Claims
- 1. A method for carrying out a ring-opening cross-metathesis (ROCM) reaction between a cyclic olefin and a second olefinic reactant to provide an ROCM product, comprising contacting the cyclic olefin with the second olefinic reactant in the presence of a catalyst composed of a Group 8 transition metal alkylidene complex under conditions and for a time period effective to allow the ROCM reaction to occur, wherein the catalyst has the structure of formula (VII)
- 2. The method of claim 1, wherein the cyclic olefin undergoes a ring opening reaction in the presence of the catalyst at a rate kRO, the second olefinic reactant undergoes a cross-metathesis reaction with the cyclic olefin at a rate kCM, and the approximate relationship of kRO to kCM is predetermined.
- 3. The method of claim 2, wherein kCM is greater than or equal to kRO, such that the ROCM product is predominantly a monomer, dimer, and/or oligomer, but not a polymer.
- 4. The method of claim 3, wherein kCM is approximately equal to kRO, such that the ROCM product is predominantly a dimer or oligomer.
- 5. The method of claim 3, wherein kCM is greater than kRO, such that the ROCM product is predominantly a monomer.
- 6. The method of claim 5, wherein the cyclic olefin is a 1,1,2-trisubstituted olefin, such that the monomer product is predominantly asymmetrically terminated.
- 7. The method of claim 3, wherein the cyclic olefin contains 4 to about 12 carbon atoms and is substituted with zero to about 4 nonhydrogen substituents.
- 8. The method of claim 7, wherein the cyclic olefin is monocyclic.
- 9. The method of claim 7, wherein the cyclic olefin is bicyclic.
- 10. The method of claim 7, wherein the cyclic olefin contains 1 to 3 double bonds.
- 11. The method of claim 10, wherein the cyclic olefin contains 1 double bond.
- 12. The method of claim 10, wherein the cyclic olefin contains 2 double bonds.
- 13. The method of claim 7, wherein at least one of the nonhydrogen substituents comprises a functional group Fn selected from phosphonato, phosphoryl, phosphanyl, phosphino, sulfonato, C1-C20 alkylsulfanyl, C5-C20 arylsulfanyl, C1-C20 alkylsulfonyl, C5-C20arylsulfonyl, C1-C20 alkylsulfinyl, C5-C20 arylsulfinyl, sulfonamido, amino, amido, imino, nitro, nitroso, hydroxyl, C1-C20 alkoxy, C5-C20 aryloxy, C2-C20 alkoxycarbonyl, C5-C20 aryloxycarbonyl, carboxyl, carboxylato, mercapto, formyl, C1-C20 thioester, cyano, cyanato, carbamoyl, epoxy, styrenyl, silyl, silyloxy, silanyl, siloxazanyl, boronato, boryl, halogen, stannyl, and germyl.
- 14. The method of claim 1, wherein the second olefinic reactant is incapable of undergoing a cross-metathesis reaction in the absence of any other olefinic reactants.
- 15. The method of claim 14, wherein the second olefinic reactant is an α,β-unsaturated carbonyl compound.
- 16. The method of claim 13, wherein the second olefinic reactant is also substituted with at least one functional group Fn.
- 17. The method of claim 1, wherein:
X1 and X2 are anionic ligands, and are optionally linked to form a cyclic group; L is a neutral electron donor ligand that is optionally linked to R2, X1, and/or X2 through a spacer moiety; and R3A and R4A are optionally linked to form a cyclic group.
- 18. The method of claim 1, wherein w, x, y and z are zero, X and Y are N, and R3A and R4A are linked to form —Q—, such that the catalyst has the structure of formula (IX)
- 19. The method of claim 18, wherein Q has the structure having the structure —CR8R8A—CR9R9A— or —CR8═CR9—, wherein R8, R8A, R9, and R9A are independently selected from the group consisting of hydrogen, hydrocarbyl, substituted hydrocarbyl, heteroatom-containing hydrocarbyl, substituted heteroatom-containing hydrocarbyl, and functional groups, wherein any two of R8, R8A, R9, and R9A are optionally linked to form a substituted or unsubstituted, saturated or unsaturated ring.
