Liquid composition set, porous resin manufacturing device, and porous resin manufacturing method

A liquid composition set with tailored surface and dynamic surface tensions addresses the issue of reduced surface uniformity in porous resins, ensuring improved uniformity and preventing defects in electric storage elements.

JP7679703B2Active Publication Date: 2025-05-20RICOH CO LTD
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Patent Information

Application Number
JP2021098946
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-06-14
Publication Date
2025-05-20
Estimated Expiration
2041-06-14

AI Technical Summary

Technical Problem

The combination of liquid compositions for forming porous resins often results in reduced surface uniformity due to contact between the compositions, leading to issues such as pinholes and uneven structures in the formed porous resin.

Method used

A liquid composition set comprising liquid composition X and liquid composition Y, where the surface tension and dynamic surface tension of Y at 24°C are specifically formulated to meet certain criteria, ensuring that when combined, they form a porous resin with excellent surface uniformity and prevent unintended structures like streaks and pinholes.

Benefits of technology

The solution ensures that the porous resin formed has improved surface uniformity, reducing the likelihood of short circuits and maintaining optimal film thickness, thereby enhancing the performance and reliability of applications like electric storage elements.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a liquid composition set which can suppress degradation of surface uniformity of a porous resin to be formed even if a liquid composition for forming a porous resin and other liquid compositions are brought into contact with each other when the liquid composition for forming the porous resin is used together with the other liquid compositions.SOLUTION: A liquid composition set has a liquid composition X containing a polymerizable compound X and a solvent X, and a liquid composition Y containing a solvent Y, wherein the liquid composition X forms a porous resin, and satisfies predetermined expression (1) relating to surface tension Y of the liquid composition Y at 25°C by a plate method and dynamic surface tension X1500 of the liquid composition X at 25°C and bubble life time of 1,500 msec by a maximum bubble pressure method.SELECTED DRAWING: None
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Description

[Technical field]

[0001] The present invention relates to a liquid composition set, a porous resin production apparatus, and a porous resin production method. [Background technology]

[0002] In general, porous resins can be used in a variety of applications. For example, by appropriately selecting the shape of the pores, the size of the pores, and the surface characteristics of the skeleton portion in the porous resin, a separation layer that transmits or blocks only a specific substance can be provided. In another example, by utilizing the vast surface area and void volume of the porous resin, an efficient reaction field or storage field for gas or liquid taken in from the outside can be provided. Therefore, if a liquid composition for forming a porous resin that is easy to handle and can be easily applied to various locations can be provided, the range of applications of the porous resin will be greatly expanded.

[0003] As an example of a liquid composition for forming such a porous resin, Patent Document 1 discloses a porous-forming photocurable resin composition containing, as essential components, a photopolymerizable monomer (A), an organic compound (B) that is incompatible with the photopolymerizable monomer (A), a common solvent (C) that is compatible with the photopolymerizable monomer (A) and the organic compound (B), and a photopolymerization initiator (D). Summary of the Invention [Problem to be solved by the invention]

[0004] However, when a liquid composition for forming a porous resin is used in combination with another liquid composition to form a porous resin, depending on the combination, there is a problem that the surface uniformity of the formed porous resin is reduced due to contact between the liquid composition for forming a porous resin and the other liquid composition. [Means for solving the problem]

[0005] The present invention provides a liquid composition set including a liquid composition X containing a polymerizable compound X and a solvent X, and a liquid composition Y containing a solvent Y, wherein the liquid composition X forms a porous resin, and the surface tension Y of the liquid composition Y at 24°C by a plate method and the dynamic surface tension X of the liquid composition X at 24°C during a bubble lifetime of 1500 msec by a maximum bubble pressure method are 1500 and a liquid composition set that satisfies a specific formula (1) regarding Effect of the Invention

[0006] According to the present invention, when a liquid composition for forming a porous resin is used in combination with another liquid composition, a liquid composition set can be provided in which the porous resin formed has excellent surface uniformity even when the liquid composition for forming a porous resin comes into contact with the other liquid composition. [Brief description of the drawings]

[0007] [Figure 1] FIG. 1 is a schematic diagram showing an example of a porous resin production apparatus for implementing the porous resin production method of this embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0008] Hereinafter, one embodiment of the present invention will be described.

[0009] [Liquid composition set] The liquid composition set has liquid composition X and liquid composition Y, and may have other configurations as necessary. In addition, the liquid composition set is not limited to the case where the container filled with liquid composition X and the container filled with liquid composition Y are integrated as long as liquid composition X and liquid composition Y are present in an independent liquid state. For example, even if liquid composition X and liquid composition Y are filled in independent containers, the liquid composition set is included in the concept of the liquid composition set if it is assumed that liquid composition X and liquid composition Y are used in combination, or if it substantially induces that liquid composition X and liquid composition Y are used in combination. Note that liquid composition X and liquid composition Y are liquids with different compositions.

[0010] The liquid composition set forms a porous resin by hardening (polymerizing) a polymerizable compound or the like, which is a component of the liquid composition X constituting the liquid composition set. Therefore, the liquid composition set is preferably used for forming a porous resin. In addition, the liquid composition set forming a porous resin is not particularly limited as long as a porous resin is formed as a result of using the liquid composition set so that the liquid composition X and the liquid composition Y come into contact with each other. Specifically, for example, when the liquid composition X and the liquid composition Y are applied so that they come into contact with each other, even if a porous resin is formed only in the region where the liquid composition X is applied and the contact region of the liquid composition X and the liquid composition Y, and a porous resin is not formed in the region where the liquid composition Y is applied (excluding the contact region of the liquid composition X and the liquid composition Y), the liquid composition set is considered to form a porous resin. More specifically, for example, even if a material that forms a porous resin by being hardened (polymerized), such as a polymerizable compound, is included in the liquid composition X but not included in the liquid composition Y, if a porous resin is formed as a result of using the liquid composition set, the liquid composition set is considered to form a porous resin. In addition, when the liquid composition set forms a porous resin, it is meant that the porous resin is formed by hardening (polymerizing) some of the components (polymerizable compound, etc.) of the liquid composition X constituting the liquid composition set, and the other components (solvent, etc.) of the liquid compositions constituting the liquid composition set are not hardened to form a porous resin.

[0011] The liquid composition set is used for applications that assume that a liquid composition for forming a porous resin (liquid composition X), which is a component of the liquid composition set, is brought into contact with another liquid composition (liquid composition Y). The reason why it is preferable to use the liquid composition set of the present disclosure in such cases will be described.

[0012] When the liquid composition for forming a porous resin comes into contact with another liquid composition, there is a concern that the surface uniformity of the formed porous resin may decrease. More specifically, the above concern becomes apparent, for example, when the liquid composition for forming a porous resin is applied to a porous substrate to form a porous resin on the porous substrate. In such a case, another liquid composition is applied to the porous substrate in advance in order to suppress the penetration of the liquid composition for forming a porous resin into the porous substrate and form a porous resin on the porous substrate. However, when the liquid composition for forming a porous resin whose properties (surface tension, etc.) are not appropriately adjusted comes into contact with another liquid composition, the liquid composition for forming a porous resin may penetrate into the other liquid composition, and the surface uniformity of the formed porous resin may decrease depending on the time until the liquid composition for forming a porous resin hardens or the amount of the liquid composition for forming a porous resin applied. In such a case, an example of a state in which the surface uniformity of the porous resin is decreased is a state in which small holes (pinholes) are generated in a partial area of ​​the porous resin, exposing the underlying porous substrate, etc.

[0013] Therefore, a liquid composition set is required in which the permeability of the liquid composition for forming a porous resin into another liquid composition is suppressed even when the liquid composition for forming a porous resin comes into contact with the other liquid composition, and the surface uniformity of the formed porous resin is excellent. Such a liquid composition set is a liquid composition set in which the liquid composition for forming a porous resin is liquid composition X and the other liquid composition is liquid composition Y, and the surface tension Y of liquid composition Y at 24°C by the plate method and the dynamic surface tension X of liquid composition X at 24°C when the bubble lifetime is 1500 msec by the maximum bubble pressure method are measured. 1500 and satisfying the following formula (1).

[0014]

number

[0015] An example of an application in which liquid composition X and liquid composition Y are applied to a porous substrate to form a porous resin on the porous substrate is the manufacture of an electric storage element. Specifically, liquid composition Y is applied as a base liquid to an active material layer, which is a porous substrate on a current collector foil, to fill voids in the active material layer, and then liquid composition X is applied onto the active material layer containing liquid composition Y to form a porous resin, which functions as a separator. When used in such an application in the manufacture of an electric storage element, small holes (pinholes) are less likely to occur in the separator, thereby suppressing the occurrence of short circuits in the electric storage element.

[0016] In the present disclosure, the surface tension by the plate method refers to the surface tension measured by the Wilhelmy method using a platinum plate, and the measured value is taken 1 minute after the liquid composition is poured into the petri dish. For example, an automatic surface tensiometer (DY-300, manufactured by Kyowa Interface Science Co., Ltd.) can be used to measure the surface tension. For measuring the dynamic surface tension, for example, a dynamic surface tensiometer (DynoTesterm, manufactured by SITA) can be used. The method for satisfying formula (1) is not particularly limited, but may be, for example, a method using a liquid composition X containing an appropriate surfactant, as described below.

[0017] Furthermore, the liquid composition set preferably satisfies the following formula (3) regarding the surface tension X of liquid composition X at 24° C. as measured by the plate method and the surface tension Y of liquid composition Y at 24° C. as measured by the plate method, and more preferably satisfies the following formula (3a):

number

number

[0018] The reason why it is preferable for the liquid composition set to satisfy formula (3) will be described below. As described above, when the liquid composition Y is applied to the porous substrate in advance, the voids in the porous substrate are filled with a sufficient amount of the liquid composition Y, and then the liquid composition X for forming the porous resin is applied to the porous substrate to form the porous resin on the porous substrate, when the liquid composition X is applied by, for example, an inkjet method, an unintended streak (groove)-like structure may be formed on the surface of the porous resin. This is because, when droplets of the liquid composition X are discharged using an inkjet discharge means (inkjet head) having a plurality of nozzle rows, the timing of landing of the droplets differs depending on the arrangement of the nozzle rows that discharge the droplets, and the dilution rate of the droplets caused by mixing with the liquid composition Y after landing differs for each dot row corresponding to the nozzle row. Specifically, for example, the dot row formed by the droplets of the liquid composition X that landed initially lands on the liquid layer formed by the liquid composition Y, so that the droplets of the liquid composition X are diluted due to the difference in surface tension between the liquid composition X and the liquid composition Y, and the dots spread thinly. As a result, the porosity of the formed porous resin increases, and grooves are more likely to occur. On the other hand, the droplets of another liquid composition X that land after the droplets of the liquid composition X that landed initially land on a newly formed liquid layer due to the thin spreading of the liquid composition X that landed initially, so the difference in surface tension is small and the dots are less likely to spread. In this way, an unintended groove-like structure may be formed on the surface of the porous resin. In addition, if the porous substrate or the inkjet discharge means is moving during the formation of this dot row, the grooves may become continuous streaks. Specifically, when a 600 dpi inkjet head consisting of four 150 dpi nozzle rows is used, 150 dpi streaks will occur if the droplets are diluted in the first row, and 300 dpi streaks will occur if the droplets are diluted in the first two rows. In contrast, when a liquid composition set satisfying formula (3) is used, it is possible to suppress replacement of liquid composition Y with liquid composition X (spreading of dots of liquid composition X) on the surface of the liquid layer formed by liquid composition Y after liquid composition X lands. Even if liquid composition Y is replaced with liquid composition X, the behavior of droplets of liquid composition X that land later can be reduced before and after the replacement, and the degree of dilution in each droplet is made uniform. As a result, the formation of unintended streaky (groove) structures on the surface of the porous resin is suppressed. When the liquid composition set satisfies formula (3) and also satisfies formula (2) described below, the formation of streak (groove)-like structures on the surface of the porous resin can be further suppressed, and further, the penetration of liquid composition X into liquid composition Y can also be suppressed. As a result, for example, when the porous resin formed from the liquid composition set is used as a separator for an electricity storage element, it is possible to suppress an unintended decrease in film thickness (decrease in separator function) and an increase in battery resistance caused by the porous substrate (active material layer) being covered with the porous resin (separator), and further, it becomes possible to reduce the thickness of the porous resin (separator), thereby realizing low resistance and low cost. In addition, if the dilution of the droplets is suppressed by reducing the amount of liquid composition Y applied to the porous substrate in advance, the voids in the porous substrate may not be sufficiently filled with liquid composition Y, which may result in the generation of small holes (pinholes) due to air bubbles in some areas of the porous resin or insufficient film thickness of the porous resin. Therefore, it is preferable that the amount of liquid composition Y applied to the porous substrate in advance is sufficient to fill the voids in the porous substrate.

