Adhesive sheet for flexible display, laminate for flexible display, and flexible display
The adhesive sheet for flexible displays, composed of specific acrylic polymers and crosslinking agents, addresses adhesion and flexibility challenges, ensuring durability and adhesion to low-polarity substrates.
Patent Information
- Application Number
- JP2023185833
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-10-30
- Publication Date
- 2025-05-14
- Estimated Expiration
- 2043-10-30
AI Technical Summary
Flexible displays require adhesive layers that maintain adhesion and flexibility under dynamic and static bending conditions, especially when using low-polarity substrates like colorless polyimide, while avoiding issues of peeling, lifting, and poor compatibility with acrylic polymers.
An adhesive sheet with a layer comprising a (meth)acrylic random copolymer, a (meth)acrylic triblock copolymer, and a crosslinking agent, featuring specific glass transition temperatures and storage moduli, to enhance adhesion, flexibility, and cohesion.
The adhesive sheet provides excellent dynamic and static flexibility, strong adhesion to colorless polyimide substrates, and maintains integrity under high temperature and humidity conditions.
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Abstract
Description
[Technical field]
[0001] The present invention relates to a pressure-sensitive adhesive sheet for a flexible display, a laminate for a flexible display, and a flexible display. [Background technology]
[0002] In recent years, input devices that combine displays such as liquid crystal displays (LCDs) and organic electroluminescence (OLED) displays (OLEDs) with touch panels have become widespread. Transparent conductive films used in touch panels are laminated to members such as supporting glass via an adhesive layer. Polarizing plate films used in displays are attached to liquid crystal modules or OLED modules via an adhesive layer.
[0003] As the display, flat displays using glass substrates have been mainstream, but in recent years, flexible displays such as foldable displays and rollable displays using flexible substrates such as plastic have been developed. Such flexible displays have various advantages such as light weight, thinness, flexibility, and excellent design compared to conventional flat displays using glass substrates.
[0004] The flexible display or the pressure-sensitive adhesive layer used in the flexible display, and the optical film laminate laminated with the pressure-sensitive adhesive layer are required to have good adhesion and to be free from peeling or lifting even when bent, in addition to optical properties and durability. Therefore, in order to suppress the occurrence of peeling or lifting, it is effective to improve the adhesion at the joint of the optical film laminate.
[0005] In recent years, studies have been conducted to further improve the adhesiveness of pressure-sensitive adhesive sheets. For example, Patent Document 1 describes a pressure-sensitive adhesive sheet having a pressure-sensitive adhesive layer containing a tackifier resin with a softening point of less than 120° C. for an acrylic polymer. Patent Document 2 describes an assembly layer (pressure-sensitive adhesive layer) for flexible devices that is made of an acrylic block copolymer having at least two high Tg polymer blocks and at least one low Tg polymer block. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Special Publication No. 2018-524425 Summary of the Invention [Problem to be solved by the invention]
[0007] In general, flexible displays are required to have not only a strict level of dynamic flexibility, which prevents lifting and peeling when repeatedly bent, but also static flexibility, which prevents lifting and peeling when the display is bent for a long time under high temperature and humidity conditions. In addition, the use of colorless polyimide films is increasing for flexible displays from the viewpoint of strength and transparency, but colorless polyimide films are generally low-polarity materials, and therefore have a problem of poor affinity with acrylic adhesives and poor adhesion. In general, the inclusion of tackifier resins, mainly consisting of rosin-based compounds and terpene-based compounds, improves adhesion to low-polarity adherends such as polypropylene. However, rosin-based compounds obtained by making them colorless and transparent through hydrogenation, purification, or disproportionation treatment usually have poor compatibility with acrylic polymers and often become cloudy. In addition, some hydrocarbon-based resins, such as polyterpene resins and petroleum resins, have excellent transparency, but they also have very poor compatibility with acrylic polymers. In addition, the addition of a tackifier resin with a high softening point increases the elastic modulus of the adhesive layer, which may lead to poor flexibility and poor bending. Patent Document 1 shows that the use of an acrylic block copolymer results in low haze and improved adhesive strength to standard adherends such as polyethylene terephthalate (PET), but the crosslinking components of the assembly layer (adhesive layer) depend only on physical crosslinks derived from the acrylic block copolymer, so that the cohesive strength decreases under high temperature and high humidity conditions, for example, and there is a concern that the assembly layer (adhesive layer) may be destroyed in a holding power test or a static bending test under the same conditions.
[0008] Therefore, the present invention makes it possible to provide an adhesive sheet for flexible displays that is excellent in all respects of dynamic flexibility, static flexibility, holding power, transparency, and adhesion to colorless polyimide, which is a low-polarity substrate, as well as a laminate thereof, and further a flexible display. [Means for solving the problem]
[0009] The present inventors have conducted extensive research and found that the problems of the present invention can be solved in the following manner, and have thus completed the present invention. That is, an adhesive sheet for flexible displays having an adhesive layer, the adhesive layer comprising a (meth)acrylic random copolymer, a (meth)acrylic triblock copolymer, and a crosslinking agent, the (meth)acrylic triblock copolymer having a block structure represented by (A1)-(B)-(A2) consisting of two polymer blocks (A1) and (A2) derived from a (meth)acrylic acid alkyl ester, each of which has a glass transition temperature (Tg) of 100° C. or higher, and a polymer block (B) derived from a (meth)acrylic acid ester, each of which has a glass transition temperature (Tg) of −50° C. or lower, and containing 5 to 30 parts by mass of the (meth)acrylic triblock copolymer relative to 100 parts by mass of the (meth)acrylic random copolymer, the adhesive layer having a storage modulus of 1.0×10 at −20° C. and 1 Hz, 6 Pa or less, and the storage modulus at 60°C and 1 Hz is 5.0 x 10 3 An adhesive sheet for flexible displays, having a surface tension of 0.01 Pa or more and a haze of 1% or less. Effect of the Invention
[0010] According to the present invention having the above-mentioned configuration, it is possible to provide an adhesive sheet for flexible displays, which is excellent in all of dynamic flexibility, static flexibility, holding power, transparency, and adhesion to a colorless polyimide substrate having low polarity, as well as a laminate thereof, and further a flexible display. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] An example of an embodiment to which the present invention is applied will be described below. The numerical values specified in this specification are values obtained by the methods disclosed in the embodiments or examples. Other embodiments are also included in the scope of the present invention as long as they are consistent with the gist of the present invention. The adhesive sheet of the present invention is synonymous with an adhesive film and an adhesive tape. Unless otherwise specified, the various blending components in the adhesive layer can be used independently, either alone or in combination of two or more kinds. Furthermore, (meth)acrylic means acrylic or methacrylic, and (meth)acrylate means acrylate or methacrylate, respectively.
