Claims
- 1. A compound of the formula:
- 2. The compound of claim 1, wherein the protecting group R1 is aralkyl, allyl, or tertiary alkyl.
- 3. The compound of claim 2, wherein R1 is benzyl or benzyl derivative.
- 4. The compound of claim 2, wherein R1 is allyl.
- 5. The compound of claim 2, wherein R1 is tertiary alkyl.
- 6. The compound of claim 5, wherein R1 is tertiary butyl.
- 7. The compound of claim 2, wherein R2 is the same as R1.
- 8. The compound of claim 2, wherein R2 is methyl.
- 9. The compound of claim 2, wherein R1 and R2 together with the nitrogen atom to which they are attached form
- 10. The compound of claim 9, wherein each R11 is hydrogen.
- 11. The compound of claim 1, wherein said compound is 3-[(N-benzyl-N-methyl)amino]-1-propyllithium.
- 12. The compound of claim 1, wherein said compound is 3-[(N,N-dibenzyl)amino]-1-propyllithium.
- 13. The compound of claim 1, wherein said compound is 3-[(N-tert-butyl-N-methyl)amino]-1-propyllithium.
- 14. The compound of claim 1, wherein said compound is 3-[(N,N-di-tert-butyl)amino]-1-propyllithium.
- 15. The compound of claim 1, wherein M is lithium.
- 16. The compound of claim 1, wherein n is zero.
- 17. The compound of claim 1, wherein n is greater than zero.
- 18. The compound of claim 17, wherein Q is derived by incorporation of one or more compounds selected from the group consisting of conjugated diene hydrocarbons, alkenylsubstituted aromatic compounds, and mixtures thereof.
- 19. The compound of claim 18,wherein said conjugated diene is selected from the group consisting of 1,3-butadiene, isoprene, 2,3-dimethyl-1,3-butadiene, 1,3-pentadiene (piperylene), myrcene, 2-methyl-3-ethyl-1,3-butadiene, 2-methyl-3-ethyl-1,3-pentadiene, 1,3-hexadiene, 2-methyl-1,3-hexadiene, 1,3-heptadiene, 3-methyl-1,3-heptadiene, 1,3-octadiene, 3-butyl-1,3-octadiene, 3,4-dimethyl-1,3-hexadiene, 3-n-propyl-1,3-pentadiene, 4,5-diethyl-1,3-octadiene, 2,4-diethyl-1,3-butadiene, 2,3-di-n-propyl-1,3-butadiene, 2-methyl-3-isopropyl-1,3-butadiene, and mixtures thereof.
- 20. The compound of claim 18, wherein said alkenylsubstituted aromatic compound is selected from the group consisting of styrene, alpha-methylstyrene, vinyltoluene, 2-vinylpyridine, 4-vinylpyridine, 1-vinylnaphthalene, 2-vinylnaphthalene, 1-alpha-methylvinylnaphthalene, 2-alpha-methylvinylnaphathalene, 1,2-diphenyl-4-methyl-1-hexene, alkyl, cycloalkyl, aryl, alkaryl and aralkyl derivatives thereof and mixtures thereof.
- 21. A process for making amine functionalized compounds, comprising reacting one or more omega-tertiary-amino-1-haloalkanes of the formula
- 22. The process of claim 21, wherein the protecting group R1 is aralkyl, allyl, or tertiary alkyl.
- 23. The process of claim 22, wherein R1 is benzyl or benzyl derivative.
- 24. The process of claim 22, wherein R1 is allyl.
- 25. The process of claim 22, wherein R1 is tertiary alkyl.
- 26. The process of claim 25, wherein R1 is tertiary butyl.
- 27. The process of claim 22, wherein R2 is the same as R1.
- 28. The process of claim 22, wherein R2 is methyl.
- 29. The process of claim 21, wherein said compound is 3-[(N-benzyl-N-methyl)amino]-1-propyllithium.
