Claims
- 1. A method for manufacturing an electrostatic actuator that includes a first electrode having a first surface and a second electrode having a second surface opposing the first surface with a gap disposed therebetween, and a hydrophobic film formed on at least one of the first and second surfaces, said method comprising the steps of:
depositing a hydrophobic film on at least one of the first and second surfaces, said hydrophobic film being formed from a compound having the functional group Rn-Si(4-n)-X, wherein R is selected from the alkyl group and 2≦n≦3; and sealing airtight the gap between the first and second opposing surfaces so that said hydrophobic film is deposited stably on at least one of the first and second surfaces.
- 2. The method for manufacturing an electrostatic actuator according to claim 1, wherein said compound is selected from the group consisting of hexamethyldisilazane, hexaethyldisilazane, trimethylchlorosilane, triethylchlorosilane, trimethyaminosilane, triethyaminosilane, and dimethyldichlorosilane.
- 3. The method for manufacturing an electrostatic actuator according to claim 2, wherein said organosilicate compound is hexamethyldisilazane.
- 4. The method for manufacturing an electrostatic actuator according to claim 3, wherein the hexamethyldisilazane concentration in said gap when said gap is sealed airtight is 0.3% or greater.
- 5. The method for manufacturing an electrostatic actuator according to claim 3, wherein the hexamethyldisilazane concentration in said gap when said gap is sealed airtight is 0.5% or greater.
- 6. The method for manufacturing an electrostatic actuator according to claim 3, wherein the hexamethyldisilazane concentration in said gap when said gap is sealed airtight is 0.8% or greater.
- 7. The method for manufacturing an electrostatic actuator according to claim 2, wherein said sealing step is carried out at temperature between about 22° C. and about 24° C. and at about standard atmospheric pressure.
- 8. The method for manufacturing an electrostatic actuator according to claim 2, wherein said depositing step is carried out by depositing said hydrophobic film by exposing the first and second surfaces to a gasified atmosphere of said organosilicate compound at standard atmospheric pressure, and said sealing step is performed in the depositing atmosphere.
- 9. The method for manufacturing an electrostatic actuator according to claim 2, wherein said depositing step is carried out by depositing said hydrophobic film by exposing the first and second surfaces to a gasified atmosphere of said organosilicate compound in a temperature and pressure controlled process chamber, and said sealing step is performed in the process chamber.
- 10. The method for manufacturing an electrostatic actuator according to claim 2, further comprising a step of:
post-processing for stabilizing said hydrophobic film after said depositing step; wherein said post-processing step comprises at least one of the following steps:
imparting moisture to said hydrophobic film, and exposing said hydrophobic film for a specific period of time to air at a predetermined temperature and predetermined humidity.
- 11. The method for manufacturing an electrostatic actuator according to claim 10, wherein the step of imparting moisture begins before the depositing step ends.
- 12. The method for manufacturing an electrostatic actuator according to claim 2, further comprising a pretreatment step to reduce moisture the first and second surfaces before the depositing step.
- 13. The method for manufacturing an electrostatic actuator according to claim 12, wherein the pretreatment step is carried out by heating in a vacuum.
- 14. The method for manufacturing an electrostatic actuator according to claim 12, wherein the pretreatment step is carried out by alternately exposing the first and second surfaces to a vacuum atmosphere and a nitrogen atmosphere.
- 15. The method for manufacturing an electrostatic actuator according to claim 12, wherein the pretreatment step is carried out by placing the electrostatic actuator in a chamber and supplying a stream of dry gas to the chamber for a specified period of time.
- 16. A method for manufacturing an electrostatic actuator, comprising the steps of:
providing a first electrode having a first surface; providing a second electrode having a second surface opposing the first surface with a gap disposed therebetween; infusing gas having a hydrophobic functional group into the gap; and sealing the gap with the gas contained therein.
- 17. The method for manufacturing an electrostatic actuator according to claim 16, wherein the hydrophobic functional group is Rn-Si(4-n)-X, wherein R is selected from the alkyl group and 2≦n≦3.
- 18. The method for manufacturing an electrostatic actuator according to claim 16, wherein the gas is selected from the group consisting of hexamethyldisilazane, hexaethyldisilazane, trimethylchlorosilane, triethylchlorosilane, trimethylaminosilane, triethylaminosilane, and dimethyldichlorosilane.
- 19. The method for manufacturing an electrostatic actuator according to claim 16, wherein the gap is sealed airtight so that the concentration of gas contained therein is 0.3% or greater.
- 20. The method for manufacturing an electrostatic actuator according to claim 16, further comprising the step of forming a film between the electrodes with the gas.
Priority Claims (1)
Number |
Date |
Country |
Kind |
8-342213 |
Dec 1996 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATIONS
1. This application is a divisional of application Ser. No. 08/993,788, filed on Dec. 19, 1997, the contents of which are incorporated by reference herein.
Divisions (1)
|
Number |
Date |
Country |
Parent |
08993788 |
Dec 1997 |
US |
Child |
09727090 |
Nov 2000 |
US |