Polymer Capacitor Manufacturing Process for High Reliability Applications
A manufacturing process for capacitors with controlled solvent use and impregnation forms a stable solid electrolyte layer, addressing capacitance degradation and resistance issues, ensuring reliable performance in electronic circuits.
Patent Information
- Application Number
- JP2024517024
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-09-29
- Filing Date
- 2022-09-28
- Publication Date
- 2026-03-05
- Estimated Expiration
- 2042-09-28
AI Technical Summary
Electrical properties of capacitors, particularly those with solid electrolytes based on PEDOT/PSS, degrade over time due to switching processes in electronic circuits, leading to significant capacitance changes and high equivalent series resistance.
A manufacturing process involving the use of conductive polymer dispersions with controlled solvent content and conductivity, followed by solvent removal and impregnation with specific solvents, to form a stable solid electrolyte layer, reducing the number of process steps and enhancing capacitor reliability.
The process results in capacitors with minimal capacitance variation over time, low equivalent series resistance, and high reliability across temperature ranges, suitable for use in electronic circuits.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a process for manufacturing capacitors, capacitors manufactured using this process, capacitors characterized by a constant decrease in relative capacitance when surge tested, uses of these capacitors, and electronic circuits. Summary of the Invention [Problem to be solved by the invention]
[0002] A standard electrolytic capacitor generally consists of a porous metal electrode, an oxide layer disposed on the metal surface, a generally solid conductive material introduced into the porous structure, an external electrode (contact) such as a silver layer, and other electrical contacts and encapsulants. 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 anodized (also called "formed"). A liquid or solid electrolyte forms the cathode of the capacitor. Aluminum capacitors, in which the anode electrode is made of the valve metal aluminum, on which a uniform, electrically insulating aluminum oxide layer is anodized as the dielectric, are also frequently used. Again, a liquid or solid electrolyte forms the cathode of the capacitor. Aluminum capacitors are generally implemented as wound or stacked capacitors.
[0003] Considering their high electrical conductivity, π-conjugated polymers are particularly suitable as solid electrolytes in the above-mentioned capacitors. π-conjugated polymers are also called conductive polymers or synthetic metals. Compared to metals, polymers have advantages in terms of processing, weight, and the ability to selectively adjust properties through chemical modification, so conjugated polymers are becoming increasingly important commercially. Examples of known π-conjugated polymers include polypyrrole, polythiophene, polyaniline, polyacetylene, polyphenylene, and poly(p-phenylene-vinylene). Poly(3,4-ethylene-dioxythiophene) (PEDOT) is a particularly important polythiophene used technically due to its very high electrical conductivity in the oxidized form.
[0004] In the prior art, alternative methods have been developed for producing solid electrolytes based on conductive polymers in electrolytic capacitors. For example, DE-A 102005043828 (A) describes a process for producing a solid electrolyte in a capacitor in which a dispersion containing already polymerized thiophene, such as the PEDOT / PSS dispersion known from the prior art, is applied to an oxide layer, and then the dispersion medium is removed by evaporation.
[0005] However, it has been observed that the electrical properties of capacitors used in electronic circuits degrade over their lifetime, especially due to the switching-on and switching-off processes of the electronic circuits. This is especially true for the capacitance of capacitors whose solid electrolyte layer is based on PEDOT / PSS.
[0006] The present invention was based on the object of overcoming the drawbacks arising from the prior art in relation to capacitors, preferably in relation to solid electrolytic capacitors, more preferably in relation to capacitors known from the prior art which comprise a solid electrolyte layer based on a π-conjugated polymer such as PEDOT, even more preferably in relation to capacitors known from the prior art which comprise a solid electrolyte layer based on PEDOT / PSS.
[0007] In particular, the invention is based on the object of providing a process for manufacturing capacitors, which makes it possible to produce capacitors that, when used in electronic circuits, exhibit electrical properties that are as constant as possible over as long a period as possible, in particular a capacitance that changes as little as possible.
[0008] It was also an object of the present invention to provide a capacitor having low equivalent series resistance (ESR) and high reliability, particularly in terms of capacitance at low and high temperatures.
[0009] The advantageous capacitor manufacturing process described above is also further characterized in that it makes it possible to manufacture these capacitors in the simplest possible way, in particular with as few process steps as possible.
[0010] A contribution to at least partially solving at least one, preferably two or more of the above mentioned objects is made by the independent claims. The dependent claims provide preferred embodiments that contribute to at least partially solving at least one of the objects.
[0011] |1a| At least one of the objects according to the present invention is a process for manufacturing a capacitor, preferably an electrolytic capacitor, comprising the following process steps: a) providing a porous electrode body made of an electrode material, wherein a dielectric material at least partially covers a surface of the electrode material; b) i) a liquid composition A, preferably dispersion A, comprising a conductive polymer and a dispersant, wherein a conductive layer made from liquid composition A has a conductivity of less than 100 S / cm, preferably less than 50 S / cm, more preferably less than 20 S / cm, even more preferably less than 10 S / cm; or ii) a liquid composition B, preferably dispersion B, comprising a conductive polymer and a dispersant, wherein liquid composition B comprises less than 3% by weight, preferably less than 1% by weight, more preferably less than 0.5% by weight, even more preferably less than 0.1% by weight and most preferably less than 0.01% by weight of a high-boiling solvent, in each case based on the total weight of liquid composition B, the high-boiling solvent having a boiling point (measured at 1013 hPa) of at least 150° C., preferably at least 170° C., more preferably at least 185° C., and it is particularly preferred that liquid composition B is essentially free, preferably free, of high-boiling solvents, or iii) a liquid composition C, preferably a dispersion C, comprising a conductive polymer and a dispersant, wherein the liquid composition C comprises less than 3% by weight, preferably less than 1% by weight, more preferably less than 0.5% by weight, even more preferably less than 0.1% by weight and most preferably less than 0.01% by weight of a high-boiling solvent, in each case based on the total weight of the liquid composition C, the high-boiling solvent having a boiling point (measured at 1013 hPa) of at least 150° C., preferably at least 170° C., more preferably at least 185° C., and wherein a conductive layer made from the liquid composition C has a conductivity of less than 100 S / cm, preferably less than 50 S / cm, more preferably less than 20 S / cm and even more preferably less than 10 S / cm, and it is particularly preferred that the liquid composition C is essentially free, preferably free, of high-boiling solvents, introducing into at least a portion of the porous electrode body provided in process step a), c) at least partially removing the dispersant from the porous electrode body obtained in process step b) to form a solid electrolyte layer at least partially covering the surface of the dielectric; d) filling at least some of the pores of the porous electrode body obtained in process step c) with an impregnation solution comprising at least one impregnation solvent, the at least one impregnation solvent having a boiling point (measured at 1013 hPa) of at least 150°C, preferably at least 170°C, more preferably at least 190°C, e) at least partially removing the impregnation solvent from the porous electrode body obtained in process step d), f) encapsulating the porous electrode body obtained in process step e); The problem is solved by a first embodiment of a manufacturing process for a capacitor, preferably an electrolytic capacitor, comprising:
[0012] As used herein, the term "high-boiling solvent having a boiling point of at least 150° C. (measured at 1013 hPa)" preferably refers to a compound that actually boils (i.e., changes its state of aggregation from a liquid state to a gaseous state) at a temperature of at least 150° C. The term preferably does not include compounds that do not actually boil, but that decompose at high temperatures and then boil (such as polyethylene glycol 400).
[0013] The combination of process steps b) and c) can be carried out only once or can be repeated several times, for example 2, 3, 4, 5, 6, 7, 8, 9 or at least 10 times.
[0014] The combination of process steps b) to e) can be carried out only once or can be repeated several times, for example a process can be carried out which is characterized by comprising process steps b), c), d), e), b), c), d) and e) in that order, or further comprising further repetitions.
[0015] According to a first most preferred variant of the process according to the invention, in process step b), a liquid composition A, preferably a dispersion A, is introduced into at least a portion of the porous electrode body provided in process step a). In this connection, it is also preferred that the conductive layer made from liquid composition A has a conductivity of 0.1 S / cm or more, preferably 0.5 S / cm or more, even more preferably 1 S / cm or more. Most preferably, the conductive layer made from liquid composition A has a conductivity in the range from 1 S / cm to 10 S / cm.
[0016] According to a second variant of the process according to the invention, in process step b), a liquid composition B, preferably a dispersion B, is introduced into at least part of the porous electrode body provided in process step a).
[0017] According to a third variant of the process according to the invention, in process step b), a liquid composition C, preferably a dispersion C, is introduced into at least a portion of the porous electrode body provided in process step a). In this connection, it is also preferred that the conductive layer made from liquid composition C has a conductivity of 0.1 S / cm or more, preferably 0.5 S / cm or more, even more preferably 1 S / cm or more. Most preferably, the conductive layer made from liquid composition C has a conductivity in the range from 1 S / cm to 10 S / cm.
[0018] The liquid composition A, B, or C used in process step b) can be in the form of a solution or dispersion. However, the transition here can be fluid. Therefore, hereinafter, no distinction is made between the terms "dispersed" and "dissolved." Similarly, no distinction is made between "dispersion" and "solution" or between "dispersant" and "solvent." Rather, these terms are used interchangeably. However, the liquid composition A, B, or C is preferably in the form of a dispersion in which the conductive polymer is dispersed in the dispersant.
[0019] |2a| According to a preferred embodiment of the process according to the invention, the electrode material is aluminum and the dielectric is aluminum oxide, preferably Al2O3. This preferred embodiment is a second embodiment of the method according to the invention, which is preferably dependent on the first embodiment.
