Method for producing layer composition

Flavonoids like gallic acid stabilize conductive polymer layers, addressing thermal instability issues in polythiophene-based coatings, enhancing capacitor performance by maintaining capacitance and reducing resistance under high temperatures.

JP7740846B2Active Publication Date: 2025-09-17HERAEUS EPURIO GMBH
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Patent Information

Application Number
JP2023522383
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-11-06
Filing Date
2021-10-27
Publication Date
2025-09-17
Estimated Expiration
2041-10-27

AI Technical Summary

Technical Problem

Conductive polymer coatings, particularly those based on polythiophene dispersions, suffer from insufficient thermal stability and instability when used in high-temperature applications, and existing stabilizers interfere with oxidative polymerization or destabilize the dispersions.

Method used

The use of flavonoids, such as gallic acid, as a stabilizer applied as a layer on conductive polymer layers, particularly polythiophene-based layers, to enhance thermal stability and improve the performance of capacitors under high temperature and humidity conditions.

Benefits of technology

The flavonoid stabilizer significantly improves the thermal stability of conductive polymer layers, maintaining capacitance, reducing equivalent series resistance (ESR) and loss factor, and minimizing surface resistance increases during heat exposure.

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Abstract

The present invention relates to a method for producing a layer composition (9), comprising the steps of: a) providing a substrate (10) having a substrate surface (11); b) forming a stabilized conductive polymer layer (12) on at least a portion of the substrate surface (11), the method step of forming the stabilized conductive polymer layer (12) comprising: b1) forming a conductive polymer layer (13) on at least a portion of a substrate surface (11) comprising a conductive polymer; b2) applying a liquid stabilizer phase comprising at least one stabilizer (7) and at least one solvent or dispersant onto the conductive polymer layer (13) obtained in method step b1) to form a stabilizer layer (14), wherein the at least one stabilizer (7) is a flavonoid. The present invention also relates to layer compositions and uses of the layer compositions.
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Description

[Technical Field]

[0001] The present invention relates generally to methods for making layer compositions, for example by treating a conductive polymer with a stabilizer, layer compositions, and uses of such layer compositions.

[0002] Conductive polymers from the classes of polypyrrole, polyaniline, and polythiophene are known from the literature. In particular, poly(3,4-alkylenedioxythiophene) dispersions have recently gained technological importance, since they can be used, for example, to produce conductive or antistatic coatings (see, for example, EP 440957 A1). However, in practice, it has been found that the conductivity of coatings from such dispersions is not always sufficiently stable for practical use at higher temperatures.

[0003] EP 1 798 259 A1 and WO 2008 / 055834 A1 describe that the thermal stability of the conductivity of coatings containing polythiophene dispersions can be increased by adding, for example, derivatives of gallic acid (3,4,5-trihydroxybenzoic acid). Nevertheless, the addition of these stabilizers often destabilizes the dispersions used. Furthermore, these stabilizers cannot be added to reactive mixtures of monomers and oxidizing agents for the production of conductive coatings, since they interfere with oxidative polymerization, for example, by forming complexes with the oxidizing agent.

[0004] Thus, there is a continuing need for methods for producing conductive layers from, and layer compositions containing, conductive polymers that have improved temperature stability.

[0005] One of the main areas of use for conductive layer compositions comprising conductive polymers is in solid electrolytic capacitors.

[0006] Commercially available electrolytic capacitors are typically constructed from a porous metal electrode, an oxide layer on the metal surface, an external electrode (contact) made of a typically solid conductive material, such as a silver layer, introduced into the porous structure, and additional electrical contacts and a capsule. One frequently used electrolytic capacitor is the tantalum electrolytic capacitor, in which the anode electrode is made of the valve metal tantalum, on which a uniform dielectric layer of tantalum pentoxide is formed by anodization (also known as "formation"). A liquid or solid electrolyte forms the cathode of the capacitor. Aluminum capacitors are more frequently used, in which the anode electrode is made of the valve metal aluminum, on which a uniform, electrically insulating aluminum oxide layer is formed as a dielectric by anodization. Again, a liquid or solid electrolyte forms the cathode of the capacitor. Aluminum capacitors are typically constructed as wound or stacked capacitors.

[0007] Due to their high electrical conductivity, π-conjugated polymers are particularly suitable as solid electrolytes in the aforementioned capacitors. π-conjugated polymers are also called conductive polymers or synthetic metals. Polymers are becoming increasingly economically important because they offer advantages over metals in terms of processability, weight, and targeted adjustment of properties through chemical modification. Examples of known π-conjugated polymers are polypyrrole, polythiophene, polyaniline, polyacetylene, polyphenylene, and poly(p-phenylene-vinylene). A particularly important polythiophene used technically is poly(3,4-ethylenedioxythiophene) (PEDOT), which has a very high electrical conductivity in its oxidized form.

[0008] A solid electrolyte based on a conductive polymer can be applied to an oxide layer in various ways and formats. For example, European Patent Application Publication No. 0340512 (A1) describes the preparation of a solid electrolyte from 3,4-ethylenedioxythiophene and its use in electrolytic capacitors. According to the teachings of this publication, 3,4-ethylenedioxythiophene is polymerized in situ on the oxide layer.

[0009] On the other hand, German Patent Application Publication No. 102005043828 (A) describes a method for producing a solid electrolyte in a capacitor, in which a dispersion containing already polymerized thiophene, such as a PEDOT / PSS dispersion known from the prior art, is applied to an oxide layer, and then the dispersion medium is removed by evaporation. In this context, International Publication No. 2012 / 041507 (A1) discloses a method for producing a layer composition in which a stabilizer layer is applied to a conductive polymer layer, preferably based on PEDOT / PSS, and the stabilizer is an aromatic compound having at least two OH groups. The preferred stabilizer used in International Publication No. 2012 / 041507 (A1) is tannin.

[0010] In general, it was an object of the present invention to obviate or at least mitigate the disadvantages arising from the prior art.

[0011] It was a further object of the present invention to provide layer compositions, such as antistatic layer compositions, which can be easily produced and which exhibit good properties in capacitors and other applications. Furthermore, methods for producing these layer compositions are to be provided which can be easily used commercially, especially in the above-mentioned applications.

[0012] A further object was to improve the thermal stability of such layer compositions, preferably under conditions of high temperature and humidity, especially as polymer solid electrolytic capacitors.

[0013] It was further an object of the present invention to provide layer compositions which, in particular as capacitors, exhibit advantageous properties such as a capacitance which remains as constant as possible during exposure to heat or moist heat, an equivalent series resistance (ESR) which increases as little as possible, and a loss factor which also increases only slightly. In the case of layers, the lowest possible increase in surface resistance should be achieved during treatment with heat or moist heat.

[0014] Contribution to achieving at least one of the above objectives: a) providing a substrate having a substrate surface; b) forming a stabilized conductive polymer layer on at least a portion of the substrate surface, the method step of forming the stabilized conductive polymer layer comprising: b1) forming a conductive polymer layer on at least a portion of a substrate surface, the conductive polymer layer comprising a conductive polymer; b2) applying a liquid stabilizer phase comprising at least one stabilizer and at least one solvent or dispersant onto the conductive polymer layer obtained in method step b1) to form a stabilizer layer, wherein the at least one stabilizer is a flavonoid.

[0015] Quite surprisingly, it has been found that the use of a stabilizer selected from the group consisting of flavonoids, gallic acid, or mixtures thereof, in particular in capacitors, in the form of a stabilizer layer applied onto a conductive polymer layer, significantly improves the thermal stability of the layer or the capacitor.

[0016] Conductive layers are understood here to mean, inter alia, layers which already have a low conductivity and are often also called antistatic layers. Generally, the conductive nature of layers means that they preferably have a conductivity in the range of 1 μS / cm to 10,000 S / cm.