- 30. The process of claim 21, wherein said compound is 3-[(N,N-dibenzyl)amino]-1-propyllithium.
- 31. The process of claim 21, wherein said compound is 3-[(N-tert-butyl-N-methyl)amino]-1-propyllithium.
- 32. The process of claim 21, wherein said compound is 3-[(N,N-di-tert-butyl)amino]-1-propyllithium.
- 33. The process of claim 21, wherein M is lithium.
- 34. A polymer of the formula:
- 35. The polymer of claim 34, wherein FG is hydrogen.
- 36. The polymer of claim 34, wherein FG is a functional group derived by incorporation of a functionalizing agent selected from the group consisting of alkylene oxides, styrene oxide, oxetane, oxygen, sulfur, carbon dioxide, halogens, propargyl halides, alkenylhalosilanes, omega-alkenylarylhalosilanes, sulfonated compounds, amides, silicon acetals, 1,5-diazabicyclo[3.1.0]hexane, allyl halides, methacryloyl chloride, haloalkyltrialkoxysilanes, and epihalohydrins.
- 37. The polymer of claim 34, wherein FG comprises the group
- 38. The polymer of claim 34, wherein FG comprises an imine derived functional group.
- 39. The polymer of claim 38, wherein FG is
- 40. The polymer of claim 39, wherein FG is
- 41. The polymer of claim 39, wherein FG is
- 42. The polymer of claim 38, wherein said imine functionalized polymer is reacted without isolating the imine intermediate to form a polymer segment.
- 43. The polymer of claim 34, wherein FG comprises an isocyanate group, an epoxy group, a carboxyl group, an hydroxyl terminated epoxy group or an olefinic group.
- 44. The polymer of claim 34, wherein said polymer comprises unsaturated bonds in the polymer chain and wherein at least a portion of said unsaturated bonds are reacted to form one or more functional groups on the polymer chain.
- 45. The polymer of claim 44, wherein at least a portion of said unsaturated bonds are reacted with epoxy to form one or more epoxy groups on the polymer chain.
- 46. The polymer of claim 34, wherein at least one protecting group is removed to liberate at least one functional group and further wherein said at least one liberated functional group is optionally reacted with one or more comonomers to form a polymer segment.
- 47. The polymer of claim 46, wherein at least one liberated functional group is a nitrogen group and wherein said at least one comonomer is selected from the group consisting of diisocyanates to afford a polyurethane polymer segment, dicarboxylic acids to afford a polyamide condensation polymer segment, epoxy resins to afford an epoxy resin polymer segment, anhydrides to afford a carboxyl group, glycidol to afford an hydroxyl terminated epoxy group, and acrylate functionalized epoxides to afford an olefinic group.
- 48. The polymer of claim 37, wherein T is nitrogen.
- 49. The polymer of claim 34, wherein said polymer is hydrogenated.
- 50. The polymer of claim 34, wherein said polymer includes diene units and has from about 20 to about 80% 1,2 microstructure and a molecular weight from about 10 to about 20,000.
- 51. The polymer of claim 34, wherein the protecting group R1 is aralkyl, allyl, or tertiary alkyl.
- 52. The polymer of claim 51, wherein R1 is benzyl or benzyl derivative.
- 53. The polymer of claim 51, wherein R1 is allyl.
- 54. The polymer of claim 51, wherein R1 is tertiary alkyl.
- 55. The polymer of claim 54, wherein R1 is tertiary butyl.
- 56. The polymer of claim 51, wherein R2 is the same as R1.
- 57. The polymer of claim 51, wherein R2 is methyl.
- 58. The polymer of claim 34, wherein —N(R1)(R2) is N-benzyl-N-methyl)amino.
- 59. The polymer of claim 34, wherein —N(R1)(R2) is (N,N-dibenzyl)amino.
- 60. The polymer of claim 34, wherein —N(R1)(R2) is (N-tert-butyl-N-methyl)amino.
