Electrode foil for electrolytic capacitors, electrolytic capacitor, and method for manufacturing electrode foil for electrolytic capacitors

The electrode foil for electrolytic capacitors addresses the challenge of balancing capacitance and strength by controlling pore distribution and thickness, resulting in a reliable, high-capacity capacitor with improved manufacturing robustness.

JP7839982B2Active Publication Date: 2026-04-03PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-07-29
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing electrode foils for electrolytic capacitors face challenges in balancing increased capacitance with maintaining strength, as higher pit density and thickness in the porous portion lead to reduced strength and potential foil breakage during manufacturing.

Method used

The electrode foil design includes a core portion and a porous portion with a specific pore distribution and thickness ratio, where the average pore diameter and porosity are controlled to enhance capacitance while maintaining strength, achieved through controlled etching and compression processes.

Benefits of technology

This design results in a highly reliable, large-capacity electrolytic capacitor with improved electrolyte retention and dielectric contact, reducing the risk of foil breakage during manufacturing.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This electrode foil for electrolytic capacitors contains a valve action metal and is provided with a core part and a porous part continuous with the core part. The porous part has a thickness of Τ μm and has an inner layer region on the core part side and a surface layer region on the side opposite from the core part. The surface layer region is a region in which the distance from the outer surface of the porous part is T / 4 or less, and the inner layer region is a region in which the distance from the boundary of the porous part with the core part is T / 4 or less. The average diameter D1 nm of pores in the surface layer region is smaller than the average diameter D2 nm of pores in the inner layer region.
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Description

[Technical Field]

[0001] This disclosure relates to electrode foil for electrolytic capacitors, electrolytic capacitors, and a method for manufacturing electrode foil for electrolytic capacitors. [Background technology]

[0002] The electrode foil of an electrolytic capacitor contains a valve-acting metal and comprises a porous portion and a core portion continuous with the porous portion. The porous portion provides an electrode foil with a large surface area, thereby increasing the capacitance of the electrolytic capacitor.

[0003] Patent Document 1 proposes an electrode foil for aluminum electrolytic capacitors, characterized by increasing the surface area per unit volume compared to before compression by compressing an aluminum foil that has been subjected to surface expansion treatment by etching in the foil thickness direction. [Prior art documents] [Patent Documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 11-26320 [Overview of the Initiative] [Problems that the invention aims to solve]

[0005] Studies on pores within the etching layer remain insufficient, and further improvements in the performance of electrolytic capacitors are needed. [Means for solving the problem]

[0006] One aspect of the present disclosure relates to an electrode foil for an electrolytic capacitor, which includes a valve-acting metal and has a core portion and a porous portion continuous with the core portion. The porous portion has a thickness of T μm and has an inner layer region on the core portion side and a surface layer region on the side opposite to the core portion. The surface layer region is a region where the distance from the outer surface of the porous portion is T / 4 or less, and the inner layer region is a region where the distance from the boundary of the porous portion with the core portion is T / 4 or less. The average pore diameter D1 nm of the pores in the surface layer region is smaller than the average pore diameter D2 nm of the pores in the inner layer region. Hereinafter, such an electrode foil is also referred to as "electrode foil A".

[0007] Another aspect of the present disclosure relates to an electrode foil for an electrolytic capacitor, which includes a valve-acting metal and has a core portion and a porous portion continuous with the core portion. In the pore distribution of the porous portion measured by the mercury intrusion method, the integrated pore volume V0 cm 3 / g at a pore diameter of 0.01 μm or more and 1 μm or less and the integrated pore volume V S1 cm 3 / g at a pore diameter of 0.01 μm or more and 0.06 μm or less satisfy the relationship of V S1 / V0 ≦ 0.07. Hereinafter, such an electrode foil is also referred to as "electrode foil B".

[0008] Still another aspect of the present disclosure relates to an electrolytic capacitor including a capacitor element. The capacitor element includes a wound body and an electrolyte. The wound body is formed by winding an anode foil, a cathode foil, and a separator disposed between the anode foil and the cathode foil. The anode foil includes the above electrode foil (electrode foil A, electrode foil B, or an electrode foil that simultaneously satisfies their configurations) and a dielectric layer that covers the metal skeleton constituting the porous portion of the electrode foil.

[0009] Still another aspect of the present disclosure includes an etching step of performing an etching treatment on a sheet containing a valve-acting metal to form porous portions on both surfaces of the sheet, and a compression step of compressing the sheet in the thickness direction after the etching treatment. After the compression step, the thickness T A μm of the sheet and the thickness T μm per side of the porous portion satisfy 90 ≦ T A≦200, 25≦T≦(T A relates to a method for manufacturing an electrode foil for an electrolytic capacitor that satisfies the relationship of / 2)-10.

Effects of the Invention

[0010] According to the present disclosure, an electrolytic capacitor with high reliability and large capacitance can be obtained.

[0011] The novel features of the present disclosure are described in the appended claims, but the present disclosure will be better understood with reference to the following detailed description in conjunction with the drawings, with respect to both the configuration and the content, and other objects and features of the present disclosure.

Brief Description of the Drawings

[0012] [Figure 1] It is a cross-sectional view schematically showing an electrode foil for an electrolytic capacitor according to an embodiment of the present disclosure. [Figure 2] It is a diagram schematically showing an example of the compression process of a method for manufacturing an electrode foil for an electrolytic capacitor according to an embodiment of the present disclosure. [Figure 3] It is a cross-sectional view schematically showing an electrolytic capacitor according to an embodiment of the present disclosure. [Figure 4] It is a perspective view schematically showing the configuration of the wound body of FIG. 3.

