Claims
- 1. A solid electrolytic capacitor comprising a molded body of a solid electrolytic capacitor element having an anode part assigned to one end part of an anode substrate composed of a valve-acting metal having on the surface thereof a dielectric film layer, and a cathode part including a solid electrolyte layer formed on the dielectric film layer in a remaining portion of the anode substrate and having an electrically conducting layer formed thereon, the anode part being connected to a lead frame via a weld metal provided on the anode part of the solid electrolytic capacitor element by irradiating the anode part with a laser ray, and said body being molded with an outer jacket resin.
- 2. A solid electrolytic capacitor comprising a molded body of a plurality of solid electrolytic capacitor elements each having an anode part assigned to one end part of an anode substrate composed of a valve-acting metal having on the surface thereof a dielectric film layer, and a cathode part including a solid electrolyte layer formed on the dielectric film layer in a remaining portion of the anode substrate and having an electrically conducting layer formed thereon, the anode parts and the cathode parts being stacked one on the other, the anode parts being connected to a lead frame via a weld metal provided on one or more of the anode parts of the solid electrolytic capacitor elements by irradiating the anode parts with a laser ray, and the stacked body being molded with an outer jacket resin.
- 3. The solid electrolytic capacitor as claimed in claim 1, wherein the weld metal is interposed between the anode part of the capacitor element and the lead frame.
- 4. The solid electrolytic capacitor as claimed in claim 1, wherein the weld metal is capable of being melted by the laser ray.
- 5. The solid electrolytic capacitor as claimed in claim 1, wherein the laser ray is a ray emitted from a YAG laser, YVO4 laser, carbon dioxide laser or Ar laser.
- 6. The solid electrolytic capacitor as claimed in claim 1, wherein the weld metal is selected from the group consisting of nickel, iron, copper, aluminum, chromium, molybdenum and alloys thereof.
- 7. The solid electrolytic capacitor as claimed in claim 1, wherein the valve-acting metal is selected from the group consisting of aluminum, tantalum, titanium, niobium and alloys thereof.
- 8. The solid electrolytic capacitor as claimed in claim 1, wherein the valve-acting metal comprises an electrochemically formed aluminum foil or an electrochemically formed niobium foil.
- 9. The solid electrolytic capacitor as claimed in claim 1, wherein the valve-acting metal is a foil electrochemically formed at a voltage of less than 30 V.
- 10. The solid electrolytic capacitor as claimed in claim 1, wherein the lead frame is a copper- or copper alloy-based material.
- 11. The solid electrolytic capacitor as claimed in claim 1, wherein the solid electrolyte comprises a π-electron conjugated system polymer.
- 12. The solid electrolytic capacitor as claimed in claim 11, wherein the π-electron conjugated system polymer is a polymer obtained from a 5-membered heterocyclic compound.
- 13. The solid electrolytic capacitor as claimed in claim 12, wherein the 5-membered heterocyclic compound comprises at least one compound selected from the group consisting of pyrrole, thiophene, furan, isothianaphthene, 1,3-dihydroisothianaphthene and substitution derivatives thereof.
- 14. The solid electrolytic capacitor as claimed in claim 12, wherein the 5-membered heterocyclic compound comprises at least one compound selected from the group consisting of 3,4-ethylenedioxythiophene and 1,3-dihydroisothianaphthene.
- 15. The solid electrolytic capacitor as claimed in claim 2, wherein the weld metal is interposed between an anode part of a capacitor element and the lead frame and/or between anode parts of the solid electrolytic capacitor elements.
- 16. The solid electrolytic capacitor as claimed in claim 2, wherein the weld metal is capable of being melted by the laser ray.
- 17. The solid electrolytic capacitor as claimed in claim 2, wherein the laser ray is a ray emitted from a YAG laser, YVO4 laser, carbon dioxide laser or Ar laser.
- 18. The solid electrolytic capacitor as claimed in claim 2, wherein the weld metal is selected from the group consisting of nickel, iron, copper, aluminum, chromium, molybdenum and alloys thereof.
- 19. The solid electrolytic capacitor as claimed in claim 2, wherein the valve-acting metal is selected from the group consisting of aluminum, tantalum, titanium, niobium and alloys thereof.
- 20. The solid electrolytic capacitor as claimed in claim 2, wherein the valve-acting metal comprises an electrochemically formed aluminum foil or an electrochemically formed niobium foil.
- 21. The solid electrolytic capacitor as claimed in claim 2, wherein the valve-acting metal is a foil electrochemically formed at a voltage of less than 30 V.
- 22. The solid electrolytic capacitor as claimed in claim 2, wherein the lead frame is a copper- or copper alloy-based material.
- 23. The solid electrolytic capacitor as claimed in claim 2, wherein the solid electrolyte comprises a π-electron conjugated system polymer.
- 24. The solid electrolytic capacitor as claimed in claim 23, wherein the π-electron conjugated system polymer is a polymer obtained from a 5-membered heterocyclic compound.
- 25. The solid electrolytic capacitor as claimed in claim 24, wherein the 5-membered heterocyclic compound comprises at least one compound selected from the group consisting of pyrrole, thiophene, furan, isothianaphthene, 1,3-dihydroisothianaphthene and substitution derivatives thereof.
- 26. The solid electrolytic capacitor as claimed in claim 24, wherein the 5-membered heterocyclic compound comprises at least one compound selected from the group consisting of 3,4-ethylenedioxythiophene and 1,3-dihydroisothianaphthene.
- 27. A method for producing a solid electrolytic capacitor, which comprises providing an anode part at one end part of an anode substrate composed of a valve-acting metal having on the surface thereof a dielectric film layer, forming a solid electrolyte layer on the dielectric film layer in a remaining portion of the anode substrate and an electrically conducting layer thereon to provide a cathode part, thereby preparing a solid electrolytic capacitor element, providing a weld metal on the anode part, irradiating the anode part with a laser ray to connect it to a lead frame, and molding with an outer jacket resin.
- 28. The method for producing a solid electrolytic capacitor as claimed in claim 27, which comprises stacking a plurality of solid electrolytic capacitor elements to superpose the anode parts and the cathode parts one on the other, providing a weld metal on one or more of the anode parts, irradiating the anode parts with a laser ray to connect them to a lead frame, and molding the stacked body with an outer jacket resin.
- 29. The method for producing a solid electrolytic capacitor as claimed in claim 27, wherein the laser ray is a ray emitted from a YAG laser, YVO4 laser, carbon dioxide laser or Ar laser.
- 30. The solid electrolytic capacitor as claimed in claim 1, wherein the weld metal is provided on a surface of the anode part opposite the lead frame.
Priority Claims (1)
Number |
Date |
Country |
Kind |
P2002-057004 |
Mar 2002 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims benefit of Provisional Application 60/362,092 filed Mar. 7, 2002, incorporated herein by reference, under 35 U.S.C. § 111(b) pursuant to 35 U.S.C. § 119(e) (1).
Provisional Applications (1)
|
Number |
Date |
Country |
|
60362092 |
Mar 2002 |
US |