Resin composition for flux, electronic component, method for manufacturing electronic component, mounting structure, and method for manufacturing mounting structure
A flux resin composition with high-Tg epoxy resins and a high-melting imidazole compound enhances solder joint reliability and stability, addressing the limitations of existing fluxes by integrating reinforcement without residue removal steps.
Patent Information
- Application Number
- JP2022508199
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-17
- Filing Date
- 2021-03-03
- Publication Date
- 2025-08-18
- Estimated Expiration
- 2041-03-03
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Figure 0007724477000008 
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Figure 0007724477000010
Abstract
Description
[Technical Field]
[0001] The present disclosure generally relates to a flux resin composition, an electronic component, a method for manufacturing an electronic component, a mounting structure, and a method for manufacturing a mounting structure. More specifically, the present disclosure relates to a flux resin composition, an electronic component including a cured product of the flux resin composition and a method for manufacturing the electronic component, and a mounting structure including a cured product of the flux resin composition and a method for manufacturing the electronic component. [Background technology]
[0002] Flux used in soldering chemically removes metal oxides present on the solder alloy and the metal surfaces of the objects being soldered, allowing the migration of metal elements at the interface between the two. Therefore, soldering using flux allows the formation of intermetallic compounds between the solder alloy and the metal surfaces of the objects being soldered, resulting in a strong bond. Generally, flux used in soldering contains components that do not decompose or evaporate during reflow, so these remain around the solder as flux residue after soldering.
[0003] In recent years, as automobiles have become more sophisticated, the number of electronic devices installed in vehicles has increased and the locations where they are installed have become more diverse. In this environment, electronic devices are exposed to increasingly harsh environments, and depending on the location where they are installed, they may be exposed to heat cycles of -40°C to 85°C during use.
[0004] On the other hand, in-vehicle devices are becoming smaller and more functional, and the soldered areas are becoming smaller. As a result, the soldered joints themselves are becoming smaller, making it more difficult to ensure the reliability of the soldered areas against heat cycles.
[0005] To address this issue, soldered areas can be reinforced by covering them with underfill or resin molding material to ensure reliability. However, this requires cleaning off the flux residue before reinforcement, which can be time-consuming and costly.
[0006] Therefore, in order to eliminate the need for cleaning, a method has been proposed in which a thermosetting resin is blended into the flux and the flux residue is used as a reinforcing material.Patent Document 1 discloses a flux that combines bisphenol A epoxy resin as the thermosetting resin, which hardens after soldering, thereby achieving both the reinforcement of the solder joint and the elimination of cleaning. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] International Publication No. 2015 / 146473 Summary of the Invention
[0008] The impact on the soldered joint due to the heat cycle increases in proportion to the difference in the linear expansion coefficient between the objects being soldered. Therefore, this impact is mitigated by the use of a reinforcing material. However, the curable resin material used as the reinforcing material generally has a Tg (glass transition temperature), and the linear expansion coefficient increases sharply above the Tg. Therefore, to maximize the reinforcing effect of the reinforcing material, the Tg of the reinforcing material must be higher than the temperature range of the heat cycle.
[0009] The flux described in Patent Document 1 contains an epoxy resin, and therefore exhibits a certain shear strength of the solder balls. However, the epoxy resin used is only bisphenol A type, and the flux contains a large amount of long-chain dibasic acid, so the Tg of the cured product (flux residue) is low and the heat cycle resistance may be poor. Furthermore, since the long-chain dibasic acid is a compound that reacts with the epoxy resin, the flux has poor storage stability, making continuous production difficult.
[0010] An object of the present disclosure is to provide a resin composition for flux that functions as a flux, and that produces a cured product, which is a flux residue, that has a high Tg (glass transition temperature) and good storage stability.