Modes for Carrying Out the Invention

[0013] The embodiments of this disclosure will be described below with examples, but this disclosure is not limited to the examples described below. In the following description, specific numerical values ​​and materials may be given as examples, but other numerical values ​​and materials may be applied as long as the effects of this disclosure are obtained. In this specification, the description "numerical value A to numerical value B" includes numerical value A and numerical value B, and can be read as "greater than or equal to numerical value A and less than or equal to numerical value B". In the following description, when lower and upper limits are given as examples for numerical values ​​of specific physical properties or conditions, either of the given lower limits and either of the given upper limits can be arbitrarily combined, as long as the lower limit does not exceed the upper limit. When multiple materials are given as examples, one of them may be selected and used alone, or two or more may be used in combination.

[0014] Furthermore, this disclosure encompasses any combination of matters described in two or more claims, which may be arbitrarily selected from the multiple claims set forth in the attached claims. In other words, any combination of matters described in two or more claims, which may be arbitrarily selected from the multiple claims set forth in the attached claims, is possible, provided that no technical inconsistency arises.

[0015] (Electrode foil for electrolytic capacitors) An electrode foil for an electrolytic capacitor (electrode foil A) according to one embodiment of the present disclosure includes a valve-acting metal and comprises a core portion and a porous portion continuous with the core portion. The porous portion has a thickness T (μm) and comprises an inner layer region on the core portion side and a surface layer region on the opposite side of the core portion. The surface layer region is a region where the distance from the outer surface of the porous portion is T / 4 or less. The inner layer region is a region where the distance from the boundary of the porous portion with the core portion is T / 4 or less. The average diameter of the pores in the surface layer region is smaller than the average diameter of the pores in the inner layer region D2 (nm). The average diameter of the pores is smaller on the outer surface side of the porous portion than on the core side. In this specification, when simply referred to as "diameter," it means "diameter." It is preferable that the configurations of electrode foil A and electrode foil B, described later, are simultaneously satisfied.

[0016] The porous portion contains numerous pores (pits), and to increase capacitance, it is conceivable to increase the pit density and the thickness of the porous portion to increase the surface area of ​​the foil. However, increasing the pit density and the thickness of the porous portion reduces the strength of the electrode foil, which can lead to cracks or foil breakage during the manufacturing process of electrolytic capacitors. This reduction in electrode foil strength is due to a decrease in the strength of the surface layer of the porous portion, and this reduction in strength is particularly pronounced when the pit density and the thickness of the porous portion are high.

[0017] The following (a) to (c) are suspected to be the factors causing the decrease in strength of the surface layer of the porous part: (a) The surface layer is prone to deterioration when the etching solution comes into contact with the surface of the metal foil during electrolytic etching. (b) The stress generated during the winding of the electrode foil in the manufacturing process of electrolytic capacitors tends to be large on the surface layer of the electrode foil. (c) Rolled foil (aluminum foil) containing valve metal used as a raw material for the electrode foil usually has rolling marks, and rolling marks tend to remain on the surface layer of the porous part even after etching.

[0018] In contrast, the electrode foil for electrolytic capacitors according to this disclosure has a smaller average pore diameter on the outer surface side than on the core side of the porous portion. That is, in the porous portion, the average pore diameter D1 in the surface region is smaller than the average pore diameter D2 in the inner region. This improves the strength of the surface layer and suppresses the decrease in surface layer strength when the pit density and the thickness of the porous portion are increased. As a result, the tensile strength of the electrode foil can be increased. Furthermore, the electrode foil according to this disclosure can increase the capacitance per unit volume. By using this electrode foil, a highly reliable, large-capacity electrolytic capacitor can be obtained. In addition, the retention of the electrolyte within the pores of the porous portion is improved, and the contact between the dielectric layer and the electrolyte is improved.

[0019] From the viewpoint of improving capacitance, the ratio of D1 to D2, D1 / D2, may be 0.5 or greater, 0.55 or greater, 0.6 or greater, or 0.7 or greater. From the viewpoint of suppressing the reduction in surface strength and improving capacity per unit volume, D1 / D2 may be 0.98 or less, 0.95 or less, or 0.9 or less. The range of D1 / D2 may be any combination of the above upper and lower limits, but from the viewpoint of suppressing the reduction in surface strength and improving capacity per unit volume, 0.5 or greater and 0.98 or less is preferred, and 0.55 or greater and 0.95 or less is more preferred.

[0020] The above D1 and D2 can be determined as follows. (i) Obtain a cross-sectional image of the electrode foil using a scanning electron microscope (SEM). Using this image, measure the thickness of 10 arbitrary points in the porous region, calculate the average value of these measurements, and define the thickness T of the porous region as such. (ii) The region at a distance of T / 4 or less from the outer surface of the porous part (surface S in Figure 1) is defined as the surface region. (iii) Obtain a cross-sectional image of the surface region, and perform a binarization process on the image to distinguish between the region of the metal skeleton constituting the surface region and the region of pores (pits) other than the region of the metal skeleton. (iv) Select an arbitrary point within the pore region of the surface area, draw a line segment that passes through that point and crosses the pore region, and measure the length of the shortest line segment. Perform this measurement for 20 arbitrary points within the pore region of the surface area, calculate the average of the obtained measurements, and define the average diameter D1 of the pores in the surface area as the average diameter D1. (v) The region where the distance from the boundary with the core of the porous part (surface B in Figure 1) is T / 4 or less is defined as the inner layer region. The average diameter D2 of the pores in the inner layer region is also determined in the same manner as in (iii) and (iv) above.

[0021] From the viewpoint of suppressing the decrease in strength of the surface layer and improving the retention of electrolytes within the pores, the porosity P1 of the surface region may be smaller than the porosity P2 of the inner layer region. From the viewpoint of improving capacitance, the ratio of P1 to P2: P1 / P2 may be 0.5 or more, 0.55 or more, 0.6 or more, or 0.7 or more. From the viewpoint of suppressing the decrease in strength of the surface layer and improving capacity per unit volume, P1 / P2 may be 0.95 or less, 0.92 or less, or 0.85 or less. The range of P1 / P2 may be any combination of the above upper and lower limits, for example, 0.5 or more, 0.95 or less, or 0.55 or more, 0.92 or less.

