Adhesive composition, as well as adhesive sheet, laminate, and printed wiring board containing same
Patent Information
- Application Number
- PCT/JP2024/031724
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-10-31
- Filing Date
- 2024-09-04
- Publication Date
- 2025-05-08
AI Technical Summary
The prior art is difficult to provide adhesives with low dielectric constant and low dielectric loss in the high frequency range, and traditional epoxy resin adhesives have slow curing reactions during low temperature thermosetting, resulting in high fluidity of the adhesive layer and affecting circuit conduction accuracy.
Acid-modified resin and epoxy resin (E) with a specific structure are used as the adhesive, where the epoxy resin (E) contains epoxy resin (A) with a specific structure and a small amount of ether ether type epoxy resin (B). A high-density crosslinking structure is formed by reacting the acid-modified resin with the epoxy resin to control the curing degree to optimize the adhesive performance.
Low dielectric constant and low dielectric loss in the high frequency range are achieved, welding thermal stability and bonding strength are enhanced, while curing degree is controlled, ensuring the fluidity and conduction accuracy of the adhesive layer.
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Figure JP2024031724_08052025_PF_FP_ABST
Abstract
Description
Adhesive composition, and adhesive sheet, laminate and printed wiring board containing the same
[0001] The present invention relates to an adhesive composition. More specifically, it relates to an adhesive composition for printed wiring boards used for bonding a resin substrate to a resin substrate or a metal substrate. In particular, it relates to an adhesive composition for flexible printed wiring boards (hereinafter abbreviated as FPC), and to adhesive sheets, laminates, and printed wiring boards containing the same.
[0002] FPCs have excellent flexibility, allowing them to accommodate the increasing functionality and miniaturization of personal computers (PCs) and smartphones. They are widely used to incorporate electronic circuit boards into narrow, complex interior spaces. In recent years, electronic devices have become smaller, lighter, more dense, and more powerful, resulting in increasingly demanding performance requirements for wiring boards (electronic circuit boards). In particular, high-frequency signals are increasingly being used to increase transmission speeds. Accordingly, there is a growing demand for FPCs with low dielectric properties (low dielectric constant, low dielectric dissipation factor) in the high-frequency range. To achieve such low dielectric properties, measures have been taken to reduce the dielectric loss of FPC substrates and adhesives. For FPC substrates, in addition to conventional polyimide (PI) and polyethylene terephthalate (PET), substrate films with low dielectric properties, such as liquid crystal polymers (LCPs) and fluororesins, have been proposed. Development of adhesives, such as a combination of polyolefin and epoxy (Patent Document 1) and adhesives using polyphenylene ether (Patent Document 2), has been promoted.
[0003] International Publication No. WO 2016 / 047289 International Publication No. WO 2020 / 196718
[0004] However, the adhesive described in Patent Document 1 contains an epoxy resin and an epoxy resin curing agent, and therefore has high polarity, and is unable to satisfy high requirements, particularly for dielectric loss tangent. The adhesive described in Patent Document 2 cannot be said to have excellent heat resistance as an FPC adhesive, and is also insufficient in terms of dielectric properties.
[0005] Furthermore, the reaction between the general epoxy resin and carboxyl group-containing resin described in Patent Document 1 is slow, and when an adhesive sheet is produced by applying the adhesive to a substrate and then evaporating the solvent by low-temperature heating, the curing reaction hardly progresses. As a result, when the adhesive sheet is used, the resin flow (i.e., the fluidity of the resin during lamination) becomes extremely large, hindering circuit continuity and creating problems with precise control.
[0006] The present invention has been made in view of the above-mentioned problems in the prior art. That is, a first object of the present invention is to provide an adhesive composition that has excellent solder heat resistance and adhesive strength, and also has excellent dielectric properties such as low relative dielectric constant and dielectric loss tangent, as well as an adhesive sheet, a laminate, and a printed wiring board that contain the same.
[0007] In addition to the first object described above, a second object of the present invention is to provide an adhesive composition in which the degree of curing can be controlled, as well as an adhesive sheet, a laminate, and a printed wiring board containing the same.
[0008] The present invention is sufficient if it can achieve either the first object or the second object, and it is even more preferable if it can achieve both the first object and the second object.
[0009] As a result of extensive research, the present inventors have found that the above problems can be solved by the following means, and have arrived at the present invention. That is, the present invention has the following configuration.
[0010] [1] An adhesive composition comprising an acid-modified resin and an epoxy resin (E), wherein the epoxy resin (E) comprises an epoxy resin (A) represented by formula (I), and the content of a glycidyl ether epoxy resin (B) contained as the epoxy resin (E) is 5 parts by mass or less relative to 100 parts by mass of the acid-modified resin. [In formula (I), R 1 ~R 5 are each independently a hydrogen atom or C 1-10[2] The adhesive composition according to [1], wherein the acid-modified resin is at least one selected from the group consisting of an acid-modified polystyrene resin, an acid-modified cycloolefin polymer, and an acid-modified polyolefin. [3] The acid value of the acid-modified resin is 10 to 1000 equivalents / 10 6 g. [4] The adhesive composition according to any one of [1] to [3], wherein the content of the epoxy resin (A) is 0.01 parts by mass or more and 20 parts by mass or less relative to 100 parts by mass of the acid-modified resin. [5] The adhesive composition according to any one of [1] to [4], wherein the ratio represented by (total epoxy value of the epoxy resin (E) / total acid value of the acid-modified resin) is 0.5 or more and 10.0 or less. [6] The adhesive composition according to any one of [1] to [5], wherein the content of the epoxy resin (A) is 70% by mass or more relative to 100% by mass of the epoxy resin (E). [7] The adhesive composition according to any one of [1] to [6], wherein the content of the epoxy resin (B) is 25% by mass or less relative to 100% by mass of the epoxy resin (E). [8] In the formula (I), R 1 and / or R 5 is C 1-10 [9] The adhesive composition according to any one of [1] to [7], wherein the epoxy resin (A) and the glycidyl ether type epoxy resin (B) are each an alkyl group. [9] The adhesive composition according to any one of [1] to [8], wherein the total amount of the epoxy resin (A) and the glycidyl ether type epoxy resin (B) is 50 mass% or more based on 100 mass% of the epoxy resin (E).
[10] The adhesive composition according to any one of [1] to [9], wherein the glycidyl ether type epoxy resin (B) is an epoxy resin having a chemical structure represented by formula (II) or formula (III) in the molecule. [In formula (II), R 6 ~R 9 are each independently a hydrogen atom or C 1-10 represents an alkyl group. * represents a bond.] [In formula (III), R 26 ~R 29 are each independently a hydrogen atom or C 1-10represents an alkyl group. * represents a bond.]
[11] The adhesive composition according to any one of [1] to
[10] , which does not contain the glycidyl ether type epoxy resin (B).
[12] The adhesive composition according to any one of [1] to
[10] , which contains the glycidyl ether type epoxy resin (B), and the content of the glycidyl ether type epoxy resin (B) is 0.5 parts by mass or more and 5 parts by mass or less per 100 parts by mass of the acid-modified resin.
[13] The adhesive composition according to any one of [1] to
[12] , which has a chlorine concentration of 0.01 to 300 ppm in the solid content of the adhesive composition.
[14] The adhesive composition according to any one of [1] to
[13] , which is for use in printed wiring boards.
[15] An adhesive sheet, in which a substrate which is a resin substrate, a metal substrate, or a paper substrate and a release substrate are laminated via the adhesive composition according to any one of [1] to
[13] .
[16] The adhesive sheet according to
[15] , wherein the rate of change of dielectric loss tangent calculated based on the following formula is 8 to 70%. B -T C ) / T B ×100 (in the above formula, T B : Dielectric loss tangent of a B-stage product obtained by applying the adhesive composition to a 100 μm thick Teflon (registered trademark) sheet so that the thickness after drying would be 25 μm and drying at 130° C. for 3 minutes C (The dielectric loss tangent of the C-stage product obtained by heat-treating the B-stage product at 180°C for 3 hours for curing is 100%)
[17] A laminate in which the adhesive composition according to any one of [1] to
[13] is laminated on a substrate that is a resin substrate, a metal substrate, or a paper substrate.
[18] A printed wiring board comprising the laminate according to
[17] as a component.
[0011] The adhesive composition of the present invention has excellent solder heat resistance, adhesive strength, and dielectric properties. Furthermore, the degree of curing of the adhesive composition of the present invention can be controlled. Therefore, the adhesive composition is suitable for use in adhesives for FPCs, adhesive sheets, laminates, and printed wiring boards in the high-frequency range.
[0012] An embodiment of the present invention will be described in detail below, however, the present invention is not limited to this embodiment and can be practiced in various modified forms within the scope of the above description.
[0013] <Adhesive composition> The adhesive composition of the present invention is an adhesive composition containing an acid-modified resin and an epoxy resin (E), wherein the epoxy resin (E) contains an epoxy resin (A) represented by formula (I), and the content of the glycidyl ether epoxy resin (B) contained as the epoxy resin (E) is 5 parts by mass or less relative to 100 parts by mass of the acid-modified resin. [In formula (I), R 1 ~R 5 are each independently a hydrogen atom or C 1-10 represents an alkyl group.]
[0014] In the present invention, by blending an epoxy resin (A) represented by formula (I) with an acid-modified resin and setting the content of glycidyl ether epoxy resin (B) to a predetermined amount or less, when the carboxy groups in the acid-modified resin react with the epoxy resin (E), a high-density crosslinked structure is formed, and the movement of the by-produced hydroxyl groups is suppressed in the crosslinked structure, thereby providing an adhesive composition that has excellent solder heat resistance, adhesive strength, and also excellent dielectric properties.
[0015] <Acid-Modified Resin> The acid-modified resin used in the present invention is a resin modified with an acid component. By using the acid-modified resin, an adhesive layer having excellent adhesion to a metal substrate such as a copper foil and excellent solder heat resistance can be formed by a crosslinking reaction with the epoxy group of the epoxy resin (E).