[0012] <Adhesive sheets for flexible displays> The adhesive sheet for flexible displays (hereinafter also referred to as adhesive sheet) of the present invention is preferably made of an adhesive layer and has a separator laminated thereon. Either a form in which a separator is laminated on one side of the adhesive layer, or a form in which both sides of the adhesive layer are sandwiched between separators is preferred, and among these, a form in which both sides are sandwiched is preferred. The adhesive layer is preferably a single layer, but adhesive layers with different compositions may be laminated. A form in which a light-transmitting flexible substrate is provided as a core material between the layers is also preferred.
[0013] <Adhesive layer> The pressure-sensitive adhesive layer of the present invention contains a (meth)acrylic random copolymer, a (meth)acrylic triblock copolymer, and a crosslinking agent, and is a cured product thereof. The pressure-sensitive adhesive layer is attached to a colorless polyimide or a glass substrate and is used in a bent state as a flexible display.
[0014] <(Meth)acrylic random copolymer> The structure of the (meth)acrylic random copolymer is not particularly limited, but it is preferably a copolymer of a monomer mixture containing mainly any one of the following monomers (r-1) to (r-3), and it is particularly preferable that the copolymer contains monomer (r-3) from the viewpoint of having a role as a reactive site with the crosslinking agent described later.
[0015] [Monomer (r-1)] Monomer (r-1) is a (meth)acrylic acid branched alkyl ester monomer having an alkyl group having 6 to 10 carbon atoms, and specific examples thereof include isohexyl (meth)acrylate, isooctyl (meth)acrylate, 2-ethylhexyl (meth)acrylate, isononyl (meth)acrylate, and isodecyl (meth)acrylate.
[0016] The (meth)acrylic random copolymer contains the monomer (r-1) and has an alkyl group with a branched structure in the side chain, which allows the polymers to be appropriately entangled with each other, improving stress relaxation properties and providing a flexible pressure-sensitive adhesive layer, thereby improving adhesion to the substrate.
[0017] Of these monomers (r-1), isooctyl (meth)acrylate and 2-ethylhexyl (meth)acrylate improve the stress relaxation property and adhesive strength, and improve the dynamic bending property.
[0018] The monomer (r-1) is preferably contained in an amount of 30 to 70% by mass, more preferably 40 to 70% by mass, based on 100% by mass of the monomer mixture. When the content is 30% by mass or more, sufficient stress relaxation property is easily obtained, and static bending property is improved. When the content is 70% by mass or less, cohesive strength and stress relaxation property are easily achieved at the same time, and dynamic bending property is improved.
[0019] [Monomer (r-2)] Monomer (r-2) is a (meth)acrylic acid alkyl ester monomer having an alkyl group having 12 to 20 carbon atoms, and specifically includes dodecyl (meth)acrylate, tridecyl (meth)acrylate, tetradecyl (meth)acrylate, pentadecyl (meth)acrylate, hexadecyl (meth)acrylate, heptadecyl (meth)acrylate, octadecyl (meth)acrylate, nonadecyl (meth)acrylate, and icosyl (meth)acrylate. Among these (r-2), dodecyl (meth)acrylate, tetradecyl (meth)acrylate, and icosyl (meth)acrylate are preferred from the viewpoint of rubber elasticity, and dodecyl (meth)acrylate is even more preferred from the viewpoint of flexibility. By containing monomer (r-2), the cohesive force of the adhesive layer is improved, a tough adhesive layer is obtained, and static flexibility is particularly improved.
[0020] The monomer (r-2) is preferably contained in an amount of 10 to 60% by mass, more preferably 20 to 50% by mass, based on 100% by mass of the monomer mixture. When the monomer (r-2) is contained in an amount of 10% by mass or more, sufficient rubber elasticity is easily obtained, and a strong adhesive layer is obtained. When the content is 60% by mass or less, flexibility and rubber elasticity are easily achieved at the same time, and therefore dynamic flexibility and static flexibility can be improved.
[0021] [Monomer (r-3)] Monomer (r-3) is a (meth)acrylic acid alkyl ester monomer containing a functional group. Examples of the functional group include a hydroxyl group, a carboxyl group, an epoxy group, an amide group, an amino group, and an alkoxysilyl group. Monomer (r-3) can be used alone or in combination of two or more kinds.
[0022] The monomer having a hydroxy group is not limited as long as it is a monomer having a hydroxy group in the molecule, and specific examples thereof include 2-hydroxyethyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, 3-hydroxypropyl (meth)acrylate, 4-hydroxybutyl (meth)acrylate, etc. Among these, 2-hydroxyethyl (meth)acrylate and 4-hydroxybutyl (meth)acrylate are preferred from the viewpoint of improving adhesion to colorless polyimide.
[0023] The monomer having a carboxy group is not limited as long as it is a monomer having a carboxy group in the molecule, and specific examples thereof include (meth)acrylic acid, p-carboxybenzyl acrylate, β-carboxyethyl acrylate, maleic acid, monoethyl maleic acid, itaconic acid, citraconic acid, fumaric acid, etc. Among these, (meth)acrylic acid is preferred from the viewpoints of cohesive strength and adhesive strength to colorless polyimide.
[0024] The monomer having an epoxy group is not limited as long as it is a monomer having an epoxy group in the molecule, and specific examples thereof include glycidyl (meth)acrylate, 4-hydroxybutyl acrylate glycidyl ether, and the like.
[0025] The monomer having an amide group is not limited as long as it is a monomer having an amide group in the molecule, and specific examples thereof include (meth)acrylic acid amide, N,N-dimethyl(meth)acrylic acid amide, and the like.