[0017] First, in method step a) of the method according to the invention, a substrate is provided. The substrate can be made of, for example, paper, polymer, glass, or ceramic. For optical applications, the substrate is preferably transparent or light-transmitting. Transparent substrates can be made of glass, very thin glass (flexible glass), or plastic. Particularly suitable plastics are polycarbonate, polyester, such as PET and PEN (polyethylene terephthalate or polyethylene-naphthalenedicarboxylate), copolycarbonate, polysulfone, polyethersulfone (PES), polyimide, polyethylene, polypropylene, or cyclic polyolefins or cyclic olefin copolymers (COC), hydrogenated styrene polymers or hydrogenated styrene copolymers. Rigid or flexible substrates can be used.

[0018] In certain embodiments, such as for use in capacitors, the substrate preferably comprises an electrode body of an electrode material, the surface of which is at least partially covered by a dielectric. In this case, the electrode body covered with the dielectric is called an anode body. The anode body may also have further layers in addition to the electrode and the dielectric. The surface of the anode body, often the dielectric, which may optionally also have further layers, is the substrate surface in the context of the present invention.

[0019] In principle, the electrode body can be produced by pressing a high-surface-area valve metal powder and sintering it to obtain a largely porous electrode body. Preferably, an electrical contact wire, such as a valve metal such as tantalum, is also conventionally pressed into the electrode body. The electrode body is then coated with a dielectric, i.e., oxide layer, for example, by electrochemical oxidation. Alternatively, a metal foil can be etched and coated with a dielectric by electrochemical oxidation to obtain an anode foil with a porous region. In a wound capacitor, the anode and cathode foils with porous regions that form the electrode body are separated by a separator and wound together.

[0020] In the context of the present invention, valve metals should be understood to mean metals whose oxide layers do not allow current to flow equally in both directions. When a voltage is applied to the anode, the oxide layer of the valve metal blocks the flow of current, while when a voltage is applied to the cathode, a large amount of current is generated, which may destroy the oxide layer. Valve metals include Be, Mg, Al, Ge, Si, Sn, Sb, Bi, Ti, Zr, Hf, V, Nb, Ta, and W, as well as alloys or compounds of at least one of these metals with other elements. The most well-known representatives of valve metals are Al, Ta, and Nb. Compounds with electrical properties equivalent to valve metals have metallic conductivity and can be oxidized, resulting in an oxide layer with the above-mentioned properties. For example, NbO has metallic conductivity but is not generally considered a valve metal. However, a layer of oxidized NbO has the typical properties of a valve metal oxide layer, and as a result, NbO or alloys or compounds of NbO with other elements are typical examples of such compounds with electrical properties equivalent to valve metals. Tantalum, aluminum electrode materials and electrode materials based on niobium or niobium oxide are preferred, with tantalum being particularly preferred as the electrode material.

[0021] To fabricate an electrode body, which often has porous regions, the valve metal can be sintered, for example, in powder form to provide a substantially porous electrode body, or the porous structure can be imprinted onto the metal body, the latter being done, for example, by etching a foil.

[0022] For simplicity, a body having a porous region will also be referred to as porous hereinafter. Thus, for example, an electrode body having a porous region will also be referred to as a porous electrode body. On the other hand, a porous body may have multiple channels running throughout it and thus be sponge-like. This is often the case when tantalum is used to construct capacitors. Furthermore, it is possible for only the surface to have pores, with the region below the surface pores being a solid structure. This situation is often observed when aluminum is used to construct capacitors.

[0023] The thus produced, often porous electrode body is then oxidized in a suitable electrolyte, such as aqueous phosphoric acid or ammonium adipate, by applying a voltage to form a dielectric. The level of this formation voltage depends on the thickness of the oxide layer to be achieved and the subsequent operating voltage of the capacitor. Preferred formation voltages are in the range of 1 to 1000 V, particularly preferably in the range of 5 to 200 V, more particularly preferably in the range of 10 to 100 V, and most preferably in the range of 20 to 70 V.

[0024] The porous electrode bodies used as a rule preferably have a porosity of 10 to 90%, preferably 30 to 80%, particularly preferably 50 to 80% and an average pore diameter of 10 to 10000 nm, preferably 50 to 5000 nm, particularly preferably 100 to 3000 nm.

[0025] When the layer composition according to the present invention is an aluminum wound capacitor or part thereof, an anode body is provided as a substrate as follows: in process step a), a porous aluminum foil is anodized as an electrode material, thereby forming an aluminum oxide coating as a dielectric. The aluminum foil (anode foil) thus obtained is then provided with contact lines and wound with another aluminum foil (cathode foil) also provided with contact lines, and these two foils are separated from each other by one or more separator papers, for example, based on cellulose or preferably synthetic paper. After winding, the anode body thus obtained is fixed, for example, with adhesive tape. The separator paper(s) can be carbonized by heating in an oven. The method and manner of producing an anode body for an aluminum wound capacitor are well known in the prior art and are described, for example, in U.S. Pat. No. 7,497,879 (B2).

[0026] In method step b) of the method according to the invention, a stabilized conductive polymer layer comprising a conductive polymer is then formed on at least a part of the substrate surface, the method step of forming the stabilized conductive polymer layer comprising: b1) forming a conductive polymer layer on at least a portion of a substrate surface, the conductive polymer layer comprising a conductive polymer; b2) applying a liquid stabilizer phase comprising at least one stabilizer and at least one solvent or dispersant onto the conductive polymer layer obtained in process step b1) to form a stabilizer layer, wherein the at least one stabilizer is gallic acid, a flavonoid, or a mixture thereof.

[0027] To form a conductive polymer layer comprising a conductive polymer in method step b1), a solution or dispersion of a precursor of the conductive polymer (hereinafter referred to as precursor), a solution of the conductive polymer, or a dispersion containing particles of the conductive polymer (preferably together with a dispersing medium) is applied to the substrate. If an anode body is used as the substrate, the precursor, solution, or dispersion is introduced into the porous region of the anode body. Generally, a dispersion containing particles of the conductive polymer can be used. However, according to a specific embodiment of the method according to the invention, in method step b), a stabilized conductive layer comprising the conductive polymer is formed in situ on at least a portion of the substrate surface.

[0028] The solution or dispersion is applied to the substrate surface by known methods, such as immersion, dipping, pouring, dripping, spraying, atomizing, knife coating, brushing, or printing, e.g., inkjet, screen, or tampon printing. In the case of an anode body, application is preferably carried out by dipping the anode body prepared in method step a) into the solution or dispersion, thereby impregnating it with the solution or dispersion. Dipping or impregnation is preferably carried out for a period ranging from 1 second to 120 minutes, particularly preferably from 10 seconds to 60 minutes, and most preferably from 30 seconds to 15 minutes. Introduction of the solution or dispersion into the anode body can be facilitated, for example, by increasing or decreasing pressure, vibration, ultrasound, or heat. These conditions are also preferred for other layer compositions.

[0029] The solution or dispersion containing conductive polymer or precursor preferably has a stabilizer content of less than 0.2 wt.%, particularly preferably less than 0.1 wt.%, and very particularly preferably less than 0.01 wt.%, based on the total weight of the solution or dispersion.The solution or dispersion very preferably does not contain stabilizer.The stabilizer in the solution or dispersion easily leads to an undesirable decrease in the storage stability of the solution or dispersion containing conductive polymer or precursor of conductive polymer.

[0030] The application of the precursor, solution or dispersion can be carried out directly onto the substrate or with the aid of an adhesion promoter, a silane such as an organofunctional silane or its hydrolysate, e.g., 3-glycidoxypropyltrialkoxysilane, 3-aminopropyltriethoxysilane, 3-mercaptopropyltrimethoxysilane, 3-methacryloxypropyltrimethoxysilane, vinyltrimethoxysilane, or octyltriethoxysilane, and / or one or more other functional layers.