- 61. The polymer of claim 34, wherein —N(R1)(R2) is (N,N-di-tert-butyl)amino.
- 62. A polymer of the formula
- 63. The polymer of claim 62, wherein said polymer is hydrogenated.
- 64. The polymer of claim 62, wherein said polymer includes diene units and has from about 20 to about 80% 1,2 microstructure and a molecular weight from about 10 to about 20,000.
- 65. A polymer of the formula
- 66. The polymer of claim 65, wherein said polymer is hydrogenated.
- 67. The polymer of claim 65, wherein said polymer includes diene units and has from about 20 to about 80% 1,2 microstructure and a molecular weight from about 10 to about 20,000.
- 68. A process for the anionic polymerization of anionically polymerizable compounds comprising the steps of:
initiating polymerization of one or more compounds capable of anionic polymerization in a hydrocarbon or mixed hydrocarbon-polar solvent medium with one or more compounds having the formula: 62to produce an intermediate living polymer, wherein: M is an alkali metal selected from the group consisting of lithium, sodium and potassium; Z is a branched or straight chain hydrocarbon connecting group which contains 3-25 carbon atoms, optionally substituted with aryl or substituted aryl; Q is a saturated or unsaturated hydrocarbyl group derived by the incorporation of one or more unsaturated organic compounds into the M-Z linkage; n is from 0 to 5; R1 is a protecting group selected from the group consisting of aralkyl, allyl, tertiary alkyl and methyl; and R2 is the same as R1, with the proviso that when R1 is methyl, R2 is not C1-C4 alkyl, or R2 is different from R1 and selected from the group consisting of alkyl, substituted alkyl, alkoxy, substituted alkoxy, aryl, substituted aryl, heteroaryl, substituted heteroaryl, cycloalkyl, substituted cycloalkyl, heterocycloalkyl, and substituted heterocycloalkyl, with the proviso that when R2 is not the same as R1, then R2 is more stable under conditions used to remove R1, or each R1 and R2 together with the nitrogen atom to which they are attached form 63wherein y is from 1 to 4 and each R11 is independently selected from the group consisting of hydrogen, alkyl, substituted alkyl, aryl, substituted aryl, cycloalkyl, substituted cycloalkyl, alkoxy, substituted alkoxy, heteroaryl, substituted heteroaryl, heterocycloalkyl, and substituted heterocycloalkyl; reacting the intermediate living polymer with a terminating, functionalizing, or coupling agent; optionally removing at least one protecting group to liberate at least one functional group; and optionally reacting said at least one liberated functional group with one or more comonomers to form a polymer segment.
- 69. The process of claim 68, wherein R1 is aralkyl, allyl, or tertiary alkyl.
- 70. The process of claim 69, wherein R1 is benzyl or benzyl derivative.
- 71. The process of claim 70, wherein the step of removing at least one protecting group comprises hydrogenating said polymer under conditions sufficient to remove said benzyl or benzyl derivative.
- 72. The process of claim 69, wherein R1 is allyl.
- 73. The process of claim 72, wherein the step of removing at least one protecting group comprises treating said polymer with a rhodium catalyst under conditions sufficient to remove said allyl group.
- 74. The process of claim 69, wherein R1 is tertiary alkyl.
- 75. The process of claim 74, wherein the step of removing at least one protecting group comprises treating said polymer with acid under conditions sufficient to remove said tertiary alkyl group.
- 76. The process of claim 68, wherein R1 is methyl and wherein the step of removing at least one protecting group comprises exposing said polymer to ultraviolet radiation under conditions sufficient to remove said methyl group.
- 77. The process of claim 69, wherein R2 is the same as R1.
- 78. The process of claim 69, wherein R2 is methyl.
- 79. The process of claim 68, wherein said compound is 3-[(N-benzyl-N-methyl)amino]-1-propyllithium.
- 80. The process of claim 68, wherein said compound is 3-[(N,N-dibenzyl)amino]-propyllithium.
