Electrolytic capacitor and its manufacturing method

The electrolytic capacitor achieves reduced ESR by incorporating a polythiophene-based polymer layer with low conductivity and a polypyrrole-based polymer layer, addressing the need for lower resistance and capacity maintenance.

JP7796352B2Active Publication Date: 2026-01-09PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2024202747
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-04-15
Filing Date
2024-11-20
Publication Date
2026-01-09
Estimated Expiration
2042-04-12

AI Technical Summary

Technical Problem

There is a demand for electrolytic capacitors with reduced Equivalent Series Resistance (ESR).

Method used

The electrolytic capacitor is designed with a first solid electrolyte layer containing a polythiophene-based polymer with a conductivity of 2 S/cm or less, and a second solid electrolyte layer containing a polypyrrole-based polymer, formed by electrolytically polymerizing a precursor on the first layer, to reduce ESR.

Benefits of technology

The ESR of the electrolytic capacitor is significantly reduced, maintaining low resistance and suppressing capacity reduction and leakage current.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide an electrolytic capacitor capable of reducing ESR (equivalent series resistance), and a manufacturing method thereof.SOLUTION: An electrolytic capacitor 1 includes: an anode body 6, a dielectric layer 7 covering the anode body; and a solid electrolyte layer 9. The solid electrolyte layer includes: a first solid electrolyte layer (first layer) covering the dielectric layer; and a second solid electrolyte layer (second layer) covering the first solid electrolyte layer. The first solid electrolyte layer contains a first conductive polymer with polythiophene as the base structure, and the second solid electrolyte layer contains a second conductive polymer with polypyrrole as the basic structure. The conductivity of the first solid electrolyte layer is 2S / cm or less and is smaller than the conductivity of the second solid electrolyte layer.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an electrolytic capacitor and a method for manufacturing the same. [Background technology]

[0002] An electrolytic capacitor includes a capacitor element, which includes an anode body, a dielectric layer covering the anode body, and a solid electrolyte layer covering the dielectric layer. The solid electrolyte layer includes a conductive polymer, such as polypyrrole (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2008-118060 Summary of the Invention [Problem to be solved by the invention]

[0004] There is a demand for electrolytic capacitors with reduced ESR (equivalent series resistance). [Means for solving the problem]

[0005] One aspect of the present invention relates to an electrolytic capacitor including an anode body, a dielectric layer covering the anode body, a first solid electrolyte layer covering the dielectric layer, and a second solid electrolyte layer covering the first solid electrolyte layer, wherein the first solid electrolyte layer contains a first conductive polymer having a polythiophene skeleton, the second solid electrolyte layer contains a second conductive polymer having a polypyrrole skeleton, and the conductivity of the first solid electrolyte layer is 2 S / cm or less.

[0006] Another aspect of the present invention relates to a method for manufacturing an electrolytic capacitor, including: a first step of preparing an anode body having a dielectric layer formed thereon; a second step of forming a first solid electrolyte layer on the dielectric layer, the first solid electrolyte layer including a first conductive polymer having a polythiophene skeleton; and a third step of electrolytically polymerizing a precursor of a second conductive polymer having a polypyrrole skeleton on the first solid electrolyte layer to form a second solid electrolyte layer including the second conductive polymer, wherein the first solid electrolyte layer has a conductivity of 2 S / cm or less. [Effects of the Invention]

[0007] According to the present invention, the ESR of an electrolytic capacitor can be reduced.

[0008] The novel features of the present invention are set forth in the appended claims, but the present invention, both in terms of structure and content, together with other objects and features of the present invention, will be better understood from the following detailed description taken in conjunction with the drawings. [Brief explanation of the drawings]

[0009] [Figure 1] 1 is a cross-sectional view schematically showing an electrolytic capacitor according to one embodiment of the present invention. [Figure 2] FIG. 2 is an enlarged cross-sectional view schematically showing a region II in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0010] The following describes examples of embodiments of electrolytic capacitors according to the present disclosure, but the present disclosure is not limited to the examples described below. In the following description, specific numerical values ​​and materials may be used as examples. However, other numerical values ​​and materials may be used as long as the effects of the present disclosure are obtained. In this specification, the term "numerical value A to numerical value B" includes numerical value A and numerical value B and can be interpreted as "numerical value A or greater and numerical value B or less." In the following description, when lower and upper limits for specific physical properties or conditions are exemplified, any of the exemplified lower limits and any of the exemplified upper limits can be arbitrarily combined, as long as the lower limit is not greater than the upper limit. When multiple materials are exemplified, one of the materials may be selected and used alone, or two or more of the materials may be used in combination.

[0011] The present disclosure also encompasses combinations of two or more features arbitrarily selected from the appended claims, i.e., two or more features arbitrarily selected from the appended claims can be combined unless a technical contradiction arises.

[0012] "Electrolytic capacitor" may be read as "solid electrolytic capacitor", and "capacitor" may be read as "capacitor".