[0026] The monomer having an amino group is not limited as long as it is a monomer having an amino group in the molecule, and specific examples thereof include aminoethyl (meth)acrylate, 2-dimethylaminoethyl (meth)acrylate, and the like.
[0027] By including the monomer (r-3), a crosslinked structure is formed between the crosslinking agent described later, improving the cohesive strength of the adhesive layer and obtaining a tough adhesive layer. This improves the adhesion to colorless polyimide, as well as the dynamic and static bending properties and holding power.
[0028] The monomer (r-3) is preferably contained in an amount of 0.5 to 2.5 mass% in 100 mass% of the monomer mixture, and more preferably 0.5 to 2.0 mass%. When the content is 0.5 mass% or more, sufficient cohesive strength is easily obtained and the retention strength is improved. When the content is 2.5 mass% or less, both cohesive strength and stress relaxation properties are achieved, and adhesion to colorless polyimide is improved.
[0029] [Other monomers] The (meth)acrylic random copolymer may contain other monomers in addition to the monomers (r-1) to (r-3). Examples of the other monomers include (meth)acrylic acid alkyl ester monomers other than the monomers (r-1) to (r-3), (meth)acrylic acid alkyl ester monomers having an alicyclic structure, monomers having an alkyleneoxy group, monomers having an imide group, monomers having a cyano group, and other vinyl monomers.
[0030] <(Meth)acrylic triblock copolymer> A (meth)acrylic triblock copolymer is a copolymer of a monomer mixture having a block structure represented by (A1)-(B)-(A2), which consists of two polymer blocks (A1) and (A2) derived from a (meth)acrylic acid alkyl ester, each of which has a glass transition temperature (Tg) of 100°C or higher, and a polymer block (B) derived from a (meth)acrylic acid ester, each of which has a glass transition temperature (Tg) of -50°C or lower.
[0031] The glass transition temperature (Tg) of the polymer blocks (A1) and (A2) is 100°C or higher, preferably 105°C or higher. The glass transition temperature (Tg) of the polymer block (B) is -50°C or lower, preferably -55°C or lower. When the glass transition temperatures (Tg) of the polymer blocks (A1), (A2), and (B) are within the above temperature range, a microphase separation structure is formed in the adhesive layer at the normal use temperature of the adhesive layer (-30°C to 60°C). In the above microphase separation structure, the phase derived from the polymer block (B) imparts flexibility and wettability to the adhesive, thereby improving the adhesion to colorless polyimide. The polymer blocks (A1) and (A2) act as one component of the restraint phase (physical pseudo-crosslinking point), and due to the expression of cohesive force, excellent adhesive properties and durability are exhibited, and dynamic flexibility, static flexibility, and holding power are improved.
[0032] The glass transition temperatures (Tg) of the polymer blocks (A1) and (A2) may be different so long as they are 100° C. or higher, but it is preferable that they are the same.
[0033] The polymer blocks (A1) and (A2) are obtained by polymerizing methacrylic acid alkyl esters. Examples of such methacrylic acid alkyl esters include methyl methacrylate, ethyl methacrylate, propyl methacrylate, n-butyl methacrylate, t-butyl methacrylate, n-hexyl methacrylate, cyclohexyl methacrylate, 2-ethylhexyl methacrylate, n-octyl methacrylate, dodecyl methacrylate, tridecyl methacrylate, stearyl methacrylate, and isobornyl methacrylate. Among these, methyl methacrylate is preferred.
[0034] In the acrylic triblock copolymer, the polymer blocks (A1) and (A2) may be composed of the same or different polymers [(meth)acrylic acid alkyl ester polymers differing from each other in one or more of molecular weight, monomer composition, stereostructure (and syndiotacticity, etc.)] so long as they are both (meth)acrylic acid alkyl ester polymers having a glass transition temperature (Tg) of 100°C or higher.
[0035] As long as the polymer block (B) is a (meth)acrylic acid alkyl ester polymer having a glass transition temperature (Tg) of −50° C. or lower, it may have two or more types of monomer units in small amounts (usually 10 parts by mass or less relative to the mass of each polymer block) within a range that does not impair the effects of the present invention.
[0036] The polymer block (B) is obtained by polymerizing an alkyl acrylate, such as n-butyl acrylate, n-hexyl acrylate, 2-ethylhexyl acrylate, n-octyl acrylate, isooctyl acrylate, dodecyl acrylate, isodecyl acrylate, etc.
[0037] Among the above alkyl acrylates, propyl acrylate, n-butyl acrylate, 2-ethylhexyl acrylate, and n-octyl acrylate are preferred because the glass transition temperature (Tg) of the polymer block (B) is −50° C. or lower, and the adhesive layer has good adhesive strength and tack at low temperatures. Among the above alkyl acrylates, n-butyl acrylate and 2-ethylhexyl acrylate are particularly preferred because the phase separation between the phase containing at least one component of the obtained polymer block (B) and the phase containing the above polymer blocks (A1) and (A2) as its components is clear, the physical pseudo-crosslinking by the phase containing the polymer blocks (A1) and (A2) as its components is not broken, and an adhesive having high cohesive strength and excellent durability is obtained.
[0038] The above glass transition temperature (Tg) is a value calculated by the FOX formula, and details will be described in the Examples.
[0039] The polymer block (B) is preferably contained in an amount of 70 to 89% by mass relative to 100% by mass of the (meth)acrylic triblock copolymer. If the ratio of the polymer block (B) is less than 70% by mass, the storage modulus at -20°C and 1 Hz increases, and flexibility deteriorates, resulting in a decrease in conformity during bending. If it is 90% by mass or more, the cohesive force derived from the polymer blocks (A1) and (A2) is not obtained sufficiently, resulting in a decrease in holding power, and also in a decrease in adhesive power, resulting in a decrease in dynamic bending property and static bending property.
[0040] The (meth)acrylic triblock copolymer is contained in an amount of 5 to 30% by mass, preferably 7 to 20% by mass, relative to 100% by mass of the (meth)acrylic random copolymer. By making the content of the (meth)acrylic triblock copolymer within the above range, the effect of the cohesive force derived from the (meth)acrylic triblock copolymer becomes appropriate, and the dynamic flexibility, static flexibility, and holding power are improved.