[0011] A resin composition for flux according to one embodiment of the present disclosure includes an epoxy resin (A), an imidazole compound (B), a thixotropic agent (C), and an activator (D). The epoxy resin (A) contains at least one selected from the group consisting of naphthalene-type epoxy resins, biphenylaralkyl-type epoxy resins, trisphenolmethane-type epoxy resins, biphenyl-type epoxy resins, and dicyclopentadiene-type epoxy resins in an amount of 20% by weight or more based on the total weight of the epoxy resin (A).
[0012] An electronic component according to one aspect of the present disclosure includes an electronic component body, a conductor, a solder bump, and a reinforcing portion. The conductor is formed on a surface of the electronic component body. The bump is disposed on the conductor. The bump is electrically connected to the conductor. The reinforcing portion is a cured product of the flux resin composition. The reinforcing portion reinforces the joint between the conductor and the bump.
[0013] A method for manufacturing an electronic component according to an aspect of the present disclosure includes applying the flux resin composition to a joint between the conductor and the bump, and then curing the flux resin composition.
[0014] A mounting structure according to one embodiment of the present disclosure comprises a circuit board, an electronic component, a solder bump, and a reinforcing portion. The circuit board comprises a first conductor. The electronic component comprises a second conductor. The bump is disposed between the first conductor and the second conductor. The bump electrically connects the first conductor and the second conductor. The reinforcing portion is a cured product of the flux resin composition. The reinforcing portion reinforces at least one of the joint between the first conductor and the bump and the joint between the second conductor and the bump.
[0015] A method for manufacturing a mounting structure according to one aspect of the present disclosure includes applying the flux resin composition to at least one of a joint between the first conductor and the bump and a joint between the second conductor and the bump, and then curing the flux resin composition. [Brief explanation of the drawings]
[0016] [Figure 1] FIG. 1 is a graph showing an example of a reflow profile when a resin composition for flux according to an embodiment of the present disclosure and solder are heated. [Figure 2] FIG. 2 is a schematic cross-sectional view illustrating an example of an electronic component according to an embodiment of the present disclosure. [Figure 3] 3A to 3C are schematic cross-sectional views showing an example of a method for manufacturing the electronic component. [Figure 4] 4A to 4C are schematic cross-sectional views showing an example of a mounting structure according to an embodiment of the present disclosure. [Figure 5] 5A to 5C are schematic cross-sectional views showing an example of a method for manufacturing the above mounting structure. DETAILED DESCRIPTION OF THE INVENTION
[0017] 1. Overview The resin composition for flux of this embodiment (hereinafter also referred to as resin composition (X)) contains an epoxy resin (A), an imidazole compound (B), a thixotropic agent (C), and an activator (D). The epoxy resin (A) contains at least one selected from the group consisting of naphthalene-type epoxy resins, biphenylaralkyl-type epoxy resins, trisphenolmethane-type epoxy resins, biphenyl-type epoxy resins, and dicyclopentadiene-type epoxy resins in an amount of 20% by weight or more of the total epoxy resin (A).
[0018] Naphthalene-type epoxy resins, biphenylaralkyl-type epoxy resins, trisphenolmethane-type epoxy resins, biphenyl-type epoxy resins, and dicyclopentadiene-type epoxy resins have two or more cyclic structures per molecule, and therefore tend to have higher glass transition temperatures (Tg) in their cured products than epoxy resins that do not have two or more cyclic skeletons per molecule. This is thought to be because the presence of the cyclic skeleton restricts the movement of the molecular chain. Specifically, naphthalene-type epoxy resins, biphenylaralkyl-type epoxy resins, trisphenolmethane-type epoxy resins, biphenyl-type epoxy resins, and dicyclopentadiene-type epoxy resins tend to have cured products with glass transition temperatures of 85°C or higher.
[0019] The flux resin composition of the present embodiment has the advantages that, when connecting a bump and a conductor, the cured product has a high glass transition temperature, resulting in high reliability of the reinforcing portion, and the flux resin composition has good storage stability, resulting in good productivity.