[0013] An electrolytic capacitor according to one embodiment of the present invention includes an anode body, a dielectric layer covering the anode body, a first solid electrolyte layer covering the dielectric layer, and a second solid electrolyte layer covering the first solid electrolyte layer. The first solid electrolyte layer (hereinafter also referred to as the first layer) contains a first conductive polymer (hereinafter also referred to as a polythiophene-based polymer) having a polythiophene skeleton and has a conductivity of 2 S / cm or less. The second solid electrolyte layer (hereinafter also referred to as the second layer) contains a second conductive polymer (hereinafter also referred to as a polypyrrole-based polymer) having a polypyrrole skeleton.

[0014] The second layer containing a polypyrrole-based polymer is formed by forming a conductive first layer on a dielectric layer formed on the surface of an anode body, and then electropolymerizing a precursor of the polypyrrole-based polymer on the first layer. The first layer functions as an electrode during electropolymerization. A good second layer is formed by electropolymerization. The inventors have conducted extensive research on the first layer. As a result, they have newly discovered that the ESR of an electrolytic capacitor including a second layer containing a polypyrrole-based polymer is reduced when the first layer contains a polythiophene-based polymer and has a conductivity of 2 S / cm or less.

[0015] When the first layer contains a polythiophene-based polymer and has a conductivity of 2 S / cm or less, an electrolytic capacitor with a second layer containing a polypyrrole-based polymer exhibits a particularly low ESR. While the detailed reasons for this are unknown, the following points are presumed to be factors contributing to the low ESR.

[0016] Crystallization or cracks occurring in a part of the dielectric layer can cause a short circuit, resulting in a high current flow. In such cases, a part of the conductive polymer is usually insulated by the high current, suppressing the short circuit. However, this insulation increases the resistance of the solid electrolyte layer, raising the ESR.

[0017] In contrast, in the present invention, the conductivity of the first layer is as low as 2 S / cm or less, making it easy to insulate, and the insulation of the first layer suppresses the insulation of the second layer. Furthermore, since the first layer is used as an electrode during electrolytic polymerization, it is formed to be sufficiently thinner than the second layer. By locally insulating the thin first layer, the impact of insulation on the entire solid electrolyte layer can be reduced. Therefore, the resistance of the second layer can be maintained low, suppressing an increase in ESR.

[0018] It is predicted that the degradation of the first layer will have a significant effect on the ESR. However, because the first layer is made of a polythiophene-based polymer film, which has excellent thermal stability and durability, the increase in ESR due to the degradation of the first layer is suppressed. Furthermore, when the first layer is a polythiophene-based polymer film, the difference in energy level (work function) between the polypyrrole-based polymer film (second layer) formed by electrolytic polymerization is smaller than when the first layer is a polypyrrole-based polymer film or a polyaniline-based polymer film formed by chemical polymerization. This is also presumed to be one of the factors behind the low ESR.

[0019] From the viewpoint of reducing ESR, the conductivity of the first layer is preferably 0.1 S / cm or more and 2 S / cm or less, more preferably 0.1 S / cm or more and 1 S / cm or less, and even more preferably 0.1 S / cm or more and 0.5 S / cm or less. When the conductivity of the first layer is 0.1 S / cm or more, capacity reduction is easily suppressed.

[0020] The conductivity of the first layer can be determined by the following method. The electrolytic capacitor is disassembled, the capacitor element is removed, and the components of the first layer are analyzed. If the first layer is formed using a first treatment liquid in the second step described below, the first treatment liquid may also be analyzed. Examples of analytical methods that can be used include TEM (transmission electron microscope)-EELS (electron energy loss spectroscopy), NMR (nuclear magnetic resonance spectroscopy), and Raman spectroscopy.

[0021] Based on the analysis results, a sample film (e.g., 20 μm to 40 μm thick) containing the same components as the first layer is formed, and the conductivity of the sample film is determined as the conductivity of the first layer. The sample film can be formed by preparing a sample solution (aqueous solution) containing the same components as the first layer (e.g., a self-doping polythiophene-based polymer), applying the sample solution to a substrate, and drying it. The sample film may also be formed using the first treatment liquid. The conductivity can be measured using the Loresta-GX and PSP probe manufactured by Nitto Seiko Analytech Co., Ltd.

[0022] The first layer has low conductivity. However, by forming the first layer thin, it is possible to suppress an increase in ESR. From the viewpoint of reducing ESR, the thickness T1 of the first layer is preferably 10 nm or less, and more preferably 5 nm or less. The lower limit of the thickness T1 of the first layer is, for example, 1 nm.

[0023] The thickness T1 of the first layer refers to the thickness of the first layer covering the inner wall surface of the porous portion of the anode body via the dielectric layer (thickness T1 in Figure 2). The thickness of the first layer can be determined by the following method. First, the electrolytic capacitor is disassembled to remove the capacitor element, and a cross-sectional image of the capacitor element is obtained using a transmission electron microscope (TEM). Using the image, the thickness of 10 arbitrary points on the first layer covering the inner wall surface of the porous portion is measured. The average value of the measured thickness values ​​is calculated. The first and second layers can be confirmed, for example, by TEM-EDX (energy dispersive X-ray spectroscopy) analysis (element mapping).

[0024] From the viewpoint of reducing ESR, it is preferable that the second layer be thicker and have higher conductivity than the first layer. From the viewpoint of reducing ESR, the conductivity of the second layer may be 30 S / cm or more, or may be 60 S / cm or more. From the viewpoint of reducing leakage current, the conductivity of the second layer may be 300 S / cm or less, or may be 150 S / cm or less. The conductivity of the second layer may be within any combination of the above upper and lower limits, for example, 30 S / cm or more and 300 S / cm or less, 60 S / cm or more and 300 S / cm or less, or 30 S / cm or more and 150 S / cm or less.

