Claims
- 1. A mesoporous composite produced by a method comprising the steps of:commingling a colloidally suspended, powdered, or dispersed particulate with a sol within about one-half hour of the onset of gelation of said sol, to form a mixture; gelling said mixture to form a gelled composite mixture in which particles of said particulate are incorporated in a network of a gelled sol, wherein said gelled sol comprises said network and liquid-filled pores; and drying said gelled composite mixture without substantially collapsing said pores to form a composite aerogel in which said particles of said particulate are incorporated in said network.
- 2. The mesoporous composite of claim 1, wherein said particulate is an aerogel particulate.
- 3. The mesoporous composite of claim 1, wherein said particulate is functionalized by the covalent bonding, chemisorption, precipitation, self-assembly, physisorption, metal-ligand coordination bonding, or electrostatic bonding of a chemical modifier.
- 4. The mesoporous composite of claim 1, wherein said network is functionalized by the covalent bonding, chemisorption, precipitation, self-assembly, physisorption, metal-ligand coordination bonding, or electrostatic bonding of a chemical modifier.
- 5. The mesoporous composite of claim 1, wherein said sol is a metal oxide sol that forms a network upon gelation.
- 6. The mesoporous composite of claim 1, wherein said commingling is performed within about 10 minutes of the onset of gelation of said sol.
- 7. The mesoporous composite of claim 6, wherein said commingling is performed within about 5 minutes of the onset of gelation of said sol.
- 8. The mesoporous composite of claim 7, wherein said commingling is performed within about one minute of the onset of gelation of said sol.
- 9. The mesoporous composite of claim 1, wherein said particulate is metallic, insulating, superconducting, or semiconducting.
- 10. The mesoporous composite of claim 9, wherein said particulate is colloidally suspended.
- 11. The mesoporous composite of claim 10, wherein said particulate has an average particle size less than about 1 mm.
- 12. The mesoporous composite of claim 10, wherein said sol is a silica sol, a zirconia sol, a vanadia sol, a manganese oxide sol, a magnesia sol, a niobium oxide sol, an alumina sol, a tungsten oxide sol, a yttria sol, a tin oxide sol, a cobalt oxide sol, a nickel oxide sol, a ceria sol, a titania sol, a calcia sol, an aluminosilicate sol, or a mixture thereof.
- 13. The mesoporous composite of claim 1, wherein particles of said particulate are metal, polymer, ceramic, or composite, and wherein a single species of particle, or a plurality of species of particle is commingled with said sol.
- 14. The mesoporous composite of claim 13, wherein particles of said particulate are metal oxides.
- 15. The mesoporous composite of claim 1, wherein said particulate comprises Pt; Au; TiO2; SiO2; Ag; Cu; Al; Fe; RuO2; Si; GaAs; ZnO; CdS; C; Pd; Bi2Te3; high molecular weight polymer; zeolites; mesoporous ceramics other than mesoporous ZnO, mesoporous TiO2, or mesoporous RuO2; or a mixture thereof.
- 16. The mesoporous composite of claim 15, wherein said particulate is polymethyl methacrylate.
- 17. The mesoporous composite of claim 15, wherein said particulate is a synthetic type Y faujasitic aluminosilicate zeolite.
- 18. A composite aerogel including a plurality of guest particles incorporated into a network of an aerogel, a majority of particles of said particulate guest having surfaces that have at least a portion thereof exposed to open pores of said aerogel.
- 19. A mesoporous composite produced by a method comprising the steps of:adding a sol to a volume of particulates such that said sol perfuses said volume of particulates within about one-half hour before the onset of gelation, thereby forming a mixture; gelling said mixture to form a fully gelled composite mixture in which particles of said particulate are incorporated in a network of a gelled sol, wherein said gelled sol comprises said network and liquid-filled pores; and drying said gelled composite mixture without substantially collapsing said pores to form a composite aerogel in which said particles of said particulate are incorporated in said network.
- 20. A method of making a composite aerogel, comprising the steps of:commingling a colloidally suspended, powdered, or dispersed particulate with a sol within about 30 minutes of the onset of gelation of said sol, to form a mixture; gelling said mixture to form a fully gelled composite mixture in which particles of said particulate are incorporated in a network of a gelled sol, wherein said gelled sol comprises said network and liquid-filled pores; and drying said gelled composite mixture without substantially collapsing said pores to form a composite aerogel in which said particles of said particulate are incorporated in said network.
- 21. The method of claim 20, wherein said commingling is performed within about 10 minutes of the onset of gelation of said sol.
- 22. The method of claim 21, wherein said commingling is performed within about 5 minutes of the onset of gelation of said sol.
- 23. The method of claim 22, wherein said commingling is performed within about one minute of the onset of gelation of said sol.
Parent Case Info
This non-provisional application claims benefit of U.S. Provisional Patent Application 60/132,746 filed on Apr. 1, 1999.
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Provisional Applications (1)
|
Number |
Date |
Country |
|
60/132746 |
Apr 1999 |
US |