[0031] When an anode body is used as the substrate, it is preferred that, as a result of application, the solution or dispersion covers very little of the pores of the porous region. Rather, the surfaces of the pore cavities are at least partially coated with the dispersion. Thus, not only do the particles present in the dispersion form a layer covering the openings of the pores, but at least part of the surface of the pores, and often the entire area, is also covered with a layer of particles of the dispersion, which are then introduced into the anode body.

[0032] For example, corresponding monomers are understood as precursors for preparing conductive polymers.Mixtures of various precursors can also be used.Suitable monomer precursors are, for example, optionally substituted thiophene, pyrrole or aniline, preferably optionally substituted thiophene, particularly preferably optionally substituted 3,4-alkylenedioxythiophene.

[0033] The term "polymer", as used in the context of the present invention, includes all compounds having two or more identical or different repeating units.

[0034] In this specification, in particular, "conductive polymer" is understood to mean a class of compounds of π-conjugated polymers that have electrical conductivity after oxidation or reduction. Preferably, the conductive polymer has an electrical conductivity of at least 0.1 S cm after oxidation. -1 is understood to mean a π-conjugated polymer having a conductivity of the order of magnitude of .

[0035] The conductive polymer preferably comprises at least one polythiophene, polypyrrole, or polyaniline, which may be optionally substituted. Particularly preferably, the conductive polymer comprises at least one polythiophene. Preferred polythiophenes are those having repeating units of general formula (I), general formula (II), general formula (III), or polythiophenes comprising a combination of these repeating units:

[0036] [ka] During the ceremony, A is an optionally substituted C1-C5-alkylene group, R is independently H, straight or branched chain optionally substituted C1-C 18 -Alkyl group, optionally substituted C5-C 12 -cycloalkyl groups, optionally substituted C6-C 14 -aryl group, optionally substituted C7-C 18 - an aralkyl group, an optionally substituted C1-C4-hydroxyalkyl group or a hydroxyl group, x is an integer from 0 to 8, When multiple R groups are attached to A, they may be the same or different.

[0037] General formulas (I) and (II) should be understood such that x substituents R can be attached to the alkylene group A.

[0038] Particularly preferred are polythiophenes having repeating units of the general formula (I) or (II) or repeating units of the general formulae (I) and (II), where A is an optionally substituted C2-C3-alkylene group and x is 0 or 1. Very particularly preferred polythiophenes are optionally substituted poly(3,4-ethylenedioxythiophene) (PEDOT), such as in poly(4-[(2,3-dihydrothieno[3,4-b]-[1,4]dioxin-2-yl)methoxy]propane-1-sulfonic acid), poly(4-[(2,3-dihydrothieno[3,4-b][1,4]dioxin-2-yl)methoxy]butane-1-sulfonic acid) (PEDOT-S), or poly(4-[(2,3-dihydrothieno[3,4-b][1,4]dioxin-2-yl)methoxy]butane-2-sulfonic acid).

[0039] In the context of the present invention, the prefix "poly" should be understood to mean that two or more identical or different repeating units are present in a polymer or polythiophene. A polythiophene comprises a total of n repeating units of general formula (I) or general formula (II) or general formula (III), or general formulas (I) and (II), or general formulas (I) and (III), or general formulas (II) and (III), or general formulas (I), (II), and (III), where n is an integer from 2 to 2000, preferably from 2 to 100. The repeating units of general formula (I) or general formula (II) or general formula (III), or the repeating units of general formulas (I) and (II), or the repeating units of general formulas (I) and (III), or the repeating units of general formulas (II) and (III), or the repeating units of general formulas (I), (II), and (III), respectively, may be the same or different within a polythiophene. In each case, polythiophenes having the same repeating units of general formula (I) or general formula (II) or general formula (III), or in each case, having the same repeating units of general formulas (I) and (II) or general formulas (I) and (III) or general formulas (II) and (III), or in each case, having the same repeating units of general formulas (I), (II), and (III) are preferred. Polythiophenes having the same repeating units of general formula (I) or general formula (II), or in each case, having the same repeating units of general formulas (I) and (II), are particularly preferred. In the end groups, the polythiophenes preferably each have H.

[0040] In the context of the present invention, the C1-C5-alkylene group A is preferably methylene, ethylene, n-propylene, n-butylene or n-pentylene. 18-Alkyl R is preferably a linear or branched C1-C alkyl such as methyl, ethyl, n- or isopropyl, n-, iso-, sec- or tert-butyl, n-pentyl, 1-methylbutyl, 2-methylbutyl, 3-methylbutyl, 1-ethylpropyl, 1,1-dimethylpropyl, 1,2-dimethylpropyl, 2,2-dimethylpropyl, n-hexyl, n-heptyl, n-octyl, 2-ethylhexyl, n-nonyl, n-decyl, n-undecyl, n-decyl, n-tridecyl, n-tetradecyl, n-hexadecyl or n-octadecyl. 18 -Alkyl group, C5-C 12 The cycloalkyl group R is, for example, cyclopentyl, cyclohexyl, cycloheptyl, cyclooctyl, cyclononyl, or cyclodecyl, and is C5-C 14 the aryl group R is, for example, phenyl or naphthyl, and 18 - an aralkyl group R is, for example, benzyl, o-, m-, p-tolyl, 2,3-, 2,4-, 2,5-, 2,6-, 3,4-, 3,5-xylyl or mesityl. The above list serves to illustrate the invention by way of example and should not be considered as exclusive.

[0041] In the context of the present invention, optional further substituents of the A and / or R groups include a large number of organic groups, such as alkyl, cycloalkyl, aryl, aralkyl, alkoxy, halogen, ether, thioether, disulfide, sulfoxide, sulfone, sulfonate, amino, aldehyde, keto, carboxylic acid ester, carboxylic acid, carbonate, carboxylate, cyano, alkylsilane and alkoxysilane groups, and carboxamide groups.

[0042] Polythiophenes can be uncharged or cationic. In preferred embodiments, they are cationic, with "cationic" referring only to the charge present on the main polythiophene chain. Depending on the substituents on the R group, the polythiophene can have positive and negative charges within the structural unit, with the positive charge being on the main polythiophene chain and the negative charge being on the R group, if present, substituted by a sulfonate or carboxylate group. The positive charge on the main polythiophene chain can be partially or completely saturated by anionic groups that may be present on the R group. Overall, the polythiophene in these cases may be cationic, uncharged, or anionic. Nevertheless, in the context of the present invention, since the positive charge on the main polythiophene chain is important, all are considered to be cationic polythiophenes. The positive charges are not shown in the formula because the exact number and location cannot be stated clearly. However, the number of positive charges is at least 1 and at most n, where n is the total number of all repeating units (identical or different) within the polythiophene.

[0043] The positive charge of polythiophenes can be balanced by sulfonate- or carboxylate-substituted, and therefore negatively charged, R groups (so-called "self-doped polythiophenes") or by counterions (so-called "foreign-doped polythiophenes").

[0044] According to a first preferred embodiment of the polythiophene which can be used in method step b1) for the formation of a conductive polymer layer, preferably for the formation of a solid electrolyte layer in a capacitor, the polythiophene is a self-doped polythiophene which preferably comprises recurring units of formula (IV) to an extent of at least 50%, even more preferably to an extent of at least 75%, even more preferably to an extent of at least 95% and most preferably to an extent of 100%.