[0025] The thickness T2 of the second layer may be 50 nm or more, or may be 50 nm or more and 100 nm or less. The ratio of the thickness T2 of the second layer to the thickness T1 of the first layer, T2 / T1, may be 10 or more. The thickness T2 of the second layer refers to the thickness of the second layer (thickness T2 in FIG. 2) that covers the outer surface of the porous portion of the anode body via the dielectric layer and the first layer (or dielectric layer). The thickness of the second layer can be determined by the same method as for the thickness of the first layer.

[0026] The conductivity of the second layer can be determined in the same manner as for the first layer. Based on the analysis results, a sample film (e.g., 20 μm to 40 μm thick) containing the same components as the second layer is formed, and the conductivity of the sample film is determined as the conductivity of the second layer.

[0027] The second layer is formed by electropolymerizing a polypyrrole-based polymer precursor in the presence of a second dopant. Therefore, a sample film having the same components as the second layer (polypyrrole-based polymer and second dopant) can be formed by preparing a sample solution containing the polypyrrole-based polymer precursor and the second dopant, immersing a metal substrate in the sample solution, passing a current through the metal substrate, and electropolymerizing the precursor. Furthermore, when the second layer is formed using a second treatment solution in the third step described below, the second treatment solution may be analyzed, and a sample film may be formed using the second treatment solution.

[0028] The electrolytic capacitor and the method for manufacturing the same will be described in more detail below. [Electrolytic capacitor] (anode body) The anode body may contain a valve metal, an alloy containing a valve metal, a compound containing a valve metal, or the like. These materials may be used alone or in combination of two or more. Examples of preferred valve metals include aluminum, tantalum, niobium, and titanium. The anode body may have a porous portion on its surface. Such an anode body can be obtained, for example, by roughening the surface of a substrate (such as a foil-shaped or plate-shaped substrate) containing a valve metal by etching or the like. The anode body may also be a compact of particles containing a valve metal or a sintered body thereof. Since the sintered body has a porous structure, the entire anode body may be porous.

[0029] (dielectric layer) The dielectric layer is formed, for example, by subjecting an anode body containing a valve metal to chemical conversion treatment (anodization treatment). The dielectric layer may be formed so as to cover at least a portion of the anode body. The dielectric layer is usually formed on the surface of the anode body. The dielectric layer is formed on the surface of the porous portion of the anode body, and is formed along the outer surface of the porous portion and the inner wall surfaces of the pores (pits).

[0030] The dielectric layer contains an oxide of a valve metal. For example, when tantalum is used as the valve metal, the dielectric layer contains Ta2O5, and when aluminum is used as the valve metal, the dielectric layer contains Al2O3. However, the dielectric layer is not limited to these and may be any material that functions as a dielectric.

[0031] (solid electrolyte layer) The solid electrolyte layer is formed so as to cover the dielectric layer. The solid electrolyte layer does not necessarily have to cover the entire dielectric layer (entire surface), but may be formed so as to cover at least a portion of the dielectric layer. The solid electrolyte layer includes a first layer containing a polythiophene-based polymer and a second layer containing a polypyrrole-based polymer formed on the first layer. If there is a region on the dielectric layer where the first layer is not formed, the second layer may be formed on the dielectric layer in this region.

[0032] (1st layer) The first layer includes a polythiophene-based polymer, such as polythiophene and its derivatives, including poly(3,4-ethylenedioxythiophene) (PEDOT).

[0033] From the viewpoint of facilitating impregnation into the pores of the porous portion, the weight-average molecular weight of the polythiophene-based polymer may be 100,000 or less, or may be 30,000 or less. The weight-average molecular weight of the polythiophene-based polymer is, for example, 1,000 or more. In this specification, the weight-average molecular weight is a weight-average molecular weight measured by gel permeation chromatography (GPC) using polystyrene as a standard.

[0034] The first layer may contain a self-doping polythiophene-based polymer having a conductivity of 2 S / cm or less. Self-doping polythiophene-based polymer particles tend to be small. Therefore, in this case, it is easy to prepare a polythiophene-based polymer dispersion or a polythiophene-based polymer solution as the first treatment liquid. It is also easy to impregnate the pores of the porous portion with the polythiophene-based polymer dispersion (solution).

[0035] A self-doping polythiophene polymer is a conductive polymer that has an anionic group covalently bonded directly or indirectly to the polythiophene backbone of the conductive polymer. The anionic group of the conductive polymer itself functions as a dopant for the conductive polymer, hence the term "self-doping." The anionic group includes, for example, an acidic group (acid type) or its conjugated anionic group (salt type).

[0036] Examples of anionic groups contained in polythiophene-based polymers include sulfonic acid groups, carboxy groups, phosphoric acid groups, phosphonic acid groups, and salts thereof (such as salts with inorganic bases and salts with organic bases). Polythiophene-based polymers may contain one type of anionic group, or two or more types of anionic groups. The anionic group is preferably a sulfonic acid group or a salt thereof, or may be a combination of a sulfonic acid group or a salt thereof with an anionic group other than a sulfonic acid group or a salt thereof. The amount of anionic groups contained in the polythiophene-based polymer is preferably 1 to 3, and more preferably 1 or 2 (particularly 1), per molecule corresponding to the main skeleton of the polythiophene-based polymer.