- 81. The process of claim 68, wherein said compound is 3-[(N-tert-butyl-N-methyl)amino]-1-propyllithium.
- 82. The process of claim 68, wherein said compound is 3-[(N,N-di-tert-butyl)amino]-1-propyllithium.
- 83. The process of claim 68, wherein at least one liberated functional group is a nitrogen group and wherein said one or more comonomers is selected from the group consisting of diisocyanates to afford a polyurethane polymer segment, dicarboxylic acids to afford a polyamide condensation polymer segment, epoxy resins to afford an epoxy resin polymer segment, anhydrides to afford a carboxyl group, glycidol to afford an hydroxyl terminated epoxy group, and acrylate functionalized epoxides to afford an olefinic group.
- 84. The process of claim 68, further comprising hydrogenating said polymer before or after said optional deprotection step.
- 85. A polymer of the formula
- 86. The polymer of claim 85, wherein said polymer is hydrogenated.
- 87. The polymer of claim 85, wherein said polymer includes diene units has from about 20 to about 80% 1,2 microstructure and a molecular weight from about 10 to about 20,000.
- 88. The polymer of claim 85, wherein R2 is methyl.
- 89. The polymer of claim 85, wherein FG comprises an isocyanate group, an epoxy group, a carboxyl group, a hydroxyl terminated epoxy group or an olefinic group.
- 90. A polymer of the formula
- 91. The polymer of claim 90, wherein said polymer is hydrogenated.
- 92. The polymer of claim 90, wherein said includes diene units and has from about 20 to about 80% 1,2 microstructure and a molecular weight from about 10 to about 20,000.
- 93. The polymer of claim 90, wherein each R1 is aralkyl, allyl, or tertiary alkyl.
- 94. The polymer of claim 93, wherein each R1 is benzyl or benzyl derivative.
- 95. The polymer of claim 93, wherein each R1 is allyl.
- 96. The polymer of claim 93, wherein each R1 is tertiary alkyl.
- 97. The polymer of claim 93, wherein each R2 is the same as R1.
- 98. The polymer of claim 93, wherein each R2 is methyl.
- 99. A polymer of the formula
- 100. The polymer of claim 99, wherein the protecting group R1 is aralkyl, allyl, or tertiary alkyl.
- 101. The polymer of claim 100, wherein R1 is benzyl or benzyl derivative.
- 102. The polymer of claim 100, wherein R1 is allyl.
- 103. The polymer of claim 100, wherein R1 is tertiary alkyl.
- 104. The polymer of claim 100, wherein R2 is the same as R1.
- 105. The polymer of claim 100, wherein R2 is methyl.
- 106. The polymer of claim 99, wherein said polymer is hydrogenated.
- 107. The polymer of claim 99, wherein said polymer includes diene units and has from about 20 to about 80% 1,2 microstructure and a molecular weight from about 10 to about 20,000.
- 108. A polymer of the formula
- 109. The polymer of claim 108, wherein R2 is methyl.
- 110. The polymer of claim 108, wherein said polymer is hydrogenated.
- 111. The polymer of claim 108, wherein said polymer includes diene units and has from about 20 to about 80% 1,2 microstructure and a molecular weight from about 10 to about 20,000.
- 112. A polymer of the formula
- 113. The polymer of claim 112, wherein each R2 is methyl.
- 114. A polymer of the formula
- 115. The polymer of claim 114, wherein each R2 is methyl.
- 116. A polymer of the formula
- 117. The polymer of claim 116, wherein said polymer has the formula
- 118. The polymer of claim 116, wherein said polymer has the formula
- 119. The polymer of claim 116, wherein R2 is methyl.
- 120. The polymer of claim 116, wherein said polymer is hydrogenated.
- 121. The polymer of claim 116, wherein said polymer includes diene units and has from about 20 to about 80% 1,2 microstructure and a molecular weight from about 10 to about 20,000.
