Claims
- 1. A method for producing a solid electrolytic capacitor, comprising covering a valve-acting metal anode foil having formed on the surface thereof an oxide dielectric film with repeating sequence of a solution containing a monomer of an electrically conducting polymer and a solution containing an oxidizing agent and then polymerizing to form an electrically conducting polymer composition film on the dielectric film, wherein the solution containing a monomer of an electrically conducting polymer and/or the solution containing an oxidizing agent has a viscosity of less than 100 cp at 23° C.
- 2. A solid electrolytic capacitor comprising an oxide dielectric film having provided thereon an electrically conducting polymer composition layer, which is produced by the method described in claim 1, wherein the electrically conducting polymer in said composition contains as a repeating chemical structure a structural unit represented by the following formula (1a):
- 3. The solid electrolytic capacitor as claimed in claim 2, wherein the structural unit represented by formula (1a) is a chemical structure represented by the following formula (2):
- 4. The method for producing a solid electrolytic capacitor as claimed in claim 1, comprising an oxide dielectric film having provided thereon an electrically conducting polymer composition layer, said method comprising polymerizing a monomer compound on an oxide dielectric film by an oxidizing agent, wherein the monomer compound is a compound represented by the following formula (3a):
- 5. The method for producing a solid electrolytic capacitor as claimed in claim 4, wherein the monomer compound represented by formula (1a) is a compound represented by the following formula (4):
- 6. The method for producing a solid electrolytic capacitor as claimed in claim 1, 4 or 5, wherein said oxidizing agent is a metal salt solution of an oxidative inorganic acid.
- 7. The method for producing a solid electrolytic capacitor as claimed in claim 6, wherein the metal salt of an oxidative inorganic acid is persulfate.
- 8. The method for producing a solid electrolytic capacitor as claimed in claim 1, 4 or 5, wherein said monomer compound is a monomer compound of a polymer having electric conductivity, and thiophene, aniline or derivatives thereof.
- 9. The method for producing a solid electrolytic capacitor as claimed in claim 8, wherein said thiophene derivative is 3,4-ethylenedioxythiophene.
- 10. A method for producing a solid electrolytic capacitor, comprising coating a solution containing a monomer of an electroconducting polymer and a solution containing an oxidizing agent in repeating sequence on a valve-acting metal anode having formed on the surface thereof an oxide dielectric film, and then polymerizing wherein the electroconducting polymer is formed by setting the humidity in the atmosphere of polymerization process to from 10% to less than 60%.
- 11. A solid electrolytic capacitor comprising an electroconducting polymer composition layer provided on the oxide dielectric film according to the method of claim 10, wherein the electroconducting polymer in said composition contains a structural unit represented by the following formula (1b) as a repeating chemical structure:
- 12. The solid electrolytic capacitor as claimed in claim 11, wherein the structural unit represented by formula (1b) is a chemical structure represented by the following formula (2):
- 13. The method for producing a solid electrolytic capacitor as claimed in claim 10, said solid electrolytic capacitor comprising an electroconducting polymer composition layer provided on the oxide dielectric film, wherein a monomer is polymerized on the oxide dielectric film by an oxidizing agent, the monomer is a compound represented by the following formula (3b):
- 14. The method for producing a solid electrolytic capacitor as claimed in claim 13, wherein the monomer represented by formula (1b) is a compound represented by the following formula (4):
- 15. The method for producing a solid electrolytic capacitor as claimed in claim 10, 13 or 14, wherein said oxidizing agent is a metal salt or ammonium salt of an oxidative inorganic acid.
- 16. The method for producing a solid electrolytic capacitor as claimed in claim 10, 13 or 14, wherein said metal salt or ammonium salt of an oxidative inorganic acid is persulfate.
- 17. The method for producing a solid electrolytic capacitor as claimed in claim 10, 13 or 14, wherein said monomer is a monomer for a polymer having electric conductivity, and pyrrole, thiophene, aniline or a derivative thereof.
- 18. The method for producing a solid electrolytic capacitor as claimed in claim 17, wherein said thiophene derivative is 3,4-ethylenedioxythiophene.
- 19. A solid electrolytic capacitor comprising a porous valve acting metal having formed thereon a dielectric film and a solid electrolyte formed on the dielectric film, wherein the solid electrolyte occupies from 10 to 95% of the space within a pore of said porous metal.
- 20. The solid electrolytic capacitor as claimed in claim 19, wherein the solid electrolyte is an electrically conducting polymer containing a lamellar structure.
