Claims
- 1. A method for preparing an R,S-halomethyl alcohol (R,S-HMA) compound having the following general formula:
- 2. The method in accordance with claim 1,wherein said non-chelating, bulky reducing agent is a member selected from the group consisting of lithium aluminum t-butoxyhydride (LATBH) and sodium tris-t-butoxyborohydride (STBH).
- 3. The method in accordance with claim 1, wherein said non-chelating, bulky reducing agent is lithium aluminum t-butoxyhydride (LATBH).
- 4. The method in accordance with claim 1, wherein R1 is a member selected from the group consisting of a benzyl group, an S-phenyl group, an alkyl group and para-nitrobenzene.
- 5. The method in accordance with claim 1, wherein X1 is a halogen.
- 6. The method in accordance with claim 5, wherein X1 is chloro or bromo.
- 7. The method in accordance with claim 1, wherein R2 is a blocking group selected from the group consisting of BOC, MOC and CBZ.
- 8. The method in accordance with claim 1, wherein the reduction is carried out in a solvent selected from the group consisting of diethyl ether, THF, MTBE, glyme and diglyme.
- 9. The method in accordance with claim 8, wherein said solvent is diethyl ether.
- 10. The method in accordance with claim 1, wherein the reduction is carried out at a temperature ranging from about −30° C. to about 25° C.
- 11. The method in accordance with claim 1, wherein the reduction is carried out at a temperature ranging from about −5° C. to about 5° C.
- 12. A method for preparing an R,S-halomethyl alcohol (R,S-HMA) compound having the following general formula:
- 13. The method in accordance with claim 12, wherein R1 is a member selected from the group consisting of a benzyl group, an S-phenyl group, an alkyl group and para-nitrobenzene.
- 14. The method in accordance with claim 12, wherein X1 is chloro.
- 15. The method in accordance with claim 12, wherein R2 is a blocking group selected from the group consisting of BOC, MOC and CBZ.
- 16. The method in accordance with claim 12, wherein the reduction is carried out in diethyl ether and at a temperature ranging from about −5° C. to about 5° C.
- 17. A method for preparing an R,S-halomethyl alcohol (R,S-HMA) compound having the following general formula:
- 18. A method for isolating an R,S-halomethyl alcohol (R,S-HMA) from a mixture of R,S- and S,S-HMAs, said method comprising:
combining the mixture of R,S- and S,S-HMAs with hexane and heating to a temperature ranging from 50° C. to about 60° C. to produce a hexane extractant; cooling said hexane extractant to a temperature ranging from about 0° C. to about 10° C., filtering said hexane extractant to form a first retentate and recovering said first retentate; combining said first retentate with hexane to form a hexane solution, heating said hexane solution to a temperature ranging from about 50° C. to about 60° C., and cooling said hexane solution to a temperature ranging from about 30° C. to about 40° C. to produce a suspension; and filtering said suspension to form a second retentate and recovering said second retentate, wherein said R,S-HMA is present in said second retentate.
- 19. A method for preparing an R,S-epoxide compound having the following general formula:
- 20. The method in accordance with claim 19, wherein R1 is a benzyl group; R2 is a BOC blocking group; and X1 is chloro or bromo.
- 21. The method in accordance with 19, wherein said non-chelating, bulky reducing agent is a member selected from the group consisting of lithium aluminum t-butoxyhydride (LATBH) and sodium tris-t-butoxyborohydride (STBH).
- 22. The method in accordance with claim 19, wherein the reduction is carried out in diethyl ether.
- 23. The method in accordance with claim 19, wherein said alkali metal base is a member selected from the group consisting of NaOH, KOH, LiOH, NaOCH3, NaOCH2CH3 and KOtBu.
- 24. A method for preparing an R,S-epoxide compound having the following general formula:
- 25. The method in accordance with claim 24, wherein R1 is a benzyl group; R2 is a BOC blocking group; and X1 is chloro or bromo.
- 26. The method in accordance with claim 24, wherein R3 is a member selected from the group consisting of methylsulfonyl, toluenesulfonyl, trifluoromethanesulfonyl and para-nitrobenzenesulfonyl.
- 27. The method in accordance with claim 24, wherein R4 is an acetyl group.
- 28. The method in accordance with claim 24, wherein said reducing agent is a member selected from the group consisting of sodium borohydride, lithium aluminum hydride and sodium cyanoborohydride.
- 29. The method in accordance with claim 24, wherein step (a) is carried out in a solvent selected from the group consisting of ethanol, methanol, isopropanol, THF and diethyl ether.
- 30. The method in accordance with claim 24, wherein step (a) is carried out at a temperature ranging from about −30° C. to about room temperature.
- 31. The method in accordance with claim 24, wherein said amine is triethylamine.
- 32. The method in accordance with claim 24, wherein step (b) is carried out in a solvent selected from the group consisting of chlorinated solvents, ethyl acetate, ethers and aromatic hydrocarbons.
- 33. The method in accordance with claim 24, wherein step (b) is carried out in toluene.
- 34. The method in accordance with claim 24, wherein step (b) is carried out at a temperature ranging from about −30° C. to about 100° C.
- 35. The method in accordance with claim 24, wherein step (b) is carried out at a temperature ranging from about 10° C. to about 70° C.