[0019] <<Liquid composition X>> Liquid composition X is a liquid used in combination with liquid composition Y. Liquid composition X is preferably applied to the area where liquid composition Y is applied. Liquid composition X is a liquid that can form a porous resin even when used alone (in other words, even when not used together with liquid composition Y), and the liquid composition set can form a porous resin by having liquid composition X. In the following description, the resin formed when liquid composition X is used alone is referred to as resin X, and the porous body of resin X is referred to as porous resin X. In addition, liquid composition X forms porous resin X, which also means that some components (polymerizable compound X, etc.) constituting liquid composition X are cured (polymerized) to form porous resin X, and other components (solvent X, etc.) constituting liquid composition X are not cured to form porous resin X, and the like. The liquid composition X contains a polymerizable compound X and a solvent X, and may contain a polymerization initiator, a surfactant, other components, and the like as necessary.

[0020] <Polymerizable compound X> The polymerizable compound X forms a resin X by polymerization, and when polymerized in the liquid composition X, it forms a porous resin X. The polymerizable compound X is a compound that initiates a polymerization reaction and hardens due to an active species generated by applying active energy rays (for example, by irradiating light or applying heat). Depending on the active species, radical polymerization, cationic polymerization, anionic polymerization, or the like can be used, and among these, it is preferable to use radical polymerization, which has high reactivity. In addition, examples of the polymerizable compound X include polyfunctional monomers and monofunctional monomers, but it may also be a polymerizable oligomer or polymerizable polymer (macromonomer). The active energy ray is not particularly limited as long as it can provide the energy required to proceed with the polymerization reaction of the polymerizable compound X in the liquid composition X, and examples of the active energy ray include ultraviolet rays, electron beams, α rays, β rays, γ rays, and X-rays. Among these, ultraviolet rays are preferable. In particular, when a high-energy light source is used, the polymerization reaction can proceed without using a polymerization initiator.

[0021] The polyfunctional monomer includes a difunctional monomer, a trifunctional monomer, or a monomer having a higher number of functional groups. In the liquid composition X, it is preferable that the polyfunctional monomer accounts for 50.0% by mass or more of the mass of the polymerizable compound X. The polyfunctional monomer is not particularly limited and can be appropriately selected depending on the purpose. For example, neopentyl glycol di(meth)acrylate, (poly)ethylene glycol di(meth)acrylate, diethylene glycol di(meth)acrylate, triethylene glycol di(meth)acrylate, tetraethylene glycol di(meth)acrylate, (poly)propylene glycol di(meth)acrylate, dipropylene glycol di(meth)acrylate, (poly)tetramethylene glycol di(meth)acrylate, Propylene oxide (PO) adduct di(meth)acrylate of bisphenol A, ethoxylated neopentyl glycol di(meth)acrylate, propoxylated neopentyl glycol di(meth)acrylate, ethylene oxide (EO) adduct di(meth)acrylate of bisphenol A, EO modified pentaerythritol tri(meth)acrylate, PO modified pentaerythritol tri(meth)acrylate, EO modified pentaerythritol tetra(meth)acrylate, PO modified pentaerythritol tetra(meth)acrylate acrylate, EO modified dipentaerythritol tetra(meth)acrylate, PO modified dipentaerythritol tetra(meth)acrylate, EO modified trimethylolpropane tri(meth)acrylate, PO modified trimethylolpropane tri(meth)acrylate, EO modified tetramethylolmethane tetra(meth)acrylate, PO modified tetramethylolmethane tetra(meth)acrylate, pentaerythritol tri(meth)acrylate, pentaerythritol tetra(meth)acrylate, dipentaerythritol tetra tetra(meth)acrylate, trimethylolpropane tri(meth)acrylate, tetramethylolmethane tetra(meth)acrylate, trimethylolethane tri(meth)acrylate, trimethylolpropane tri(meth)acrylate, bis(4-(meth)acryloxypolyethoxyphenyl)propane, diallyl phthalate, triallyl trimellitate, 1,6-hexanediol di(meth)acrylate, 1,9-nonanediol di(meth)acrylate, 1,3-butylene glycol di(meth)acrylate, 1,10-Decanediol di(meth)acrylate, hydroxypivalic acid neopentyl glycol di(meth)acrylate, tetramethylolmethane tri(meth)acrylate, dimethyloltricyclodecane di(meth)acrylate, modified glycerin tri(meth)acrylate, bisphenol A diglycidyl ether (meth)acrylic acid adduct, modified bisphenol A di(meth)acrylate, caprolactone modified dipentaerythritol hexa(meth)acrylate, dipentaerythritol hexa(meth)acrylate, pentaerythritol Examples of the urethane prepolymer include tri(meth)acrylate tolylene diisocyanate urethane prepolymer, pentaerythritol tri(meth)acrylate hexamethylene diisocyanate urethane prepolymer, ditrimethylolpropane tetra(meth)acrylate, pentaerythritol tri(meth)acrylate hexamethylene diisocyanate urethane prepolymer, urethane acrylate oligomer, epoxy acrylate oligomer, polyester acrylate oligomer, polyether acrylate oligomer, and silicone acrylate oligomer. These may be used alone or in combination of two or more.

[0022] A monofunctional monomer is a monomer having one functionality. The monofunctional monomer is not particularly limited and can be appropriately selected depending on the purpose. For example, hydroxyethyl (meth)acrylamide, (meth)acryloylphophorine, dimethylaminopropylacrylamide, isobornyl (meth)acrylate, adamantyl (meth)acrylate, 2-methyl-2-adamantyl (meth)acrylate, dicyclopentenyl (meth)acrylate, dicyclopentanyl (meth)acrylate, dicyclopentenyloxyethyl (meth)acrylate, 3,3,5-trimethylcyclohexane (meth)acrylate, Examples of the acrylate include tert-butyl methacrylate, tetrahydrofurfuryl (meth)acrylate, cyclohexyl (meth)acrylate, benzyl (meth)acrylate, 2-hydroxyethyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, 2-hydroxybutyl acrylate, isobutyl acrylate, tert-butyl acrylate, phenoxyethyl acrylate, (2-methyl-2-ethyl-1,3-dioxolan-4-yl)methyl acrylate, and cyclic trimethylolpropane formal acrylate. These can be added for the purpose of reinforcing the crosslinking of the polyfunctional monomer or for the purpose of imparting flexibility.

[0023] The content of the polymerizable compound X in the liquid composition X is preferably 10.0% by mass or more and 60.0% by mass or less, more preferably 20.0% by mass or more and 50.0% by mass or less, based on the total amount of the liquid composition X. When the content of the polymerizable compound X is 60.0% by mass or less, the size of the pores of the obtained porous resin X is not too small, such as several nm or less, and the porous resin X has an appropriate porosity, which is preferable because it is possible to suppress the tendency for liquid or gas penetration to be difficult. In addition, when the content of the polymerizable compound X is 10.0% by mass or more, the three-dimensional network structure of the resin X is sufficiently formed, a porous structure is sufficiently obtained, and the strength of the obtained porous structure also tends to be improved, which is preferable. The content of the polyfunctional monomer in the liquid composition X is preferably 50.0% by mass or more based on the total amount of the polymerizable compound X. When the content of the polyfunctional monomer is 50.0% by mass or more, the polymer X generated in the process of polymerization of the polymerizable compound X in the liquid composition X and the solvent X described below tend to become incompatible (phase separation tends to occur), which is preferable because it makes it easier to form the porous resin X.

[0024] <Solvent X (Porogen)> Solvent X (hereinafter, solvent X is also referred to as "porogen") is a liquid compatible with polymerizable compound X. Solvent X is also a liquid that is incompatible with polymerized product X (phase separation occurs) generated in the process of polymerizing polymerizable compound X in liquid composition X. That is, the meaning of "solvent X" in this disclosure is distinguished from the meaning of "solvent" which is a commonly used term. By including solvent X in liquid composition X, polymerizable compound X forms porous resin X when polymerized in liquid composition X. In addition, it is preferable that solvent X is capable of dissolving a compound (polymerization initiator described later) that generates radicals or acid by light or heat. Solvent X may be used alone or in combination of two or more kinds. In addition, solvent X does not have polymerizability in this disclosure.

[0025] The boiling point of one type of porogen alone or the boiling point of two or more types in combination is preferably 50°C to 250°C, more preferably 70°C to 200°C, and even more preferably 120°C to 200°C at normal pressure. By having a boiling point of 50°C or more, vaporization of the porogen at around room temperature is suppressed, making the liquid composition X easy to handle and facilitating control of the porogen content in the liquid composition X. In addition, by having a boiling point of 250°C or less, the time required for the step of drying the porogen after polymerization is shortened, improving the productivity of the porous resin X. In addition, since the amount of porogen remaining inside the porous resin X can be suppressed, the quality is improved when the porous resin X is used as a functional layer such as a material separation layer that separates materials or a reaction layer as a reaction field.

[0026] The porogen is appropriately selected from the viewpoints of the relationship between the surface tension of the liquid composition X and the liquid composition Y, the relationship between the compatibility of the porogen and the polymerizable compound X, the viscosity, the boiling point, etc., and examples thereof include ethylene glycols such as diethylene glycol monomethyl ether, ethylene glycol monobutyl ether, ethylene glycol monoisopropyl ether, and dipropylene glycol monomethyl ether, esters such as γ-butyrolactone and propylene carbonate, and amides such as NN dimethylacetamide. In addition, liquids having a relatively large molecular weight such as methyl tetradecanoate, methyl decanoate, methyl myristate, and tetradecane can also be mentioned. In addition, liquids such as acetone, 2-ethylhexanol, and 1-bromonaphthalene can also be mentioned. In the present disclosure, the above-mentioned liquids do not necessarily correspond to porogens. As described above, the porogen in the present disclosure is a liquid that is compatible with the polymerizable compound X and is incompatible with the polymer X (phase separation occurs) generated in the process of polymerization of the polymerizable compound X in the liquid composition X. In other words, whether or not a certain liquid corresponds to a porogen is determined by the relationship with the polymerizable compound X and the polymer X.