- 20. The method of claim 19, wherein Q has the structure —CR8R8A—CR9R9A—, such that the catalyst has the structure of formula (X)
- 21. The method of claim 20, wherein:
M is Ru; X1 and X2 may be the same or different, and are selected from the group consisting of hydrogen, halide, C1-C20 alkyl, C5-C20 aryl, C1-C20 alkoxy, C5-C20 aryloxy, C3-C20 alkyldiketonate, C5-C20 aryldiketonate, C2-C20 alkoxycarbonyl, C5-C20 aryloxycarbonyl, C2-C20 acyl, C1-C20 alkylsulfonato, C5-C20 arylsulfonato, C1-C20 alkylsulfanyl, C5-C20 arylsulfanyl, C1-C20 alkylsulfinyl, or C5-C20 arylsulfinyl, any of which, with the exception of halide, are optionally further substituted with one or more groups selected from halide, C1-C6 alkyl, C1-C6 alkoxy, and phenyl; R1 is hydrogen and R2 is selected from the group consisting of C1-C20 alkyl, C2-C20 alkenyl, and aryl; L is a neutral electron donor ligand selected from the group consisting of phosphine, sulfonated phosphine, phosphite, phosphinite, phosphonite, arsine, stibine, ether, amine, amide, imine, sulfoxide, carboxyl, nitrosyl, pyridine, substituted pyridine, imidazole, substituted imidazole, pyrazine, and thioether; R3 and R4 are aromatic, substituted aromatic, heteroaromatic, substituted heteroaromatic, alicyclic, substituted alicyclic, heteroatom-containing alicyclic, or substituted heteroatom-containing alicyclic, composed of from one to about five rings; and R8 and R9 are hydrogen, and R8A and R9A are selected from hydrogen, lower alkyl and phenyl, or are linked to form a cyclic group.
- 22. The method of claim 21, wherein:
R1 is hydrogen, and R2 is phenyl, vinyl, methyl, isopropyl, or t-butyl, optionally substituted with one or more moieties selected from the group consisting of C1-C6 alkyl, C1-C6 alkoxy, phenyl, and a functional group Fn, wherein Fn is phosphonato, phosphoryl, phosphanyl, phosphino, sulfonato, C1-C20 alkylsulfanyl, C5-C20 arylsulfanyl, C1-C20 alkylsulfonyl, C5-C20 arylsulfonyl, C1-C20 alkylsulfinyl, C5-C20 arylsulfinyl, sulfonamido, amino, amido, imino, nitro, nitroso, hydroxyl, C1-C20 alkoxy, C5-C20 aryloxy, C2-C20 alkoxycarbonyl, C5-C20 aryloxycarbonyl, carboxyl, carboxylato, mercapto, formyl, C1-C20 thioester, cyano, cyanato, carbamoyl, epoxy, styrenyl, silyl, silyloxy, silanyl, siloxazanyl, boronato, boryl, halogen, stannyl, or germyl; and L is a phosphine of the formula PR5R6R7, where R5, R6, and R7 are each independently aryl or C1-C10 alkyl.
- 23. The method of claim 22, wherein:
X1 and X2 are independently selected from the group consisting of halide, CF3CO2, CH3CO2, CFH2CO2, (CH3).3CO, (CF3)2(CH3)CO, (CF3)(CH3).2CO, PhO, MeO, EtO, tosylate, mesylate, and trifluoromethanesulfonate; L is selected from the group consisting of —P(cyclohexyl)3, —P(cyclopentyl)3, —P(isopropyl)3, —P(phenyl)3, P(phenyl)3, —P(phenyl)2(R7) and —P(phenyl)(R7)2, in which R7 is lower alkyl; and R3 and R4 are the same and are either aromatic or C7-C12 alicyclic, if aromatic, each having the structure of formula (XI) 82in which R10, R11, and R12 are each independently hydrogen, C1-C10 alkyl, C1-C10 alkoxy, aryl, substituted aryl, halogen, or a functional group.
- 24. The method of claim 23, wherein:
X1 and X2 are halide; R2 is hydrogen or 2,2-dimethylvinyl; R3 and R4 are mesityl, diisopinocamphenyl, or 2,4,2′,6′-tetramethylbiphenylyl; L is selected from the group consisting of —P(cyclohexyl)3 and —P(cyclopentyl)3; and R8A and R9A are hydrogen.
- 25. The method of claim 1, further including reacting the ROCM product with an additional olefinic reactant capable of undergoing cross-metathesis therewith, in the presence of a transition metal catalyst.