[0020] It is also preferable to use an imidazole compound (B) having a melting point of 130° C. or higher. In this case, the imidazole compound (B) is unlikely to melt at temperatures below 130° C. This makes it difficult for the reaction between the epoxy resin (A) and the imidazole compound (B) to proceed, improving the storage stability of the resin composition (X).
[0021] 2.Details The resin composition (X), electronic component 100 (see FIG. 2), the method for manufacturing electronic component 100 (see FIGS. 3A to 3C), mounting structure 1 (see FIGS. 4A to 4C), and the method for manufacturing mounting structure 1 (see FIGS. 5A to 5C) of this embodiment will be described in detail below.
[0022] 2-1.Resin composition (X) As described above, the resin composition (X) of this embodiment contains the epoxy resin (A), the imidazole compound (B), the thixotropic agent (C), and the activator (D). The epoxy resin (A), the imidazole compound (B), the thixotropic agent (C), and the activator (D) will be described in detail below.
[0023] (1) Epoxy resin (A) The epoxy resin (A) is a compound having an epoxy group and has the property of being cured by heating. Therefore, the epoxy resin (A) can impart thermosetting properties to the resin composition (X). The epoxy resin (A) preferably has two or more epoxy groups per molecule, and in this case, it is more easily cured than an epoxy resin having only one epoxy group per molecule.
[0024] The epoxy resin (A) is preferably liquid at room temperature. When the epoxy resin (A) is liquid at room temperature, it becomes easier to mix the epoxy resin (A) with other components in the resin composition (X). Here, being liquid at room temperature means having fluidity under atmospheric pressure and at an ambient temperature of 5°C or higher and 28°C or lower (particularly around 20°C). Therefore, the epoxy resin (A) may be composed only of components that are liquid at room temperature, or may be composed of components that are liquid at room temperature and components that are not liquid at room temperature, or the epoxy resin (A) may be liquid at room temperature due to a reactive diluent, solvent, etc.
[0025] The epoxy resin (A) includes an epoxy resin (A1) and an epoxy resin (A2) other than the epoxy resin (A1).
[0026] The epoxy resin (A1) contains at least one selected from the group consisting of naphthalene-type epoxy resins, biphenylaralkyl-type epoxy resins, trisphenolmethane-type epoxy resins, biphenyl-type epoxy resins, and dicyclopentadiene-type epoxy resins, which can easily improve the glass transition temperature of the cured resin composition (X).
[0027] Naphthalene-type epoxy resins are epoxy resins containing one or more naphthalene skeletons in one molecule, and the rigid and hydrophobic naphthalene skeletons can increase the glass transition temperature of the cured product of the resin composition (X).
[0028] The biphenylaralkyl epoxy resin is an epoxy resin containing one or more aralkyl skeletons having a biphenyl group in one molecule, and since the aralkyl skeleton contains a rigid biphenyl group, the glass transition temperature of the cured product of the resin composition (X) can be increased.
[0029] The trisphenolmethane epoxy resin is an epoxy resin having three phenylmethane-skeleton epoxy groups in one molecule, and because of its high functional group (epoxy group) density, it can increase the glass transition temperature of the cured product of the resin composition (X).
[0030] Dicyclopentadiene epoxy resins are epoxy resins having one or more dicyclopentadiene skeletons in one molecule, and the rigid dicyclopentadiene skeleton can increase the glass transition temperature of the cured product of the resin composition (X).
[0031] The epoxy resin (A1) preferably has an epoxy group equivalent in the range of 100 or more and 500 or less.
