Claims
- 1. A process for producing a tri-osmium heteronuclear metal carbonyl compound, which comprises establishing, in the presence of gaseous hydrogen, a reaction mixture comprising an electron deficient cobalt, nickel, iron, molybdenum or rhodium carbonyl, H.sub.2 Os.sub.3 (CO).sub.10 and a solvent which at least partially solubilizes at least one of said electron deficient carbonyl and said H.sub.2 Os.sub.3 (CO).sub.10, said reaction mixture being established in the substantial absence of molecular oxygen and water, and recovering said tri-osmium heteronuclear metal carbonyl compound from said reaction mixture.
- 2. A process according to claim 1 wherein said electron deficient carbonyl is a cobalt, nickel, molybdenum or rhodium carbonyl.
- 3. A process according to claim 1 wherein said solvent solubilizes both said electron deficient carbonyl and said H.sub.2 Os.sub.3 (CO).sub.10.
- 4. A process according to claim 1 wherein said solvent is an ether solvent, and aromatic solvent or a chlorohydrocarbon solvent.
- 5. A process according to claim 4 wherein said solvent is toluene or methylene chloride.
- 6. A process according to claim 1 wherein the molar ratio of said electron deficient carbonyl to said H.sub.2 Os.sub.3 (CO).sub.10 is at least about stoichiometric.
- 7. A process according to claim 1 wherein said electron deficient carbonyl is generated in situ in said reaction mixture.
- 8. A process according to claim 1 wherein said gaseous hydrogen is bubbled through said reaction mixture.
- 9. A process according to claim 2 wherein said electron deficient carbonyl is Co.sub.2 (CO).sub.8 and said tri-osmium heteronuclear metal carbonyl produced is H.sub.3 CoOs.sub.3 (CO).sub.12.
- 10. A process according to claim 9 wherein said reaction mixture comprises said Co.sub.2 (CO).sub.8 and said H.sub.2 Os.sub.3 (CO).sub.10 in a molar ratio of at least about 1:1 and a non-polar solvent in which said cobalt and tri-osmium compounds are soluble, said reaction mixture being established at a temperature not above about room temperature and said gaseous hydrogen being bubbled through said reaction mixture.
- 11. A process according to claim 10 wherein said solvent is a chlorohydrocarbon.
- 12. A process according to claim 11 wherein said solvent is methylene chloride.
- 13. A process according to claim 10 wherein said reaction mixture is chromatographed on silica gel using a hexane/benzene liquid phase to separate said H.sub.3 CoOs.sub.3 (CO).sub.12 from Co.sub.4 (CO).sub.12 by-product.
- 14. A process according to claim 2 wherein said electron deficient carbonyl is [(.eta..sup.5 -C.sub.5 H.sub.5)Ni(CO)].sub.2 and said tri-osmium heteronuclear metal carbonyl produced is H.sub.3 (.eta..sup.5 -C.sub.5 H.sub.5)NiOs.sub.3 (CO).sub.9.
- 15. A process according to claim 14, wherein said reaction mixture comprises said [(.eta..sup.5 -C.sub.5 H.sub.5)Ni(CO)].sub.2 and said H.sub.2 Os.sub.3 (CO).sub.10 in a molar ratio of at least about 1:1 and a non-polar solvent in which said nickel and tri-osmium compounds are soluble, said reaction mixture being established at a temperature in the range of about 80.degree. to about 120.degree. C. and said gaseous hydrogen being bubbled through said reaction mixture.
- 16. A process according to claim 15 wherein said solvent is an aromatic solvent.
- 17. A process according to claim 16 wherein said solvent is toluene.
- 18. A process according to claim 15 wherein said reaction mixture is established at a temperature of about 90.degree. C.
- 19. A process according to claim 2 wherein said electron deficient carbonyl is [(.eta..sup.5 -C.sub.5 H.sub.5)Mo(CO).sub.3 ].sub.2 and said tri-osmium heteronuclear metal carbonyl compound produced comprises at least one of H.sub.3 (.eta..sup.5 -C.sub.5 H.sub.5)MoOs.sub.3 (CO).sub.12, H(.eta..sup.5 -C.sub.5 H.sub.5)MoOs.sub.3 (CO).sub.14 and H.sub.3 (.eta..sup.5 -C.sub.5 H.sub.5)MoOs.sub.3 (CO).sub.11.
- 20. A process according to claim 19 wherein said reaction mixture comprises said [(.eta..sup.5 -C.sub.5 H.sub.5)Mo(CO).sub.3 ].sub.2 and said H.sub.2 Os.sub.3 (CO).sub.10 in a molar ratio of at least about 1:1 and a non-polar solvent in which said molybdenum and tri-osmium compounds are soluble, said reaction mixture being established at a temperature in the range of about 80.degree. to about 120.degree. C. and said gaseous hydrogen being bubbled through said reaction mixture.
