Claims
- 1. A cross-linked polymer network, comprising:
hyperbranched polymer domains having a plurality of each of at least one type of potentially reactive functional groups; and a cross-linker covalently bonding the hyperbranched polymer domains together.
- 2. The network of claim 1, wherein at least one of the different types of potentially reactive functional groups is substantially uniformly distributed throughout the hyperbranched polymer domains.
- 3. The network of claim 1, wherein at least one of the different types of potentially reactive functional groups is a hydrolyzable group substantially uniformly distributed throughout the hyperbranched polymer domains.
- 4. The network of claim 1, wherein at least one of the different types of potentially reactive functional groups is a hydrolyzable group bonded to a silicon atom substantially uniformly distributed throughout the hyperbranched polymer domains.
- 5. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more reactive functional groups of the first type (A) and a second monomer having two or more reactive functional groups of the second type (B), at least one of the monomers having three or more reactive functional groups and at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 6. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more vinyl or allyl reactive functional groups (A) and a second monomer having two or more hydrosilyl reactive functional groups (B), at least one of the monomers having three or more reactive functional groups and at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 7. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one reactive functional group of the first type (A), at least two reactive functional groups of the second type (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 8. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one hydrosilyl reactive functional group (A), at least two vinyl or allyl reactive functional groups (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 9. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one vinyl or allyl reactive functional group (A), at least two hydrosilyl reactive functional groups (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 10. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction involving more than two mutually reactive monomers wherein at least one of the monomers has two or more reactive functional groups of the first type (A) and at least one of the other monomers has three or more reactive functional groups of the second type (B), at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 11. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more reactive functional groups of the first type (A) and a second monomer having two or more reactive functional groups of the second type (B), at least one of the monomers having three or more reactive functional groups and wherein one of the monomers having at least one latent functional group (C) and the other monomer having at least one latent functional group (D) wherein these latent functional groups may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 12. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one reactive functional group of the first type (A), at least two reactive functional groups of the second type (B) and at least two latent functional groups (C and D) that do not react significantly during the polymerization of the hyperbranched polymer but may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 13. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction involving more than two mutually reactive monomers wherein at least one of the monomers has two or more reactive functional groups of the first type (A) and at least one of the other monomers having three or more reactive functional groups of the second type (B), at least one of the monomers having at least two latent functional group (C and D) or at least one of the reacting monomers having one type of latent functional groups (C) while at least one of the other monomers having at least one of another reactive functional groups (D) wherein the latent functional groups (C and D) do not react significantly during the polymerization of the hyperbranched polymer but may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 14. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having two or more hydrosilyl groups, and a monomer selected from the group consisting of diallyldimethylsilane, diallyldiphenylsilane, 1,3-diallyltetrakis(trimethylsiloxy)-disiloxane, 1,3-diallyltetramethyldisiloxane, divinyldimethylsilane, 1,3-divinyl-1,3-diphenyl-1,3-dimethyl-disiloxane, 1,5-divinyl-3,3-diphenyltetramethyltrisiloxane, 1,5-divinylhexamethyltrisiloxane, 1,5-divinyl-3-phenylpentamethyltrisiloxane, divinyltetrakis(trimethylsiloxy)disiloxane, divinyltetramethyldisilane, 1,3-divinyltetramethyldisiloxane, 1,4-divinyltetramethyldisilylethane, divinyltetraphenyldisiloxane, tris(vinyldimethylsiloxy)methylsilane, tris(vinyldimethylsiloxy)phenylsilane, trivinylmethylsilane, 1,3,5-trivinyl-1,1,3,5,5-pentamethyltrisiloxane, 1,3,5-trivinyl-1,3,5-trimethylcyclotrisiloxane, and divinyldimethylsilane.
- 15. The network of claim 1, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least two vinyl or allyl groups, and a monomer selected from the group consisting of 1,1,3,3-tetramethyldisiloxane, methyltris(dimethylsiloxy)silane, phenyltris(dimethylsiloxy)silane, methylhydrocyclosiloxanes, tetrakis(dimethylsiloxy)silane, dimethylsilane, diethylsilane, diphenylsilane, phenylmethylsilane, methylsilane, and phenylsilane.
- 16. The network of 1, wherein the connector is an alpha,omega-telechelic linear polymer.
- 17. The network of claim 16, wherein the alpha,omega-telechelic linear polymer or oligomer has a polysiloxane backbone.