[0037] The first layer may include a non-self-doped polythiophene-based polymer and a first dopant. The first layer may include a polythiophene-based polymer composite of the polythiophene-based polymer and the first dopant, having a conductivity of 2 S / cm or less. The first dopant may be contained in the first layer in the form of an anion or a salt.

[0038] Examples of non-self-doping polythiophene polymers include conductive polymers that do not have anionic groups (specifically, sulfonic acid groups, carboxyl groups, phosphate groups, phosphonic acid groups, and salts thereof) covalently bonded directly or indirectly to the polythiophene backbone of the conductive polymer.

[0039] The first dopant may be, for example, a dopant capable of forming a polyanion. Examples of the first dopant include polyvinyl sulfonic acid, polystyrene sulfonic acid, polyallyl sulfonic acid, polyacrylic sulfonic acid, and polymethacrylic sulfonic acid.

[0040] The first layer may contain a conductive polymer other than a polythiophene-based polymer, but preferably contains a large amount of polythiophene-based polymer. The proportion of polythiophene-based polymer in the total conductive polymer contained in the first layer is, for example, 90% by mass or more, and may be 100% by mass.

[0041] The first layer may be a single layer or may be composed of multiple layers. When the first layer is composed of multiple layers, the polythiophene-based polymers contained in each layer may be the same or different. The first layer may further contain other components within a range that does not impair the effects of the present invention.

[0042] (2nd layer) The second layer includes a polypyrrole-based polymer, which includes polypyrrole and its derivatives. The weight-average molecular weight of the polypyrrole-based polymer is not particularly limited, but is, for example, 1,000 to 1,000,000.

[0043] The second layer may contain a non-self-doping polypyrrole-based polymer or a second dopant. Examples of non-self-doping polypyrrole-based polymers include conductive polymers that do not have anionic groups (specifically, sulfonic acid groups, carboxyl groups, phosphoric acid groups, phosphonic acid groups, and salts thereof) covalently bonded directly or indirectly to the polypyrrole backbone of the conductive polymer.

[0044] The second dopant may be, for example, a dopant capable of forming an anion. Examples of the second dopant include sulfuric acid, nitric acid, phosphoric acid, boric acid, and organic sulfonic acids. Examples of the organic sulfonic acids include aromatic sulfonic acids. Examples of the aromatic sulfonic acids include benzenesulfonic acid, alkylbenzenesulfonic acid, naphthalenesulfonic acid, and alkylnaphthalenesulfonic acid.

[0045] In the second layer, the second dopant may form a polypyrrole-based polymer complex with the polypyrrole-based polymer. In the second layer, the second dopant may be contained in the form of an anion or a salt.

[0046] The second layer may contain a conductive polymer other than a polypyrrole-based polymer, but preferably contains a large amount of polypyrrole-based polymer. The proportion of polypyrrole-based polymer in the total conductive polymer contained in the second layer is, for example, 90 mass % or more, and may be 100 mass %.

[0047] The second layer may be a single layer or may be composed of multiple layers. When the second layer is composed of multiple layers, the polypyrrole polymers contained in each layer may be the same or different. The second layer may further contain other components within a range that does not impair the effects of the present invention.

[0048] FIG. 1 is a cross-sectional view schematically illustrating the structure of an electrolytic capacitor according to one embodiment of the present invention. FIG. 2 is an enlarged cross-sectional view schematically illustrating region II in FIG. 1. Electrolytic capacitor 1 includes a capacitor element 2, a resin sealing material (exterior body) 3 that seals capacitor element 2, and an anode terminal 4 and a cathode terminal 5, at least a portion of which is exposed to the outside of resin sealing material 3. Anode terminal 4 and cathode terminal 5 may be made of, for example, a metal (such as copper or a copper alloy). Resin sealing material 3 has a substantially rectangular parallelepiped outer shape, and electrolytic capacitor 1 also has a substantially rectangular parallelepiped outer shape. An example of a material that can be used for resin sealing material 3 is epoxy resin.

[0049] Capacitor element 2 includes an anode body 6, a dielectric layer 7 covering anode body 6, and a cathode portion 8 covering dielectric layer 7. Cathode portion 8 includes a solid electrolyte layer 9 covering dielectric layer 7, and a cathode extraction layer 10 covering solid electrolyte layer 9. Cathode extraction layer 10 has a carbon layer 11 and a silver paste layer 12.

[0050] The anode body 6 has a porous portion 6a and includes a region facing the cathode portion 8 and a region not facing the cathode portion 8. The porous portion 6a includes a large number of pores P. The pores P may be sponge-like pits or tunnel-like pits. In the region of the anode body 6 not facing the cathode portion 8, an insulating separation layer 13 is formed adjacent to the cathode portion 8 so as to cover the surface of the anode body 6 in a strip-like shape, thereby restricting contact between the cathode portion 8 and the anode body 6. Another part of the region of the anode body 6 not facing the cathode portion 8 is electrically connected to the anode terminal 4 by welding. The cathode terminal 5 is electrically connected to the cathode portion 8 via an adhesive layer 14 formed of a conductive adhesive.

