Claims
- 1. A transition metal complex, comprising a diazaphosphacycle of formula III and a transition metal, wherein the phosphorus atom of the diazaphosphacycle is bonded to the transition metal and the diazaphosphacycle of formula III has the following structure
- 2. The transition metal complex of claim 1, wherein the transition metal is selected from the group consisting of Rh, Ru, Pd, Pt, Ir, Ni, Co, and Fe.
- 3. The transition metal complex of claim 1, wherein the transition metal complex has catalytic activity.
- 4. The transition metal complex of claim 1, wherein n is 0.
- 5. The transition metal complex of claim 4, wherein R4 and R5 are both-H.
- 6. The transition metal complex of claim 4, wherein R4 is a —C(═O)—R6 group and R5 is a —C(═O)—R7 group.
- 7. The transition metal complex of claim 6, wherein, the diazaphosphacycle has the formula IX
- 8. The transition metal complex of claim 7, wherein the transition metal is selected from the group consisting of Rh, Ru, Pd, Pt, Ir, Ni, Co, and Fe.
- 9. The transition metal complex of claim 7, wherein the transition metal complex has catalytic activity.
- 10. The transition metal complex of claim 1, wherein Y is a cycloalkyl group, wherein one of the N atoms is bonded to a first ring member C atom of the cycloalkyl group and the other N atom is bonded to a second ring member C atom that is bonded to the first ring member C atom.
- 11. The transition metal complex of claim 1, wherein Y has the formula
- 12. The transition metal complex of claim 1, wherein the diazaphosphacycle has the formula IIIA, the formula IIIB, or is a mixture thereof
- 13. The transition metal complex of claim 12, wherein the transition metal is selected from the group consisting of Rh, Ru, Pd, Pt, Ir, Ni, Co, and Fe.
- 14. The transition metal complex of claim 12, wherein the transition metal complex has catalytic activity.
- 15. The transition metal complex of claim 1, wherein the diazaphosphacycle has the formula IIIC
- 16. The transition metal complex of claim 1, wherein the diazaphosphacycle is present as a mixture of enantiomers.
- 17. The transition metal complex of claim 1, wherein the diazaphosphacycle has the formula X
- 18. The transition metal complex of claim 17, wherein L is selected from the group consisting of ethane, ethylene, propane, benzene, anthracene, 9,10-dihydroanthracene, xanthene, and ferrocene.
- 19. The transition metal complex of claim 17, wherein the transition metal is selected from the group consisting of Rh, Ru, Pd, Pt, Ir, Ni, Co, and Fe.
- 20. The transition metal complex of claim 17, wherein two of the phosphorus atoms of the diazaphosphacycle are bonded to the transition metal.
- 21. A method for synthesizing the transition metal complex of claim 1, comprising, reacting a diazaphosphacycle of formula III with a starting transition metal complex to provide the transition metal complex of claim 1, wherein the diazaphosphacycle of formula III has the following structure
- 22. The method of claim 21, wherein the starting transition metal complex comprises at least one ligand that is replaced by the diazaphosphacycle.
- 23. The method of claim 22, wherein the at least one ligand that is replaced by the diazaphosphacycle is selected from the group consisting of phosphines, amines, diamines, CO, Cl, Br, nitriles, 1,5-cyclooctadiene, norbornadiene, and other dienes, alkenes, arenes, ketones, alcohols, ethers, thiols, and sulfoxides.
- 24. The method of claim 21, wherein the diazaphosphacycle has the formula X
- 25. A method of catalyzing a chemical reaction, comprising: catalyzing the chemical reaction with the transition metal complex of claim 1.
- 26. The method of claim 25, wherein the chemical reaction is selected from the group consisting of a hydrogenation reaction, a hydrogenolysis reaction, a hydrosilylation reaction, a hydroboration reaction, a hydroamination reaction, a hydroformylation reaction, a hydroacylation reaction, a hydrocaroboxylation reaction, a hydroesterification reaction, a hydrocarboxamidation reaction, a carbonylation reaction, a double carbonylation reaction, a hydrocyanation reaction, a metathesis reaction, a cycloaddition reaction, a cyclopropanation reaction, an isomerization reaction, a disproprotionation reaction, an aziridination reaction, a cross-coupling reaction, a diborylation reaction, a dehydrogenation reaction, an allylic alkylation reaction, an allylic amination reaction, an allylic esterification reaction, an amination reaction, and an etherification reaction.
- 27. The method of claim 25, wherein the chemical reaction is selected from the group consisting of a hydrogenation reaction, a hydroformylation reaction, and an allylic alkylation reaction.
- 28. The method of claim 27, wherein the chemical reaction is the hydrogenation of an alkene, an alkyne, a ketone, an imine, an oxime, an aldehyde, a nitrile, an arene, a carboxylic acid, an ester, an acid anhydride, or a nitro group.
- 29. The method of claim 27, wherein the chemical reaction is the hydrogenation of an alkene.
- 30. The method of claim 27, wherein the chemical reaction is the hydroformylation of an alkene.
- 31. The method of claim 27, wherein the chemical reaction is an allylic alkylation reaction.
CROSS REFERENCES TO RELATED APPLICATIONS
[0001] This application is a divisional of and claims priority to U.S. Ser. No. 09/911,367, filed Jul. 23, 2001, the entire disclosure of which is hereby incorporated by reference in its entirety and for all purposes as if fully set forth herein.
GOVERNMENT RIGHTS
[0002] This invention was made with United States government support awarded by the following agency: DOE DE-FG02-99ER14949. The United States has certain rights in this invention.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09911367 |
Jul 2001 |
US |
Child |
10787554 |
Feb 2004 |
US |