[0027] Furthermore, since the liquid composition X of the present disclosure only needs to contain at least one type of porogen having the above-mentioned specific relationship with the polymerizable compound X, the range of material selection when preparing the liquid composition X is broadened, and the design of the liquid composition X is facilitated. By broadening the range of material selection when preparing the liquid composition X, the range of response is broadened when there are characteristics required of the liquid composition X from a viewpoint other than the formation of a porous structure. For example, when the liquid composition X is discharged by an inkjet method, the liquid composition X is required to have discharge stability and the like from a viewpoint other than the formation of a porous structure, and the wide range of material selection makes it easy to design the liquid composition X.

[0028] As described above, the liquid composition X of the present disclosure is only required to contain at least one type of porogen having the above-mentioned specific relationship with the polymerizable compound X, and may additionally contain a liquid (liquid that is not a porogen) that does not have the above-mentioned specific relationship with the polymerizable compound X. However, the content of the liquid (liquid that is not a porogen) that does not have the above-mentioned specific relationship with the polymerizable compound X is preferably 10.0 mass % or less, more preferably 5.0 mass % or less, and even more preferably 1.0 mass % or less, based on the total amount of the liquid composition X, and is particularly preferably not contained (for example, below the detection limit when using a method that is publicly known and common technical knowledge).

[0029] The content of the porogen in the liquid composition X is preferably 40.0% by mass or more and 80.0% by mass or less, more preferably 50.0% by mass or more and 70.0% by mass or less, based on the total amount of the liquid composition X. When the content of the porogen is 40.0% by mass or more, the size of the pores of the obtained porous body is not too small, such as several nm or less, and the porous body has an appropriate porosity, which is preferable because it is possible to suppress the tendency for liquid or gas to penetrate less easily. In addition, when the content of the porogen is 80.0% by mass or less, the three-dimensional network structure of the resin X is sufficiently formed, a porous structure is sufficiently obtained, and the strength of the obtained porous structure also tends to be improved, which is preferable.

[0030] <Polymerization initiator> The polymerization initiator is a material capable of generating active species such as radicals and cations by energy such as light and heat, and initiating polymerization of the polymerizable compound X. As the polymerization initiator, known radical polymerization initiators, cationic polymerization initiators, base generators, etc. can be used alone or in combination of two or more kinds, and among them, it is preferable to use a radical polymerization initiator.

[0031] The radical polymerization initiator is not particularly limited and can be appropriately selected depending on the purpose. Examples of the radical polymerization initiator include aromatic ketones, acylphosphine oxide compounds, aromatic onium salt compounds, organic peroxides, thio compounds (thioxanthone compounds, thiophenyl group-containing compounds, etc.), hexaarylbiimidazole compounds, ketoxime ester compounds, borate compounds, azinium compounds, metallocene compounds, active ester compounds, compounds having a carbon-halogen bond, and alkylamine compounds.Specifically, α-hydroxyacetophenone, α-aminoacetophenone, 4-aroyl-1,3-dioxolane, benzil ketal, 2,2-diethoxyacetophenone, p-dimethylaminoacetophenone, p-dimethylaminopropiophenone, benzophenone, 2-chlorobenzophenone, p-dichlorobenzophenone, p-bisdiethylaminobenzophenone, Michler's ketone, benzil, benzoin, benzil dimethyl ketal, tetramethylthiuram monosulfide, and thioxanthone. , 2-chlorothioxanthone, 2-methylthioxanthone, azobisisobutyronitrile, benzoin peroxide, di-tert-butyl peroxide, 1-hydroxycyclohexyl phenyl ketone, 2-hydroxy-2-methyl-1-phenyl-1-one, 1-(4-isopropylphenyl)-2-hydroxy-2-methylpropan-1-one, methylbenzoyl formate, benzoin isopropyl ether, benzoin methyl ether, benzoin ethyl ether, benzoin ether, benzyl ether, Benzoin isobutyl ether, benzoin n-butyl ether, benzoin n-propyl, 1-hydroxy-cyclohexyl-phenyl-ketone, 2-benzyl-2-dimethylamino-1-(4-morpholinophenyl)-butanone-1, 1-hydroxy-cyclohexyl-phenyl-ketone, 2,2-dimethoxy-1,2-diphenylethan-1-one, bis(η5-2,4-cyclopentadien-1-yl)-bis(2,6-difluoro-3-(1H-pyrrol-1-yl)-phenyl)titanium, Examples of such phosphine oxides include bis(2,4,6-trimethylbenzoyl)-phenylphosphine oxide, 2-methyl-1[4-(methylthio)phenyl]-2-morpholinopropan-1-one, 2-hydroxy-2-methyl-1-phenyl-propan-1-one, bis(2,6-dimethoxybenzoyl)-2,4,4-trimethyl-pentylphosphine oxide, and 1-[4-(2-hydroxyethoxy)-phenyl]-2-hydroxy-2-methyl-1-propan-1-one monoacylphosphine oxide.

[0032] The content of the polymerization initiator is preferably 0.1% by mass or more and 10.0% by mass or less with respect to the total mass of the polymerizable compound X. By making it 0.1% by mass or more, the curing speed can be increased and the residue of unreacted materials due to insufficient curing can be suppressed. In addition, by making it 10.0% by mass or less, it is possible to suppress the porous structure from becoming an excessively fine structure due to the fast curing speed, and thus the decrease in the conductivity of the porous structure.

[0033] <Surfactant> The surfactant is used to adjust the surface tension and dynamic surface tension of the liquid composition X. Specifically, it is preferable to select a surfactant that does not make the surface tension of the liquid composition X too low relative to the surface tension of the liquid composition Y and has a high ability to reduce the dynamic surface tension of the liquid composition X. When the surfactant is used for the purpose of improving the surface uniformity of the porous resin by adjusting the surface tension of the liquid composition X, it is also called a leveling agent. In addition, when the porous resin formed by the liquid composition X is used as a separator of an electric storage element, it is preferable to use a material that has little effect on the battery characteristics as the surfactant, and specifically, for example, it is preferable to use a material that has a polymerizable functional group. In addition, it is preferable that the surfactant is contained in the liquid composition X, but it is not necessary that it is contained.

[0034] The surfactant is not particularly limited, but examples of the surfactant that can be used include silicon-based surfactants, acetylene glycol-based surfactants, and fluorine-based surfactants.

[0035] Specific examples of silicone surfactants include BYK-300, BYK-306, BYK-310, BYK-320, BYK-330, BYK-344, BYK-346, BYK-UV3500, BYK-UV3570 (manufactured by BYK Japan); TEGO Rad2100, TEGO Rad2200, TEGO Rad2250, TEGO Rad2300, TEGO Rad2500, Tego Twin4000, Tego Twin4100 (manufactured by Evonik); KP-341, KP-358, KP-368, KF-96-50CS, KF-6020, KF-50-100CS (manufactured by Shin-Etsu Chemical Co., Ltd.), and the like.

[0036] Specific examples of acetylene glycol surfactants include Dynol 604, Surfynol 104H, Surfynol 104A, Surfynol 104BC, Surfynol 104DPM, Surfynol 104PA, Surfynol 104S, Surfynol 420, Surfynol 440, Surfynol SE, Surfynol SE-F, Surfynol 61, and the like (manufactured by Air Products Japan).

[0037] Specific examples of fluorine-based surfactants include Megafac F-430, Megafac F-444, Megafac F-472SF, Megafac F-475, Megafac F-477, Megafac F-552, Megafac F-553, Megafac F-554, Megafac F-555, Megafac F-556, Megafac F-558, Megafac R-94, Megafac RS-75, Megafac RS-76-NS, Megafac RS-72-K (manufactured by DIC); EFTOP EF-351, EFTOP EF-352, EFTOP EF-601, EFTOP EF-801, EFTOP EF-802 (manufactured by Mitsubishi Materials Corporation); Ftergent 222F, Ftergent 251, FTX-218 (manufactured by Neos); Surflon SC-101, Surflon KH-40 (manufactured by AGC Seimi Chemical Co., Ltd.), and the like.

[0038] The content of the surfactant is preferably 0.01% by mass or more and 5.0% by mass or less, more preferably 0.05% by mass or more and 3.0% by mass or less, and even more preferably 0.1% by mass or more and 1.0% by mass or less, based on the mass of the liquid composition X. Except for cases where the difference in surface tension between the liquid compositions X and Y is small and there is no need to add a surfactant, the amount of surfactant added can be reduced, in other words, a surfactant with a strong ability to reduce surface tension is used. In such cases, the formula (2) is often not satisfied, and the film thickness of the porous resin is likely to decrease (permeation of the liquid composition X into the liquid composition Y), which is not preferable. On the other hand, if the amount of surfactant added is large, the effect of remaining as an impurity in the finally obtained porous resin (for example, adverse effects on battery characteristics when used for separator applications) becomes large, which is not preferable.

[0039] <Other ingredients> The liquid composition X may contain other components as necessary. The other components are not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include polymerization inhibitors, antifoaming agents, polymerization accelerators (sensitizers), fluorescent brighteners, viscosity stabilizers, antifungal agents, preservatives, antioxidants, ultraviolet absorbers, chelating agents, pH adjusters, thickeners, etc.

[0040] <Conditions for making resin X porous> Porous resin X, which is a porous body of resin X, is formed by polymerization-induced phase separation occurring in liquid composition X. Polymerization-induced phase separation refers to a state in which polymerizable compound X and porogen are compatible, but polymer X generated in the process of polymerizing polymerizable compound X and porogen are not compatible (phase separation occurs). There are other methods for obtaining a porous body by phase separation, but by using the polymerization-induced phase separation method, a porous body having a network structure can be formed, and therefore a porous body with high resistance to chemicals and heat can be expected. In addition, compared to other methods, there are also advantages such as a short process time and easy surface modification.

[0041] Next, a process for forming porous resin X using polymerization-induced phase separation will be described. Polymerizable compound X undergoes a polymerization reaction by light irradiation or the like to form resin X. During this process, the solubility of porogen in the growing resin X decreases, and phase separation occurs between resin X and porogen. Finally, resin X forms a mesh-like porous structure in which porogen or the like fills the pores. When this is dried, porogen or the like is removed, and porous resin X remains. Therefore, in order to form porous resin X, conditions that represent the compatibility between polymerizable compound X and porogen, and conditions that represent the compatibility between resin X and porogen are examined.