[0045] [ka] During the ceremony, X and Y are the same or different and are O, S, NR 1 indicates, Z is at least an anionic substituent, preferably -SO3 - M + represents an organic residue having a group, + Li + , Na + , K. + , or NH 4+ Z is preferably a cation such as -(CH2) m -CR 2 R 3 -(CH2) n- indicates, R 1 is aryl, C1-C 18 - alkyl or hydrogen, R 2 is hydrogen, -(CH2) s -O-(CR 4 2) p -SO3-M+ or -(CH2) p -SO3 - M + indicates, R 3 is -(CH2) S- O-(CR 4 2) p -SO3-M + or -(CH2) p -SO3 - M + indicates, M + indicates a cation, m and n are the same or different and represent an integer of 0 to 3, R 4 is hydrogen or C1-C 10 represents an alkyl group, preferably a methyl group, s represents an integer from 0 to 10, p represents an integer of 1 to 18;

[0046] The above percentage values ​​are in this context intended to represent the numerical content of units of structural formula (IV) in the total number of monomer units in the self-doped conductive polymer.

[0047] Suitable cations M + For example, H + , Li + , Na + , K. + , Rb + , Cs + , and NH4 + A particularly preferred cation is Na + and K. + is.

[0048] Particularly preferred monomers of formula (IV) are as follows: X and Y represent O, Z is -(CH) m -CR2R3-(CH2) n - indicates R2 is hydrogen, -(CH2) s -O-(CH2) p -SO3 - M + , -(CH2) p -SO3 - M + , or -(CH2) s -O-(CH2) p -CHR4-SO3 - M + indicates, R3 is -(CH2) s -O-(CH2) p -SO3 - M + , -(CH2) p -SO3 - M + , or -(CH2) s -O-(CH2) p CHR4-SO3 - M + indicates, M + indicates a cation, m and n are the same or different and represent an integer of 0 to 3, R4 represents hydrogen, a methyl group, or an ethyl group; s represents an integer from 0 to 10, p represents an integer of 1 to 18;

[0049] Very particularly preferred monomers of formula (IV) are: X and Y represent O, Z is -(CH2)-CR2R3-(CH2) n - indicates R2 represents hydrogen; R3 is -(CH2) s -O-(CH2) p -SO3 - M + , -(CH2) p -SO3 - M+ or -(CH2) s -O-(CH2) p -CH(CH3)-SO3 - M + , or -(CH2) s -O-(CH2) p -CH(CH2CH3)-SO3 - M + indicates, M + Na + or K + indicates, n represents 0 or 1; s represents 0 or 1, p represents 2, 3, 4, or 5.

[0050] Suitable examples of self-doping polymers are disclosed in WO 2014 / 048562 (A) and U.S. Patent Application Publication No. 2015 / 0337061 (A). Specific examples of very particularly preferred self-doping conductive polymers include poly(4-[(2,3-dihydrothieno[3,4-b]-[1,4]dioxin-2-yl)methoxy]propane-1-sulfonic acid), poly(4-[(2,3-dihydrothieno[3,4-b][1,4]dioxin-2-yl)methoxy]butane-1-sulfonic acid) (PEDOT-S), poly(4-[(2,3-dihydrothieno[3,4-b][1,4]dioxin-2-yl)methoxy]butane-2-sulfonic acid), or mixtures thereof.

[0051] According to a second preferred embodiment of the polythiophene which can be used in method step b1) for the formation of a conductive polymer layer, preferably for the formation of a solid electrolyte layer in a capacitor, the polythiophene is a heterogeneously doped polythiophene which preferably comprises a monomeric or polymeric counterion for balancing the positive charge, the latter also being referred to hereinafter as polyanion.

[0052] When a solution or dispersion containing a conductive polymer is used to form a conductive polymer layer, polymeric anions are preferred over monomeric anions because they contribute to film formation and, due to their size, result in thermally more stable conductive films. The polymeric anions herein may be, for example, anions of polymeric carboxylic acids such as polyacrylic acid, polymethacrylic acid, or polymaleic acid, or polymeric sulfonic acids such as polystyrene sulfonic acid and polyvinyl sulfonic acid. These polycarboxylic and sulfonic acids may also be copolymers of vinyl carboxylic and vinyl sulfonic acids with other polymerizable monomers such as acrylic esters and styrene.

[0053] Preferred polymeric anions in the conjugated polymer b) are the anions of polymeric carboxylic or sulfonic acids. Particularly preferred polymeric anions are the anions of polystyrene sulfonic acid (PSS) or its derivatives.

[0054] The molecular weight of the polyacid that provides the polyanion is preferably 1,000 to 2,000,000, more preferably 2,000 to 500,000. Polyacids or alkali metal salts thereof, such as polystyrene sulfonic acid and polyacrylic acid, are commercially available or can be prepared by known methods (see, for example, Houben Weyl, Methoden der organischen Chemie [Methods of Organic Chemistry], vol. E 20 Makromolekulare Stoffe [Macromolecular Substances], part 2, (1987), p. 1141ff.).

[0055] The polymeric anion(s) and the conductive polymer may be present in dispersion a) in particular in a weight ratio of 0.5:1 to 50:1, preferably 1:1 to 30:1, more preferably 1.5:1 to 10:1, where the weight of the conductive polymer corresponds to the initial weight of the monomers used, assuming complete conversion in the polymerization.

[0056] The monomer anions used are, for example, C1 to C 20 -alkanesulfonic acids, such as methanesulfonic acid, ethanesulfonic acid, propanesulfonic acid, butanesulfonic acid, or higher sulfonic acids, such as dodecanesulfonic acid; aliphatic perfluorosulfonic acids, such as trifluoromethanesulfonic acid, perfluorobutanesulfonic acid, or perfluorooctanesulfonic acid; aliphatic C1-C 20 -carboxylic acids, such as 2-ethylhexylcarboxylic acid, aliphatic perfluorocarboxylic acids, such as trifluoroacetic acid or perfluorooctanoic acid, and C1-C 20 -Aromatic sulfonic acids, optionally substituted with alkyl groups, such as benzenesulfonic acid, o-toluenesulfonic acid, p-toluenesulfonic acid, or dodecylbenzenesulfonic acid, and cycloalkanesulfonic acids, such as camphorsulfonic acid, or tetrafluoroborate, hexafluorophosphate, perchlorate, hexafluoroantimonate, hexafluoroarsenate, or hexachloroantimonate. Preferred monomer anions are the anions of p-toluenesulfonic acid, methanesulfonic acid, or camphorsulfonic acid.

[0057] A very particularly preferred example of a heterogeneously doped conductive polymer is a complex of poly(3,4-ethylenedioxythiophene) and polystyrenesulfonic acid (PEDOT / PSS).

[0058] To form a solid electrolyte layer, a solution or dispersion containing a conductive polymer, such as a PEDOT / PSS dispersion or a PEDOT-S solution, can be introduced into the electrode body, followed by at least partial removal of the solvent or dispersant to form the solid electrolyte layer. This step can be repeated several times until a solid electrolyte layer of the desired thickness is obtained. Furthermore, the solid electrolyte layer can also be formed by a so-called in situ polymerization method, in which a monomer used to prepare a conductive polymer, such as 3,4-ethylenedioxythiophene, is polymerized within the electrode body. For example, as disclosed in WO 2014 / 048562(A), it may also be advantageous to use a combination of a heterogeneously doped polythiophene, such as PEDOT / PSS, and a self-doped polythiophene, such as PEDOT-S, to form the solid electrolyte layer.

[0059] When particles of a solution or dispersion containing a conductive polymer, especially particles of a conductive polymer, are used in a layer composition of a capacitor, they preferably have a specific conductivity of more than 100 S / cm.In this situation, the specific conductivity of the particles is the specific conductivity of the dry film formed from the particles when the solution or dispersion is dried.Preferably, a solution or dispersion is used in which the particles have a specific conductivity of more than 150 S / cm, particularly preferably more than 250 S / cm, very particularly preferably more than 400 S / cm, and very particularly preferably more than 750 S / cm.In some cases, particles with a maximum specific conductivity of 5000 S / cm are also used.