[0032] Examples of the epoxy resin (A1) include HP-4302D (semi-solid, manufactured by DIC Corporation) as a naphthalene type epoxy resin represented by formula (1), HP-4700 (softening point 85°C-95°C, manufactured by DIC Corporation) and HP-4710 (softening point 85°C-105°C, manufactured by DIC Corporation) as a naphthalene type epoxy resin represented by formula (2), and HP-4710 (softening point 85°C-105°C, manufactured by DIC Corporation) as a naphthalene type epoxy resin represented by formula (3). Examples of the naphthalene-type epoxy resins represented by formula (4) include EXA-4750 (softening point 80°C, manufactured by DIC Corporation), HP-4770 (softening point 67°C-77°C, manufactured by DIC Corporation), and examples of the mixtures of the naphthalene-type epoxy resins represented by formulas (5) and (6) include HP-6000 (softening point 65°C-85°C, manufactured by DIC Corporation) and HP-6000L (softening point 59°C, manufactured by DIC Corporation).
[0033] Examples of the trisphenolmethane type epoxy resin represented by formula (7) include HP-7241 (softening point 66°C, manufactured by DIC Corporation), examples of the trisphenolmethane type epoxy resin represented by formula (8) include HP-7250 (semi-solid, manufactured by DIC Corporation), and examples of the trisphenolmethane type epoxy resin represented by formula (9) include EPPN-501H (softening point 51°C-57°C, manufactured by Nippon Kayaku Co., Ltd.), EPPN-501HY (softening point 57°C-63°C, manufactured by Nippon Kayaku Co., Ltd.), and EPPN-502H (softening point 60°C-72°C, manufactured by Nippon Kayaku Co., Ltd.).
[0034] Examples of the biphenylaralkyl epoxy resin represented by formula (10) include NC-3000 (softening point 53°C-63°C, manufactured by Nippon Kayaku Co., Ltd.), NC-3000L (softening point 45°C-60°C, manufactured by Nippon Kayaku Co., Ltd.), NC-3000-H (softening point 65°C-75°C, manufactured by Nippon Kayaku Co., Ltd.), and NC-3100 (softening point 90°C-103°C, manufactured by Nippon Kayaku Co., Ltd.).
[0035] Examples of biphenyl type epoxy resins represented by formula (11) include YH4000 (softening point 105° C., manufactured by Mitsubishi Chemical Corporation) and YX4000H (softening point 105° C., manufactured by Mitsubishi Chemical Corporation).
[0036] Examples of dicyclopentadiene-type epoxy resins represented by formula (12) include HP-7200 (softening point 56°C-66°C, manufactured by DIC Corporation), HP-7200L (softening point 50°C-60°C, manufactured by DIC Corporation), HP-7200H (softening point 78°C-88°C, manufactured by DIC Corporation), HP-7200HH (softening point 88°C-98°C, manufactured by DIC Corporation), HP-7200HHH (softening point 100°C-110°C, manufactured by DIC Corporation), and XD-1000 (softening point 68°C-78°C, manufactured by Nippon Kayaku Co., Ltd.).
[0037] [ka]
[0038] [ka]
[0039] [ka]
[0040] [ka]
[0041] The epoxy resin (A2) may contain one or more components selected from the group consisting of, for example, glycidyl ether type epoxy resins, glycidyl amine type epoxy resins, glycidyl ester type epoxy resins, olefin oxide type (alicyclic) epoxy resins, bisphenol type epoxy resins such as bisphenol A type epoxy resins and bisphenol F type epoxy resins, hydrogenated bisphenol type epoxy resins such as hydrogenated bisphenol A type epoxy resins and hydrogenated bisphenol F type epoxy resins, alicyclic epoxy resins, phenol novolac type epoxy resins, cresol novolac type epoxy resins, aliphatic epoxy resins, and triglycidyl isocyanurate.
[0042] The epoxy resin (A2) particularly preferably contains any one of a bisphenol A epoxy resin, a bisphenol F epoxy resin, a hydrogenated bisphenol A epoxy resin, and a hydrogenated bisphenol F epoxy resin, which makes it easy to reduce the viscosity of the resin composition (X) and improve the physical properties of the cured product of the resin composition (X).