[0022] The porosity P1 of the surface region is determined by using the cross-sectional image of the surface region after the binarization process described in (iii) above, obtained in the process of determining P1, measuring the area S0 of the entire image and the area S1 of the region occupied by pores within the image, and calculating (S1 / S0) × 100. The porosity P2 of the inner region is determined in the same manner as above.

[0023] The surface roughness Ra of the electrode foil (roughness of the outer surface of the porous portion) is preferably 2.0 μm or less, more preferably 1.5 μm or less, and even more preferably 0.8 μm or less. The surface roughness Ra of the electrode foil can be reduced to the above range by the compression process described later. Even after etching, irregularities exist on the surface of the porous portion due to the rolling marks of the aluminum foil, and physically weak etched areas tend to occur near the rolling marks. However, by making the surface roughness Ra of the electrode foil (roughness of the outer surface of the porous portion) 2.0 μm or less, the occurrence of physically weak etched areas near the rolling marks can be suppressed. Note that the surface roughness Ra of the electrode foil refers to the arithmetic mean roughness, and the arithmetic mean roughness Ra is determined in accordance with JIS B 0601:2001.

[0024] When the surface roughness Ra of the electrode foil is reduced to 1.5 μm or less by the compression process described below, the influence of the rolling marks can be sufficiently reduced. The surface roughness of the electrode foil can be made smaller than the surface roughness based on the rolling marks of the raw foil, and unnecessary oxides along the rolling marks can be removed. Also, from the viewpoint of ensuring a sufficient surface area of the electrode foil and facilitating an increase in capacitance, the surface roughness Ra of the electrode foil is preferably 0.1 μm or more, and more preferably 0.2 μm or more.

[0025] Thickness T of the electrode foil A may be 90 μm or more and 200 μm or less, or may be 120 μm or more and 200 μm or less. The thickness T of the porous part may be 25 μm or more and 90 μm or less, or may be 35 μm or more and 80 μm or less. The thickness T of the electrode foil A When it is within the above range, while sufficiently ensuring the thickness of the core part, the thickness T of the porous part can be increased within the above range. The thickness of the core part may be, for example, 20 μm or more, or may be 25 μm or more.

[0026] When the thickness of the electrode foil is large (for example, when the thickness is 90 μm or more (or 120 μm or more)), the stress generated in the electrode foil (surface layer) during winding becomes large. Therefore, the effect of improving the surface layer strength (the effect of suppressing crack generation due to the stress) by the electrode foil according to the present disclosure can be significantly obtained.

[0027] The valve - acting metal includes, for example, aluminum (Al), tantalum (Ta), niobium (Nb), etc. The electrode foil may contain the valve - acting metal as an alloy or a compound containing the valve - acting metal. When the electrode foil is used as an anode foil, a dielectric layer may be formed so as to cover the metal skeleton constituting the porous part. The dielectric layer is, for example, a layer containing an oxide of the valve - acting metal.

[0028] Here, FIG. 1 is a cross - sectional view schematically showing an electrode foil for an electrolytic capacitor according to an embodiment of the present disclosure. FIG. 1 shows a cross - section in the thickness direction of the electrode foil. Note that the electrode foil for an electrolytic capacitor according to the present disclosure is not limited to this.

[0029] The electrode foil 300 comprises a core portion 330 and porous portions 310 and 320 connected to the core portion 330. The porous portions 310 and 320 are formed so as to sandwich the core portion 330.

[0030] The porous portion 310 has a thickness T (μm) and comprises an inner layer region 312 on the core portion 330 side and a surface layer region 311 on the opposite side of the core portion 330. The surface layer region 311 is a region where the distance from the outer surface S of the porous portion 310 is T / 4 or less. The inner layer region 312 is a region where the distance from the boundary B between the porous portion 310 and the core portion 330 is T / 4 or less. The average diameter D1 (nm) of the pores in the surface layer region 311 is smaller than the average diameter D2 (nm) of the pores in the inner layer region 312.

[0031] Similarly, the porous portion 320 has a thickness T and comprises a surface region 321 and an inner region 322. The average diameter D1 of the pores in the surface region 321 is smaller than the average diameter D2 of the pores in the inner region 322.

[0032] Furthermore, an electrode foil for an electrolytic capacitor (electrode foil B) according to another embodiment of the present disclosure includes a valve-acting metal and comprises a core portion and a porous portion continuous with the core portion, wherein the pore distribution of the porous portion measured by the mercury intrusion method is V S1 The relationship / V0 ≤ 0.07 is satisfied. Electrode foil B further V S2 It is preferable that the relationship / V0 ≤ 0.05 (or 0.04) is satisfied. V0 is the cumulative pore volume (cm³) for pores with a diameter of 0.01 μm or more and 1 μm or less. 3 V S1 This refers to the cumulative pore volume (cm³) for pores with a diameter of 0.01 μm or more and 0.06 μm or less. 3 V S2 This refers to the cumulative pore volume (cm³) for pores with a diameter of 0.01 μm or more and 0.05 μm or less. 3 The value is ( / g). For measuring pore size distribution, for example, the AutoPore V series from Micromeristics is used.

