Claims
- 1. A fine-particle classification apparatus comprising:
an aerosol generation section which generates an aerosol containing fine particles in a medium background gas; a fine-particle classification section which classifies said fine particles contained in the aerosol in a sheath gas; and an introduction section, provided between said aerosol generation section and said fine-particle classification section, which introduces the aerosol generated in said aerosol generation section to said fine-particle classification section, wherein said introduction section uses a carrier gas with an adequately high velocity to introduce the aerosol generated in said aerosol generation section to said classification section using a pressure difference.
- 2. The apparatus according to claim 1, wherein said introduction section comprises:
a first pipe which supplies the carrier gas to said fine-particle classification section without changing a flow direction of said carrier gas; and a second pipe, connected substantially perpendicularly to a longitudinal direction of said first pipe, which supplies the aerosol generated in said aerosol generation to a flow of the carrier gas in said first pipe.
- 3. The apparatus according to claim 2, wherein a diameter of said first pipe in a region where said aerosol joins said flow of the carrier gas is smaller than a diameter of said first pipe in an upstream of said region where said aerosol joins said flow of the carrier gas.
- 4. The apparatus according to claim 2, wherein a density of said carrier gas is greater than that of a low-pressure medium gas inside said aerosol generation section.
- 5. The apparatus according to claim 2, wherein said carrier gas is in a viscous flow state.
- 6. The apparatus according to claim 1, wherein a density of said sheath gas is greater than that of a low-pressure medium gas inside said aerosol generation section.
- 7. A fine-particle classification apparatus comprising:
a first flat portion, provided almost parallel to a pass of a sheath gas flowing as a laminar flow straightly from a sheath gas introduction inlet to a sheath gas exhaustion inlet, comprising a carrier gas introduction inlet for introducing a carrier gas carrying charged fine particles inside the apparatus, and a carrier gas injection inlet for injecting introduced fine particles inside the apparatus; a classification region, provided neighboring to said first flat portion, used to classify injected fine particles with a slit provided in a portion downstream of the carrier gas injection inlet using electrical mobility which depends on a diameter of a charged particle which is charged in an electrostatic field in a viscous flow; and a second flat portion, provided almost parallel to said first flat portion facing thereto with said classification region therebetween, comprising a carrier exhaustion outlet to extract classified fine particles.
- 8. The apparatus according to claim 7, wherein said first flat portion and said second flat portion each are each in a form of a rectangle.
- 9. The apparatus according to claim 7, wherein the apparatus further comprises a sheath gas carrying pipe in an upper stream portion than said sheath gas introduction inlet, and said classification region is formed so that a cross-section area of said classification region is equal to or greater than that of said sheath gas carrying pipe.
- 10. The apparatus according to claim 7, wherein a cross section of said sheath gas carrying pipe is formed so as to be continuously changed to the form of said classification region.
- 11. The apparatus according to claim 7, wherein four corners of the cross section of said classification region are arcuate.
- 12. A fine-particle classification apparatus according to claim 7, further comprising:
an aerosol take-in section which introduces an aerosol containing fine particles; a charging section which charges fine particles introduced in said aerosol introduction section; a fine-particle classification apparatus which classifies said fine particles charged in said charging section; a detection section which measures a concentration of fine particles classified in said classification apparatus and detects a deposition of said particles on a substrate; and an exhaust section which is provided in a downstream portion than the detection section in said fine-particle classification apparatus to exhaust a sheath gas and a carrier gas, wherein said fine-particle classification apparatus operates under a pressure lower than an atmospheric pressure.
- 13. The apparatus according to claim 12, wherein an operation pressure in a classification region in said fine-particle classification apparatus is less than 50 Torr.
- 14. The apparatus according to claim 12, wherein a time required for the fine particles to be carried from said aerosol introduction section to said detection section is within 1 second.
- 15. A fine-particle classification method comprising:
generating an aerosol containing fine particles in a medium background gas in an aerosol generation apparatus; introducing said aerosol to a fine-particle classification apparatus using a carrier gas with an adequately high velocity to introduce said aerosol to the fine-particle classification apparatus using a pressure difference; and classifying the fine particles contained in said aerosol in a sheath gas in said fine-particle classification apparatus.
- 16. The method according to claim 15, wherein said fine particles are classified to have a diameter corresponding to an energy band gap of a material of said fine particles, said gap corresponding to a wavelength in a visible region.
- 17. A functional material obtainable by:
generating an aerosol containing fine particles in a medium background gas in an aerosol generation apparatus; introducing said aerosol to a fine-particle classification apparatus using a carrier gas with an adequately high velocity to introduce said aerosol to the fine-particle classification apparatus using a pressure difference; classifying the fine particles contained in said aerosol in a sheath gas in said fine-particle classification apparatus; and forming a layer having a structure, in which classified fine particles are dispersed in a medium generated by laser ablation, on a substrate.
- 18. The material according to claim 17, wherein said fine particles are classified to have a diameter corresponding to an energy band gap of a material of said fine particles, said gap corresponding to a wavelength in a visible region.
- 19. An optical functional device obtainable by:
generating an aerosol containing fine particles in a medium background gas in an aerosol generation apparatus; introducing said aerosol to a fine-particle classification apparatus using a carrier gas with an adequately high velocity to introduce said aerosol to the fine-particle classification apparatus using a pressure difference; classifying the fine particles contained in said aerosol in a sheath gas in said fine-particle classification apparatus so as to provide said fine particles with an average particle diameter corresponding to an energy band gap of a material of said fine particles corresponding to a wavelength in a visible region; and forming a layer having a structure, in which classified fine particles are dispersed in a medium generated by laser ablation, on a substrate.
- 20. The device according to claim 19, wherein said wavelength in the visible region is the wavelength corresponding to each of red, green and blue portions in the visible region.
Priority Claims (1)
Number |
Date |
Country |
Kind |
JP 10-314297 |
Nov 1998 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a Divisional of U.S. application Ser. No. 09/432,800, filed Nov. 3, 1999, the contents of which are herein incorporated by reference in their entirety.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09432800 |
Nov 1999 |
US |
Child |
09925414 |
Aug 2001 |
US |