Adhesive film for metal terminals, method for manufacturing an adhesive film for metal terminals, metal terminal with adhesive film for metal terminals, energy storage device using the adhesive film for metal terminals, and method for manufacturing an energy storage device.

The laminate adhesive film with specific polyolefin layers addresses adhesion and conformability issues, enhancing sealing performance and preventing electrolyte leakage in energy storage devices.

JP7846966B2Active Publication Date: 2026-04-16DAI NIPPON PRINTING CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-04-28
Publication Date
2026-04-16

AI Technical Summary

Technical Problem

Conventional adhesive films for metal terminals in energy storage devices fail to provide sufficient adhesion and conformability, leading to potential electrolyte leakage and poor sealing performance due to gaps between the adhesive film and metal terminals.

Method used

An adhesive film composed of a laminate structure with a first polyolefin layer on the metal terminal side and a second polyolefin layer on the exterior material side, with a Martens hardness of 30 N/mm², ensuring excellent adhesion and conformability by filling gaps and wrapping around the metal terminals.

Benefits of technology

The adhesive film enhances sealing performance by improving adhesion and conformability, preventing electrolyte leakage and ensuring effective sealing of energy storage devices.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an adhesive film for a metal terminal, which has excellent adhesion to a metal terminal and also has excellent followability.SOLUTION: An adhesive film for a metal terminal interposed between a metal terminal electrically connected to an electrode of a power storage device element and an exterior material for a power storage device that seals the power storage device element is composed of a laminate including a first polyolefin layer arranged on the metal terminal side, a base material, and a second polyolefin layer arranged on the exterior material side for the power storage device in this order, and the Martens hardness measured in the direction perpendicular to the cross section in the thickness direction of the first polyolefin layer is 30 N / mm2 or less.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] This disclosure relates to an adhesive film for metal terminals, a method for manufacturing an adhesive film for metal terminals, a metal terminal with an adhesive film for metal terminals, an energy storage device using an adhesive film for metal terminals, and a method for manufacturing an energy storage device. [Background technology]

[0002] While various types of energy storage devices have been developed, casing materials for energy storage devices are essential components for sealing the device elements such as electrodes and electrolytes in all of them. Traditionally, metal casing materials for energy storage devices have been widely used. However, in recent years, with the increasing performance of electric vehicles, hybrid electric vehicles, personal computers, cameras, and mobile phones, energy storage devices are required to come in a variety of shapes, and there is a demand for thinner and lighter designs. However, conventionally used metal casing materials for energy storage devices have the drawback of being unable to keep up with the diversification of shapes, and also have limitations in terms of weight reduction.

[0003] Therefore, in recent years, laminated sheets have been proposed as exterior materials for energy storage devices, in which a base layer, adhesive layer, barrier layer, and heat-sealable resin layer are sequentially laminated. These sheets are easily processed into various shapes and enable thinning and weight reduction. When using such a film-like exterior material for energy storage devices, the peripheral edges of the exterior material are heat-sealed together with the heat-sealable resin layers located in the innermost layers of the exterior material facing each other, thereby sealing the energy storage device elements with the exterior material.

[0004] Metal terminals protrude from the heat-sealed portion of the casing material for energy storage devices. The energy storage device element sealed by the casing material is electrically connected to the outside by the metal terminals, which are electrically connected to the electrodes of the energy storage device element. In other words, in the heat-sealed portion of the casing material for energy storage devices, the portion where the metal terminals are present is heat-sealed with the metal terminals sandwiched between heat-fusible resin layers. Since the metal terminals and the heat-fusible resin layer are composed of dissimilar materials, adhesion tends to decrease at the interface between the metal terminals and the heat-fusible resin layer.

[0005] For this reason, an adhesive film is sometimes placed between the metal terminal and the heat-sealable resin layer to improve their adhesion. An example of such an adhesive film is the one described in Patent Document 1. [Prior art documents] [Patent Documents]

[0006] [Patent Document 1] Japanese Patent Publication No. 2015-79638 [Overview of the Initiative] [Problems that the invention aims to solve]

[0007] As described above, the adhesive film placed between the heat-sealable resin layer and the metal terminals of the exterior material for energy storage devices requires adhesion to the heat-sealable resin layer and the metal terminals by heat sealing.

[0008] Furthermore, if a gap forms between the adhesive film and the metal terminal, the electrolyte, which is the contents of the energy storage device, can leak out of the device. Therefore, the adhesive film must also have excellent conformability so that it conforms to the shape of the metal terminal through heat sealing, preventing the formation of a gap between the adhesive film and the metal terminal.

[0009] However, conventional adhesive films are not always sufficient in achieving both such adhesion and conformability, and the inventors of this disclosure have pursued further improvements in adhesion and conformability.

[0010] Under these circumstances, the primary objective of this disclosure is to provide an adhesive film for metal terminals that has excellent adhesion to metal terminals and excellent conformability. Furthermore, this disclosure also aims to provide a method for manufacturing the adhesive film for metal terminals, a metal terminal with the adhesive film for metal terminals using the adhesive film for metal terminals, an energy storage device using the adhesive film for metal terminals, and a method for manufacturing the energy storage device. [Means for solving the problem]

[0011] The inventors of this disclosure have diligently studied to solve the above-mentioned problems. As a result, they have found that an adhesive film for metal terminals, comprising a laminate comprising a first polyolefin layer arranged on the metal terminal side, a substrate, and a second polyolefin layer arranged on the exterior material side for energy storage devices, can be heat-sealed to metal terminals and exhibit excellent adhesion and conformability to metal terminals by setting the Martens hardness measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer to a predetermined value or less under predetermined measurement conditions. This disclosure was completed by further studies based on this finding.

[0012] In other words, this disclosure provides inventions in the following embodiments. An adhesive film for metal terminals, interposed between a metal terminal electrically connected to the electrode of a power storage device element and an outer casing material for a power storage device that seals the power storage device element, The adhesive film for metal terminals is composed of a laminate comprising, in this order, a first polyolefin layer disposed on the metal terminal side, a substrate, and a second polyolefin layer disposed on the exterior material side for the energy storage device. Under the following measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer is 30 N / mm². 2 The following is an adhesive film for metal terminals. <Measurement conditions for Martens hardness> The applied load is 10 mN. This applied load is both the test load and the maximum load. The load application rate is 1 mN / 10 seconds. The holding time is 10 seconds. The load unloading rate is 1 mN / 10 seconds. The indenter is a Vickers indenter with a square pyramidal shape and a 136° angle between the opposing points at its tip. The measurement temperature is 25°C. The measurement value is the average of eight measurements taken after 10 measurements at different locations, excluding the maximum and minimum values. [Effects of the Invention]

[0013] This disclosure provides an adhesive film for metal terminals that has excellent adhesion to metal terminals and excellent conformability. Furthermore, this disclosure also aims to provide a method for manufacturing the adhesive film for metal terminals, a metal terminal with the adhesive film for metal terminals using the adhesive film for metal terminals, an energy storage device using the adhesive film for metal terminals, and a method for manufacturing the energy storage device. [Brief explanation of the drawing]

[0014] [Figure 1] This is a schematic plan view of the energy storage device disclosed herein. [Figure 2] This is a schematic cross-sectional view along the line A-A' in Figure 1. [Figure 3] This is a schematic cross-sectional view along the line B-B' in Figure 1. [Figure 4] This is a schematic cross-sectional view of the adhesive film for metal terminals of the present disclosure. [Figure 5] This is a schematic cross-sectional view of the adhesive film for metal terminals of the present disclosure. [Figure 6]This is a schematic cross-sectional view of the exterior material for the energy storage device disclosed herein. [Figure 7] This is a schematic cross-sectional view of a laminate of adhesive film / metal terminal / adhesive film (metal terminal with adhesive film for metal terminals) obtained by sandwiching a metal terminal between two adhesive films and heat-sealing them in the example. [Figure 8] This is a conceptual graph showing the relationship between indentation depth (μm) and load (mN) obtained from measurements of Martens hardness, indentation modulus, and indentation depth hmax. [Figure 9] This is a schematic diagram illustrating a method for measuring the Martens hardness of an adhesive film for metal terminals by pressing an indenter perpendicularly into the cross-section of the first polyolefin layer in the thickness direction. [Modes for carrying out the invention]

[0015] The adhesive film for metal terminals of this disclosure is an adhesive film for metal terminals interposed between a metal terminal electrically connected to an electrode of an energy storage device element and an outer casing material for an energy storage device that seals the energy storage device element, wherein the adhesive film for metal terminals is composed of a laminate comprising, in this order, a first polyolefin layer disposed on the metal terminal side, a substrate, and a second polyolefin layer disposed on the outer casing material side for an energy storage device. Under the following measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer was 30 N / mm². 2 The following characteristics apply:

[0016] <Measurement conditions for Martens hardness> The load is 10 mN. The load application rate is 1 mN / 10 seconds. The holding time is 10 seconds. The load unloading rate is 1 mN / 10 seconds. The indenter is a Vickers indenter with a square pyramidal shape and a 136° angle between the opposing points at its tip. The measurement temperature is 25°C. The measurement value is the average of eight measurements taken after 10 measurements at different locations, excluding the maximum and minimum values.

[0017] As shown in the schematic diagram in Figure 9, the Martens hardness is measured by pressing an indenter in a direction x perpendicular to the thickness direction y (arrow in Figure 9) against the cross-section in the thickness direction y of the first polyolefin layer of the adhesive film for metal terminals (i.e., the cross-section obtained by cutting the adhesive film for metal terminals in the thickness direction).

[0018] The adhesive film for metal terminals of this disclosure has a Martens hardness of 30 N / mm² in the first polyolefin layer disposed on the metal terminal side. 2 As configured below, the heat seal provides excellent adhesion and conformability to the metal terminals.

[0019] Furthermore, the energy storage device of this disclosure comprises at least an energy storage device element having a positive electrode, a negative electrode, and an electrolyte; an outer casing material for the energy storage device that seals the energy storage device element; and metal terminals electrically connected to the positive electrode and the negative electrode, respectively, and protruding to the outside of the outer casing material for the energy storage device, wherein the adhesive film for metal terminals of this disclosure is interposed between the metal terminals and the outer casing material for the energy storage device. The adhesive film for metal terminals of this disclosure, a method for manufacturing the same, an energy storage device using the adhesive film for metal terminals, and a method for manufacturing the same will be described in detail below.

[0020] In this specification, numerical ranges indicated by "~" mean "greater than or equal to" and "less than or equal to." For example, the notation 2~15mm means 2mm or more and 15mm or less.

[0021] Another method for confirming the MD (mass density) of adhesive films for metal terminals involves observing a cross-section of the adhesive film (for example, the first polyolefin layer, the substrate, or the second polyolefin layer) with an electron microscope to confirm the sea-island structure. In this method, the direction parallel to the cross-section where the average diameter of the island shapes perpendicular to the thickness direction of the adhesive film for metal terminals is maximized can be determined as the MD. Specifically, the sea-island structure is confirmed by observing electron microscope images of each of the following cross-sections (a total of 10 cross-sections): the cross-section in the length direction of the adhesive film for metal terminals, and each cross-section from the direction parallel to the cross-section in the length direction, with angles changed by 10 degrees increments, up to the direction perpendicular to the cross-section in the length direction. Next, the shape of each individual island is observed in each cross-section. For each island shape, the diameter y is defined as the straight-line distance connecting the leftmost point perpendicular to the thickness direction of the adhesive film for metal terminals and the rightmost point perpendicular to that direction. In each cross-section, the average of the top 20 diameters y, ordered from largest to smallest, is calculated. The direction parallel to the cross-section where the average of the relevant diameter y of the island's shape was largest is determined to be the MD (Movement Direction).