[0033] Small pores with a diameter of 0.01 μm or more and 0.06 μm or less (or 0.05 μm or less) are easily blocked by the dielectric layer, which is disadvantageous in terms of high capacitance, low ESR, and strength. In porous areas, the parts where pores are blocked by the dielectric layer not only do not contribute to improving capacitance, but also become hard and brittle. When the number of small pores increases and the above-mentioned blocked areas increase, the strength of the electrode foil decreases, and cracks or foil breakage may occur in the electrode foil during the manufacturing process of electrolytic capacitors (electrode foil transport, slitting, winding, connection by crimping with lead members, etc.). In contrast to this, V S1 / V0(further V S2 When / V0) is within the above range, there are few small pores and many pores with pore sizes suitable for improving capacitance are distributed, making it possible to increase capacitance. In this case, the above-mentioned blockage area is small, and the reduction in strength can be suppressed. By using electrode foil B, a highly reliable, large-capacity electrolytic capacitor can be obtained.

[0034] Furthermore, in the pore distribution of the porous portion of electrode foil B, as measured by the mercury intrusion method, V L1 It is preferable that the relationship / V0 ≤ 0.4 is satisfied, and furthermore V L2 It is more preferable that the relationship / V0 ≤ 0.1 (or 0.08) is satisfied. L1 This refers to the cumulative pore volume (cm³) for pores with a diameter of 0.16 μm or more and 1 μm or less. 3 V L2 This refers to the cumulative pore volume (cm³) for pores with a diameter of 0.5 μm or more and 1 μm or less. 3 It is / g).

[0035] Pore ​​diameters of 0.16 μm or larger (or 0.5 μm or larger) and 1 μm or smaller do not contribute to improving capacity. Large pores are disadvantageous in terms of increasing the surface area of ​​the electrode foil. For example, in the case of large pores, if two pores are formed close together, they tend to crush each other, making the perimeter length of the pores (the total length of the contour of the inner wall surface of the pores per unit area of ​​the cross-section of the porous part) smaller, and thus not contributing to improving capacity. L1 / V0(further V L2When / V0) is within the above range, there are few large pores and many pores with pore sizes suitable for improving capacitance are distributed, the surface area of ​​the electrode foil tends to increase, and it is easy to achieve high capacitance.

[0036] (Method of manufacturing electrode foil) A method for manufacturing electrode foil for electrolytic capacitors according to the embodiments of this disclosure includes, for example, an etching step of etching a sheet (metal foil) containing a valve-acting metal to form porous portions on both sides (or one surface) of the sheet, and a compression step of compressing the sheet after etching in the thickness direction. In the sheet after etching, portions other than the porous portion remain as a core. The sheet after etching comprises a core and a porous portion continuous with the core. The porous portion may be formed so as to sandwich the core.

[0037] By appropriately adjusting the degree of compression during the compression process, electrode foils satisfying the configuration of electrode foil A and / or electrode foil B can be manufactured. That is, by compressing appropriately during the compression process, the average diameter of pores can be reduced on the outer surface side of the porous section compared to the core side. In the porous section, the average diameter D1 of pores in the surface region can be made smaller than the average diameter D2 of pores in the inner region. For example, a porous section can be formed in which D1 / D2 is 0.5 or more and 0.98 or less (or 0.55 or more and 0.95 or less). The surface region is the region at a distance of T / 4 or less from the outer surface of the porous section. The inner region is the region at a distance of T / 4 or less from the boundary with the core of the porous section. T is the thickness (μm) of the porous section. Furthermore, by compressing appropriately during the compression process, a porous section having a specific pore distribution in which the above-mentioned small pores (or the above-mentioned small pores and large pores) are reduced can be formed.

[0038] During the manufacturing process of electrolytic capacitors, the sheet comes into contact with processing solutions (e.g., etching solutions, chemical conversion solutions) and rollers, which can cause irregularities (or scratches). Stress can concentrate on these irregularities during the manufacturing process, potentially causing the sheet to break (or crack). Furthermore, the Al foil used for the sheet has rolling marks from the manufacturing process, and uneven etching pits can be formed along these rolling marks, i.e., along the length direction (rolling direction) of the strip-shaped sheet. These rolling marks can cause the sheet to break (or crack). To address this, as described above, moderately compressing the sheet after etching reduces the effects of the irregularities and rolling marks, increases the strength of the sheet's surface, and suppresses sheet breakage and other damage.

[0039] After the compression process, the sheet thickness T A The thickness may be 90 μm or more and 200 μm or less, or 120 μm or more and 200 μm or less. After the compression process, the thickness T per side of the porous portion is 25 μm or more, {(T A The thickness T may be less than or equal to (2)-10}μm. When the thickness T is within the above range, the core can be secured with sufficient thickness. The thickness T may also be 25μm or more and 90μm or less, or 35μm or more and 80μm or less. In high-capacitance foils, the thickness T of the porous part is large, and the effect of improving the surface strength by compression is significantly obtained. In particular, high-capacitance foils are used, and the thickness T of the sheet (electrode foil) A The thickness of the porous portion is preferably 90 μm or more, and the thickness T of the porous portion is preferably 25 μm or more.

[0040] (Etching process) In the etching process, the surface of the sheet containing the valve metal is roughened by etching, forming a porous region continuous with the core. The etching process may be electrolytic etching or chemical etching, and can be carried out using known methods.

[0041] From the viewpoint of forming large-diameter pores, electrolytic etching is performed at 2.0 A / cm 2The following current densities may also be used: 1.5 A / cm² 2 The following current densities may also be used: 1.2 A / cm² 2 The process may be carried out at the following current densities. The current density may also be changed during etching. Larger pore diameters make it easier to form thicker dielectric layers, which is advantageous in terms of increasing voltage.

[0042] Electrolytic etching is preferably performed using AC etching, but DC etching may also be used. AC etching tends to form porous areas containing relatively small-diameter sponge-like pits. DC etching tends to form porous areas containing relatively large-diameter tunnel-like pits.

