: (Pyr)aNbc{PxMomVnOy} wherein x=1 or 2; m=10-18; n=0-4, and y=40-62, Pyr is pyridinium ion, and a and c are calculated to balance the charge of the polyoxoanion {PxMomVnOy}.
- 18. An oxidation catalyst formed by activating the catalyst precursor of claim 15 by heating in a non-oxidizing atmosphere to a temperature sufficient to form a catalytically active phase and below molybdenum oxide formation temperature.
- 19. A method of making an oxidation catalyst comprising
a. forming a polyoxoanion containing Mo, P, O, and optionally V; b. exchanging the polyoxoanion with charge balancing amounts of Nb and pyridinium to form a polyoxomolybdate; c. activating the exchanged polyoxomolybdate by heating to 400 to 450° C. in a non-oxidizing atmosphere for a time sufficient to form a catalytically active phase of niobium polyoxomolybdate.
- 20. A process of converting a hydrocarbon or a substituted hydrocarbon to a partially oxidized product comprising contacting a hydrocarbon feedstream with an activated partially-reduced metal ion polyoxometallate catalyst of claim 1 in the presence of a source of oxygen under partial oxidation conditions.
- 21. A process of oxidizing a C3 hydrocarbon to a mixture containing acrylic acid comprising contacting a C3 hydrocarbon feedstream with the catalyst of claim 11 in the presence of a source of oxygen under oxidation conditions.
- 22. A process of oxidizing a C4 hydrocarbon to a mixture containing maleic acid comprising contacting a C4 hydrocarbon feedstream with the catalyst of claim 11 in the presence of a source of oxygen under oxidation conditions.
- 23. A process of oxidizing a C3 hydrocarbon to a mixture containing maleic acid comprising contacting a C3 hydrocarbon feedstream with the catalyst of claim 12 in the presence of a source of oxygen under oxidation conditions.
- 24. A process of oxidizing a C2 hydrocarbon to a mixture containing acetic acid comprising contacting a C2 hydrocarbon feedstream with a catalyst of claim 11 in the presence of a source of oxygen under oxidation conditions.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/335,316, filed Nov. 2, 2001, and U.S. Provisional Application No. 60/405,575, filed Aug. 23, 2002, both of which are incorporated by reference herein.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60335316 |
Nov 2001 |
US |
|
60405575 |
Aug 2002 |
US |