IP Library Granted Patent US 8,218,292
Granted Patent B2
US 8,218,292 · App. 12/533,407 · Granted Jul 10, 2012

Dry powder stencil printing of solid electrolytic capacitor components

Assignee: AVX Corporation
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Quick Facts
Patent No.
US 8,218,292
App. No.
12/533,407
Granted
Jul 10, 2012
Kind
B2
Abstract

Solid electrolytic capacitors and related methods for forming such capacitors may variously involve forming at least one of a seed, grip, reference point and/or anode body by stencil printing of dry powder. In accordance with a method of forming anodic components for electrolytic capacitors, a stencil is positioned adjacent to a substrate, the stencil being formed to define a plurality of apertures therethrough. A plurality of printed powder portions are selectively printed on the substrate by placing dry powder into selected ones of the plurality of apertures defined in the stencil. The printed powder portions are then sintered to form respective anodic components for multiple respective electrolytic capacitors.

Claims (36)

1. A method of forming anodic components for electrolytic capacitors, comprising:

positioning a stencil adjacent to a substrate, the stencil being formed to define a plurality of apertures therethrough;

selectively printing a plurality of printed powder portions on the substrate by placing dry valve metal powder into selected ones of the plurality of apertures defined in the stencil; and

sintering the printed powder portions to form respective anodic components for multiple respective electrolytic capacitors, wherein the printed powder portions serve as respective capacitor seeds, and wherein the method further comprises placing an anode body on top of each printed powder portion.

2. The method of claim 1 , wherein the substrate comprises an electrically conductive wafer and wherein the dry powder used to selectively print the plurality of printed powder portions comprises one or more of tantalum, niobium, or an electrically conductive oxide thereof.

3. The method of claim 1 , wherein the amount of printed powder in each respective anodic component is distributed in a substantially uniform fashion across a portion of the substrate.

4. The method of claim 1 , wherein the dry powder is characterized by a particle size that is less than or equal to the thickness of the stencil.

5. The method of claim 1 , wherein placing an anode body on top of each printed powder portion comprises:

providing a stencil formed to define a plurality of apertures therethrough; and

selectively printing one or more layers of printed powder to form respective anode bodies on top of the respective seeds by placing dry powder into selected ones of the plurality of apertures defined in the stencil.

6. The method of claim 5 , wherein the dry powder used to selectively print one or more layers of printed powder to form respective anode bodies comprises one or more of tantalum, niobium, or an electrically conductive oxide thereof.

7. The method of claim 1 , wherein said step of placing an anode body on top of each printed powder portion comprises aligning a pressed anode pellet on top of each printed powder portion and sintering the pressed anode pellet to the printed powder portion.

8. The method of claim 1 , further comprising steps of:

forming a dielectric layer over the anode bodies;

forming a cathode layer over the dielectric layer to yield resultant capacitor bodies;

encapsulating the side walls of the capacitor bodies with an electrically insulating material; and

dividing the processed substrate into a plurality of individual capacitor bodies each having a sheath of encapsulating material, an anode terminal surface portion at one end and a cathode terminal surface portion at the other end.

9. The method of claim 1 , wherein sintering the printed powder portions comprises sintering at a temperature of between about 1700° C. and about 1900° C., and wherein the method further comprises sintering the anode bodies to the capacitor seeds at a temperature of between about 1300° C. and about 1700° C.

10. The method of claim 1 , wherein the substrate comprises a tantalum wafer having a substantially uniform thickness selected from a range of between about 50 microns and about 400 microns.

11. The method of claim 1 , wherein the printed powder portions further comprise a plurality of grips outlying the respective capacitor seeds; and wherein the method further comprises applying an insulating material over the plurality of grips.

12. The method of claim 1 , wherein the printed powder portions comprise reference lines printed to one or more edges of the substrate for identifying where to cut the substrate to form discrete capacitor elements.

13. A capacitor formed by the method of claim 1 .

14. A method of forming anodic components for electrolytic capacitors, comprising:

positioning a stencil adjacent to a substrate, the stencil being formed to define a plurality of apertures therethrough;

selectively printing a plurality of printed powder portions on the substrate by placing dry valve metal powder into selected ones of the plurality of apertures defined in the stencil; and

sintering the printed powder portions to form respective anodic components for multiple respective electrolytic capacitors, wherein the printed powder portions serve as respective anode bodies, and wherein the method further comprises coupling an anode lead to each of the respective printed powder anode bodies.

15. The method of claim 14 , wherein the substrate comprises an electrically conductive wafer and wherein the dry powder used to selectively print the plurality of printed powder portions comprises one or more of tantalum, niobium, or an electrically conductive oxide thereof.

16. The method of claim 14 , wherein the amount of printed powder in each respective anodic component is distributed in a substantially uniform fashion across a portion of the substrate.

17. The method of claim 14 , wherein the dry powder is characterized by a particle size that is less than or equal to the thickness of the stencil.

18. The method of claim 17 , further comprising:

forming a dielectric layer over the anode bodies;

forming a cathode layer over the dielectric layer to yield resultant capacitor bodies;

electrically connecting the anode lead to an anode termination; and

electrically connecting the cathode layer to a cathode termination.

19. The method of claim 14 , wherein the substrate comprises one of a wafer, foil or tape.

20. A capacitor formed by the method of claim 14 .

Assignments (2)
CHANGE OF NAME Recorded Dec 22, 2021
From: AVX CORPORATION
To: KYOCERA AVX COMPONENTS CORPORATION
Reel/Frame 058563/0762 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2009
From: REZAI-KALANTARY, MAJID
To: AVX CORPORATION
Reel/Frame 023133/0317 →
Continuity (1)
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