[0022] 1. Adhesive film for metal terminals The adhesive film for metal terminals of this disclosure is interposed between a metal terminal electrically connected to the electrodes of an energy storage device element and an outer casing material for an energy storage device that seals the energy storage device element. Specifically, as shown in Figures 1 to 3, for example, the adhesive film 1 for metal terminals of this disclosure is interposed between a metal terminal 2 electrically connected to the electrodes of an energy storage device element 4 and an outer casing material 3 for an energy storage device that seals the energy storage device element 4. The metal terminal 2 protrudes to the outside of the outer casing material 3 and is sandwiched between the outer casing material 3 and the heat-sealed outer casing material 3 via the adhesive film 1. In this disclosure, the heating temperature when heat-sealing the outer casing material for an energy storage device is typically in the range of 160 to 190°C, and the pressure is typically in the range of 1.0 to 2.0 MPa. In the process of bonding metal terminals to the exterior material for energy storage devices via an adhesive film, it is common to perform multiple heating and pressurizing steps, such as a temporary bonding step and a final bonding step. The temporary bonding step is a step to temporarily fix the adhesive film to the metal terminals and remove air bubbles, while the final bonding step is a step to bond the adhesive film to the metal terminals by heating and pressurizing one or more times under higher temperature conditions than the temporary bonding step. For example, the temporary bonding step of the adhesive film for metal terminals to the metal terminals is performed under conditions such as a temperature of approximately 140-160°C, a pressure of approximately 0.01-1.0 MPa, a time of approximately 3-15 seconds, and 3-6 times, while the final bonding step is performed under conditions such as a temperature of approximately 160-240°C, a pressure of approximately 0.01-1.0 MPa, a time of approximately 3-15 seconds, and 1-3 times.

[0023] The adhesive film 1 for metal terminals of this disclosure is provided to improve the adhesion between the metal terminals 2 and the exterior material 3 for the energy storage device. By improving the adhesion between the metal terminals 2 and the exterior material 3 for the energy storage device, the sealing performance of the energy storage device element 4 is improved. As described above, when heat sealing the energy storage device element 4, the metal terminals 2 electrically connected to the electrodes of the energy storage device element 4 protrude to the outside of the exterior material 3 for the energy storage device, thereby sealing the energy storage device element. At this time, since the metal terminals 2, which are made of metal, and the heat-fusible resin layer 35 (a layer made of a heat-fusible resin such as polyolefin) located in the innermost layer of the exterior material 3 for the energy storage device are made of different materials, if such an adhesive film is not used, the sealing performance of the energy storage device element tends to be low at the interface between the metal terminals 2 and the heat-fusible resin layer 35.

[0024] As shown in Figures 4 and 5, the adhesive film 1 for metal terminals of this disclosure includes a configuration in which at least a first polyolefin layer 12a, a substrate 11, and a second polyolefin layer 12b are laminated in this order. The first polyolefin layer 12a is positioned on the metal terminal side. The second polyolefin layer 12b is positioned on the exterior material 3 side for the energy storage device. In the adhesive film 1 for metal terminals of this disclosure, the first polyolefin layer 12a and the second polyolefin layer 12b are located on the surfaces of both sides, respectively.

[0025] In the adhesive film 1 for metal terminals of this disclosure, the first polyolefin layer 12a and the second polyolefin layer 12b are each layers containing a polyolefin resin. Examples of polyolefin resins include polyolefin and acid-modified polyolefin. The first polyolefin layer 12a preferably contains acid-modified polyolefin, and more preferably is a layer formed of acid-modified polyolefin. The second polyolefin layer 12b preferably contains polyolefin or acid-modified polyolefin, more preferably contains polyolefin, and even more preferably is a layer formed of polyolefin. By using the same resin to form the heat-sealable resin layer 35 of the heat-sealable resin layer 35 of the heat-sealable resin layer 3 of the heat-sealable resin layer 3 of this disclosure as the resin to form the second polyolefin layer 12b which is arranged on the exterior material 3 for the energy storage device, the adhesion between the adhesive film 1 for metal terminals of this disclosure and the exterior material for the energy storage device is improved.

[0026] Furthermore, the base material 11 preferably contains a polyolefin resin, preferably contains polyolefin, and more preferably is a layer formed of polyolefin.

[0027] In the first polyolefin layer 12a, the second polyolefin layer 12b, and the substrate 11, the polyolefin resin is preferably a polypropylene resin, the polyolefin is preferably polypropylene, and the acid-modified polyolefin is preferably acid-modified polypropylene. The polyolefin resins, such as polyolefin and acid-modified polyolefin, may contain known additives, fillers, pigments, etc., as described later.

[0028] Specific examples of preferred lamination configurations of the adhesive film 1 for metal terminals of this disclosure include a three-layer configuration in which a first polyolefin layer made of acid-modified polypropylene, a substrate made of polypropylene, and a second polyolefin layer made of polypropylene are laminated in this order; and a three-layer configuration in which a first polyolefin layer made of acid-modified polypropylene, a substrate made of polypropylene, and a second polyolefin layer made of acid-modified polypropylene are laminated in this order. Among these, the three-layer configuration in which a first polyolefin layer made of acid-modified polypropylene, a substrate made of polypropylene, and a second polyolefin layer made of polypropylene are laminated in this order is particularly preferred.

[0029] Details of the materials constituting the first polyolefin layer 12a, the second polyolefin layer 12b, and the substrate 11 will be described later.

[0030] When the adhesive film 1 for metal terminals of this disclosure is placed between the metal terminal 2 of the energy storage device 10 and the exterior material 3 for the energy storage device, the surface of the metal terminal 2, which is made of metal, and the heat-fusible resin layer 35 (a layer formed of a heat-fusible resin such as polyolefin) of the exterior material 3 for the energy storage device are bonded together via the adhesive film 1 for metal terminals. The first polyolefin layer 12a of the adhesive film for metal terminals 1 is positioned on the metal terminal 2 side, and the second polyolefin layer 12b is positioned on the exterior material 3 side for the energy storage device, with the first polyolefin layer 12a in close contact with the metal terminal 2 and the second polyolefin layer 12b in close contact with the heat-fusible resin layer 35 of the exterior material 3 for the energy storage device.

[0031] In the adhesive film 1 for metal terminals of this disclosure, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer 12a is 30 N / mm². 2The following applies. The adhesive film 1 for metal terminals of this disclosure exhibits excellent adhesion and conformability to the metal terminal 2 because the first polyolefin layer 12a, which is arranged on the metal terminal 2 side, has high flexibility. Although we do not wish for a restrictive interpretation, it is thought that the high flexibility of the first polyolefin layer 12a allows the first polyolefin layer 12a to easily fill into the gap formed between the metal terminal and the exterior material for the energy storage device, and also allows the first polyolefin layer 12a to easily wrap around the metal terminal in the thickness direction, thereby exhibiting excellent adhesion and conformability to the metal terminal 2. The measurement conditions for the Martens hardness are as follows. As a pretreatment of the sample to be measured, the adhesive film for metal terminals is cut to MD30mm and TD15mm. Next, the sample is embedded in epoxy cold embedding resin and dried for about 1 day. Subsequently, the cross-section obtained by cutting in the TD direction is polished using a Tegrapol-35 mechanical polishing device manufactured by Marumoto Storuas Co., Ltd., to a surface roughness of approximately 1.0 μm. Martens hardness is measured by the indentation method. Measurement by the indentation method can be performed, for example, using a Picodenter HM-500 manufactured by Fischer Instruments.

[0032] <Measurement conditions for Martens hardness> The load is 10 mN. The load application rate is 1 mN / 10 seconds. The holding time is 10 seconds. The load unloading rate is 1 mN / 10 seconds. The indenter is a Vickers indenter with a square pyramidal shape and a 136° angle between the opposing points at its tip. The measurement temperature is 25°C. The measurement value is the average of eight measurements taken after 10 measurements at different locations, excluding the maximum and minimum values.

[0033] The Martens hardness of the first polyolefin layer 12a is 30 N / mm². 2 The following values ​​are acceptable, but from the viewpoint of exhibiting even better adhesion and superior conformability to the metal terminal 2, approximately 25 N / mm² is preferred.2 Hereinafter, more preferably about 20 N / mm 2 Hereinafter, even more preferably about 15 N / mm 2 Hereinafter, particularly preferably about 12 N / mm 2 or less. Further, the martensitic hardness of the first polyolefin layer 12a is preferably about 3 N / mm 2 or more, more preferably about 5 N / mm 2 or more, even more preferably about 8 N / mm 2 or more. The preferable range of the martensitic hardness of the first polyolefin layer 12a is 3 to 30 N / mm 2 or so, 3 to 25 N / mm 2 or so, 3 to 20 N / mm 2 or so, 3 to 15 N / mm 2 or so, 3 to 12 N / mm 2 or so, 5 to 30 N / mm 2 or so, 5 to 25 N / mm 2 or so, 5 to 20 N / mm 2 or so, 5 to 15 N / mm 2 or so, 5 to 12 N / mm 2 or so, 8 to 30 N / mm 2 or so, 8 to 25 N / mm 2 or so, 8 to 20 N / mm 2 or so, 8 to 15 N / mm 2 or so, 8 to 12 N / mm 2 or so can be mentioned.

[0034] Furthermore, from the viewpoint of exhibiting even better adhesion and conformability to the metal terminal 2, in the Martens hardness measurement conditions, the indentation modulus measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer 12a is preferably about 400 MPa or less, more preferably about 350 MPa or less, even more preferably about 300 MPa or less, even more preferably about 250 MPa or less, and particularly preferably about 200 MPa or less. Also, the indentation modulus of the first polyolefin layer 12a is preferably about 100 MPa or more, more preferably about 120 MPa or more, and even more preferably about 150 MPa or more. The preferred range for the indentation modulus of the first polyolefin layer 12a includes approximately 100-400 MPa, 100-350 MPa, 100-300 MPa, 100-250 MPa, 100-200 MPa, 120-400 MPa, 120-350 MPa, 120-300 MPa, 120-250 MPa, 120-200 MPa, 150-400 MPa, 150-350 MPa, 150-300 MPa, 150-250 MPa, and 150-200 MPa.

[0035] Furthermore, in order to more effectively exhibit excellent adhesion and conformability to the metal terminal 2, the indentation depth h at a load of 10 mN, measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer 12a, under the Martens hardness measurement conditions, is also specified. max The indentation depth h of the first polyolefin layer 12a is preferably about 4.0 μm or more, more preferably about 4.5 μm or more, even more preferably about 4.8 μm or more, even more preferably about 5.0 μm or more, even more preferably about 5.5 μm or more, and particularly preferably about 6.0 μm or more. max The thickness is preferably about 10.0 μm or less, more preferably about 8.0 μm or less, and even more preferably about 7.0 μm or less. The indentation depth h of the first polyolefin layer 12a maxPreferred ranges include approximately 4.0-10.0 μm, 4.0-8.0 μm, 4.0-7.0 μm, 4.5-10.0 μm, 4.5-8.0 μm, 4.5-7.0 μm, 4.8-10.0 μm, 4.8-8.0 μm, 4.8-7.0 μm, 5.0-10.0 μm, 5.0-8.0 μm, 5.0-7.0 μm, 5.5-10.0 μm, 5.5-8.0 μm, and 5.5-7.0 μm.