[0042] -Conditions expressing compatibility between polymerizable compound X and porogen- An example of a condition indicating that the polymerizable compound X and the porogen are compatible with each other is that the transmittance of light at a wavelength of 550 nm of the liquid composition X is 30% or more when the liquid composition X is measured while stirring the liquid composition X. The measurement method for determining whether or not this condition is satisfied is as follows. First, liquid composition X is poured into a quartz cell, and while stirring at 300 rpm using a stirrer, the transmittance of light (visible light) at a wavelength of 550 nm through liquid composition X is measured. At this time, when the light transmittance is 30% or more, it is determined that the polymerizable compound X and the porogen are in a compatible state, and when it is less than 30%, it is determined that the polymerizable compound X and the porogen are in an incompatible state. The conditions for measuring the light transmittance are as follows. Quartz cell: Special microcell with screw cap (Product name: M25-UV-2) ·Transmittance measurement device: Ocean Optics USB4000 Stirring speed: 300 rpm ·Measurement wavelength: 550nm Reference: Measure the light transmittance at a wavelength of 550 nm when the quartz cell is filled with air. (Transmittance: 100%)

[0043] -Conditions expressing compatibility between resin X and porogen- An example of a condition indicating that the resin X and the porogen are not compatible (phase separation occurs) is that the increase rate of the haze value in a haze measurement element prepared using the liquid composition X is 1.0% or more. The measurement method for determining whether or not this condition is satisfied is as follows. First, resin particles are uniformly dispersed on a non-alkali glass substrate by spin coating to form a gap agent. Then, the substrate coated with the gap agent is bonded to a non-alkali glass substrate not coated with the gap agent, with the surfaces coated with the gap agent sandwiched between them. Then, liquid composition X is filled between the bonded substrates by utilizing capillary action to prepare a "pre-UV haze measurement element". Next, the pre-UV haze measurement element is irradiated with UV light to harden the liquid composition X. Finally, the periphery of the substrate is sealed with a sealant to prepare a "haze measurement element". The various conditions during fabrication are shown below. Non-alkali glass substrate: Nippon Electric Glass, 40mm, t=0.7mm, OA-10G Gap agent: Sekisui Chemical Co., Ltd., resin microparticle Micropearl GS-L100, average particle size 100 μm Spin coating conditions: Dispersion drop amount 150 μL, rotation speed 1000 rpm, rotation time 30 s Amount of liquid composition filled: 160μL UV irradiation conditions: UV-LED is used as the light source, light source wavelength is 365 nm, irradiation intensity is 30 mW / cm 2 , irradiation time 20s Sealant: TB3035B (Three Bond) Next, the haze value (cloudiness) is measured using the prepared haze measuring element before UV irradiation and the haze measuring element. The measured value in the haze measuring element before UV irradiation is used as a reference (haze value 0), and the increase rate of the measured value (haze value) in the haze measuring element relative to the measured value in the haze measuring element before UV irradiation is calculated. The haze value in the haze measuring element increases as the compatibility between the resin X formed by polymerization of the polymerizable compound X and the porogen decreases, and decreases as the compatibility increases. In addition, the higher the haze value, the easier it is for the resin X formed by polymerization of the polymerizable compound X to form a porous structure. At this time, when the increase rate of the haze value is 1.0% or more, it is determined that the resin X and the porogen are incompatible, and when it is less than 1.0%, it is determined that the resin X and the porogen are compatible. The apparatus used for the measurement is shown below. Haze measuring device: Haze meter NDH5000 manufactured by Nippon Denshoku Industries Co., Ltd.

[0044] <Method of producing liquid composition X> The liquid composition X is preferably prepared through a process including a step of dissolving a polymerization initiator in a polymerizable compound X, a step of further dissolving a porogen and other components, and a step of stirring to obtain a homogeneous solution.

[0045] <Physical properties of liquid composition X> -Dynamic surface tension- The dynamic surface tension X of liquid composition X at 24°C when the bubble lifetime is 15 msec according to the maximum bubble pressure method is 15 and the dynamic surface tension X of liquid composition X at 24°C when the bubble lifetime is 150 msec according to the maximum bubble pressure method. 150 and the dynamic surface tension X of liquid composition X at 24°C when the bubble lifetime is 1500 msec according to the maximum bubble pressure method. 1500 It is preferable that the liquid composition X satisfies the following formula (2) regarding and more preferably satisfies the following formula (2a): In addition, as a method for satisfying the following formula (2), a method of appropriately selecting the type and amount of the surfactant to be added to the liquid composition X can be mentioned.

number

number

[0046] The reason why it is preferable for liquid composition X to satisfy formula (2) will be explained. As described above, when the liquid composition Y is applied to the porous substrate in advance, the voids in the porous substrate are filled with a sufficient amount of the liquid composition Y, and then the liquid composition X for forming the porous resin is applied to the porous substrate to form the porous resin on the porous substrate, in order to obtain surface uniformity (suppression of coating defects), it is necessary to satisfy formula (1), and it is preferable that the dynamic surface tension of the liquid composition X is lower than the surface tension of the liquid composition Y by the plate method, and it is preferable that the dynamic surface tension of the liquid composition X alone has low characteristics. On the other hand, when the liquid composition X is applied by, for example, an inkjet method, an unintended streak (groove)-like structure may be formed on the surface of the porous resin. As described above, this tends to be resolved by satisfying formula (3), and it is preferable that the surface tension of the liquid composition X by the plate method is not too low compared to the surface tension of the liquid composition Y by the plate method, and it is preferable that the surface tension of the liquid composition X alone has high characteristics. That is, it is preferable that the slope of the dynamic surface tension decrease with time is large in the early stage and small in the latter half, and this relationship is shown in formula (2). In addition, when formula (2) is satisfied, not only the above-mentioned surface uniformity is improved and the formation of streaky (groove)-like structures is suppressed, but also the decrease in the film thickness of the porous resin (permeation of liquid composition X into liquid composition Y) is suppressed. For example, when a small amount of a strong surfactant (surface tension of liquid composition X by the plate method is excessively low compared to liquid composition Y) that does not originally satisfy formula (3) is added to try to fit within the range of formula (1) or formula (3), the film thickness of the porous resin may decrease (permeation of liquid composition X into liquid composition Y) because formula (2) cannot be satisfied, but this can be suppressed. As a result, for example, when a porous resin formed by the liquid composition set is used as a separator for an electric storage element, it is possible to suppress an unintended decrease in film thickness (decrease in separator function) and an increase in battery resistance due to the porous substrate (active material layer) being covered by the porous resin (separator), and further, it is possible to make the porous resin (separator) thinner, thereby realizing low resistance and low cost.

[0047] -viscosity- For example, when liquid composition X is discharged from an inkjet discharge means, the viscosity at 25°C is preferably 7 mPa·s or more and 40 mPa·s or less, and more preferably 9 mPa·s or more and 20 mPa·s or less. Also, any viscosity in the range of 20°C to 65°C is preferably 5 mPa·s or more and 15 mPa·s or less, and more preferably 6 mPa·s or more and 12 mPa·s or less. By satisfying the above viscosity range within the above temperature range, the liquid composition can be discharged by adjusting the temperature of the inkjet discharge means as necessary. The viscosity can be measured using a cone-plate type rotational viscometer VISCOMETER TVE-25L manufactured by Toki Sangyo Co., Ltd., with a cone rotor (1°34' x R24), a rotation speed of 50 rpm, and a temperature of the constant temperature circulating water appropriately set in the range of 20°C to 65°C. A VISCOMATE VM-150IV can be used to adjust the temperature of the circulating water.

[0048] <<Liquid composition Y>> The liquid composition Y is a liquid used in combination with the liquid composition X that forms the porous resin. The liquid composition Y is preferably used, for example, to suppress the diffusion of the liquid composition X and form the porous resin at a predetermined position. Specifically, for example, in the case of forming a porous resin on a porous substrate, the liquid composition Y is preferably applied to the porous substrate before the liquid composition X is applied, and is used to suppress the penetration of the liquid composition X into the porous substrate. By suppressing the penetration of the liquid composition X into the porous substrate, it is possible to suppress the deterioration of the function of the porous substrate due to a part of the porous resin being formed in the porous substrate. More specifically, for example, in the case of using the liquid composition set for forming a separator of an electric storage element, it is possible to suppress the deterioration of the function of the electric storage element due to a part of the porous resin being formed in an active material having a porous structure, which causes a deterioration in the function of the active material.

[0049] Liquid composition Y contains solvent Y and, if necessary, other components. It is preferable that liquid composition Y does not form a porous resin when used alone (in other words, when not used together with liquid composition X). In other words, it is preferable that liquid composition Y does not substantially contain a polymerizable compound. Note that "substantially does not contain a polymerizable compound" means that when the presence or absence of a polymerizable compound in liquid composition Y is confirmed by a method that is publicly known and is common technical knowledge in this technical field, no polymerizable compound can be detected. Furthermore, liquid composition Y is preferably a liquid that can be removed by drying, preferably does not contain non-volatile components, and is preferably composed entirely of volatile components.

[0050] <Solvent Y> As the solvent Y, as described above, one is selected that enables the liquid composition Y to satisfy formula (1) in relation to the liquid composition X. The solvent Y may be used alone or in combination of two or more kinds.

[0051] The boiling point of the solvent Y alone or the boiling point of the solvent Y in combination is preferably 50°C or more and 250°C or less, more preferably 70°C or more and 200°C or less, at normal pressure. By having a boiling point of 50°C or more, the evaporation of the solvent Y at around room temperature is suppressed, making the liquid composition Y easy to handle, and the content of the solvent Y in the liquid composition Y easy to control. In addition, by having a boiling point of 250°C or less, the time required for the step of drying the solvent Y after the porous resin is formed is shortened, improving productivity. In addition, since the amount of the solvent Y remaining inside the porous resin can be suppressed, the quality is improved when the porous resin is used as a functional layer such as a material separation layer that separates substances or a reaction layer as a reaction field.

[0052] The solvent Y is appropriately selected from the viewpoints of the relationship with the liquid composition X, the relationship with the polymerizable compound X contained in the liquid composition X, the wettability to the porous substrate, the viscosity, and the boiling point, and examples thereof include ethylene glycols such as ethylene glycol monobutyl ether, ketones such as cyclohexanone, esters such as diethyl carbonate, amides such as NN dimethylacetamide, and alcohols such as ethanol, 1,3-butanediol, 2-propanol, and 2-ethylhexanol. It is preferable that the solvent Y is the same as the solvent X. By using the same solvent Y and the same solvent X, the solvent Y can function as a porogen for the polymerizable compound X in the mixed region of the liquid composition X and the liquid composition Y, and does not inhibit the formation of the porous resin in the liquid composition X. In addition, when the liquid composition X hits the liquid composition Y, the occurrence of unintended mixing behavior (such as convection) can be suppressed.

[0053] The content of the solvent Y in the liquid composition Y is preferably 60.0 mass% or more, more preferably 70.0 mass% or more, still more preferably 80.0 mass% or more, and particularly preferably 90.0 mass% or more, based on the total amount of the liquid composition Y. In addition, the total amount of the liquid composition Y (100 mass%) may be the solvent Y.

[0054] <Other ingredients> The liquid composition Y may contain other components as necessary. The other components are not particularly limited and may be appropriately selected depending on the purpose, and examples thereof include antifoaming agents, viscosity stabilizers, antifungal agents, preservatives, antioxidants, ultraviolet absorbers, chelating agents, pH adjusters, thickeners, etc.

[0055] <Physical Properties of Liquid Composition Y> -Dynamic surface tension- The surface tension Y of the liquid composition Y at 24° C. as measured by the plate method is preferably 30 mN / m or less so that the liquid composition Y easily wets the porous substrate to which it is applied.

