IP Library Granted Patent US 9,378,896
Granted Patent B2
US 9,378,896 · App. 14/075,335 · Granted Jun 28, 2016

Solid electrolytic capacitor and method for manufacturing the same

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Quick Facts
Patent No.
US 9,378,896
App. No.
14/075,335
Granted
Jun 28, 2016
Kind
B2
Abstract

A solid electrolytic capacitor includes a porous sintered body made of a valve metal, a dielectric layer on the porous sintered body, a solid electrolyte layer on the dielectric layer, and a cathode layer on the solid electrolyte layer. The solid electrolyte layer includes an inner electrode layer covering the dielectric layer inside the porous sintered body and an outer electrode layer covering the inner electrode layer outside the porous sintered body. The outer electrode layer includes a solid particle containing layer formed by applying a dispersion material liquid containing a conductive polymer dispersion material, solid particles and a solvent to the inner electrode layer and then removing the solvent.

Claims (42)

1. A solid electrolytic capacitor comprising:

a porous sintered body made of a valve metal;

a dielectric layer formed on the porous sintered body;

a solid electrolyte layer formed on the dielectric layer; and

a cathode layer formed on the solid electrolyte layer;

wherein the solid electrolyte layer includes an inner electrode layer and an outer electrode layer, the inner electrode layer covering the dielectric layer inside the porous sintered body, the outer electrode layer covering the inner electrode layer outside the porous sintered body,

the outer electrode layer comprises a solid particle containing layer including a conductive polymer dispersion material and solid particles, the solid particle containing layer being formed by applying a dispersion material liquid containing the conductive polymer dispersion material, the solid particles and a solvent to the inner electrode layer and then removing the solvent, and

a ratio of length to thickness of each of the solid particles is 1:X, where 0.05≦X≦0.3.

2. The solid electrolytic capacitor according to claim 1 , wherein the cathode layer comprises: a base layer covering the solid electrolyte layer; and an upper layer on the base layer.

3. The solid electrolytic capacitor according to claim 2 , wherein the solid particles and the base layer are made of a same material.

4. The solid electrolytic capacitor according to claim 1 , wherein the solid particles are made of graphite.

5. The solid electrolytic capacitor according to claim 1 , wherein a concentration of the solid particles with respect to the conductive polymer dispersion material is 5 to 70 wt %.

6. The solid electrolytic capacitor according to claim 1 , wherein a concentration of the solid particles with respect to the conductive polymer dispersion material is 20 to 60 wt %.

7. The solid electrolytic capacitor according to claim 1 , wherein the solid particles are made of a metal.

8. The solid electrolytic capacitor according to claim 7 , wherein the metal is Ta or stainless steel.

9. The solid electrolytic capacitor according to claim 1 , wherein the solid particles are made of a metal oxide.

10. The solid electrolytic capacitor according to claim 9 , wherein the metal oxide is tin oxide or perovskite type oxide.

11. The solid electrolytic capacitor according to claim 1 , wherein the solid particle containing layer has an irregular surface.

12. The solid electrolytic capacitor according to claim 11 , wherein the solid particles are present in projections of the irregular surface of the solid particle containing layer.

13. The solid electrolytic capacitor according to claim 1 , wherein the solid particle containing layer is in contact with the cathode layer.

14. The solid electrolytic capacitor according to claim 1 , wherein the solid particle containing layer is in contact with the inner electrode layer.

15. The solid electrolytic capacitor according to claim 1 , wherein the outer electrode layer consists solely of the solid particle containing layer.

16. A method for manufacturing a solid electrolytic capacitor, the method comprising the steps of:

forming a porous sintered body from a valve metal;

forming a dielectric layer on the porous sintered body;

forming a solid electrolyte layer on the dielectric layer; and

forming a cathode layer on the solid electrolyte layer;

wherein the step of forming the solid electrolytic layer comprises forming an inner electrode layer to cover the dielectric layer inside the porous sintered body and forming an outer electrode layer to cover the inner electrode layer outside the porous sintered body,

the step of forming the outer electrode layer comprises forming a solid particle containing layer by applying a dispersion material liquid containing a conductive polymer dispersion material, solid particles and a solvent to the inner electrode layer and then removing the solvent, and

a ratio of length to thickness of each of the solid particles is 1:X, where 0.05≦X≦0.3.

17. The method for manufacturing a solid electrolytic capacitor according to claim 16 , wherein the step of forming the cathode layer comprises forming a base layer to cover the solid electrolyte layer and then forming an upper layer on the base layer.

18. The method for manufacturing a solid electrolytic capacitor according to claim 17 , wherein the solid particles and the base layer are made of a same material.

19. The method for manufacturing a solid electrolytic capacitor according to claim 16 , wherein the solid particles are made of graphite.

20. The method for manufacturing a solid electrolytic capacitor according to claim 19 , wherein a concentration of the solid particles with respect to the conductive polymer dispersion material is 5 to 70 wt %.

21. The method for manufacturing a solid electrolytic capacitor according to claim 20 , wherein the metal is Ta or stainless steel.

22. The method for manufacturing a solid electrolytic capacitor according to claim 19 , wherein a concentration of the solid particles with respect to the conductive polymer dispersion material is 20 to 60 wt %.

23. The method for manufacturing a solid electrolytic capacitor according to claim 16 , wherein the solid particles are made of a metal.

24. The method for manufacturing a solid electrolytic capacitor according to claim 23 , wherein the metal oxide is tin oxide or perovskite type oxide.

25. The method for manufacturing a solid electrolytic capacitor according to claim 16 , wherein the solid particles are made of a metal oxide.

26. The method for manufacturing a solid electrolytic capacitor according to claim 16 , wherein, in the step of forming the outer electrode layer, the step of forming the solid particle containing layer is performed last.

27. The method for manufacturing a solid electrolytic capacitor according to claim 16 , wherein, in the step of forming the outer electrode layer, the step of forming the solid particle containing layer is performed first.

28. The method for manufacturing a solid electrolytic capacitor according to claim 16 , wherein the step of forming the outer electrode layer consists solely of the step of forming a solid particle containing layer.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 13, 2022
From: ROHM CO., LTD.
To: KYOCERA AVX COMPONENTS (BANGKOK) LTD.
Reel/Frame 062203/0865 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 8, 2013
From: SUGIMURA, NAOTSUGU
To: ROHM CO., LTD.
Reel/Frame 031569/0368 →