[0043] Etching time T E In this case, 0~0.7T E During this period, the etching solution temperature should be between 10°C and 60°C, and the temperature should be 0.7T. E ~T E During this period, the etching solution temperature may be set to between 5°C and 40°C. In this case, variations in pit diameter in the thickness direction of the porous portion can be reduced. The etching time TE is, for example, between 15 minutes and 30 minutes.

[0044] (Compression process) In the compression process, the etched sheet may be transported between a pair of rollers and compressed. The etched sheet transported between the pair of rollers is compressed by the pressure of the rollers. By appropriately adjusting the roll press conditions as described later, D1 / D2 (and further P1 / P2) can be easily controlled within the above range. By appropriately adjusting the roll press conditions as described later, V S1 / V0(further V S2 / V0) and V L1 / V0(further V L2 It is easy to control / V0) within the above range.

[0045] Multiple rows of pairs of rollers may be arranged to compress the sheet in stages. In this case, the diameter of each pair of rollers may be changed for each stage, and may be reduced as the sheet is compressed. The compression process may include a process of conveying the sheet with the rollers and a process of winding the compressed sheet. Compression increases the strength of the surface layer of the sheet and suppresses sheet breakage when the sheet is wound up by the rollers.

[0046] Here, Figure 2 is a diagram showing an example of the compression process. In the compression process, for example, the compression device shown in Figure 2 is used. The compression device comprises a pair of rollers 500 that compress the sheet 400. Thickness T after etching. B A sheet 400 of (mm) is pressed by a pair of rollers 500 to a thickness T A It is compressed to (mm). The sheet feed speed may be 0.5 m / min or more, or 0.5 m / min or more and 50 m / min or less.

[0047] From the viewpoint of easily obtaining the above electrode foil, the thickness of the sheet may be reduced by 5% or more and 40% or less in the compression process. That is, the thickness of the sheet is reduced by the compression process. B From T A When it decreases to {(T B -T A ) / T B The reduction rate of} × 100 (hereinafter also referred to as the rate of decrease) may be between 5% and 40%. Furthermore, the rate of decrease may be between 10% and 30%, or between 10% and 25%.

[0048] When the roller 500 is viewed from the direction of its axis of rotation, the contact area 410 between the roller 500 and the sheet 400 is arc-shaped, and the central angle θ of the roller 500 with respect to the arc of the contact area 410 may be 0.15° or more and 1.5° or less.

[0049] When the contact area 410 between the sheet 400 and the roller 500 is projected onto a virtual plane parallel to the main surface of the sheet 400, the projection area is defined as the area obtained by this projection. In this case, the length L of the projection area in the conveying direction X of the sheet 400 may be 0.5 mm or more and 5 mm or less.

[0050] The sheet 400 may be compressed with a linear pressure of 1 kN / cm or more and 14 kN / cm or less. The diameter D of the roller 500 may be 75 mm or more and 1800 mm or less. The thickness T0 (mm) of the porous portion of the sheet 400 before compression and the diameter D (mm) of the roller 500 may satisfy the relationship 380 ≤ D / T0 ≤ 9800.

[0051] The device may further include rollers for transporting the sheet 400, and rollers for winding up the compressed sheet 400. The device may also include a control unit for controlling the rotational speed of the rollers 500, etc. The control unit may control the feed speed of the sheet 400.

[0052] The method for manufacturing electrode foil may include a step of slitting the compressed sheet. In the slitting process, a slitting device and a roller for winding the slit sheet are used. Compression increases the strength of the surface layer of the sheet, suppressing sheet breakage when the sheet is wound by the roller.

[0053] (Electrolytic capacitor) The electrode foil for electrolytic capacitors according to the embodiments of this disclosure is suitably used in electrolytic capacitors equipped with a wound capacitor element. The wound capacitor element comprises a wound body and an electrolyte. The wound body is constructed by winding an anode foil, a cathode foil, and a separator disposed between the anode foil and the cathode foil. The anode foil comprises the electrode foil described above and a dielectric layer covering a metal skeleton constituting the porous portion of the electrode foil.

[0054] In electrolytic capacitors with a rated voltage of 20V or higher, for example, Al foil treated with a conversion voltage of 40V or higher is used as the anode foil. In such anode foils, electrode foils with relatively large pit diameters are used, forming a dielectric layer with a relatively large thickness (e.g., 45nm or more), and the strength of the surface layer tends to decrease. Therefore, a significant improvement in surface layer strength can be obtained with the electrode foil according to this disclosure. At conversion voltages of 40V or higher, the resulting conversion film becomes thicker, so by using electrode foils with large pit diameters, pit blockage by the thick conversion film is suppressed, and high capacitance can be efficiently achieved.

[0055] (Anode foil) The anode foil comprises the electrode foil described above and a dielectric layer covering the metal skeleton constituting the porous portion of the electrode foil. The dielectric layer is formed, for example, by forming an oxide film of a valve-acting metal on the surface of the metal skeleton constituting the porous portion by anodic oxidation (chemical conversion treatment). When chemical conversion treatment is applied to the Al foil, the conversion voltage may be, for example, 5V or higher, or 40V or higher.

[0056] The thickness of the anode foil may be 60 μm or more and 200 μm or less, 90 μm or more and 200 μm or less, or 120 μm or more and 200 μm or less. The thickness of the dielectric layer is, for example, 45 nm or more.

[0057] (Cathode foil) The cathode foil can be a metal foil containing valve-acting metals such as Al, Ta, and Nb. If necessary, the surface of the metal foil may be roughened by etching. That is, the cathode foil may be a metal foil having a porous portion and a core portion continuous with the porous portion. The electrode foil for electrolytic capacitors according to this disclosure may be used as the cathode foil. The thickness of the cathode foil is, for example, 10 μm or more and 70 μm or less.

[0058] (Separator) The separator is not particularly limited, and for example, nonwoven fabrics containing fibers of cellulose, polyethylene terephthalate, vinylon, or polyamide (e.g., aliphatic polyamides, aromatic polyamides such as aramids) may be used.