[0051] Principal surfaces 4S and 5S of anode terminal 4 and cathode terminal 5 are exposed from the same surface of resin sealing material 3. These exposed surfaces are used for soldering to a substrate (not shown) on which electrolytic capacitor 1 is to be mounted.

[0052] Carbon layer 11 may be made of any material as long as it is conductive, such as a conductive carbon material (such as graphite). Silver paste layer 12 may be made of a composition containing silver powder and a binder resin (such as an epoxy resin). The configuration of cathode extraction layer 10 is not limited to this, and may be any material that has a current collecting function.

[0053] The solid electrolyte layer 9 is formed to cover the dielectric layer 7. The dielectric layer 7 is formed along the surface of the anode body 6 (the outer surface S of the porous portion 6a and the inner wall surfaces of the holes P). The surface of the dielectric layer 7 has an uneven shape corresponding to the shape of the surface of the anode body 6. The solid electrolyte layer 9 is preferably formed to fill in these unevennesses of the dielectric layer 7.

[0054] The solid electrolyte layer 9 includes a first layer 9a and a second layer 9b. The first layer 9a is formed to cover the outer surface S of the porous portion 6a and the inner wall surfaces of the holes P via the dielectric layer 7. The second layer 9b is formed to cover the outer surface S of the porous portion 6a via the dielectric layer 7 and the first layer 9a. The second layer 9b is also formed inside the holes P of the porous portion 6a and is formed to cover the inner wall surfaces of the holes P via the dielectric layer 7 and the first layer 9a. The first layer 9a contains a polythiophene-based polymer, and the second layer 9b contains a polypyrrole-based polymer. The conductivity of the first layer 9a is 2 S / cm or less. The first layer 9a and the second layer 9b have thicknesses T1 and T2, respectively.

[0055] The electrolytic capacitor according to this embodiment is not limited to the electrolytic capacitor having the above structure, but can be applied to electrolytic capacitors having various structures. Specifically, the present invention can also be applied to wound electrolytic capacitors and electrolytic capacitors that use a sintered body of metal powder as an anode body. The anode body may be a porous body in which a part of the anode lead is embedded, and the anode terminal and the anode lead may be electrically connected.

[0056] [Manufacturing method of electrolytic capacitors] A method for manufacturing an electrolytic capacitor according to one embodiment of the present invention includes a first step of preparing an anode body having a dielectric layer formed thereon, a second step of forming a first layer on the dielectric layer, and a third step of forming a second layer on the first layer. The first layer contains a polythiophene-based polymer, and the second layer contains a polypyrrole-based polymer. The first layer has a conductivity of 2 S / cm or less. The second and third steps form a solid electrolyte layer including the first and second layers. The method for manufacturing an electrolytic capacitor may also include a step of preparing an anode body prior to the first step. The manufacturing method may further include a step of forming a cathode extraction layer and / or a step of sealing the capacitor element. Each step will be described in more detail below.

[0057] (Step of preparing the anode body) In this step, the anode body is formed by a known method depending on the type of anode body. The anode body can be prepared, for example, by roughening the surface of a foil- or plate-shaped substrate containing a valve metal. Roughening forms a porous portion in the surface layer of the anode body. Surface roughening can be performed by etching the substrate surface (e.g., electrolytic etching) in any manner that can form irregularities on the substrate surface.

[0058] Alternatively, a powder of a valve metal (e.g., tantalum) may be prepared, and one end of a rod-shaped anode lead in the longitudinal direction may be embedded in the powder to obtain a compact having a desired shape (e.g., a block shape).The compact may be sintered to form an anode body having a porous structure in which one end of the anode lead is embedded.

[0059] (1st step) In the first step, a dielectric layer is formed on the anode body. The dielectric layer is formed by anodizing the anode body. The anodization can be performed by a known method, such as chemical conversion treatment. The chemical conversion treatment can be performed, for example, by immersing the anode body in a chemical conversion solution to impregnate the surface of the anode body with the chemical conversion solution, and applying a voltage between the anode body as an anode and a cathode immersed in the chemical conversion solution. As the chemical conversion solution, for example, an aqueous solution of phosphoric acid or the like is preferably used.

[0060] (2nd process) The second step may include a step a of preparing a first treatment liquid and a step b of applying the first treatment liquid to the dielectric layer to form the first layer. In step b, for example, the anode body on which the dielectric layer has been formed may be immersed in the first treatment liquid and then dried to form the first layer. In step b, the first treatment liquid may be applied or dropped onto the anode body on which the dielectric layer has been formed and then dried to form the first layer.

[0061] The first treatment liquid may contain a self-doping polythiophene-based polymer (self-doping type) having a conductivity of 2 S / cm or less. In this case, a dispersion containing fine particles of the polythiophene-based polymer or a solution of the polythiophene-based polymer can be easily prepared as the first treatment liquid, and the dispersion (solution) of the polythiophene-based polymer can be easily impregnated into the pores of the porous portion. The first treatment liquid may also contain a polythiophene-based polymer composite (a composite of a polythiophene-based polymer and a first dopant) having a conductivity of 2 S / cm or less. The polythiophene-based polymer and the first dopant can be those exemplified above. The first treatment liquid may further contain other components.