- 18. The network of claim 16, wherein the alpha,omega-telechelic linear polymer or oligomer is a polydialkylsiloxane.
- 19. The network of claim 1, wherein the connector is a multi-functional linear polymer with functional groups pendant to the main chain backbone.
- 20. The network of claim 1, wherein the connector is a multi-functional traditional branched polymer having functional groups regularly or randomly distributed in the main or in the side chains.
- 21. The network of claim 1, wherein the connector is a di- or multi-functional non-polymeric compound that can react with the terminal functional groups at the surface of the hyperbranched polymer.
- 22. The network of claim 1, wherein the connector is selected from the group consisting of multi-arm star polymers, dendrimers, dendrons, Combburst™ dendrigrafts and hyperbranched polymers.
- 23. The network of claim 1, wherein crosslinking of the hyperbranched polymer precursor(s) was achieved by the hydrolysis of functional groups that were substantially uniformly distributed at the terminals of the hyperbranched polymer molecules.
- 24. A cross-linked polymer network containing nanoscopic reinforcing domains, comprising:
a hyperbranched polymer domains containing reinforcing structures distributed in and covalently bonded to the hyperbranched polymer; and a cross-linker covalently bonding the hyperbranched polymer domains together.
- 25. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more reactive functional groups of the first type (A) and a second monomer having two or more reactive functional groups of the second type (B), at least one of the monomers having three or more reactive functional groups and at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 26. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more vinyl or allyl reactive functional groups (A) and a second monomer having two or more hydrosilyl reactive functional groups (B), at least one of the monomers having three or more reactive functional groups and at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 27. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one reactive functional group of the first type (A), at least two reactive functional groups of the second type (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 28. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one hydrosilyl reactive functional group (A), at least two vinyl or allyl reactive functional groups (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 29. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one vinyl or allyl reactive functional group (A), at least two hydrosilyl reactive functional groups (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 30. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction involving more than two mutually reactive monomers wherein at least one of the monomers has two or more reactive functional groups of the first type (A) and at least one of the other monomers has three or more reactive functional groups of the second type (B), at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 31. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more reactive functional groups of the first type (A) and a second monomer having two or more reactive functional groups of the second type (B), at least one of the monomers having three or more reactive functional groups and wherein one of the monomers having at least one latent functional group (C) and the other monomer having at least one latent functional group (D) wherein these latent functional groups may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 32. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one reactive functional group of the first type (A), at least two reactive functional groups of the second type (B) and at least two latent functional groups (C and D) that do not react significantly during the polymerization of the hyperbranched polymer but may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 33. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction involving more than two mutually reactive monomers wherein at least one of the monomers has two or more reactive functional groups of the first type (A) and at least one of the other monomers having three or more reactive functional groups of the second type (B), at least one of the monomers having at least two latent functional group (C and D) or at least one of the reacting monomers having one type of latent functional groups (C) while at least one of the other monomers having at least one of another reactive functional groups (D) wherein the latent functional groups (C and D) do not react significantly during the polymerization of the hyperbranched polymer but may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 34. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having two or more hydrosilyl groups, and a monomer selected from the group consisting of diallyldimethylsilane, diallyldiphenylsilane, 1,3-diallyltetrakis(trimethylsiloxy)-disiloxane, 1,3-diallyltetramethyldisiloxane, divinyldimethylsilane, 1,3-divinyl-1,3-diphenyl-1,3-dimethyl-disiloxane, 1,5-divinyl-3,3-diphenyltetramethyltrisiloxane, 1,5-divinylhexamethyltrisiloxane, 1,5-divinyl-3-phenylpentamethyltrisiloxane, divinyltetrakis(trimethylsiloxy)disiloxane, divinyltetramethyldisilane, 1,3-divinyltetramethyldisiloxane, 1,4-divinyltetramethyldislylethane, divinyltetraphenyldisiloxane, tris(vinyldimethylsiloxy)methylsilane, tris(vinyldimethylsiloxy)phenylsilane, trivinylmethylsilane, 1,3,5-trivinyl- 1,1,3,5,5-pentamethyltrisiloxane, 1,3,5-trivinyl- 1,3,5-trimethylcyclotrisiloxane, and divinyldimethylsilane.