[0020] |3a| According to a further preferred embodiment of the process according to the invention, the liquid composition A, B or C used in process step b), preferably liquid composition A, comprises particles of a conductive polymer. In this context, the particles have a diameter d in the range of 1 to 100 nm, preferably in the range of 1 to less than 70 nm, preferably in the range of 1 to 50 nm, particularly preferably in the range of 1 to 40 nm, more particularly preferably in the range of 5 to 30 nm. 50It is particularly preferred that the particle diameter is determined via ultracentrifuge measurement. This preferred embodiment is a third embodiment of the method according to the invention, which is preferably dependent on the first or second embodiment.
[0021] According to a further preferred embodiment of the process according to the invention, the conductive polymer comprises at least one polymer selected from the group consisting of polythiophene, polypyrrole, polyaniline, and a mixture of at least two thereof. This preferred embodiment is the fourth embodiment of the process according to the invention, and preferably depends from any one of the first to third embodiments.
[0022] |5a| According to a further preferred embodiment of the process according to the invention, the conductive polymer is poly(3,4-ethylenedioxythiophene) or a derivative thereof. This preferred embodiment is a fifth embodiment of the process according to the invention, preferably dependent on any one of the first to fourth embodiments.
[0023] According to a further preferred embodiment of the process according to the invention, the liquid compositions A, B or C used in process step b), preferably liquid composition A, further comprise at least one polymeric anion. This preferred embodiment is the sixth embodiment of the process according to the invention, which is preferably dependent on any one of the first to fifth embodiments.
[0024] |7a| According to a further preferred embodiment of the process according to the invention, the polymer anion is polystyrene sulfonic acid or a derivative thereof. In this connection, it is particularly preferred that the conductive polymer in liquid composition A, B or C, preferably liquid composition A, used in process step b) is present in the form of a polythiophene / (poly)anion complex, the polythiophene being poly(3,4-ethylenedioxythiophene) and the polyanion being the anion of polystyrene sulfonic acid. This preferred embodiment is a seventh embodiment of the process according to the invention, which is preferably subordinate to the sixth embodiment.
[0025] |8a| According to a further preferred embodiment of the process according to the invention, liquid composition A, B or C, preferably liquid composition A, used in process step b) has a pH value (measured at 25°C) in the range from 2.5 to 8.0, preferably in the range from 2.5 to 7, more preferably in the range from 3 to 6. This preferred embodiment is an eighth embodiment of the process according to the invention, which is preferably dependent on any one of the first to seventh embodiments.
[0026] According to a further preferred embodiment of the process according to the invention, in process step d), at least 25% by volume of the open pore volume of the porous electrode body obtained in process step c) is filled with the impregnation solution, more preferably at least 30% by volume, even more preferably at least 40% by volume, even more preferably at least 50% by volume, even more preferably at least 75% by volume, and most preferably at least 90% by volume. This preferred embodiment is a ninth embodiment of the process according to the invention, which is preferably dependent on any one of the first to eighth embodiments.
[0027] According to a further preferred embodiment of the process according to the invention, the impregnation solution used in process step d) has an ionic conductivity of less than 1000 μS / cm, preferably less than 100 μS / cm, even more preferably less than 10 μS / cm, most preferably less than 1 μS / cm. This preferred embodiment is a tenth embodiment of the process according to the invention, which is preferably dependent on any one of the first to ninth embodiments.
[0028] According to a further preferred embodiment of the process according to the invention, the impregnation solution used in process step d) comprises a mixture of at least two impregnation solvents. This preferred embodiment is an eleventh embodiment of the process according to the invention, which is preferably dependent on any one of the first to tenth embodiments.
[0029] |12a| According to a further preferred embodiment of the process according to the invention, the impregnation solution used in process step d) comprises at least one impregnation solvent in an amount of at least 50% by weight, preferably at least 75% by weight, even more preferably at least 90% by weight, and most preferably at least 95% by weight, in each case based on the total weight of the impregnation solution. In the case of two or more impregnation solvents, these amounts refer to the total amount of impregnation solvents. This preferred embodiment is a twelfth embodiment of the process according to the invention, which is preferably dependent on any one of the first to eleventh embodiments.
[0030] |13a| According to a further preferred embodiment of the process according to the invention, at least one impregnation solvent in the impregnation solution used in process step d) has a melting point below 15° C., preferably below 5° C., even more preferably below −5° C. This preferred embodiment is a thirteenth embodiment of the process according to the invention, which is preferably dependent on any one of the first to twelfth embodiments.
[0031] |14a| According to a further preferred embodiment of the process according to the invention, at least one impregnation solvent in the impregnation solution used in process step d) has a boiling point (measured at 1013 hPa) of at least 200° C. and below 330° C. This preferred embodiment is a 14th embodiment of the process according to the invention, which is preferably dependent on any one of the 1st to 13th embodiments.
[0032] |15a| According to a further preferred embodiment of the process according to the invention, at least one impregnation solvent in the impregnation solution used in process step d) is a compound containing two hydroxy groups or a compound containing one hydroxy group and one ether group, preferably one alkyl ether group, with polyglycols having 2 to 4 repeat units being particularly preferred as impregnation solvents. This preferred embodiment is a 15th embodiment of the process according to the invention, which preferably depends from any one of the 1 to 14 embodiments.
[0033] According to a further preferred embodiment of the process according to the invention, at least one impregnation solvent in the impregnation solution used in process step d) is selected from the group consisting of diethylene glycol, triethylene glycol, tetraethylene glycol and mixtures of at least two thereof, with diethylene glycol and triethylene glycol being particularly preferred. This preferred embodiment is a 16th embodiment of the process according to the invention, which is preferably dependent on any one of the 1 to 15 embodiments.
[0034] |17a| According to a further preferred embodiment of the process according to the invention, the liquid composition A, B, or C used in process step b), preferably liquid composition A, the impregnation solution used in process step d), or both, preferably the impregnation solution used in process step d), further comprises a stabilizer. This preferred embodiment is the 17th embodiment of the process according to the invention, preferably dependent on any one of the first to sixteenth embodiments. Preferred stabilizers are the compounds mentioned in WO 2012 / 041507 A1, with aromatic compounds containing at least two OH groups and one additional functional group containing a heteroatom different from carbon being particularly preferred. Examples of suitable stabilizers are 3,4,5-trihydroxybenzoic acid and its derivatives, such as 3,4,5-trihydroxybenzoic acid esters (gallic acid esters), in particular alkyl esters, alkenyl esters, cycloalkyl esters, cycloalkenyl esters, and aryl esters, preferably in each case having 1 to 15 C atoms in the aryl or alkyl group of the ester. Particularly preferred are gallic acid and sugar-esterified gallic acid, often referred to as tannins or gallotannins (see Rompp Chemie, 10th Edition (1999), p. 4391). Suitable stabilizers include the "hydroxyl-containing aromatic compounds" mentioned in paragraph
[0049] of EP 1 798 259 A1, the "antioxidants" mentioned in paragraph
[0025] of EP 1 043 720 A1, and the "aromatic compounds containing at least two hydroxyl groups, excluding sulfo groups" mentioned on pages 10 and 11 of WO 2008 / 055834 A1. In this context, it is also preferred to use stabilizers in concentrations ranging from 0.1% to 60% by weight, preferably from 1% to 25% by weight, and particularly preferably from 2% to 10% by weight, based on the total weight of the impregnation solution. If the liquid composition A, B or C used in process step b), preferably liquid composition A, comprises a stabilizer, it is preferred to use the stabilizer in a concentration in the range of 0.1% to 20% by weight, preferably in the range of 0.5% to 10% by weight, particularly preferably in the range of 1% to 5% by weight, based on the total weight of the liquid composition.
[0035] According to a further preferred embodiment of the process according to the invention, in process step e) at least 50% by weight, preferably at least 70% by weight, more preferably at least 80% by weight, even more preferably at least 90% by weight, even more preferably at least 95% by weight, and most preferably at least 99% by weight of the total amount of impregnation solvent is removed from the porous electrode body obtained in process step d). This preferred embodiment is an 18th embodiment of the process according to the invention, which is preferably dependent on any one of the 1 to 17 embodiments.
[0036] |19a| According to a further preferred embodiment of the process according to the invention, the method comprises process step e2): applied after process step e) and before process step f). e2) filling at least some of the pores of the porous electrode body obtained in process step e) with an impregnation solution comprising at least one impregnation solvent, wherein the at least one impregnation solvent has a boiling point (measured at 1013 hPa) of at least 150°C, preferably at least 170°C, more preferably at least 190°C.
[0037] This preferred embodiment is a 19th embodiment of the process according to the present invention, preferably dependent on any one of the 1st to 18th embodiments.
[0038] In this context, it is particularly preferred that the impregnation solution used in process step e2) is an impregnation solution as defined in the tenth to thirteenth embodiments of the process according to the invention and that the impregnation solvent in the impregnation solution used in process step e2) is an impregnation solvent as defined in any one of the thirteenth to sixteenth embodiments of the method according to the invention. However, the impregnation solvent in the impregnation solution used in process step d) and the impregnation solvent in the impregnation solution used in process step e2) do not necessarily have to be identical.
[0039] In this context, it is also particularly preferred that less than 50% by weight, preferably less than 25% by weight, more preferably less than 10% by weight, even more preferably less than 1% by weight, even more preferably less than 0.1% by weight of the impregnation solvent is removed from the porous electrode body obtained in process step e2) before encapsulating the porous electrode body in process step f).In this context, it is particularly preferred that after carrying out process step e2) and before carrying out process step f), the porous electrode body obtained in process step e2) is not dried, in particular not dried under conditions in which at least a portion of the impregnation solvent in the impregnation solution used in process step e2) is removed.