[0059] (electrolyte) The electrolyte covers at least a portion of the anode foil (dielectric layer) and is interposed between the anode foil (dielectric layer) and the cathode foil. The electrolyte includes at least one of a solid electrolyte containing a conductive polymer and a liquid electrolyte. The capacitor element may include a solid electrolyte, or it may include a solid electrolyte and a liquid component (liquid electrolyte or non-aqueous solvent).

[0060] The dielectric layer is coated with an electrolyte, for example, by impregnating the anode foil (or wound body) with a treatment solution (or liquid component) containing a conductive polymer. In the electrode foil described above, D1 is smaller than D2 (and P1 is even smaller than P2), so the treatment solution impregnated into the porous portion easily remains in the pores, the inner walls of the pores are easily covered with the electrolyte, and the contact between the anode foil (dielectric layer) and the electrolyte is improved.

[0061] The solid electrolyte contains a conductive polymer. Examples of conductive polymers include π-conjugated polymers. Examples of conductive polymers include polypyrrole, polythiophene, polyfuran, and polyaniline. The conductive polymer may be used alone, in combination of two or more types, or as a copolymer of two or more monomers. The weight-average molecular weight of the conductive polymer is, for example, 1,000 to 1,000,000.

[0062] In this specification, polypyrrole, polythiophene, polyfuran, polyaniline, etc., refer to polymers that have polypyrrole, polythiophene, polyfuran, polyaniline, etc., as their basic skeletons. Therefore, polypyrrole, polythiophene, polyfuran, polyaniline, etc., may also include their respective derivatives. For example, polythiophene includes poly(3,4-ethylenedioxythiophene), etc.

[0063] Conductive polymers can be doped with dopants. Solid electrolytes may contain dopants together with the conductive polymer. Examples of dopants include polystyrene sulfonic acid. Solid electrolytes may further contain additives as needed.

[0064] The liquid component is in direct contact with the dielectric layer or via a conductive polymer. The liquid component may be a non-aqueous solvent or a liquid electrolyte. The electrolyte contains a non-aqueous solvent and an ionic substance (solute (e.g., an organic salt)) dissolved therein. The non-aqueous solvent may be an organic solvent or an ionic liquid.

[0065] As the non-aqueous solvent, a high-boiling point solvent is preferred. For example, polyol compounds such as ethylene glycol, sulfone compounds such as sulfolane, lactone compounds such as γ-butyrolactone, ester compounds such as methyl acetate, carbonate compounds such as propylene carbonate, ether compounds such as 1,4-dioxane, and ketone compounds such as methyl ethyl ketone can be used.

[0066] The liquid component may contain an acid component (anion) and a base component (cation). A salt (solute) may be formed by the acid component and the base component. The acid component contributes to the film repair function. Examples of acid components include organic carboxylic acids and inorganic acids. Examples of inorganic acids include phosphoric acid, boric acid, and sulfuric acid. Examples of base components include primary to tertiary amine compounds.

[0067] An organic salt is a salt in which at least one of the anion and cation is an organic substance. Examples of organic salts include trimethylamine maleate, triethylamine borodisalicylate, ethyldimethylamine phthalate, mono-1,2,3,4-tetramethylimidazolinium phthalate, and mono-1,3-dimethyl-2-ethylimidazolinium phthalate.

[0068] From the viewpoint of suppressing dopant dedoping (degradation of solid electrolyte) from conductive polymers, it is preferable that the liquid component contains more acidic components than basic components. Furthermore, since the acidic components contribute to the film repair function of the liquid component, it is also preferable that the liquid component contains more acidic components than basic components. The molar ratio of acidic components to basic components (acidic component / basic component) is, for example, 1.1 or higher. From the viewpoint of suppressing dopant dedoping from conductive polymers, the pH of the liquid component may be 6 or less, or it may be 1 or more, or 5 or less.

[0069] The electrode foil described above may also be used in an electrolytic capacitor equipped with a multilayer capacitor element. In this case, the porous portion is formed in a portion of the surface of the electrode foil. The multilayer capacitor element comprises an anode, a solid electrolyte layer, and a cathode extraction layer covering the solid electrolyte layer. The anode comprises the electrode foil with a porous portion formed on a portion of its surface, and a dielectric layer covering the metal skeleton constituting the porous portion of the electrode foil. The solid electrolyte layer is formed to cover the dielectric layer. The cathode extraction layer comprises, for example, a silver paste layer and a carbon layer. An anode lead is connected to the region of the anode not covered by the dielectric layer, and a cathode lead is connected to the cathode extraction layer.

[0070] Here, Figure 3 is a schematic cross-sectional view showing an electrolytic capacitor according to one embodiment of the present invention. Figure 3 shows an example of an electrolytic capacitor equipped with a wound capacitor element. Figure 4 is a schematic perspective view showing the configuration of the wound body in Figure 3.

[0071] The electrolytic capacitor 200 comprises a capacitor element, which comprises a winding body 100 and an electrolyte (not shown). The winding body 100 is constructed by winding an anode foil 10 and a cathode foil 20 with a separator 30 in between.

[0072] One end of lead tabs 50A and 50B are connected to the anode foil 10 and cathode foil 20, respectively, and the winding body 100 is formed by winding the lead tabs 50A and 50B. Lead wires 60A and 60B are connected to the other ends of lead tabs 50A and 50B, respectively.

[0073] A winding stopper tape 40 is placed on the outer surface of the cathode foil 20, which is located in the outermost layer of the winding body 100, and the end of the cathode foil 20 is fixed by the winding stopper tape 40. If the anode foil 10 is prepared by cutting from a large sheet of foil, the winding body 100 may be further treated with a chemical conversion process to provide a dielectric layer on the cut surface.

