Claims
- 1. A method for increasing the efficiency of a dirhodium catalyst, said method comprising:
providing a dirhodium catalyst; providing an organic ester; and contacting the dirhodium catalyst and the organic ester under conditions effective to increase the efficiency of the dirhodium catalyst, wherein the organic ester is not a substrate for catalysis by the dirhodium catalyst.
- 2. A method according to claim 1, wherein the organic ester is an ester of an aryl acid.
- 3. A method according to claim 1, wherein the organic ester is an ester of a benzoic acid or an ester of a naphthoic acid.
- 4. A method according to claim 1, wherein the organic ester is an ester of a benzoic acid.
- 5. A method according to claim 1, wherein the organic ester is a C1-C12 alkyl ester of a benzoic acid.
- 6. A method according to claim 1, wherein the organic ester has the formula C6H5COOW and wherein W is a C1-C12 alkyl group.
- 7. A method according to claim 1, wherein the organic ester has the formula C6H5COOW and wherein W is a C1-C4 alkyl group.
- 8. A method according to claim 1, wherein the organic ester has the formula C6H5COOW and wherein W is a methyl group.
- 9. A method according to claim 1, wherein the dirhodium catalyst is a dirhodium tetracarboxylate catalyst.
- 10. A method according to claim 9, wherein the dirhodium tetracarboxylate catalyst selected from the group consisting of dirhodium acetate dimer, dirhodium propionate dimer, dirhodium butyrate dimer, dirhodium pentanoate dimer, dirhodium hexanoate dimer, dirhodium heptanoate dimer, dirhodium octanoate dimer, fluorinated analogs thereof, and combinations thereof.
- 11. A method according to claim 9, wherein the dirhodium tetracarboxylate catalyst has the formula:
- 12. A method according to claim 11, wherein Z4 has the formula —CH2CH2CH2—.
- 13. A method according to claim 11, wherein the dirhodium tetracarboxylate catalyst has one of the following formulae:
- 14. A method according to claim 13, wherein the dirhodium catalyst has D2 symmetry.
- 15. A method according to claim 9, wherein the dirhodium tetracarboxylate catalyst has the formula:
- 16. A method according to claim 15, wherein the dirhodium tetracarboxylate catalyst has the formula:
- 17. A method according to claim 15, wherein Z2 and Z3 each have the formula —CH2CH2—.
- 18. A method according to claim 15, wherein Z1 is 1,3-phenylene.
- 19. A method according to claim 15, wherein the dirhodium tetracarboxylate catalyst has one of the following formulae:
- 20. A method according to claim 15, wherein the dirhodium tetracarboxylate catalyst has one of the following formulae:
- 21. A method according to claim 1, wherein the organic ester and the dirhodium catalyst are present in a mole ratio of from about 0.01:1 to about 108:1.
- 22. A method according to claim 1, wherein the organic ester and the dirhodium catalyst are present in a mole ratio of from about 0.1:1 to about 106:1.
- 23. A method according to claim 1, wherein the organic ester and the dirhodium catalyst are present in a mole ratio of from about 1000:1 to about 105:1.
- 24. A method according to claim 1, wherein the organic ester and the dirhodium catalyst are present in a mole ratio of from about 0.01:1 to about 108:1 and wherein the organic ester is an ester of a benzoic acid or an ester of a naphthoic acid.
- 25. A dirhodium catalyst composition comprising:
a dirhodium catalyst; and an organic ester, wherein said organic ester is not a substrate for catalysis by said dirhodium catalyst.
- 26. A composition according to claim 25, wherein said organic ester is an ester of an aryl acid.
- 27. A composition according to claim 25, wherein said organic ester is an ester of a benzoic acid or an ester of a naphthoic acid.
- 28. A composition according to claim 25, wherein said organic ester is an ester of a benzoic acid.
- 29. A composition according to claim 25, wherein said organic ester is a C1-C12 alkyl ester of a benzoic acid.
- 30. A composition according to claim 25, wherein said organic ester has the formula C6H5COOW and wherein W is a C1-C12 alkyl group.
- 31. A composition according to claim 25, wherein said organic ester has the formula C6H5COOW and wherein W is a C1-C4 alkyl group.
- 32. A composition according to claim 25, wherein said organic ester has the formula C6H5COOW and wherein W is a methyl group.
- 33. A composition according to claim 25, wherein said dirhodium catalyst is a dirhodium tetracarboxylate catalyst.
- 34. A composition according to claim 33, wherein the dirhodium tetracarboxylate catalyst is selected from the group consisting of dirhodium acetate dimer, dirhodium propionate dimer, dirhodium butyrate dimer, dirhodium pentanoate dimer, dirhodium hexanoate dimer, dirhodium heptanoate dimer, dirhodium octanoate dimer, fluorinated analogs thereof, and combinations thereof.
- 35. A composition according to claim 33, wherein the dirhodium tetracarboxylate catalyst has the formula:
- 36. A composition according to claim 35, wherein Z4 has the formula —CH2CH2CH2—.