[0043] The epoxy resin (A1) is preferably contained in an amount of 20% by weight or more relative to the total epoxy resin (A). In this case, the glass transition temperature of the cured product of the resin composition (X) can be increased. The epoxy resin (A1) is more preferably contained in an amount of 25% by weight or more relative to the total epoxy resin (A), and particularly preferably contained in an amount of 30% by weight or more. If the epoxy resin (A) is composed entirely of the epoxy resin (A1), it may become solid and become impossible to supply. Therefore, the epoxy resin (A1) is preferably contained in an amount of 80% by weight or less relative to the total epoxy resin (A). The remainder of the epoxy resin (A) other than the epoxy resin (A1) can be composed of the epoxy resin (A2).
[0044] (2) Imidazole Compound (B) The imidazole compound (B) is a curing agent for the epoxy resin (A). The resin composition (X) must harden after functioning as a flux during reflow. In this embodiment, the high melting point of the imidazole compound (B) makes it difficult for the imidazole compound (B) to function as a curing agent at temperatures between room temperature and the melting point of the solder bump, and curing of the epoxy resin is therefore slow. Therefore, during this time, the resin composition (X) acts as a flux. Then, when the temperature is further increased above the melting point of the solder bump, after soldering is completed, the imidazole compound (B) begins to function as a curing agent, causing ring-opening polymerization of the epoxy resin (A) and the imidazole compound (B) to proceed, and the resin composition (X) hardens. The hardened resin composition (X) then acts as the reinforcing part 4.
[0045] The imidazole compound (B) is preferably a solid having a melting point of 130°C or higher. In this case, the imidazole compound (B) is difficult to melt at temperatures below 130°C (for example, 25°C) and remains solid, making it less likely to mix with the epoxy resin (A) than when the imidazole compound (B) is in liquid form. This makes it possible to inhibit the reaction between the epoxy resin (A) and the imidazole compound (B) from proceeding.
[0046] Examples of the imidazole compound (B) include 2-methylimidazole (manufactured by Shikoku Chemical Industries, Ltd., product number: 2MZ-H, melting point 140-148°C), 2-phenylimidazole (manufactured by Shikoku Chemical Industries, Ltd., product number: 2PZ, 2PZ-PW, melting point 137-147°C), 2-phenyl-4-methylimidazole (manufactured by Shikoku Chemical Industries, Ltd., product number: 2P4MZ, melting point 174-184°C), 2,4-diamino-6-[2' -methylimidazolyl-(1')]-ethyl-s-triazine (manufactured by Shikoku Chemical Industries, Ltd., product numbers 2MZ-A and 2MZA-PW, melting point 248-268°C), 2,4-diamino-6-[2'-undecylimidazolyl-(1')]-ethyl-s-triazine (manufactured by Shikoku Chemical Industries, Ltd., product number C11Z-A, melting point 187-195°C), 2,4-diamino-6-[2'-ethyl-4'-methylimidazolyl-(1')]-ethyl-s-triazine (manufactured by Shikoku Chemical Industries, Ltd., product number C11Z-A, melting point 187-195°C), 2,4-Diamino-6-[2'-methylimidazolyl-(1')]-ethyl-s-triazine (manufactured by Shikoku Chemical Industries, Ltd., product number: 2E4MZ-A, melting point 215-225°C), 2,4-diamino-6-[2'-methylimidazolyl-(1')]-ethyl-s-triazine isocyanuric acid adduct (manufactured by Shikoku Chemical Industries, Ltd., product number: 2MA-OK, 2MAOK-PW, melting point 260°C), 2-phenylimidazole isocyanuric acid adduct (manufactured by Shikoku Chemical Industries, Ltd. One or more compounds can be selected from the group consisting of 2-phenyl-4,5-dihydroxymethylimidazole (manufactured by Shikoku Kasei Co., Ltd., product number: 2PZ-OK, melting point 140°C), 2-phenyl-4,5-dihydroxymethylimidazole (manufactured by Shikoku Kasei Co., Ltd., product number: 2PHZ-PW, melting point 230°C), and 2-phenyl-4-methyl-5-hydroxymethylimidazole (manufactured by Shikoku Kasei Co., Ltd., product number: 2P4MHZ-PW, melting point 191-195°C).