- 26. A method for carrying out a ring-opening cross-metathesis (ROCM) reaction between a cyclic olefin and a second olefinic reactant to provide a monomeric, dimeric, or oligomeric ROCM product, comprising:
(a) providing a catalyst having the structure of formula (X) 83wherein M is Ru, X1 and X2 are anionic ligands, L is a phosphine of the formula PR5R6R7, where R5, R6, and R7 are each independently aryl or C1-C10 alkyl, R1 is hydrogen, R2 is selected from the group consisting of C1-C20 alkyl, C2-C20 alkenyl, and aryl, R8 and R9 are hydrogen, and R8A and R9A are selected from hydrogen, lower alkyl and phenyl, or are linked to form a cyclic group, and R3 and R4 are either aromatic or C7-C12 alicyclic, if aromatic, each having the structure of formula (XI) 84in which R10, R11, and R12 are each independently hydrogen, C1-C10 alkyl, C1-C10 alkoxy, aryl, substituted aryl, halogen, or a functional group, wherein any two or more of X1, X2, L, R1, R2, R8A, and R9A can be taken together to form a chelating multidentate ligand, and (b) contacting a cyclic olefin with an α,β-unsaturated carbonyl compound in the presence of the catalyst, wherein the rate kCM, at which the α,β-unsaturated carbonyl compound undergoes cross metathesis with the cyclic olefin is greater than or equal to the rate kRO at which the cyclic olefin undergoes a ring opening reaction in the presence of the catalyst, and further wherein the cyclic olefin has the structure of formula (XIV) 85wherein R13 is selected from the group consisting of hydrogen, hydrocarbyl, substituted hydrocarbyl, heteroatom-containing hydrocarbyl, substituted heteroatom-containing hydrocarbyl, and —(Z)n—Fn where n is zero or 1, Z is a hydrocarbylene spacer, and Fn is selected from phosphonato, phosphoryl, phosphanyl, phosphino, sulfonato, C1-C20 alkylsulfanyl, C5-C20 arylsulfanyl, C1-C20 alkylsulfonyl, C5-C20 arylsulfonyl, C1-C20 alkylsulfinyl, C5-C20 arylsulfinyl, sulfonamido, amino, amido, imino, nitro, nitroso, hydroxyl, C1-C20 alkoxy, C5-C20 aryloxy, C2-C20 alkoxycarbonyl, C5-C20 aryloxycarbonyl, carboxyl, carboxylato, mercapto, formyl, C1-C20 thioester, cyano, cyanato, carbamoyl, epoxy, styrenyl, silyl, silyloxy, silanyl, siloxazanyl, boronato, boryl, halogen, stannyl and germyl, and further wherein if R13 is substituted hydrocarbyl or substituted heteroatom-containing hydrocarbyl, the substituents may comprise at least one functional group Fn, and J is a saturated or unsaturated hydrocarbylene, substituted hydrocarbylene, heteroatom-containing hydrocarbylene, or substituted heteroatom-containing hydrocarbylene linkage, wherein when J is substituted hydrocarbylene or substituted heteroatom-containing hydrocarbylene, the substituents may include one or more —(Z)n—Fn groups wherein Fn is as defined previously, and further wherein two or more substituents attached to adjacent or nonadjacent atoms within J may be linked to form a bicyclic or polycyclic olefin.
- 27. The method of claim 26, wherein J has the structure —C(R14R15)—[C(R16R17)]b—C(R18R19)—, such that the cyclic olefin has the structure of formula (XV)
- 28. The method of claim 26, wherein J has the structure —[C(R22R23)]d—CR25═CR24—[C(R20R21)]c—, such that the cyclic olefin has the structure of formula (XVI)
- 29. The method of claim 26, wherein the cyclic olefin has the structure of formula (XVII)
- 30. The method of claim 29, wherein the cyclic olefin has the structure of formula (XVIII)
- 31. The method of claim 26, wherein the second olefinic reactant has the structure of (XIX)
- 32. The method of claim 31, wherein R31 is hydrogen, alkyl, hydroxyl, or alkoxy, R32 and R33 are hydrogen or alkyl, and R34 is hydrogen.
- 33. A catalytic method for carrying out a ring-opening cross-metathesis reaction with cyclohexene, comprising contacting cyclohexene with an α,β-unsaturated carbonyl compound in the presence of a transition metal carbene catalyst having the structure of formula (VII)
- 34. The method of claim 33, wherein:
X1 and X2 are anionic ligands, and are optionally linked to form a cyclic group; L is a neutral electron donor ligand that is optionally linked to R2, X1, and/or X2 through a spacer moiety; and R3A and R4A are optionally linked to form a cyclic group.
- 35. The method of claim 34, wherein w, x, y and z are zero, X and Y are N, and R3A and R4A are linked to form —Q—, such that the catalyst has the structure of formula (IX)
- 36. The method of claim 35, wherein Q has the structure having the structure —CR8R8ACR9R9A— or —CR8═CR9—, wherein R8, R8A, R9, and R9A are independently selected from the group consisting of hydrogen, hydrocarbyl, substituted hydrocarbyl, heteroatom-containing hydrocarbyl, substituted heteroatom-containing hydrocarbyl, and functional groups, or wherein any two of R8, R8A, R9, and R9A are optionally linked to form a substituted or unsubstituted, saturated or unsaturated ring.