- 37. A composition according to claim 36, wherein the dirhodium tetracarboxylate catalyst has one of the following formulae:
- 38. A composition according to claim 37, wherein the dirhodium catalyst has D2 symmetry.
- 39. A composition according to claim 33, wherein the dirhodium tetracarboxylate catalyst has the formula:
- 40. A composition according to claim 39, wherein the dirhodium tetracarboxylate catalyst has the formula:
- 41. A composition according to claim 39, wherein Z2 and Z3 each have the formula —CH2CH2—.
- 42. A composition according to claim 39, wherein Z1 is 1,3-phenylene.
- 43. A composition according to claim 39, wherein the dirhodium tetracarboxylate catalyst has one of the following formulae:
- 44. A composition according to claim 39, wherein the dirhodium tetracarboxylate catalyst has one of the following formulae:
- 45. A composition according to claim 25, wherein said organic ester and said dirhodium catalyst are present in a mole ratio of from about 0.01:1 to about 108:1.
- 46. A composition according to claim 25, wherein said organic ester and said dirhodium catalyst are present in a mole ratio of from about 0.1:1 to about 107:1.
- 47. A composition according to claim 25, wherein said organic ester and said dirhodium catalyst are present in a mole ratio of from about 1000:1 to about 106:1.
- 48. A composition according to claim 25, wherein said organic ester and said dirhodium catalyst are present in a mole ratio of from about 0.01:1 to about 108:1 and wherein said organic ester is an ester of a benzoic acid or an ester of a naphthoic acid.
- 49. A method of producing a compound having the following formula (CI):
- 50. A method according to claim 49, wherein the organic ester is an ester of a benzoic acid or an ester of a naphthoic acid.
- 51. A method according to claim 49, wherein the dirhodium catalyst and the diazo compound are present in a mole ratio of greater than 2000:1.
- 52. A method according to claim 49, wherein the organic ester and the dirhodium catalyst are present in a mole ratio of from about 0.01:1 to about 108:1.
- 53. A method according to claim 49, wherein R1 and R3, together with the atoms to which they are bonded, form a phenyl ring.
- 54. A method according to claim 49, wherein the compound of formula (CI) has the following formula (CIII):
- 55. A method according to claim 54, wherein X is NH, Y is CO2R12, R12 is a methyl group, n is 4, and R1 and R3, together with the atoms to which they are bonded, form a phenyl ring.
- 56. A method according to claim 54, wherein the compound of formula (CIII) has the formula:
- 57. A method according to claim 56, wherein X is NH, Y is CO2R12, R12 is a methyl group, n is 4, and R1 and R3, together with the atoms to which they are bonded, form a phenyl ring.
- 58. A method according to claim 49, wherein X is NR11 and R31 and R32, taken together with the atoms to which they are bonded, form a ring having the formula:
- 59. A method according to claim 58, wherein the compound has the formula:
- 60. A method of catalyzing an aryldiazomethane or a vinyldiazomethane insertion reaction, said method comprising:
providing a aryldiazomethane or a vinyldiazomethane; providing a dirhodium catalyst composition according to claim 25; and contacting the aryldiazomethane or the vinyldiazomethane with the dirhodium catalyst composition under conditions effective to catalyze the aryldiazomethane or vinyldiazomethane insertion reaction.
- 61. A compound produced by a method according to claim 60.
- 62. A compound containing a C—H bond, wherein said C—H bond is produced using a method according to claim 60.
- 63. A method of producing a compound having the following formula (CIV):
- 64. A method according to claim 63, wherein the organic ester is an ester of a benzoic acid or an ester of a naphthoic acid.
- 65. A method according to claim 63, wherein the dirhodium catalyst and the diazo compound are present in a mole ratio of greater than 2000:1.
- 66. A method according to claim 63, wherein the organic ester and the dirhodium catalyst are present in a mole ratio of from about 0.01:1 to about 108:1.
- 67. A method according to claim 63, wherein the compound of formula (CIV) has the following formula (CV):
- 68. A method for preparing a cyclopentene, said method comprising:
providing a compound of formula (CV) in accordance with a method of claim 67 in which at least one of R1 and R2 is H and in which R132 is an electron donating group; and converting the compound of formula (CV) to the cyclopentene.
- 69. A method according to claim 68, wherein said converting is carried out in the presence of a Lewis acid.
- 70. A method for preparing a dihydrofuran, said method comprising:
providing a compound of formula (CV) in accordance with a method of claim 67 in which at least one of R1 and R2 is H, in which R132 is an electron donating group, and in which R3 is a silyloxy group; and converting the compound of formula (CV) to the dihydrofuran.
- 71. A method according to claim 70, wherein said converting is carried out in the presence of a fluoride.
- 72. A method for preparing a butenolide, said method comprising:
providing a compound of formula (CV) in accordance with a method of claim 67 in which at least one of R1 and R2 is H, in which R132 is an electron donating group, in which Y is a carboxylic acid ester of the formula —COOR160, and in which R160 is a tertiary alkyl moiety; and converting the compound of formula (CV) to the butenolide.