[0074] An electrolyte is interposed between the anode foil 10 (dielectric layer) and the cathode foil 20 in the wound body 100. The capacitor element is obtained, for example, by impregnating the wound body 100 with a processing solution containing the electrolyte. The impregnation may be carried out under reduced pressure, for example, in an atmosphere of 10 kPa to 100 kPa.

[0075] The winding body 100 is housed in the closed-bottom case 211 such that the lead wires 60A and 60B are located on the opening side of the closed-bottom case 211. The material of the closed-bottom case 211 can be a metal such as aluminum, stainless steel, copper, iron, or brass, or an alloy thereof.

[0076] The winding body 100 is sealed inside the bottomed case 211 by placing a sealing member 212 at the opening of the bottomed case 211, crimping the open end of the bottomed case 211 to the sealing member 212 to create a curl, and placing a seat plate 213 on the curled portion.

[0077] The sealing member 212 is formed so that the lead wires 60A and 60B pass through it. The sealing member 212 can be made of any insulating material, and an elastic material is preferred. Among these, silicone rubber, fluororubber, ethylene propylene rubber, Hypalon rubber, butyl rubber, isoprene rubber, etc., which have high heat resistance are preferred.

[0078] [Examples] The present disclosure will be described in more detail below based on examples, but the present disclosure is not limited to these examples.

[0079] Examples 1-5 (Etching process) Foil-like aluminum sheet (thickness T B A porous region (thickness T0: 48 μm per side) was formed on both sides of the Al sheet by etching (122 μm). AC etching was performed with a current density of 1.5 A / cm². 2 The following adjustments were made as appropriate.

[0080] (Compression process) The etched Al sheet was compressed in the thickness direction to obtain electrode foils a1 to a5. In the compression process, the sheet thickness was reduced by the rates shown in Table 1 (Al sheet thickness reduction rate in Table 1). Sheet thickness T A The values ​​shown in Table 2 represent the (μm) and the thickness T (μm) per side of the porous portion.

[0081] As shown in Figure 2, in the compression process, the Al sheet was transported between a pair of rollers (diameter D: 75 mm) and compressed. The pressing force and linear pressure of the rollers were set to the values ​​shown in Table 1. The feed speed of the Al sheet was set to the values ​​shown in Table 1. The ratio of the roller diameter D (mm) to the thickness T0 (mm) of the porous portion before sheet compression, D / T0, was 1562.5. The angle θ in Figure 2 was set to the value shown in Table 1. The length L in Figure 2 was set to the value shown in Table 1.

[0082] [Table 1]

[0083] The D1 / D2 and P1 / P2 values ​​obtained by the previously described method are shown in Table 2. The arithmetic mean roughness Ra of the anode foil is also shown in Table 2. The V values ​​obtained by the previously described method are shown in Table 2. S1 / V0, V S2 / V0, V L1 / V0, and V L2 The values ​​for / V0 were as shown in Table 2.

[0084] [Table 2]

[0085] (Formation of dielectric layer) Electrode foils a1 to a5 were subjected to a chemical conversion treatment to form a dielectric layer covering the metal skeleton constituting the porous portion. The chemical conversion treatment was carried out by immersing the electrode foils in an ammonium adipate solution and applying a voltage of 65V to the electrode foils at 70°C for 45 minutes. In this way, anode foils A11 to A15 were fabricated. Electrode foils a1 to a5 are those of Examples 1 to 5, and anode foils A11 to A15 are the chemically converted versions of electrode foils a1 to a5.

[0086] Comparative Example 1 b1 was fabricated in the same manner as a1, except that the Al sheet was not compressed after etching. B11 was fabricated in the same manner as A11, except that b1 was used instead of a1.

[0087] Examples 6-10, Comparative Example 2 A21-A25 and B21 were manufactured in the same manner as A11-A15 and B11, except that the chemical conversion voltage was set to 21V.

[0088] Examples 11-15, Comparative Example 3 A31-A35 and B31 were manufactured in the same manner as A11-A15 and B11, except that the chemical conversion voltage was set to 5V.

[0089] (evaluation) The capacitance of each anode foil was measured in accordance with the test method for electrode foils for aluminum electrolytic capacitors (EIAJ RC-2364A) of the Japan Electronic Machinery Industry Standards. The measurement results are shown in Tables 3 to 5. In Table 3, the capacitance is shown as a relative value with the capacitance of B11 set to 100. In Table 4, the capacitance is shown as a relative value with the capacitance of B21 set to 100. In Table 5, the capacitance is shown as a relative value with the capacitance of B31 set to 100. Similarly, in Tables 3 to 5, the capacitance per unit volume of the electrode foil is also shown as a relative value.

[0090] [Table 3]

[0091] [Table 4]

[0092] [Table 5]

[0093] In A11-A15, A21-A25, and A31-A35, good capacities were obtained, confirming high capacity per unit volume. High capacities were secured in A11-A14, A21-A24, and A31-A33.

[0094] Furthermore, strip-shaped samples (70 mm in length and 10 mm in width) were prepared for electrode foils a1-a5 and b1, and the tensile strength in the length direction of these samples was measured in accordance with the test method for electrode foils for aluminum electrolytic capacitors of the Japan Electronic Machinery Industry Standard (EIAJ RC-2364A). The measurement results are shown in Table 2. In Table 2, the tensile strength is shown as a relative value with the tensile strength of b1 set to 100. Higher tensile strengths were obtained for a1-a5 than for b1. [Industrial applicability]

[0095] The electrode foil according to this disclosure is suitably used in electrolytic capacitors where high reliability and capacitance are required.

