Claims
- 1. A siloxane polymer having the general structure:
- 2. The siloxane polymer of claim 1, wherein said R1 is a methyl group.
- 3. The siloxane polymer of claim 2, wherein said aryl group of said R2 is a benzene ring having two said halogen substituted alcohol groups attached thereto.
- 4. The siloxane polymer of claim 3, wherein said halogen substituted alcohol groups are —C(CF3)2—OH groups.
- 5. The siloxane polymer of claim 2, wherein said R2 contains said short hydrocarbon chain terminating in said aryl group, and said aryl group is a benzene ring having two said halogen substituted alcohol groups attached thereto.
- 6. The siloxane polymer of claim 5, wherein said short hydrocarbon chain has 3 carbon atoms.
- 7. The siloxane polymer of claim 6, wherein said 3 carbon short hydrocarbon chain is saturated.
- 8. The siloxane polymer of claim 5, wherein said halogen substituted alcohol groups are —C(CF3)2—OH groups.
- 9. The siloxane polymer of claim 7, wherein said halogen substituted alcohol groups are —C(CF3)2—OH groups.
- 10. The siloxane polymer of claim 1, wherein each said R1 and R2 contain a said short hydrocarbon chain terminating in said aryl group, and said aryl group is a benzene ring having two said halogen substituted alcohol groups attached thereto.
- 11. The siloxane polymer of claim 10, wherein said short hydrocarbon chains have 3 carbon atoms.
- 12. The siloxane polymer of claim 10, wherein said halogen substituted alcohol groups are —C(CF3)2—OH groups.
- 13. The siloxane polymer of claim 11, wherein said halogen substituted alcohol groups are —C(CF3)2—OH groups.
- 14. The siloxane polymer of claim 1, wherein said aryl groups of R1 and R2 are each a benzene ring having two said halogen substituted alcohols attached.
- 15. The siloxane polymer of claim 14, wherein said halogen substituted alcohol groups are —C(CF3)2—OH groups.
- 16. The siloxane polymer of claim 1, wherein said remaining R1 or R2 group is an allyl group having one said halogen substituted alcohol attached thereto.
- 17. The siloxane polymer of claim 1, wherein said remaining R1 or R2 group is an aryl group having one said halogen substituted alcohol group attached thereto.
- 18. A siloxane polymer having the general structure:
- 19. The siloxane polymer of claim 18, wherein said pendant groups are alkenyl groups consisting of an allyl group.
- 20. The siloxane polymer of claim 19, wherein said allyl group terminates in one said halogen substituted alcohol or halogen substituted phenol group.
- 21. A method of preparing a functionalized siloxane polymer, comprising the steps of:
(a) selecting a core siloxane polymer having the structure: 7wherein n is an integer greater than 1; wherein m is an integer greater than or equal to 0; wherein Z is an end group independently selected from the group consisting of saturated hydrocarbons, unsaturated hydrocarbons, alkyl silanes, aryl silanes, hydride, alkoxides, hydroxyl, and combinations thereof; and wherein R4, R5, and R6 are pendant groups independently selected from hydrocarbons containing 1 to 12 carbons; (b) selecting an unsaturated short chain hydrocarbon having between 1 to 10 carbons and having an aryl group attached thereto; (c) reacting said core siloxane polymer with said unsaturated short chain hydrocarbon in a solution of an hydrosilation catalyst, thereby forming a siloxane intermediate polymer having the structure: 8wherein X is a hydrocarbon chain having an aryl group attached thereto; and (d) reacting said siloxane intermediate polymer with hexafluoroacetone or a halogen substituted alcohol or phenol source, thereby forming said functionalized siloxane polymer.
- 22. The method as recited in claim 21, wherein said hydrosilation catalyst is hexachloroplatinic acid.
- 23. The method as recited in claim 21, wherein said unsaturated short chain hydrocarbon has 3 carbons.
- 24. The method as recited in claim 21, wherein in said substituted siloxane polymer, said R4 is a methyl group, said Z is trimethylsilyl, said m equals 0, and said aryl group has one or two said halogen substituted alcohol or phenol groups attached thereto.
- 25. The substituted siloxane polymer of claim 24, wherein said two halogen substituted alcohol or phenol groups are —C(CF3)2—OH groups.
- 26. The method as recited in claim 21, wherein said reaction of said siloxane intermediate polymer is conducted in a solution containing AlCl3.