[0036] Furthermore, from the viewpoint of exhibiting even better adhesion and conformability to the metal terminal 2, in the above-mentioned Martens hardness measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the second polyolefin layer 12b is preferably about 60 N / mm². 2 More preferably, about 50 N / mm 2 More preferably, about 45 N / mm 2 The following applies. Furthermore, the Martens hardness of the second polyolefin layer 12b is preferably about 8 N / mm². 2 More preferably, approximately 15 N / mm 2 In addition, approximately 20 N / mm 2 More preferably, about 25 N / mm 2 In particular, a load of approximately 30 N / mm is preferred. 2 That concludes the explanation. The preferred range for the Martens hardness of the second polyolefin layer 12b is 8 to 60 N / mm². 2 Degree, 8~50N / mm 2 Degree, 8~45N / mm 2 degree, 15~60N / mm 2 degree, 15~50N / mm 2 Degree, 15~45N / mm 2 Degree, 20~60N / mm 2 degree, 20~50N / mm 2 degree, 20~45N / mm 2 degree, 25~60N / mm 2 degree, 25~50N / mm 2 degree, 25~45N / mm 2 degree, 30~60N / mm 2 degree, 30~50N / mm 2degree, 30~45N / mm 2 The degree can be described as follows.

[0037] Furthermore, from the viewpoint of exhibiting even better adhesion and conformability to the metal terminal 2, in the Martens hardness measurement conditions, the indentation modulus measured perpendicular to the cross-section in the thickness direction of the second polyolefin layer 12b is preferably about 1500 MPa or less, more preferably about 1200 MPa or less, even more preferably about 1000 MPa or less, and even more preferably about 800 MPa or less. Also, the indentation modulus of the second polyolefin layer 12b is preferably about 400 MPa or more, more preferably about 500 MPa or more, even more preferably about 600 MPa or more, and even more preferably about 700 MPa or more. The preferred range for the indentation modulus of the second polyolefin layer 12b is approximately 400-1500 MPa, 400-1200 MPa, 400-1000 MPa, 400-800 MPa, 500-1500 MPa, 500-1200 MPa, 500-1000 MPa, 500-800 MPa, 600-1500 MPa, 600-1200 MPa, 600-1000 MPa, 600-800 MPa, 700-1500 MPa, 700-1200 MPa, 700-1000 MPa, and 700-800 MPa.

[0038] Furthermore, in order to more effectively demonstrate excellent adhesion and conformability to the metal terminal 2, the indentation depth h at a load of 10 mN is measured perpendicular to the cross-section in the thickness direction of the second polyolefin layer 12b under the aforementioned Martens hardness measurement conditions. max The thickness is preferably about 2.5 μm or more, more preferably about 2.8 μm or more, and even more preferably about 3.0 μm or more. Also, the indentation depth h of the second polyolefin layer 12b max The thickness of the second polyolefin layer 12b is preferably about 5.0 μm or less, more preferably about 4.5 μm or less, and even more preferably about 4.0 μm or less. maxPreferred ranges include approximately 2.5-5.0 μm, 2.5-4.5 μm, 2.5-4.0 μm, 2.8-5.0 μm, 2.8-4.5 μm, 2.8-4.0 μm, 3.0-5.0 μm, 3.0-4.5 μm, and 3.0-4.0 μm.

[0039] Furthermore, from the viewpoint of exhibiting even better adhesion and conformability to the metal terminal 2, in the above-mentioned Martens hardness measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the base material 11 is preferably about 60 N / mm². 2 More preferably, about 50 N / mm 2 More preferably, about 45 N / mm 2 The following applies. Furthermore, the Martens hardness of the base material 11 is preferably about 10 N / mm². 2 More preferably, approximately 15 N / mm 2 In addition, approximately 20 N / mm 2 More preferably, about 25 N / mm 2 In particular, a load of approximately 30 N / mm is preferred. 2 That concludes the explanation. The preferred range for the Martens hardness of the base material 11 is 10 to 60 N / mm². 2 Degree, 10~50N / mm 2 Degree, 10~45N / mm 2 degree, 15~60N / mm 2 degree, 15~50N / mm 2 Degree, 15~45N / mm 2 Degree, 20~60N / mm 2 degree, 20~50N / mm 2 degree, 20~45N / mm 2 degree, 25~60N / mm 2 degree, 25~50N / mm 2 degree, 25~45N / mm 2 degree, 30~60N / mm 2 degree, 30~50N / mm 2 degree, 30~45N / mm 2 The degree can be described as follows.

[0040] Furthermore, from the viewpoint of exhibiting even better adhesion and conformability to the metal terminal 2, in the Martens hardness measurement conditions, the indentation modulus measured perpendicular to the cross-section in the thickness direction of the base material 11 is preferably about 1500 MPa or less, more preferably about 1200 MPa or less, even more preferably about 1000 MPa or less, and even more preferably about 800 MPa or less. Also, the indentation modulus of the base material 11 is preferably about 200 MPa or more, more preferably about 300 MPa or more, even more preferably about 500 MPa or more, and even more preferably about 700 MPa or more. The preferred range for the indentation modulus of the base material 11 includes approximately 200-1500 MPa, 200-1200 MPa, 200-1000 MPa, 200-800 MPa, 300-1500 MPa, 300-1200 MPa, 300-1000 MPa, 300-800 MPa, 500-1500 MPa, 500-1200 MPa, 500-1000 MPa, 500-800 MPa, 700-1500 MPa, 700-1200 MPa, 700-1000 MPa, and 700-800 MPa.

[0041] Furthermore, in order to more effectively demonstrate excellent adhesion and conformability to the metal terminal 2, the indentation depth h at a load of 10 mN is measured perpendicular to the cross-section in the thickness direction of the base material 11 under the aforementioned Martens hardness measurement conditions. max The thickness is preferably about 2.5 μm or more, more preferably about 2.8 μm or more, and even more preferably about 3.0 μm or more. Also, the indentation depth h of the substrate 11 max The depth of the indentation h of the substrate 11 is preferably about 5.0 μm or less, more preferably about 4.5 μm or less, and even more preferably about 4.0 μm or less. max Preferred ranges include approximately 2.5-5.0 μm, 2.5-4.5 μm, 2.5-4.0 μm, 2.8-5.0 μm, 2.8-4.5 μm, 2.8-4.0 μm, 3.0-5.0 μm, 3.0-4.5 μm, and 3.0-4.0 μm.

[0042] In the adhesive film 1 for metal terminals of the present disclosure, the Martens hardness, indentation modulus, and indentation depth h of the first polyolefin layer 12a, the second polyolefin layer 12b, and the substrate 11 are as described above. max These can be adjusted by the composition, skeleton, dispersibility, molecular weight, melting point, MFR of the resin constituting each layer, as well as by conditions such as the T-die and inflation during the manufacturing of the adhesive film 1 for metal terminals (e.g., extrusion width from the T-die, stretching ratio, stretching speed, heat treatment temperature, etc.). For example, the Martens hardness, indentation modulus, and indentation depth h of the first polyolefin layer of the adhesive film for metal terminals. max Methods for adjusting the composition of the first polyolefin layer 12a include adding predetermined amounts of butene components, ethylene-propylene-butene copolymer, amorphous ethylene-propylene copolymer, propylene-α-olefin copolymer, etc., in order to improve flexibility.

[0043] The total thickness of the adhesive film 1 for metal terminals of this disclosure is, for example, about 60 μm or more, preferably about 80 μm or more, preferably about 100 μm or more, more preferably about 120 μm or more, and even more preferably about 150 μm or more, from the viewpoint of improving conformability to the shape of the metal terminal 2. Furthermore, the total thickness of the adhesive film 1 for metal terminals of this disclosure is preferably about 200 μm or less, more preferably 180 μm or less. Preferred ranges for the total thickness of the adhesive film 1 for metal terminals of this disclosure include about 60 to 200 μm, about 60 to 180 μm, about 80 to 200 μm, about 80 to 180 μm, about 100 to 200 μm, about 100 to 180 μm, about 120 to 200 μm, about 120 to 180 μm, about 150 to 200 μm, and about 150 to 180 μm. More specifically, when the adhesive film 1 for metal terminals of this disclosure is used in consumer energy storage devices, the total thickness is preferably about 60 to 100 μm, and when it is used in automotive energy storage devices, the total thickness is preferably about 100 to 200 μm.

[0044] The first polyolefin layer 12a, the second polyolefin layer 12b, and the substrate 11 will be described in detail below.

[0045] [First polyolefin layer 12a and second polyolefin layer 12b] As shown in Figures 4 and 5, the adhesive film 1 for metal terminals of this disclosure comprises a first polyolefin layer 12a on one side of the substrate 11 and a second polyolefin layer 12b on the other side. The first polyolefin layer 12a is positioned on the metal terminal 2 side. The second polyolefin layer 12b is positioned on the exterior material 3 side for the energy storage device. In the adhesive film 1 for metal terminals of this disclosure, the first polyolefin layer 12a and the second polyolefin layer 12b are located on the surfaces of both sides, respectively.

[0046] In the adhesive film 1 for metal terminals of this disclosure, the first polyolefin layer 12a and the second polyolefin layer 12b are each layers containing a polyolefin resin. Examples of polyolefin resins include polyolefins and acid-modified polyolefins. The first polyolefin layer 12a preferably contains acid-modified polyolefins, and more preferably is a layer formed of acid-modified polyolefins. The second polyolefin layer 12b preferably contains polyolefins or acid-modified polyolefins, more preferably contains polyolefins, and even more preferably is a layer formed of polyolefins. Acid-modified polyolefins have a high affinity for metals. Polyolefins also have a high affinity for heat-fusible resins such as polyolefins. Therefore, in the adhesive film 1 for metal terminals of this disclosure, by arranging the first polyolefin layer 12a, which is formed of acid-modified polyolefin, on the metal terminal 2 side, even better adhesion can be achieved at the interface between the adhesive film 1 for metal terminals and the metal terminal 2. Furthermore, by placing the second polyolefin layer 12b, formed of polyolefin, on the heat-fusible resin layer 35 side of the exterior material 3 for the energy storage device, even better adhesion can be achieved at the interface between the adhesive film 1 for metal terminals and the heat-fusible resin layer 35.

[0047] Specific examples of preferred lamination configurations of the adhesive film 1 for metal terminals of this disclosure include a three-layer configuration in which a first polyolefin layer made of acid-modified polypropylene, a substrate made of polypropylene, and a second polyolefin layer made of polypropylene are laminated in this order; and a three-layer configuration in which a first polyolefin layer made of acid-modified polypropylene, a substrate made of polypropylene, and a second polyolefin layer made of acid-modified polypropylene are laminated in this order. Among these, the three-layer configuration in which a first polyolefin layer made of acid-modified polypropylene, a substrate made of polypropylene, and a second polyolefin layer made of polypropylene are laminated in this order is particularly preferred.

[0048] The acid-modified polyolefin is not particularly limited as long as it is an acid-modified polyolefin, but preferably it is a polyolefin graft-modified with an unsaturated carboxylic acid or its anhydride.

[0049] Examples of polyolefins that can be acid-modified include polyethylene such as low-density polyethylene, medium-density polyethylene, high-density polyethylene, and linear low-density polyethylene; crystalline or amorphous polypropylene such as homopolypropylene, block copolymers of polypropylene (e.g., block copolymer of propylene and ethylene), and random copolymers of polypropylene (e.g., random copolymer of propylene and ethylene); and ethylene-butene-propylene terpolymers. Among these polyolefins, polyethylene and polypropylene are preferred, and polypropylene is particularly preferred.

[0050] Furthermore, the polyolefin that is acid-modified may be a cyclic polyolefin. For example, a carboxylic acid-modified cyclic polyolefin is a polymer obtained by copolymerizing a portion of the monomers constituting the cyclic polyolefin with an α,β-unsaturated carboxylic acid or its anhydride, or by block polymerization or graft polymerization of an α,β-unsaturated carboxylic acid or its anhydride to a cyclic polyolefin.