[0060] In a particular variant of the method according to the invention, the particles in the solution or dispersion, in particular the particles of the conductive polymer, have a diameter d50 in the range of 1 to 100 nm, preferably in the range of 1 to 70 nm, preferably in the range of 1 to 50 nm, particularly preferably in the range of 1 to 40 nm, and more particularly preferably in the range of 5 to 30 nm. The particle diameter is determined by ultracentrifugation measurements. In a preferred variant of the method according to the invention, the particles in the solution or dispersion, in particular the particles of the conductive polymer, have a diameter distribution d50 of less than 150 nm, particularly preferably less than 100 nm, and very particularly preferably less than 50 nm. 90In a preferred variant of the method according to the invention, the particles in the solution or dispersion, in particular the particles of the conductive polymer, have a d10 value of the diameter distribution of more than 1 nm, particularly preferably more than 3 nm, very particularly preferably more than 5 nm.

[0061] The particle size of the particles in the dispersion, especially the particulate conductive polymer, can be reduced using, for example, a high-pressure homogenizer. This operation can be repeated to amplify the effect. Pressures of 100 to 2,000 bar have proven particularly advantageous for achieving a significant reduction in particle size. Preparation of polythiophene / polyanion complexes and their subsequent dispersion or redispersion in one or more solvents is also possible.

[0062] The solution or dispersion preferably has a purity with respect to metal and transition metal as described in WO 2010 / 003874 A2, page 6, lines 10 to 29. The low concentration of metal in the dispersion has the great advantage, when used in a capacitor, that the dielectric is not damaged during the formation of the solid electrolyte and during the subsequent operation of the capacitor.

[0063] The solution or dispersion of the conductive polymer comprises one or more solvents or dispersion media, and preferred solvents or dispersion media are water, organic solvents, or mixtures of organic solvents and water.Solvents or dispersion media that can be mentioned are, for example, the following solvents: aliphatic alcohols such as methanol, ethanol, i-propanol, and butanol; aliphatic ketones such as acetone and methyl ethyl ketone; aliphatic carboxylic acid esters such as ethyl acetate and butyl acetate; aromatic hydrocarbons such as toluene and xylene; aliphatic hydrocarbons such as hexane, heptane, and cyclohexane; chlorohydrocarbons such as methylene chloride and dichloroethane; aliphatic nitriles such as acetonitrile; aliphatic sulfoxides and sulfones such as dimethyl sulfoxide and sulfolane; aliphatic carboxylic acid amides such as methylacetamide, dimethylacetamide, and dimethylformamide; aliphatic and araliphatic ethers such as diethyl ether and anisole.Water or a mixture of water and the above-mentioned organic solvents can also be used as a solvent or dispersion agent.

[0064] Preferred solvents and dispersion media containing the conductive polymer are water or other protic solvents, such as alcohols, e.g., methanol, ethanol, i-propanol, and butanol, and mixtures of water with these alcohols, with water being a particularly preferred solvent and dispersion medium.

[0065] The solution or dispersion containing the conductive polymer may further comprise, for example, surface-active substances, such as ionic and non-ionic surfactants, or adhesion promoters, for example, organofunctional silanes or hydrolysates thereof, such as 3-glycidoxypropyltrialkoxysilane, 3-aminopropyltriethoxysilane, 3-mercaptopropyltrimethoxysilane, 3-methacryloxypropyltrimethoxysilane, vinyltrimethoxysilane, or octyltriethoxysilane, crosslinkers, such as melamine compounds, blocked isocyanates, functional silanes (e.g., tetraethoxysilane, alkoxysilane hydrolysates (e.g., tetraethoxysilane-based), epoxy silanes, such as 3-glycidoxypropyltrialkoxysilane), polyurethanes, polyacrylates, or polyolefin dispersions.

[0066] Preferably, the solution or dispersion comprising the conductive polymer contains further additives that increase the conductivity, such as compounds containing ether groups, for example tetrahydrofuran, compounds containing lactone groups, for example γ-butyrolactone, γ-valerolactone, compounds containing amide groups or lactam groups, for example caprolactam, N-methylcaprolactam, N,N-dimethylacetamide, N-methylacetamide, N,N-dimethylformamide (DMF), N-methylformamide, N-methylformanilide, N-methylpyrrolidone (NMP), N- These include octylpyrrolidone, pyrrolidone, sulfones, and sulfoxides such as sulfolane (tetramethylene sulfone), dimethyl sulfoxide (DMSO), sugars or sugar derivatives such as sucrose, glucose, fructose, lactose, sugar alcohols such as sorbitol, mannitol, furan derivatives such as 2-furancarboxylic acid, 3-furancarboxylic acid, and / or di- or polyalcohols such as ethylene glycol, glycerol, di- and triethylene glycol, di- and polyglycerol. Ethylene glycol, dimethyl sulfoxide, or polyglycerol are particularly preferably used as conductivity-enhancing additives.

[0067] The solution or dispersion containing the conductive polymer may further contain one or more organic binders that are soluble in organic solvents, as described on page 12, lines 16-34 of WO 2009 / 141209 A1. The solution or dispersion may have a pH of 1 to 14, with a pH of 1 to 8 being preferred. For use in capacitors, a dispersion having a pH of 2.5 to 8 is preferred for corrosion-sensitive dielectrics, such as aluminum oxide or niobium oxide, so that the dielectric is not damaged.

[0068] To adjust the pH, a base or acid can be added to the solution or dispersion containing the conductive polymer, as described, for example, in WO 2010 / 003874(A2) on page 4, lines 13-32. These additives do not impair the film formation of the dispersion, are not volatile at higher temperatures, such as soldering temperatures, and remain in the solid electrolyte under these conditions. Examples of such additives include 2-dimethylaminoethanol, 2,2'-iminodiethanol, or 2,2',2''-nitrilotriethanol as the base, and polystyrene sulfonic acid as the acid.

[0069] The viscosity of the solution or dispersion containing the conductive polymer can be 0.1 to 1,000 mPa s (measured with a rheometer at 20°C and a shear rate of 100 s-1), depending on the application method. Preferably, the viscosity is 1 to 200 mPa s, particularly preferably 10 to 150 mPa s, and very particularly preferably 10 to 100 mPa s.

[0070] The solids content of the solution or dispersion used in process step b1) is preferably in the range of 1 to 30% by weight, particularly preferably in the range of 1 to 20% by weight, most preferably in the range of 1 to 10% by weight, in each case based on the total weight of the dispersion. The solids content is determined by drying the dispersion at a temperature high enough to remove the dispersing medium but without thereby decomposing the solids.

[0071] After applying the solution or dispersion to the substrate surface, the solution or dispersion is at least partially removed to form a conductive polymer layer, which is achieved by drying the substrate coated with the conductive polymer solution or dispersion at a temperature preferably in the range of 20°C to 200°C, more preferably in the range of 50°C to 175°C, and most preferably in the range of 80°C to 150°C.

[0072] In addition to the above-mentioned approaches, the conductive polymer layer in method step b1) can also be prepared in situ on the substrate surface, i.e., by polymerizing a conductive polymer precursor, such as EDOT monomer, on the surface of the substrate.For this purpose, the corresponding monomer and oxidizing agent are preferably applied to the substrate together or sequentially.All metal salts known to those skilled in the art that are suitable for the oxidative polymerization of thiophene, aniline, or pyrrole can be used as oxidizing agents.Metal-free oxidizing agents, such as inorganic or organic peroxides, are also suitable.