[0040] |1b| A contribution to solving at least one of the objects according to the invention is made by a first embodiment of a capacitor 1 which can be obtained, preferably obtained, by a process according to the invention, preferably by a process according to any one of the first to nineteenth embodiments.
[0041] |2b| According to a preferred embodiment of the capacitor 1 according to the invention, the capacitor satisfies the following properties: (α1) A decrease of up to 20%, preferably up to 15%, even more preferably up to 10%, and most preferably up to 5% in relative capacitance ΔC as determined by the test method disclosed herein, where ΔC=C1-C2, where C1 is the relative initial capacitance and C2 is the relative capacitance after 400 cycles of surge testing.
[0042] This preferred embodiment is a second embodiment of the capacitor 1 according to the invention and is preferably dependent on the first embodiment.
[0043] |3b| According to a further preferred embodiment of the capacitor 1 according to the invention, the capacitor satisfies the following properties: (α2) a capacitance decrease of at most 20%, preferably at most 15%, more preferably at most 10% upon a temperature decrease from 20°C to -55°C; and (α3) A capacitance loss of at most 20%, preferably at most 15%, more preferably at most 10% after storage of the capacitor at 125° C. for 1000 hours.
[0044] This preferred embodiment is a third embodiment of the capacitor 1 according to the invention and is preferably dependent on the first or second embodiment.
[0045] |4b| According to a further preferred embodiment of the capacitor 1 according to the present invention, the capacitor has a rated voltage in the range of 1 to 250 V, preferably in the range of 6 to 100 V, more preferably in the range of 10 to 63 V. This preferred embodiment is a fourth embodiment of the capacitor 1 according to the present invention, and preferably depends from any one of the first to third embodiments.
[0046] |1c| The contribution to solving at least one of the objects according to the present invention comprises, as components: a) a porous electrode body made of an electrode material, wherein a dielectric material at least partially covers the surface of the electrode material; ii) a solid electrolyte layer comprising a conductive polymer, the solid electrolyte layer at least partially covering a surface of the dielectric; iii) an encapsulant encapsulating the porous electrode body; According to a first embodiment of the capacitor 2, The capacitor has the following characteristics: (α1) A decrease of at most 20%, preferably at most 15%, even more preferably at most 10%, and most preferably at most 5% in relative capacitance ΔC as determined by the test method disclosed herein, where ΔC=C1-C2, where C1 is the relative initial capacitance and C2 is the relative capacitance after 400 cycles of surge testing.
[0047] Preferred porous bodies, electrode materials, dielectrics, conductive polymers and encapsulants are those used in the process according to the invention. It is also preferred that the capacitor 2 according to the invention has the same properties as the capacitor 1 according to the invention.
[0048] |2c| According to a preferred embodiment of the capacitor 2 according to the invention, the electrode material is aluminum and the dielectric is aluminum oxide, preferably Al2O3. This preferred embodiment is a second embodiment of the capacitor 2 according to the invention and is preferably dependent on the first embodiment.
[0049] According to a further preferred embodiment of the capacitor 2 according to the invention, the conductive polymer comprises at least one polymer selected from the group consisting of polythiophene, polypyrrole, polyaniline, and a mixture of at least two thereof. This preferred embodiment is a third embodiment of the capacitor 2 according to the invention, preferably dependent on the first or second embodiment.
[0050] |4c| According to a further preferred embodiment of the capacitor 2 of the present invention, the conductive polymer is poly(3,4-ethylenedioxythiophene) or a derivative thereof. This preferred embodiment is a fourth embodiment of the capacitor 2 of the present invention, and preferably depends from any one of the first to third embodiments.
[0051] According to a further preferred embodiment of the capacitor 2 of the present invention, the solid electrolyte layer further comprises at least one polymer anion. This preferred embodiment is a fifth embodiment of the capacitor 1 of the present invention, and preferably depends from any one of the first to fourth embodiments.
[0052] |6c| According to a further preferred embodiment of capacitor 2 according to the invention, the polymer anion is polystyrene sulfonic acid or a derivative thereof. In this regard, it is particularly preferred that the conductive polymer in the solid electrolyte layer is present in the form of a polythiophene / (poly)anion complex, the polythiophene being poly(3,4-ethylenedioxythiophene) and the polyanion being an anion of polystyrene sulfonic acid. This preferred embodiment is a sixth embodiment of capacitor 2 according to the invention, and is preferably subordinate to the fifth embodiment.
[0053] |7c| According to a further preferred embodiment of the capacitor 2 according to the invention, the capacitor satisfies the following properties: (α2) a capacitance decrease of at most 20%, preferably at most 15%, more preferably at most 10% upon a temperature decrease from 20°C to -55°C; and (α3) A capacitance loss of at most 20%, preferably at most 15%, more preferably at most 10% after storage of the capacitor at 125° C. for 1000 hours.
[0054] This preferred embodiment is a seventh embodiment of the capacitor 2 according to the present invention, and preferably depends on any one of the first to sixth embodiments.
[0055] |8c| According to a further preferred embodiment of the capacitor 2 according to the present invention, the capacitor has a rated voltage in the range of 1 to 250 V, preferably in the range of 6 to 100 V, more preferably in the range of 10 to 63 V. This preferred embodiment is an eighth embodiment of the capacitor 2 according to the present invention, and preferably depends from any one of the first to seventh embodiments.
[0056] |9c| According to a further preferred embodiment of the capacitor 2 according to the invention, the capacitor 2 has iv) an impregnation solution filling at least a portion of the open pore volume of the porous electrode body, the impregnation solution having a conductivity of preferably less than 1000 μS / cm, preferably less than 100 μS / cm, even more preferably less than 10 μS / cm, and most preferably less than 1 μS / cm, the impregnation solution comprising at least one impregnation solvent, the at least one impregnation solvent having a boiling point (determined at 1013 hPa) of at least 150° C., preferably at least 170° C., and more preferably at least 190° C. Further includes:
[0057] This preferred embodiment is a ninth embodiment of the capacitor 2 according to the invention, preferably dependent on any one of the first to eighth embodiments. Preferred impregnation solutions and impregnation solvents are the solutions and solvents mentioned above in connection with process step d) of the process according to the invention.
[0058] |1d| A contribution to solving at least one of the objects according to the present invention is made by using a capacitor 1 according to any one of the first to fourth embodiments or by using a capacitor 2 according to any one of the first to ninth embodiments in an electronic circuit, for example as a smoothing capacitor ("filter capacitor") or a suppression capacitor ("decoupling capacitor"). The electronic circuit can be found, for example, in computers (desktop, laptop, server), in computer peripheral devices (e.g., PC cards), in portable electronic devices such as mobile phones, digital cameras, chargers or consumer electronics, in consumer electrical equipment such as CD / DVD players and computer game consoles, in navigation systems, in long-range communication devices such as base stations for mobile communications, in household appliances in medical technology such as defibrillators, in power supplies such as those based on renewable energy or in power supplies for automotive electronics such as hybrid or electric vehicles.
[0059] |1e| The contribution to solving at least one of the objects of the present invention is made by an electronic circuit comprising a capacitor 1 according to any one of the first to fourth embodiments or by the use of a capacitor 2 according to any one of the first to ninth embodiments.
[0060] Process step a) In process step a) of the process according to the invention, a porous electrode body made of an electrode material is provided, the dielectric at least partially covering the surface of this electrode material.
[0061] In principle, a porous electrode body can be manufactured by compressing and sintering a valve metal powder having a large surface area to form the porous electrode body. In this regard, an electrical contact wire, preferably made of a valve metal such as tantalum, is conventionally compressed into the porous electrode body. The porous electrode body is then coated with a dielectric, i.e., an oxide layer, for example, by electrochemical oxidation. Alternatively, to obtain an anode film with a porous region, a metal film can be etched and coated with a dielectric by electrochemical oxidation. In the case of a wound capacitor, the anode film and cathode film with a porous region that form the electrode body are separated by a separator and wound.
[0062] Within the scope of the present invention, metals whose oxide coatings do not allow current to flow uniformly in both directions are considered valve metals. 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 representative examples of valve metals are Al, Ta, and Nb. A combination of electrical properties equivalent to a valve metal has metallic conductivity, and can be oxidized, resulting in an oxide layer that provides the above properties. For example, NbO exhibits metallic conductivity, but is generally not considered a valve metal. However, an oxidized NbO layer exhibits typical properties of a valve metal oxide layer, and as a result, NbO or an alloy or compound of NbO is a typical example of a compound with electrical properties equivalent to a valve metal. Electrode materials made of tantalum, aluminum, and electrode materials based on niobium or niobium oxide are preferred, with aluminum being particularly preferred as the electrode material.
[0063] To produce a porous electrode body, which often has porous regions, the valve metal can be sintered, for example, in powder form to provide a generally porous electrode body, or alternatively, the porous structure can be imprinted onto the metal body, the latter of which can be done, for example, by etching the film.
[0064] Hereinafter, for simplicity, a body having a porous region will also be referred to as porous. For example, an electrode body having a porous region will also be referred to as porous electrode body. On the one hand, a porous body can be perforated with multiple channels and therefore has a sponge-like structure. This is often the case when tantalum is used to construct a capacitor. On the other hand, pores can only be present on the surface, and the region located below the surface pores can be solid. This is often observed when aluminum is used in capacitor construction.