[0016] The acid-modified resin used in the present invention can be prepared, for example, by modifying a base resin with an unsaturated carboxylic acid component, or by copolymerizing an unsaturated carboxylic acid component during polymerization of the base resin. The unsaturated carboxylic acid component is not particularly limited, and is preferably at least one of an α,β-unsaturated carboxylic acid and an acid anhydride thereof, and specific examples thereof include acrylic acid, methacrylic acid, maleic acid, itaconic acid, fumaric acid, citraconic acid, maleic anhydride, itaconic anhydride, fumaric anhydride, and citraconic anhydride. Among these, maleic acid, itaconic acid, citraconic acid, and anhydrides thereof are preferred, acid anhydrides are more preferred, and maleic anhydride is even more preferred.
[0017] The acid value of the acid-modified resin used in the present invention has a lower limit of 10 equivalents / 10 from the viewpoint of heat resistance and adhesion to resin substrates and metal substrates. 6 g or more, and more preferably 20 equivalents / 10 6 g or more, and more preferably 30 equivalents / 10 6 When the molecular weight is equal to or greater than the above value, the compatibility with the epoxy resin (E) or the like is improved, the adhesive strength is improved, and the crosslinking density is increased, so that the heat resistance can also be improved. The upper limit is 1000 equivalents / 10 6 g or less, and more preferably 700 equivalents / 10 6 g or less, and more preferably 500 equivalents / 10 6 When the thickness is equal to or less than the above value, the adhesiveness and low dielectric properties are improved.
[0018] The weight-average molecular weight (Mw) of the acid-modified resin used in the present invention is preferably in the range of 10,000 to 1,000,000. It is more preferably in the range of 20,000 to 500,000, even more preferably in the range of 40,000 to 200,000, and particularly preferably in the range of 50,000 to 150,000. By ensuring that the Mw is equal to or greater than the lower limit, the cohesive strength is improved and excellent adhesive properties can be achieved. Furthermore, by ensuring that the Mw is equal to or less than the upper limit, excellent flowability and operability can be achieved.
[0019] The acid-modified resin used in the present invention is preferably an acid-modified resin obtained by acid-modifying a hydrocarbon-based resin because of its good low dielectric properties. For example, an acid-modified polystyrene resin, an acid-modified cycloolefin polymer, or an acid-modified polyolefin is preferred, with an acid-modified polyolefin being more preferred. Furthermore, from the viewpoint of pot life, an acid-modified polystyrene resin or an acid-modified cycloolefin polymer is preferred. One or more types of acid-modified resins can be used in combination.
[0020] The acid-modified resin of the present invention preferably has a relative dielectric constant (εc) of 2.7 or less at a frequency of 10 GHz. It is more preferably 2.6 or less, and even more preferably 2.3 or less. There is no particular lower limit, but in practice it is 2.0. Furthermore, the relative dielectric constant (εc) over the entire frequency range of 1 GHz to 60 GHz is preferably 2.7 or less, more preferably 2.6 or less, and even more preferably 2.3 or less.
[0021] The acid-modified resin of the present invention preferably has a dielectric loss tangent (tan δ) of 0.003 or less at a frequency of 10 GHz. It is more preferably 0.0025 or less, and even more preferably 0.002 or less. There is no particular lower limit, but in practice it is 0.0001 or more. Furthermore, the dielectric loss tangent (tan δ) over the entire frequency range of 1 GHz to 60 GHz is preferably 0.003 or less, more preferably 0.0025 or less, and even more preferably 0.002 or less.
[0022] The acid-modified resin is preferably contained as a main component in the adhesive composition. In this specification, the main component in the adhesive composition specifically refers to the component with the highest content in the solid content of the adhesive composition. The content of the acid-modified resin in the adhesive composition of the present invention is preferably 5% by mass or more, more preferably 20% by mass or more, and even more preferably 30% by mass or more, based on 100% by mass of the solid content of the adhesive composition. Also, it is preferably 99% by mass or less, more preferably 95% by mass or less, and even more preferably 90% by mass or less. A content within the above range is preferable because it results in good adhesion and heat resistance.
[0023] <Acid-Modified Polyolefin> In the present invention, an acid-modified polyolefin can be preferably used as the acid-modified resin. The acid-modified polyolefin used in the present invention is not limited, but is preferably one obtained by grafting an unsaturated carboxylic acid component (preferably at least one of an α,β-unsaturated carboxylic acid and its acid anhydride) onto a polyolefin resin. Polyolefin resin refers to a polymer primarily composed of a hydrocarbon skeleton, such as a homopolymer of an olefin monomer, exemplified by ethylene, propylene, butene, butadiene, isoprene, etc., or a copolymer with other monomers, or a hydrogenated or halide product of the resulting polymer. The acid-modified polyolefin is preferably one obtained by grafting at least one of an α,β-unsaturated carboxylic acid and its acid anhydride onto at least one of polyethylene, polypropylene, and propylene-α-olefin copolymer.
[0024] Propylene-α-olefin copolymers are produced by copolymerizing propylene as the main component with an α-olefin. Examples of α-olefins that can be used include one or more of ethylene, 1-butene, 1-heptene, 1-octene, 4-methyl-1-pentene, and vinyl acetate. Among these α-olefins, ethylene and 1-butene are preferred. The ratio of the propylene component to the α-olefin component in the propylene-α-olefin copolymer is not limited, but the propylene component is preferably 50 mol% or more, and more preferably 70 mol% or more. Furthermore, these raw materials are not limited to petroleum-derived raw materials; raw materials obtained using chemical recycling technology that utilizes biomass naphtha or waste plastics may also be used.
[0025] The unsaturated carboxylic acid component is preferably at least one of an α,β-unsaturated carboxylic acid and an acid anhydride thereof, and specific examples are as described above, including maleic acid, itaconic acid, citraconic acid, and their acid anhydrides. Among these, acid anhydrides are preferred, and maleic anhydride is more preferred. That is, specific examples of acid-modified polyolefins include maleic anhydride-modified polypropylene, maleic anhydride-modified propylene-ethylene copolymer, maleic anhydride-modified propylene-butene copolymer, maleic anhydride-modified propylene-ethylene-butene copolymer, etc., and these acid-modified polyolefins can be used alone or in combination of two or more.
[0026] The acid value of the acid-modified polyolefin has a lower limit of 89 equivalents / 10 from the viewpoint of heat resistance and adhesion to resin substrates and metal substrates. 6 g or more, and more preferably 107 equivalents / 10 6 g or more, and more preferably 125 equivalents / 10 6 By adjusting the amount to be equal to or greater than the lower limit, compatibility with the epoxy resin (E) is improved, and excellent adhesive strength can be achieved. In addition, the crosslinking density is high, and solder heat resistance is improved. The upper limit is 713 equivalents / 10 6 g or less, and more preferably 534 equivalents / 10 6 g or less, and more preferably 400 equivalents / 10 6 By adjusting the viscosity to the upper limit or less, the adhesiveness is improved. In addition, the viscosity and stability of the solution are improved, and an excellent pot life can be achieved. Furthermore, the production efficiency is improved.
[0027] The acid-modified polyolefin is preferably a crystalline acid-modified polyolefin. The term "crystalline" as used herein refers to a polyolefin that shows a clear melting peak during heating from -100°C to 250°C at a rate of 20°C / min using a differential scanning calorimeter (DSC).
[0028] The melting point (Tm) of the acid-modified polyolefin is preferably in the range of 50°C to 120°C, more preferably in the range of 60°C to 100°C, and most preferably in the range of 70°C to 90°C. By setting the melting point at or above the lower limit, the cohesive force derived from crystals becomes good, and excellent adhesive properties and solder heat resistance can be exhibited. Furthermore, by setting the melting point at or below the upper limit, excellent solution stability and flowability are achieved, and operability during bonding is improved.
[0029] The heat of fusion (ΔH) of the acid-modified polyolefin is preferably in the range of 5 J / g to 60 J / g, more preferably in the range of 10 J / g to 50 J / g, and most preferably in the range of 20 J / g to 40 J / g. By setting it to above the lower limit, the cohesive force derived from crystals becomes good, and excellent adhesive properties and solder heat resistance can be exhibited. Furthermore, by setting it to below the upper limit, excellent solution stability and fluidity are achieved, and operability during adhesion is improved.
[0030] The weight-average molecular weight (Mw) of the acid-modified polyolefin is preferably in the range of 10,000 to 500,000. More preferably, it is in the range of 20,000 to 400,000, even more preferably, it is in the range of 40,000 to 200,000, and particularly preferably, it is in the range of 50,000 to 100,000. By setting it to be equal to or greater than the lower limit, the cohesive strength is improved and excellent adhesive properties can be exhibited. Furthermore, by setting it to be equal to or less than the upper limit, excellent flowability and operability can be achieved.
[0031] The method for producing the acid-modified polyolefin is not particularly limited, and examples thereof include a radical graft reaction (i.e., a reaction in which radical species are generated on a polymer that becomes a main chain, and an unsaturated carboxylic acid component (preferably an α,β-unsaturated carboxylic acid and its acid anhydride) is graft-polymerized using the radical species as a polymerization initiation point).
[0032] <Acid-Modified Polystyrene Resin> In the present invention, an acid-modified polystyrene resin can be preferably used as the acid-modified resin. The acid-modified polystyrene resin is not limited, but is preferably an aromatic vinyl compound alone, or a copolymer mainly composed of a block and / or random structure of an aromatic vinyl compound and a conjugated diene compound, or a hydrogenated product thereof, modified with an unsaturated carboxylic acid component. Examples of aromatic vinyl compounds include, but are not limited to, styrene, t-butylstyrene, α-methylstyrene, p-methylstyrene, divinylbenzene, 1,1-diphenylstyrene, N,N-diethyl-p-aminoethylstyrene, vinyltoluene, and p-tert-butylstyrene. Examples of conjugated diene compounds include butadiene, isoprene, 1,3-pentadiene, and 2,3-dimethyl-1,3-butadiene. These raw materials are not limited to petroleum-derived raw materials; raw materials obtained using chemical recycling technology utilizing biomass naphtha or waste plastics may also be used. Specific examples of copolymers of these aromatic vinyl compounds and conjugated diene compounds include styrene-butadiene block copolymers, styrene-ethylene-butylene-styrene block copolymers (SEBS), styrene-ethylene-propylene-styrene block copolymers (SEPS), and styrene-ethylene-ethylene-propylene-styrene block copolymers (SEEPS). The unsaturated carboxylic acid component is preferably at least one of an α,β-unsaturated carboxylic acid and an acid anhydride thereof, and specific examples are as described above, including maleic acid, itaconic acid, citraconic acid, and their acid anhydrides. Of these, acid anhydrides are preferred, and maleic anhydride is more preferred.
