Polymerization solution, conductive polymer film obtained from the polymerization solution, polymer electrode, and solid electrolytic capacitor

US9562293B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9562293-B2
Application numberUS-201214002248-A
CountryUS
Kind codeB2
Filing dateMar 1, 2012
Priority dateMar 1, 2011
Publication dateFeb 7, 2017
Grant dateFeb 7, 2017

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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Abstract

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Disclosed is a polymerization solution for electrolytic polymerization having a small environmental load, having excellent economic efficiency and capable of producing a conductive polymer exhibiting excellent heat resistance. The polymerization solution has: a solvent consisting of 100 to 80% by mass of water and 0 to 20% by mass of an organic solvent; at least one monomer selected from the group consisting of 3,4-disubstituted thiophenes; and at least one organic non-sulfonate supporting electrolyte having an anion with the molecular weight of 200 or more. A conductive polymer film densely filled with polymer particles is obtained by performing electrolytic polymerization using the polymerization solution. A polymer electrode provided with the conductive polymer film exerts excellent heat resistance and the electrochemical activity of the polymer electrode will hardly deteriorate even when being subjected to high temperatures. Moreover, a solid electrolyte capacitor containing the conductive polymer layer obtained by performing electrolytic polymerization using the polymerization solution exhibits low dielectric loss and equivalent series resistance and exerts excellent heat resistance.

First claim

Opening claim text (preview).

What is claimed is: 1. A polymerization solution for electrolytic polymerization of 3,4-disubstituted thiophene, comprising: a solvent consisting of 100 to 80% by mass of water and 0 to 20% by mass of an organic solvent; at least one monomer selected from the group consisting of 3,4-disubstituted thiophenes; and at least one organic non-sulfonate supporting electrolyte having an anion with the molecular weight of 200 or more, wherein the supporting electrolyte is at least one compound selected from the group consisting of borodisalicylic acid and borodisalicylic salts. 2. The polymerization solution according to claim 1 , wherein the solvent consists only of water. 3. The polymerization solution according to claim 1 , wherein the monomer is 3,4-ethylenedioxythiophene. 4. The polymerization solution according to claim 1 , wherein the monomer is dispersed as oil drops in the polymerization solution. 5. A conductive polymer film obtained by introducing a substrate with a conductive part at least on the surface in the polymerization solution according to claim 1 and then performing electrolytic polymerization. 6. A polymer electrode comprising: a substrate with a conductive part at least on the surface; and a conductive polymer film layered on the conductive part of the substrate, wherein the conductive polymer film is obtained by introducing the substrate in the polymerization solution according to claim 1 and then performing electrolytic polymerization. 7. A solid electrolytic capacitor comprising: a positive electrode made of valve metal foil with an oxide film on the surface; and a conductive polymer layer on the positive electrode, wherein the conductive polymer layer is formed by introducing the positive electrode in the polymerization solution according to claim 1 and then performing electrolytic polymerization. 8. A solid electrolytic capacitor comprising: a positive electrode made of valve metal foil with an oxide film on the surface; a negative electrode made of valve metal foil; and a separator retaining a conductive polymer layer between the positive electrode and the negative electrode, wherein the conductive polymer layer is formed by introducing in the polymerization solution according to claim 1 a capacitor element comprising the positive electrode, the negative electrode and a separator therebetween, impregnating the polymerization solution in the capacitor element and then performing electrolytic polymerization. 9. A conductive polymer film obtained by introducing a substrate with a conductive part at least on the surface in the polymerization solution according to claim 2 and then performing electrolytic polymerization. 10. A solid electrolytic capacitor comprising: a positive electrode made of valve metal foil with an oxide film on the surface; and a conductive polymer layer on the positive electrode, wherein the conductive polymer layer is formed by introducing the positive electrode in the polymerization solution according to claim 2 and then performing electrolytic polymerization. 11. A solid electrolytic capacitor comprising: a positive electrode made of valve metal foil with an oxide film on the surface; a negative electrode made of valve metal foil; and a separator retaining a conductive polymer layer between the positive electrode and the negative electrode, wherein the conductive polymer layer is formed by introducing in the polymerization solution according to claim 2 a capacitor element comprising the positive electrode, the negative electrode and a separator therebetween, impregnating the polymerization solution in the capacitor element and then performing electrolytic polymerization. 12. A conductive polymer film obtained by introducing a substrate with a conductive part at least on the surface in the polymerization solution according to claim 3 and then performing electrolytic polymerization. 13. A solid electrolytic capacitor comprising: a positive electrode made of valve metal foil with an oxide film on the surface; and a conductive polymer layer on the positive electrode, wherein the conductive polymer layer is formed by introducing the positive electrode in the polymerization solution according to claim 3 and then performing electrolytic polymerization. 14. A solid electrolytic capacitor comprising: a positive electrode made of valve metal foil with an oxide film on the surface; a negative electrode made of valve metal foil; and a separator retaining a conductive polymer layer between the positive electrode and the negative electrode, wherein the conductive polymer layer is formed by introducing in the polymerization solution according to claim 3 a capacitor element comprising the positive electrode, the negative electrode and a separator therebetween, impregnating the polymerization solution in the capacitor element and then performing electrolytic polymerization. 15. A polymer electrode comprising: a substrate with a conductive part at least on the surface; and a conductive polymer film layered on the conductive part of the substrate, wherein the conductive polymer film is obtained by introducing the substrate in the polymerization solution according to claim 2 and then performing electrolytic polymerization. 16. A polymer electrode comprising: a substrate with a conductive part at least on the surface; and a conductive polymer film layered on the conductive part of the substrate, wherein the conductive polymer film is obtained by introducing the substrate in the polymerization solution according to claim 3 and then performing electrolytic polymerization.

Assignees

Inventors

Classifications

  • Of polythioether · CPC title

  • containing one or more sulfur atoms as the only heteroatom, e.g. thiophene · CPC title

  • characterised by the material (H01G11/22 takes precedence) · CPC title

  • H01G9/0036Primary

    Formation of the solid electrolyte layer · CPC title

  • Compounds containing sulfur bound to nitrogen · CPC title

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What does patent US9562293B2 cover?
Disclosed is a polymerization solution for electrolytic polymerization having a small environmental load, having excellent economic efficiency and capable of producing a conductive polymer exhibiting excellent heat resistance. The polymerization solution has: a solvent consisting of 100 to 80% by mass of water and 0 to 20% by mass of an organic solvent; at least one monomer selected from the gr…
Who is the assignee on this patent?
Machida Kenji, Takeda Sekihiro, Muroi Ryo, and 3 more
What technology area does this patent fall under?
Primary CPC classification H01G9/0036. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Feb 07 2017 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).