[0065] The porous electrode body thus produced is then oxidized by applying a voltage, for example in a suitable electrolyte, such as an aqueous solution of phosphoric acid or ammonium adipate, to form a dielectric. The magnitude of this formation voltage depends on the thickness of the oxide layer to be achieved and, correspondingly, on 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 10 to 200 V, more particularly preferably in the range of 15 to 100 V, and more preferably in the range of 20 to 50 V.
[0066] The porous electrode body used preferably has 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.
[0067] According to a particular embodiment of the process of the present invention, the electrolytic capacitor to be manufactured is an aluminum-wound capacitor. In this case, in process step a), a porous aluminum film as the electrode material is applied to the anode, whereby an aluminum oxide coating is applied as the dielectric. The aluminum film thus obtained (anode film) is then provided with a contact wire and wound around it, and a further porous aluminum film (cathode film) is also provided with a contact wire, with these two films being separated from each other by one or more separator papers, for example, based on cellulose or preferably synthetic paper. After winding, the thus obtained anode body is fixed, for example, with adhesive tape. The separator paper can be carbonized by heating in an oven. Methods for manufacturing anode bodies for aluminum-wound capacitors are well known in the prior art and are described, for example, in U.S. Pat. No. 7,497,879 (B2).
[0068] Process steps b) and c) In process step b) of the process according to the invention, liquid composition A, B or C as described in connection with the first embodiment of the process according to the invention, preferably liquid composition A (hereinafter simply referred to as liquid composition), preferably in the form of a dispersion comprising a conductive polymer and a dispersing agent, is introduced into at least a portion of the porous electrode body provided in process step a). Then, in process step c), the dispersing agent is at least partially removed to form a solid electrolyte at least partially covering the surface of the dielectric.
[0069] The liquid composition is introduced into the porous region using known processes, such as immersion, dipping, pouring, dripping, injecting, spraying, spreading, painting, or printing, such as inkjet printing, screen printing, or pad printing. The introduction is preferably carried out by immersing the porous electrode body provided in process step a) into the liquid composition and impregnating it accordingly with this liquid composition. The immersion or impregnation into the liquid composition is preferably carried out for a duration ranging from 1 second to 120 minutes, particularly preferably from 10 seconds to 60 minutes, and most preferably from 30 seconds to 15 minutes. The introduction of the liquid composition into the anode body can be facilitated, for example, by increasing or decreasing pressure, vibration, ultrasound, or heat.
[0070] The liquid composition can be introduced into the porous electrode body directly or with the aid of an adhesion promoter, e.g., a silane such as an organofunctional silane or a hydrolyzate thereof, e.g., 3-glycidoxy-propyltrialkoxysilane, 3-aminopropyltriethoxysilane, 3-mercaptopropyl-trimethoxysilane, 3-methacryloxypropyltrimethoxysilane, vinyltrimethoxysilane, or octyltriethoxysilane, and / or one or more other functional layers.
[0071] By introducing the liquid composition, it is preferably achieved that the liquid composition tends to cover the pores of the porous region to a lesser extent with a layer. To be precise, the surfaces of the pore cavities are at least partially coated with the liquid composition. In this way, not only do the particles present in the liquid composition form a layer that covers the openings of the pores, but at least a portion of the surface of the pores, and in many cases even the entire area, is covered with a layer of particles of the liquid composition.
[0072] The term "polymer", as used within the scope of the present invention, includes all compounds within the realization of the present invention having two or more identical or different repeating units.
[0073] The term "conductive polymer" as used herein refers in particular to a class of compounds, π-conjugated polymers, which have electrical conductivity after oxidation or reduction. Preferably, π-conjugated polymers having a conductivity of at least about 0.1 S / cm after oxidation are understood as conductive polymers.
[0074] The conductive polymer in the liquid composition is preferably selected from the group consisting of optionally substituted polythiophenes, polypyrroles, and polyanilines.
[0075] Particularly preferably, the conductive polymer comprises a polythiophene having repeating units selected from the group consisting of general formula (I), general formula (II), or general formula (III), or a combination of at least two thereof. In the following possible variant, the conductive polymer in the dispersion comprises at least one polythiophene having repeating units of general formula (I), general formula (II), or general formula (III), or repeating units of formulas (I) and (II), or repeating units of formulas (I) and (III), or repeating units of formulas (II) and (III), or repeating units of formulas (I), (II), and (III). [ka] [In the formula, A represents an optionally substituted C1-C5-alkylene residue, R is a straight or branched chain optionally substituted C-C 18 -Alkyl residue, optionally substituted C5-C 12 -cycloalkyl residue, optionally substituted C-C 14 -aryl residue, optionally substituted C7-C 18 - represents an aralkyl residue, an optionally substituted C1-C4-hydroxyalkyl residue or a hydroxyl residue, x represents an integer of 0 to 8, If several residues R are attached to A, they may be identical or different].
[0076] General formulas (I) and (II) should be understood such that x substituents R can be attached to the alkylene residue.
[0077] 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 represents an optionally substituted C2-C3-alkylene residue and x represents 0 or 1. Optionally substituted poly(3,4-ethylenedioxythiophene) is very particularly preferred as the conductive polymer of the solid electrolyte.
[0078] Within the framework of the present invention, the prefix "poly" is understood to mean that two or more identical or different repeating units are contained in the polymer or polythiophene. Polythiophenes contain a total of n repeating units of general formula (I) or (II) or (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), may be identical or different in each instance within one polythiophene. Polythiophenes having the same repeating units of general formula (I), (II), or (III), or the same repeating units of general formulas (I and II), or the same repeating units of general formulas (I and III), or the same repeating units of general formulas (II) and (III), or the same repeating units of general formulas (I), (II), and (III) are preferred. Polythiophenes having the same repeating units of general formula (I) or (II), or the same repeating units of general formulas (I and II), are particularly preferred.
[0079] The polythiophene preferably has an H at each end group.
[0080] Within the scope of the present invention, the C1-C5-alkylene residue A is preferably methylene, ethylene, n-propylene, n-butylene or n-pentylene. 18 The alkyl residue R is preferably a linear or branched C-C alkyl group 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-dodecyl, n-tridecyl, n-tetradecyl, n-hexadecyl or n-octadecyl. 18 - denotes alkyl residues, C5-C 12 - the cycloalkyl residue R denotes, for example, cyclopentyl, cyclohexyl, cycloheptyl, cyclooctyl, cyclononyl or cyclodecyl, C5-C 14 the aryl residue R denotes, for example, phenyl or naphthyl, and C7-C 18 -Aralkyl residue R denotes, 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 is provided for the purposes of exemplary illustration of the invention and should not be considered as exclusive.
[0081] As optional further substituents of residue A and / or residue R, numerous organic groups are considered within the scope of the present invention, such as alkyl groups, cycloalkyl groups, aryl groups, aralkyl groups, alkoxy groups, halogen groups, ether groups, thioether groups, disulfide groups, sulfoxide groups, sulfone groups, sulfonate groups, amino groups, aldehyde groups, keto groups, carboxylic ester groups, carboxylic acid groups, carbonate groups, carboxylate groups, cyano groups, alkylsilane groups, and alkoxysilane groups, as well as carboxylamide groups.
[0082] The above-listed residues A and R and / or further substituents of residues A and R come into consideration, for example, as substituents of polyaniline or polypyrrole. Unsubstituted polyaniline is preferred.
[0083] The scope of the present invention includes all of the general residue definitions, parameters, and descriptions presented above and listed below, or listed in the preferred ranges, together with each other, i.e., in any combination between the respective ranges and preferred ranges.
[0084] The polythiophenes used in the preferred process as solid electrolytes can be neutral or cationic. In preferred embodiments, they are cationic, with "cationic" referring only to the charge provided on the main polythiophene chain. Depending on the substituents on the residues, polythiophenes can carry positive and negative charges within the structural units, with the positive charge located on the main polythiophene chain and the negative charge located on the residue R, which is optionally substituted by a sulfonate or carboxylate group. Thus, the positive charge of the polythiophene main chain can be partially or completely compensated by an anionic group optionally present on the residue R. Generally, in these cases, the polythiophene can be cationic, neutral, or even anionic. However, within the scope of the present invention, all polythiophenes are considered cationic polythiophenes, since the positive charges on the main polythiophene chain are clearly important. The positive charges are not shown in the formula because their exact number and location cannot be precisely determined. However, the number of positive charges is at least 1 and at most n, where n represents the total number of all repeat units (same or different) within the polythiophene.
[0085] To compensate for the positive charge, cationic polythiophenes require anions as counterions, provided that this is not already done through optionally sulfonate- or carboxylate-substituted and therefore negatively charged residues R.
[0086] The counterions can be monomeric or polymeric anions, the latter hereinafter also referred to as polyanions. 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.
[0087] The polymeric anions herein can be, for example, the 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 polysulfonic acids can also be copolymers of vinyl carboxylic and vinyl sulfonic acids with other polymerizable monomers, such as acrylic esters and styrene.
[0088] Anions of polymeric carboxylic or sulfonic acids in the particles mentioned are preferred as polymeric anions.
[0089] Particularly preferred as polymer anions are poly(3,4-ethylenedioxythiophene) complexed with polystyrene sulfonic acid (PSS), which is present in the use of polythiophenes, and in particular the anions of poly(3,4-ethylenedioxythiophene) known from the prior art, preferably in the form of a PEDOT / PSS complex. Such complexes can be obtained by oxidative polymerization of thiophene monomers, preferably 3,4-ethylenedioxythiophene, in aqueous solution in the presence of polystyrene sulfonic acid.