[0056] -viscosity- The viscosity of the liquid composition Y is preferably low so that the liquid composition Y can rapidly penetrate into the porous substrate to which it is applied (in other words, so that the liquid composition Y can rapidly replace the air in the voids of the porous substrate.) Specifically, the viscosity at 25°C is preferably 30 mPa s or less, and more preferably 15 mPa s or less. The viscosity can be measured using a cone-plate type rotational viscometer VISCOMETER TVE-25L manufactured by Toki Sangyo Co., Ltd., with a cone rotor (1°34'×R24), a rotation speed of 50 rpm, and a temperature of the constant temperature circulating water set to 25° C. A VISCOMATE VM-150IV can be used to adjust the temperature of the circulating water.

[0057] [Porous resin manufacturing equipment, porous resin manufacturing method] FIG. 1 is a schematic diagram showing an example of a porous resin production apparatus for implementing the porous resin production method of the present disclosure.

[0058] <<Porous resin manufacturing equipment>> The porous resin manufacturing apparatus 100 is an apparatus for manufacturing a porous resin using the above-mentioned liquid composition X and liquid composition Y. The porous resin manufacturing apparatus 100 includes a printing process section 10 including a process of applying liquid composition X and liquid composition Y, respectively, onto a printing substrate 4 to form a layer of liquid composition X and a layer of liquid composition Y, a polymerization process section 20 including a polymerization process of activating a polymerization initiator in the layer of liquid composition X to polymerize a polymerizable compound to obtain a porous resin precursor 6, and a heating process section 30 including a heating process of heating the porous resin precursor 6 to obtain a porous resin. The porous resin manufacturing apparatus 100 includes a conveying section 5 for conveying the printing substrate 4, and the conveying section 5 conveys the printing substrate 4 at a preset speed in the order of the printing process section 10, the polymerization process section 20, and the heating process section 30.

[0059] <Printing process department> The printing process section 10 includes a printing device 1a, which is an example of an applying means for realizing an applying process of applying liquid composition X and liquid composition Y onto the printing substrate 4, a storage container 1b for storing liquid composition X and liquid composition Y, respectively (the storage container for storing liquid composition X is referred to as storage container X, and the storage container for storing liquid composition Y is referred to as storage container Y), and a supply tube 1c for supplying each of the liquid composition X and liquid composition Y stored in the storage container 1b to the printing device 1a. Note that, among the applying means, a means for applying liquid composition X is referred to as applying means X, and a means for applying liquid composition Y is referred to as applying means Y. Also, among the applying processes, a process for applying liquid composition X is referred to as applying process X, and a process for applying liquid composition Y is referred to as applying process Y.

[0060] The storage container 1b stores liquid composition X and liquid composition Y, respectively (in FIG. 1, liquid composition X and liquid composition Y are simply indicated as liquid composition 7), and the printing process unit 10 ejects liquid composition X and liquid composition Y, respectively, from the printing device 1a and applies liquid composition X and liquid composition Y, respectively, onto the printing substrate 4 to form a layer of liquid composition X and a layer of liquid composition Y in the form of a thin film. At this time, the order of the application process X and the application process Y in the present disclosure is such that the application process Y is performed first, and the application process X is performed afterwards. However, when the application process Y is performed first, it is preferable that in the application process X, liquid composition X is applied so as to at least partially overlap the area where liquid composition Y is applied. The storage container 1b may be integrated with the porous resin manufacturing apparatus 100, or may be removable from the porous resin manufacturing apparatus 100. Also, the storage container 1b may be a container used for adding to a storage container integrated with the porous resin manufacturing apparatus 100 or a storage container removable from the porous resin manufacturing apparatus 100.

[0061] The printing device 1a is not particularly limited as long as it can apply the liquid composition X and the liquid composition Y, and any printing device can be used according to various printing methods such as knife coating, die coating, lip coating, comma coating, rotary screen coating, reverse roll coating, kneader coating, blade coating, curtain coating, spin coating, casting, microgravure coating, gravure coating, bar coating, roll coating, wire bar coating, dip coating, slit coating, capillary coating, spray coating, nozzle coating, gravure printing, screen printing, flexographic printing, offset printing, reverse printing, and inkjet printing. Among these, the inkjet method, which is non-contact and has a long gap between the inkjet head and the printing substrate, is preferred. The printing device 1a may have a temperature adjustment mechanism that adjusts the temperature of the printing device 1a so that the viscosity is appropriate for applying the liquid composition X and the liquid composition Y.

[0062] The container 1b and the supply tube 1c can be selected arbitrarily as long as they can stably store and supply the liquid compositions X and Y, respectively. The materials constituting the container 1b and the supply tube 1c preferably have a light-shielding property in the relatively short wavelength region of ultraviolet and visible light. This prevents the liquid composition X from being polymerized by external light.

[0063] <Polymerization process department> 1, the polymerization process section 20 has a light irradiation device 2a, which is an example of a curing means for realizing a curing process in which the liquid composition is cured by irradiating it with active energy rays such as heat or light, and a polymerization inert gas circulation device 2b for circulating a polymerization inert gas. The light irradiation device 2a irradiates the layer of liquid composition X and the layer of liquid composition Y formed by the printing process section 10 with light in the presence of a polymerization inert gas, thereby initiating photopolymerization in the layer of liquid composition X to obtain a porous resin precursor 6.

[0064] The light irradiation device 2a is appropriately selected according to the absorption wavelength of the photopolymerization initiator, and is not particularly limited as long as it can initiate and advance the polymerization of the polymerizable compound in the layer of the liquid composition X, and examples of such light irradiation device include ultraviolet light sources such as high-pressure mercury lamps, metal halide lamps, hot cathode tubes, cold cathode tubes, and LEDs. However, since light with a shorter wavelength generally tends to reach deeper parts, it is preferable to select a light source according to the thickness of the porous film to be formed.

[0065] Regarding the irradiation intensity of the light source of the light irradiation device 2a, if the irradiation intensity is too strong, the porous structure may become fine, and the conductivity of the porous structure may decrease, or the pores may close during drying, decreasing the porosity. Also, if the irradiation intensity is too weak, the structure formed may become granular, decreasing the porosity. Therefore, the irradiation intensity is set to 10 mW / cm 2 More than 1W / cm 2 Less than 30mW / cm is preferable. 2 More than 300mW / cm 2 The following is more preferred:

[0066] Regarding the timing of irradiation with the light source of the light irradiation device 2a, if the time from the formation of the layer of liquid composition X is too long, liquid composition X will penetrate into the layer of liquid composition Y, which will likely cause poor curing. If the time is too short, the adhesion of the porous resin precursor 6 to the printing substrate 4 will decrease. Therefore, an appropriate irradiation timing is selected.

[0067] Next, the polymerization inert gas circulation device 2b plays a role of lowering the concentration of polymerization active oxygen contained in the atmosphere, and allowing the polymerization reaction of the polymerizable compound X near the surface of the layer of the liquid composition X to proceed without being hindered. Therefore, the polymerization inert gas used is not particularly limited as long as it satisfies the above-mentioned functions, and examples thereof include nitrogen, carbon dioxide, and argon.

[0068] In addition, the flow rate is set to O, taking into consideration the effect of effectively reducing inhibition. 2 The concentration is preferably less than 20% (an environment with a lower oxygen concentration than the atmosphere), more preferably 0% to 15%, and even more preferably 0% to 5%. In addition, the polymerization inert gas circulation device 2b is preferably provided with a temperature control means capable of controlling the temperature in order to realize stable polymerization progress conditions.

[0069] <Heating process section> As shown in FIG. 1, the heating process section 30 has a heating device 3a, which is an example of a solvent removal means, and includes a solvent removal step in which the solvent X and solvent Y remaining in the porous resin precursor 6 formed in the polymerization process section 20 are heated and dried by the heating device 3a to remove them. This makes it possible to form a porous resin. The heating process section 30 may perform the solvent removal step under reduced pressure. Note that if the solvent is not sufficiently removed, the residue may affect the characteristics of the product having the porous resin (e.g., battery characteristics).

[0070] The heating process section 30 also includes a polymerization promotion step in which the porous membrane precursor 6 is heated by the heating device 3a to further promote the polymerization reaction carried out in the polymerization process section 20, and an initiator removal step in which the photopolymerization initiator remaining in the porous membrane precursor 6 is heated by the heating device 3a, dried, and removed. Note that the polymerization promotion step and the initiator removal step may be carried out before or after the solvent removal step, rather than simultaneously with the solvent removal step.

[0071] Furthermore, the heating process section 30 includes a polymerization completion process of heating the porous material under reduced pressure after the solvent removal process. The heating device 3a is not particularly limited as long as it satisfies the above-mentioned functions, and examples thereof include an IR heater and a hot air heater.

[0072] The heating temperature and time can be appropriately selected depending on the boiling points of the solvent X and the solvent Y contained in the porous film precursor 6 and the thickness of the formed film.

[0073] <Printing base material> Any material can be used for the printing substrate 4, regardless of whether it is transparent or opaque. That is, as a transparent substrate, a glass substrate, a resin film substrate such as various plastic films, or a composite substrate of these can be used. As an opaque substrate, various substrates can be used, such as a silicon substrate, a metal substrate such as stainless steel, or a laminate of these. The printing substrate 4 may be a recording medium such as plain paper, glossy paper, special paper, or cloth. The recording medium may also be a low-permeability substrate (low-absorbency substrate). A low-permeability substrate means a substrate having a surface with low water permeability, absorbency, or adsorption, and includes materials that have many cavities inside but are not open to the outside. Examples of low-permeability substrates include coated paper used in commercial printing and recording media such as paperboard coated with recycled paper pulp in the middle and back layers. As described above, the printing substrate 4 is preferably a porous substrate. This is because the effects of the present invention become more pronounced when the substrate is a porous substrate. Specific examples of the porous substrate include an active material layer used in an electricity storage element, and a porous sheet used as an insulating layer in an electricity storage element or a power generation element.

[0074] In addition, as for the shape, any substrate that can be used in the printing process section 10 and the polymerization process section 20 may be used regardless of whether it has a curved surface or an uneven surface.

