Claims
- 1. A functionalized material having a self-assembled monolayer on a substrate said self-assembled monolayer having a plurality of assembly molecules each with an assembly atom with a plurality of bonding sites wherein a portion of fully crosslinked silicon atoms is a maximum portion provided by a liquid solution deposition; wherein the improvement comprises:
said portion of fully bonded silicon atoms is greater than said maximum portion as provided by supercritical fluid solution exposure.
- 2. The functionalized material as recited in claim 1, wherein said assembly atom is silicon having four bonding sites and said maximum portion is 40%.
- 3. The functionalized material as recited in claim 2, wherein said greater portion is greater than 55%.
- 4. The functionalized material as recited in claim 3, wherein said greater portion is greater than or equal to about 75%.
- 5. The functionalized material as recited in claim 1, wherein a surface density of said plurality of assembly molecules is greater than 5 assembly molecules per square nanometer.
- 6. The functionalized material as recited in claim 5, wherein said surface density is about 6.5 assembly molecules per square nanometer.
- 7. A functionalized material having a self-assembled monolayer on a substrate said self-assembled monolayer having a plurality of assembly molecules each with an assembly atom with a plurality of bonding sites wherein a surface density of said assembly molecules is a maximum surface density provided by liquid solution deposition; wherein the improvement comprises:
said surface density is a greater surface density greater than said maximum surface density as provided by supercritical fluid solution deposition.
- 8. The functionalized material as recited in claim 7, wherein said maximum surface density is less than or equal to 5 assembly molecules per square nanometer, and said greater density is greater than 5 assembly molecules per square nanometer.
- 9. The functionalized material as recited in claim 7, wherein said plurality of assembly molecules has, a greater portion of fully bonded assembly atoms greater than a portion of fully bonded assembly atoms.
- 10. The functionalized material as recited in claim 9, wherein said greater portion of fully bonded silicon atoms is greater than 55%.
- 11. The functionalized material as recited in claim 10, wherein said greater portion of fully bonded silicon atoms is greater than or equal to about 75%.
- 12. The functionalized material as recited in claim 7, wherein said substrate is a mesoporous material.
- 13. A method of making a self-assembled monolayer on a substrate said self-assembled monolayer having a plurality of assembly molecules each with an assembly atom with a plurality of bonding sites, the method having the step of bonding a plurality of oxygen atoms to a fraction of said bonding sites; wherein the improvement comprises:
said bonding is by exposing said self-assembled monolayer to supercritical fluid.
- 14. The method as recited in claim 13, wherein said supercritical fluid is carbon dioxide.
- 15. The method as recited in claim 13, wherein said exposing is for a time of at least 5 minutes.
- 16. The method as recited in claim 15, wherein said exposing is for a time of at least 4 hours.
- 17. The method as recited in claim 16, wherein said exposing is for a time of about 24 hours.
- 18. The method as recited in claim 13, wherein said exposing comprises:
placing a self-assembled monolayer precursor together with a calcined mesoporous material into a vessel; followed by introducing a supercritical fluid into said vessel for a time and depositing said self-assembled monolayer onto said calcined mesoporous material.
- 19. The method as recited in claim 18, wherein said placing said calcined mesoporous material comprises: mixing a sol-gel solution and surfactant for producing a mesoporous green body;
removing said surfactant with said supercritical fluid and making a dry green body; calcining said dry green body into said calcined mesoporous material.
- 20. A functionalized porous material comprising a substrate, a monolayer deposited on said substrate having a plurality of assembly molecules each with a plurality of assembly atoms having a plurality of bonding sites; and said assembly atoms being greater than 70% fully cross linked with cross linking atoms.
- 21. The material of claim 20, wherein the substrate is a porous ceramic material.
- 22. The material of claim 21, wherein a pore size of said ceramic porous material is greater than 5 Å (angstroms).
- 23. The material of claim 20, wherein said assembly atom is silicon.
- 24. The material of claim 20, wherein said assembly molecules are selected from the group consisting of metal phosphate, hydroxamic acid, carboxylate, thiol, amine and combinations thereof for attaching to a metal.
- 25. The material of claim 20, wherein said assembly molecules comprises chlorosilane for attaching to a polymer.
- 26. The material of claim 20, wherein the monolayer comprises a surface density of assembly atoms greater than 6.4 silanes/nm2.
- 27. The material of claim 20, wherein the cross linking atom is oxygen.
- 28. A method of functionalizing a porous material comprising the steps of
a) hydrating a porous substrate; b) placing said hydrated porous substrate into a vessel in the presence of a precursor comprising assembly atoms and cross linking atoms; c) sealing the sample holder; d) introducing a supercritical fluid into said vessel for a time while increasing the pressure and temperature within said vessel to a supercritical pressure and temperature; e) maintaining the porous substrate within said vessel under supercritical conditions for a time sufficient to fully cross link at least 70% of said assembly atoms with said cross linking atoms on the exposed surface of said materials.
- 29. The method of claim 28, whereby said porous substrate is ceramic.
- 30. The method of claim 29, whereby said ceramic porous substrate comprises pores having a diameter greater than 5 Å.
- 31. The method of claim 28, whereby hydrating said porous substrate is provided by a humidity chamber having a humidity of 100%.
- 32. The method of claim 28, whereby said assembly atom is silicon.
- 33. The method of claim 28, whereby said supercritical fluid is carbon dioxide (CO2), ethane (C2H6), ammonia (NH3), and combinations thereof.
CROSS REFERENCE TO RELATED INVENTION
[0001] This application is a Continuation-In-Part of application Ser. No. 09/272,762, filed Mar. 19, 1999.
Government Interests
[0002] This invention was made with Government support under Contract DE-AC0676RLO1830 awarded by the U.S. Department of Energy. The Government has certain rights in the invention.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09528345 |
Mar 2000 |
US |
Child |
10347040 |
Jan 2003 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09272762 |
Mar 1999 |
US |
Child |
09528345 |
Mar 2000 |
US |