[0090] The molecular weight of the polyacid providing the polyanion is preferably 1,000 to 2,000,000, particularly preferably 2,000 to 500,000. Polyacids or their alkali salts are commercially available, for example, polystyrene sulfonic acid and polyacrylic acid, but can also be produced using known processes (see, for example, Houben Weyl, Methoden der organischen Chemie, Vol. E20 Makromolekulare Stoffe, Part 2, (1987), [Methods of Organic Chemistry, Macromolecular Substances], p. 1141 et seq.).
[0091] The polymeric anion and the conductive polymer may be present in the liquid composition in a weight ratio of, in particular, 0.5:1 to 50:1, preferably 1:1 to 30:1, particularly preferably 1.5:1 to 20:1, where the weight of the conductive polymer corresponds to the weighed amount of the monomers used, assuming complete conversion during polymerization.
[0092] As the monomer anion, for example, C1-C 20 Alkanesulfonic acids, such as methane-, ethane-, propane-, butane-, or higher sulfonic acids, such as dodecanoic acid sulfonic 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 C-C 20Aromatic 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 monomeric onions of tetrafluoroborate, hexafluorophosphate, perchlorate, hexafluoroantimonate, hexafluoroarsenate, or hexachloroantimonate, can be used. The anions of p-toluenesulfonic acid, methanesulfonic acid, or camphorsulfonic acid are preferred as monomeric anions.
[0093] Cationic polythiophenes contain anions as counterions for charge compensation and are often referred to in specialist circles as polythiophene / (poly)-anion complexes.
[0094] Also suitable as polythiophenes that can be used to form the solid electrolyte layer in process steps b) and c) are self-doped polythiophenes, which preferably comprise repeat units of formula (I) 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%. [ka] [In the formula, X and Y are the same or different and are O, S, NR 1 indicates R 1 is C1-C 18 - represents alkyl or hydrogen, Z is at least an anionic substituent, preferably -SO3 - M + represents an organic residue having a group, and M + indicates a cation].
[0095] According to a preferred embodiment of the repeat unit of formula (I): Z is -(CH2) m -CR 2 R 3 -(CH2)n - indicates During the ceremony, R 2 is hydrogen, -(CH2) s -O-(CR 4 2) p -SO3 - M + , or -(CH2) p -SO3 - Indicates M, R 3 is -(CH2) s -O-(CR 4 2) p -SO3 - M + , or -(CH2) p -SO3 - M + indicates, 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; In the above formula, R 1 , R 2 , R 3 , and R 4 may be the same or different.
[0096] The above percentage values are in this context intended to represent the numerical content of units of structural formula (I) in the total number of monomer units in the self-doped conductive polymer.
[0097] Suitable cations M + For example, H + , Li + , Na + , K. + , Rb + , Cs + , and NH4 + A particularly preferred cation is Na + and K. + is.
[0098] Particularly preferred monomers of formula (I) are X and Y represent O, Z is -(CH2) m -CR 2 R 3 -(CH2) n - indicates R 2 is hydrogen or -(CH2) s -O-(CH2) p -SO3 - M + , -(CH2) p -SO3 - M + , or -(CH2) s -O-(CH2) p -CHR 4 -SO3 - M + indicates, R 3 is -(CH2) s -O-(CH2) p -SO3 - M + , -(CH2) p -SO3 - M + , or -(CH2) s -O-(CH2) p -CHR 4 -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 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.
[0099] Highly preferred monomers of structural formula (I) are X and Y represent O, Z is -(CH2)-CR 2 R 3 -(CH2) n - indicates R 2 indicates hydrogen, R 3 is -(CH2) s -O-(CH2) p -SO3 - M + , -(CH2) p -SO3 - M + , -(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.
[0100] Suitable examples of self-doping polymers that can also be used to form the solid electrolyte layer in process steps b) and c) are disclosed in WO 2014 / 048562A and U.S. Patent Application Publication No. 2015 / 0337061A. 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.
[0101] Preferably, the conductive polymer in the liquid composition used in process step b) is present in the form of particles, particularly preferably in the form of swollen gel particles of a polythiophene / (poly)-anion complex, such as PEDOT / PSS. The particles preferably have a specific conductivity of less than 100 S / cm. The specific conductivity of the particles in this context is the specific conductivity of the dry film formed from the particles upon drying of the dispersion. Preferably, a liquid composition is used, the particles of which have a specific conductivity of less than 50 S / cm, more preferably less than 20 S / cm, and even more preferably less than 10 S / cm. In this context, it is also preferred that the particles have a specific conductivity of 0.1 S / cm or more, preferably 0.5 S / cm or more, and even more preferably 1 S / cm or more. Most preferably, the particles have a specific conductivity in the range of 1 S / cm to 10 S / cm.
[0102] If the conductive polymer in the liquid composition used in process step b) is present in the form of particles, the particles preferably have a diameter d 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. 50 The particle diameter is determined by ultracentrifuge measurement. The particles of the conductive polymer in the liquid composition have a diameter of less than 150 nm, particularly preferably less than 100 nm, more particularly preferably less than 50 nm. 90 It is further preferred that the particles of the conductive polymer in the liquid composition have a diameter distribution of d greater than 1 nm, particularly preferably greater than 3 nm, more particularly preferably greater than 5 nm. 10 It has a diameter distribution of values.
[0103] The liquid composition used in process step b) preferably comprises the purity with respect to metals and transition metals as set out in the published document 2010 / 003874(A2) on page 6, lines 10 to 29. The low concentration of metals in the liquid composition has the major advantage that the dielectric is not damaged during the formation of the solid electrolyte and during the subsequent operation of the capacitor.
[0104] The liquid composition used in process step b) further comprises at least one dispersant, with water, an organic solvent or a mixture of an organic solvent and water being preferred as dispersant.
[0105] The following solvents can be mentioned as examples of dispersants: 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 acetic acid ester and acetic acid butyl ester; aromatic hydrocarbons such as toluene and xylene; aliphatic hydrocarbons such as hexane, heptane, and cyclohexane; chlorinated hydrocarbons such as dichloromethane 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. Furthermore, water or a mixture of water and the above organic solvents can also be used as the dispersant.
[0106] Preferred dispersants are water or other protic solvents such as alcohols, for example, methanol, ethanol, i-propanol, and butanol, as well as mixtures of water with these alcohols. A particularly preferred dispersant is water.
[0107] The liquid composition used in process step b) can further comprise additional components such as surface-active substances, for example, organofunctional silanes or their hydrolysates, such as ionic and nonionic surfactants or adhesion promoters, such as 3-glycidoxypropyltrialkoxysilane, 3-aminopropyltriethoxysilane, 3-mercaptopropyltrimethoxysilane, 3-methacryloxypropyltrimethoxysilane, vinyltrimethoxysilane, or octyltriethoxysilane, melamine compounds, blocked isocyanates, crosslinking agents such as functional silanes—for example, epoxy silanes, such as tetraethoxysilane, alkoxysilane hydrolysates, for example, those based on tetraethoxysilane, 3-glycidoxypropyltrialkoxysilane-polyurethane, polyacrylate, or polyolefin dispersions. The liquid composition used in process step b) can also comprise one or more organic binders soluble in organic solvents, as described on page 12, lines 16-34 of WO 2009 / 141209 A1. The liquid composition may have a pH value of 1 to 14, with a pH value of 1 to 8 being preferred. For corrosion-sensitive dielectrics such as aluminum oxide or niobium oxide, a liquid composition having a pH value of 2.5 to 8, more preferably 2.5 to 7, and most preferably 3 to 6 is preferred to avoid damage to the dielectric.
[0108] To adjust the pH value, for example, bases or acids described in WO 2010 / 003874(A2) on page 4, lines 13 to 32 can be added to the liquid composition. Preferred additives that do not impair the film formation of the liquid composition and are not volatile at relatively high temperatures, for example at soldering temperatures, but remain in the solid electrolyte under these conditions include, for example, the bases 2-dimethylaminoethanol, 2,2'-iminodiethanol, or 2,2',2''-nitrilotriethanol and the acid polystyrene sulfonic acid.
[0109] The viscosity of the liquid composition used in process step b) can be between 0.1 and 1000 mPa×s (at 20°C and 100 s), depending on the application process. -1(Measured with a rheometer at a shear rate of 1000 kJ / s). Preferably, the viscosity is 1 to 200 mPa×s, particularly preferably 10 to 150 mPa×s, and even more particularly preferably 10 to 100 mPa×s.
[0110] The solids content of the liquid composition used in process step b) 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 liquid composition. The solids content is determined by drying the dispersion at a temperature high enough to remove the dispersant but not to decompose the solid material.
[0111] After impregnation of the porous electrode body with the liquid composition, the dispersant is at least partially removed in process step c) to form a solid electrolyte layer which partially or completely covers the dielectric. In this connection, the coverage of the dielectric by the solid electrolyte layer preferably reaches at least 50%, particularly preferably at least 70%, most preferably at least 80%, and measurement of the capacitance of the capacitor under dry and wet conditions at 120°C allows the determination as described in DE 10 2005 043 828 (A).
[0112] The removal of the dispersant is preferably carried out by removing the porous electrode body from the liquid composition used in process step b) and subsequently drying, the drying being preferably carried out at a temperature in the range of 20°C to 200°C, particularly preferably in the range of 50°C to 180°C, and more preferably in the range of 80°C to 150°C. The drying conditions (i.e., drying time, drying pressure, and drying temperature) are preferably adjusted so as to be within a range that ensures the removal of at least 50% by weight, more preferably at least 75% by weight, even more preferably at least 90% by weight, even more preferably at least 95% by weight, and most preferably at least 99% by weight of the total amount of dispersant when forming the solid electrolyte layer. In a particularly preferred embodiment of the process according to the invention, the drying conditions are adjusted so as to be within a range that ensures the complete removal of the dispersant when forming the solid electrolyte.