- 122. A polymer of the formula
- 123. The polymer of claim 122, wherein said polymer is
- 124. The polymer of claim 122, wherein said polymer is
- 125. The polymer of claim 122, wherein said polymer is
- 126. The polymer of claim 122, wherein said polymer is
- 127. The polymer of claim 122, wherein said polymer is
- 128. A polymer of the structure
- 129. The polymer of claim 128, wherein said polymer has the formula
- 130. A polymer of the formula:
- 131. The polymer of claim 130, wherein FG is —N(X′), wherein X′ is also a polymer segment derived by reaction of at least one comonomer with N.
- 132. The polymer of claim 130, wherein FG comprises an imine derived group.
- 133. The polymer of claim 132, wherein said said imine functionalized polymer is reacted without isolating the imine intermediate to form a polymer segment.
- 134. The polymer of claim 130, wherein FG comprises an isocyanate group, an epoxy group, a carboxyl group, a hydroxyl terminated epoxy group or an olefinic group.
- 135. The polymer of claim 130, wherein —N(X) comprises an isocyanate group, an epoxy group, a carboxyl group, a hydroxyl terminated epoxy group or an olefinic group.
- 136. The polymer of claim 130, wherein each of FG and —N(X) independently comprises an isocyanate group, an epoxy group, a carboxyl group, a hydroxyl terminated epoxy group or an olefinic group.
- 137. The polymer of claim 136, wherein FG and —N(X) are the same.
- 138. The polymer of claim 136, wherein FG and —N(X) are different.
- 139. A polymer of the formula
- 140. The polymer of claim 139, wherein at least one —N(X) comprises an imine derived group.
- 141. The polymer of claim 140, wherein said imine functionalized polymer is reacted without isolating the imine intermediate to form a polymer segment.
- 142. The polymer of claim 139, wherein at least one —N(X) group comprises an isocyanate group, an epoxy group, a carboxyl group, a hydroxyl terminated epoxy group or an olefinic group.
- 143. The polymer of claim 139, wherein each —N(X) group comprises an isocyanate group, an epoxy group, a carboxyl group, a hydroxyl terminated epoxy group or an olefinic group.
- 144. The polymer of claim 143, wherein each —N(X) is the same.
- 145. A polymer of the formula
- 146. The polymer of claim 145, wherein at least one B is —N(X′), wherein X′ is also a polymer segment derived by reaction of at least one comonomer with N.
- 147. The polymer of claim 145, at least one —N(X) group comprises an imine derived group.
- 148. The polymer of claim 147, wherein said imine functionalized polymer is reacted without isolating the imine intermediate to form a polymer segment.
- 149. The polymer of claim 145, wherein at least one —N(X) group comprises an isocyanate group, an epoxy group, a carboxyl group, a hydroxyl terminated epoxy group or an olefinic group.
- 150. The polymer of claim 145, wherein at least one —B comprises an isocyanate group, an epoxy group, a carboxyl group, a hydroxyl terminated epoxy group or an olefinic group.
- 151. The polymer of claim 145, wherein each of —N(X) and —B independently comprises an isocyanate group, an epoxy group, a carboxyl group, a hydroxyl terminated epoxy group or an olefinic group.
- 152. The polymer of claim 151, wherein each —N(X) and B is the same.
- 153. The polymer of claim 151, wherein —N(X) and B are different.
- 154. A polymer comprising at least one terminal secondary amine functional group.
- 155. A tire comprising at least one polymer of claim 65.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of U.S. application Ser. No. 09/655,528, filed Sep. 19, 2000, which is a continuation-in-part of U.S. application Ser. No. 09/256,737, filed Feb. 24, 1999, the disclosures of which are incorporated by reference herein in their entireties.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09665528 |
Sep 2000 |
US |
Child |
10322925 |
Dec 2002 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09256737 |
Feb 1999 |
US |
Child |
09665528 |
Sep 2000 |
US |