Claims
- 1. A particle deposition apparatus, comprising:
a) a particle source that generates a plurality of particles in a suspended form; b) an expansion chamber in communication with the particle source and having an interior pressure that is substantially lower than the interior pressure of the particle source; c) a deposition chamber; d) a substrate support located inside the deposition chamber; and e) an aerodynamic focusing stage connecting the expansion chamber to the deposition chamber, and comprising a plurality of aerodynamic focusing elements.
- 2. The particle deposition apparatus of claim 1, wherein the particle source generates a plurality of nanoparticles.
- 3. The particle deposition apparatus of claim1, wherein the particle source includes a dc torch.
- 4. The particle deposition apparatus of claim1, wherein the particle source is a thermal plasma expansion reactor.
- 5. The particle deposition apparatus of claim1, wherein the particle source is a laser pyrolisis reactor.
- 6. The particle deposition apparatus of claim1, wherein the particle source is an evaporation-condensation reactor
- 7. The particle deposition apparatus of claim1, wherein the particle source is an electrospray particle source.
- 8. The particle deposition apparatus of claim1, wherein the aerodynamic focusing stage comprises between two and five aerodynamic focusing elements.
- 9. The particle deposition apparatus of claim1, further comprising a hollow nozzle between the particle source and the expansion chamber.
- 10. The particle deposition apparatus of claim 9, wherein the hollow nozzle generates a hypersonic flow of particles, and the aerodynamic focusing stage focuses the flow of particles into a collimated beam.
- 11. The particle deposition apparatus of claim 10, wherein the substrate support is positioned normal to the collimated beam.
- 12. he particle deposition apparatus of claim 1, wherein the substrate support is translatable.
- 13. A method for depositing particles on a substrate, comprising the steps of:
a) generating an aerosol cloud of particles; b) accelerating the particles through a nozzle; c) creating a collimated beam of particles by passing the particle through a plurality of aerodynamic focusing lenses; d) impacting the collimated beam of particles against the substrate.
- 14. The method of claim 13, wherein the particles are comprised of nanoparticles.
- 15. The method of claim 13, wherein the aerosol cloud is generated in a plasma expansion reactor.
- 16. The method of claim 13, wherein the nanoparticles are accelerated through the nozzle to hypersonic speeds.
- 17. The method of claim 13, further including the step of translating the substrate in a predetermined manner to create a pattern of nanoparticles on the substrate.
- 18. The method of claim 17, wherein the substrate is translated in more than one direction.
- 19. A particle structure comprised of particles, formed by the steps of:
a) generating an aerosol cloud of particles; b) accelerating the particles through a nozzle; c) creating a collimated beam of particles by passing the particles through a plurality of aerodynamic focusing lenses; d) impacting the collimated beam of particles against a substrate.
- 20. The particle structure of claim 19, wherein the particles are comprised of silicon carbide.
- 21. The particle structure of claim 19, wherein the particles form a functional structure.
- 22. The particle structure of claim 19, wherein the particles form a protective coating
- 23. The particles structure of claim 19, wherein the particles are comprised of nanoparticles.
- 24. The particles structure of claim 19, wherein the particles consist essentially of nanoparticles.
STATEMENT AS TO FEDERALLY-SPONSORED RESEARCH
[0001] Funding for work described herein was provided in part by the federal government, which may have certain rights in the invention.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/22766 |
7/19/2001 |
WO |
|