[0051] The acid-modified cyclic polyolefin is a copolymer of an olefin and a cyclic monomer. Examples of olefins that are constituent monomers of the cyclic polyolefin include ethylene, propylene, 4-methyl-1-pentene, butadiene, and isoprene. Examples of cyclic monomers that are constituent monomers of the cyclic polyolefin include cyclic alkenes such as norbornene; specifically, cyclic dienes such as cyclopentadiene, dicyclopentadiene, cyclohexadiene, and norbornadiene. Among these polyolefins, cyclic alkenes are preferred, and norbornene is more preferred. Styrene can also be used as a constituent monomer.

[0052] Examples of carboxylic acids or their anhydrides used for acid modification include maleic acid, acrylic acid, itaconic acid, crotonic acid, maleic anhydride, and itaconic anhydride. When the first polyolefin layer 12a is analyzed by infrared spectroscopy, it is preferable that a peak originating from maleic anhydride is detected. For example, when maleic anhydride-modified polyolefin is measured by infrared spectroscopy, a peak at wavenumber 1760 cm⁻¹ is detected. -1 Nearby wave frequency 1780cm -1 A peak derived from maleic anhydride is detected in the vicinity. If the first polyolefin layer 12a or the second polyolefin layer 12b is composed of maleic anhydride-modified polyolefin, a peak derived from maleic anhydride will be detected when measured by infrared spectroscopy. However, if the degree of acid modification is low, the peak may become small and not be detected. In that case, analysis is possible by nuclear magnetic resonance spectroscopy.

[0053] The first polyolefin layer 12a and the second polyolefin layer 12b may each be formed from a single resin component, or from a blended polymer combining two or more resin components. Furthermore, the first polyolefin layer 12a and the second polyolefin layer 12b may each be formed as a single layer, or as two or more layers made from the same or different resin components. From the viewpoint of film-forming properties of the first polyolefin layer 12a and the second polyolefin layer 12b, it is preferable that these layers each be formed from a blended polymer combining two or more resin components. When a blended polymer is used, for the first polyolefin layer 12a, it is preferable that acid-modified polypropylene is the main component (50% by mass or more), and 50% by mass or less is another resin (preferably polyethylene from the viewpoint of improving flexibility). Similarly, for the second polyolefin layer 12b, it is preferable that polypropylene is the main component (50% by mass or more), and 50% by mass or less is another resin (preferably polyethylene from the viewpoint of improving flexibility). On the other hand, from the viewpoint of electrolyte resistance of the first polyolefin layer 12a and the second polyolefin layer 12b, it is preferable that the first polyolefin layer 12a contains acid-modified polypropylene alone as the resin, and it is preferable that the second polyolefin layer 12b contains polypropylene alone as the resin.

[0054] Furthermore, the first polyolefin layer 12a and the second polyolefin layer 12b may each contain a filler as needed. The inclusion of a filler in the first polyolefin layer 12a and the second polyolefin layer 12b allows the filler to function as a spacer, effectively suppressing short circuits between the metal terminal 2 and the barrier layer 33 of the energy storage device exterior material 3. The particle size of the filler can range from approximately 0.1 to 35 μm, preferably 5.0 to 30 μm, and more preferably 10 to 25 μm. The filler content can be approximately 5 to 30 parts by mass, more preferably 10 to 20 parts by mass, per 100 parts by mass of the resin component forming the first polyolefin layer 12a and the second polyolefin layer 12b.

[0055] Both inorganic and organic fillers can be used. Examples of inorganic fillers include carbon (carbon, graphite), silica, aluminum oxide, barium titanate, iron oxide, silicon carbide, zirconium oxide, zirconium silicate, magnesium oxide, titanium oxide, calcium aluminate, calcium hydroxide, aluminum hydroxide, magnesium hydroxide, and calcium carbonate. Examples of organic fillers include fluororesins, phenolic resins, urea resins, epoxy resins, acrylic resins, benzoguanamine-formaldehyde condensates, melamine-formaldehyde condensates, polymethyl methacrylate crosslinked products, and polyethylene crosslinked products. From the viewpoint of shape stability, rigidity, and content resistance, aluminum oxide, silica, fluororesins, acrylic resins, and benzoguanamine-formaldehyde condensates are preferred, and among these, spherical aluminum oxide and silica are particularly preferred. As for the method of mixing the filler into the resin components that form the first polyolefin layer 12a and the second polyolefin layer 12b, methods such as melt-blending the two in advance using a Banbury mixer or the like to create a masterbatch and then mixing it in a predetermined ratio can be employed, or a direct mixing method with the resin components can be employed.

[0056] Furthermore, the first polyolefin layer 12a and the second polyolefin layer 12b may each contain a pigment as needed. Various inorganic pigments can be used as the pigment. Specific examples of the pigment include carbon (carbon, graphite), as exemplified in the filler above. Carbon (carbon, graphite) is a material commonly used inside energy storage devices and does not leach into the electrolyte. In addition, a sufficient coloring effect can be obtained with an amount that does not significantly impede adhesion, and it does not melt with heat, thus increasing the apparent melt viscosity of the added resin. Furthermore, it prevents the pressurized portion from becoming thin during heat bonding (heat sealing), providing excellent sealing between the energy storage device exterior material and the metal terminals.

[0057] When adding pigment to the first polyolefin layer 12a and the second polyolefin layer 12b, the amount added is, for example, when using carbon black with a particle size of about 0.03 μm, about 0.05 to 0.3 parts by mass, preferably about 0.1 to 0.2 parts by mass, per 100 parts by mass of the resin component forming the first polyolefin layer 12a and the second polyolefin layer 12b. By adding pigment to the first polyolefin layer 12a and the second polyolefin layer 12b, the presence or absence of the adhesive film 1 for metal terminals can be detected by a sensor or inspected visually. It is particularly preferable that the first polyolefin layer 12a contains the pigment. When adding a filler and a pigment to the first polyolefin layer 12a and the second polyolefin layer 12b, the filler and pigment may be added to the same first polyolefin layer 12a and second polyolefin layer 12b. However, from the viewpoint of not hindering the heat-sealing properties of the adhesive film 1 for metal terminals, it is preferable to add the filler and pigment separately to the first polyolefin layer 12a and the second polyolefin layer 12b.

[0058] The melt mass flow rate (MFR) of the first polyolefin layer 12a and the second polyolefin layer 12b at 230°C is preferably about 5 g / 10 min or more, more preferably about 7 g / 10 min or more, even more preferably about 8 g / 10 min or more, and also preferably about 11 g / 10 min or less, more preferably about 10 g / 10 min or less, with preferred ranges including about 5-11 g / 10 min, about 5-10 g / 10 min, about 7-11 g / 10 min, about 7-10 g / 10 min, about 8-11 g / 10 min, and about 8-10 g / 10 min. The melt mass flow rates (MFRs) of the first polyolefin layer 12a and the second polyolefin layer 12b are values ​​(g / 10 min) measured at 230°C in accordance with the provisions of JIS K7210-1:2014 (ISO 1133-1:2011). When the first polyolefin layer 12a is an acid-modified polyolefin layer, it is particularly preferable that the MFR value of the acid-modified polyolefin layer satisfies the above value.

[0059] Furthermore, the melting point of the first polyolefin layer 12a is preferably about 120°C or higher, more preferably about 130°C or higher, and also preferably about 160°C or lower, more preferably about 150°C or lower, with preferred ranges being approximately 120-160°C, 120-150°C, 130-160°C, and 130-150°C. Furthermore, the melting point of the second polyolefin layer 12b is preferably about 120°C or higher, more preferably about 130°C or higher, and also preferably about 160°C or lower, more preferably about 150°C or lower, from the viewpoint of satisfying the aforementioned Martens hardness and other requirements and further exhibiting excellent adhesion and excellent conformability of the adhesive film 1 for metal terminals to the metal terminals 2. Preferred ranges are approximately 120-160°C, 120-150°C, 130-160°C, and 130-150°C. The melting point is the endothermic peak measured by differential scanning calorimeter (DSC).

[0060] The thicknesses of the first polyolefin layer 12a and the second polyolefin layer 12b are preferably about 10 μm or more, more preferably about 15 μm or more, even more preferably about 20 μm or more, and even more preferably about 30 μm or more, respectively, from the viewpoint of satisfying the aforementioned Martens hardness and other requirements and further exhibiting excellent adhesion and excellent conformability of the adhesive film 1 for metal terminals to the metal terminals 2, and also, for example, about 80 μm or less, preferably about 60 μm or less, and more preferably about 50 μm or less. Preferred thickness ranges for the first polyolefin layer 12a and the second polyolefin layer 12b include approximately 10-80 μm, 10-60 μm, 10-50 μm, 15-80 μm, 15-60 μm, 15-50 μm, 20-80 μm, 20-60 μm, 20-50 μm, 30-80 μm, 30-60 μm, and 30-50 μm, respectively. More specifically, for example, when the adhesive film 1 for metal terminals of this disclosure is used in consumer energy storage devices, the thickness of the first polyolefin layer 12a and the second polyolefin layer 12b is preferably approximately 10-30 μm, and when used in automotive energy storage devices, it is preferably approximately 30-80 μm.

[0061] The ratio of the thickness of the base material 11 to the total thickness of the first polyolefin layer 12a and the second polyolefin layer 12b is preferably about 0.3 or more, more preferably about 0.4 or more, even more preferably 0.5 or more, and also preferably about 1.0 or less, more preferably about 0.8 or less. Preferred ranges include about 0.3 to 1.0, about 0.3 to 0.8, about 0.4 to 1.0, about 0.4 to 0.8, about 0.5 to 1.0, and about 0.5 to 0.8.

[0062] Furthermore, with the total thickness of the adhesive film 1 for metal terminals being 100%, the ratio of the total thickness of the first polyolefin layer 12a and the second polyolefin layer 12b is preferably about 30-80%, more preferably about 50-70%.

[0063] [Base material 11] In the adhesive film 1 for metal terminals, the substrate 11 is a layer that functions as a support for the adhesive film 1 for metal terminals.

[0064] The material forming the base material 11 is not particularly limited. Examples of materials for forming the base material 11 include polyolefin resins, polyamide resins, polyester resins, epoxy resins, acrylic resins, fluororesins, silicon resins, phenolic resins, polyetherimides, polyimides, polycarbonates, and mixtures or copolymers thereof, among which polyolefin resins are particularly preferred. In other words, the material forming the base material 11 is preferably a resin containing a polyolefin skeleton, such as polyolefin or acid-modified polyolefin. The presence of a polyolefin skeleton in the resin constituting the base material 11 can be analyzed, for example, by infrared spectroscopy or gas chromatography-mass spectrometry.

[0065] As described above, the base material 11 preferably contains a polyolefin resin, preferably contains a polyolefin, and more preferably is a layer formed of polyolefin. Specifically, examples of polyolefins include polyethylene such as low-density polyethylene, medium-density polyethylene, high-density polyethylene, and linear low-density polyethylene; crystalline or amorphous polypropylene such as homopolypropylene, block copolymers of polypropylene (e.g., block copolymer of propylene and ethylene), and random copolymers of polypropylene (e.g., random copolymer of propylene and ethylene); and ethylene-butene-propylene terpolymer. Among these polyolefins, polyethylene and polypropylene are preferred, and polypropylene is more preferred. Furthermore, because of its excellent electrolyte resistance, the base material 11 preferably contains homopolypropylene, and is particularly preferably formed of homopolypropylene.