[0047] The form of the solid imidazole compound (B) is not particularly limited. do not have Preferably, the imidazole compound (B) is in the form of, for example, powder, granules, or particles. In this case, it is easy to achieve both the suppression of reaction of the resin composition (X) at room temperature and the rapid curing of the resin composition (X) during reflow. When the imidazole compound (B) is in the form of powder or the like, its average particle size is preferably 0.5 μm or more and 50 μm or less, but is not limited thereto. The average particle size can be determined, for example, by the median diameter (D50) of the particle size distribution obtained using a laser diffraction / scattering method.
[0048] (3) Thixotropic agent (C) The thixotropic agent (C) is a compound that imparts thixotropy to the resin composition (X). Here, "thixotropy" refers to the property of a substance's viscosity decreasing when subjected to shear stress. Thixotropy is quantified by the thixotropic ratio, which can be obtained, for example, by measuring two viscosities at a constant temperature while changing the rotational speed of a rotational viscometer and calculating the ratio of the two viscosities. The rotational speed of the rotational viscometer is, for example, 2.5 rpm and 10 rpm at 25°C.
[0049] The resin composition (X) preferably has a viscosity of 35 Pa·s or more and 280 Pa·s or less at 25° C. and 10 rpm, and a thixotropic ratio of 1.5 or more and 5.5 or less.
[0050] The thixotropic agent (C) can be, for example, one or more selected from the group consisting of 1,3:2,4-bis-O-benzylidene-D-glucitol (dibenzylidene sorbitol) (manufactured by New Japan Chemical Co., Ltd., product name: Gelall D), 1,3:2,4-bis-O-(4-methylbenzylidene)-D-sorbitol (manufactured by New Japan Chemical Co., Ltd., product name: Gelall MD), and N,N'-methylenebis(stearamide) (manufactured by Mitsubishi Chemical Corporation, product name: Bisamide LA).
[0051] (4) Activator (D) Since the activator (D) has the function of removing metal oxide films, the inclusion of the activator (D) in the resin composition (X) can impart a fluxing effect to the resin composition (X). Here, the "fluxing effect" refers to the reducing effect of removing oxide films formed on metal surfaces to which solder is applied, and the effect of reducing the surface tension of molten solder to promote the wettability of the solder to the joining metal surfaces.
[0052] The activator (D) preferably contains at least one of an organic acid (D1) having a carboxyl group equivalent of 40 g / mol to 400 g / mol and a melting point of 220°C or less, and an amine (D2) having a nitrogen atom equivalent of 10 g / mol to 300 g / mol and a melting point of 220°C or less. Since the activator (D) has a melting point of 220°C or less, even when using solder with a melting point near or above 200°C, the oxide film on the solder can be removed before melting the solder. Here, "carboxyl group equivalent" refers to a value expressed as molar molecular weight (g) / number of carboxyl groups (mol) per molecule, and "nitrogen atom equivalent" refers to a value expressed as molar molecular weight (g) / number of nitrogen atoms (mol) per molecule.
[0053] The organic acid (D1) may include, for example, at least one selected from the group consisting of rosin component materials, adipic acid, glutaric acid, succinic acid, malonic acid, citric acid, suberic acid, sebacic acid, and pimelic acid. The organic acid (D1) is particularly preferably succinic acid (carboxyl group equivalent: 59 g / mol), glutaric acid (carboxyl group equivalent: 66 g / mol), adipic acid (carboxyl group equivalent: 73 g / mol), suberic acid (carboxyl group equivalent: 87 g / mol), sebacic acid (carboxyl group equivalent: 101 g / mol), or Tsunodyme 395 (carboxyl group equivalent: 288 g / mol).
