Claims
- 1. A resorcinol ester polycarbonate polymer having good flow characteristics comprising:
(a) a resorcinol arylate polyester chain; (b) at least one organic carbonate group; and (c) at least one soft-block chemical moiety.
- 2. The polymer of claim 1, wherein the resorcinol arylate polyester chain comprises the condensation of at least one resorcinol moiety with at least one dicarboxylic acid dichloride, wherein the dicarboxylic acid residues comprise a monocyclic aromatic moiety or a polycyclic aromatic moiety.
- 3. The polymer of claim 1, wherein the resorcinol arylate polyester chain is substantially free of anhydride linkages.
- 4. The polymer of claim 3, wherein the resorcinol arylate polyester chain comprises the condensation of at least one resorcinol moiety with at least one dicarboxylic acid dichloride while maintaining the pH between 3 and 8.5 through the presence of an acid acceptor, wherein the total molar amount of acid chloride groups is stoichiometrically deficient relative to the total molar amount of phenolic groups on the resorcinol moiety.
- 5. The polymer of claim 2, wherein the resorcinol moiety used to generate the resorcinol arylate polyester chain comprises compounds of Formula I
- 6. The polymer of claim 5, wherein the resorcinol moiety used to generate the resorcinol arylate polyester chain comprises unsubstituted resorcinol, 2-methyl resorcinol, and mixtures thereof.
- 7. The polymer of claim 2, wherein the at least one dicarboxylic acid dichloride comprises isophthaloyl dichloride, terephthaloyl dichloride, naphthalene-2,6-dicarboxylic acid dichloride and mixtures thereof.
- 8. The polymer of claim 1, wherein the resorcinol ester polycarbonate polymer backbone comprises the structure as illustrated in Formula IV:
- 9. The polymer of claim 8, wherein Rx comprises a divalent organic radical derived from a bisphenol of Formula VIII
- 10. The polymer of claim 1, wherein the soft-block moiety comprises structural units of Formulas IX, X, or XI:
- 11. The polymer of claim 1, wherein the soft-block moiety comprises an aliphatic ester.
- 12. The polymer of claim 11, wherein the aliphatic ester is introduced into the polymer by substitution of an aliphatic acid or diacid chloride for a portion of a dicarboxylic acid dichloride used to produce the resorcinol arylate chain.
- 13. The polymer of claim 12, wherein the soft-block moiety is derived from at least one of carboxy-terminated polybutadiene, carboxy-terminated butadiene-acrylonitrile copolymer, adipoyl chloride, sebacoyl chloride, or dodecanoyl chloride.
- 14. The polymer of claim 1, wherein the soft-block moiety is derived from at least one species comprising at least one hydroxy end-group.
- 15. The polymer of claim 14, wherein the hydroxy terminated soft-block moiety is substituted for a portion of the resorcinol moiety used to produce the resorcinol arylate chain.
- 16. The polymer of claim 1, wherein the soft-block moiety is derived from oligomers of at least one of diethylene glycol, tetraethylene glycol, or a low molecular weight polyethylene glycol.
- 17. The polymer of claim 1, wherein the soft-block moiety is derived from at least one of hydroxy-terminated aliphatic polyester or polycarbonate oligomer.
- 18. The polymer of claim 1, wherein the soft-block moiety is derived from a poly(tetrahydrofuran) diol.
- 19. The polymer of claim 1, wherein the soft-block moiety is derived from an o,p-mixture of citronellyl citronellate diphenol (CCDP).
- 20. The polymer of claim 1, wherein the soft-block moiety is derived from a siloxane oligomer as shown in Formula XII,
- 21. The polymer of claim 20, wherein the siloxane soft-block moiety of Formula XII comprises α, ω(3-(4-hydroxy-3-methoxy)-propyl)-deca(dimethylsiloxane) (ED10E) or 1,3(bis-3-(4-hydroxy-3-methoxy)-propyl)-1,1,3,3,-tetramethyl disiloxane (EMME).
- 22. The polymer of claim 20, wherein the Ar moiety of the siloxane soft-block moiety of Formula XVI is derived from bisphenol A and x has a value of about 30 to about 100.
- 23. The polymer of claim 1, wherein the soft-block moiety is introduced into the polymer during synthesis of the organic carbonate group.
- 24. The polymer of claim 1, wherein the soft-block moiety is derived from a bisphenol functionalized with an aliphatic ester.
- 25. The polymer of claim 24, wherein the bisphenol functionalized with an aliphatic ester has the structure as shown in Formula XIII
- 26. The polymer of claim 1, wherein the soft-block moiety comprises an aliphatic moiety introduced into the polymer using a chain stopper comprising an aliphatic tail.