[0041] The weight average molecular weight (Mw) of the (meth)acrylic triblock copolymer is preferably 100,000 to 300,000. If Mw is 100,000 or more, sufficient cohesive strength can be obtained, and dynamic flexibility and static flexibility can be improved. If Mw is less than 300,000, good compatibility with the (meth)acrylic random copolymer can be maintained, and transparency can be maintained.
[0042] <Crosslinking agent> The crosslinking agent reacts with functional groups such as hydroxyl groups, carboxyl groups, epoxy groups, amide groups, amino groups, alkoxysilyl groups, etc. contained in the (meth)acrylic random copolymer, thereby improving the cohesive strength of the pressure-sensitive adhesive layer and further improving the dynamic flexibility, static flexibility, and holding power.
[0043] Examples of the crosslinking agent include an isocyanate compound, an epoxy compound, an aziridine compound, a carbodiimide compound, a metal chelate, etc. Among these, the use of an isocyanate compound as the crosslinking agent is preferred because it provides excellent anchoring to the substrate and improves adhesion to the colorless polyimide.
[0044] The isocyanate compound is an isocyanate having two or more isocyanate groups. The isocyanate compound is preferably, for example, an isocyanate monomer such as an aromatic polyisocyanate, an aliphatic polyisocyanate, an araliphatic polyisocyanate, or an alicyclic polyisocyanate, as well as a biuret, a nurate, or an adduct thereof.
[0045] Examples of aromatic polyisocyanates include 1,3-phenylene diisocyanate, 4,4'-diphenyl diisocyanate, 1,4-phenylene diisocyanate, 4,4'-diphenylmethane diisocyanate, 2,4-tolylene diisocyanate, 2,6-tolylene diisocyanate, 4,4'-toluidine diisocyanate, 2,4,6-triisocyanate toluene, 1,3,5-triisocyanate benzene, dianisidine diisocyanate, 4,4'-diphenyl ether diisocyanate, and 4,4',4"-triphenylmethane triisocyanate.
[0046] Examples of aliphatic polyisocyanates include trimethylene diisocyanate, tetramethylene diisocyanate, hexamethylene diisocyanate (also known as HMDI), pentamethylene diisocyanate, 1,2-propylene diisocyanate, 2,3-butylene diisocyanate, 1,3-butylene diisocyanate, dodecamethylene diisocyanate, and 2,4,4-trimethylhexamethylene diisocyanate.
[0047] Examples of the aromatic aliphatic polyisocyanate include ω,ω'-diisocyanate-1,3-dimethylbenzene, ω,ω'-diisocyanate-1,4-dimethylbenzene, ω,ω'-diisocyanate-1,4-diethylbenzene, 1,4-tetramethylxylylene diisocyanate, and 1,3-tetramethylxylylene diisocyanate.
[0048] Examples of alicyclic polyisocyanates include 3-isocyanatemethyl-3,5,5-trimethylcyclohexyl isocyanate (also known as IPDI, isophorone diisocyanate), 1,3-cyclopentane diisocyanate, 1,3-cyclohexane diisocyanate, 1,4-cyclohexane diisocyanate, methyl-2,4-cyclohexane diisocyanate, methyl-2,6-cyclohexane diisocyanate, 4,4'-methylenebis(cyclohexyl isocyanate), and 1,4-bis(isocyanatemethyl)cyclohexane.
[0049] The biuret form is a self-condensation product having a biuret bond formed by self-condensation of an isocyanate monomer, for example, a biuret form of hexamethylene diisocyanate.
[0050] The nurate form is a trimer of an isocyanate monomer, such as a trimer of hexamethylene diisocyanate, a trimer of isophorone diisocyanate, or a trimer of tolylene diisocyanate.
[0051] The adduct is a bifunctional or higher isocyanate compound obtained by reacting an isocyanate monomer with a bifunctional or higher low-molecular active hydrogen-containing compound. Examples of the adduct include a compound obtained by reacting trimethylolpropane with hexamethylene diisocyanate, a compound obtained by reacting trimethylolpropane with tolylene diisocyanate, a compound obtained by reacting trimethylolpropane with xylylene diisocyanate, a compound obtained by reacting trimethylolpropane with isophorone diisocyanate, and a compound obtained by reacting 1,6-hexanediol with hexamethylene diisocyanate.
[0052] The isocyanate compound is preferably a trifunctional isocyanate compound from the viewpoint of forming a sufficient crosslinked structure. The isocyanate compound is more preferably an adduct or nurate, which is a reaction product between an isocyanate monomer and a trifunctional low molecular weight active hydrogen-containing compound. The isocyanate compound is preferably a trimethylolpropane adduct of hexamethylene diisocyanate, a nurate of hexamethylene diisocyanate, a trimethylolpropane adduct of tolylene diisocyanate, a nurate of tolylene diisocyanate, a trimethylolpropane adduct of isophorone diisocyanate, or a nurate of isophorone diisocyanate, and more preferably a trimethylolpropane adduct of hexamethylene diisocyanate, a trimethylolpropane adduct of tolylene diisocyanate, or a trimethylolpropane adduct of isophorone diisocyanate.
[0053] Examples of epoxy compounds include glycerin diglycidyl ether, 1,6-hexanediol diglycidyl ether, N,N,N',N'-tetraglycidyl-m-xylylenediamine, 1,3-bis(N,N'-diglycidylaminomethyl)cyclohexane, and N,N,N',N'-tetraglycidylaminophenylmethane.
[0054] Examples of the aziridine compound include N,N'-diphenylmethane-4,4'-bis(1-aziridinecarboxite), tris-2,4,6-(1-aziridinyl)-1,3,5-triazine, and 4,4'-bis(ethyleneiminocarbonylamino)diphenylmethane.
[0055] The carbodiimide compound is preferably a high molecular weight polycarbodiimide produced by decarboxylation condensation reaction of a diisocyanate compound in the presence of a carbodiimide catalyst. As commercially available products of the high molecular weight polycarbodiimide, the Carbodilite series of Nisshinbo Chemical Co., Ltd. and the Carbodista series of Teijin Co., Ltd. are preferred. Among them, Carbodilite V-03, 07, 09, and Carbodista TCC-FP10M are preferred because of their excellent compatibility with organic solvents.