[0054] The amine (D2) is not particularly limited as long as it is an amine that can be used as a flux, and can include, for example, at least one selected from the group consisting of various amine salts, alkanolamines, and guanidines. Particularly preferred amines (D2) include diethanolamine (nitrogen atom equivalent: 105 g / mol), triethanolamine (TEA) (nitrogen atom equivalent: 149 g / mol), triisopropanolamine (nitrogen atom equivalent: 191 g / mol), 1,3-diphenylguanidine (nitrogen atom equivalent: 70 g / mol), and 1,3-di-o-tolylguanidine (nitrogen atom equivalent: 80 g / mol).
[0055] The activator (D) may contain a component other than the organic acid (D1) and the amine (D2). The activator (D) may contain an organic acid or amine having a melting point of more than 220°C.
[0056] (5) Other ingredients (E) The resin composition (X) may contain a component (E) other than the epoxy resin (A), the imidazole compound (B), the thixotropic agent (C), and the activator (D). The component (E) may contain, for example, a component modifier such as rosin, a filler, a solvent, etc.
[0057] (6) Content of each ingredient In the resin composition (X), the proportion of the epoxy resin (A) is preferably 70% by weight or more and 94.7% by weight or less, based on a total of 100% by weight of the epoxy resin (A), imidazole compound (B), thixotropic agent (C), and activator (D). In this case, the glass transition temperature of the resin composition (X) after curing can be increased, and the storage stability of the resin composition (X) can be improved. The proportion of the epoxy resin (A) is more preferably 72.5% by weight or more and 92.5% by weight or less, and particularly preferably 75% by weight or more and 90% by weight or less, based on a total of 100% by weight of the epoxy resin (A), imidazole compound (B), thixotropic agent (C), and activator (D).
[0058] The proportion of the epoxy resin (A1) is preferably 17.5 to 70% by weight, based on 100% by weight of the total of the epoxy resin (A), the imidazole compound (B), the thixotropic agent (C), and the activator (D), and particularly preferably 20 to 67.5% by weight, which allows the glass transition temperature of the cured product of the resin composition (X) to be increased.
[0059] In the resin composition (X), the proportion of the imidazole compound (B) is preferably 0.05% by weight or more and 2.4% by weight or less, and particularly preferably 0.075% by weight or more and 2.35% by weight or less, relative to 100% by weight of the total of the epoxy resin (A), the imidazole compound (B), the thixotropic agent (C), and the activator (D). In this case, the storage stability of the resin composition (X) is improved.
[0060] In the resin composition (X), the proportion of the thixotropic agent (C) is preferably 0.75% by weight or more and 5.55% by weight or less relative to the total weight of the epoxy resin (A), imidazole compound (B), thixotropic agent (C), and activator (D). This allows the resin composition (X) to have a viscosity of 35 Pa·s or more and 280 Pa·s or less at 25°C and 10 rpm, and a thixotropic ratio (2.5 rpm / 10 rpm) of 1.5 or more and 5.5 or less, making it suitable for application by printing, transfer printing, dispenser, and other methods. If the thixotropic ratio is less than 1.5, it is difficult for the resin composition (X) to maintain its shape after application by printing, and bridging is likely to occur. On the other hand, if the blending amount of the thixotropic agent (C) is high and the thixotropic ratio exceeds 5.5, the resin composition (X) will not easily be released from the printing mask, making it prone to chipping. It is particularly preferable that the proportion of the thixotropic agent (C) is 0.9% by weight or more and 5.3% by weight or less, and the viscosity at 25°C and 10 rpm can be 40 Pa·s or more and 260 Pa·s or less, and the thixotropic ratio can be 2 or more and 5 or less.
[0061] In the resin composition (X), the proportion of the activator (D) is preferably 4.25% by weight or more and 23% by weight or less, and particularly preferably 4.75% by weight or more and 22% by weight or less, relative to 100% by weight of the total of the epoxy resin (A1), the imidazole compound (B), the thixotropic agent (C), and the activator (D). In this case, the resin composition (X) can be endowed with fluxing properties and exhibit good storage stability.