[0033] The acid value of the acid-modified polystyrene resin has a lower limit of 10 equivalents / 10 from the viewpoint of heat resistance and adhesion to resin substrates and metal substrates. 6 g or more, and more preferably 20 equivalents / 10 6 g or more, and more preferably 50 equivalents / 10 6By adjusting the amount to be equal to or greater than the lower limit, compatibility with the epoxy resin (E) is improved, and excellent adhesive strength can be achieved. In addition, the crosslinking density is high, and solder heat resistance is improved. The upper limit is 500 equivalents / 10 6 g or less, and more preferably 400 equivalents / 10 6 g or less, and more preferably 300 equivalents / 10 6 By adjusting the viscosity to the upper limit or less, the adhesiveness is improved. In addition, the viscosity and stability of the solution are improved, and an excellent pot life can be achieved. Furthermore, the production efficiency is improved.
[0034] <Acid-Modified Cycloolefin Polymer> In the present invention, it is also preferable to use an acid-modified cycloolefin polymer as the acid-modified resin. The acid-modified cycloolefin polymer is a cycloolefin polymer in which a carboxy group has been introduced by modifying the cycloolefin polymer with an unsaturated carboxylic acid component. As the cycloolefin polymer, either a homopolymer (COP) made from only one type of cycloolefin monomer, or a copolymer (COC) composed of one or more types of cycloolefin monomer and comonomer can be used. Furthermore, the unsaturated carboxylic acid component is preferably at least one of an α,β-unsaturated carboxylic acid and an acid anhydride thereof, specific examples of which are as described above, and examples include maleic acid, itaconic acid, citraconic acid, and the acid anhydrides thereof. Among these, acid anhydrides are preferred, and maleic anhydride is more preferred.
[0035] Examples of the cycloolefin monomer include bicyclic compounds such as norbornene and norbornadiene, tricyclic compounds such as dicyclopentadiene and dihydroxypentadiene, tetracyclic compounds such as tetracyclododecene, pentacyclic compounds such as cyclopentadiene trimer, heptacyclic compounds such as tetracyclopentadiene, and alkyl (methyl, ethyl, propyl, butyl, etc.)-substituted compounds, alkenyl (vinyl, etc.)-substituted compounds, alkylidene (ethylidene, etc.)-substituted compounds, and aryl (phenyl, tolyl, naphthyl, etc.)-substituted compounds of these polycyclic compounds. Among these, norbornene-based monomers selected from the group consisting of norbornene, tetracyclododecene, and alkyl-substituted compounds thereof are particularly preferred. Furthermore, these raw materials are not limited to petroleum-derived raw materials; raw materials obtained using chemical recycling technology using biomass naphtha or waste plastics may also be used.
[0036] The comonomer may be any monomer copolymerizable with the cycloolefin monomer, and is preferably, for example, an alkene monomer. Examples of the alkene monomer include α-olefins such as ethylene, propylene, 1-butene, and 1-hexene, and isobutene. The alkene monomer may be linear or branched.
[0037] The monomer components constituting the acid-modified cycloolefin polymer preferably contain 50 mass% or more of the cycloolefin monomer, more preferably 60 mass% or more of the cycloolefin monomer. When the cycloolefin monomer accounts for 50 mass% or more of the total monomer components, the solder heat resistance is good. There are no particular limitations on the polymerization method and polymerization conditions when polymerizing the monomer components, and they may be appropriately set according to conventional methods.
[0038] The weight average molecular weight (Mw) of the acid-modified cycloolefin polymer is preferably in the range of 10,000 to 500,000. More preferably, it is in the range of 20,000 to 400,000, even more preferably, it is in the range of 40,000 to 200,000, and particularly preferably, it is in the range of 50,000 to 100,000. By setting it to be equal to or greater than the lower limit, the cohesive strength is improved and excellent adhesive properties can be exhibited. Furthermore, by setting it to be equal to or less than the upper limit, excellent flowability and operability can be achieved.
[0039] The acid value of the acid-modified cycloolefin polymer has a lower limit of 89 equivalents / 10 from the viewpoint of heat resistance and adhesion to resin substrates and metal substrates. 6 g or more, and more preferably 107 equivalents / 10 6 g or more, and more preferably 125 equivalents / 10 6 By adjusting the amount to be equal to or greater than the lower limit, compatibility with the epoxy resin (E) is improved, and excellent adhesive strength can be achieved. In addition, the crosslinking density is high, and solder heat resistance is improved. The upper limit is 713 equivalents / 10 6 g or less, and more preferably 534 equivalents / 10 6 g or less, and more preferably 356 equivalents / 10 6 By adjusting the viscosity to the upper limit or less, the adhesiveness is improved. In addition, the viscosity and stability of the solution are improved, and an excellent pot life can be achieved. Furthermore, the production efficiency is improved.
[0040] <Epoxy Resin (E)> The adhesive composition of the present invention contains an epoxy resin (A) represented by formula (I) as the epoxy resin (E). Because the epoxy resin (A) has two epoxy groups, it is advantageous for forming a high-density crosslinked structure. Epoxy resins containing three or more epoxy groups are not preferred because some of the epoxy groups may not react and remain, resulting in a poor dielectric loss tangent. Furthermore, because the number of carbon atoms between the nitrogen atom and the epoxy group indirectly bonded to it is small, the epoxy resin (A) has a large steric hindrance and a structure with poor mobility. Such a structure with large steric hindrance can suppress atomic movement, making it ideal for obtaining an adhesive composition with a low dielectric loss tangent.
[0041] Furthermore, as the atomic movement of epoxy resin (A) is suppressed after curing, the dielectric dissipation factor of the semi-cured product (B-stage product) decreases as curing progresses. Additionally, epoxy resin (A) reacts more quickly with acid-modified resins than general epoxy resins (except epoxy resin (A)). Therefore, the curing reaction gradually progresses when the adhesive composition is applied to a substrate and the solvent is evaporated by low-temperature heating. As a result, the dielectric dissipation factor of the adhesive composition of the present invention significantly decreases from the B-stage product to the C-stage product. By utilizing this characteristic, the decrease in the dielectric dissipation factor of the adhesive composition after application can be monitored, and the degree of curing (degree of reaction) of the adhesive composition can be determined from the obtained dielectric dissipation factor. The degree of curing of the adhesive composition is related to resin flow, solder heat resistance, and other properties that are closely related to the crosslinking state. Therefore, understanding the degree of curing of the adhesive composition leads to precise control of these properties. [In formula (I), R 1 ~R 5 are each independently a hydrogen atom or C 1-10 represents an alkyl group.]
[0042] C in formula (I) 1-10 Alkyl group (-C n H 2n+1 , where n is an integer of 1 to 10) may be linear or branched. 1-10 The alkyl group is preferably C 1-6 alkyl group, more preferably C 1-3 It is an alkyl group, and even more preferably a methyl group or an ethyl group.
[0043] In formula (I), R 1 ~R 5 Of these, 0 to 3 are C 1-10 The alkyl group 1-10 Preferably, the group other than the alkyl group is a hydrogen atom, and R 1 ~R 5 Of these, 0 to 1 are C 1-10 The alkyl group 1-10 It is more preferable that the group other than the alkyl group is a hydrogen atom.
[0044] In formula (I), at least R 1 and / or R 5 is C 1-10 It is preferably an alkyl group. 1 and / or R 5 is C 1-10 Alkyl groups act as steric hindrances that can inhibit the movement of polar groups, and are therefore effective in obtaining an adhesive composition with a low dielectric loss tangent.
[0045] Examples of the epoxy resin (A) include N,N-diglycidylaniline, N,N-(diglycidyl)-o-toluidine, N,N-(diglycidyl)-m-toluidine, and N,N-(diglycidyl)-p-toluidine, and preferred are N,N-(diglycidyl)-o-toluidine, N,N-(diglycidyl)-m-toluidine, and N,N-(diglycidyl)-p-toluidine.
[0046] The epoxy value of the epoxy resin (A) is preferably 5,000 to 12,000 equivalents / 10 from the viewpoint of heat resistance and adhesion to resin substrates and metal substrates. 6 g, more preferably 6,000 to 11,000 equivalents / 10 6 g, more preferably 7,000 to 10,000 equivalents / 10 6 g. When the epoxy value is equal to or greater than the above value, the adhesive strength is improved, and the crosslinking density is increased, thereby improving heat resistance. When the epoxy value is equal to or less than the above value, the adhesiveness and low dielectric properties are improved. The epoxy value can be evaluated in accordance with the provisions of JIS K7236 (the same applies hereinafter).
[0047] The content of the epoxy resin (A) is preferably 0.01 parts by mass or more, more preferably 0.1 parts by mass or more, and even more preferably 1 part by mass or more, relative to 100 parts by mass of the acid-modified resin. By setting it to the lower limit or more, a sufficient curing effect can be obtained, and excellent adhesion and solder heat resistance can be exhibited. Furthermore, it is preferably 20 parts by mass or less, more preferably 10 parts by mass or less, and even more preferably 6 parts by mass or less. By setting it to the upper limit or less, the pot life and low dielectric properties are improved. In other words, by setting it within the above range, an adhesive composition having excellent adhesion, solder heat resistance, and low dielectric properties can be obtained.