[0073] Suitable metal salts are those of main group or subgroup metals of the periodic table of elements, hereinafter also referred to as transition metal salts. Suitable transition metal salts are in particular salts of inorganic or organic acids of transition metals containing organic groups, such as, for example, iron(III), copper(II), chromium(VI), cerium(IV), manganese(IV), manganese(VII), and ruthenium(III). A preferred transition metal salt is that of iron(III). Iron(III) p-toluenesulfonate, iron(III) o-toluenesulfonate, or a mixture of iron(III) p-toluenesulfonate and iron(III) o-toluenesulfonate are very particularly preferred as metal salts.

[0074] In the case of a capacitor, the at least partial removal of the solvent or dispersant leads to the formation of a solid electrolyte layer as a polymer layer prepared in method step b1), which completely or partially covers the dielectric. In this situation, the coverage of the dielectric by the solid electrolyte is preferably at least 50%, particularly preferably at least 70%, most preferably at least 80%, which can be determined by measuring the capacitance of the capacitor in dry and wet conditions at 120 Hz, as described in DE 102005043828(A).

[0075] In method step b1), the application of the solution or dispersion comprising the conductive polymer and the subsequent removal of at least part of the solution or dispersion can also be repeated once or several times in order to adapt the thickness of the layer of solid electrolyte deposited on the dielectric or the filling degree of the electrolyte in the anode body to specific requirements in this method.

[0076] In process step b2) of the process according to the invention, a liquid stabilizer phase comprising at least one stabilizer and at least one solvent or dispersant is applied onto the conductive polymer layer obtained in process step b1) to form a stabilizer layer, wherein the at least one stabilizer is gallic acid, a flavonoid, or a mixture thereof.

[0077] According to a particularly preferred embodiment of the method of the present invention, the stabilizer is a flavonoid.Flavonoids in the sense of the present invention preferably comprise a 15-carbon skeleton consisting of two phenyl rings connected by a three-carbon connecting chain.Therefore, they are also referred to as C6-C3-C6 compounds.Flavonoids can be classified into different groups depending on their chemical structure, degree of oxidation, and unsaturation of the connecting chain (C3).Preferably, they include flavanols, flavanonols, chalcones, anthocyanidins, flavonols, aurones, flavones, flavanones, and isoflavones.

[0078] Suitable flavonoids which can be used as stabilizers in the method according to the invention include catechin, gallocatechin, epicatechin, taxifolin, isoliquiritigenin, xanthohumol, cyanidin, delphinidin, malvidin, pelargonidin, peonidin, petunidin, morin, quercetin, kaempferol, myricetin, fisetin, aureuscidin, luteolin, apigenin, hesperetin, naringenin, eriodictyol, genistein, daidzein and lycoricidin, chrysin, galangin, robinetin, gossypetin, the use of flavanonols or flavanones is particularly preferred.

[0079] According to a particularly preferred embodiment of the method according to the invention, the stabilizer is a flavonoid selected from the group consisting of flavanols, flavanones, and mixtures thereof, even more preferably a flavanone, even more preferably a flavanone selected from the group consisting of hesperetin, naringenin, eriodictyol, and mixtures thereof, and most preferably the stabilizer is naringenin (either as a mixture of enantiomers (CAS 67604-48-2) or in the form of the pure (S)- or (R)-enantiomer, preferably in the form of the (S)-enantiomer (CAS 480-41-1)). (S)-Naringenin

[0080] [ka]

[0081] According to a further particular embodiment of the method according to the invention, the stabilizer is gallic acid.

[0082] In process step b2), the liquid stabilizer phase can be applied to the conductive polymer layer obtained in process step b1) by known methods, such as immersion, dipping, pouring, dripping, spraying, atomizing, knife coating, brushing, or printing, such as inkjet, screen, or tampon printing. When used in a capacitor, application is preferably carried out by dipping the anode body prepared in process step b1) into the liquid stabilizer phase, thereby impregnating it with the stabilizer. Dipping or impregnation into the stabilizer phase is preferably carried out for a period ranging from 1 second to 120 minutes, particularly preferably from 10 seconds to 60 minutes, and most preferably from 30 seconds to 15 minutes. Application of the liquid stabilizer phase containing the stabilizer to the capacitor body can be facilitated, for example, by applying pressure or vacuum, vibration, ultrasound, or heat.

[0083] As for the solvent or dispersant used in the liquid stabilizer phase, it is preferable to use the solvents and dispersants included in the above paragraph for use in the conductive polymer. This also applies to the liquids described as preferred there. Therefore, the liquid stabilizer phase in process step b2) preferably contains water, an ether alcohol or an alcohol, or a mixture thereof. Generally, the stabilizer and the solvent or dispersant are different from each other.

[0084] All solvents and dispersants known to those skilled in the art that can dissolve or disperse, preferably dissolve and impregnate the capacitor body with, the corresponding stabilizer can be used as solvent or dispersant in process step b2). According to the invention, it is particularly preferred to use water, ether alcohols or alcohols or mixtures thereof as the liquid phase.

[0085] The concentration of the stabilizer in the liquid stabilizer phase used in process step b2) is often in the range from 0.01 to 99% by weight, preferably in the range from 0.1 to 50% by weight, particularly preferably in the range from 1 to 25% by weight and most preferably in the range from 2 to 10% by weight, in each case based on the liquid stabilizer phase.

[0086] The liquid stabilizer phase used in process step b2) preferably contains less than 0.5% by weight, preferably less than 0.1% by weight, particularly preferably less than 0.01% by weight, and very particularly preferably 0% by weight of conductive polymer, in each case based on the stabilizer phase. The presence of conductive polymer in the liquid stabilizer phase reduces its storage stability.

[0087] In the process according to the invention, after applying the stabilizer phase in process step b2), the solvent or dispersant is preferably at least partially removed in a further process step b3). Here, the solvent or dispersant is preferably removed to an extent of at least 70% by weight, preferably at least 90% by weight, particularly preferably at least 98% by weight, in each case based on the amount of solvent or dispersant used in process step b2). The solvent or dispersant is often also substantially completely removed. In the case of capacitors, for example, this removal is preferably carried out by removing the capacitor body including the polymer layer from the liquid stabilizer phase and drying it. Drying is preferably carried out at a temperature in the range of 20°C to 200°C, particularly preferably in the range of 50°C to 175°C, most preferably in the range of 75°C to 150°C, and for a period of 1 minute to 120 minutes, particularly preferably in the range of 5 minutes to 90 minutes, and most preferably in the range of 10 minutes to 60 minutes. These conditions are also preferred for the other layer compositions.

[0088] After the formation of the stabilizing conductive layer in process step b) of the method according to the invention, the electrolytic capacitor can be completed by methods known to those skilled in the art. In the case of tantalum electrolytic capacitors, the capacitor body can be covered with a graphite layer and a silver layer, as is known, for example, from German Patent Application No. 102005043828(A). In the case of aluminum-wound capacitors according to the teachings of U.S. Patent No. 7,497,879(B2), the capacitor body is placed in an aluminum beaker with a sealing glass or rubber and mechanically tightly closed by crimping. The capacitor can then be aged in a known manner to remove defects in the dielectric.

[0089] A further contribution to achieving at least one of the objects of the present invention is made by the layer composition obtainable by the method according to the invention.

[0090] A further contribution to achieving at least one of the objects of the present invention is also S1. A substrate having a substrate surface; S2. A layer composition comprising a stabilized conductive polymer layer following a substrate surface, the stabilized conductive polymer layer comprising: S2a. A conductive polymer layer comprising a conductive polymer, preferably polythiophene, on the surface of the substrate; S2b. A layer composition comprising: a conductive polymer layer followed by a stabilizer layer comprising at least one stabilizer, wherein the at least one stabilizer is gallic acid, a flavonoid, or a mixture thereof, preferably a flavonoid, more preferably a flavonoid selected from the group consisting of flavanonol, flavanone, and mixtures thereof, even more preferably a flavanone, even more preferably a flavanone selected from the group consisting of hesperetin, naringenin, eriodictyol, and mixtures thereof, most preferably naringenin.