[0066] Specifically, examples of polyamides include aliphatic polyamides such as nylon 6, nylon 66, nylon 610, nylon 12, nylon 46, and copolymers of nylon 6 and nylon 66; hexamethylenediamine-isophthalic acid-terephthalic acid copolymer polyamides such as nylon 6I, nylon 6T, nylon 6IT, and nylon 6I6T (where I represents isophthalic acid and T represents terephthalic acid), which contain constituent units derived from terephthalic acid and / or isophthalic acid; aromatic polyamides such as polymetaxylylene adipamide (MXD6); alicyclic polyamides such as polyaminomethylcyclohexyl adipamide (PACM6); polyamides copolymerized with lactam components or isocyanate components such as 4,4'-diphenylmethane-diisocyanate; polyesteramide copolymers and polyether esteramide copolymers, which are copolymers of copolymerized polyamides with polyester or polyalkylene ether glycol; and copolymers thereof. These polyamides may be used individually or in combination of two or more.

[0067] Specifically, examples of polyesters include polyethylene terephthalate, polybutylene terephthalate, polyethylene naphthalate, polybutylene naphthalate, polyethylene isophthalate, copolymer polyesters with ethylene terephthalate as the main repeating unit, and copolymer polyesters with butylene terephthalate as the main repeating unit. Furthermore, specific examples of copolymer polyesters with ethylene terephthalate as the main repeating unit include copolymer polyesters polymerized with ethylene isophthalate using ethylene terephthalate as the main repeating unit (hereinafter abbreviated as polyethylene (terephthalate / isophthalate)), polyethylene (terephthalate / isophthalate), polyethylene (terephthalate / adipate), polyethylene (terephthalate / sodium sulfoisophthalate), polyethylene (terephthalate / sodium isophthalate), polyethylene (terephthalate / phenyl dicarboxylate), and polyethylene (terephthalate / decanedicarboxylate). Furthermore, specific examples of copolymer polyesters with butylene terephthalate as the main repeating unit include copolymer polyesters polymerized with butylene isophthalate using butylene terephthalate as the main repeating unit (hereinafter abbreviated as polybutylene(terephthalate / isophthalate)), polybutylene(terephthalate / adipate), polybutylene(terephthalate / sebacate), polybutylene(terephthalate / decanedicarboxylate), and polybutylene naphthalate. These polyesters may be used individually or in combination of two or more types.

[0068] Furthermore, the base material 11 may be formed from a nonwoven fabric made of the above-mentioned resin. When the base material 11 is a nonwoven fabric, it is preferable that the base material 11 is made of the aforementioned polyolefin resin, polyamide resin, etc.

[0069] Furthermore, by incorporating a coloring agent into the base material 11, the base material 11 can be made into a layer containing the coloring agent. Light transmittance can also be adjusted by selecting a resin with low transparency. If the base material 11 is a film, a colored film or a film with low transparency can be used. If the base material 11 is a nonwoven fabric, a nonwoven fabric using fibers or binders containing the coloring agent, or a nonwoven fabric with low transparency can be used.

[0070] The melt mass flow rate (MFR) of the base material 11 at 230°C is preferably 8 g / 10 min or less, more preferably 4 g / 10 min or less, from the viewpoint of satisfying the aforementioned Martens hardness and other requirements and further exhibiting excellent adhesion and excellent conformability of the adhesive film 1 for metal terminals to the metal terminals 2. Furthermore, from the viewpoint of providing an adhesive film 1 for metal terminals with excellent flexibility (good evaluation of conformability and adhesion as described later), it is preferably 1 g / 10 min or more, more preferably 2 g / 10 min or more. Preferred ranges include approximately 1 to 8 g / 10 min, approximately 1 to 4 g / 10 min, approximately 2 to 8 g / 10 min, and approximately 2 to 4 g / 10 min. When the base material 11 is a polyolefin layer (a layer formed from polyolefin), it is particularly preferable that the MFR value of the polyolefin layer satisfies the above values. The melt mass flow rate (MFR) of base material 11 is the value (g / 10 min) at 230°C measured in accordance with the provisions of JIS K7210-1:2014 (ISO 1133-1:2011).

[0071] Furthermore, the melting point of the base material 11 is preferably 130°C or higher, more preferably 150°C or higher, preferably 190°C or lower, more preferably 170°C or lower, and the preferred ranges are approximately 130-190°C, 130-170°C, 150-190°C, and 150-170°C. The melting point is the endothermic peak measured by differential scanning calorimeter (DSC).

[0072] If the substrate 11 is made of a resin film, the surface of the substrate 11 may be subjected to known easy-adhesion methods such as corona discharge treatment, ozone treatment, or plasma treatment, as needed.

[0073] The thickness of the substrate 11 is, for example, about 100 μm or less, preferably about 60 μm or less, and more preferably about 55 μm or less, from the viewpoint of further favorably exhibiting the excellent adhesion and excellent conformability of the adhesive film 1 for metal terminals to the metal terminals 2. Furthermore, the thickness of the substrate 11 is preferably about 20 μm or more, more preferably about 30 μm or more, and even more preferably about 40 μm or more. Preferred ranges for the thickness of the substrate 11 include approximately 20-100 μm, 20-60 μm, 20-55 μm, 30-100 μm, 30-60 μm, 30-55 μm, 40-100 μm, 40-60 μm, and 40-55 μm. As a more specific example, when the adhesive film 1 for metal terminals of this disclosure is used in consumer energy storage devices, the thickness of the substrate 11 is preferably about 30 to 55 μm, and when it is used in automotive energy storage devices, it is preferably about 40 to 100 μm.

[0074] [Adhesion promoter layer 13] The adhesion promoter layer 13 is a layer provided as needed for the purpose of firmly bonding the substrate 11 to the first polyolefin layer 12a and the second polyolefin layer 12b (see Figure 5). The adhesion promoter layer 13 may be provided on only one side between the substrate 11 and the first polyolefin layer 12a and the second polyolefin layer 12b, or on both sides.

[0075] Next, the adhesion promoter layer 13 can be formed using known adhesion promoters such as isocyanate-based, polyethyleneimine-based, polyester-based, polyurethane-based, and polybutadiene-based ones. From the perspective of further improving the electrolytic solution resistance, among these, it is preferably formed by an isocyanate-based adhesion promoter. As the isocyanate-based adhesion promoter, those composed of an isocyanate component selected from triisocyanate monomers and polymeric MDI are excellent in laminate strength and have little decrease in laminate strength after immersion in the electrolytic solution. In particular, it is particularly preferable to form it with an adhesion promoter composed of triphenylmethane-4,4',4"-triisocyanate, which is a triisocyanate monomer, or polymethylene polyphenyl polyisocyanate (NCO content is about 30%, viscosity is 200 - 700 mPa·s), which is polymeric MDI. Also, it is also preferable to form it with tris(p-isocyanatophenyl) thiophosphate, which is a triisocyanate monomer, or a two-component curing type adhesion promoter with a polyethyleneimine-based main agent and polycarbodiimide as a crosslinking agent.

[0076] The adhesion promoter layer 13 can be formed by applying and drying it by known coating methods such as the bar coating method, roll coating method, and gravure coating method. As the coating amount of the adhesion promoter, in the case of an adhesion promoter composed of triisocyanate, it is about 20 - 100 mg / m 2 preferably about 40 - 60 mg / m 2 in the case of an adhesion promoter composed of polymeric MDI, it is about 40 - 150 mg / m 2 preferably about 60 - 100 mg / m 2 in the case of a two-component curing type adhesion promoter with a polyethyleneimine-based main agent and polycarbodiimide as a crosslinking agent, it is about 5 - 50 mg / m 2 preferably about 10 - 30 mg / m 2 Note that the triisocyanate monomer is a monomer having three isocyanate groups in one molecule, and polymeric MDI is a mixture of MDI and MDI oligomers polymerized from MDI, and is represented by the following formula.

[0077] [ka]

[0078] The adhesive film 1 for metal terminals of this disclosure can be manufactured, for example, by laminating a first polyolefin layer 12a and a second polyolefin layer 12b on both surfaces of a substrate 11, respectively. The lamination of the substrate 11 with the first polyolefin layer 12a and the second polyolefin layer 12b can be carried out by known methods such as extrusion lamination, T-die lamination, inflation lamination, and thermal lamination. Furthermore, when laminating the substrate 11 with the first polyolefin layer 12a and the second polyolefin layer 12b via an adhesion promoter layer 13, for example, the adhesion promoter constituting the adhesion promoter layer 13 can be applied and dried on the substrate 11 using the method described above, and then the first polyolefin layer 12a and the second polyolefin layer 12b can be laminated on top of the adhesion promoter layer 13, respectively.

[0079] There are no particular limitations on the method of interposing the adhesive film 1 for metal terminals between the metal terminals 2 and the outer casing material 3 for the energy storage device. For example, as shown in Figures 1 to 3, the adhesive film 1 for metal terminals may be wrapped around the metal terminals 2 in the portion where the metal terminals 2 are sandwiched by the outer casing material 3 for the energy storage device. Although not shown in the figures, the adhesive film 1 for metal terminals may also be placed on both sides of the metal terminals 2 so as to cross both metal terminals 2 in the portion where the metal terminals 2 are sandwiched by the outer casing material 3 for the energy storage device.

[0080] [Metal terminal 2] The adhesive film 1 for metal terminals of this disclosure is used interposed between a metal terminal 2 and an outer casing material 3 for an energy storage device. The metal terminal 2 (tab) is a conductive member electrically connected to the electrode (positive or negative electrode) of an energy storage device element 4, and is made of a metallic material. The metallic material constituting the metal terminal 2 is not particularly limited and includes, for example, aluminum, nickel, and copper. For example, the metal terminal 2 connected to the positive electrode of a lithium-ion energy storage device is usually made of aluminum or the like. Also, the metal terminal 2 connected to the negative electrode of a lithium-ion energy storage device is usually made of copper, nickel, or the like.

[0081] From the viewpoint of improving electrolyte resistance, it is preferable that the surface of the metal terminal 2 be subjected to a chemical conversion treatment. For example, when the metal terminal 2 is made of aluminum, specific examples of chemical conversion treatment include known methods for forming corrosion-resistant coatings such as phosphates, chromates, fluorides, and triazinethiol compounds. Among the methods for forming corrosion-resistant coatings, phosphate chromate treatment using a material composed of three components: phenolic resin, chromium(III) fluoride compound, and phosphoric acid is preferred.

[0082] The size of the metal terminal 2 can be appropriately set according to the size of the energy storage device used. The thickness of the metal terminal 2 is preferably about 50 to 1000 μm, more preferably about 70 to 800 μm. The length of the metal terminal 2 is preferably about 1 to 200 mm, more preferably about 3 to 150 mm. The width of the metal terminal 2 is preferably about 1 to 200 mm, more preferably about 3 to 150 mm.

[0083] [Exterior material for energy storage devices 3] An example of an exterior material 3 for an energy storage device is one having a laminated structure consisting of a base layer 31, a barrier layer 33, and a heat-fusible resin layer 35 in that order. Figure 6 shows an example of the cross-sectional structure of the exterior material 3 for an energy storage device, in which the base layer 31, an adhesive layer 32 (if necessary), a barrier layer 33, an adhesive layer 34 (if necessary), and a heat-fusible resin layer 35 are laminated in that order. In the exterior material 3 for an energy storage device, the base layer 31 is the outer layer, and the heat-fusible resin layer 35 is the innermost layer. When assembling the energy storage device, the heat-fusible resin layers 35 located around the periphery of the energy storage device element 4 are brought into contact and heat-fused to seal the energy storage device element 4, thereby sealing the energy storage device element 4. Figures 1 to 3 show an energy storage device 10 using an embossed type exterior material 3 for an energy storage device formed by embossing, but the exterior material 3 for an energy storage device may be an unformed pouch type. Note that pouch-type packaging includes three-sided seal, four-sided seal, and pillow-type packaging, but any type is acceptable.