[0062] The first treatment liquid may be, for example, a dispersion (or solution) of a polythiophene-based polymer or a dispersion (or solution) of a polythiophene-based polymer composite of a polythiophene-based polymer and a first dopant. The first treatment liquid can be obtained, for example, by oxidatively polymerizing a precursor of a polythiophene-based polymer in a dispersion medium (or solvent). Examples of this precursor include a monomer constituting a polythiophene-based polymer and / or an oligomer in which several monomers are linked together. The first treatment liquid containing a polythiophene-based polymer composite can be obtained by oxidatively polymerizing a precursor of a polythiophene-based polymer in a dispersion medium (or solvent) in the presence of a first dopant.

[0063] The conductivity of the first layer can be adjusted, for example, by the polymerization conditions of the polythiophene-based polymer precursor (for example, the type of polythiophene-based polymer precursor, oxidant, or catalyst), the type of first dopant, or the like.

[0064] The dispersion medium (or solvent) of the first treatment liquid may be, for example, water, an organic solvent, or a mixture thereof. Examples of the organic solvent include monohydric alcohols (e.g., methanol, ethanol, propanol), polyhydric alcohols (e.g., ethylene glycol, glycerin), and aprotic polar solvents (e.g., N,N-dimethylformamide, dimethyl sulfoxide, acetonitrile, acetone, benzonitrile).

[0065] To facilitate the impregnation of the pores of the porous portion with the first treatment liquid, the average particle size of the polythiophene-based polymer (or polythiophene-based polymer composite) particles dispersed in the first treatment liquid may be 100 nm or less, or may be 50 nm or less. The lower limit of the average particle size is not particularly limited, but is, for example, 5 nm or more. The average particle size here refers to the median diameter (D50) in a volumetric particle size distribution. The average particle size of the polythiophene-based polymer (or polythiophene-based polymer composite) can be determined, for example, from particle size distribution measured by dynamic light scattering (DLS). Specifically, using an aqueous dispersion of particles (first treatment liquid), the particle size distribution of the particles is measured on a volumetric basis using a dynamic light scattering particle size distribution analyzer (HORIBA, LB-550), and the median diameter (D50) is taken as the average particle size.

[0066] (3rd step) In the third step, a precursor of a polypyrrole-based polymer is electropolymerized on the first layer to form a second layer containing the polypyrrole-based polymer. In the third step, a precursor of a polypyrrole-based polymer (non-self-doped type) may be electropolymerized on the first layer in the presence of a second dopant to form a second layer containing the polypyrrole-based polymer and the second dopant.

[0067] The second layer is formed by electrolytic polymerization using a second treatment liquid. For example, the second layer is formed by immersing the anode element on which the dielectric layer and the first layer are formed in the second treatment liquid and supplying power from a supply electrode using the first layer as an electrode. The second treatment liquid contains, for example, a precursor of a polypyrrole-based polymer, a second dopant, and a dispersion medium (or solvent).

[0068] Because the first layer has low conductivity, a large overvoltage may occur during electropolymerization. This can affect the formation of the second layer. In order to form a high-quality second layer uniformly on the first layer, which has low conductivity, it is desirable to perform electropolymerization by passing a small current through the first layer.

[0069] The polypyrrole polymer and the second dopant may be those exemplified above. Examples of precursors of the polypyrrole polymer include monomers constituting the polypyrrole polymer and / or oligomers in which several monomers are linked together. Examples of the dispersion medium (or solvent) may include those exemplified for the first treatment liquid. The second treatment liquid may further contain other components.

[0070] (Step of forming cathode extraction layer) In this step, a cathode extraction layer is formed by sequentially laminating a carbon layer and a silver paste layer on the second solid electrolyte layer formed in step 3. By forming the cathode extraction layer, a capacitor element can be obtained.

[0071] A conductive adhesive layer is disposed on the surface of the cathode extraction layer, and one end of the cathode terminal is electrically connected to the capacitor element via this adhesive layer. As the cathode terminal, any electrode terminal used in electrolytic capacitors can be used without any particular limitation, and for example, what is called a lead frame may be used.

[0072] (Process for sealing capacitor elements with resin sealing material) The formed capacitor element is sealed with a resin material, for example, along with a portion of each of the anode terminal and the cathode terminal. This sealing forms a resin sealing material. The resin material is preferably a thermosetting resin (such as an epoxy resin) or a resin composition. The resin sealing material includes a cured product of the thermosetting resin or the resin composition.

[0073] [Example] The present invention will be specifically described below based on examples and comparative examples, but the present invention is not limited to the following examples.

[0074] Examples 1 to 5 and Comparative Examples 1 and 2 (Step of forming a dielectric layer on the surface of the anode body) A tantalum sintered body (porous body) with a part of the anode lead embedded was prepared as the anode body. The tantalum sintered body was a rectangular parallelepiped, and the anode lead was embedded in one end face of the rectangular parallelepiped. The anode body was anodized in a phosphoric acid solution to form a dielectric layer containing tantalum oxide (Ta2O5) on the surface of the anode body.