- 37. The method of claim 36, wherein Q has the structure —CR8R8A—CR9R9A—, such that the catalyst has the structure of formula (X)
- 38. The method of claim 37, wherein:
M is Ru; X1 and X2 may be the same or different, and are selected from the group consisting of hydrogen, halide, C1-C20 alkyl, C5-C20 aryl, C1-C20 alkoxy, C5-C20 aryloxy, C3-C20 alkyldiketonate, C5-C20 aryldiketonate, C2-C20 alkoxycarbonyl, C5-C20 aryloxycarbonyl, C2-C20 acyl, C1-C20 alkylsulfonato, C5-C20 arylsulfonato, C1-C20 alkylsulfanyl, C5-C20 arylsulfanyl, C1-C20 alkylsulfinyl, or C5-C20 arylsulfinyl, any of which, with the exception of halide, are optionally further substituted with one or more groups selected from halide, C1-C6 alkyl, C1-C6 alkoxy, and phenyl; R1 is hydrogen and R2is selected from the group consisting of C1-C20 alkyl, C2-C20 alkenyl, and aryl; L is a neutral electron donor ligand selected from the group consisting of phosphine, sulfonated phosphine, phosphite, phosphinite, phosphonite, arsine, stibine, ether, amine, amide, imine, sulfoxide, carboxyl, nitrosyl, pyridine, substituted pyridine, imidazole, substituted imidazole, pyrazine, and thioether; R3 and R4 are aromatic, substituted aromatic, heteroaromatic, substituted heteroaromatic, alicyclic, substituted alicyclic, heteroatom-containing alicyclic, or substituted heteroatom-containing alicyclic, composed of from one to about five rings; and R8 and R9 are hydrogen, and R8A and R9A are selected from hydrogen, lower alkyl and phenyl, or are linked to form a cyclic group.
- 39. The method of claim 38, wherein:
R1 is hydrogen, and R2 is phenyl, vinyl, methyl, isopropyl, or t-butyl, optionally substituted with one or more moieties selected from the group consisting of C1-C6 alkyl, C1-C6 alkoxy, phenyl, and a functional group Fn, wherein Fn is phosphonato, phosphoryl, phosphanyl, phosphino, sulfonato, C1-C20 alkylsulfanyl, C5-C20 arylsulfanyl, C1-C20 alkylsulfonyl, C5-C20 arylsulfonyl, C1-C20 alkylsulfinyl, C5-C20 arylsulfinyl, sulfonamido, amino, amido, imino, nitro, nitroso, hydroxyl, C1-C20 alkoxy, C5-C20 aryloxy, C2-C20 alkoxycarbonyl, C5-C20 aryloxycarbonyl carboxyl, carboxylato, mercapto, formyl, C1-C20 thioester, cyano, cyanato, carbamoyl, epoxy, styrenyl, silyl, silyloxy, silanyl, siloxazanyl, boronato, boryl, halogen, stannyl, or germyl; and L is a phosphine of the formula PR5R6R7, where R5, R6, and R7 are each independently aryl or C1-C10 alkyl.
- 40. The method of claim 39, wherein:
X1 and X2 are independently selected from the group consisting of halide, CF3CO2, CH3CO2, CFH2CO2, (CH3)3CO, (CF3)2(CH3)CO, (CF3)(CH3).2CO, PhO, MeO, EtO, tosylate, mesylate, and trifluoromethanesulfonate; L is selected from the group consisting of —P(cyclohexyl)3, —P(cyclopentyl)3, —P(isopropyl)3, —P(phenyl)3, P(phenyl)3, —P(phenyl)2(R7) and —P(phenyl)(R7)2, in which R7 is lower alkyl; and R3 and R4 are the same and are either aromatic or C7-C12 alicyclic, if aromatic, each having the structure of formula (XI) 94in which R10, R11, and R12 are each independently hydrogen, C1-C10 alkyl, C1-C10 alkoxy, aryl, substituted aryl, halogen, or a functional group.
- 41. The method of claim 40, wherein:
X1 and X2 are halide; R2 is hydrogen or 2,2-dimethylvinyl; R3 and R4 are mesityl, diisopinocamphenyl, or 2,4,2′,6′-tetramethylbiphenylyl; L is selected from the group consisting of —P(cyclohexyl)3 and —P(cyclopentyl)3; and R8A and R9A are hydrogen.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority under 35 U.S.C. §119(e)(1) to U.S. Provisional Patent Application Serial No. 60/280,601, filed Mar. 30, 2001. The disclosure of the aforementioned application is incorporated by reference in its entirety.
ACKNOWLEDGEMENT OF GOVERNMENT SUPPORT
[0002] This invention was developed with U.S. Government support under grant number 5 R01 GM31332 awarded by the National Institutes of Health. The Government has certain rights in the invention.
Provisional Applications (1)
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Number |
Date |
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60280601 |
Mar 2001 |
US |