- 27. The polymer of claim 26, wherein the soft-block moiety is derived from the structure of Formula XIV,
- 28. The polymer of claim 1, wherein the soft-block moiety comprises 0.1-25% by weight of the polymer.
- 29. The polymer of claim 1, wherein the soft-block moiety comprises 1-20% by weight of the polymer.
- 30. The polymer of claim 1, wherein the soft-block moiety comprises 2-10% by weight of the polymer.
- 31. The polymer of claim 1, wherein the reduction in melt viscosity upon addition of the soft-block moiety comprises greater than 10% at 250° C.
- 32. The polymer of claim 1, wherein the reduction in melt viscosity upon addition of the soft-block moiety comprises greater than 20% at 250° C.
- 33. The polymer of claim 1, wherein the glass transition temperature (Tg) is greater than 125° C.
- 34. The polymer of claim 1, wherein the glass transition temperature (Tg) is greater than 130° C.
- 35. A resorcinol ester polycarbonate polymer having good flow characteristics comprising at least one soft-block moiety incorporated into a resorcinol phthalate-co-bisphenol A-polycarbonate copolymer substantially free of anhydride linkages, wherein the resorcinol phthalate-co-bisphenol A-polycarbonate copolymer comprises the structural unit of Formula IV,
- 36. The polymer of claim 35, wherein Rx comprises a divalent organic radical derived from a bisphenol of Formula VIII
- 37. The polymer of claim 35, wherein the soft-block comprises an aliphatic polyester or a polycarbonate oligomer.
- 38. The polymer of claim 35, wherein the soft-block comprises a polyethylene oligomer.
- 39. The polymer of claim 35, wherein the soft-block is derived from poly(tetrahydrofuran)diol.
- 40. The polymer of claim 35, wherein the soft-block is derived from an o,p-mixture of citronellyl citronellate diphenol (CCDP).
- 41. A-resorcinol ester polycarbonate polymer having good flow characteristics comprising at least one soft-block moiety incorporated into a resorcinol phthalate-co-bisphenol A-polycarbonate copolymer substantially free of anhydride linkages, wherein the resorcinol phthalate-co-bisphenol A-polycarbonate copolymer comprises the structural unit of Formula IV
- 42. The polymer of claim 41, wherein the soft-block comprises an aliphatic ester having at least six carbon atoms.
- 43. A resorcinol ester polycarbonate polymer having good flow characteristics comprising at least one soft-block moiety incorporated into a resorcinol phthalate-co-bisphenol A-polycarbonate copolymer substantially free of anhydride linkages, wherein the resorcinol phthalate-co-bisphenol A-polycarbonate copolymer comprises the structural unit of Formula IV
- 44. A resorcinol ester polycarbonate polymer having good flow characteristics comprising at least one soft-block moiety incorporated into a resorcinol phthalate-co-bisphenol A-polycarbonate copolymer substantially free of anhydride linkages, wherein the resorcinol phthalate-co-bisphenol A-polycarbonate copolymer comprises the structural unit of Formula IV
- 45. A resorcinol ester polycarbonate polymer having good flow characteristics comprising at least one soft-block moiety incorporated into a resorcinol phthalate-co-bisphenol A-polycarbonate copolymer substantially free of anhydride linkages, wherein the resorcinol phthalate-co-bisphenol A-polycarbonate copolymer comprises the structural unit of Formula IV,
- 46. A method of making a resorcinol ester polycarbonate polymer having good flow characteristics comprising:
(a) generating a resorcinol arylate polyester chain; (b) conducting an interfacial polymerization in the presence of at least one divalent organic radical to generate a poly(resorcinol arylate-co-polycarbonate) comprising an organic carbonate group; (c) incorporating at least one soft-block chemical moiety into the polymer during step (a) or step (b) or both.
- 47. The method of claim 46, wherein the resorcinol arylate polyester chain comprises the condensation of at least one resorcinol moiety with at least one dicarboxylic acid dichloride, wherein the dicarboxylic acid residues comprise a monocyclic aromatic moiety or a polycyclic aromatic moiety.
- 48. The method of claim 46, wherein the resorcinol arylate polyester chain is substantially free of anhydride linkages.
- 49. The method of claim 48, wherein the resorcinol arylate polyester chain comprises the interfacial condensation of at least one resorcinol moiety with at least one dicarboxylic acid dichloride while maintaining the pH between 3 and 8.5 through the presence of an acid acceptor, wherein the total molar amount of acid chloride groups is stoichiometrically deficient relative to the total molar amount of phenolic groups.
- 50. The method of claim 48, wherein the stoichiometric ratio of total phenolic groups to total acid chloride groups for generation of the resorcinol arylate polyester chain is 1.5-1.01:1.