[0113] Process steps d) and e) In process step d) of the process according to the invention, at least some of the pores of the porous electrode body obtained in process step c) (i.e. the porous electrode body whose dielectric is at least partly covered with a solid electrolyte layer) are filled with an impregnation solution comprising at least one impregnation solvent, and in process step e) at least some of the impregnation solvent is removed from the porous electrode body (1) obtained in process step d).
[0114] Immersion in the impregnation solution or, correspondingly, impregnation with the impregnation solution is preferably carried out for a duration ranging from 1 second to 120 minutes, particularly preferably from 10 seconds to 60 minutes, most preferably from 30 seconds to 15 minutes. Immersion is preferably carried out by at least partially immersing the porous electrode body obtained in process step c) in the impregnation solution or by injecting the impregnation solution into the porous electrode body and thereby impregnating it with this impregnation solution. The introduction of the impregnation solution into the porous electrode body can be facilitated, for example, by increasing or decreasing pressure, vibration, ultrasound, or heat.
[0115] When the pores of the porous electrode body are impregnated with the impregnation solution in process step d), it is further preferred to ensure that the impregnation is achieved to the extent that at least 25% by volume, preferably at least 30% by volume, more preferably at least 40% by volume, even more preferably at least 50% by volume, even more preferably at least 75% by volume and most preferably at least 90% by volume of the open pore volume of the porous electrode body obtained in process step c) is filled with the impregnation solution.
[0116] Preferred impregnation solvents used in the process according to the invention satisfy at least one of the following properties, and more preferably both of these properties: (β1) They have a boiling point (measured at 1013 hPa) of at least 200°C and less than 330°C; (β2) They have a melting point below 15°C, preferably below 5°C, even more preferably below -5°C.
[0117] In this context, it is particularly preferred that the at least one impregnation solvent is a compound containing two hydroxy groups or a compound containing one hydroxy group and one ether group, preferably one alkyl ether group, particularly preferably a polyglycol having 2 to 4 repeating units.More preferably, the at least one impregnation solvent is selected from the group consisting of diethylene glycol, triethylene glycol, tetraethylene glycol and mixtures of at least two thereof, with diethylene glycol and triethylene glycol being particularly preferred.
[0118] In addition to the impregnation solvent, the impregnation solution may contain further components such as stabilizers (such as those mentioned above) and / or further solvents, in particular low-boiling solvents having a boiling point (determined at 1013 hPa) below 150° C., preferably below 120° C. However, it is preferred that the impregnation solution used in process step d) comprises at least one impregnation solvent in an amount of at least 50% by weight, preferably at least 75% by weight, and even more preferably at least 90% by weight, in each case based on the total weight of the impregnation solution. In the case of two or more impregnation solvents, these amounts refer to the total amount of impregnation solvent.
[0119] In process step e), the impregnation solvent is at least partially removed from the porous electrode body obtained in process step d). The removal of the impregnation solvent is preferably carried out by extracting the porous electrode body from the impregnation solution composition used in process step d) and subsequently drying, preferably at a temperature in the range of 80°C to 250°C, particularly preferably in the range of 100°C to 200°C, more preferably in the range of 120°C to 150°C. The drying conditions (i.e., drying time, drying pressure and drying temperature) are preferably adjusted so as to be within a range that ensures that at least 50% by weight, preferably at least 70% by weight, more preferably at least 80% by weight, even more preferably at least 90% by weight, even more preferably at least 95% by weight, and most preferably at least 99% by weight of the total amount of impregnation solvent is removed from the porous electrode body obtained in process step d). In a particularly preferred embodiment of the process according to the invention, the drying conditions are adjusted in process step e) so as to be within a range that ensures that the impregnation solvent is completely removed from the porous electrode body obtained in process step d).
[0120] Encapsulation in process step f) After process step e), the impregnation solvent is at least partially removed from the porous electrode body obtained in process step d) in the manner described above, and the electrolytic capacitor can be completed in a manner known to those skilled in the art. In the case of tantalum electrolytic capacitors, the capacitor body can be coated with a graphite layer and a silver layer, as known, for example, from DE 10 2005 043 828 (A). In the case of aluminum wound capacitors, corresponding to the teachings of U.S. Pat. No. 7,497,879 (B2), the capacitor body is assembled into an aluminum cup, provided with a rubber seal, and mechanically tightly closed by flanging. Subsequently, defects in the dielectric can be removed from the capacitor in a manner known per se by "aging."
[0121] The encapsulation is preferably achieved by sealing the capacitor body with a resin, such as an epoxy resin or a thermoplastic resin, such as those disclosed in EP 0 447 165 A2. In the case of aluminum electrolytic capacitors, the encapsulation is preferably achieved by providing an aluminum cup on the porous electrode body obtained in process step e) and closing it with a sealing rubber.
[0122] Process step e2) According to a preferred embodiment of the process according to the invention, the process further comprises a process step e2) applied after process step e) and before process step f), in which at least some of the pores of the porous electrode body obtained in process step e) are filled again with an impregnation solution comprising at least one impregnation solvent having a boiling point (measured at 1013 hPa) of at least 150°C, preferably at least 170°C, more preferably at least 190°C. Preferred impregnation solutions and impregnation solvents are those already mentioned in connection with process step d). The same applies to the conditions for filling at least some of the pores of the porous electrode body with the impregnation solution. When the pores of the porous electrode body are impregnated with the impregnation solution in process step e2), it is also preferable to ensure that the impregnation is achieved to the extent that at least 50% by volume, more preferably at least 75% by volume, and even more preferably at least 90% by volume of the open pore volume of the porous electrode body obtained in process step e) is filled with the impregnation solution, which preferably comprises at least one impregnation solvent in an amount of at least 50% by weight, preferably at least 75% by weight, even more preferably at least 90% by weight, and most preferably at least 95% by weight, in each case based on the total weight of the impregnation solution. In process step e2), it is particularly preferable to achieve this filling amount just before carrying out process step f), i.e., before sealing the porous electrode body, in order to prevent further evaporation of the impregnation solvent from the pores. Therefore, in contrast to the impregnation solution applied in process step d), the impregnation solution applied in process step e2) remains at least to some extent, preferably completely, in the pores of the porous electrode body before sealing. [Brief explanation of the drawings]
[0123] The invention will now be described in more detail with reference to non-limiting figures and examples. [Figure 1] 1 is a schematic cross-sectional view of a portion of a capacitor according to the invention. The latter comprises a porous electrode body 1, comprising pores 5 made primarily from a porous electrode material 2, such as aluminum. A dielectric 3 is formed as a thin layer on the surface of the electrode material 2, thereby forming a still porous anode body comprising the electrode material 2 and the electrode body 1 made from the dielectric 3. A layer of solid electrolyte 4 (e.g. made from PEDOT / PSS particles) follows on the dielectric 3, optionally after further layers, resulting in the formation of a capacitor body comprising the electrode material 2, the dielectric 3, and the electrode body 1 made from the solid electrolyte 4. [Figure 2] 2 shows an aluminum capacitor according to the present invention, comprising a capacitor element 8 (porous electrode material 2 coated with dielectric 3 and solid electrolyte 4) and leads 10 contacting a porous anode foil and an opposing cathode foil, both foils rolled together with two sheets of separator paper between them and secured with end tape. The capacitor element 8 is held within an aluminum casing 7 in the shape of a closed-end cylinder, with a rubber seal 9 attached to the opening of the casing. [Figure 3] Figure 3 shows a schematic cross section through part of a capacitor obtained by a particular embodiment of the process according to the invention, in which in an additional process step e2) the pores 5 of the porous electrode body 1 obtained in process step e) are again at least partially filled with an impregnation solution (for example diethylene glycol, triethylene glycol, tetraethylene glycol or a mixture of at least two thereof), see grey shading in Figure 3, thereby forming a capacitor comprising a porous electrode body 1 made from an electrode material 2, a dielectric 3, a solid electrolyte 4 and an impregnation solution 6 (see grey shading in Figure 3).
[0124] Measurement method: Capacitance (CAP) To determine the characteristic (α1), the capacitance was determined using an LCR meter (Agilent 4284A) at 20°C and 120Hz. The relative initial capacitance C1 was calculated as follows: C1 = (Capacitance before surge test) / (Rated capacitance) The rated capacitance is the capacitance that the electrode body is designed to by the selection of aluminum foil, anodization (forming) and size.
[0125] The relative capacitance C2 after the surge test was calculated using the following formula. C2 = (Capacitance after surge test) / (Rated capacitance) To determine characteristic (α2), the capacitance was determined at 120 Hz at 20° C. and −55° C. using the same LCR meter. To determine characteristic (α3), the capacitance was determined at 20° C. and 120 Hz using the same LCR meter.
[0126] Solids To determine the solids content, 5 g of the liquid composition used in process step b) was dried at 100° C. for 15 hours and the solids content was determined by differential weighing.
[0127] pH value The pH value is determined using a pH meter. After calibration, the pH electrode is placed in the slowly stirred dispersion or solution until a constant pH reading is obtained.