[0048] The content of the epoxy resin (A) is preferably 70% by mass or more, more preferably 80% by mass or more, and even more preferably 90% by mass or more, based on 100% by mass of the epoxy resin (E) contained in the adhesive composition of the present invention. By making it equal to or greater than the lower limit, the dielectric properties become extremely good. The upper limit is not particularly limited, but it may be 100% by mass, and 95% by mass is also acceptable.
[0049] The adhesive composition of the present invention may contain a small amount of a glycidyl ether-type epoxy resin (B) as the epoxy resin (E). The glycidyl ether-type epoxy resin (B) specifically refers to an epoxy resin containing a glycidyl ether group in the molecule, in which a glycidyl group and an ether group are bonded. The glycidyl ether group has little steric hindrance and a structure with high local mobility. Furthermore, while the epoxy resin (A) has two glycidyl groups bonded to one nitrogen atom, the glycidyl ether group has only one glycidyl group bonded to one oxygen atom, resulting in fewer reaction sites. Due to these factors, if the content of the epoxy resin (B) exceeds a predetermined amount, it becomes difficult to obtain an adhesive composition with a low dielectric loss tangent. Therefore, even if the adhesive composition of the present invention contains an epoxy resin (B), it is desirable that the amount be small or that the epoxy resin (B) be absent, even if it does contain one.
[0050] The epoxy resin (B) is preferably an epoxy resin (B) having a chemical structure represented by formula (II) or formula (III) in the molecule. [In formula (II), R6 ~R 9 are each independently a hydrogen atom or C 1-10 represents an alkyl group. * represents a bond.] [In formula (III), R 26 ~R 29 are each independently a hydrogen atom or C 1-10 represents an alkyl group. * represents a bond.]
[0051] As the epoxy resin (B), an epoxy resin represented by formula (II-A), formula (II-B) or formula (III-A) is preferred, and from the viewpoint of low dielectric properties and solder heat resistance, an epoxy resin represented by formula (II-A) or formula (III-A) is more preferred. [In formula (II-A), R 6 ~R 9 is the same as above.] [In formula (II-B), R 6 ~R 9 is the same as above. 10 ~R 15 are each independently a hydrogen atom or C 1-10 represents an alkyl group.] [In formula (III-A), R 26 ~R 29 is the same as above.]
[0052] C in formula (II), formula (III), formula (II-A), formula (II-B) and formula (III-A) 1-10 Alkyl group (-C n H 2n+1 , where n is an integer of 1 to 10) may be linear or branched. 1-10 The alkyl group is preferably C 1-6 alkyl group, more preferably C 1-3 It is an alkyl group, and even more preferably a methyl group or an ethyl group.
[0053] Examples of such epoxy resins (B) include the following:
[0054] The epoxy value of the epoxy resin (B) is preferably 3,000 to 13,000 equivalents / 10 from the viewpoint of heat resistance and adhesion to resin substrates and metal substrates. 6 g, more preferably 4,000 to 12,000 equivalents / 10 6 g, more preferably 5,000 to 11,000 equivalents / 10 6 When the viscosity is equal to or greater than the above value, the adhesive strength is improved and the crosslink density is increased, thereby improving the heat resistance. When the viscosity is equal to or less than the above value, the adhesiveness and low dielectric properties are improved.
[0055] The content of the epoxy resin (B) is 5 parts by mass or less, preferably 1 part by mass or less, and more preferably 0 parts by mass, per 100 parts by mass of the acid-modified resin. By setting the content below the upper limit, the number of hydroxyl groups derived from glycidyl ether groups can be reduced, resulting in good low dielectric properties. That is, by using the epoxy resin (A) and an epoxy resin (B) of which the content is below the upper limit, an adhesive composition having excellent low dielectric properties in addition to adhesion and solder heat resistance can be obtained. When the adhesive resin composition of the present invention contains the epoxy resin (B), the content of the epoxy resin (B) is preferably 0.5 parts by mass or more, more preferably 2 parts by mass or more, and even more preferably 3 parts by mass or more, per 100 parts by mass of the acid-modified resin.
[0056] The content of the epoxy resin (B) is preferably 25% by mass or less, more preferably 20% by mass or less, and even more preferably 10% by mass or less, based on 100% by mass of the epoxy resin (E) contained in the adhesive composition of the present invention. By setting it to the upper limit or less, the dielectric properties become extremely good. The lower limit is not particularly limited, but it may be 0% by mass, and 5% by mass is also acceptable.
[0057] The adhesive composition of the present invention may contain, as the epoxy resin (E), an epoxy resin other than the above-mentioned epoxy resin (A) and the above-mentioned epoxy resin (B). The epoxy resin other than the above-mentioned epoxy resin (A) and the above-mentioned epoxy resin (B) is not particularly limited as long as it has an epoxy group in the molecule, but is preferably a multifunctional epoxy resin having two or more epoxy groups in the molecule. Specific examples include, but are not limited to, biphenyl-type epoxy resins, naphthalene-type epoxy resins, bisphenol A-type epoxy resins, bisphenol F-type epoxy resins, novolac-type epoxy resins, alicyclic epoxy resins, dicyclopentadiene-type epoxy resins, glycidylamine-type epoxy resins, epoxy-modified polybutadiene, and glycidyl group-containing isocyanuric acid.
[0058] In the adhesive composition of the present invention, the total amount of the epoxy resin (A) and the epoxy resin (B) is preferably 50% by mass or more, more preferably 70% by mass or more, even more preferably 90% by mass or more, and even more preferably 95% by mass or more, based on 100% by mass of the epoxy resin (E). By keeping the total amount of the epoxy resin (A) and the epoxy resin (B) within the above range, it is possible to improve the solder heat resistance, adhesive strength, and dielectric properties.
[0059] The total amount of epoxy resin (E) contained in the adhesive composition of the present invention is preferably 0.01 parts by mass or more, more preferably 1 part by mass or more, and even more preferably 2 parts by mass or more, relative to 100 parts by mass of the acid-modified resin. By adjusting it to be equal to or greater than the lower limit, a sufficient curing effect can be obtained, and excellent adhesion and solder heat resistance can be exhibited. Furthermore, it is preferably 25 parts by mass or less, more preferably 10 parts by mass or less, and even more preferably 7 parts by mass or less. By adjusting it to be equal to or less than the upper limit, the pot life and low dielectric properties can be improved. In other words, by adjusting it within the above range, an adhesive composition having excellent adhesion, solder heat resistance, and low dielectric properties can be obtained.
[0060] In the adhesive composition of the present invention, it is preferable to adjust the balance between the acid value of the acid-modified resin and the epoxy value of the epoxy resin (E) from the viewpoint of improving heat resistance. Specifically, the ratio (hereinafter sometimes referred to as "E / A") expressed as (total epoxy value of epoxy resin (E) / total acid value of acid-modified resin) is preferably 0.5 or more and 10.0 or less, more preferably 1.0 or more and 5.0 or less, even more preferably 1.5 or more and 4.0 or less, even more preferably 1.8 or more and 3.5 or less, and particularly preferably 1.9 or more and 3.0 or less. By setting the ratio at or above the lower limit, the crosslink density can be increased and solder heat resistance can be improved. By setting the ratio at or below the upper limit, the polar groups in the adhesive can be reduced and dielectric properties can be improved. In other words, by setting the epoxy group value / acid value within the above range, an adhesive composition with a good balance between solder heat resistance and low dielectric properties can be obtained.
[0061] When epoxy resin (E) is blended, the adhesive composition may contain by-products generated during the production of epoxy resin (E). Examples of such by-products include chlorine-containing substances with hydrolyzable chlorine groups that could not be ring-closed with NaOH. The present inventors conducted extensive research focusing on the chlorine content in the adhesive composition and found that, in the adhesive composition of the present invention containing an acid-modified resin, reducing the chlorine content in the adhesive composition leads to improved dielectric loss tangent, in particular. It is generally believed that reducing the chlorine concentration in an adhesive composition leads to the suppression of ionic migration, which in turn contributes to improved insulation reliability. However, it was not widely known that the chlorine concentration in an adhesive composition affects dielectric properties such as the dielectric constant and dielectric loss tangent, which are not related to ionic migration. In the frequency band of several tens of GHz, reducing the number of highly polar functional groups is effective in lowering the dielectric constant and dielectric loss tangent. However, when considering the chlorine concentration, even if the chlorine concentration is low, an adhesive composition with a high concentration of highly polar functional groups may be able to improve insulation reliability by suppressing ion migration, but may not be able to improve dielectric properties. In other words, focusing on the chlorine concentration is extremely effective from the perspective of improving dielectric properties. The chlorine concentration contained in the adhesive composition of the present invention is, for example, preferably 0.01 to 300 ppm, more preferably 0.1 to 140 ppm, and even more preferably 1 to 100 ppm, based on the solid content of the adhesive composition. By keeping the chlorine concentration within this range, the influence of chlorine-containing substances can be reduced, resulting in extremely good dielectric properties (particularly dielectric loss tangent).
[0062] Methods for reducing the chlorine concentration in adhesive compositions include, for example, using epoxy resins (E) synthesized by oxidation without using chlorine-containing substances, or using distilled and purified epoxy resins (E). Using epoxy resins (E) synthesized by oxidation is particularly advantageous because it allows for the production of adhesive compositions with a chlorine concentration of approximately 0 ppm in the solids. On the other hand, using epoxy resins (E) synthesized by oxidation can result in the inclusion of low-molecular-weight allyl group-containing substances as impurities, which may adversely affect the dielectric properties. Therefore, from the perspective of improving dielectric properties, an adhesive composition with a chlorine concentration of 0 ppm is ideal. However, in reality, epoxy resins (E) that can achieve this contain low-molecular-weight allyl group-containing substances. Therefore, adhesive compositions that do not contain low-molecular-weight allyl group-containing substances are preferred, even if the chlorine concentration exceeds 0 ppm. Furthermore, distillation methods for epoxy resins (E) include rotary evaporation, vacuum fractional distillation, short-path distillation, packed column distillation, spinning band distillation, falling-film distillation, wiper-type thin-film distillation, and vacuum distillation including steam distillation.