[0084] The thickness of the laminate constituting the outer casing material 3 for the energy storage device is not particularly limited, but from the viewpoint of cost reduction and energy density improvement, the upper limit is preferably about 190 μm or less, about 180 μm or less, about 160 μm or less, about 155 μm or less, about 140 μm or less, about 130 μm or less, and about 120 μm or less. From the viewpoint of maintaining the function of the outer casing material 3 for the energy storage device, which is to protect the energy storage device element 4, the lower limit is preferably about 35 μm or more, about 45 μm or more, about 60 μm or more, and about 80 μm or more. For example, a preferred range is about 35 to 190 μm, about 35 to 180 μm, and about 35 to 160 μm. , about 35-155μm, about 35-140μm, about 35-130μm, about 35-120μm, about 45-190μm, about 45-180μm, 45- Approx. 160μm, approx. 45~155μm, approx. 45~140μm, approx. 45~130μm, approx. 45~120μm, approx. 60~190μm, 60~180μm Examples of particle sizes include approximately 60-160 μm, 60-155 μm, 60-140 μm, 60-130 μm, 60-120 μm, 80-190 μm, 80-180 μm, 80-160 μm, 80-155 μm, 80-140 μm, 80-130 μm, and 80-120 μm.

[0085] (Base material layer 31) In the exterior material 3 for the energy storage device, the base layer 31 is a layer that functions as the base material for the exterior material of the energy storage device and is the layer that forms the outermost layer.

[0086] The material forming the base layer 31 is not particularly limited, as long as it possesses insulating properties. Examples of materials for forming the base layer 31 include polyester, polyamide, epoxy, acrylic, fluororesin, polyurethane, silicon resin, phenol, polyetherimide, polyimide, and mixtures or copolymers thereof. Polyesters such as polyethylene terephthalate and polybutylene terephthalate have excellent electrolyte resistance and are less prone to whitening when exposed to electrolyte, making them suitable for use as a material for forming the base layer 31. Polyamide films also have excellent stretchability, which can prevent whitening due to resin cracking of the base layer 31 during molding, making them suitable for use as a material for forming the base layer 31.

[0087] The base layer 31 may be formed from a uniaxially or biaxially stretched resin film, or from an unstretched resin film. Among these, uniaxially or biaxially stretched resin films, and especially biaxially stretched resin films, are suitable for use as the base layer 31 because their heat resistance is improved by oriented crystallization.

[0088] Among these, the resin film forming the base layer 31 is preferably nylon, polyester, and more preferably biaxially oriented nylon and biaxially oriented polyester.

[0089] The base layer 31 can also be constructed by laminating resin films of different materials to improve pinhole resistance and insulation when used as packaging for energy storage devices. Specifically, examples include a multilayer structure in which polyester film and nylon film are laminated, or a multilayer structure in which biaxially oriented polyester and biaxially oriented nylon are laminated. When the base layer 31 is made into a multilayer structure, each resin film may be bonded via an adhesive, or it may be laminated directly without an adhesive. When bonding without an adhesive, examples include bonding in a thermally fused state such as co-extrusion, sand lamination, or thermal lamination.

[0090] Furthermore, the base layer 31 may be made friction-reducing to improve moldability. When the base layer 31 is made friction-reducing, there are no particular restrictions on the coefficient of friction of its surface, but for example, it may be 1.0 or less. Examples of methods for making the base layer 31 friction-reducing include mat treatment, formation of a thin film layer of a slip agent, and combinations thereof.

[0091] The thickness of the substrate layer 31 can be, for example, about 10 to 50 μm, preferably about 15 to 30 μm.

[0092] (Adhesive layer 32) In the exterior material 3 for the energy storage device, the adhesive layer 32 is a layer that is placed on the base material layer 31 as needed in order to provide adhesion to the base material layer 31. That is, the adhesive layer 32 is provided between the base material layer 31 and the barrier layer 33.

[0093] The adhesive layer 32 is formed by an adhesive capable of bonding the base layer 31 and the barrier layer 33. The adhesive used to form the adhesive layer 32 may be a two-component curing adhesive or a one-component curing adhesive. Furthermore, the bonding mechanism of the adhesive used to form the adhesive layer 32 is not particularly limited and may be a chemical reaction type, solvent evaporation type, thermal melting type, hot pressure type, etc.

[0094] As for the resin component of the adhesive that can be used to form the adhesive layer 32, from the viewpoint of having excellent ductility, durability under high humidity conditions, yellowing suppression effect, and heat degradation suppression effect during heat sealing, and effectively suppressing the occurrence of delamination by suppressing the decrease in laminate strength between the base layer 31 and the barrier layer 33, two-component curable polyurethane adhesives; polyamide, polyester, or blended resins of these with modified polyolefins are preferred.

[0095] Furthermore, the adhesive layer 32 may be multilayered with different adhesive components. When the adhesive layer 32 is multilayered with different adhesive components, from the viewpoint of improving the lamination strength between the base material layer 31 and the barrier layer 33, it is preferable to select a resin with excellent adhesion to the base material layer 31 as the adhesive component arranged on the base material layer 31 side, and an adhesive component with excellent adhesion to the barrier layer 33 as the adhesive component arranged on the barrier layer 33 side. Specifically, when the adhesive layer 32 is multilayered with different adhesive components, preferred adhesive components arranged on the barrier layer 33 side include acid-modified polyolefins, metal-modified polyolefins, mixed resins of polyester and acid-modified polyolefins, and resins containing copolymerized polyesters.

[0096] The thickness of the adhesive layer 32 can be, for example, about 2 to 50 μm, preferably about 3 to 25 μm.

[0097] (Barrier layer 33) In an exterior material for an energy storage device, the barrier layer 33 is a layer that not only improves the strength of the exterior material for the energy storage device but also has the function of preventing water vapor, oxygen, light, etc. from entering the inside of the energy storage device. The barrier layer 33 is preferably a metal layer, that is, a layer made of metal. Specifically, examples of metals that make up the barrier layer 33 include aluminum, stainless steel, and titanium, with aluminum being preferred. The barrier layer 33 can be formed, for example, from metal foil, a metal vapor-deposited film, an inorganic oxide vapor-deposited film, a carbon-containing inorganic oxide vapor-deposited film, or a film provided with these vapor-deposited films, and it is preferably formed from metal foil, and even more preferably from aluminum foil. From the viewpoint of preventing wrinkles and pinholes from occurring in the barrier layer 33 during the manufacturing of the exterior material for energy storage devices, it is more preferable that the barrier layer be formed from soft aluminum foil, such as annealed aluminum (JIS H4160:1994 A8021H-O, JIS H4160:1994 A8079H-O, JIS H4000:2014 A8021P-O, JIS H4000:2014 A8079P-O).

[0098] Regarding the thickness of the barrier layer 33, from the viewpoint of making the exterior material for the energy storage device thinner while also making it less likely for pinholes to occur during molding, it is preferably about 10 to 200 μm, and more preferably about 20 to 100 μm.

[0099] Furthermore, it is preferable that at least one surface, preferably both surfaces, of the barrier layer 33 is chemically treated to stabilize adhesion and prevent dissolution and corrosion. Here, chemical treatment refers to a treatment that forms a corrosion-resistant film on the surface of the barrier layer.

[0100] (adhesive layer 34) In the exterior material 3 for the energy storage device, the adhesive layer 34 is a layer provided between the barrier layer 33 and the heat-fusible resin layer 35 as needed, in order to firmly bond the heat-fusible resin layer 35.

[0101] The adhesive layer 34 is formed by an adhesive capable of bonding the barrier layer 33 and the heat-fusible resin layer 35. The composition of the adhesive used to form the adhesive layer is not particularly limited, but examples include resin compositions containing acid-modified polyolefins. Examples of acid-modified polyolefins include those exemplified in the first polyolefin layer 12a and the second polyolefin layer 12b.

[0102] The thickness of the adhesive layer 34 can be, for example, about 1 to 40 μm, preferably about 2 to 30 μm.

[0103] (Thermal adhesive resin layer 35) In the exterior material 3 for the energy storage device, the heat-sealable resin layer 35 is the innermost layer, and during the assembly of the energy storage device, the heat-sealable resin layers heat-seal each other to seal the energy storage device elements.

[0104] The resin component used in the heat-fusible resin layer 35 is not particularly limited as long as it is heat-fusible, but examples include polyolefins and cyclic polyolefins.

[0105] Specifically, the polyolefins include polyethylene such as low-density polyethylene, medium-density polyethylene, high-density polyethylene, and linear low-density polyethylene; crystalline or amorphous polypropylene such as homopolypropylene, block copolymers of polypropylene (e.g., block copolymer of propylene and ethylene), and random copolymers of polypropylene (e.g., random copolymer of propylene and ethylene); and ethylene-butene-propylene terpolymers. Among these polyolefins, polyethylene and polypropylene are preferred.

[0106] The cyclic polyolefin is a copolymer of an olefin and a cyclic monomer. Examples of olefins that are constituent monomers of the cyclic polyolefin include ethylene, propylene, 4-methyl-1-pentene, butadiene, isoprene, and the like. Examples of cyclic monomers that are constituent monomers of the cyclic polyolefin include cyclic alkenes such as norbornene; specifically, cyclic dienes such as cyclopentadiene, dicyclopentadiene, cyclohexadiene, norbornadiene, etc. Among these polyolefins, cyclic alkenes are preferred, and norbornene is more preferred. Styrene can also be used as a constituent monomer.

[0107] Among these resin components, preferred are crystalline or amorphous polyolefins, cyclic polyolefins, and blends thereof; more preferably, polyethylene, polypropylene, copolymers of ethylene and norbornene, and blends of two or more of these.

[0108] The heat-fusible resin layer 35 may be formed by a single resin component or by a blended polymer combining two or more resin components. Furthermore, the heat-fusible resin layer 35 may be formed as a single layer or as two or more layers made of the same or different resin components. It is particularly preferable that the resins of the second polyolefin layer 12b and the heat-fusible resin layer 35 are the same, as this improves the adhesion between these layers.

[0109] Furthermore, the thickness of the heat-sealable resin layer 35 is not particularly limited, but is preferably about 2 to 2000 μm, more preferably about 5 to 1000 μm, and more preferably about 10 to 500 μm.

[0110] 2. Energy storage devices The energy storage device 10 of this disclosure comprises at least an energy storage device element 4 having a positive electrode, a negative electrode, and an electrolyte; an outer casing material 3 for the energy storage device that seals the energy storage device element 4; and metal terminals 2 electrically connected to the positive electrode and the negative electrode, respectively, and protruding to the outside of the outer casing material 3 for the energy storage device. The energy storage device 10 of this disclosure is characterized in that the adhesive film 1 for metal terminals of this disclosure is interposed between the metal terminals 2 and the outer casing material 3 for the energy storage device. That is, the energy storage device 10 of this disclosure can be manufactured by a method that includes a step of interposing the adhesive film 1 for metal terminals of this disclosure between the metal terminals 2 and the outer casing material 3 for the energy storage device.

[0111] Specifically, a storage device element 4 comprising at least a positive electrode, a negative electrode, and an electrolyte is covered with a storage device exterior material 3, with the metal terminals 2 connected to the positive and negative electrodes respectively protruding outward. The adhesive film 1 for metal terminals of this disclosure is interposed between the metal terminals 2 and the heat-sealable resin layer 35. A flange portion (the area where the heat-sealable resin layers 35 come into contact, and the peripheral edge portion 3a of the storage device exterior material) of the storage device exterior material is formed around the periphery of the storage device element 4. The heat-sealable resin layers 35 of the flange portion are then heat-sealed to create a sealed storage device 10 using the storage device exterior material 3. When housing the storage device element 4 using the storage device exterior material 3, the heat-sealable resin layer 35 of the storage device exterior material 3 is used so that it faces inward (the surface in contact with the storage device element 4).