[0075] (Step of forming the first layer) An aqueous dispersion (first treatment liquid) containing a self-doping polythiophene-based polymer having the conductivity shown in Table 1 was prepared as the first conductive polymer (step a). The concentration of the polythiophene-based polymer in the first treatment liquid was 4% by mass. The polythiophene-based polymer particles were so small that they were difficult to measure using the DLS method (particle diameter less than 1 nm). PEDOT with sulfonic acid groups directly bonded to the PEDOT skeleton was used as the self-doping polythiophene-based polymer. The anode element on which the dielectric layer had been formed was immersed in the first treatment liquid and dried to form the first layer (step b).

[0076] (Step of forming the second layer) An aqueous dispersion (second treatment liquid) containing pyrrole and a dopant (sulfonate having a naphthalene skeleton) was prepared. The concentration of pyrrole in the second treatment liquid can be appropriately selected, for example, within the range of 1 to 6 mass %, and the concentration of the dopant in the second treatment liquid can be appropriately selected, for example, within the range of 3 to 12 mass %.

[0077] The anode body on which the dielectric layer and the first layer were formed was immersed in the second treatment liquid, and electrolytic polymerization of pyrrole was carried out using the first layer as an electrode to form a second layer (conductivity 60 S / cm) containing polypyrrole.

[0078] In this way, a solid electrolyte layer composed of a first layer and a second layer was formed. The thickness T1 of the first layer was 5 nm. The thickness T2 of the second layer was 100 nm.

[0079] (Step of forming cathode extraction layer) A dispersion of graphite particles in water was applied to the surface of the solid electrolyte layer, and then dried to form a carbon layer. Next, a silver paste containing silver particles and a binder resin (epoxy resin) was applied to the surface of the carbon layer, and then heated to harden the binder resin, forming a silver paste layer. In this way, a cathode extraction layer composed of a carbon layer and a silver paste layer was formed. In this way, a capacitor element was obtained.

[0080] (Process for sealing the capacitor element) An anode terminal (anode lead frame) was welded to the anode lead, a cathode terminal (cathode lead frame) was connected to the cathode extraction layer with a conductive adhesive, and the capacitor element was sealed with a resin sealant to produce an electrolytic capacitor.

[0081] In the step of forming the first layer, electrolytic capacitors were fabricated by using self-doping polythiophene-based polymers with different conductivities as the first conductive polymer contained in the first treatment liquid, and varying the conductivities of the first layer to the values ​​shown in Table 1. In Table 1, A1 to A5 represent the electrolytic capacitors of Examples 1 to 5. B1 and B2 represent the electrolytic capacitors of Comparative Examples 1 and 2.

[0082] Comparative Example 3 In the step of forming the first layer, a first treatment solution containing a self-doping polyaniline-based polymer (conductivity 0.1 S / cm) as the first conductive polymer was used, and the anode element on which the dielectric layer had been formed was immersed in the first treatment solution and dried to form the first layer containing the polyaniline-based polymer. The self-doping polyaniline-based polymer used was polyaniline having sulfonic acid groups directly bonded to the polyaniline skeleton. Electrolytic capacitor B3 of Comparative Example 3 was fabricated in the same manner as in Example 1, except for the above.

[0083] [evaluation] The electrolytic capacitors of the examples and comparative examples prepared above were measured for initial ESR (mΩ) at a frequency of 100 kHz using a four-terminal LCR meter at 20°C. The capacitance (μF) was also measured at a frequency of 120 Hz. Furthermore, the current flowing through the electrolytic capacitor after holding it at the rated voltage for 40 seconds was measured, and this current value was calculated as the leakage current. The evaluation results are shown in Table 1.

[0084] In Table 1, the ESR values ​​are shown as relative values, with the ESR value of electrolytic capacitor A5 being 100. In Table 1, the capacity is taken to be 100%, and capacitances that are 90% or more of the capacity of electrolytic capacitor A5 are indicated with a circle, and capacitances that are less than 90% of the capacity of electrolytic capacitor A5 are indicated with an ×. In Table 1, leakage currents of 100 μA or less are indicated with a circle, and capacitances that are greater than 100 μA are indicated with an ×.

[0085] [Table 1]

[0086] Electrolytic capacitors A1 to A5, in which the conductivity of the first layer containing a polythiophene-based polymer is 2 S / cm or less, exhibited lower ESR and lower leakage current than electrolytic capacitors B1 to B3. Electrolytic capacitors A2 to A5, in which the conductivity of the first layer containing a polythiophene-based polymer is 0.1 S / cm or more and 2 S / cm or less, exhibited low ESR and high capacitance.

[0087] In electrolytic capacitors B1 and B2, where the conductivity of the first layer containing a polythiophene-based polymer is greater than 2 S / cm, the ESR and leakage current increased. This is thought to be due to the fact that the conductivity of the first layer is greater than 2 S / cm, making it difficult for the first layer to become insulating. In electrolytic capacitor B3, the conductivity of the first layer was 2 S / cm or less, but the ESR increased because a polyaniline-based polymer film was formed as the first layer. [Industrial Applicability]

[0088] The electrolytic capacitor according to the present invention is suitable for use in applications requiring low ESR.