- 35. The network of claim 24, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least two vinyl or allyl groups, and a monomer selected from the group consisting of 1,1,3,3-tetramethyldisiloxane, methyltris(dimethylsiloxy)silane, phenyltris(dimethylsiloxy)silane, methylhydrocyclosiloxanes, tetrakis(dimethylsiloxy)silane, dimethylsilane, diethylsilane, diphenylsilane, phenylmethylsilane, methylsilane, and phenylsilane.
- 36. The network of claim 24, wherein the connector is an alpha,omega-telechelic linear polymer.
- 37. The network of claim 36, wherein the alpha,omega-telechelic linear polymer or oligomer has a polysiloxane backbone.
- 38. The network of claim 36, wherein the alpha,omega-telechelic linear polymer or oligomer is a polydialkylsiloxane.
- 39. The network of claim 24, wherein the connector is a multi-functional linear polymer with functional groups pendant to the main chain backbone.
- 40. The network of claim 24, wherein the connector is a multi-functional traditional branched polymer having functional groups regularly or randomly distributed in the main or in the side chains.
- 41. The network of claim 24, wherein the connector is a di- or multi-functional non-polymeric compound that can react with the terminal functional groups at the surface of the hyperbranched polymer.
- 42. The network of claim 24, wherein the connector is selected from the group consisting of multi-arm star polymers, dendrimers, dendrons, Combburst™ dendrigrafts and hyperbranched polymers.
- 43. The network of claim 24, wherein the inorganic structures distributed in and covalently bonded to the hyperbranched polymer are the in situ condensation product of hydrolyzable groups bonded to a silicon atom.
- 44. The network of claim 24, wherein the inorganic structures distributed in and covalently bonded to the hyperbranched polymer have dimensions of from about 1 to about 15 nanometers.
- 45. A process for making a cross-linked polymer network, comprising the step of:
reacting a hyperbranched polymer having a plurality of each of at least two different types of functional groups with a cross-linker that covalently bonds the hyperbranched polymer molecules together.
- 46. The process of claim 45, wherein at least one of the different types of functional groups is substantially uniformly distributed throughout the hyperbranched polymer molecule and at least one other of the two different functional groups is substantially uniformly distributed at the terminals of the hyperbranched polymer molecule.
- 47. The process of claim 45, wherein at least one of the different types of functional groups is a hydrolyzable group bonded to a silicon atom substantially uniformly distributed throughout the hyperbranched polymer molecule and the other of the different functional groups is substantially uniformly distributed at the terminals of the hyperbranched polymer molecule.
- 48. The process of claim 45, wherein at least one of the different types of functional groups is a hydrolyzable group substantially uniformly distributed throughout the hyperbranched polymer molecule and the other of the different functional groups is a hydrosilyl, vinyl or allyl group.
- 49. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more reactive functional groups of the first type (A) and a second monomer having two or more reactive functional groups of the second type (B), at least one of the monomers having three or more reactive functional groups and at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 50. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more vinyl or allyl reactive functional groups (A) and a second monomer having two or more hydrosilyl reactive functional groups (B), at least one of the monomers having three or more reactive functional groups and at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 51. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one reactive functional group of the first type (A), at least two reactive functional groups of the second type (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 52. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one hydrosilyl reactive functional group (A), at least two vinyl or allyl reactive functional groups (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 53. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one vinyl or allyl reactive functional group (A), at least two hydrosilyl reactive functional groups (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 54. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction involving more than two mutually reactive monomers wherein at least one of the monomers has two or more reactive functional groups of the first type (A) and at least one of the other monomers has three or more reactive functional groups of the second type (B), at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 55. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more reactive functional groups of the first type (A) and a second monomer having two or more reactive functional groups of the second type (B), at least one of the monomers having three or more reactive functional groups and wherein one of the monomers having at least one latent functional group (C) and the other monomer having at least one latent functional group (D) wherein these latent functional groups may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 56. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one reactive functional group of the first type (A), at least two reactive functional groups of the second type (B) and at least two latent functional groups (C and D) that do not react significantly during the polymerization of the hyperbranched polymer but may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 57. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction involving more than two mutually reactive monomers wherein at least one of the monomers has two or more reactive functional groups of the first type (A) and at least one of the other monomers having three or more reactive functional groups of the second type (B), at least one of the monomers having at least two latent functional group (C and D) or at least one of the reacting monomers having one type of latent functional groups (C) while at least one of the other monomers having at least one of another reactive functional groups (D) wherein the latent functional groups (C and D) do not react significantly during the polymerization of the hyperbranched polymer but may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 58. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having two or more hydrosilyl groups, and a monomer selected from the group consisting of diallyldimethylsilane, diallyldiphenylsilane, 1,3-diallyltetrakis(trimethylsiloxy)-disiloxane, 1,3-diallyltetramethyldisiloxane, divinyldimethylsilane, 1,3-divinyl-1,3-diphenyl-1,3-dimethyl-disiloxane, 1,5-divinyl-3,3-diphenyltetramethyltrisiloxane, 1,5-divinylhexamethyltrisiloxane, 1,5-divinyl-3-phenylpentamethyltrisiloxane, divinyltetrakis(trimethylsiloxy)disiloxane, divinyltetramethyldisilane, 1,3-divinyltetramethyldisiloxane, 1,4-divinyltetramethyldisilylethane, divinyltetraphenyldisiloxane, tris(vinyldimethylsiloxy)methylsilane, tris(vinyldimethylsiloxy)phenylsilane, trivinylmethylsilane, 1,3,5-trivinyl-1,1,3,5,5-pentamethyltrisiloxane, 1,3,5-trivinyl-1,3,5-trimethylcyclotrisiloxane, and divinyldimethylsilane.
