Claims
- 1. A method for synthesizing a nano-scaled powder material, comprising:
(A) providing a chamber for receiving nano-scaled clusters generated from at least an electrically conductive starting material selected from the group consisting of a metal, a metal alloy, a metal compound, and a ceramic; (B) operating twin-wire arc nozzle means, comprising two wires and a working gas flow, to form an arc between two converging leading tips of the two wires to heat and at least partially vaporize said at least a starting material at said leading tips for providing a stream of nanometer-sized vapor clusters of said at least a starting material; (C) injecting a quench gas and/or a reaction gas into a quenching/reaction zone inside said chamber at a point inside said arc or downstream from said arc to facilitate the formation of nano-scaled clusters in a vapor, liquid or high temperature solid state; and (D) operating means to cool said clusters into a nano-scaled solid powder and to collect the resulting nano-scaled solid powder material.
- 2. The method as defined in claim 1, further including the step of operating a separate plasma arc zone below said twin-wire arc to vaporize any un-vaporized material dripped therefrom.
- 3. The method as defined in claim 1, wherein step (C) comprises introducing a stream of reactive gas into said chamber to impinge upon said stream of vapor clusters and exothermically react therewith to produce a substantially nanometer-sized metal compound or ceramic powder material.
- 4. The method as defined in claim 1, wherein step (B) includes:
operating wire feeding and control means to continuously or intermittently feed said two wires into said chamber in such a fashion that the two leading tips are maintained at a desired separation; and operating power supply means to provide currents through said two wires to form said twin-wire arc with a temperature sufficient for vaporizing at least a portion of said at least a starting material at said leading tips.
- 5. The method as defined in claim 1, wherein step (C) includes operating means for controlling the rate of flow of the quench gas and/or the reaction gas, thereby enabling change of particle size of the nano-scaled powder material.
- 6. The method as defined in claim 1, wherein said reaction gas is selected from the group consisting of nitrogen, phosphorus, arsenic, oxygen, sulfur, selenium, tellurium, fluorine, chlorine, bromine, iodine, a carbon-containing gas, and mixtures thereof.
- 7. The method as defined in claim 1, wherein said working gas is selected from the group consisting of nitrogen, hydrogen, noble gases and mixtures thereof.
- 8. The method as defined in claim 1, wherein step (D) comprises operating a cyclonic mixer for turbulently mixing said nano clusters produced in said reaction zone for cooling said nano clusters to become a solid nano powder and operating means for filtering the nano powder material from gas flowing through the system.
- 9. The method as defined in claim 1, wherein said quench gas is selected from the group consisting of helium, argon, air, water vapor, carbon monoxide, carbon dioxide, hydrogen and combinations thereof.
- 10. The method as defined in claim 1, further including a step of operating means for providing dissociable inert gas mixable with said working gas, the dissociable inert gas increasing the temperature gradient in said twin-wire arc.
- 11. The method as defined in claim 1, wherein step (D) includes a sub-step of operating means, separate from said means for injecting a quench/reaction gas, for injecting a cooling gas into said nano clusters, thereby minimizing agglomeration of the nano powder material.
- 12. The method as defined in claim 1, wherein said working gas flow direction is arranged to be approximately vertically downward.
- 13. The method as defined in claim 1, wherein said at least a starting material comprises two different materials.
- 14. The method as defined in claim 13, wherein said two different materials make up the two wires so that the two wires have different material compositions.
- 15. The method as defined in claim 13, wherein said two different materials include indium and tin.
- 16. The method as defined in claim 13, wherein said two different materials include antimony and tin.
- 17. The method as defined in claim 1, further including a step of positioning a reservoir at the bottom portion of said twin-wire arc or a distance below said twin-wire arc in such a fashion that said reservoir receives any un-vaporized material from the wires and exposes said un-vaporized material to the heat energy of said arc to further vaporize at least a portion of said un-vaporized material.
Government Interests
[0001] The present invention was based on the research results of a project supported by the U.S. National Science Foundation SBIR Program. The U.S. Government has certain rights on this patent.