- 21. A process according to claim 20 wherein said solvent is an aromatic solvent.
- 22. A process according to claim 21 wherein said solvent is toluene.
- 23. A process according to claim 20 wherein said reaction mixture is established at a temperature of about 90.degree. C.
- 24. A process according to claim 20 wherein said reaction mixture is chromatographed on silica gel using a hexane-benzene liquid phase to separate the products of said reaction.
- 25. A process according to claim 2 wherein said electron deficient carbonyl wherein (.eta..sup.5 -C.sub.5 H.sub.5)Co(CO).sub.2 and said tri-osmium heteronuclear metal carbonyl produced comprises at least one of H.sub.2 (.eta..sup.5 -C.sub.5 H.sub.5)CoOs.sub.3 (CO).sub.10, H.sub.3 (.eta..sup.5 -C.sub.5 H.sub.5)CoOs.sub.3 (CO).sub.9, and H.sub.4 (.eta..sup.5 -C.sub.5 H.sub.5)CoOs.sub.3 (CO).sub.9.
- 26. A process according to claim 25 wherein said reaction mixture comprises said (.eta..sup.5 -C.sub.5 H.sub.5)Co(CO).sub.2 and said H.sub.2 Os.sub.3 (CO).sub.10 in a molar ratio of at least 1:1 and a non-polar solvent in which said cobalt said tri-osmium compounds are soluble, said reaction mixture being established at a temperature in the range of about 80.degree. to about 120.degree. C. and said gaseous hydrogen being bubbled through said reaction mixture.
- 27. A process according to claim 26 wherein said reaction mixture comprises about 5 moles of said (.eta..sup.5 -C.sub.5 H.sub.5)Co(CO).sub.2 per mole of said H.sub.2 Os.sub.3 (CO).sub.10.
- 28. A process according to claim 26 wherein said solvent is an aromatic solvent.
- 29. A process according to claim 28 wherein said solvent is toluene.
- 30. A process according to claim 26 wherein said reaction mixture is established at a temperature of about 90.degree. C.
- 31. A process according to claim 26 wherein said reaction mixture is chromatographed on silica gel using a hexane/benzene liquid phase to separate the products of said reaction.
- 32. A process according to claim 2 wherein said electron deficient carbonyl is (.eta..sup.5 -C.sub.5 H.sub.5)Rh(CO).sub.2 and said tri-osmium heteronuclear metal carbonyl produced is H.sub.2 (.eta..sup.5 -C.sub.5 H.sub.5)RhOs.sub.3 (CO).sub.10.
- 33. A process according to claim 32 wherein said reaction mixture comprises said (.eta..sup.5 -C.sub.5 H.sub.5)Rh(CO).sub.2 and said H.sub.2 Os.sub.3 (CO).sub.10 in a molar ratio of at least about 1:1 and a non-polar solvent in which said rhodium and tri-osmium compounds are soluble, said reaction mixture being established at a temperature in the range of about 80.degree. to about 120.degree. C. and said gaseous hydrogen being bubbled through said reaction mixture.
- 34. A process according to claim 33 wherein said reaction mixture comprises about 5 moles of said (.eta..sup.5 -C.sub.5 H.sub.5)Rh(CO).sub.2 per mole of said H.sub.2 Os.sub.3 (CO).sub.10.
- 35. A process according to claim 33 wherein said solvent is an aromatic solvent.
- 36. A process according to claim 35 wherein said solvent is toluene.
- 37. A process according to claim 33 wherein said reaction mixture is established at a temperature of about 90.degree. C.
- 38. A process according to claim 33 wherein said reaction mixture is chromatographed on silica gel using a hexane/benzene liquid phase to separate the products of said reaction.
- 39. A process for preparing H.sub.4 (.eta..sup.5 -C.sub.5 H.sub.5)CoOs.sub.3 (CO).sub.9 in which H.sub.3 (.eta..sup.5 -C.sub.5 H.sub.5)CoOs.sub.3 (CO).sub.9 is dissolved in a non-polar solvent and gaseous hydrogen is passed through the resulting solution.
- 40. A process according to claim 39 wherein said solvent is toluene at a temperature of about 90.degree. C.
Government Interests
The Government has rights in this invention pursuant to Grant CHE-79-18148 awarded by the National Science Foundation.
US Referenced Citations (8)
Non-Patent Literature Citations (3)
Entry |
Moss et al., J. Organometal Chem. 23, C23-C24 (1970). |
Geoffroy et al., JACS. 99, pp. 7565-7573, (1977). |
Churchhill et al., J. Chem. Comm., p. 534, (1978). |