[0089] While the present invention has been described in terms of presently preferred embodiments, such disclosure is not to be interpreted as limiting. Various changes and modifications will no doubt become apparent to those skilled in the art to which the present invention pertains upon reading the above disclosure. It is therefore intended that the appended claims be interpreted to cover all changes and modifications that do not depart from the true spirit and scope of the invention. [Explanation of symbols]

[0090] 1: electrolytic capacitor, 2: capacitor element, 3: resin sealing material, 4: anode terminal, 4S: main surface of anode terminal, 5: cathode terminal, 5S: main surface of cathode terminal, 6: anode body, 7: dielectric layer, 8: cathode part, 9: solid electrolyte layer, 9a: first layer, 9b: second layer, 10: cathode lead layer, 11: carbon layer, 12: silver paste layer, 13: separation layer, 14: adhesive layer

Claims

1. an anode body; a dielectric layer covering the anode body; a first solid electrolyte layer covering the dielectric layer; and a second solid electrolyte layer covering the first solid electrolyte layer, the first solid electrolyte layer includes a first conductive polymer having a self-doped polythiophene as a basic skeleton, the second solid electrolyte layer includes a second conductive polymer having a non-self-doped polypyrrole skeleton; the first solid electrolyte layer does not contain the second conductive polymer or contains the first conductive polymer in a larger amount than the second conductive polymer; the second solid electrolyte layer does not contain the first conductive polymer or contains the second conductive polymer in a larger amount than the first conductive polymer; the thickness of the first solid electrolyte layer is smaller than the thickness of the second solid electrolyte layer; the conductivity of the first solid electrolyte layer is lower than the conductivity of the second solid electrolyte layer; the thickness of the first solid electrolyte layer is 10 nm or less; The electrolytic capacitor, wherein the conductivity of the first solid electrolyte layer is 2 S / cm or less.

2. an anode body; a dielectric layer covering the anode body; a first solid electrolyte layer covering the dielectric layer; and a second solid electrolyte layer covering the first solid electrolyte layer, the first solid electrolyte layer contains, as a main component, a first conductive polymer having a self-doping polythiophene as a basic skeleton (excluding cases where the content of the first conductive polymer in the first solid electrolyte layer is less than 90 mass %); the second solid electrolyte layer contains, as a main component, a second conductive polymer having a non-self-doping polypyrrole as a basic skeleton (excluding the case where the content of the second conductive polymer in the second solid electrolyte layer is less than 90 mass %); the first solid electrolyte layer does not contain the second conductive polymer or contains the first conductive polymer in a larger amount than the second conductive polymer; the second solid electrolyte layer does not contain the first conductive polymer or contains the second conductive polymer in a larger amount than the first conductive polymer; the thickness of the first solid electrolyte layer is smaller than the thickness of the second solid electrolyte layer; the conductivity of the first conductive polymer is lower than the conductivity of the second conductive polymer; the thickness of the first solid electrolyte layer is 10 nm or less; An electrolytic capacitor, wherein the conductivity of the first conductive polymer is 2 S / cm or less.

3. a first step of preparing an anode body having a dielectric layer formed thereon; a second step of forming a first solid electrolyte layer on the dielectric layer, the first solid electrolyte layer including a first conductive polymer having a self-doped polythiophene as a basic skeleton; a third step of forming a second solid electrolyte layer on the first solid electrolyte layer, the second solid electrolyte layer including a second conductive polymer having a non-self-doped polypyrrole skeleton; In the second step, the first solid electrolyte layer is formed by a deposition method using a solution or dispersion containing the first conductive polymer; In the third step, the second solid electrolyte layer is formed by electrolytic polymerization using a solution or dispersion containing a precursor monomer or oligomer of the second conductive polymer and a dopant material; the thickness of the first solid electrolyte layer is smaller than the thickness of the second solid electrolyte layer; the conductivity of the first solid electrolyte layer is lower than the conductivity of the second solid electrolyte layer; the thickness of the first solid electrolyte layer is 10 nm or less; The method for manufacturing an electrolytic capacitor, wherein the conductivity of the first solid electrolyte layer is 2 S / cm or less.

4. a first step of preparing an anode body having a dielectric layer formed thereon; a second step of forming the first solid electrolyte layer on the dielectric layer, the first solid electrolyte layer containing, as a main component, a first conductive polymer having a self-doped polythiophene as a basic skeleton (excluding the case where the content of the first conductive polymer in the first solid electrolyte layer is less than 90 mass %); a third step of forming, on the first solid electrolyte layer, the second solid electrolyte layer containing, as a main component, a second conductive polymer having a non-self-doping polypyrrole as a basic skeleton (excluding the case where the content of the second conductive polymer in the second solid electrolyte layer is less than 90 mass %), In the second step, the first solid electrolyte layer is formed by a deposition method using a solution or dispersion containing the first conductive polymer; In the third step, the second solid electrolyte layer is formed by electrolytic polymerization using a solution or dispersion containing a precursor monomer or oligomer of the second conductive polymer and a dopant material; the thickness of the first solid electrolyte layer is smaller than the thickness of the second solid electrolyte layer; the conductivity of the first conductive polymer is lower than the conductivity of the second conductive polymer; the thickness of the first solid electrolyte layer is 10 nm or less; The method for manufacturing an electrolytic capacitor, wherein the conductivity of the first conductive polymer is 2 S / cm or less.

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