[0091] Here and in general, the regions and in particular the layers can follow each other directly or indirectly, separated by further layers. Furthermore, it should be noted that the above statements herein also apply to this layer composition. The layer composition is preferably a capacitor, where the polymer layer is on the anode body.

[0092] Preferred conductive polymers and preferred stabilizers are those described as preferred embodiments in connection with the method for producing the layer composition according to the invention.

[0093] The layer compositions according to the invention are highly suitable for use as electronic components, in particular as conductive means or antistatic means, as transparent electrodes, optionally as transparent electrodes, as hole injection or hole conduction layers in organic light-emitting diodes, for through contacts in circuit boards, or as solid electrolytes in electrolytic capacitors. They can advantageously be transparent.

[0094] The layer compositions according to the present invention can also be used in electronic components, for example, on films, in packaging electronic components, for finishing plastic films, and for coating screens.They can also be used as cathode materials in capacitors, for example, as transparent electrodes in displays, for example, as replacements for indium-tin oxide electrodes, or as conductors in polymer electronics.Other possible uses are sensors, batteries, solar cells, electrochromic windows (smart windows), and displays, as well as corrosion protection.

[0095] The layer composition according to the present invention is preferably used in capacitors.Such capacitors are preferably used in electronic circuits, for example, as filter capacitors or decoupling capacitors.Preferably, electronic circuits such as those found in computers (desktops, laptops, servers), computer peripherals (for example, PC cards), portable electronic devices such as mobile phones, digital cameras or entertainment electronic devices, entertainment electronic devices such as CD / DVD players and computer game consoles, navigation systems, telecommunications equipment, household appliances, medical technology such as defibrillators, power sources based on renewable energy, or automotive electronic devices for hybrid or electric vehicles.

[0096] The invention will now be explained in more detail using non-limiting figures and examples. [Brief explanation of the drawings]

[0097] [Figure 1] FIG. 1 is a schematic diagram of a cross section through a portion of a capacitor as an example of a layer composition according to the present invention. It has an electrode body 1 made of a porous electrode material 2, typically tantalum. A dielectric 3 is formed as a thin layer on the electrode surface 4 of the electrode material 2, resulting in an anode body that is still porous and includes the electrode body 1 of the electrode material 2 and the dielectric 3, which can be considered a substrate in the context of the layer composition according to the present invention. The surface of the anode body 4 represents the substrate surface 11 according to the present invention. The dielectric 3, optionally followed by additional layers, is followed by a layer of solid electrolyte 5 (e.g., PEDOT / PSS particles, an in situ generated PEDOT layer, or a combination thereof), forming a capacitor body 6 including the electrode material 2, the dielectric 3, and the electrode body 1 of the solid electrolyte 5. The solid electrolyte 5 is followed by a layer 14 of a stabilizer 7, preferably naringenin; the solid electrolyte layer 5 and the stabilizer layer 14 together form a stabilizing conductive layer 12. The stabilizer 7 can be introduced into the capacitor body 6, for example, to completely or partially fill the pores 8.

[0098] [Figure 2] 2 shows in more general form the structure of a layered composition 9 according to the present invention, e.g., an antistatic film. On a substrate 10, which is often a PE, PP, or PET layer as antistatic films are, there is a conductive polymer layer 13 comprising a conductive polymer on the substrate surface 11. On top of the conductive polymer layer 13, a stabilizer layer 14 having a stabilizer 7, preferably a layer comprising naringenin, is formed. The conductive polymer layer 13 and the stabilizer layer 14 together form a stabilized conductive polymer layer 12.

[0099] Measurement method: Surface resistance: The surface resistance (SR) of the coatings was determined by a four-point measurement method (four-point probe, Mitsubishi Chemical Analytech, Loresta-AX MCP-T370) and expressed in ohms / square. The average value of the surface resistance was obtained from measurements at three different spots on the same sample.

[0100] Solids: For the determination of the solid content, 5 g of the dispersion was dried at 100° C. for 14 hours and the solid content was confirmed by weight difference.

[0101] Capacitance and Dissipation Factor (DF): The capacitance (microfarads) and DF (%) were determined at 20°C and 120 Hz using an LCR meter (Agilent 4263B).

[0102] Equivalent series resistance (ESR): The ESR (milliohms) was determined at 20° C. and 100 kHz using an LCR meter (Agilent 4263B).

[0103] average: Unless otherwise specified herein, the average is the arithmetic mean. [Example]

[0104] Example 1: Preparation of Stabilizer Solution 5 g of each stabilizer (listed in Table 1) and 95 g of ethanol were vigorously mixed in a glass beaker using a stirrer.

[0105] [Table 1]

[0106] Example 2: Preparation of layers by in situ polymerization on glass substrates A solution was prepared consisting of 1 part by weight of 3,4-ethylenedioxythiophene (CLEVIOS™ M V2, Heraeus Deutschland GmbH & Co. KG), 10 parts by weight of a 60 wt% ethanol solution of iron(III) p-toluenesulfonate (CLEVIOS™ CE 60 High Fe, Heraeus Deutschland GmbH & Co. KG), and 5 parts by weight of ethanol.

[0107] This solution was used to coat glass substrates. Glass substrates (5 cm x 20 cm) were immersed in the solution for 1 minute using a dip coater. After this, they were dried at 125°C for 60 minutes. Subsequently, they were washed with deionized water and then ethanol, and then immersed in ethanol three times consecutively for 10 minutes each. Finally, they were dried at room temperature for 15 minutes, followed by 60 minutes at 125°C.

[0108] The coated glass substrates were then each immersed in the stabilizer solution of Example 1 for 10 minutes, after which they were dried at room temperature for 15 minutes, followed by 15 minutes at 125°C.

[0109] Example 3: Evaluation of stabilizers The coated glass substrates prepared according to Example 2 were then subjected to storage tests. The different storage conditions applied were as follows: (A) 85°C at 85% relative humidity; (B) 105°C; (C) 125°C. The storage conditions and storage times applied for each example are listed in Table 2.

[0110] The increase in surface resistance after storage, that is, the ratio of the surface resistance after storage to the surface resistance before storage (=increase in surface resistance after storage) is listed in Table 2.

[0111] [Table 2]

[0112] Example 4: Preparation of tantalum anode Tantalum powder with a specific capacitance of 30,000 μFV / g was pressed into a pellet incorporating tantalum wire and sintered to form an electrode body with dimensions of 1.4 mm x 2.8 mm x 3.9 mm. Five of these porous electrode bodies were anodized to 60 V in a phosphoric acid electrolyte to form the dielectric.

[0113] Example 5: Preparation of PEDOT / PSS dispersion A 2-L glass reactor equipped with a stirrer and thermometer was initially charged with 868 g of deionized water. 330 g of an aqueous solution of polystyrene sulfonic acid with an average molecular weight (weight average Mw) of 70,000 g / mol and a solids content of 3.8 wt% was added. The reaction temperature was maintained between 20 and 25°C. While stirring, 5.1 g of 3,4-ethylenedioxythiophene was added. The solution was stirred for 30 minutes. Subsequently, 0.03 g of iron(III) sulfate and 9.5 g of sodium persulfate were added, and the solution was stirred for an additional 24 hours. After the reaction was complete, 100 mL of a strongly acidic cation exchanger (Lewatit S100; Lanxess AG) and 250 mL of a weakly basic anion exchanger (Lewatit MP62; Lanxess AG) were added to remove inorganic salts. The solution was stirred for an additional 2 hours. The ion exchangers were filtered off.

[0114] The PEDOT / PSS dispersion was homogenized ten times using a high-pressure homogenizer at 700 bar pressure, then concentrated to a solid content of 2.5% and homogenized five times using a high-pressure homogenizer at 1,500 bar pressure.

