Claims
- 1. A method of forming a nanoscale metallic particle, comprising the steps of:
a) providing a transition metal salt; and b) contacting said transition metal salt with a reducing agent to form a metal particle with a diameter of between about 1 to 100 nanometers.
- 2. The method of claim 1, wherein said metal particle consists essentially of Fe3+or Zn2+.
- 3. The method of claim 2, wherein said reducing agent is sodium borohydride (NaBH4).
- 4. A nanoscale metallic particle having a grain size of between about 1 to 100 nanometers, wherein said metallic particle has a surface area of between about 10 to 50 m2/g.
- 5. A method of forming a nanoscale integrated bimetallic particle, comprising the steps of:
a) providing nanoscale transition metal particles in a vessel; and b) adding a noble metal salt solution to said nanoscale transition metal particles in the presence of a reductant to form metal particles with diameters of between about 1 to 100 nanometers.
- 6. A method of synthesizing a nanoscale integrated bimetallic as in claim 5, wherein said reductant is an ethanol solution of [X(C2H3O2)2]3 wherein X is a noble metal.
- 7. A nanoscale integrated bimetallic particle, comprising:
a) an inner core containing a transition metal; and b) an outer surface layer containing a noble metal, said outer surface layer having a surface area of between about 10 to 50 m2/g.
- 8. A nanoscale integrated bimetallic particle of claim 7, wherein said inner core consists essentially of Fe or Zn.
- 9. A nanoscale integrated bimetallic particle of claim 7, wherein said noble metal is selected from the group consisting essentially of Pd, Pt, Ni, Ag, Cu, and Co.
- 10. A nanoscale integrated bimetallic particle of claim 7, wherein said integrated bimetallic particle has a particle grain size diameter of between about 1 to 100 nm.
- 11. The nanoscale integrated bimetallic particle of claim 8, wherein the surface layer area normalized reactivity constant of Fe is between about 0.011˜0.018 L/h/m2.
- 12. A method for treating chlorinated organic pollutants, comprising the steps of:
a) providing nanoscale integrated bimetallic particles; and b) contacting chlorinated organic pollutants with said nanoscale integrated bimetallic particles.
- 13. A method for treating chlorinated organic pollutants as in claim 12, wherein said chlorinated organic pollutants are chlorinated organic solvents.
- 14. A method for treating chlorinated organic pollutants as in claim 13, wherein chlorinated organic solvents are from the group consisting essentially of tetrachloroethane (PCE), trichloroethene (TCE), dichloroethene (DCE), vinyl chloride (VC) tetrochlorinated methane (CT), trichloromethane and polychlorinated biphenyls (PCB's).
- 15. A method for treating chlorinated organic pollutants as in claim 12, wherein said pollutants are chlorinated aromatic compounds.
- 16. A method for treating chlorinated organic pollutants as in claim 12 further comprising:
a) providing a solid support; b) immobilizing nanoscale integrated bimetallic particles onto said solid support; and c) exposing said solid support to chlorinated organic pollutants for ex-situ treatment of contaminated waters and effluents.
- 17. A method for treating chlorinated organic pollutants as in claim 16 wherein said solid support is further comprised of activated carbon, zeolite or silica.
RELATED APPLICATION
[0001] This application claims priority from U.S. Provisional Patent Application No. 60/080,373, filed Apr. 1, 1998, and said Provisional Patent Application is incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60080373 |
Apr 1998 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
09283045 |
Apr 1999 |
US |
Child |
09821383 |
Mar 2001 |
US |