[0128] conductivity A cleaned glass substrate was placed on a spin coater, and 10 ml of the liquid composition used in process step b) was dispensed onto the substrate. The remaining solution was then shaken off by rotating the plate. The thus-coated substrate was then dried on a hot plate at 130 °C for 15 minutes. The layer thickness d was then determined using a layer thickness measuring device (Tencor, Alphastep 500). The electrical conductivity was measured by depositing Ag electrodes with a length L of 2.0 cm at a distance a of 1.0 cm through a shadow mask. The resulting structure of Ag electrodes and the polymer film between them was electrically isolated from the surrounding polymer film on the substrate by scraping the polymer with a razor blade to form a rectangular frame. The surface resistance R of the polymer film was determined using an electrometer (Keithley 614) by contacting the Ag electrodes with gold contact pins.
[0129] The specific electrical resistivity ρ (unit: "Ωcm") is calculated using the following formula: ρ=R×L×d / a.
[0130] The conductivity σ (unit: S / cm) is calculated using the following formula: σ=1 / ρ
[0131] Surge Test The capacitor was connected in series to the power bank via a 100 milliohm resistor and subjected to 18.4V voltage pulses with a 10-second voltage-on (charging the capacitor) and 10-second voltage-off (discharging the capacitor) pulse period. The peak current of each charge / discharge was approximately 80A. One surge cycle consisted of a charge and a discharge and lasted for 20 seconds.
[0132] Particle size measurement Particle size is determined as disclosed by HG Muller in Colloid Polym. Sci. 267, 1113-1116 (1989). [Example]
[0133] Process step a) A porous electrode body for a cylindrical aluminum capacitor (shown in FIG. 2) having a rated voltage of 16 V and a rated capacitance of 100 μF was fabricated in the following manner.
[0134] The aluminum foil was etched to roughen its surface, and then anodized using an aqueous ammonium adipate solution to form a dielectric layer on the surface of the aluminum foil, thereby producing an anode foil.
[0135] The surface of the second aluminum foil was roughened by etching, thereby producing a cathode foil.
[0136] The anode and cathode leads were connected to the anode and cathode foils, respectively. The anode and cathode foils were rolled with two separator papers between them. Tape was applied to the outside of the rolled element to prevent the foil from unwinding. The rolled element was then subjected to another anodization to form a dielectric layer on the cut edge of the anode foil.
[0137] In this way, an anode body comprising an electrode body having a dielectric layer was prepared.
[0138] Process step b) The porous electrode body from process step a) was placed in a chamber containing a bath of a liquid composition comprising a conductive polymer. The air pressure in the chamber was reduced to 100 hPa. The anode body was immersed in the liquid composition for 300 seconds. The anode body was then removed from the liquid composition and the chamber was vented to atmospheric pressure.
[0139] Process step c) The anode body was dried at 120°C for 30 minutes and then at 150°C for 30 minutes.
[0140] The process steps b) and c) were carried out once again, thus obtaining a capacitor body.
[0141] Process step d) The capacitor body of process step c) was immersed in the impregnation solution for 300 seconds.
[0142] Process step e) The capacitor body of process step d) was extracted from the impregnation solution and dried at 120°C for 30 minutes and then at 150°C for 30 minutes.
[0143] Process step f) The capacitor body of process step e) was placed in a cylindrical aluminum housing and sealed with a rubber seal to obtain the finished capacitor.
[0144] Preparation Example 1 30nm d 50 An aqueous solution of poly(3,4-ethylenedioxythiophene) / polystyrene sulfonate (Clevios PH, Heraeus Germany) with a particle size distribution of 0.05 was concentrated to a solids content of 2.5% and homogenized five times under a pressure of 2500 bar using a high-pressure homogenizer. The pH of the solution was then adjusted to 3.0 using ammonia. A liquid composition containing a conductive polymer was thus obtained. The electrical conductivity of the liquid composition was determined to be 1 S / cm.
[0145] Preparation Example 2 An aqueous solution of poly(3,4-ethylenedioxythiophene) / polystyrene sulfonate (Clevios K Nano LV, Heraeus Germany) was concentrated to a solids content of 2.5% by ultrafiltration and homogenized under 2500 bar pressure using a high-pressure homogenizer. The pH of the solution was adjusted to 3.0 using ammonia and diluted with DI water to a solids content of 2%. A liquid composition containing a conductive polymer was thus obtained. The conductivity of the liquid composition was determined to be 380 S / cm.
[0146] Preparation Example 3 The liquid composition of Preparation Example 2 was concentrated to a solids content of 3% by ultrafiltration and homogenized five times at a pressure of 2500 bar using a high-pressure homogenizer. The resulting liquid composition was adjusted to pH 3.0 using ammonia and diluted with DI water to a solids content of 2%. A liquid composition containing a conductive polymer was thus obtained. The conductivity of the liquid composition was determined to be 260 S / cm.
[0147] Preparation Example 4 The liquid composition of Preparation Example 3 was concentrated to a solids content of 4% by ultrafiltration and then subjected to 5 passes of ultrafiltration at 2500 bar using a high-pressure homogenizer. The resulting liquid composition was adjusted to pH 3.0 using ammonia and diluted with DI water to a solids content of 2%. A liquid composition containing a conductive polymer was thus obtained. The electrical conductivity of the liquid composition was determined to be 90 S / cm.
[0148] Preparation Example 5 The liquid composition of Preparation Example 4 was concentrated to a solids content of 4% by ultrafiltration and homogenized five times at a pressure of 2500 bar using a high-pressure homogenizer. The resulting liquid composition was adjusted to pH 3.0 using ammonia and diluted with DI water to a solids content of 2%. A liquid composition containing a conductive polymer was thus obtained. The electrical conductivity of the liquid composition was determined to be 10 S / cm.
[0149] Example 1 The capacitor was fabricated in the following manner.
[0150] A first anode body was prepared according to process step a). The anode body was then treated using the liquid composition containing the conductive polymer of Preparation Example 1 according to process steps b) and c). Process steps b) and c) were carried out again. Thus, a capacitor body was obtained.
[0151] The resulting capacitor body was then impregnated with ethylene glycol (EG) as the impregnation solution according to process step d) and dried according to process step e).Finally, the capacitor body was encapsulated according to process step f) to obtain a capacitor.
[0152] The capacitance of the capacitor was measured before and after a surge test of 400 surge cycles. The relative initial capacitance and the relative capacitance after the surge test are shown in Table 1.
[0153] Example 2 Capacitors were manufactured and evaluated as in Example 1, except that diethylene glycol (DEG) was used as the impregnation solution in process step d).
[0154] Example 3 Capacitors were manufactured and evaluated as in Example 1, except that triethylene glycol (TEG) was used as the impregnation solution in process step d).
[0155] Example 4 Capacitors were manufactured and evaluated as in Example 1, except that 1,5-pentanediol was used as the impregnation solution in process step d).
[0156] Example 5 Capacitors were manufactured and evaluated as in Example 1, except that dimethyl sulfoxide (DMSO) was used as the impregnation solution in process step d).
[0157] Example 6 Capacitors were manufactured and evaluated in the same manner as in Example 1, except that gamma-butyrolactone (GBL) was used as the impregnation solution in process step d). [Table 1]
[0158] Comparative Example 1 A first anode body was prepared according to process step a). The anode body was then treated using the liquid composition containing the conductive polymer of Preparation Example 2 according to process steps b) and c). Process steps b) and c) were carried out again. Thus, a capacitor body was obtained.
[0159] The obtained capacitor body was then impregnated with diethylene glycol as the impregnation solution according to process step d) and dried according to process step e).Finally, the capacitor body was encapsulated according to process step f) to obtain a capacitor.
[0160] The capacitance of the capacitor was measured before and after a surge test of 1000 surge cycles. The relative initial capacitance and the relative capacitance after the surge test are shown in Table 2.
[0161] Comparative Example 2 A capacitor was produced and evaluated in the same manner as in Comparative Example 1, except that the liquid composition of Preparation Example 3 was used as the liquid composition containing a conductive polymer in process step b).
[0162] Example 7 A capacitor was produced and evaluated in the same manner as in Comparative Example 1, except that the liquid composition of Preparation Example 4 was used as the liquid composition containing a conductive polymer in process step b).
[0163] Example 8 A capacitor was produced and evaluated in the same manner as in Comparative Example 1, except that the liquid composition of Preparation Example 5 was used as the liquid composition containing a conductive polymer in process step b). [Table 2]
[0164] Example 9 A first anode body was prepared according to process step a). The anode body was then treated using the liquid composition containing the conductive polymer of Preparation Example 1 according to process steps b) and c). Process steps b) and c) were carried out again. Thus, a capacitor body was obtained.
[0165] The obtained capacitor body was then impregnated with diethylene glycol as the impregnation solution according to process step d) and dried according to process step e).Finally, the capacitor body was encapsulated according to process step f) to obtain a capacitor.
[0166] The capacitance of the capacitor was measured before and after a surge test of 2000 surge cycles. The relative initial capacitance and the relative capacitance after the surge test are shown in Table 3.
[0167] Example 10 A first anode body was prepared according to process step a). The anode body was then treated using the liquid composition containing the conductive polymer of Preparation Example 1 according to process steps b) and c). Process steps b) and c) were carried out again. Thus, a capacitor body was obtained.
[0168] The resulting capacitor body was then impregnated with diethylene glycol as the impregnation solution according to process step d) and dried according to process step e).
[0169] The resulting capacitor body was then impregnated a second time according to process step e2) using diethylene glycol as the impregnation solution (without an additional drying step). Finally, the capacitor body was encapsulated according to process step f) to obtain a capacitor.