[0063] <Polycarbodiimide> The adhesive composition of the present invention may contain a polycarbodiimide. The polycarbodiimide is not particularly limited as long as it has two or more carbodiimide bonds in the molecule. By using a polycarbodiimide, the carboxy group of the acid-modified resin or the epoxy group of the epoxy resin (E) reacts with the carbodiimide bond, thereby improving heat resistance and adhesiveness.
[0064] In the adhesive composition of the present invention, the content of polycarbodiimide is preferably 1 part by mass or more, more preferably 3 parts by mass or more, per 100 parts by mass of the acid-modified resin. By making the content equal to or greater than the lower limit, the crosslink density can be increased, resulting in good solder heat resistance. Furthermore, the content is preferably 20 parts by mass or less, more preferably 10 parts by mass or less. By making the content equal to or less than the upper limit, excellent solder heat resistance and low dielectric properties can be achieved. In other words, by making the content within the above range, an adhesive composition having excellent solder heat resistance and low dielectric properties can be obtained.
[0065] <Unsaturated Hydrocarbon> The adhesive composition of the present invention may contain an unsaturated hydrocarbon having a terminal unsaturated hydrocarbon group and a 5% weight loss temperature of 260°C or higher. When the unsaturated hydrocarbon contains a terminal unsaturated hydrocarbon group, the crosslink density can be increased by a curing reaction caused by radicals generated by using a radical initiator or the like, thereby improving solder heat resistance. Furthermore, since hydroxyl groups that deteriorate dielectric properties are not generated after the reaction, an adhesive with better dielectric properties can be obtained. It is preferable that one molecule contains two or more terminal unsaturated hydrocarbon groups, as this further increases the crosslink density.
[0066] The 5% weight loss temperature of the unsaturated hydrocarbon must be 260°C or higher. It is preferably 270°C or higher, more preferably 280°C or higher, and even more preferably 290°C or higher. When the 5% weight loss temperature is above this value, soldering can be performed without causing poor appearance even at temperatures exceeding the melting point of the solder. There is no particular upper limit, but 500°C is practical.
[0067] The unsaturated hydrocarbon preferably has an aromatic ring structure or an alicyclic structure as a structural unit. Having an aromatic ring structure or an alicyclic structure as a structural unit can improve solder heat resistance and also provide excellent dielectric properties. Among these, an aromatic ring structure or an alicyclic structure is preferred as the skeleton of the unsaturated hydrocarbon, and polyphenylene ether or phenol resin is preferred. Specific examples of polyphenylene ethers having terminal unsaturated hydrocarbon groups include SA-9000 from SABIC Corporation and OPE-2St from Mitsubishi Gas Chemical Company, Inc. Another example of a phenol resin having terminal unsaturated hydrocarbon groups is Resitop FTC-809AE from Gunei Chemical Industry Co., Ltd.
[0068] The number average molecular weight of the unsaturated hydrocarbon is preferably 500 or more, more preferably 1,000 or more. Also, it is preferably 100,000 or less, more preferably 10,000 or less, and even more preferably 5,000 or less. Within the above range, the solubility in solvents is good, and a uniform adhesive coating film can be formed.
[0069] The content of the unsaturated hydrocarbon in the adhesive composition of the present invention is preferably 1 part by mass or more, more preferably 2 parts by mass or more, per 100 parts by mass of the acid-modified resin. The content is preferably 100 parts by mass or less, more preferably 50 parts by mass or less. Within this range, both excellent adhesive properties and solder heat resistance can be achieved.
[0070] <Radical Generator> The adhesive composition of the present invention preferably contains a radical generator. The radicals generated by the radical generator efficiently react the terminal unsaturated hydrocarbon groups of the unsaturated hydrocarbon, increasing the crosslink density and thereby improving solder heat resistance and dielectric properties. The radical generator is not particularly limited, but an organic peroxide is preferably used. Examples of organic peroxides include, but are not limited to, peroxides such as di-tert-butyl peroxyphthalate, tert-butyl hydroperoxide, dicumyl peroxide, benzoyl peroxide, tert-butyl peroxybenzoate, tert-butylperoxy-2-ethylhexanoate, tert-butyl peroxypivalate, methyl ethyl ketone peroxide, di-tert-butyl peroxide, and lauroyl peroxide; and azonitriles such as azobisisobutyronitrile and azobisisopropionitrile.
[0071] The one-minute half-life temperature of the radical generator used in the present invention is preferably 140° C. or higher. By setting the temperature to 140° C. or higher, the initiation of a radical reaction can be prevented when the solvent of the adhesive composition varnish is volatilized to produce an adhesive sheet, and excellent adhesiveness can be achieved.
[0072] The amount of the radical generator used in the present invention is preferably 0.1 parts by mass or more, more preferably 1 part by mass or more, per 100 parts by mass of the unsaturated hydrocarbon. The amount is preferably 50 parts by mass or less, more preferably 10 parts by mass or less. By adjusting the amount within the above range, an optimal crosslink density can be achieved, and both adhesiveness and solder heat resistance can be achieved.
[0073] <Organic Solvent> The adhesive composition of the present invention may further contain an organic solvent. The organic solvent used in the present invention is not particularly limited as long as it dissolves the acid-modified resin and the epoxy resin (E). Specific examples include aromatic hydrocarbons such as benzene, toluene, and xylene; aliphatic hydrocarbons such as hexane, heptane, octane, and decane; alicyclic hydrocarbons such as cyclohexane, cyclohexene, methylcyclohexane, and ethylcyclohexane; halogenated hydrocarbons such as trichloroethylene, dichloroethylene, chlorobenzene, and chloroform; alcoholic solvents such as methanol, ethanol, isopropyl alcohol, butanol, pentanol, hexanol, propanediol, and phenol; acetone, methyl isobutyl ketone, methyl ethyl ketone, pentanone, hexanone, cyclohexanone, isophorone, and acetophenone. ketone-based solvents, cellosolves such as methyl cellosolve and ethyl cellosolve, ester-based solvents such as methyl acetate, ethyl acetate, butyl acetate, methyl propionate and butyl formate, glycol ether-based solvents such as ethylene glycol mono-n-butyl ether, ethylene glycol mono-iso-butyl ether, ethylene glycol mono-tert-butyl ether, diethylene glycol mono-n-butyl ether, diethylene glycol mono-iso-butyl ether, triethylene glycol mono-n-butyl ether and tetraethylene glycol mono-n-butyl ether, and the like, can be used alone or in combination of two or more thereof. Methylcyclohexane and toluene are particularly preferred from the viewpoint of working environment and drying properties.
[0074] The organic solvent is preferably in the range of 100 to 1,000 parts by mass per 100 parts by mass of the solid content of the adhesive composition. By setting the amount to be equal to or greater than the lower limit, the liquid state and pot life are improved. Furthermore, by setting the amount to be equal to or less than the upper limit, it is advantageous in terms of production costs and transportation costs.
[0075] The adhesive composition of the present invention may further contain other components as needed, such as a flame retardant, a tackifier, a filler, an antioxidant, and a silane coupling agent.
[0076] <Flame Retardant> The adhesive composition of the present invention may contain a flame retardant as needed. Examples of flame retardants include bromine-based, phosphorus-based, nitrogen-based, and metal hydroxide compounds. Phosphorus-based flame retardants are preferred, and phosphorus-based flame retardants such as phosphate esters, phosphate salts, and phosphine oxides can be used. These flame retardants may be used alone or in any combination of two or more. When a flame retardant is included, it is preferably included in an amount of 1 to 200 parts by mass, more preferably 5 to 150 parts by mass, and most preferably 10 to 100 parts by mass, per 100 parts by mass of the acid-modified resin and epoxy resin (E) combined. By keeping the amount within this range, flame retardancy can be achieved while maintaining adhesion, solder heat resistance, and electrical properties.
[0077] <Tackifier> The adhesive composition of the present invention may contain a tackifier as needed. Examples of tackifiers include polyterpene resins, rosin-based resins, aliphatic petroleum resins, alicyclic petroleum resins, copolymerized petroleum resins, styrene resins, and hydrogenated petroleum resins, and are used for the purpose of improving adhesive strength. These may be used alone or in any combination of two or more. When a tackifier is added, it is preferably added in an amount of 1 to 200 parts by mass, more preferably 5 to 150 parts by mass, and most preferably 10 to 100 parts by mass, per 100 parts by mass of the acid-modified resin and epoxy resin (E) combined. By keeping the amount within this range, the effects of the tackifier can be exerted while maintaining adhesion, solder heat resistance, and electrical properties.
[0078] <Filler> The adhesive composition of the present invention may contain a filler as needed. Examples of organic fillers include powders of heat-resistant resins such as polyimide, polyamideimide, fluororesin, and liquid crystal polyester. Examples of inorganic fillers include silica (SiO), alumina (AlO), titania (TiO), tantalum oxide (TaO), zirconia (ZrO), silicon nitride (SiN), boron nitride (BN), calcium carbonate (CaCO), calcium sulfate (CaSO), zinc oxide (ZnO), magnesium titanate (MgO.TiO), barium sulfate (BaSO), organic bentonite, clay, mica, aluminum hydroxide, and magnesium hydroxide. Among these, silica is preferred due to its ease of dispersion and improved heat resistance.
[0079] Hydrophobic silica and hydrophilic silica are generally known as silica, but in this case, hydrophobic silica treated with dimethyldichlorosilane, hexamethyldisilazane, octylsilane, or the like is preferred in order to impart moisture absorption resistance. When silica is added, the amount is preferably 1 to 100 parts by mass, more preferably 50 to 100 parts by mass, per 100 parts by mass of the acid-modified resin and epoxy resin (E) combined. By adjusting the amount to be equal to or greater than the lower limit, further heat resistance can be achieved. Furthermore, by adjusting the amount to be equal to or less than the upper limit, poor dispersion of the silica and excessively high solution viscosity can be prevented, improving workability.