[0056] The metal chelate is preferably a coordination compound of a polyvalent metal such as aluminum, iron, copper, zinc, tin, titanium, nickel, antimony, magnesium, vanadium, chromium, or zirconium with acetylacetone or ethyl acetoacetate. Examples of the metal chelate include aluminum ethyl acetoacetate diisopropylate, aluminum trisacetylacetonate, aluminum bisethyl acetoacetate monoacetylacetonate, and aluminum alkyl acetoacetate diisopropylate.
[0057] The crosslinking agent is preferably contained in an amount of 0.01 to 5 parts by mass, more preferably 0.05 to 2 parts by mass, based on 100 parts by mass of the (meth)acrylic random copolymer. When the content is 0.01 part by mass or more, the cohesive strength is further improved, and when the content is 5 parts by mass or less, it is preferable that both the cohesive strength and flexibility are easily achieved.
[0058] The pressure-sensitive adhesive layer of the present invention may contain various resins, silane coupling agents, oils, softeners, dyes, pigments, antioxidants, UV absorbers, weather stabilizers, plasticizers, fillers, antioxidants, antistatic agents, and the like as optional components, so long as the problem can be solved.
[0059] <Storage modulus> The storage modulus of the adhesive layer is determined by viscoelasticity measurement at a frequency of 1 Hz. The storage modulus corresponds to the portion stored as elastic energy when the material is deformed, and is an index of the degree of hardness. In other words, the higher the storage modulus value, the harder the adhesive layer is, and the lower the storage modulus value, the softer it is.
[0060] The adhesive layer has a storage modulus at -20°C and 1 Hz (hereinafter sometimes abbreviated as G'(-20)) of 1.0 x 10 6 Pa or less, 5.0×10 5 Pa or less is preferable, and 3.0×10 5 It is more preferable that G'(-20) is 1.0×10 Pa or less. 6 When the elastic modulus is less than or equal to Pa, the dynamic bending property is improved. This means that the flexibility at low temperatures is high, and therefore, for example, in cold regions below 0°C, when a foldable display described later is used by folding, the phenomenon in which the adhesive layer peels off from the substrate can be suppressed. In addition, G'(-20) is set to 5.0×10 from the viewpoint of improving adhesion to colorless polyimide. 4 Pa or more is preferable, and 1.0×10 4 Pa or more is more preferable.
[0061] The adhesive layer has a storage modulus at 60°C and 1 Hz (hereinafter sometimes abbreviated as G'(60)) of 5.0 x 10 3 Pa or more, 1.0×10 4 Pa or more is preferable, 1.5×10 4 Pa or more is preferable, and 2.0×10 4 More preferably, G'(60) is 5.0×10 Pa or more. 3 When the viscosity is equal to or higher than Pa, the cohesive strength is improved, and the durability and retention strength during static bending are improved. In addition, G'(60) is set to 5.0×10 in order to improve flexibility and static and dynamic bending properties. 4 Pa or less is preferred.
[0062] The thickness of the pressure-sensitive adhesive layer of the present invention is preferably 16 to 150 μm, more preferably 25 to 100 μm, and more preferably 25 to 75 μm. Within the above range, bending is not hindered and it is also a preferred embodiment in terms of adhesion. If the thickness of the pressure-sensitive adhesive layer is 150 μm or less, the decrease in cohesive strength is suppressed, high holding power is maintained, and haze is improved. If it is 16 μm or more, the stress during bending can be relaxed, so bending is not hindered and static bending property and dynamic bending property are improved.
[0063] <Haze> The haze of the pressure-sensitive adhesive layer of the present invention, measured in accordance with JIS K 7136, is 1% or less, preferably 0.7% or less, more preferably 0.5% or less, and even more preferably 0.3% or less, from the viewpoint of suitability for bonding optical components.
[0064] The pressure-sensitive adhesive sheet can be produced by applying a pressure-sensitive adhesive containing a (meth)acrylic random copolymer, a (meth)acrylic triblock copolymer, a crosslinking agent, a solvent, etc., to a separator, and then drying and removing the solvent, etc. to form a pressure-sensitive adhesive layer.
[0065] The drying temperature for the above-mentioned solvent is preferably 40 to 200° C., more preferably 50 to 180° C., and particularly preferably 70 to 170° C. By setting the drying temperature within the above range, a pressure-sensitive adhesive layer having excellent adhesive properties can be obtained.
[0066] The drying time can be appropriately selected from among various drying times, and is preferably 5 seconds to 20 minutes, more preferably 5 seconds to 10 minutes, and particularly preferably 10 seconds to 5 minutes.
[0067] The pressure-sensitive adhesive can be applied by various methods, specifically, for example, roll coating, kiss roll coating, gravure coating, reverse coating, roll brushing, spray coating, dip roll coating, bar coating, knife coating, air knife coating, curtain coating, lip coating, extrusion coating using a die coater, etc.
[0068] The separator has a release layer formed by applying a release agent to a substrate such as paper, plastic film, synthetic paper, etc. Examples of the release agent include silicone, alkyd resin, melamine resin, fluororesin, acrylic resin, etc. The thickness of the separator is not particularly limited, but is about 10 to 200 μm.
[0069] <Laminate for flexible displays> The laminate for a flexible display comprises a light-transmitting flexible substrate, a pressure-sensitive adhesive layer, and a polarizing plate and a transparent conductive film, and the pressure-sensitive adhesive layer is formed using the pressure-sensitive adhesive sheet of the present invention.
[0070] As an example of a method for forming a laminate for flexible displays, when using an adhesive sheet sandwiched between separators on both sides, the separator on one side is first peeled off, and a light-transmitting flexible substrate is bonded to the exposed adhesive layer, and then the opposing separator is peeled off, and the exposed adhesive layer is bonded to a polarizing plate or a transparent conductive film to form a laminate for flexible displays. In addition, a hard coat layer, an easy-adhesion coating layer, a color difference adjusting layer, etc. may be laminated on the laminated surface of the pressure-sensitive adhesive layer and the light-transmitting flexible substrate.