- 27. The method as recited in claim 21, wherein said siloxane intermediate polymer is:
- 28. The method as recited in claim 21, wherein said functionalized siloxane polymer is:
- 29. A method of preparing a functionalized siloxane polymer, comprising the steps of:
(a) selecting an unsaturated short chain hydrocarbon having between 1 and 10 carbons and an aryl group attached thereto; (b) reacting said unsaturated short chain hydrocarbon with H2SiCl2 or (CH3)3CSiHCl2 in a solution containing a hydrosilation catalyst, thereby forming a dichlorosilyl intermediate; (c) performing a hydrolysis reaction with said dichlorosilyl intermediate in a solution containing (CH3)3SiCl, thereby forming a siloxane polymer intermediate; and (d) reacting said siloxane polymer intermediate with hexafluoroacetone or a halogen substituted alcohol or phenol source, thereby forming said functionalized siloxane polymer.
- 30. The method as recited in claim 29, wherein said hydrosilation catalyst is hexachloroplatinic acid.
- 31. The method as recited in claim 29, wherein said short chain hydrocarbon has 3 carbons.
- 32. The method as recited in claim 29, wherein said substituted siloxane polymer contains two said aryl groups, each being a benzene ring having two said halogen substituted alcohol or phenol groups attached thereto.
- 33. The substituted siloxane polymer of claim 32, wherein said substituted alcohol or phenol groups are —C(CF3)2—OH groups.
- 34. The method as recited in claim 29, wherein said siloxane polymer intermediate is:
- 35. The method as recited in claim 29, wherein said functionalized siloxane polymer is:
- 36. The method as recited in claim 29, wherein said aryl group attached to said unsaturated short chain hydrocarbon is a naphthyl group.
- 37. The method as recited in claim 36, wherein said unsaturated short chain hydrocarbon having between 1 and 10 carbons and an aryl group attached thereto is 2-vinyl naphthalene.
- 38. The method as recited in claim 29, wherein said dichlorosilyl intermediate is:
- 39. The method as recited in claim 29, wherein said bis(arylalkyl) siloxane polymer is:
- 40. The method as recited in claim 29, wherein said functionalized siloxane polymer is:
- 41. A device for selective molecular detection, the device comprising a sensing portion, wherein said sensing portion includes a substrate having coated thereon a layer, said layer comprising the siloxane polymer of claim 1.
- 42. A device for selective molecular detection, the device comprising a sensing portion, wherein said sensing portion includes a substrate having coated thereon a layer, said layer comprising the siloxane polymer of claim 18.
- 43. The device of claim 41, wherein said substrate is a surface acoustic wave (SAW) substrate.
- 44. The device of claim 42, wherein said substrate is a surface acoustic wave (SAW) substrate.
- 45. A method of detecting the molecules of a hydrogen bond basic analyte, comprising the steps of:
(a) contacting the molecules of said analyte with a device comprising a sensing portion, wherein said sensing portion includes a substrate having coated thereon a layer, said layer comprising the material of claim 1;(b) collecting said molecules in said layer, wherein said molecules alter a specific physical property of said layer; and (c) detecting the amount of change in the physical property from before said contacting step (a) and after said collecting step (b).
- 46. A method of detecting the molecules of a hydrogen bond basic analyte, comprising the steps of:
(a) contacting the molecules of said analyte with a device comprising a sensing portion, wherein said sensing portion includes a substrate having coated thereon a layer, said layer comprising the material of claim 18; (b) collecting said molecules in said layer, wherein said molecules alter a specific physical property of said layer; and (c) detecting the amount of change in the physical property from before said contacting step (a) and after said collecting step (b).
- 47. The method of claim 45, wherein said substrate is a surface acoustic wave (SAW) substrate.
- 48. The method of claim 46, wherein said substrate is a surface acoustic wave (SAW) substrate.
- 49. A collection device for selective molecular sorption for molecules of a hydrogen bond basic analyte, wherein said device comprises the material of claim 1.
- 50. A collection device for selective molecular sorption for molecules of a hydrogen bond basic analyte, wherein said device comprises the material of claim 18.
- 51. A method of preparing a substituted crosslinked siloxane polymer, comprising the steps of:
(a) performing a hydrolysis reaction of a mixture of dichloroorganosilanes and trichloroorganosilanes, thereby forming a crosslinked siloxane polymer having the structure: 16wherein m is an integer greater than or equal to 0; wherein n is an integer greater than 1; wherein Z is an end group independently selected from the group consisting of saturated hydrocarbons, unsaturated hydrocarbons, alkyl silanes, aryl silanes, silicon hydride, alkoxides, 1,1,1,3,3,3-hexafluoroisopropanol, 2,3,5,6-tetrafluorophenol, hydroxyl, and combinations thereof; and wherein R4, R5, and R6 are pendant groups independently selected from hydrocarbons containing 1 to 12 carbons; (b) reacting said crosslinked siloxane polymer with hexafluoroacetone to form said substituted crosslinked siloxane polymer.
Parent Case Info
[0001] This application claims the benefit of a provisional application, U.S. Serial No.60/215,070 filed Jun. 30, 2000, the disclosure of which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60215070 |
Jun 2000 |
US |