[0075] [Porous resin] The film thickness of the porous resin formed by the liquid composition set is not particularly limited, but is preferably 0.01 μm or more and 500 μm or less in consideration of the uniformity of hardening during polymerization, more preferably 0.01 μm or more and 100 μm or less, even more preferably 1 μm or more and 50 μm or less, and particularly preferably 10 μm or more and 20 μm or less. By having a film thickness of 0.01 μm or more, the surface area of ​​the obtained porous resin is increased, and the function of the porous resin can be fully obtained. In addition, by having a film thickness of 500 μm or less, unevenness of light and heat used during polymerization in the film thickness direction is suppressed, and a uniform porous resin can be obtained in the film thickness direction. By producing a uniform porous resin in the film thickness direction, the structural unevenness of the porous resin can be suppressed, and the decrease in permeability of liquids and gases can be suppressed. The film thickness of the porous resin is appropriately adjusted according to the application in which the porous resin is used. For example, when the porous resin is used as an insulating layer for a storage element, it is preferable that the film thickness is 10 μm or more and 20 μm or less. The porous resin formed is not particularly limited, but from the viewpoint of ensuring good permeability of liquids and gases, it is preferable that the porous resin has a three-dimensional branched network structure of the cured resin as a skeleton and has a co-continuous structure (also called a monolith structure) in which a plurality of pores in the porous resin are continuously connected. That is, it is preferable that the porous resin has a large number of pores, and each pore has a connectivity with other pores around it and spreads three-dimensionally. When the pores are connected to each other, the penetration of liquids and gases occurs sufficiently, and functions such as substance separation and reaction field can be efficiently expressed. One of the physical properties obtained by having a bicontinuous structure is air permeability. The air permeability of the porous resin is measured, for example, in accordance with JIS P8117, and is preferably 500 seconds / 100 mL or less, and more preferably 300 seconds / 100 mL or less. In this case, the air permeability is measured, for example, using a Gurley densometer (manufactured by Toyo Seiki Seisakusho). The cross-sectional shape of the pores in the porous resin formed may be various shapes and sizes, such as a substantially circular shape, a substantially elliptical shape, a substantially polygonal shape, etc. Here, the size of the pores refers to the length of the longest part in the cross-sectional shape. The size of the pores can be obtained from a cross-sectional photograph taken with a scanning electron microscope (SEM). The size of the pores in the porous resin is not particularly limited, but is preferably 0.01 μm or more and 10 μm or less from the viewpoint of the permeability of liquids and gases. In addition, the porosity of the porous resin is preferably 30% or more, and more preferably 50% or more. The method for adjusting the size and porosity of the pores in the porous resin to these ranges is not particularly limited, but examples thereof include a method of adjusting the content of the polymerizable compound X in the liquid composition X, a method of adjusting the content of the porogen in the liquid composition X, and a method of adjusting the irradiation conditions of the active energy rays.

[0076] <<Applications of porous resin>> <For use as an energy storage element or power generation element> The porous resin formed using the liquid composition set of the present disclosure can be used, for example, as an insulating layer for an electricity storage element or a power generating element. In other words, the liquid composition set of the present disclosure can be used as a liquid composition set for producing an insulating layer in an electricity storage element or a power generating element. When used for these applications, it is preferable to form an insulating layer (separator) by, for example, applying liquid composition Y and liquid composition X in that order onto an active material layer previously formed on an electrode substrate. As an insulating layer for an electric storage element or a power generating element, for example, a film-like porous insulating layer having a predetermined size of pores or porosity is known to be used. On the other hand, when the liquid composition set of the present disclosure is used, the pores and porosity can be appropriately changed by appropriately adjusting the content of the polymerizable compound X, the content of the porogen, the irradiation conditions of the active energy ray, etc., and the design freedom in terms of the performance of the electric storage element and the power generating element can be improved. In addition, since the liquid composition set of the present disclosure can be applied in various application methods, for example, it can be applied by an inkjet method, and the design freedom in terms of the shape of the electric storage element and the power generating element can be improved. In addition, since the liquid composition set of the present disclosure applies the liquid composition X to the region of the active material layer to which the liquid composition Y is applied, the porous resin formed by the curing of the liquid composition X is formed without excessively penetrating into the active material layer. This suppresses the deterioration of the function of the active material layer. The insulating layer is a member that separates the positive electrode from the negative electrode and ensures ion conductivity between the positive electrode and the negative electrode. In the present application, the insulating layer is not limited to a layered shape. The liquid composition set of the present disclosure can be applied onto an insulating layer (first insulating layer) for an electricity storage element or a power generation element to additionally form an insulating layer (second insulating layer) made of a porous resin layer. By forming the second insulating layer on the first insulating layer, various functions such as heat resistance, impact resistance, and high-temperature shrinkage resistance of the insulating layer as a whole can be added or improved.

[0077] The electrode substrate is not particularly limited as long as it is a conductive substrate, and generally, aluminum foil, copper foil, stainless steel foil, titanium foil, and etched foils made by etching them to make fine holes, which are suitable for use in secondary batteries and capacitors, which are electric storage devices, and especially lithium ion secondary batteries, as well as perforated electrode substrates used in lithium ion capacitors, are used. In addition, carbon paper fibrous electrodes used in power generation devices such as fuel cells that have been made flat in a non-woven or woven form, and the above-mentioned perforated electrode substrates with fine holes can also be used. Furthermore, in the case of solar devices, in addition to the above-mentioned electrodes, a transparent semiconductor thin film such as indium-titanium oxide or zinc oxide can be formed on a flat substrate such as glass or plastic, or a conductive electrode film can be thinly evaporated on the substrate.

[0078] The active material layer is formed by dispersing a powdered active material or catalyst composition in a liquid, applying the liquid onto the electrode substrate, fixing the liquid, and drying the liquid. Usually, printing using a spray, dispenser, die coater, or pull-up coating is used, and the active material layer is formed by applying the liquid and then drying the liquid.

[0079] The positive electrode active material is not particularly limited as long as it is a material that can reversibly absorb and release alkali metal ions. Typically, an alkali metal-containing transition metal compound can be used as the positive electrode active material. For example, a lithium-containing transition metal compound can be a composite oxide containing lithium and at least one element selected from the group consisting of cobalt, manganese, nickel, chromium, iron, and vanadium. For example, lithium-containing transition metal oxides such as lithium cobalt oxide, lithium nickel oxide, and lithium manganate, LiFePO 4Examples of the lithium-containing transition metal oxide include olivine-type lithium salts such as titanium disulfide and molybdenum disulfide, chalcogen compounds such as manganese dioxide, etc. The lithium-containing transition metal oxide is a metal oxide containing lithium and a transition metal, or a metal oxide in which a part of the transition metal in the metal oxide is replaced by a different element. Examples of the different elements include Na, Mg, Sc, Y, Mn, Fe, Co, Ni, Cu, Zn, Al, Cr, Pb, Sb, B, etc., and among them, Mn, Al, Co, Ni, and Mg are preferable. The different elements may be one type or two or more types. These positive electrode active materials can be used alone or in combination of two or more types. Examples of the active materials in nickel-metal hydride batteries include nickel hydroxide, etc.

[0080] The negative electrode active material is not particularly limited as long as it is a material that can reversibly absorb and release alkali metal ions. Typically, a carbon material containing graphite having a graphite crystal structure can be used as the negative electrode active material. Examples of such carbon materials include natural graphite, spherical or fibrous artificial graphite, non-graphitizable carbon (hard carbon), and graphitizable carbon (soft carbon). Examples of materials other than carbon materials include lithium titanate. In addition, from the viewpoint of increasing the energy density of a lithium ion battery, high-capacity materials such as silicon, tin, silicon alloys, tin alloys, silicon oxide, silicon nitride, and tin oxide can also be suitably used as the negative electrode active material.

[0081] As the active material in the nickel-metal hydride battery, the hydrogen storage alloy may be, for example, an AB2-based or A2B-based hydrogen storage alloy.

[0082] For example, PVDF, PTFE, polyethylene, polypropylene, aramid resin, polyamide, polyimide, polyamideimide, polyacrylonitrile, polyacrylic acid, polyacrylic acid methyl ester, polyacrylic acid ethyl ester, polyacrylic acid hexyl ester, polymethacrylic acid, polymethacrylic acid methyl ester, polymethacrylic acid ethyl ester, polymethacrylic acid hexyl ester, polyvinyl acetate, polyvinylpyrrolidone, polyether, polyethersulfone, hexafluoropolypropylene, styrene butadiene rubber, carboxymethyl cellulose, etc. can be used as the binder for the positive electrode or the negative electrode. In addition, a copolymer of two or more materials selected from tetrafluoroethylene, hexafluoroethylene, hexafluoropropylene, perfluoroalkyl vinyl ether, vinylidene fluoride, chlorotrifluoroethylene, ethylene, propylene, pentafluoropropylene, fluoromethyl vinyl ether, acrylic acid, and hexadiene may be used. In addition, two or more materials selected from these may be mixed and used. Examples of the conductive agent contained in the electrode include graphites such as natural graphite and artificial graphite, carbon blacks such as acetylene black, ketjen black, channel black, furnace black, lamp black, and thermal black, conductive fibers such as carbon fiber and metal fiber, metal powders such as carbon fluoride and aluminum, conductive whiskers such as zinc oxide and potassium titanate, conductive metal oxides such as titanium oxide, and organic conductive materials such as phenylene derivatives and graphene derivatives.

[0083] In general, the active material in a fuel cell is a catalyst for the cathode electrode or the anode electrode, in which metal particles such as platinum, ruthenium, or a platinum alloy are supported on a catalyst carrier such as carbon. To support catalyst particles on the surface of a catalyst carrier, for example, the catalyst carrier is suspended in water, and a precursor of the catalyst particle (containing alloy components such as chloroplatinic acid, dinitrodiamino platinum, platinic chloride, platinous chloride, bisacetylacetonato platinum, dichlorodiammine platinum, dichlorotetramine platinum, platinic sulfate chlororuthenic acid, chloroiridic acid, chlororhodium acid, ferric chloride, cobalt chloride, chromium chloride, gold chloride, silver nitrate, rhodium nitrate, palladium chloride, nickel nitrate, iron sulfate, and copper chloride) is added and dissolved in the suspension, and an alkali is added to generate a hydroxide of the metal and obtain a catalyst carrier supported on the surface of the catalyst carrier. Such a catalyst carrier is applied to an electrode and reduced under a hydrogen atmosphere, etc., to obtain an electrode with catalyst particles (active material) applied on the surface.

[0084] In the case of solar cells, the active material is tungsten oxide powder, titanium oxide powder, and SnO 2 , ZnO, ZrO 2 , Nb 2 O 5 , CEO 2 , SiO 2 , Al 2 O 3 The semiconductor layer is supported with a dye, and examples of such dyes include compounds such as ruthenium-tris type transition metal complexes, ruthenium-bis type transition metal complexes, osmium-tris type transition metal complexes, osmium-bis type transition metal complexes, ruthenium-cis-diaqua-bipyridyl complexes, phthalocyanines and porphyrins, and organic-inorganic perovskite crystals.

[0085] -Solvent X, Solvent Y, and Electrolytes for Energy Storage Devices- When the porous resin formed by the liquid composition set is used as an insulating layer for a storage element, it is preferable that the solvent X and the solvent Y are also used as components contained in the electrolyte that constitutes the storage element. In other words, the electrolyte is preferably a solution containing the solvent X, the solvent Y, and an electrolyte described below. By selecting the solvent X and the solvent Y that are suitable not only for forming the porous resin but also as components contained in the electrolyte, it is possible to omit a process of removing the solvent X and the solvent Y by a heating process or the like after forming the porous resin and a separate process of impregnating the electrolyte into the porous resin. When the heating step can be omitted, it is possible to suppress damage to the porous resin that may be caused by heating and damage to components other than the porous resin (e.g., the electrode substrate, the active material layer, etc.) In particular, suppressing damage to the porous resin can suppress short circuits in the electricity storage element and uneven reactions during operation of the electricity storage element, thereby further improving the performance of the electricity storage element. Even when a step of removing the solvent X and the solvent Y is performed by a heating step, some of the solvent X and the solvent Y may remain in the porous material. Such remaining solvent X and solvent Y may generate gas due to an unexpected side reaction inside the energy storage element, thereby reducing the performance of the energy storage element. However, by selecting a solvent X and a solvent Y that can also be used as components contained in the electrolyte (e.g., a solvent that is unlikely to reduce the performance of the energy storage element due to a side reaction, etc.), the reduction in performance can be suppressed.