- 51. The method of claim 47, wherein the resorcinol moiety used to generate the resorcinol arylate polyester chain comprises compounds of Formula I,
- 52. The method of claim 51, wherein the resorcinol moiety used to generate the resorcinol arylate polyester chain comprises unsubstituted resorcinol, 2-methyl resorcinol, and mixtures thereof.
- 53. The method of claim 47, wherein the at least one dicarboxylic acid dichloride comprises isophthaloyl dichloride, terephthaloyl dichloride, naphthalene-2,6-dicarboxylic acid dichloride and mixtures thereof.
- 54. The method of claim 46, wherein the resorcinol ester polycarbonate polymer comprises structure as illustrated in formula IV:
- 55. The method of claim 54, wherein Rx comprises a divalent organic radical derived from a bisphenol of Formula VIII
- 56. The method of claim 46, wherein the soft-block moiety comprises structural units of Formulas IX, X or XI:
- 57. The method of claim 46, wherein the soft-block moiety comprises an aliphatic ester.
- 58. The method of claim 57, wherein the aliphatic ester is introduced into the polymer by substitution of an aliphatic acid or diacid chloride for a portion of a dicarboxylic acid dichloride used to produce the resorcinol arylate chain.
- 59. The method of claim 57, wherein the soft-block moiety is derived from at least one of carboxy-terminated polybutadiene, carboxy-terminated butadiene-acrylonitrile copolymer, adipoyl chloride, sebacoyl chloride, or dodecanoyl chloride.
- 60. The method of claim 46, wherein the soft-block moiety is derived from at least one species comprising at least one hydroxy end-group.
- 61. The method of claim 60, wherein the hydroxy terminated soft-block moiety is substituted for a portion of the resorcinol moiety used to produce the resorcinol arylate chain.
- 62. The method of claim 61, wherein the soft-block moiety is derived from an oligomer of at least one of diethylene glycol, tetraethylene glycol, or a low molecular weight polyethylene glycol.
- 63. The method of claim 61, wherein the soft-block moiety is derived from at least one of a hydroxy-terminated aliphatic polyester or polycarbonate oligomer.
- 64. The method of claim 61, wherein the soft-block moiety is derived from a poly(tetrahydrofuran) diol.
- 65. The method of claim 61, wherein the soft-block moiety is derived from an o,p-mixture of citronellyl citronellate diphenol (CCDP).
- 66. The method of claim 61, wherein the soft-block moiety is derived from a siloxane oligomer as shown in Formula XII,
- 67. The method of claim 66, wherein the siloxane soft-block moiety of Formula XII comprises α, ω(3-(4-hydroxy-3-methoxy)-propyl)-deca(dimethylsiloxane) (ED10E) or 1,3(bis-3-(4-hydroxy-3-methoxy)-propyl)-1,1,3,3,-tetramethyl disiloxane (EMME).
- 68. The method of claim 66, wherein the Ar moiety of the siloxane soft-block moiety of Formula XVI is derived from bisphenol A and x has a value of about 30 to about 100.
- 69. The method of claim 46, wherein the soft-block moiety is introduced into the polymer during synthesis of the organic carbonate group.
- 70. The method of claim 46, wherein the soft-block moiety is derived from a bisphenol functionalized with an aliphatic ester.
- 71. The method of claim 70, wherein the bisphenol functionalized with an aliphatic ester has the structure as shown in Formula XIII
- 72. The method of claim 46, wherein the soft-block moiety comprises an aliphatic moiety introduced into the polymer using a chain stopper comprising an aliphatic tail.
- 73. The method of claim 72, wherein the soft-block moiety is derived from the structure of Formula XIV,
- 74. The method of claim 46, wherein the soft-block moiety comprises 0.1-25% by weight of the polymer.
- 75. The method of claim 46, wherein the soft-block moiety comprises 1-20% by weight of the polymer.
- 76. The method of claim 46, wherein the soft-block moiety comprises 2-10% by weight of the polymer.
- 77. The method of claim 46, wherein the reduction in melt viscosity upon addition of the soft-block moiety comprises greater than 10% at 250° C.
- 78. The method of claim 46, wherein the reduction in melt viscosity upon addition of the soft-block moiety comprises greater than 20% at 250° C.
- 79. The method of claim 46, wherein the polymer comprising the soft-block moiety comprises a glass transition temperature (Tg) of greater than 125° C.
- 80. The method of claim 46, wherein the polymer comprising the soft-block moiety comprises a glass transition temperature (Tg) of greater than 130° C.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of copending U.S. application Ser. No. 09/908,396, filed Jul. 18, 2001, which claims the benefit of U.S. Provisional Application No. 60/134,692, filed May 18, 1999, and U.S. application Ser. No. 09/368,706 filed Aug. 5, 1999, and which applications are incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09908396 |
Jul 2001 |
US |
Child |
10307873 |
Dec 2002 |
US |