[0096] While this disclosure describes preferred embodiments at present, such disclosure should not be interpreted restrictively. Various modifications and alterations will undoubtedly become apparent to those skilled in the art in the field to which this disclosure pertains by reading the above disclosure. Accordingly, the attached claims should be interpreted as encompassing all modifications and alterations without departing from the true spirit and scope of this disclosure. [Explanation of symbols]

[0097] 10: Anode foil, 20: Cathode foil, 30: Separator, 40: Winding stopper tape, 50A, 50B: Lead tab, 60A, 60B: Lead wire, 100, 400: Winding body, 200: Electrolytic capacitor, 211: Bottomed case, 212: Sealing material, 213: Base plate, 300: Electrode foil, 310, 320: Porous part, 311, 321: Surface layer area, 312, 322: Inner layer area, 330: Core part, 400: Sheet, 410: Contact area, 500: Roller

Claims

1. It includes a valve-acting metal, a core portion, and a porous portion continuous with the core portion, The porous portion has a thickness T μm and comprises an inner layer region on the core side and a surface layer region on the opposite side of the core. The aforementioned surface region is a region whose distance from the outer surface of the porous portion is T / 4 or less. The inner layer region is a region where the distance from the boundary between the porous portion and the core portion is T / 4 or less. The average diameter D of the pores in the surface region 1 nm represents the average diameter D of the pores in the inner layer region. 2 Smaller than nm, Electrode foil for electrolytic capacitors, wherein the ratio of D1 to D2, D1 / D2, is 0.5 or more and 0.98 or less.

2. The porosity P of the aforementioned surface region 1 The porosity P of the inner layer region is 2 An electrode foil for an electrolytic capacitor according to claim 1, which is smaller than the one described in claim 1.

3. The aforementioned P 2 P 1 Ratio of: P 1 / P 2 The electrode foil for electrolytic capacitors according to claim 2, wherein the coefficient is 0.5 or greater and 0.95 or less.

4. The electrode foil for electrolytic capacitor according to claim 1 or 2, wherein the surface roughness Ra of the electrode foil is 2.0 μm or less.

5. It includes a valve-acting metal, a core portion, and a porous portion continuous with the core portion, In the pore distribution of the porous portion measured by the mercury intrusion method, The integrated pore volume V at a pore diameter of 0.01 μm or more and 1 μm or less 0 cm 3 / g, and Cumulative pore volume V for pores with a diameter of 0.01 μm or more and 0.06 μm or less S1 cm 3 / g means, V S1 / V0 ≦0.07 Electrode foil for electrolytic capacitors that satisfies the following relationship.

6. In the pore distribution of the porous portion, The cumulative pore volume V 0 cm 3 / g and, Cumulative pore volume V for pores with a diameter of 0.16 μm or more and 1 μm or less. L1 cm 3 / g means, V L1 / V 0 ≦0.4 An electrode foil for an electrolytic capacitor according to claim 5, which satisfies the relationship.

7. Thickness T of the electrode foil A The electrode foil for electrolytic capacitors according to claim 1, 2, 5, or 6, wherein the thickness is 90 μm or more and 200 μm or less.

8. The electrode foil for electrolytic capacitor according to claim 1, 2, 5, or 6, wherein the thickness T of the porous portion is 25 μm or more and 90 μm or less.

9. Equipped with a capacitor element, The capacitor element comprises a wound body and an electrolyte, The aforementioned wound body is constructed by winding an anode foil, a cathode foil, and a separator disposed between the anode foil and the cathode foil. The anode foil is an electrode foil according to claim 1, 2, 5, or 6, and the multiple of the electrode foil An electrolytic capacitor comprising a dielectric layer covering a metal skeleton that constitutes a porous portion.

10. The electrolytic capacitor according to claim 9, wherein the thickness of the dielectric layer is 45 nm or more.

11. The capacitor element comprises a solid electrolyte, or the solid electrolyte and a liquid component, The electrolytic capacitor according to claim 9, wherein the solid electrolyte includes a conductive polymer.

12. An etching process in which a sheet containing valve metal is etched to form porous portions on both sides of the sheet, The process includes a compression step of compressing the sheet after the etching process in the thickness direction, In the compression step, the sheet is conveyed between a pair of rollers and compressed. When the roller is viewed from the direction of its axis of rotation, the contact area between the roller and the sheet is arc-shaped. The central angle θ of the roller with respect to the arc of the contact region is 0.15° or more and 1.5° or less. After the compression step, the thickness T of the sheet A μm and the thickness Tμm per side of the porous portion are, 90 ≤ T A ≤ 200, and 25 ≤ T ≤ (T A / 2)-10 A method for manufacturing electrode foil for electrolytic capacitors that satisfies the relationship.

13. In the etching process described above, 2.0 A / cm 2 A method for manufacturing an electrode foil for an electrolytic capacitor according to claim 12, wherein electrolytic etching is performed at the following current density.

14. The method for manufacturing electrode foil for electrolytic capacitors according to claim 12 or 13, wherein the thickness of the sheet is reduced by 5% or more and 40% or less in the compression step.

15. The method for manufacturing electrode foil for electrolytic capacitors according to claim 12 or 13, wherein the feed speed of the sheet is 0.5 m / min or more.

16. When the region obtained by projecting the contact area between the sheet and the roller onto a virtual plane parallel to the main surface of the sheet is defined as the projected region, The length L of the projection area in the conveying direction of the sheet is 0.5 mm or more and 5 mm or less. The method for manufacturing electrode foil for electrolytic capacitors according to claim 12 or 13.

17. A method for manufacturing electrode foil for electrolytic capacitors according to claim 12 or 13, wherein the sheet is compressed with a linear pressure of 1 kN / cm or more and 14 kN / cm or less.

18. The thickness T of the porous portion of the sheet before compression. 0 The relationship between mm and the diameter D mm of the roller is 380 ≤ D / T 0 A method for manufacturing electrode foil for electrolytic capacitors according to claim 12 or 13, satisfying the relationship ≤ 9800.

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