[0170] The capacitance of the capacitor was measured before and after a surge test of 2000 surge cycles. The relative initial capacitance and the relative capacitance after the surge test are shown in Table 3. [Table 3]
[0171] Example 11 A capacitor was produced in the same manner as in Example 9.
[0172] The capacitance of the capacitor was measured at 20° C. and −55° C. The relative capacitance at −55° C. was calculated according to the following formula: (Relative capacitance at -55°C) = (Capacitance at -55°C) / (Capacitance at 20°C).
[0173] The results are shown in Table 4.
[0174] Comparative Example 3 A capacitor was produced and evaluated in the same manner as in Example 11, except that in process step b), the liquid composition containing a conductive polymer was the liquid composition of Preparation Example 2. The results are shown in Table 4. [Table 4]
[0175] Example 12 A capacitor was produced in the same manner as in Example 9.
[0176] The capacitance of the capacitors was measured at 20° C. before and after 1000 hours of storage at a storage temperature of 125° C. The relative capacitance after 1000 hours of storage at 125° C. was calculated according to the following formula: (Relative capacitance after 1000 hours at 125°C) = (Capacitance at 20°C after 1000 hours storage at 125°C) / (Capacitance at 20°C before 1000 hours storage at 125°C) The results are shown in Table 5.
[0177] Example 13 Capacitors were prepared and evaluated in the same manner as in Example 12, except that a mixture of 80 wt. % diethylene glycol (DEG) and 20 wt. % tannic acid was used as the impregnation solution in process step d).
[0178] The results are shown in Table 5. [Table 5]
[0179] Key to reference number 1 Porous electrode body 2 Electrode material 3 Dielectrics 4 Solid electrolyte 5 pores 6 Impregnation solution 7 Enclosure (aluminum housing) 8 Capacitor element (porous electrode material coated with dielectric and solid electrolyte and containing impregnating solvent) 9 Rubber seal 10 Lead Wire
Claims
1. 1. A process for manufacturing a capacitor, comprising the process steps: a) providing a porous electrode body (1) made of an electrode material (2), wherein a dielectric (3) at least partially covers the surface of said electrode material (2); b) introducing a liquid composition comprising a conductive polymer and a dispersant into at least a portion of the porous electrode body (1) provided in process step a), wherein the conductive layer made from the liquid composition has a conductivity of less than 10 S / cm, c) at least partially removing said dispersant from said porous electrode body (1) obtained in process step b) to form a solid electrolyte layer (4) at least partially covering the surface of the dielectric (3); d) filling at least some of the pores (5) of the porous electrode body (1) obtained in process step c) with an impregnation solution comprising at least one impregnation solvent, said at least one impregnation solvent having a boiling point of at least 150° C. (measured at 1013 hPa), e) at least partially removing said impregnation solvent from said porous electrode body (1) obtained in process step d), f) encapsulating the porous electrode body (1) obtained in process step e); The process includes:
2. 1. A process for manufacturing a capacitor, comprising the process steps: a) providing a porous electrode body (1) made of an electrode material (2), wherein a dielectric (3) at least partially covers the surface of said electrode material (2); b) introducing a liquid composition comprising a conductive polymer and a dispersant into at least a portion of the porous electrode body (1) provided in process step a), wherein the conductive layer made from the liquid composition has a conductivity of less than 100 S / cm, the conductive polymer in the liquid composition being present in the form of a polythiophene / (poly)anion complex, the polythiophene being poly(3,4-ethylenedioxythiophene), c) at least partially removing said dispersant from said porous electrode body (1) obtained in process step b) to form a solid electrolyte layer (4) at least partially covering the surface of the dielectric (3); d) filling at least some of the pores (5) of the porous electrode body (1) obtained in process step c) with an impregnation solution comprising at least one impregnation solvent, said at least one impregnation solvent having a boiling point of at least 150° C. (measured at 1013 hPa), e) at least partially removing said impregnation solvent from said porous electrode body (1) obtained in process step d), f) encapsulating the porous electrode body (1) obtained in process step e); The process includes:
3. 3. The process according to claim 1 or 2, wherein the conductive polymer in the liquid composition used in process step b) is present in the form of particles, the particles having a diameter d50 in the range of 1 to 100 nm.
4. 3. The process according to claim 1 or 2, wherein the conductive polymer in the liquid composition used in process step b) is present in the form of a polythiophene / (poly)anion complex, wherein the polythiophene is poly(3,4-ethylenedioxythiophene) and the polyanion is the anion of polystyrenesulfonic acid.
5. 3. The process according to claim 1 or 2, wherein the liquid composition applied in process step b) comprises less than 3% by weight of a high-boiling solvent having a boiling point of at least 150° C. (measured at 1013 hPa).
6. 3. The process according to claim 1 or 2, wherein the at least one impregnation solvent in the impregnation solution applied in process step d) has a melting point below 15°C.
7. 3. The process according to claim 1 or 2, wherein the impregnation solvent in the impregnation solution applied in process step d) has a boiling point (measured at 1013 hPa) of at least 200°C and less than 330°C.
8. 8. The process of claim 7, wherein the at least one impregnation solvent in the impregnation solution applied in process step d) is a polyglycol having 2 to 4 repeat units.
9. 9. The process of claim 8, wherein the at least one impregnation solvent in the impregnation solution applied in process step d) is selected from the group consisting of diethylene glycol, triethylene glycol, tetraethylene glycol, and mixtures of at least two thereof.
10. 3. The process according to claim 1 or 2, wherein the impregnation solution used in process step d) comprises a stabilizer.
11. Process step e2) applied after process step e) and before process step f): e2) filling at least some of the pores (5) of the porous electrode body (1) obtained in process step e) with an impregnation solution (6) comprising at least one impregnation solvent, the at least one impregnation solvent having a boiling point of at least 150° C. (measured at 1013 hPa), 3. The process of claim 1 or 2, further comprising:
12. 12. The process according to claim 11, wherein the impregnation solvent in the impregnation solution (6) applied in process step e2) has a melting point below 15°C.
13. i) a porous electrode body (1) made of an electrode material (2), wherein a dielectric (3) at least partially covers the surface of the electrode material (2); ii) a solid electrolyte layer (4) comprising a conductive polymer, the solid electrolyte layer (4) at least partially covering the surface of the dielectric (3), the conductive layer having a conductivity of less than 10 S / cm; iii) an enclosure that encloses the porous electrode body (1); A capacitor including as a component thereof, The capacitor has the following characteristics: (α1) A maximum 20% decrease in relative capacitance ΔC determined by the following test method (*) is met, where ΔC = C1 - C2, where C1 is the relative initial capacitance and C2 is the relative capacitance after 400 cycles of surge testing. Capacitor. *Test method: The capacitance was determined using an LCR meter at 20°C and 120 Hz. The relative initial capacitance C1 is calculated by: C1 = (Capacitance before surge test) / (Rated capacitance) The rated capacitance is the capacitance that the electrode body is designed by selecting aluminum foil, anodizing (forming) and size, The relative capacitance C2 after the surge test is calculated by the following formula: C2 = (capacitance after surge test) / (rated capacitance) The capacitor was connected in series to the power bank via a 100 milliohm resistor and subjected to 18.4 V voltage pulses with a pulse period of 10 seconds voltage-on (charging the capacitor) and 10 seconds voltage-off (discharging the capacitor), with a peak current of approximately 80 A for each charge and discharge, and one surge cycle consisting of charging and discharging having a duration of 20 seconds.
14. i) a porous electrode body (1) made of an electrode material (2), wherein a dielectric (3) at least partially covers the surface of the electrode material (2); ii) a solid electrolyte layer (4) containing a conductive polymer, the solid electrolyte layer (4) at least partially covering the surface of the dielectric (3), the conductive polymer being present in the form of a polythiophene / (poly)anion complex, and the polythiophene being poly(3,4-ethylenedioxythiophene); iii) an enclosure that encloses the porous electrode body (1); A capacitor including as a component thereof, The capacitor has the following characteristics: (α1) A maximum 20% decrease in relative capacitance ΔC determined by the following test method (*) is met, where ΔC = C1 - C2, where C1 is the relative initial capacitance and C2 is the relative capacitance after 400 cycles of surge testing. Capacitor. *Test method: The capacitance was determined using an LCR meter at 20°C and 120 Hz. The relative initial capacitance C1 is calculated by: C1 = (Capacitance before surge test) / (Rated capacitance) The rated capacitance is the capacitance that the electrode body is designed by selecting aluminum foil, anodizing (forming) and size, The relative capacitance C2 after the surge test is calculated by the following formula: C2 = (capacitance after surge test) / (rated capacitance) The capacitor was connected in series to the power bank via a 100 milliohm resistor and subjected to 18.4 V voltage pulses with a pulse period of 10 seconds voltage-on (charging the capacitor) and 10 seconds voltage-off (discharging the capacitor), with a peak current of approximately 80 A for each charge and discharge, and one surge cycle consisting of charging and discharging having a duration of 20 seconds.
15. The capacitor has the following characteristics: (α2) A maximum 20% decrease in capacitance when the temperature is lowered from 20°C to -55°C; and (α3) The capacitor according to claim 13 or 14, which satisfies a maximum capacitance decrease of 20% after storing the capacitor at 125°C for 1000 hours.
16. Use of a capacitor according to claim 13 or 14 in an electronic circuit.
17. Use of a capacitor obtainable by the process according to claim 1 or 2 in an electronic circuit.
18. An electronic circuit comprising the capacitor according to claim 13 or 14.
19. An electronic circuit comprising a capacitor obtainable by the process according to claim 1 or 2.
Citation Information
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