- 36. The method in accordance with claim 24, wherein said acetate is a member selected from the group consisting of cesium acetate, potassium acetate, tetrabutylammonium acetate and sodium acetate.
- 37. The method in accordance with claim 24, wherein step (c) is carried out at a temperature ranging from about 20° C. to about 100° C.
- 38. The method in accordance with claim 24, wherein step (c) is carried out at a temperature ranging from about 65° C. to about 75° C.
- 39. The method in accordance with claim 24, wherein step (c) is carried out in a solvent selected from the group consisting of hydrocarbons, aromatic hydrocarbons and chlorinated solvents.
- 40. The method in accordance with claim 24, wherein step (c) is carried out in toluene.
- 41. The method in accordance with claim 24, wherein said phase transfer catalyst is a member selected from the group consisting of crown ethers, quaternary ammonium salts and quaternary phosphonium salts.
- 42. The method in accordance with claim 24, wherein said phase transfer catalyst is a crown ether.
- 43. The method in accordance with claim 24, wherein said crown ether is 18-crown-6.
- 44. The method in accordance with claim 24, wherein said water is present in an amount ranging from about 0.5% to about 10%.
- 45. The method in accordance with claim 24, wherein said water is present in an amount ranging from about 0.5% to about 5%.
- 46. The method in accordance with claim 24, wherein said alkali metal base is a member selected from the group consisting of NaOH, KOH, LiOH, NaOCH3, NaOCH2CH3 and KOtBu.
- 47. The method in accordance with claim 24, wherein said (d) is carried out in a solvent selected from the group consisting of hydrocarbons, aromatic hydrocarbons, chlorinated solvents and THF.
- 48. The method in accordance with claim 47, wherein said solvent is a mixture of toluene and THF.
- 49. The method in accordance with claim 24, further comprising purifying said R,S-epoxide compound by recrystallization with petroleum ether.
- 50. A method for preparing an S,S-halomethyl alcohol (S,S-HMA) compound having the following general formula:
- 51. The method in accordance with claim 50, wherein said reducing is carried out in a solvent selected from the group consisting of ethanol, methanol, isopropanol, THF and diethyl ether.
- 52. A method for preparing an S,S-halomethyl sulfonyl (S,S-HMS) compound having the following formula:
- 53. The method in accordance with claim 52, wherein said contacting is carried out in toluene.
- 54. The method in accordance with claim 52, wherein said contacting is carried out at a temperature ranging from about 5° C. to about 10° C.
- 55. A method for preparing an R,S-halomethyl acetate (R,S-HMAc) compound having the following general formula:
- 56. The method in accordance with claim 55, wherein said acetate is a member selected from the group consisting of cesium acetate, potassium acetate, tetrabutylammonium acetate and sodium acetate
- 57. The method in accordance with claim 55, wherein said phase transfer catalyst is a crown ether.
- 58. The method in accordance with claim 55, wherein said crown ether is 18-crown-6.
- 59. The method in accordance with claim 55, wherein said water is present in an amount ranging from about 1% to about 2%.
- 60. A method for preparing an R,S-epoxide compound having the following general formula:
- 61. The method in accordance with claim 60, wherein said alkali metal base is a member selected from the group consisting of NaOH, KOH, LiOH, NaOCH3, NaOCH2CH3 and KOtBu.
- 62. The method in accordance with claim 60, wherein said contacting is carried out in a solvent that is a mixture of toluene and THF.
- 63. A method for preparing an R,S-epoxide compound having the following general formula:
- 64. The method in accordance with claim 63, wherein R3 is a member selected from the group consisting of methylsulfonyl and toluenesulfonyl.
- 65. The method in accordance with claim 63, wherein said carbamate-forming acetate is a member selected from the group consisting of sodium trichloroacetate, potassium trichloroacetate, tetrabutylammonium trichloroacetate, sodium tribromoacetate, potassium tribromoacetate sodium trifluoroacetate and potassium trifluoroacetate
- 66. The method in accordance with claim 63, wherein said carbamate-forming acetate is sodium trichloroacetate.
- 67. The method in accordance with claim 63, wherein step (a) is carried out in toluene
- 68. The method in accordance with claim 63, wherein said alkali metal base is a member selected from the group consisting of NaOH, KOH, LiOH, NaOCH3, NaOCH2CH3 and KOtBu.
- 69. A cyclic carbamate compound having the following general formula:
- 70. A method for preparing an alkene having the following general formula:
- 71. The method in accordance with claim 70, wherein said hydrohalo acid is a member selected from the group consisting of hydrobromic acid, hydrochloric acid and hydroiodic acid.
- 72. The method in accordance with claim 70, wherein said hydrohalo acid is hydrobromic acid or hydrochloric acid.
- 73. The method in accordance with claim 70, wherein step (c) is carried out using a member selected from the group consisting of zinc metal, nickel metal and zinc mercury amalgan.
- 74. The method in accordance with claim 70, wherein step (c) is carried out in a solvent selected from the group consisting of methanol, ethanol,.isopropanol, THF, MTBE and toluene.
- 75. The method in accordance with claim 70, wherein step (c) is carried out using zinc dust in ethanol.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Patent Application Serial No. 60/132,278, filed May 3, 1999, which is incorporated herein by reference in its entirety for all purposes.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60132278 |
May 1999 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09321645 |
May 1999 |
US |
Child |
10414541 |
Apr 2003 |
US |