[0071] The light-transmitting flexible substrate is not particularly limited, but glass or a transparent plastic substrate can be suitably used. Examples of the material of the transparent plastic substrate include acrylic resins such as polyethylene terephthalate (PET) and polymethyl methacrylate (PMMA), and plastic materials such as polycarbonate, polycycloolefin, triacetyl cellulose, and colorless polyimide. The plastic materials can be used alone or in combination of two or more. Among the transparent plastic substrates as described above, a transparent plastic substrate having excellent heat resistance, that is, a transparent plastic substrate in which deformation is suppressed or prevented under harsh conditions such as high temperature and high temperature and high humidity, can be suitably used. As the transparent plastic substrate, in particular, polyethylene terephthalate (PET), polycycloolefin, thin film glass, and colorless polyimide are suitable.
[0072] <Flexible display> A flexible display has a bending function as one of its major features, and includes the above-mentioned laminate for flexible displays and an organic EL display panel configured to be bendable, and the laminate for flexible displays is disposed on the viewing side of the organic EL display panel and configured to be bendable. In addition, instead of the organic EL display panel, a micro LED, a liquid crystal panel, or an electronic paper module may be used, and the flexible display can be used regardless of the type of touch panel, such as a resistive film type or a capacitive type. EXAMPLES
[0073] The present invention will be described in detail below with reference to examples, but the present invention is not limited to the following examples. In the examples, unless otherwise specified, "parts" and "%" are values based on "parts by mass" and "% by mass", respectively.
[0074] <Measurement of weight average molecular weight (Mw)> The weight average molecular weight (Mw) was measured using a GPC "LC-GPC system" manufactured by Shimadzu Corporation. The weight average molecular weight (Mw) was determined by conversion using polystyrene with a known molecular weight as the standard substance. Apparatus name: LC-GPC system "Prominence" manufactured by Shimadzu Corporation. Columns: 4 GMHXL columns manufactured by Tosoh Corporation and 1 HXL column manufactured by Tosoh Corporation were connected together. Mobile phase solvent: Tetrahydrofuran Flow rate: 1.0ml / min Column temperature: 40℃
[0075] <Production Example of (Meth)acrylic Random Copolymer (R)> (Synthesis of (meth)acrylic random copolymer (R1)) A reaction vessel (hereinafter simply referred to as the "reaction vessel") equipped with a stirrer, a thermometer, a reflux condenser, a dropping device, and a nitrogen inlet tube was charged with 58 parts of 2-ethylhexyl acrylate (2EHA), 30 parts of dodecyl acrylate (DOA), 1 part of acrylic acid (AA), 5 parts of methyl acrylate (MA), 5 parts of butyl acrylate (BA), 1 part of 4-hydroxyethyl acrylate (HEA), and 0.2 parts of 2,2'-azobisisobutyronitrile (hereinafter simply referred to as "AIBN") as an initiator, and the atmosphere in the reaction vessel was replaced with nitrogen gas. Then, the mixture was heated to 50°C while stirring under a nitrogen atmosphere to start the reaction. The reaction solution was then reacted at 50°C for 4 hours. After the reaction was completed, the mixture was cooled and diluted with ethyl acetate to obtain an acrylic random copolymer (R1) solution with a non-volatile content of 30% and a viscosity of 2000 mPa·s. The weight average molecular weight (Mw) of the resulting acrylic random copolymer (R1) was 1.2 million.
[0076] (Synthesis of (meth)acrylic random copolymers (R2 to R9)) Random copolymers (R2 to R9) were synthesized in the same manner as in the production of the (meth)acrylic random copolymer (R1), except that the compositions and blending amounts (parts by mass) were changed to those shown in Table 1.
[0077] [Table 1]
[0078] The abbreviations in Table 1 are as follows. 2EHA: 2-ethylhexyl acrylate DOA: dodecyl acrylate HEA: 2-hydroxyethyl acrylate MA: Methyl acrylate BA: Butyl acrylate AA: Acrylic acid
[0079] <(Meth)acrylic triblock copolymer> The (meth)acrylic triblock copolymers used were commercially available and synthetic products, as detailed below.
[0080] ·MMA-BA-MMA triblock copolymer 1 (I-1) Kuraray Clarity LA3710 (Mw: 240,000, BA content: 88% by mass) ·MMA-BA-MMA triblock copolymer 2 (I-2) Kuraray Clarity LA3320 (Mw: 160,000, BA content: 85% by mass) ·MMA-BA-MMA triblock copolymer 3 (I-3) Kuraray Clarity LA2114 (Mw: 70,000, BA content: 90% by mass) ·MMA-BA-MMA triblock copolymer 4 (I-4) A synthetic product was used (Mw: 70,000, BA content: 85% by mass). ·MMA-BA-MMA triblock copolymer 5 (I-5) Kuraray Clarity LA2250 (Mw: 70,000, BA content: 70% by mass) ·MMA-BA-MMA triblock copolymer 6 (I-6) A synthetic product was used (Mw: 70,000, BA content: 67% by mass). ·MMA-BA-MMA triblock copolymer 7 (I-7) A synthetic product was used. (Mw: 300,000, BA content: 85% by mass) · MMA-BA-MMA triblock copolymer 8 (I-8) A synthetic product was used. (Mw: 70,000, BA content: 95% by mass) · MMA-BA-MMA triblock copolymer 9 (I-9) A synthetic product was used. (Mw: 50,000, BA content: 85% by mass) · MMA-BA-MMA triblock copolymer 10 (I-10) Clarity-LA2270 manufactured by Kuraray Co., Ltd. (Mw: 70,000, BA content: 60% by mass) · MMA-BA-MMA triblock copolymer 11 (I-11) A synthetic product was used. (Mw: 330,000, BA content: 85% by mass) · tBM-BA-tBM triblock copolymer (II) A synthetic product was used. (Mw: 160,000, BA content: 88% by mass) · MMA-BA / 2EHA-MMA triblock copolymer (III) Clarity-LK9243 manufactured by Kuraray Co., Ltd. (Mw: 60,000, BA / 2EHA content: 80% by mass) · MMA-BA-tBM triblock copolymer (IV) A synthetic product was used. (Mw: 160,000, BA content: 85% by mass) · EMA-BA-EMA triblock copolymer (V) A synthetic product was used. (Mw: 160,000, BA content: 85% by mass) · MMA-DOA-MMA triblock copolymer (VI) A synthetic product was used. (Mw: 160,000, DOA content: 85% by mass)
[0081] <Synthesis of MMA-BA-MMA triblock copolymer 4 (I-4)> After replacing the inside of the reaction vessel with nitrogen, 60.0 g of a toluene solution containing 868 g of toluene, 43.4 g of 1,2-dimethoxyethane, and 40.2 mmol of isobutylbis(2,6-di-t-butyl-4-methylphenoxy)aluminum was added at room temperature, and 2.89 g of a mixed solution of cyclohexane and n-hexane containing 5.00 mmol of sec-butyllithium was added. Then, 35.9 g of methyl methacrylate was added to the mixture. The mixture was stirred at room temperature for 60 minutes to initiate polymerization, and the internal temperature of the polymerization liquid was cooled to -30°C, and 405 g of n-butyl acrylate was added dropwise over 2 hours, and after the dropwise addition, the mixture was stirred at -30°C for 5 minutes. Next, 35.9 g of methyl methacrylate was added, and the mixture was stirred at room temperature overnight, and then 3.50 g of methanol was added to stop the polymerization reaction. The resulting reaction liquid was poured into 15 kg of methanol, and a white precipitate was precipitated. Thereafter, the white precipitate was collected by filtration and dried to obtain MMA-BA-MMA triblock copolymer 4 (I-4) having a weight average molecular weight (Mw) of 70,000.