[0086] Solvent X and solvent Y suitably selected when the porous resin is used as an insulating layer for a storage element are preferably those that suppress decomposition reactions and gas generation during use of the storage element (during charging and discharging), and examples thereof include propylene carbonate, ethyl methyl carbonate, dimethyl carbonate, ethylene carbonate, acetonitrile, γ-butyrolactone, sulfolane, dioxolane, tetrahydrofuran, 2-methyltetrahydrofuran, dimethyl sulfoxide, 1,2-dimethoxyethane, 1,2-ethoxymethoxyethane, polyethylene glycol, alcohols, and mixtures thereof. Among these, it is preferable to use at least one selected from propylene carbonate, ethyl methyl carbonate, dimethyl carbonate, and ethylene carbonate.

[0087] The boiling points of the solvent X and the solvent Y, which are omitted from the process of removing them by a heating process or the like after the porous resin is formed, are preferably higher than the boiling points of the solvent X and the solvent Y, which require a process of removing them by a heating process or the like. By having a high boiling point, the evaporation of the solvent X and the solvent Y during the production is suppressed, and the composition of the electrolyte is suppressed from changing from the composition originally expected. Specifically, the boiling point is preferably 80°C or higher, more preferably 85°C or higher, and even more preferably 90°C or higher. The boiling point of propylene carbonate (propylene carbonate) is 240°C, the boiling point of ethyl methyl carbonate (ethyl methyl carbonate) is 107°C, the boiling point of dimethyl carbonate (dimethyl carbonate) is 90°C, and the boiling point of ethylene carbonate (ethylene carbonate) is 244°C.

[0088] As described above, when using the solvent X and the solvent Y that also function as components contained in the electrolyte constituting the electricity storage element, it is preferable that the porous resin manufacturing apparatus 100 in FIG.

[0089] As described above, the electrolyte is a component used when the porous resin formed by the liquid composition set is used as an insulating layer for an electric storage element. Examples of the electrolyte include solid electrolytes and liquid electrolytes such as ionic liquids that are soluble in the solvent X and the solvent Y. By including an electrolyte in the liquid composition X or the liquid composition Y, the solvent X, the solvent Y, and the electrolyte that constitute the remaining components after the porous resin is formed can function as an electrolytic solution in the electric storage element. This makes it possible to omit a step of removing the solvent X and the solvent Y by a heating step or the like after the porous resin is formed, and a separate step of impregnating the porous resin with an electrolytic solution. When the heating step can be omitted, it is possible to suppress damage to the porous resin that may be caused by heating and damage to components other than the porous resin (e.g., the electrode substrate, the active material layer, etc.) In particular, suppressing damage to the porous resin can suppress short circuits in the electricity storage element and uneven reactions during operation of the electricity storage element, thereby further improving the performance of the electricity storage element. Even if a step of removing the solvent X and the solvent Y by a heating step is performed, some of the solvent X and the solvent Y may remain in the porous material. Such remaining solvent X and solvent Y may generate gas due to an unexpected side reaction inside the energy storage element, thereby reducing the performance of the energy storage element. However, by selecting a solvent X and a solvent Y that can also be used as components contained in the electrolyte (e.g., a solvent that is unlikely to reduce the performance of the energy storage element due to a side reaction, etc.), the reduction in performance can be suppressed.

[0090] The solid electrolyte is not particularly limited as long as it is soluble in the solvent X and the solvent Y. For example, inorganic ion salts such as alkali metal salts and alkaline earth metal salts, quaternary ammonium salts, supporting salts of acids, and supporting salts of alkalis can be used. More specifically, LiClO 4 , LiBF 4 , LiAsF 6 , LiPF 6 , LiCF 3 SO 3 , LiCF 3 COO, KCl, NaClO 3 , NaCl, NaBF4 , NaSCN, KBF 4 , Mg(ClO 4 ) 2 , Mg(BF 4 ) 2 etc.

[0091] Examples of the liquid electrolyte include various ionic liquids containing a cationic component and an anionic component. The ionic liquid is preferably one that can maintain a liquid state over a wide temperature range including room temperature. Examples of the cationic component include imidazole derivatives such as N,N-dimethylimidazole salt, N,N-methylethylimidazole salt, and N,N-methylpropylimidazole salt; aromatic salts such as pyridinium derivatives such as N,N-dimethylpyridinium salt and N,N-methylpropylpyridinium salt; and aliphatic quaternary ammonium compounds such as tetraalkylammoniums such as trimethylpropylammonium salt, trimethylhexylammonium salt, and triethylhexylammonium salt. As the anion component, for example, a compound containing fluorine is preferable in terms of stability in the atmosphere, and BF 4 - , C.F. 3 SO 3 - , P.F. 4 - , (CF 3 SO 2 ) 2 N - , B(CN 4 ) - etc.

[0092] The content of the electrolyte is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 0.7 mol / L or more and 4.0 mol / L or less in the electrolyte solution, more preferably 1.0 mol / L or more and 3.0 mol / L or less, and from the viewpoint of achieving both the capacity and output of the energy storage element, more preferably 1.0 mol / L or more and 2.5 mol / L or less. EXAMPLES

[0093] Examples of the present invention will be described below, but the present invention is not limited to these examples.

[0094] <Example 1> Liquid compositions X and Y were prepared by mixing the materials in the ratios shown below. -Liquid composition X- Polymerizable compound X (Ebecryl 130, tricyclodecane dimethanol diacrylate (manufactured by Daicel-Allnex Corporation, referred to as "DCP" in Tables 1 and 2)): 29.0 parts by mass Solvent X (dipropylene glycol monomethyl ether (Tokyo Chemical Industry Co., Ltd., referred to as "DPM" in Tables 1 and 2)): 70.0 parts by mass Polymerization initiator (Omnirad184, 1-hydroxycyclohexyl phenyl ketone (manufactured by iGM, referred to as "Omni184" in Tables 1 and 2)): 1.0 part by mass Surfactant (TEGO Twin4000, a siloxane-based gemini surfactant (manufactured by Evonik, referred to as "Twin4000" in Tables 1 and 2)): 0.5 parts by mass -Liquid composition Y- Solvent Y (dipropylene glycol monomethyl ether (Tokyo Chemical Industry Co., Ltd., indicated as "DPM" in Tables 1 and 2)): total amount

[0095] <Various Examples and Comparative Examples> Liquid compositions X and Y of various examples and comparative examples were obtained in the same manner as in Example 1, except that the compositions in Example 1 were changed to those in Tables 1 and 2. The units of the numbers for the compositions in Tables 1 and 2 are "parts by mass."

[0096] The details of the various materials used in the various examples and comparative examples shown in Tables 1 and 2 are as follows. Surfactant (Megafac RS-76-NS, a surfactant with a polymerizable functional group (manufactured by DIC Corporation, referred to as "RS-76" in Tables 1 and 2)) Surfactant (KF-6020, polyether modified silicone oil (Shin-Etsu Silicone Co., Ltd.))

[0097] Next, for liquid compositions X and Y of various examples and comparative examples, the surface tension was measured at 24° C. by the plate method according to the following method. The results are shown in Tables 1 to 2. In addition, for the liquid composition X of each of the examples and comparative examples, the dynamic surface tension X at 24°C when the bubble lifetime was 15 msec according to the maximum bubble pressure method was 15 and the dynamic surface tension X at 24°C when the bubble lifetime is 150 msec according to the maximum bubble pressure method. 150 and the dynamic surface tension X at 24°C when the bubble lifetime is 1500 msec according to the maximum bubble pressure method. 1500 The measurements were carried out according to the following methods, and the results are shown in Tables 1 and 2.

[0098] [Measurement of surface tension using the plate method] Based on the plate method, a platinum plate was used and the measurement was performed with an automatic surface tensiometer (DY-300, manufactured by Kyowa Interface Science Co., Ltd.) at 24° C. The measurement was performed 1 minute after the liquid composition was poured into the petri dish.

[0099] [Measurement of dynamic surface tension using the maximum bubble pressure method] Using a dynamic surface tensiometer (DynoTesterm, manufactured by SITA), the dynamic surface tension was measured at 24°C at 15 msec, 150 msec, and 1500 msec.

[0100] Next, a negative electrode for a storage element having a separator made of a porous resin formed using the liquid composition set of each Example and Comparative Example was produced. Then, the surface uniformity (exposure rate of the base) of the formed porous resin, streaks (grooves), and film thickness were evaluated.

[0101] <Preparation of negative electrode having porous resin> -Preparation of electrode mixture- The electrode composite part uses a 21 μm copper foil as a current collector, and an active material layer with a gap of 16.5 cc / m on the copper foil. 2The graphite coated material was used. Specifically, 97.0 parts by mass of graphite particles (average particle size 10 μm) as the negative electrode active material, 1.0 parts by mass of cellulose as the thickener, and 2.0 parts by mass of acrylic resin as the binder were uniformly dispersed in water to obtain a negative electrode active material dispersion. This dispersion was applied to a copper foil with a thickness of 21 μm as the current collector foil, and the resulting coating was dried at 120° C. for 10 minutes and then pressed to obtain an electrode mixture part.

[0102] -Preparation of porous resin (separator)- Liquid composition X and liquid composition Y contained in the liquid composition sets of various Examples and Comparative Examples were filled into an inkjet discharge device as shown in FIG. 1 , which was equipped with an inkjet head for liquid composition X (MH5420, manufactured by Ricoh Co., Ltd.), an inkjet head for liquid composition Y (MH5420, manufactured by Ricoh Co., Ltd.), and a UV-LED light source (wavelength: 365 nm). Next, while conveying the prepared electrode mixture at a conveying speed of 50 mm / sec, liquid composition Y and liquid composition X were discharged onto the electrode mixture in this order. At this time, liquid composition X was applied to the area where liquid composition Y was discharged. Liquid composition Y was applied at 1000 Hz (508 dpi, 16.5 cc / m 2 ), and the liquid composition X was discharged at 1300 Hz (660 dpi, 10.0 cc / m 2 ) was discharged. Next, the electrode mixture onto which liquid composition Y and liquid composition X were discharged in order was placed in an exposure section provided at a distance of 400 mm along the transport direction from the center of the inkjet head for liquid composition X, and was irradiated with UV light. The irradiation intensity of UV light was 30 mW / cm. 2 The exposure time was 30 seconds, and the exposed area was purged with nitrogen. Thereafter, the resultant was placed on a hot plate at 130° C. for 1 minute to volatilize the solvents derived from the liquid compositions X and Y, thereby obtaining a negative electrode in which the porous resin (separator) and the electrode mixture portion were integrated. In addition, the porous resin (separator) formed using the liquid composition set of the examples had pores with a pore size of 0.01 μm or more and 10 μm or less, a porosity of 30.0% or more, and a co-continuous structure in which multiple pores in the resin were continuously connected.