- 73. A method according to claim 72, wherein said converting is carried out in the presence of Lewis acid catalyst.
- 74. A method of producing a compound having the following formula (CVII):
- 75. A method according to claim 74, wherein R2 is H; R1 and R3, together with the atoms to which they are bonded, form a phenyl ring; R132 is H; R133 is a 4-alkoxyphenyl group; R134 is a phenyl group; Y is a carboxylic acid ester; and Y′ is an aldehyde group, a hydroxymethyl group, a vinyl group, or an ethyl group.
- 76. A method of producing a compound having the following formula (CVIII):
- 77. A method of producing a compound having the following formula (CIX):
- 78. A method of producing a compound having the following formula (CX):
- 79. A method of catalyzing an aryldiazomethane or a vinyldiazomethane cyclopropanation reaction, said method comprising:
providing a aryldiazomethane or a vinyldiazomethane; providing a dirhodium catalyst composition according to claim 25; and contacting the aryldiazomethane or the vinyldiazomethane with the dirhodium catalyst composition under conditions effective to catalyze the aryldiazomethane or vinyldiazomethane cyclopropanation reaction.
- 80. A compound produced by a method according to claim 79.
- 81. A compound containing a C—C bond, wherein said C—C bond is produced using a method according to claim 79.
- 82. A method of producing optionally substituted cycloheptadienes or optionally substituted bicyclooctadienes, said method comprising:
providing a diazo compound having the formula: 99where R1, R2, and R3 are independently selected from H, alkyl, aryl, silyloxy, or vinyl or where R1 and R3, together with the atoms to which they are bonded, form a 5-12 membered ring; where Y is an electron withdrawing group; and converting the diazo compound with a optionally substituted homocyclic, heterocyclic, or non-cyclic diene in the presence of a dirhodium catalyst composition according to claim 25 under conditions effective to produce the compound.
- 83. A method according to claim 82, wherein the organic ester is an ester of a benzoic acid or an ester of a naphthoic acid.
- 84. A method according to claim 82, wherein the dirhodium catalyst and the diazo compound are present in a mole ratio of greater than 2000:1.
- 85. A method according to claim 82, wherein the organic ester and the dirhodium catalyst are present in a mole ratio of from about 0.01:1 to about 108:1.
- 86. A method according to claim 82, wherein the optionally substituted homocyclic, heterocyclic, or non-cyclic diene has the formula:
- 87. A method according to claim 86, wherein R143 and R145 together represent a substituted or unsubstituted bivalent amino moiety having the formula —N(R150)— in which R150 is H, an aryl group, or alkyl group.
- 88. A method for producing a 3-aryltropane, said method comprising:
providing a compound of formula (CXI) in accordance with a method of claim 87; and converting the compound having formula (CXI) to a 3-aryltropane using an aryl Grignard reagent.
- 89. A method according to claim 88, wherein the 3-aryltropane has the formula:
- 90. A method of catalyzing a [3+4] annulation reaction, said method comprising:
providing a vinyldiazomethane; providing a dirhodium catalyst composition according to claim 25; and contacting the vinyldiazomethane with the dirhodium catalyst composition under conditions effective to produce a seven or eight membered ring or ring system.
- 91. A compound containing a seven or eight membered ring or ring system produced by a method according to claim 90.
- 92. A compound containing a seven or eight membered ring or ring system, wherein said seven or eight membered ring or ring system is produced using a method according to claim 90.
- 93. A method for producing a compound having the following formula (CXII):
- 94. A method according to claim 93, wherein the organic ester is an ester of a benzoic acid or an ester of a naphthoic acid.
- 95. A method according to claim 93, wherein the dirhodium catalyst and the diazo compound are present in a mole ratio of greater than 2000:1.
- 96. A method according to claim 93, wherein the organic ester and the dirhodium catalyst are present in a mole ratio of from about 0.01:1 to about 108:1.
- 97. A method for making a compound having the following formula (CXIII):
- 98. A method according to claim 97, wherein R1 and R3, together with the atoms to which they are bonded, form an aromatic ring.
- 99. A method according to claim 97, wherein the compound of formula (CXIII) has the formula:
- 100. A method according to claim 99, wherein R1 and R3, together with the atoms to which they are bonded, form an aromatic ring.
- 101. A method for preparing a compound having the following formula (CXIV):
- 102. for preparing a compound having the following formula (CXIV):
- 103. A method according to claim 102, wherein said converting is carried out using a hydrogenating agent, an oxidizing agent, and a cyclizing agent.
- 104. A method according to claim 102, wherein R1 and R3, together with the atoms to which they are bonded, form an aromatic ring.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Patent Application Serial No. 60/315,150, filed Aug. 27, 2001, which is hereby incorporated by reference.
Government Interests
[0002] The present invention was made with the support of the National Science Foundation, Contract No. CHE 0092490, and the National Institutes of Health, Contract No. CA85641 and Contract No. GM57425. The Federal Government may have certain rights in this invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60315150 |
Aug 2001 |
US |