[0080] <Antioxidant> The adhesive composition of the present invention may contain an antioxidant as needed. The incorporation of an antioxidant is preferred because it can prevent deterioration of properties such as adhesiveness and dielectric properties even when the adhesive composition is used in a high-temperature environment exposed to air. The antioxidant is not particularly limited, but examples include phenol-based antioxidants, amine-based antioxidants, phosphorus-based antioxidants, and sulfur-based antioxidants. These may be used alone or in combination of two or more.
[0081] When the adhesive composition contains an antioxidant, the content thereof is preferably 0.01 to 5 parts by mass, and more preferably 0.1 to 3 parts by mass, per 100 parts by mass of the solid content of the adhesive composition. When the content of the antioxidant is within the above range, deterioration of properties such as adhesion and dielectric properties can be suppressed even when the adhesive composition is used in a high-temperature environment where it is exposed to air.
[0082] <Silane Coupling Agent> The adhesive composition of the present invention may contain a silane coupling agent as needed. The inclusion of a silane coupling agent is highly preferred because it improves adhesion to metals and heat resistance. Silane coupling agents are not particularly limited, but examples include those containing unsaturated groups, epoxy groups, and amino groups. Among these, silane coupling agents containing epoxy groups, such as γ-glycidoxypropyltrimethoxysilane, β-(3,4-epoxycyclohexyl)ethyltrimethoxysilane, and β-(3,4-epoxycyclohexyl)ethyltriethoxysilane, are more preferred from the perspective of heat resistance. When a silane coupling agent is included, the amount is preferably 0.5 to 20 parts by mass per 100 parts by mass of the total of the acid-modified resin and the epoxy resin (E). By using a silane coupling agent within this range, solder heat resistance and adhesion can be improved.
[0083] <Laminate> The laminate of the present invention is a laminate in which an adhesive composition is laminated on a substrate, specifically, a laminate in which the adhesive composition is laminated on a substrate (a two-layer laminate of substrate / adhesive layer), or a laminate in which a substrate is further attached (a three-layer laminate of substrate / adhesive layer / substrate). Here, the adhesive layer refers to the layer of the adhesive composition of the present invention after the adhesive composition of the present invention is applied to a substrate and dried. The laminate of the present invention can be obtained by applying the adhesive composition of the present invention to various substrates according to a conventional method, drying it, and then laminating another substrate on it.
[0084] <Substrate> In the present invention, the substrate is not particularly limited as long as it is possible to form an adhesive layer by applying and drying the adhesive composition of the present invention, and examples thereof include resin substrates such as film-like resins, metal substrates such as metal plates and metal foils, and paper.
[0085] Examples of the resin substrate include polyester resin, polyamide resin, polyimide resin, polyamideimide resin, liquid crystal polymer, polyphenylene sulfide, syndiotactic polystyrene, polyolefin resin, and fluorine-based resin. A film-like resin (hereinafter also referred to as a substrate film layer) is preferred.
[0086] Any conventionally known conductive material usable for circuit boards can be used as the metal substrate. Examples of materials include various metals such as SUS, copper, aluminum, iron, steel, zinc, and nickel, as well as their alloys, plated products, and metals treated with other metals such as zinc or chromium compounds. Metal foil is preferred, and copper foil is more preferred. The thickness of the metal foil is not particularly limited, but is preferably 1 μm or more, more preferably 3 μm or more, and even more preferably 10 μm or more. It is also preferably 50 μm or less, more preferably 30 μm or less, and even more preferably 20 μm or less. If the thickness is too thin, it may be difficult to obtain sufficient electrical performance of the circuit, while if the thickness is too thick, processing efficiency during circuit fabrication may be reduced. Metal foil is usually provided in a roll form. The form of the metal foil used in manufacturing the printed wiring board of the present invention is not particularly limited. When a ribbon-shaped metal foil is used, its length is not particularly limited. Its width is also not particularly limited, but is preferably about 250 to 500 cm. The surface roughness of the substrate is not particularly limited, but is preferably 3 μm or less, more preferably 2 μm or less, and even more preferably 1.5 μm or less. In practical terms, it is preferably 0.3 μm or more, more preferably 0.5 μm or more, and even more preferably 0.7 μm or more.
[0087] Examples of the paper include fine paper, kraft paper, roll paper, glassine paper, etc. Examples of the composite material include glass epoxy, etc.
[0088] In view of adhesive strength with the adhesive composition and durability, the substrate is preferably a polyester resin, a polyamide resin, a polyimide resin, a polyamideimide resin, a liquid crystal polymer, polyphenylene sulfide, syndiotactic polystyrene, a polyolefin resin, a fluorine-based resin, an SUS steel plate, a copper foil, an aluminum foil, or a glass epoxy.
[0089] <Adhesive Sheet> In the present invention, the adhesive sheet is formed by laminating the substrate and a release substrate via an adhesive composition. Specific configurations include substrate / adhesive layer / release substrate, or release substrate / adhesive layer / substrate / adhesive layer / release substrate. Laminating the release substrate functions as a protective layer for the substrate. Furthermore, by using a release substrate, the release substrate can be released from the adhesive sheet and the adhesive layer can be transferred to another substrate.
[0090] The adhesive sheet of the present invention can be obtained by applying the adhesive composition of the present invention to various laminates and drying them according to conventional methods. Furthermore, by attaching a release substrate to the adhesive layer after drying, the adhesive can be wound up without causing offset onto the substrate, resulting in excellent operability, and the adhesive layer is protected, resulting in excellent storage stability and ease of use. Furthermore, after application to a release substrate and drying, the adhesive layer itself can be transferred to another substrate by attaching another release substrate as needed.
[0091] The adhesive composition of the present invention preferably has a rate of change in dielectric loss tangent calculated, for example, by the following formula: 8 to 70%, more preferably 20 to 65%, and even more preferably 30 to 60%. Because the adhesive composition of the present invention contains the epoxy resin (A), the dielectric loss tangent can be significantly reduced from the B-stage product to the C-stage product. Rate of change in dielectric loss tangent (%) = (T B -T C ) / T B ×100 (in the above formula, T B : Dielectric loss tangent of a B-stage product obtained by applying the adhesive composition to a 100 μm thick Teflon (registered trademark) sheet so that the thickness after drying would be 25 μm and drying at 130° C. for 3 minutes C: Dielectric loss tangent of a C-stage product obtained by heat-treating the B-stage product at 180°C for 3 hours to harden it.
[0092] <Release Substrate> The release substrate is not particularly limited, but examples include paper such as fine paper, kraft paper, roll paper, and glassine paper, on both sides of which a coating layer of a filler such as clay, polyethylene, or polypropylene is provided, and each of these coating layers is further coated with a silicone-based, fluorine-based, or alkyd-based release agent. Other examples include various olefin films such as polyethylene, polypropylene, ethylene-α-olefin copolymer, and propylene-α-olefin copolymer alone, and films such as polyethylene terephthalate coated with the above-mentioned release agent. Due to factors such as the release force between the release substrate and the adhesive layer and the adverse effect of silicone on electrical properties, it is preferable to use a polypropylene-sealed film on both sides of fine paper and then apply an alkyd-based release agent thereon, or a polyethylene terephthalate film on which an alkyd-based release agent is applied.
[0093] In the present invention, the method for coating the adhesive composition on a substrate is not particularly limited, but examples include a comma coater, reverse roll coater, die coater, etc. Alternatively, if necessary, an adhesive layer can be applied directly or by transfer method to rolled copper foil or polyimide film, which are components of printed wiring boards. The thickness of the adhesive layer after drying can be adjusted as needed, but is preferably in the range of 5 to 200 μm. By making the adhesive film thickness 5 μm or more, sufficient adhesive strength can be obtained. Furthermore, by making the thickness 200 μm or less, it is easier to control the amount of residual solvent during the drying process, and blisters are less likely to occur during pressing in the production of printed wiring boards. While the drying conditions are not particularly limited, a residual solvent ratio of 1% by mass or less after drying is preferred. By making the residual solvent thickness 1% by mass or less, blisters due to residual solvent are suppressed during pressing of the printed wiring board, making blisters less likely to occur.
[0094] <Printed Wiring Board> The printed wiring board of the present invention includes, as a component, a laminate formed from a metal foil forming a conductor circuit and a resin substrate. The printed wiring board is manufactured by a conventionally known method such as a subtractive method using a metal-clad laminate, for example. The term "printed wiring board" collectively refers to so-called flexible circuit boards (FPCs), flat cables, circuit boards for tape automated bonding (TAB), etc., in which a conductor circuit formed from metal foil is partially or entirely covered with a cover film, screen printing ink, etc., as necessary.
[0095] The printed wiring board of the present invention can have any laminated structure that can be used as a printed wiring board. For example, it can be a printed wiring board consisting of four layers: a base film layer, a metal foil layer, an adhesive layer, and a cover film layer. Alternatively, it can be a printed wiring board consisting of five layers: a base film layer, an adhesive layer, a metal foil layer, an adhesive layer, and a cover film layer.
[0096] Furthermore, if necessary, two or more of the above printed wiring boards may be stacked.
[0097] The adhesive composition of the present invention can be suitably used in each adhesive layer of a printed wiring board. In particular, when the adhesive composition of the present invention is used as an adhesive, it exhibits high adhesion not only to conventional polyimide, polyester film, and copper foil constituting printed wiring boards, but also to low-polarity resin substrates such as LCP, and can achieve solder reflow resistance, and the adhesive layer itself has excellent low dielectric properties. Therefore, it is suitable as an adhesive composition for use in coverlay films, laminates, resin-coated copper foils, and bonding sheets.
[0098] In the printed wiring board of the present invention, any resin film conventionally used as a substrate for printed wiring boards can be used as the substrate film. Examples of resins for the substrate film include polyester resins, polyamide resins, polyimide resins, polyamideimide resins, liquid crystal polymers, polyphenylene sulfide, syndiotactic polystyrene, polyolefin resins, and fluorine-based resins. In particular, the film has excellent adhesion to low-polarity substrates such as liquid crystal polymers, polyphenylene sulfide, syndiotactic polystyrene, and polyolefin resins.