[0112] The casing material for energy storage devices disclosed herein can be suitably used in energy storage devices such as batteries (including capacitors, capacitors, etc.). Furthermore, the casing material for energy storage devices disclosed herein can be used in either primary batteries or secondary batteries, but is preferably used in secondary batteries. The type of secondary battery to which the casing material for energy storage devices disclosed herein can be applied is not particularly limited, and examples include lithium-ion batteries, lithium-ion polymer batteries, all-solid-state batteries, lead-acid batteries, nickel-metal hydride batteries, nickel-cadmium batteries, nickel-iron batteries, nickel-zinc batteries, silver oxide-zinc batteries, metal-air batteries, polyvalent cation batteries, capacitors, capacitors, etc. Among these secondary batteries, lithium-ion batteries and lithium-ion polymer batteries are particularly suitable applications for the casing material for energy storage devices disclosed herein. [Examples]

[0113] The present disclosure will be described in detail below with reference to examples and comparative examples. However, the present disclosure is not limited to the examples.

[0114] <Manufacturing of adhesive films for metal terminals> Example 1 As the polyolefin forming the first polyolefin layer, maleic anhydride-modified polypropylene (PPa) was prepared; as the polyolefin forming the second polyolefin layer, polypropylene (PP) was prepared; and as the substrate, an unstretched polypropylene film (CPP, homopolypropylene, 50 μm thick) was prepared. The material forming the first polyolefin layer had the Martens hardness, indentation modulus, and indentation depth h listed in Table 1. maxTo achieve this, a particularly flexible material not used in conventional adhesive films for metal terminals was employed. A first polypropylene layer (50 μm thick) was formed by extruding maleic anhydride-modified polypropylene (PPa) onto one side of a substrate (CPP) using a T-die extruder, and a second polypropylene layer (50 μm thick) was formed by extruding polypropylene (PP) onto the other side of the substrate (CPP) using a T-die extruder. A metal terminal adhesive film was obtained in which the first polyolefin layer (50 μm, PPa layer) / substrate (50 μm, CPP layer) / second polyolefin layer (50 μm, PP layer) were laminated in that order.

[0115] Example 2 As the polyolefin forming the first polyolefin layer, maleic anhydride-modified polypropylene (PPa) colored black with carbon black was prepared; as the polyolefin forming the second polyolefin layer, polypropylene (PP) was prepared; and as the substrate, an unstretched polypropylene film (CPP, homopolypropylene, 50 μm thick) was prepared. The material forming the first polyolefin layer had the Martens hardness, indentation modulus, and indentation depth h listed in Table 1. max To achieve this, a highly flexible material not used in conventional adhesive films for metal terminals was employed. A first polypropylene layer (50 μm thick) was formed by extruding maleic anhydride-modified polypropylene (PPa), colored black with carbon black, onto one side of a substrate (CPP) using a T-die extruder. A second polypropylene layer (50 μm thick) was formed by extruding polypropylene (PP) onto the other side of the substrate (CPP) using a T-die extruder. This resulted in an adhesive film for metal terminals in which the first polyolefin layer (50 μm, PPa layer) / substrate (50 μm, CPP layer) / second polyolefin layer (50 μm, PP layer) were laminated in that order.

[0116] Example 3 As the polyolefin forming the first polyolefin layer, maleic anhydride-modified polypropylene (PPa) was prepared; as the polyolefin forming the second polyolefin layer, polypropylene (PP) was prepared; and as the substrate, a polypropylene film (PP) colored black with carbon black was prepared. The materials forming the first polyolefin layer and the substrate were such that these layers had the Martens hardness, indentation modulus, and indentation depth h described in Table 1. max To achieve this, a highly flexible material not used in conventional adhesive films for metal terminals was employed. A base material (30 μm thick) was formed by extruding polypropylene (PP) with a T-die extruder. A first polypropylene layer (50 μm thick) was formed on one side of the base material (PP) by extruding maleic anhydride-modified polypropylene (PPa) with a T-die extruder. A second polypropylene layer (20 μm thick) was formed on the other side of the base material (PP, 30 μm thick) by extruding polypropylene (PP) with a T-die extruder. An adhesive film for metal terminals was obtained in which the first polyolefin layer (50 μm, PPa layer) / base material (30 μm, PP layer) / second polyolefin layer (20 μm, PP layer) were laminated in that order.

[0117] Comparative Example 1 As the polyolefin forming the first polyolefin layer, maleic anhydride-modified polypropylene (PPa) was prepared; as the polyolefin forming the second polyolefin layer, maleic anhydride-modified polypropylene (PPa) was prepared; and as the base material, polypropylene (PP, homopolypropylene) was prepared. Using the resins for each layer, multilayer air-cooled inflation molding was performed to obtain an adhesive film for metal terminals in which the first polyolefin layer (50 μm, PPa layer) / base material (50 μm, PP layer) / second polyolefin layer (50 μm, PPa layer) were laminated in that order.

[0118] Comparative Example 2 As the polyolefin forming the first polyolefin layer, maleic anhydride-modified polypropylene (PPa) was used. As the polyolefin forming the second polyolefin layer, maleic anhydride-modified polypropylene (PPa) was used. As the base material, polypropylene (PP, homopolypropylene) was prepared. Using the resin of each layer, multilayer air-cooled inflation molding was performed to obtain an adhesive film for metal terminals in which the first polyolefin layer (35 μm, PPa layer) / base material (80 μm, PP layer) / second polyolefin layer (35 μm, PPa layer) were laminated in order.

[0119] In addition, the Martens hardness, indentation elastic modulus, and indentation depth h of each layer of the adhesive film for metal terminals described in Table 1 max can be adjusted by the composition, skeleton, dispersibility, molecular weight, melting point, MFR of the resin constituting each layer, and further, conditions such as the T-die, inflation, etc. in the production of the adhesive film for metal terminals 1 (for example, extrusion width from the T-die, draw ratio, draw speed, heat treatment temperature, etc.). The Martens hardness, indentation elastic modulus, and indentation depth h of the first polyolefin layer of the adhesive film for metal terminals described in Table 1 max was adjusted for flexibility by adding a butene component, an ethylene-propylene-butene copolymer, an amorphous ethylene-propylene copolymer, a propylene-α-olefin copolymer, etc.

[0120] <00XX568><Martens hardness, indentation elastic modulus, indentation depth h max Measurement> Regarding the first polyolefin layer, base material, and second polyolefin layer of the adhesive film for metal terminals in the examples and comparative examples, the Martens hardness, indentation elastic modulus, and indentation depth h maxThe following measurements were taken. As a pretreatment of the sample to be measured, the adhesive film for metal terminals was cut to MD30mm and TD15mm. Next, the sample was embedded in epoxy cold embedding resin and dried for about 1 day. After that, the cross-section obtained by cutting in the TD direction was polished using a Tegrapol-35 mechanical polishing device manufactured by Marumoto Storuas Co., Ltd., to a surface roughness of approximately 1.0 μm. The measurement was performed using the indentation method with a Picodenter HM-500 manufactured by Fischer Instruments, and measurements were taken perpendicular to the cross-section in the thickness direction (center portion in the thickness direction) of the layer to be measured. The cross-section to be measured was obtained by cutting the adhesive film for metal terminals in the TD direction and the cross-section that underwent the above pretreatment. The measurement conditions were as follows. (Measurement conditions) The load is 10 mN. The load application rate is 1 mN / 10 seconds. The holding time is 10 seconds. The load unloading rate is 1 mN / 10 seconds. The indenter is a Vickers indenter with a square pyramidal shape and a 136° angle between the opposing points at its tip. The measurement temperature is 25°C. The measurement value is the average of eight measurements taken after 10 measurements at different locations, excluding the maximum and minimum values.

[0121] For reference, the above-mentioned Martens hardness, indentation modulus, and indentation depth h are also provided. max Figure 8 shows an illustrative graph illustrating the relationship between the indentation depth (μm) and load (mN) obtained from the measurement.

[0122] The Martens hardness is calculated using the following formula. HM (Martens hardness) = Maximum load F (N) / Surface area of ​​the indenter (mm²) calculated from the indentation depth 2 )=Maximum load F(N) / 26.43h 2 F: Maximum load (N) h: Depth of indentation under test load = h max(The value of point E in Figure 8 (the point where a perpendicular line drawn from point C to the Y-axis intersects))

[0123] Furthermore, the indentation modulus is calculated from the slope of the tangent to CD in Figure 8. Also, the indentation depth h max This is calculated from the value of point E in Figure 8.

[0124] <Measurement of adhesion strength between adhesive film for metal terminals and metal terminals> As metal terminals, aluminum (JIS H4160:1994 A8079H-O) with dimensions of 50 mm in length, 22.5 mm in width, and 200 μm in thickness was prepared. In addition, the adhesive films for metal terminals obtained in the examples and comparative examples were cut to a length of 45 mm and a width of 15 mm. Next, the adhesive films for metal terminals were placed on the metal terminals to obtain a laminate of metal terminals / adhesive films. At this time, the vertical and horizontal directions of the metal terminals coincided with the length and width directions of the adhesive films for metal terminals, respectively, and the lamination was carried out so that the centers of the metal terminals and the adhesive films for metal terminals coincided. Next, a tetrafluoroethylene-ethylene copolymer film (ETFE film, 100 μm thick) was placed on top of the adhesive film for metal terminals of the laminate (the surface of the adhesive film for metal terminals was covered with the ETFE film), and the laminate was placed on a hot plate heated to 190°C (with the metal terminals facing the hot plate), and a 500 g weight with a sponge was placed on top. The laminate was left undisturbed for 12 seconds to heat-seal the adhesive film to the metal terminals. The laminate was then allowed to cool naturally to 25°C. Next, in a 25°C environment, the adhesive film for metal terminals was peeled off the metal terminals using a Tensilon universal material tester (RTG-1210, manufactured by A&D Company, Limited). The maximum strength at the time of peeling was defined as the adhesion strength to the metal terminals (N / 15 mm). The peeling speed was 50 mm / min, the peeling angle was 180°, and the distance between the chucks was 30 mm. The average value of three measurements was used. The process of leaving the material undisturbed for 12 seconds in a heated and pressurized environment at a temperature of 190°C and a surface pressure of 0.016 MPa simulates the heat and pressure applied during the preliminary bonding and final bonding processes described above. The results are shown in Table 1.

[0125] <Evaluation of conformability (adhesive film / metal terminal)> As metal terminals, aluminum foil (JIS H4160:1994 A8079H-O) with dimensions of 50 mm in length, 22.5 mm in width, and 400 μm in thickness was prepared. In addition, adhesive films for each metal terminal obtained in the examples and comparative examples (length 45 mm, width 15 mm) were prepared. Next, a metal terminal was sandwiched between two adhesive films to obtain a laminate of adhesive film / metal terminal / adhesive film. At this time, the vertical direction of the metal terminal and the width direction of the adhesive film for the metal terminal were aligned, and the overlapping area was 22.5 mm × 15 mm. Next, with the laminate sandwiched between two tetrafluoroethylene-ethylene copolymer films (ETFE films, thickness 100 μm), it was placed on a hot plate heated to 190°C, and a 500 g weight with a sponge attached was placed on top (pressure 0.015 MPa), and it was left standing for 12 seconds to heat-seal the adhesive film to the metal terminal. In this process, as shown in the schematic diagram in Figure 7, the metal terminal was sandwiched between adhesive films, so that the area around the metal terminal was covered with adhesive film, and a region was formed where the two adhesive films were heat-fused together. The laminate after heat fusion was allowed to cool naturally to 25°C, and the cross-section in the thickness direction (see region M enclosed by the dashed circle in Figure 7) was observed with a laser microscope to evaluate the conformability of the adhesive film for metal terminals to the shape of the metal terminal according to the following criteria. The results are shown in Table 1. A: There are no air bubbles between the adhesive film for metal terminals and the metal terminals. B: There are no air bubbles at the interface between the adhesive film for metal terminals and the metal terminals, but there are air bubbles in the adhesive film for metal terminals near the interface. B - There are air bubbles at the interface between the adhesive film for metal terminals and the metal terminals, but there are no air bubbles in the adhesive film for metal terminals near the interface. C: There are air bubbles at the interface between the adhesive film for metal terminals and the metal terminals, and there are also air bubbles in the adhesive film for metal terminals near the interface.