- 59. The process of claim 45, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least two vinyl or allyl groups, and a monomer selected from the group consisting of 1,1,3,3-tetramethyldisiloxane, methyltris(dimethylsiloxy)silane, phenyltris(dimethylsiloxy)silane, methylhydrocyclosiloxanes, tetrakis(dimethylsiloxy)silane, dimethylsilane, diethylsilane, diphenylsilane, phenylmethylsilane, methylsilane, and phenylsilane.
- 60. The process of claim 45, wherein the connector is an alpha,omega-telechelic linear polymer.
- 61. The process of claim 45, wherein the alpha,omega-telechelic linear polymer or oligomer has a polysiloxane backbone.
- 62. The process of claim 45, wherein the alpha,omega-telechelic linear polymer or oligomer is a polydialkylsiloxane.
- 63. The process of claim 45, wherein the connector is a multi-functional linear polymer with functional groups pendant to the main chain backbone.
- 64. The process of claim 45, wherein the connector is a multi-functional traditional branched polymer having functional groups regularly or randomly distributed in the main or in the side chains.
- 65. The process of claim 45, wherein the connector is a di- or multi-functional non-polymeric compound that can react with the terminal functional groups at the surface of the hyperbranched polymer.
- 66. The process of claim 45, wherein the connector is selected from the group consisting of multi-arm star polymers, dendrimers, dendrons, Combburst™ dendrigrafts and hyperbranched polymers.
- 67. The process of claim 45, wherein the crosslinking of the hyperbranched polymer precursor(s) is achieved by the hydrolysis of functional groups that were substantially uniformly distributed at the terminals of the hyperbranched polymer molecules.
- 68. A process for making a cross-linked polymer network containing nanoscopic reinforcing domains comprising the step of:
reacting a hyperbranched polymer containing reinforcing structures distributed in and covalently bonded to the hyperbranched polymer with a cross-linker to covalently bond the hyperbranched polymer molecules together.
- 69. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more reactive functional groups of the first type (A) and a second monomer having two or more reactive functional groups of the second type (B), at least one of the monomers having three or more reactive functional groups and at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 70. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more vinyl or allyl reactive functional groups (A) and a second monomer having two or more hydrosilyl reactive functional groups (B), at least one of the monomers having three or more reactive functional groups and at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 71. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one reactive functional group of the first type (A), at least two reactive functional groups of the second type (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 72. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one hydrosilyl reactive functional group (A), at least two vinyl or allyl reactive functional groups (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 73. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one vinyl or allyl reactive functional group (A), at least two hydrosilyl reactive functional groups (B) and at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 74. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction involving more than two mutually reactive monomers wherein at least one of the monomers has two or more reactive functional groups of the first type (A) and at least one of the other monomers has three or more reactive functional groups of the second type (B), at least one of the monomers having at least one latent functional group (C) that does not react significantly during the polymerization of the hyperbranched polymer.
