Claims
- 1. A carbosilane polymer having the general structure:
- 2. The carbosilane polymer of claim 1, wherein said R2 is a methyl group.
- 3. The carbosilane polymer of claim 2, wherein said X is a linear alkyl chain having between 1 and 12 carbons.
- 4. The carbosilane polymer of claim 3, wherein said R1 is a phenpropyl group having two said halogen substituted alcohol or phenol groups attached to said aryl group, and wherein said X is a 3 3 carbon chain.
- 5. The carbosilane polymer of claim 4, wherein said halogen substituted alcohol or phenol groups are —C(CF3)2—OH groups.
- 6. The carbosilane polymer of claim 5, wherein said Z1 is a phenpropyl group having at least one said halogen substituted alcohol or phenol group attached thereto, and said Z2 is an allyl(bis phenpropyl)silyl group having at least one said halogen substituted alcohol or phenol group attached thereto.
- 7. The carbosilane polymer of claim 1, wherein said aryl groups of said R1 and R2 are each a benzene ring having two halogen substituted alcohol or phenol groups attached thereto.
- 8. The carbosilane polymer of claim 7, wherein said halogen substituted alcohol or phenol groups are —C(CF3)2—OH groups.
- 9. The carbosilane polymer of claim 1, wherein said remaining R1 or R2 group is an allyl group having one or two said halogen substituted alcohol or phenol groups attached thereto.
- 10. The carbosilane polymer of claim 1 having the structure:
- 11. The carbosilane polymer of claim 1 having the structure:
- 12. The carbosilane polymer of claim 1 having the structure:
- 13. The carbosilane polymer of claim 1 having the structure:
- 14. A method of preparing a substituted carbosilane polymer, comprising the steps of:
(a) selecting a starting material independently selected from the group consisting of aryl substituted metallated hydrocarbons and aryl substituted metallated carbosilanes; (b) reacting said aryl substituted metallated hydrocarbon or said aryl substituted metallated carbosilane with an alkenyl or alkynyl dichlorocarbosilane, thereby forming an unsaturated carbosilane intermediate having the structure: 10wherein R4 and R5 are said independently selected aryl substituted hydrocarbons or carbosilane groups derived from aryl substituted metallated hydrocarbon or said aryl substituted metallated carbosilanes; and wherein R6 is an alkenyl or alkynyl group; (c) performing a hydrosilation reaction on said unsaturated carbosilane intermediate in the presence of a hydrosilation catalyst, thereby forming a arylalkyl substituted carbosilane polymer intermediate having the structure: 11wherein q is an integer greater than or equal to 1; wherein Y is hydrocarbon polymer backbone component derived from hydrosilation of said R6; (d) reacting said arylalkyl substituted carbosilane polymer intermediate with an alkene or alkyne in the presence of a hydrosilation catalyst, thereby forming an arylalkyl substituted polycarbosilane having the structure: 12wherein R7 is an alkyl or alkenyl group; and (e) reacting said arylalkyl substituted polycarbosilane with hexafluoroacetone or a halogen substituted alcohol or phenol source, thereby forming said substituted carbosilane polymer.
- 15. The method as recited in claim 14, wherein said hydrosilation catalyst is hexachloroplatinic acid.
- 16. The method as recited in claim 14, wherein said substituted carbosilane polymer is:
- 17. The method as recited in claim 11, wherein said substituted carbosilane polymer is:
- 18. A method of preparing a substituted carbosilane polymer, comprising the steps of:
(a) selecting a starting material independently selected from the group consisting of substituted metallated hydrocarbons and substituted metallated carbosilanes; (b) reacting said substituted metallated hydrocarbon or said substituted metallated carbosilane with H2SiCl2, thereby forming a disubstituted silane intermediate having the structure: 15wherein R8 and R9 are said selected substituted metallated hydrocarbon or said substituted metallated carbosilane; (c) performing a hydrosilation reaction between said disubstituted silane intermediate and a doubly unsaturated species in the presence of a hydrosilation catalyst, thereby forming a polycarbosilane intermediate having the structure: 16wherein q is an integer greater than or equal to 1; wherein K is a hydrocarbon or carbosilane fragment derived from double hydrosilation of said doubly unsaturated species; wherein D is a hydrocarbon or carbosilane fragment derived from single hydrosilation of said doubly unsaturated species; (d) reacting said polycarbosilane intermediate with an alkene or alkyne in the presence of a hydrosilation catalyst, thereby forming an substituted polycarbosilane having the structure: 17wherein R10 is an alkyl or alkenyl group derived from said hydrosilation reaction between said alkene or alkyne and said polycarbosilane intermediate; (e) reacting said substituted polycarbosilane with hexafluoroacetone or a halogen substituted alcohol or phenol source, thereby forming said substituted carbosilane polymer.
- 19. The method as recited in claim 18, wherein said hydrosilation catalyst is hexachloroplatinic acid.
- 20. The method as recited in claim 18, wherein said substituted metallated hydrocarbon or said substituted metallated carbosilane each contain at least one aryl group.
- 21. The method as recited in claim 18, wherein said substituted carbosilane polymer is:
- 22. The method as recited in claim 16, wherein said substituted carbosilane polymer is:
- 23. 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 carbosilane polymer of claim 1.
- 24. The device of claim 23, wherein said substrate is a surface acoustic wave (SAW) substrate.
- 25. A method of detecting the molecules of a hydrogen bond basic analytes, 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).
- 26. The method of claim 25, wherein said substrate is a surface acoustic wave (SAW) substrate.
- 27. A collection device for selective molecular sorption for molecules of a hydrogen bond basic analyte, wherein said device comprises the material of claim 1.
Parent Case Info
[0001] This application claims the benefit of a provisional application, U.S. Ser. 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 |