[0082] The (meth)acrylic triblock copolymers (I-6) to (I-11) and (II) to (VI) were also obtained in the same manner as in the synthesis example of the triblock copolymer 4 (I-4) described above, except that the compositions and weight average molecular weights (Mw) were changed to those shown in Table 2.
[0083] Table 2 shows the weight average molecular weight (Mw) of each of the above (meth)acrylic triblock copolymers, the constituent monomers and glass transition temperatures (Tg) of each block, and the content (mass%) of polymer block (B) in 100 mass% of the (meth)acrylic triblock copolymer.
[0084] [Table 2]
[0085] The abbreviations in Table 2 are as follows. 2EHA: 2-ethylhexyl acrylate MA: Methyl acrylate BA: Butyl acrylate MMA: Methyl methacrylate tBA: t-butyl methacrylate EMA: Ethyl methacrylate
[0086] <Crosslinking agent> The crosslinking agents and tackifier resins used in the examples and comparative examples are as follows. C1: Trimethylolpropane adduct of tolylene diisocyanate C2: N,N,N',N'-tetraglycidyl-m-xylylenediamine C3: Aluminum ethyl acetoacetate diisopropylate TF1: Yasuhara Chemical's YS Resin SX100 (styrene monomer homopolymer, softening point: 100°C) TF2: Tosoh's Petrotac 100V (C5-C9 petroleum resin, softening point: 96°C) TF3: Arakawa Chemical Industries' Pine Crystal KE-359 (hydrogenated rosin ester resin, softening point: 94-104°C, hydroxyl value 42mgKOH / g) TF4: YS Polystar TH130 by Yasuhara Chemical (terpene phenol resin, softening point: 130°C)
[0087] Example 1 <Adhesive adjustment> A pressure-sensitive adhesive was obtained by blending 100 parts by mass of the nonvolatile content of the (meth)acrylic random copolymer (R1), 5 parts by mass of MMA-BA-MMA triblock copolymer 1 (I-1), and 0.1 parts by mass of the crosslinking agent (C1), and further adding toluene to adjust the nonvolatile content to 20%.
[0088] <Manufacturing of adhesive sheets for flexible displays> The adhesive was applied to a polyethylene terephthalate separator having a thickness of 75 μm, and the resultant adhesive was dried. The adhesive layer is formed by applying a coating to a thickness of 50 μm and drying with hot air at 100°C for 5 minutes. Next, a 50 μm thick polyethylene terephthalate separator was attached to the adhesive layer. The separator and the adhesive layer were then laminated to produce a laminate of "separator / adhesive layer / separator". The laminate was aged for one week at 40°C to obtain an adhesive sheet for flexible displays. obtained.
[0089] (Examples 2 to 35, Comparative Examples 1 to 12) As shown in Tables 3 to 7, adhesive sheets were obtained in the same manner as in Example 1, except that the types and amounts (parts by mass) of the (meth)acrylic random copolymer, (meth)acrylic triblock copolymer, tackifier, and crosslinking agent were changed.
[0090] <Storage modulus> Two sets of sheets were prepared by removing the separator from one side of the adhesive sheet, and the adhesive layers were bonded together using a laminator to create a separator / adhesive layer / separator laminate. The separator on one side of the laminate was peeled off and the laminate was repeatedly bonded to form a 1 mm thick adhesive layer laminate. This laminate was subjected to temperature dispersion measurement (temperature range: -70°C to 200°C) using a TA Instrument-Waters LLC "DiscoveryHR-2 (DHR-2)" and an 8.0 mmφ probe as a jig at a frequency of 1 Hz, a heating rate of 10°C / min, a strain of 0.1%, and a normal load of 1 N. The storage modulus G' at -20°C and 60°C was read from the obtained measurement graph.
[0091] <Haze measurement of adhesive layer> The separator on one side of the adhesive sheet was peeled off, and the exposed adhesive surface was attached to a cover glass (manufactured by Matsunami Glass Co., Ltd.). Then, the other separator was peeled off from the adhesive sheet, and another cover glass was attached to the exposed adhesive surface to prepare a laminate of "cover glass / adhesive layer / cover glass". In this state, the laminate was kept in an autoclave at 50°C and 5 atm for 20 minutes and adhered to a glass plate to obtain a measurement sample. The haze of the measurement sample was measured using an integrating sphere light transmittance measuring device (manufactured by Nippon Denshoku Industries Co., Ltd., NDH-8000) in accordance with JISK7136.