[0103] [Evaluation of surface uniformity (exposure of base material)] The produced negative electrode was observed using a digital microscope VHX-7000 manufactured by KEYENCE Corporation, and the number of locations where the underlying active material layer was exposed (also referred to as the "number of defects") and the ratio of the area of ​​the locations where the active material layer was exposed to the observed area (also referred to as the "exposed defect rate") were determined. The locations where the active material layer was exposed could be easily detected from the contrast between the black active material layer and the white porous resin (separator). The evaluation area was 23 cm2. 2 The number of defects and the defect exposure rate obtained were evaluated based on the following evaluation criteria. Taking into consideration the cleanliness of the experimental environment and the fragments that may occur when cutting the sample, it is preferable that the number of defects is less than 10. Also, if the defect exposure rate is large, the insulating ability of the separator may decrease, causing a short circuit in the battery, so it is preferable that the defect exposure rate is small. (Evaluation Criteria) A: The defect exposure rate is 0.2% or less and the number of defects of 50 μm or less is less than 10 B: The defect exposure rate is 0.2% or less and the number of defects of 50 μm or less is 10 or more. C: Defect exposure rate is more than 0.2% and 2.0% or less D: Defect exposure rate is over 2.0%

[0104] [Evaluation of grooves] The streaks that were parallel to the printing direction and occurred at intervals of 300 dpi (85 μm) on the porous resin (separator) of the negative electrode that was produced were evaluated. The streaks occurred in the printing direction, even though the printing conditions were 660 dpi in the printing direction and 1200 dpi in the perpendicular direction, with a higher dot density in the perpendicular direction. The streaks could be confirmed with the naked eye as streaks or uneven shapes, and when observed with an optical microscope, they could be confirmed as streaks through which the lower layer was visible, and when observed with an SEM, they could be confirmed as grooves with a large porosity. The presence or absence of streaks was confirmed with the naked eye and a microscope (KEYENCE Digital Microscope VHX-7000) and evaluated based on the following evaluation criteria. Since large streaks (grooves) may cause the battery to short circuit, it is preferable that the streaks (grooves) are absent or slight. (Evaluation Criteria) A+: No streaks or unevenness can be seen with the naked eye A: Unevenness is visible to the naked eye, and thin, disconnected lines are visible when observed under an optical microscope. A-: Unevenness is visible to the naked eye, and lines are visible when observed under an optical microscope. B: Streaks are visible to the naked eye and thick, transparent streaks are visible under an optical microscope. C: When observed with an optical microscope, transparent streaks are observed, equivalent to the exposed underlying active material layer.

[0105] [Film thickness evaluation] The thickness was measured using MDH-25MB (Mitutoyo Corporation), and the thickness of the porous resin (separator) was calculated from the difference in thickness before and after printing (before and after the porous resin was produced), and was evaluated based on the following evaluation criteria. 2 The film thickness (theoretical value) of the porous resin formed by applying the liquid composition X in this application amount is 10 μm. If the measured film thickness is too thin compared to this film thickness (theoretical value), the unevenness of the active material layer may penetrate the porous resin (separator), so it is preferable that the measured film thickness is close to the film thickness (theoretical value). (Evaluation Criteria) A+: Film thickness is 9 μm or more A: The film thickness is 6 μm or more and less than 9 μm. B: The film thickness is 3 μm or more and less than 6 μm. C: The film thickness is less than 3 μm.

[0106] [Table 1]

[0107] [Table 2]

[0108] Examples 1 to 8 satisfy formula (1) and therefore have excellent surface uniformity, whereas Comparative Examples 1 to 5 do not satisfy formula (1) and therefore have poor surface uniformity. Furthermore, in Examples 1 to 3 and Comparative Example 1, Examples 4 to 5 and Comparative Examples 3 and 4, and Examples 6 to 8 and Comparative Example 5, the same type of surfactant was used, but when the amount of surfactant added was not within the appropriate range and formula (2) or formula (3) was not satisfied, the evaluation of streaks (grooves) was poor. In addition, it is difficult for the surfactants used in Examples 6 to 8 and Comparative Example 5 to satisfy formula (2), which makes it difficult to achieve both surface uniformity and evaluation of streaks (grooves) and film thickness. [Explanation of symbols]

[0109] 1a: Printing device 1b: Container 1c: Supply tube 2a: Light irradiation device 2b: Polymerization inert gas circulation device 3a: Heating device 4: Printing base material 5: Transport section 6: Porous resin precursor 7:Liquid composition 10: Printing process department 20: Polymerization process section 30: Heating process section [Prior art documents] [Patent documents]

[0110] [Patent Document 1] Patent No. 4426157

Claims

1. A liquid composition set including a liquid composition X containing a polymerizable compound X, a solvent X, and a surfactant, and a liquid composition Y containing a solvent Y, The liquid composition X forms a porous resin, The porous resin is formed on a porous substrate, The surfactant is a silicon-based surfactant or a fluorine-based surfactant, The solvent X is a liquid that is incompatible with the polymer X generated in the course of polymerization of the polymerizable compound X in the liquid composition X, and is selected from one or more ethylene glycols selected from the group consisting of diethylene glycol monomethyl ether, ethylene glycol monobutyl ether, ethylene glycol monoisopropyl ether, and dipropylene glycol monomethyl ether, one or more esters selected from the group consisting of γ-butyrolactone and propylene carbonate, N-dimethylacetamide, methyl tetradecanoate, methyl decanoate, methyl myristate, tetradecane, acetone, 2-ethylhexanol, and 1-bromonaphthalene, The solvent Y is one or more components selected from the group consisting of ethylene glycol monobutyl ether, cyclohexanone, diethyl carbonate, N-N-dimethylacetamide, and one or more alcohols selected from the group consisting of ethanol, 1,3-butanediol, 2-propanol, and 2-ethylhexanol; The surface tension Y of the liquid composition Y at 24° C. by the plate method and the dynamic surface tension X of the liquid composition X at 24° C. when the bubble lifetime is 1500 msec by the maximum bubble pressure method 1500 and a liquid composition set that satisfies the following formula (1): [0010]

2. The dynamic surface tension X of the liquid composition X at 24°C when the bubble lifetime is 15 msec according to the maximum bubble pressure method 15 and the dynamic surface tension X of the liquid composition X at 24° C. when the bubble lifetime is 150 msec according to the maximum bubble pressure method. 150 and the dynamic surface tension X 1500 The liquid composition set according to claim 1 , which satisfies the following formula (2): [0025]

3. The liquid composition set according to claim 1 or 2, wherein the surface tension X of the liquid composition X at 24° C. as measured by a plate method and the surface tension Y of the liquid composition X satisfy the following formula (3): [0030]

4. The polymerizable compound X and the solvent X are compatible with each other, The liquid composition set according to claim 1 , wherein the porous resin is formed when a polymer X produced during polymerization of the polymerizable compound X and the solvent X become incompatible with each other.

5. The liquid composition set according to claim 1 , wherein the liquid composition X is applied to a region to which the liquid composition Y is applied.

6. The liquid composition set according to claim 1 , wherein the porous resin has pores having a pore size of 0.01 μm or more and 10 μm or less.

7. The liquid composition set according to claim 1 , wherein the porous resin has a porosity of 30% or more.

8. The liquid composition set according to claim 1 , wherein the porous resin has a co-continuous structure in which a plurality of pores are continuously connected to each other.

9. The liquid composition set according to claim 1 , wherein the porous substrate is an active material layer.

10. A porous resin production apparatus for producing a porous resin using a liquid composition X containing a polymerizable compound X, a solvent X, and a surfactant, and a liquid composition Y containing a solvent Y, comprising: the porous substrate includes a storage container Y in which the liquid composition Y is stored, an application means Y for applying the liquid composition Y stored in the storage container Y onto a porous substrate, a storage container X in which the liquid composition X is stored, an application means X for applying the liquid composition X stored in the storage container X onto the region to which the liquid composition Y has been applied, and a curing means for curing the applied liquid composition X to form the porous resin, The surfactant is a silicon-based surfactant or a fluorine-based surfactant, The solvent X is a liquid that is incompatible with the polymer X generated in the course of polymerization of the polymerizable compound X in the liquid composition X, and is selected from one or more ethylene glycols selected from the group consisting of diethylene glycol monomethyl ether, ethylene glycol monobutyl ether, ethylene glycol monoisopropyl ether, and dipropylene glycol monomethyl ether, one or more esters selected from the group consisting of γ-butyrolactone and propylene carbonate, N-dimethylacetamide, methyl tetradecanoate, methyl decanoate, methyl myristate, tetradecane, acetone, 2-ethylhexanol, and 1-bromonaphthalene, The solvent Y is one or more components selected from the group consisting of ethylene glycol monobutyl ether, cyclohexanone, diethyl carbonate, N-N-dimethylacetamide, and one or more alcohols selected from the group consisting of ethanol, 1,3-butanediol, 2-propanol, and 2-ethylhexanol; The surface tension Y of the liquid composition Y at 24° C. by the plate method and the dynamic surface tension X of the liquid composition X at 24° C. when the bubble lifetime is 1500 msec by the maximum bubble pressure method 1500 and satisfying the following formula (1): [0045]

11. The porous resin manufacturing apparatus according to claim 10 , wherein the porous substrate is an active material layer.

12. 12. The porous resin production apparatus according to claim 10, wherein the applying means X is a means for ejecting the liquid composition X by an ink jet method.

13. The porous resin manufacturing apparatus according to claim 10 , further comprising a solvent removal means for drying and removing the solvent X and the solvent Y after the curing.

14. A method for producing a porous resin, comprising the steps of: producing a porous resin using a liquid composition X containing a polymerizable compound X, a solvent X and a surfactant; and a liquid composition Y containing a solvent Y, the method comprising the steps of: The method includes: an application step Y of applying the liquid composition Y onto a porous substrate; an application step X of applying the liquid composition X to the region to which the liquid composition Y has been applied; and a curing step of curing the applied liquid composition X to form the porous resin; The surfactant is a silicon-based surfactant or a fluorine-based surfactant, The solvent X is a liquid that is incompatible with the polymer X generated in the course of polymerization of the polymerizable compound X in the liquid composition X, and is selected from one or more ethylene glycols selected from the group consisting of diethylene glycol monomethyl ether, ethylene glycol monobutyl ether, ethylene glycol monoisopropyl ether, and dipropylene glycol monomethyl ether, one or more esters selected from the group consisting of γ-butyrolactone and propylene carbonate, N-dimethylacetamide, methyl tetradecanoate, methyl decanoate, methyl myristate, tetradecane, acetone, 2-ethylhexanol, and 1-bromonaphthalene, The solvent Y is one or more components selected from the group consisting of ethylene glycol monobutyl ether, cyclohexanone, diethyl carbonate, N-N-dimethylacetamide, and one or more alcohols selected from the group consisting of ethanol, 1,3-butanediol, 2-propanol, and 2-ethylhexanol; The surface tension Y of the liquid composition Y at 24° C. by the plate method and the dynamic surface tension X of the liquid composition X at 24° C. when the bubble lifetime is 1500 msec by the maximum bubble pressure method 1500 and a method for producing a porous resin, characterized in that the following formula (1) is satisfied: [0050]

15. The method for producing a porous resin according to claim 14, wherein the porous substrate is an active material layer.

16. 16. The method for producing a porous resin according to claim 14, wherein the applying step X is a step of ejecting the liquid composition X by an inkjet method.

17. The method for producing a porous resin according to claim 14 , further comprising a solvent removal step of drying and removing the solvent X and the solvent Y after the curing.

Citation Information

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