[0126] [Table 1]

[0127] The adhesive films for metal terminals in Examples 1-3 have a Martens hardness of 30 N / mm² measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer. 2 The following applies: The adhesive films for metal terminals in Examples 1-3 have excellent adhesion to metal terminals and excellent conformability.

[0128] As described above, this disclosure provides inventions in the following embodiments. Item 1. An adhesive film for metal terminals, interposed between a metal terminal electrically connected to the electrodes of a power storage device element and an outer casing material for a power storage device that seals the power storage device element, The adhesive film for metal terminals is composed of a laminate comprising, in this order, a first polyolefin layer disposed on the metal terminal side, a substrate, and a second polyolefin layer disposed on the exterior material side for the energy storage device. Under the following measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer is 30 N / mm². 2 The following is an adhesive film for metal terminals. <Measurement conditions for Martens hardness> The load is 10 mN. The load application rate is 1 mN / 10 seconds. The holding time is 10 seconds. The load unloading rate is 1 mN / 10 seconds. The indenter is a Vickers indenter with a square pyramidal shape and a 136° angle between the opposing points at its tip. The measurement temperature is 25°C. The measurement value is the average of eight measurements taken after 10 measurements at different locations, excluding the maximum and minimum values. Item 2. The adhesive film for metal terminals according to Item 1, wherein, under the Martens hardness measurement conditions, the indentation modulus measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer is 400 MPa or less. Item 3. In the Martens hardness measurement conditions described above, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the substrate is 60 N / mm². 2The adhesive film for metal terminals described in item 1 or 2 below. Item 4. In the Martens hardness measurement conditions described above, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the second polyolefin layer is 60 N / mm². 2 The adhesive film for metal terminals described in any one of items 1 to 3 below. Item 5. The adhesive film for metal terminals according to any one of items 1 to 4, wherein the thickness of the first polyolefin layer is 60 μm or less. Item 6. The adhesive film for metal terminals according to any one of items 1 to 5, wherein the thickness of the substrate is 60 μm or less. Item 7. The adhesive film for metal terminals according to any one of items 1 to 6, wherein the thickness of the second polyolefin layer is 60 μm or less. Item 8. The adhesive film for metal terminals according to any one of items 1 to 7, wherein the thickness of the adhesive film for metal terminals is 180 μm or less. Item 9. In the Martens hardness measurement conditions described above, the indentation depth h is measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer with a load of 10 mN. max However, the adhesive film for metal terminals described in any one of items 1 to 8 is 4.0 μm or thicker. Item 10. An adhesive film for metal terminals according to any one of items 1 to 9, wherein, under the Martens hardness measurement conditions, the indentation modulus measured perpendicular to the cross-section in the thickness direction of the substrate is 1000 MPa or less. Item 11. The first polyolefin layer comprises a pigment, and is an adhesive film for metal terminals according to any one of items 1 to 10. Item 12. The substrate is an adhesive film for metal terminals according to any one of items 1 to 11, comprising a polyolefin skeleton. Item 13. A method for manufacturing an adhesive film for metal terminals, which is interposed between a metal terminal electrically connected to the electrodes of an energy storage device element and an outer casing material for an energy storage device that seals the energy storage device element, The adhesive film for metal terminals is composed of a laminate comprising, in this order, a first polyolefin layer disposed on the metal terminal side, a substrate, and a second polyolefin layer disposed on the exterior material side for the energy storage device. The process includes a step of obtaining a laminate comprising the first polyolefin layer, the substrate, and the second polyolefin layer in this order. Under the following measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer is 30 N / mm². 2 The following is a method for manufacturing an adhesive film for metal terminals. <Measurement conditions for Martens hardness> The load is 10 mN. The load application rate is 1 mN / 10 seconds. The holding time is 10 seconds. The load unloading rate is 1 mN / 10 seconds. The indenter is a Vickers indenter with a square pyramidal shape and a 136° angle between the opposing points at its tip. The measurement temperature is 25°C. The measurement value is the average of eight measurements taken after 10 measurements at different locations, excluding the maximum and minimum values. Item 14. A metal terminal with an adhesive film for metal terminals, wherein the adhesive film for metal terminals described in any one of items 1 to 12 is attached to the metal terminal. Item 15. A power storage device comprising at least a positive electrode, a negative electrode, and an electrolyte; an outer casing material for the power storage device that seals the power storage device element; and metal terminals electrically connected to the positive electrode and the negative electrode, respectively, and protruding to the outside of the outer casing material for the power storage device, An energy storage device in which an adhesive film for metal terminals according to any one of items 1 to 12 is interposed between the metal terminal and the exterior material for the energy storage device. Item 16. A method for manufacturing an energy storage device comprising at least a positive electrode, a negative electrode, and an electrolyte; an outer casing material for the energy storage device that seals the energy storage device element; and metal terminals electrically connected to the positive electrode and the negative electrode, respectively, and protruding to the outside of the outer casing material for the energy storage device, A method for manufacturing an energy storage device, comprising the step of interposing an adhesive film for metal terminals described in any one of items 1 to 12 between the metal terminals and the exterior material for the energy storage device, and sealing the energy storage device element with the exterior material for the energy storage device. [Explanation of Symbols]

[0129] 1. Adhesive film for metal terminals 2 metal terminals 3. Exterior materials for energy storage devices 3a Peripheral edge of exterior material for energy storage device 4 Energy Storage Device Elements 10 Energy Storage Devices 11 Base material 12a First polyolefin layer 12b Second polyolefin layer 13. Adhesion promoter layer 31 Base material layer 32 Adhesive layer 33 Barrier layer 34 Adhesive layer 35 Heat-fusible resin layer

Claims

1. An adhesive film for metal terminals, interposed between a metal terminal electrically connected to the electrode of an energy storage device element and an outer casing material for an energy storage device that seals the energy storage device element, The adhesive film for metal terminals is composed of a laminate comprising, in this order, a first polyolefin layer disposed on the metal terminal side, a substrate, and a second polyolefin layer disposed on the exterior material side for the energy storage device. Under the following measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer is 30 N / mm². 2 The following: An adhesive film for metal terminals, wherein, under the following measurement conditions, the indentation modulus measured perpendicular to the cross-section in the thickness direction of the substrate is 1500 MPa or less. <Measurement conditions for Martens hardness> The load is 10 mN. The load application rate is 1 mN / 10 seconds. The holding time is 10 seconds. The load unloading rate is 1 mN / 10 seconds. The indenter is a Vickers indenter with a square pyramidal shape and a 136° angle between the opposing points at its tip. The measurement temperature is 25°C. The measured value is the average of eight values ​​obtained by taking 10 measurements at different locations, excluding the maximum and minimum values.

2. The adhesive film for metal terminals according to claim 1, wherein, under the Martens hardness measurement conditions, the indentation modulus measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer is 400 MPa or less.

3. In the above-mentioned Martens hardness measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the substrate is 60 N / mm 2 The adhesive film for metal terminals according to claim 1 or 2, which is as follows:

4. In the above-mentioned Martens hardness measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the second polyolefin layer is 60 N / mm 2 The adhesive film for metal terminals according to any one of claims 1 to 3, which is as follows:

5. The adhesive film for metal terminals according to any one of claims 1 to 4, wherein the thickness of the first polyolefin layer is 60 μm or less.

6. The adhesive film for metal terminals according to any one of claims 1 to 5, wherein the thickness of the substrate is 60 μm or less.

7. The adhesive film for metal terminals according to any one of claims 1 to 6, wherein the thickness of the second polyolefin layer is 60 μm or less.

8. The adhesive film for metal terminals according to any one of claims 1 to 7, wherein the thickness of the adhesive film for metal terminals is 180 μm or less.

9. In the Martens hardness measurement conditions described above, the indentation depth h is measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer with a load of 10 mN. max The adhesive film for metal terminals according to any one of claims 1 to 8, wherein the thickness is 4.0 μm or more.

10. The adhesive film for metal terminals according to any one of claims 1 to 9, wherein, in the Martens hardness measurement conditions, the indentation modulus measured perpendicular to the cross-section in the thickness direction of the substrate is 1000 MPa or less.

11. The first polyolefin layer comprises a pigment, wherein the adhesive film for metal terminals is according to any one of claims 1 to 10.

12. The aforementioned substrate is an adhesive film for metal terminals according to any one of claims 1 to 11, comprising a polyolefin skeleton.

13. A method for manufacturing an adhesive film for metal terminals, which is interposed between a metal terminal electrically connected to the electrode of an energy storage device element and an outer casing material for an energy storage device that seals the energy storage device element, The adhesive film for metal terminals is composed of a laminate comprising, in this order, a first polyolefin layer disposed on the metal terminal side, a substrate, and a second polyolefin layer disposed on the exterior material side for the energy storage device. The process includes a step of obtaining a laminate comprising the first polyolefin layer, the substrate, and the second polyolefin layer in this order. Under the following measurement conditions, the Martens hardness measured perpendicular to the cross-section in the thickness direction of the first polyolefin layer is 30 N / mm². 2 The following: A method for manufacturing an adhesive film for metal terminals, wherein, under the following measurement conditions, the indentation modulus measured perpendicular to the cross-section in the thickness direction of the substrate is 1500 MPa or less. <Measurement conditions for Martens hardness> The load is 10 mN. The load application rate is 1 mN / 10 seconds. The holding time is 10 seconds. The load unloading rate is 1 mN / 10 seconds. The indenter is a Vickers indenter with a square pyramidal shape and a 136° angle between the opposing points at its tip. The measurement temperature is 25°C. The measured value is the average of eight values ​​obtained by taking 10 measurements at different locations, excluding the maximum and minimum values.

14. A metal terminal with an adhesive film for metal terminals, wherein the adhesive film for metal terminals described in any one of claims 1 to 12 is attached to the metal terminal.

15. A power storage device comprising, at least, a positive electrode, a negative electrode, and an electrolyte; an outer casing material for the power storage device that seals the power storage device element; and metal terminals electrically connected to the positive electrode and the negative electrode, respectively, and protruding to the outside of the outer casing material for the power storage device, An energy storage device comprising an adhesive film for metal terminals according to any one of claims 1 to 12 interposed between the metal terminal and the exterior material for the energy storage device.

16. A method for manufacturing an energy storage device comprising at least a positive electrode, a negative electrode, and an electrolyte, an outer casing material for the energy storage device that seals the energy storage device element, and metal terminals electrically connected to the positive electrode and the negative electrode, respectively, and protruding to the outside of the outer casing material for the energy storage device, A method for manufacturing an energy storage device, comprising the step of interposing an adhesive film for metal terminals according to any one of claims 1 to 12 between the metal terminals and the exterior material for the energy storage device, and sealing the energy storage device element with the exterior material for the energy storage device.

Citation Information

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