[0092] <Adhesion to colorless polyimide> The separator on one side of the adhesive sheet was peeled off, and the adhesive layer was attached to a 50 μm PET film using a laminator. Next, the other separator was peeled off, and the adhesive layer exposed by the laminator was attached to the corona-treated surface of a 50 μm-thick colorless polyimide film (manufactured by KOLON Co., Ltd.) that had been corona-treated on one side at an output of 300 W. Then, the adhesive layer was held in an autoclave at 50° C. and 5 atm for 20 minutes to allow each member to adhere to each other, thereby obtaining a measurement sample (adhesive layer size: 90 mm×25 mm). After leaving the measurement sample at 23° C. for one day, the adhesive strength was measured using a tensile tester (Orientec Co., Ltd. "Tensilon") under an environment of 23° C. and 50% relative humidity at a peel speed of 300 mm / min and a peel angle of 180°. The evaluation criteria are as follows. +++: Adhesive strength is 25N / 25mm or more. Excellent. ++: Adhesive strength is 20N / 25mm or more and less than 25N / 25mm. Good. +: Adhesive strength is 15N / 25mm or more and less than 20N / 25mm. Practical use is possible. NG: Adhesive strength is less than 15N / 25mm. Not practical.
[0093] <Dynamic bending> On a PET film (product name: A4300, manufactured by Toyobo Co., Ltd.) with a thickness of 188 μm, the separator on one side of the adhesive sheet was peeled off, and the adhesive layer was attached using a hand-laminator. Next, the other separator was peeled off, and the exposed adhesive layer was placed on the corona-treated surface of a colorless polyimide film (manufactured by KOLON Co., Ltd.) with a thickness of 50 μm, and attached using a hand-laminator. After that, the components were kept in an autoclave at 50°C and 5 atm for 20 minutes to adhere to each other, thereby obtaining a measurement sample. As a result, a laminate of "PET film / adhesive layer / colorless polyimide film" was obtained. The obtained laminate was folded with the PET film surface facing inward using a folding tester (manufactured by Yuasa System Co., Ltd.) at 25°C and a relative humidity of 50%, with the inner diameter (diameter) set to 4 mm, and 200,000 cycles were repeated, with folding and opening at 180° being one cycle. The appearance of the laminate was visually observed to see whether peeling, lifting, wrinkles, etc. occurred between the adhesive layer and the PET film or colorless polyimide film, and the appearance was judged according to the following criteria. +++: No peeling, lifting, or wrinkles in the adhesive layer occurred. Excellent. ++: No peeling or lifting, but slight wrinkles occurred in the adhesive layer. Good. +: Slight wrinkles occurred in the adhesive layer, and there was also slight peeling or lifting. Practical use is possible. NG: Peeling, lifting, and wrinkles in the adhesive layer were noticeable. Not suitable for practical use.
[0094] <Static flexibility> A laminate of "PET film / adhesive layer / colorless polyimide film" used in the dynamic bending test was prepared using the same procedure, and when folded with the PET film side on the inside, it was sandwiched between two glass plates with the gap adjusted using a spacer so that the inner diameter was 4 mm. After leaving it at 60°C and 90% relative humidity for 10 days, the appearance of the laminate was evaluated using the same evaluation method and criteria as for the dynamic bending test.
[0095] <Holding power> On a PET film (product name: A4300, manufactured by Toyobo Co., Ltd.) with a thickness of 188 μm, the separator on one side of the adhesive sheet was peeled off and the adhesive layer was attached using a hand laminator. Then, the sheet was cut to a size of 20 mm × 20 mm, and the other separator was peeled off to expose the adhesive layer, which was attached to a glass plate as an adherend by rolling it back and forth twice using a 2 kg rubber roller, and the members were kept in an autoclave at 50 ° C and 5 atm for 20 minutes to adhere to each other, thereby obtaining a measurement sample. A 1 kg weight was attached to the measurement sample, and a creep test was performed in an atmosphere of 60 ° C and 90% relative humidity in accordance with JIS Z 0237. The evaluation criteria for the test results are as follows. +++: The positional deviation of the measured sample after 1440 minutes is less than 0.2 mm. Excellent. ++: The positional deviation of the measured sample after 1,440 minutes is 0.2 mm or more and less than 0.4 mm. Good. +: The positional deviation of the measured sample after 1,440 minutes is 0.4 mm or more and less than 0.6 mm. Practical use is possible. NG: The position of the measurement sample after 1,440 minutes was displaced by 0.6 mm or more, or the sample fell. Not suitable for practical use.
[0096] The above evaluation results are shown in Tables 3 to 7.
[0097] [Table 3]
[0098] [Table 4]
[0099] [Table 5]
[0100] [Table 6]
[0101] [Table 7]
Claims
1. An adhesive sheet for a flexible display comprising an adhesive layer, the pressure-sensitive adhesive layer comprises a (meth)acrylic random copolymer, a (meth)acrylic triblock copolymer, and a crosslinking agent, The (meth)acrylic triblock copolymer has a block structure represented by (A1)-(B)-(A2) consisting of two polymer blocks (A1) and (A2) derived from a (meth)acrylic acid alkyl ester, each of which has a glass transition temperature (Tg) of 100° C. or higher, and a polymer block (B) derived from a (meth)acrylic acid ester, each of which has a glass transition temperature (Tg) of −50° C. or lower; and containing 5 to 30 parts by mass of the (meth)acrylic triblock copolymer relative to 100 parts by mass of the (meth)acrylic random copolymer, The pressure-sensitive adhesive layer has a storage modulus of 1.0×10 at −20° C. and 1 Hz. 6 Pa or less, and the storage modulus at 60° C. and 1 Hz is 5.0×10 3 Pa or more and haze is 1% or less; Adhesive sheet for flexible displays.
2. The pressure-sensitive adhesive sheet for flexible displays according to claim 1, wherein the (meth)acrylic triblock copolymer contains 70 to 89% by mass of the polymer block (B) relative to 100% by mass of the (meth)acrylic triblock copolymer.
3. The pressure-sensitive adhesive sheet for flexible displays according to claim 1, wherein the (meth)acrylic triblock copolymer has a weight average molecular weight (Mw) of 100,000 to 300,000.
4. The pressure-sensitive adhesive sheet for a flexible display according to claim 1 , wherein the crosslinking agent is an isocyanate compound.
5. The pressure-sensitive adhesive sheet for flexible displays according to any one of claims 1 to 4, wherein the thickness of the pressure-sensitive adhesive layer is 16 µm or more and 150 µm or less.
6. A laminate for flexible displays, comprising the pressure-sensitive adhesive layer according to claim 5 and a light-transmitting flexible substrate.
7. A flexible display comprising the laminate for flexible displays according to claim 6.
Citation Information
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