[0115] The dispersion was then diluted to 1.04% solids, and 96 g of the diluted dispersion was mixed with 4 g of dimethyl sulfoxide (DMSO) and stirred vigorously.

[0116] Example 6: Preparation of PEDOT / PSS dispersion for the polymer outer layer A 5-L glass reactor equipped with a stirrer and thermometer was initially charged with 1736 g of deionized water. 660 g of an aqueous solution of polystyrene sulfonic acid with an average molecular weight (weight average Mw) of 70,000 g / mol and a solids content of 3.8 wt% was added. The reaction temperature was maintained between 20 and 25°C. While stirring, 10.2 g of 3,4-ethylenedioxythiophene was added. The solution was stirred for 30 minutes. Subsequently, 0.06 g of iron(III) sulfate and 19 g of sodium persulfate were added, and the solution was stirred for an additional 24 hours. After the reaction was complete, 200 mL of a strongly acidic cation exchanger (Lewatit S100; Lanxess AG) and 500 mL of a weakly basic anion exchanger (Lewatit MP62; Lanxess AG) were added to remove inorganic salts. The solution was stirred for an additional 2 hours. The ion exchangers were filtered off. The dispersion was then concentrated to 1.5% solids.

[0117] In a beaker equipped with a stirrer, 160 g of this concentrated dispersion, 28 g of deionized water, 6 g of sulfopolyester (Eastek 1100; 30% solids; average molecular weight 10,000–15,000 g / mol; Eastman), 8 g of dimethyl sulfoxide, 1 g of 3-glycidoxypropyltrimethoxysilane (Silquest A-187; OSi Specialties), and 0.4 g of wetting agent (Dynol 604; Air Products) were vigorously mixed for 1 h.

[0118] Example 7: Preparation of crosslinker solution 4.0 g of p-toluenesulfonic acid monohydrate, 1.7 g of 1,10-diaminodecane, and 95.5 g of water were vigorously mixed in a glass beaker using a stirrer.

[0119] Example 8: Preparation of capacitors using chemical in situ coating of tantalum anodes A solution consisting of 1 wt % 3,4-ethylenedioxythiophene (CLEVIOS™ M V2, Heraeus Deutschland GmbH & Co. KG) and 20 wt % iron(III) p-toluenesulfonate in 40 wt % ethanol (CLEVIOS™ CE; Heraeus Deutschland GmbH & Co. KG) was prepared.

[0120] This solution was used to impregnate the tantalum anodes of Example 4. The tantalum anodes were immersed in this solution and then exposed to an atmosphere of 95% relative humidity at room temperature (20°C) for 30 minutes. Following this, they were heat-treated in a drying oven at 50°C for 15 minutes and at 150°C for 15 minutes. The tantalum anodes were then washed in a 2 wt% aqueous solution of p-toluenesulfonic acid for 30 minutes. The tantalum anodes were re-formed in a 0.25 wt% aqueous solution of p-toluenesulfonic acid for 30 minutes, then rinsed with distilled water and dried. The above impregnation, drying, temperature treatment, and re-formation were repeated four more times. The tantalum anodes were then immersed in the stabilizer solution of Example 1 for 10 minutes, followed by drying at room temperature for 15 minutes and then at 120°C for 15 minutes.

[0121] This was followed by 1 minute of immersion in the solution from Example 7, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the dispersion from Example 6, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the solution from Example 7, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the dispersion from Example 6, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the solution from Example 7, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the dispersion from Example 6, followed by drying at 120°C for 10 minutes.

[0122] The tantalum anode was then coated with graphite, followed by a silver layer to form a tantalum capacitor.

[0123] The tantalum capacitors were then subjected to a storage test (150° C.). The increase in ESR after storage, i.e., the ratio of ESR after storage to ESR before storage, is listed in Table 3.

[0124] [Table 3]

[0125] Example 9: Preparation of capacitors using polymer dispersions The tantalum anode from Example 4 was immersed for 1 minute in the dispersion from Example 5. It was then dried for 10 minutes at 120° C. This sequence of impregnation and drying was repeated 9 more times.

[0126] The tantalum anode was then immersed in the stabilizer solution of Example 1 for 10 minutes, after which it was dried at room temperature for 15 minutes, followed by 15 minutes at 120°C.

[0127] This was followed by 1 minute of immersion in the solution from Example 7, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the dispersion from Example 6, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the solution from Example 7, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the dispersion from Example 6, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the solution from Example 7, followed by drying at 120°C for 10 minutes. This was followed by 1 minute of immersion in the dispersion from Example 6, followed by drying at 120°C for 10 minutes.

[0128] The tantalum anode was then coated with graphite, followed by a silver layer to form a tantalum capacitor.

[0129] The tantalum capacitors were then subjected to a storage test (85°C at 85% relative humidity). The increase in ESR after storage, i.e., the ratio of ESR after storage to ESR before storage, is listed in Table 4.

[0130] [Table 4] [Explanation of symbols]

[0131] 1 Electrode body 2 Electrode material 3 Dielectrics 4. Electrode surface of anode body 5 Solid electrolyte 6 Capacitor body 7. Stabilizers 8 pores 9 layer composition 10 Base material 11 Base material surface 12. Stabilized conductive polymer layer 13 Conductive polymer layer 14 Stabilizer layer

Claims

1. A method for producing a layer composition (9), comprising the steps of: a) providing a substrate (10) having a substrate surface (11), said substrate (10) comprising an electrode body (1) of an electrode material (2) and a dielectric (3) at least partially covering a surface (4) of said electrode material (2); b) forming a stabilized conductive polymer layer (12) on at least a portion of said substrate surface (11), said method step comprising: b1) forming a conductive polymer layer (13) on at least a portion of the substrate surface (11) comprising a conductive polymer, the conductive polymer layer (13) being a solid electrolyte completely or partially covering the dielectric (3), and the conductive polymer comprising a polythiophene; b2) applying a liquid stabilizer phase comprising at least one stabilizer (7) and at least one solvent or dispersant onto the conductive polymer layer (13) obtained in process step b1) to form a stabilizer layer (14), wherein the at least one stabilizer (7) is a flavonoid selected from the group consisting of flavanonols, flavanones, and mixtures thereof.

2. 2. The method of claim 1, wherein in method step b) the conductive polymer layer (13) is formed in situ on the substrate surface (11).

3. 3. The method according to claim 1 or 2, wherein after application of the liquid stabilizer phase in method step b2), the solvent or dispersant is at least partially removed in a further method step b3).

4. 3. The method of claim 1 or 2, wherein the stabilizer (7) is a flavanone.

5. 5. The method of claim 4, wherein the stabilizer (7) is naringenin.

6. S1. A substrate (10) having a substrate surface (11), the substrate (10) including an electrode body (1) of an electrode material (2) and a dielectric (3) at least partially covering the surface (4) of the electrode material (2); S2. A layer composition (9) comprising a stabilized conductive polymer layer (12) following the substrate surface (11), wherein the stabilized conductive polymer layer (12) is a solid electrolyte that completely or partially covers the dielectric (3), and the stabilized conductive polymer layer (12) comprises: S2a. A conductive polymer layer (13) is provided on the substrate surface (11) and comprises a conductive polymer, wherein the conductive polymer comprises polythiophene; S2b. A layer composition (9) comprising the conductive polymer layer (13) followed by a stabilizer layer (14) comprising at least one stabilizer (7), wherein the at least one stabilizer (7) is a flavonoid selected from the group consisting of flavanonols, flavanones, and mixtures thereof.

7. The layer composition (9) of claim 6, wherein the stabilizer (7) is a flavanone.

8. The layer composition (9) according to claim 7, wherein the stabilizer (7) is naringenin.

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