[0099] <Cover film> As the cover film, any insulating film conventionally known as an insulating film for printed wiring boards can be used. For example, films made from various polymers such as polyimide, polyester, polyphenylene sulfide, polyether sulfone, polyether ether ketone, aramid, polycarbonate, polyarylate, polyamide imide, liquid crystal polymer, syndiotactic polystyrene, and polyolefin resin can be used. Polyimide film or liquid crystal polymer film is more preferred.
[0100] The printed wiring board of the present invention can be manufactured by any conventionally known process, except for using the materials for each layer described above.
[0101] In a preferred embodiment, a semi-finished product is produced in which an adhesive layer is laminated on a cover film layer (hereinafter referred to as a "cover film side semi-finished product"). On the other hand, a semi-finished product is produced in which a metal foil layer is laminated on a base film layer to form a desired circuit pattern (hereinafter referred to as a "base film side two-layer semi-finished product"), or a semi-finished product is produced in which an adhesive layer is laminated on a base film layer and a metal foil layer is laminated on top of it to form a desired circuit pattern (hereinafter referred to as a "base film side three-layer semi-finished product"). The thus obtained cover film side semi-finished product and the base film side semi-finished product are bonded together to obtain a four-layer or five-layer printed wiring board.
[0102] The substrate film-side semi-finished product can be obtained, for example, by a manufacturing method including: (A) a step of applying a solution of a resin that will become the substrate film to the metal foil and initially drying the coating film; and (B) a step of heat-treating and drying the laminate of the metal foil and the initially dried coating film obtained in (A) (hereinafter referred to as the "heat treatment / solvent removal step").
[0103] The circuit can be formed on the metal foil layer by a conventionally known method. Either an additive method or a subtractive method may be used. The subtractive method is preferred.
[0104] The obtained semi-finished product on the base film side may be used as it is for bonding to the semi-finished product on the cover film side, or may be used for bonding to the semi-finished product on the cover film side after a release film has been attached and stored.
[0105] The cover film semi-finished product is produced, for example, by applying an adhesive to the cover film. If necessary, a crosslinking reaction can be carried out in the applied adhesive. In a preferred embodiment, the adhesive layer is semi-cured.
[0106] The obtained cover film side semi-finished product may be used as it is for bonding to the base film side semi-finished product, or may be used for bonding to the base film side semi-finished product after a release film has been attached and stored.
[0107] The substrate film-side semi-finished product and the cover film-side semi-finished product are stored, for example, in the form of a roll, and then bonded together to produce a printed wiring board. Any bonding method can be used, and for example, they can be bonded together using a press or a roll. They can also be bonded together while heating them using a heat press or a heat roll device.
[0108] For example, in the case of a reinforcing material that is soft and can be wound up, such as a polyimide film, the reinforcing material semi-finished product is preferably produced by applying an adhesive to the reinforcing material. Furthermore, in the case of a reinforcing plate that is hard and cannot be wound up, such as a metal plate such as SUS or aluminum, or a plate made of glass fiber cured with an epoxy resin (E), it is preferably produced by transfer-coating an adhesive that has been applied in advance to a release substrate. Furthermore, if necessary, a crosslinking reaction can be carried out in the applied adhesive. In a preferred embodiment, the adhesive layer is semi-cured.
[0109] The obtained semi-finished product on the reinforcing material side may be used as it is for bonding to the rear surface of a printed wiring board, or may be used for bonding to a semi-finished product on the base film side after a release film has been attached and stored.
[0110] The base film side semi-finished product, the cover film side semi-finished product, and the reinforcing material side semi-finished product are all laminates for printed wiring boards of the present invention.
[0111] This application claims the benefit of priority based on Japanese Patent Application No. 2023-187157, filed on October 31, 2023. The entire contents of the specification of Japanese Patent Application No. 2023-187157, filed on October 31, 2023, are incorporated herein by reference.
[0112] The present invention will be described in more detail below with reference to examples. In these examples and comparative examples, "parts" simply refers to parts by mass.
[0113] <Method for Evaluating Physical Properties> (Acid Value Measurement) The acid value (equivalent / 10 6 In g), the acid-modified resin was dissolved in toluene and titrated with a methanol solution of sodium methoxide using phenolphthalein as an indicator.
[0114] (Weight-Average Molecular Weight (Mw)) The weight-average molecular weight in the present invention is a value measured by gel permeation chromatography (hereinafter referred to as GPC, standard substance: polystyrene resin, mobile phase: tetrahydrofuran, column: Shodex KF-802 + KF-804L + KF-806L, column temperature: 30°C, flow rate: 1.0 ml / min, detector: RI detector) manufactured by Shimadzu Corporation.
[0115] (Measurement of Melting Point) The melting point in the present invention is a value measured using a differential scanning calorimeter (hereinafter referred to as DSC, manufactured by TA Instruments Japan, Q-2000) from the top temperature of the melting peak when the material is heated and melted at a rate of 20°C / min, cooled to form a resin, and then heated and melted again.
[0116] (Measurement of chlorine concentration in epoxy resin) 1 g of the epoxy resin used in the examples was dissolved in 25 ml of ethylene glycol monobutyl ether. 25 ml of a 1 N propylene glycol solution of potassium hydroxide was added to the solution, and the mixture was boiled for 20 minutes. The total amount of chlorine in the epoxy resin was then titrated with an aqueous silver nitrate solution to determine the chlorine concentration in the epoxy resin.
[0117] (Measurement of the Amount of Allyl Group-Containing Substances in Epoxy Resins) The amount of allyl group-containing substances in the epoxy resins used in the examples was measured using gas chromatography (Shimadzu Corporation, GC-2010Plus).
[0118] The following describes examples of producing adhesive compositions according to the present invention and comparative examples.
[0119] The acid-modified resin was produced as follows. (Production Example 1) 100 parts of a propylene-butene copolymer ("Tafmer (registered trademark) XM7080" manufactured by Mitsui Chemicals, Inc.), 150 parts of toluene, 19 parts of maleic anhydride, and 6 parts of di-tert-butyl peroxide were added to a 1 L autoclave, and the mixture was heated to 140°C and stirred for an additional 3 hours. The resulting reaction liquid was then cooled and poured into a container containing a large amount of methyl ethyl ketone to precipitate a resin. The resin-containing liquid was then centrifuged to separate and purify the acid-modified propylene-butene copolymer in which maleic anhydride had been graft-polymerized, (poly)maleic anhydride, and low-molecular-weight substances. The mixture was then dried under reduced pressure at 70°C for 5 hours to obtain a maleic anhydride-modified propylene-butene copolymer (acid-modified resin 1, acid value 367 equivalents / 10 6 The polymer had a weight average molecular weight of 60,000, a Tm of 80°C, and a ΔH of 35 J / g.
[0120] (Production Example 2) 100 parts of a cycloolefin polymer (ZEONEX (registered trademark) RS420 manufactured by Zeon Corporation), 150 parts of toluene, 19 parts of maleic anhydride, and 6 parts of di-tert-butyl peroxide were added to a 1 L autoclave, and the mixture was heated to 140°C and further stirred for 3 hours. Thereafter, the resulting reaction liquid was cooled and poured into a container containing a large amount of methyl ethyl ketone to precipitate a resin. Thereafter, the liquid containing the resin was centrifuged to separate and purify the acid-modified cycloolefin polymer graft-polymerized with maleic anhydride, (poly)maleic anhydride, and low-molecular-weight substances. Thereafter, the mixture was dried under reduced pressure at 70°C for 5 hours to obtain a maleic anhydride-modified cycloolefin polymer (acid-modified resin 2, acid value 339 equivalents / 10 6 The dielectric constant at a frequency of 10 GHz was 2.0, the dielectric loss tangent at a frequency of 10 GHz was 0.0008, and the weight average molecular weight was 90,000.
[0121] Other acid-modified resins used were as follows: (Acid-modified resin 3): Tuftec M1943 (manufactured by Asahi Kasei Corporation, a polymer obtained by hydrogenating the double bond portion of a block copolymer of styrene and butadiene, modified with maleic anhydride, acid value 185 equivalents / 10 6 g)
[0122] The following epoxy resins were used as the epoxy resin (A): Epoxy resin a1: EP-3980S (manufactured by ADEKA Corporation, N,N-(diglycidyl)-O-toluidine, epoxy value 8696 equivalents / 10 6 g, chlorine 700 ppm, allyl group-containing substances 0%) Epoxy resin a2: GOT (Nippon Kayaku Co., Ltd., N,N-(diglycidyl)-O-toluidine, epoxy value 8696 equivalents / 10 6 g, chlorine 5000 ppm, allyl group-containing substance 0%) Epoxy resin a3: GAN (Nippon Kayaku Co., Ltd., N,N-(diglycidyl)-aniline, epoxy value 7407 equivalents / 10 6 g, chlorine 5000 ppm, allyl group-containing substances 0%)
[0123] The following epoxy resins were used as the epoxy resin (B): Epoxy resin b1: EP-3900S (manufactured by ADEKA Corporation, epoxy value 10,000 equivalents / 10 6 g, chlorine 1200 ppm, allyl group-containing substances 0%) Epoxy resin b2: YL980 (manufactured by Mitsubishi Chemical Corporation, epoxy value 5376 equivalents / 10 6 g, chlorine 300 ppm, allyl group-containing substances 0%) Epoxy resin b3: CDMDG (manufactured by Resonac, epoxy value 7353 equivalents / 10 6 g, chlorine 0 ppm, allyl group-containing substances 8%)
[0124] The other components used were as follows: c1: Silica ("GT3SDC" manufactured by Denka Co., Ltd.) c2: Phosphine oxide flame retardant ("PQ-60" manufactured by Daiichi Kogyo Seiyaku Co., Ltd.) c3: Phosphorus-based antioxidant ("HOSTANOX (registered trademark) P-EPQ" manufactured by Clariant)
[0125] Example 1: 100 parts of acid-modified resin 1 and 3 parts of epoxy resin (A) were blended and dissolved in toluene to obtain a toluene adhesive composition (S1) with a solids concentration of 30%. The obtained adhesive composition (S1) was evaluated for its dielectric constant, dielectric loss tangent, peel strength, and solder heat resistance. The results are shown in Table 1.