- 75. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction of a first monomer having two or more reactive functional groups of the first type (A) and a second monomer having two or more reactive functional groups of the second type (B), at least one of the monomers having three or more reactive functional groups and wherein one of the monomers having at least one latent functional group (C) and the other monomer having at least one latent functional group (D) wherein these latent functional groups may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 76. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least one reactive functional group of the first type (A), at least two reactive functional groups of the second type (B) and at least two latent functional groups (C and D) that do not react significantly during the polymerization of the hyperbranched polymer but may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 77. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction involving more than two mutually reactive monomers wherein at least one of the monomers has two or more reactive functional groups of the first type (A) and at least one of the other monomers having three or more reactive functional groups of the second type (B), at least one of the monomers having at least two latent functional group (C and D) or at least one of the reacting monomers having one type of latent functional groups (C) while at least one of the other monomers having at least one of another reactive functional groups (D) wherein the latent functional groups (C and D) do not react significantly during the polymerization of the hyperbranched polymer but may undergo reaction between themselves under the reaction conditions that are different from the polymerization reaction conditions.
- 78. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having two or more hydrosilyl groups, and a monomer selected from the group consisting of diallyldimethylsilane, diallyldiphenylsilane, 1,3-diallyltetrakis(trimethylsiloxy)-disiloxane, 1,3-diallyltetramethyldisiloxane, divinyldimethylsilane, 1,3-divinyl-1,3-diphenyl-1,3-dimethyl-disiloxane, 1,5-divinyl-3,3-diphenyltetramethyltrisiloxane, 1,5-divinylhexamethyltrisiloxane, 1,5-divinyl-3-phenylpentamethyltrisiloxane, divinyltetrakis(trimethylsiloxy)disiloxane, divinyltetramethyldisilane, 1,3-divinyltetramethyldisiloxane, 1,4-divinyltetramethyldisilylethane, divinyltetraphenyldisiloxane, tris(vinyldimethylsiloxy)methylsilane, tris(vinyldimethylsiloxy)phenylsilane, trivinylmethylsilane, 1,3,5-trivinyl-1,1,3,5,5-pentamethyltrisiloxane, 1,3,5-trivinyl-1,3,5-trimethylcyclotrisiloxane, and divinyldimethylsilane.
- 79. The process of claim 68, wherein the hyperbranched polymer is a product of a polymerization reaction of a monomer having at least two vinyl or allyl groups, and a monomer selected from the group consisting of 1,1,3,3-tetramethyldisiloxane, methyltris(dimethylsiloxy)silane, phenyltris(dimethylsiloxy)silane, methylhydrocyclosiloxanes, tetrakis(dimethylsiloxy)silane, dimethylsilane, diethylsilane, diphenylsilane, phenylmethylsilane, methylsilane, and phenylsilane.
- 80. The process of claim 68, wherein the connector is an alpha,omega-telechelic linear polymer.
- 81. The process of claim 68, wherein the alpha,omega-telechelic linear polymer or oligomer has a polysiloxane backbone.
- 82. The process of claim 68, wherein the alpha,omega-telechelic linear polymer or oligomer is a polydialkylsiloxane.
- 83. The process of claim 68, wherein the connector is a multi-functional linear polymer with functional groups pendant to the main chain backbone.
- 84. The process of claim 68, wherein the connector is a multi-functional traditional branched polymer having functional groups regularly or randomly distributed in the main or in the side chains.
- 85. The process of claim 68, wherein the connector is a di- or multi-functional non-polymeric compound that can react with the terminal functional groups at the surface of the hyperbranched polymer.
- 86. The process of claim 68, wherein the connector is selected from the group consisting of multi-arm star polymers, dendrimers, dendrons, Combburst™ dendrigrafts and hyperbranched polymers.
- 87. The process of claim 68, wherein the crosslinking of the hyperbranched polymer precursor(s) is achieved by the hydrolysis of functional groups that were substantially uniformly distributed at the terminals of the hyperbranched polymer molecules.
- 88. The process of claim 68, wherein the inorganic structures distributed in and covalently bonded to the hyperbranched polymer are the in situ condensation product of hydrolyzable groups bonded to a silicon atom.
- 89. The process of claim 68, wherein the inorganic structures distributed in and covalently bonded to the hyperbranched polymer have dimensions of from about 1 to about 15 nanometers.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a divisional of U.S. application Ser. No. 09/970,366 entitled HYPERBRANCHED POLYMERS WITH LATENT FUNCTIONALITY AND METHODS OF MAKING SAME, filed Oct. 3, 2001, the entire disclosure of which is incorporated herein by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09970366 |
Oct 2001 |
US |
Child |
10452759 |
Jun 2003 |
US |