- 21. A solid electrolytic capacitor comprising a porous valve acting metal having formed thereon a dielectric film and a solid electrolyte formed on the dielectric film, wherein the solid electrolyte covers 60% or more of said dielectric film.
- 22. The solid electrolytic capacitor as claimed in claim 21, wherein the solid electrolyte is an electrically conducting polymer containing a lamellar structure.
- 23. The solid electrolytic capacitor as claimed in claim 20 or 22, wherein at least a portion of an interlayer portion in said lamellar structure comprises a space portion.
- 24. The solid electrolytic capacitor as claimed in claim 19 or 21, wherein the space within a pore, partly occupied by said solid electrolyte, is an independent or communicated bubble void space.
- 25. The solid electrolytic capacitor as claimed in claim 19 or 21, wherein said solid electrolyte is an electrically conducting polymer containing as a repeating unit a divalent group comprising a 5-membered heterocyclic ring-containing compound or a derivative thereof.
- 26. The solid electrolytic capacitor as claimed in claim 25, wherein said electrically conducting polymer containing as a repeating unit a divalent group comprising a 5-membered heterocyclic ring-containing compound or a derivative thereof is an electrically conducting polymer containing as a repeating unit a structure represented by the following formula (5):
- 27. The solid electrolytic capacitor as claimed in claim 26, wherein said electrically conducting polymer has an electric conductivity of from 0.1 to 200 S/cm.
- 28. The solid electrolytic capacitor as claimed in claim 19 or 21, wherein the valve acting metal is any one of aluminum, tantalum, niobium and titanium.
- 29. A method for producing a solid electrolytic capacitor, comprising forming a dielectric film on a porous valve acting metal and forming a solid electrolyte on the dielectric film, wherein the solid electrolyte is formed to occupy from 10 to 95% of the space within a pore of said porous metal.
- 30. A method for producing a solid electrolytic capacitor comprising forming a dielectric film on a porous valve acting metal and forming a solid electrolyte in the dielectric film, wherein the solid electrolyte is formed to cover about 60% or more of the dielectric film.
- 31. A method for producing a solid electrolytic capacitor, comprising covering a valve-acting metal anode foil having formed on the surface thereof an oxide dielectric film with repeating sequence of a solution containing a monomer of an electrically conducting polymer and a solution containing an oxidizing agent and then polymerizing to form an electrically conducting polymer composition film on the dielectric film, wherein the solution containing a monomer of the electrically conducting polymer and/or the solution containing the oxidizing agent has a viscosity of less than about 100 cp at 23° C.; wherein the electrically conducting polymer composition film is formed by setting the humidity in the atmosphere of polymerization process to from about 10% to less than about 60%; and wherein the solid electrolyte is formed on the dielectric film to occupy from about 10 to about 95% of the space within a pore of the valve metal.
- 32. A method for producing a solid electrolytic capacitor, comprising covering a valve-acting metal anode foil having formed on the surface thereof an oxide dielectric film with repeating sequence of a solution containing a monomer of an electrically conducting polymer and a solution containing an oxidizing agent and then polymerizing to form an electrically conducting polymer composition film on the dielectric film, wherein the solution containing a monomer of the electrically conducting polymer and/or the solution containing the oxidizing agent has a viscosity of less than about 100 cp at 23° C.; wherein the electrically conducting polymer composition film is formed by setting the humidity in the atmosphere of polymerization process to from about 10% to less than about 60%; and wherein the solid electrolyte is formed on the dielectric film to cover about 60% or more of said dielectric film.
- 33. A solid electrolytic capacitor produced by the process of claim 31.
- 34. A solid electrolytic capacitor produced by the process of claim 32.
Priority Claims (2)
Number |
Date |
Country |
Kind |
11-252371 |
Sep 1999 |
JP |
|
11-370296 |
Dec 1999 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is an application filed under 35 U.S.C. §111(a) claiming benefit pursuant to 35 U.S.C. §119(e)(i) of the filing dates of Provisional Application No. 60/135,845 filed May 24, 1999, Provisional Application No. 60/157,074 filed Oct. 1, 1999 and Provisional Application No. 60/182,191, filed Feb. 14, 2000 pursuant to 35 U.S.C. §111(b).
Provisional Applications (3)
|
Number |
Date |
Country |
|
60135845 |
May 1999 |
US |
|
60157074 |
Oct 1999 |
US |
|
60182191 |
Feb 2000 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09576264 |
May 2000 |
US |
Child |
10303728 |
Nov 2002 |
US |