[0126] Examples 2 to 16, Comparative Examples 1 to 7 Adhesive compositions (S2) to (S23) were prepared and evaluated in the same manner as in Example 1, except that the types and amounts of each component of the adhesive composition were changed as shown in Tables 1 and 2. The results are shown in Tables 1 and 2.
[0127] <Evaluation of Adhesive Composition> (Dielectric Constant (εc) and Dielectric Loss Tangent (tanδ)) The adhesive composition was applied to a 100 μm thick Teflon (registered trademark) sheet so that the thickness after drying would be 25 μm, and dried at 130°C for 3 minutes (B-stage product). The composition was then cured by heat treatment at 180°C for 3 hours, and the Teflon (registered trademark) sheet was peeled off to obtain an adhesive resin sheet for testing. The obtained adhesive resin sheet for testing was then cut into strips measuring 8 cm x 3 mm to obtain test samples (C-stage product). The dielectric constant (εc) and dielectric loss tangent (tanδ) were measured using a network analyzer (manufactured by Anritsu Corporation) by a cavity resonator perturbation method at a temperature of 23°C and a frequency of 10 GHz. After the measurement, the dielectric loss tangent T B , dielectric loss tangent T of C stage product C The rate of change in dielectric loss tangent was calculated based on the following formula: Rate of change in dielectric loss tangent (%) = (T B -T C ) / T B × 100 <Evaluation criteria for relative dielectric constant> ○: Less than 2.4 △: 2.4 or more and 2.6 or less ×: More than 2.6 <Evaluation criteria for dielectric dissipation factor> ◎: 0.0010 or less ○: More than 0.0010 and 0.0020 or less △: More than 0.0020 and 0.0040 or less ×: More than 0.0040
[0128] (Peel Strength (Adhesion)) The adhesive composition was applied to a 12.5 μm thick polyimide film (Apical (registered trademark), manufactured by Kaneka Corporation) so that the dried thickness would be 25 μm, and then dried at 130°C for 3 minutes. The adhesive film (B-stage product) thus obtained was then bonded to an 18 μm thick rolled copper foil (ESPANEX series, manufactured by Nippon Steel Chemical & Material Co., Ltd.). The bonding was performed by pressing the rolled copper foil with the shiny side in contact with the adhesive layer at 170°C under a pressure of 2 MPa for 280 seconds to bond the foil. The foil was then heat-treated at 180°C for 3 hours to cure the film, and a sample for peel strength evaluation was obtained. The peel strength was measured at 25°C, with a film pull speed of 50 mm / min and a 90° peel angle. This test indicates the adhesive strength at room temperature. <Evaluation criteria> ○: 1.0 N / mm or more △: 0.7 N / mm or more and less than 1.0 N / mm ×: Less than 0.7 N / mm
[0129] (Soldering heat resistance) Evaluation samples were prepared in the same manner as for measuring peel strength, and a 2.0 cm x 2.0 cm sample piece was immersed in a solder bath, and the upper limit temperature at which no change in appearance, such as swelling, occurred was recorded. <Evaluation criteria> ○: No change in appearance at 290°C or higher △: No change in appearance at 260°C or higher but lower than 290°C, and change in appearance at 290°C or higher ×: Change in appearance at lower than 260°C
[0130]
[0131]
[0132] As is clear from Table 1, Examples 1 to 16 are excellent in dielectric properties, peel strength, and solder heat resistance. Comparing Examples 1, 4, and 7 (as well as Examples 2, 5, 8, 3, 6, and 9) reveals that the dielectric properties can be changed by varying the content and type of glycidyl ether epoxy resin (B). Comparing Example 15 with Examples 1 and 14 reveals that blending an epoxy resin (A) with greater steric hindrance, as in Examples 1 and 14, can improve the dielectric dissipation factor. Comparing Examples 1 and 14 in particular reveals that reducing the amount of chlorine in the adhesive composition is effective in obtaining an adhesive composition with low dielectric properties (especially low dielectric dissipation factor). Comparing Examples 4, 7, and 16 reveals that, when an epoxy resin (B) is included, blending an epoxy resin b1 encompassed by formula (II-A) or an epoxy resin b3 encompassed by formula (III-A) rather than an epoxy resin b2 encompassed by formula (II-B) can yield an adhesive composition with excellent low dielectric properties and solder heat resistance.
[0133] On the other hand, in Comparative Examples 1 to 3, since no epoxy resin (A) was contained and only epoxy resin (B) was contained, the dielectric loss tangent deteriorated. In Comparative Examples 4 to 6, since no epoxy resin (A) was contained and the amount of epoxy resin (B) was smaller than in Comparative Examples 1 to 3, the dielectric loss tangent improved, but the crosslink density decreased and the solder heat resistance deteriorated. In Comparative Example 7, although epoxy resin (A) was contained, a large amount of epoxy resin (B) was contained, so the dielectric properties deteriorated.
[0134] Furthermore, it can be seen that the adhesive compositions of Examples 1 to 16 containing epoxy resin (A) exhibit a significant decrease in dielectric tangent from the B-stage to the C-stage product. Comparing Examples 4 to 6 with Examples 7 to 9, it can be seen that when the adhesive composition contains epoxy resin (B), the dielectric tangent decreases from the B-stage to the C-stage product when epoxy resin b1 of Formula (II-A) containing a glycidylamino group, which, like epoxy resin (A), is easily inhibited from moving atoms after curing, is blended with epoxy resin b2 of Formula (II-B), resulting in a lower dielectric tangent from the B-stage to the C-stage product. Furthermore, comparing Example 7 with Example 16, it can be seen that the dielectric tangent decreases from the B-stage to the C-stage product when epoxy resin b3 of Formula (III-A), which is an aliphatic epoxy, is blended with epoxy resin b2 of Formula (II-B), resulting in an aromatic epoxy. This is presumably because aliphatic epoxy resins have better compatibility with resins, allowing the reaction with the resin to proceed more efficiently.
[0135] The adhesive composition of the present invention has excellent solder heat resistance and adhesive strength, and a good dielectric constant and dielectric loss tangent, and is therefore useful as an adhesive or adhesive sheet for FPCs in the high frequency range.
Claims
1. An adhesive composition comprising an acid-modified resin and an epoxy resin (E), wherein the epoxy resin (E) comprises an epoxy resin (A) represented by formula (I), and the content of a glycidyl ether type epoxy resin (B) contained as the epoxy resin (E) is 5 parts by mass or less per 100 parts by mass of the acid-modified resin. [In formula (I), R 1 ~R 5 Each independently represents a hydrogen atom or C 1-10 represents an alkyl group.
2. The adhesive composition according to claim 1, wherein the acid-modified resin is at least one selected from the group consisting of acid-modified polystyrene resins, acid-modified cycloolefin polymers and acid-modified polyolefins.
3. The acid value of the acid-modified resin is 10 to 1000 equivalents / 10 6 2. The adhesive composition according to claim 1, wherein 4. The adhesive composition according to claim 1, wherein the content of the epoxy resin (A) is 0.01 parts by mass or more and 20 parts by mass or less per 100 parts by mass of the acid-modified resin.
5. An adhesive composition as described in claim 1, in which the ratio represented by (total epoxy value of the epoxy resin (E) / total acid value of the acid-modified resin) is 0.5 or more and 10.0 or less.
6. The adhesive composition according to claim 1, wherein the content of the epoxy resin (A) is 70 mass% or more in 100 mass% of the epoxy resin (E).
7. The adhesive composition according to claim 1, wherein the content of the epoxy resin (B) is 25 mass% or less in 100 mass% of the epoxy resin (E).
8. In the above formula (I), R 1 and / or R 5 C 1-10 2. The adhesive composition according to claim 1, wherein the alkyl group is an alkyl group.
9. An adhesive composition according to claim 1, wherein the total amount of the epoxy resin (A) and the glycidyl ether type epoxy resin (B) is 50 mass% or more in 100 mass% of the epoxy resin (E).
10. The adhesive composition according to claim 1, wherein the glycidyl ether type epoxy resin (B) is an epoxy resin having a chemical structure represented by formula (II) or formula (III) in the molecule. [In formula (II), R 6 ~R 9 Each independently represents a hydrogen atom or C 1-10 represents an alkyl group. * represents a bond. [In formula (III), R 26 ~R 29 Each independently represents a hydrogen atom or C 1-10 represents an alkyl group. * represents a bond.
11. The adhesive composition according to claim 1, which does not contain the glycidyl ether type epoxy resin (B).
12. The adhesive composition according to claim 1, which contains the glycidyl ether type epoxy resin (B), and the content of the glycidyl ether type epoxy resin (B) is 0.5 parts by mass or more and 5 parts by mass or less per 100 parts by mass of the acid-modified resin.
13. The adhesive composition according to claim 1, wherein the chlorine concentration is 0.01 to 300 ppm based on the solid content of the adhesive composition.
14. The adhesive composition according to any one of claims 1 to 13, which is used for printed wiring boards.
15. An adhesive sheet comprising a resin substrate, a metal substrate or a paper substrate and a release substrate laminated together via the adhesive composition according to any one of claims 1 to 13.
16. The adhesive sheet according to claim 15, wherein the rate of change in dielectric tangent calculated based on the following formula is 8 to 70%. B -T C ) / T B ×100 (in the above formula, T B : Dielectric tangent of a B-stage product obtained by applying the adhesive composition to a Teflon (registered trademark) sheet having a thickness of 100 μm so that the thickness after drying is 25 μm and drying at 130° C. for 3 minutes C : Dielectric loss tangent of a C-stage product obtained by heat-treating the B-stage product at 180°C for 3 hours to harden it.
17. A laminate in which the adhesive composition according to any one of claims 1 to 13 is laminated to a substrate which is a resin substrate, a metal substrate or a paper substrate.
18. A printed wiring board comprising the laminate according to claim 17 as a component.
Citation Information
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