[0062] (7) Properties The resin composition (X) according to this embodiment has excellent storage stability, since the time it takes for the value calculated from (viscosity after storage / viscosity at the start of storage) × 100(%) to reach 120% after storage at 25°C is 24 hours or more (a property corresponding to the "life" described below). Furthermore, the resin composition (X) according to this embodiment has a solder ball wetting spreadability of 50% or more before and after reflow (a property corresponding to the "wetting spreadability" described below). Therefore, the resin composition (X) according to this embodiment has excellent solder wettability during reflow. Furthermore, the resin composition (X) according to this embodiment has a glass transition temperature of 85°C or higher after curing (a property corresponding to the "glass transition temperature (Tg)" described below). Therefore, the cured product has excellent reinforcing properties at the solder joints.
[0063] 2-2. Electronic components and their manufacturing methods The structure of electronic component 100 using resin composition (X) and the method for producing the same will be described below.
[0064] (1) Electronic component configuration The electronic component 100 of this embodiment will be described with reference to Fig. 2. Note that the configuration of the electronic component 100 shown below is merely an example, and the configuration of the electronic component 100 is not limited to the following content.
[0065] The electronic component 100 is, but is not limited to, a surface-mount semiconductor chip, for example, which is, but is not limited to, a BGA (ball grid array), a WLP (wafer level package), or the like.
[0066] The electronic component 100 includes an electronic component body 200, a conductor 210, a solder bump 30, and a reinforcing portion 4.
[0067] The conductor 210 is formed on the surface of the electronic component body 200, and therefore the conductor 210 is exposed to the outside at the surface of the electronic component body 200. When the electronic component 100 is a WLP, the electronic component body 200 includes, for example, a silicon substrate on which a rewiring layer is provided, and the conductor 210 is, for example, a pillar electrically connected to the rewiring layer. When the electronic component 100 is a BGA, the electronic component body 200 is, for example, a package formed by sealing a die mounted on a substrate with a sealing resin, and the conductor 210 is, for example, an electrode pad electrically connected to the die. The structure of the electronic component body 200 is not limited to the above, and may be any appropriate structure depending on the type of electronic component 100.
[0068] The bump 30 is disposed on the conductor 210 and is electrically connected to the conductor 210. Therefore, a seam 20 is formed between the bump 30 and the conductor 210. The bump 30 is not particularly limited, but may be made of, for example, SAC solder or tin-copper (Sn-Bi) solder. The Sn-Bi solder may contain, in addition to Sn and Bi, at least one material selected from the group consisting of Ag, Ni, Fe, Ge, Cu, and In. To improve the mechanical performance of the Sn-Bi solder, it is preferable that the Sn-Bi solder contain at least one material selected from the group consisting of Ag, Ni, Fe, and Ge.
[0069] Reinforcing portion 4 is a cured product of resin composition (X). In electronic component 100, reinforcing portion 4 is attached to the outside of joint 20 between bump 30 and conductor 210. That is, in electronic component 100, a cured product of resin composition (X) is attached to the outside of joint 20 between bump 30 and conductor 210. Therefore, reinforcing portion 4 can reinforce joint 20 between bump 30 and conductor 210, thereby improving the connection reliability of electronic component 100.
[0070] (2) Manufacturing methods for electronic components A method for manufacturing electronic component 100 will now be described with reference to FIGS. 3A to 3C.
[0071] First, electronic component body 200 including conductor 210 is prepared, and resin composition (X) is arranged so as to cover conductor 210 (see FIG. 3A). The method for arranging resin composition (X) is not particularly limited, but can be performed by, for example, a printing method such as an inkjet method, a transfer method, or the like.
[0072] Next, the bumps 30 are placed above the conductors 210 so that the bumps 30 are in contact with the resin composition (X) (see FIG. 3B). As the bumps 30, for example, solder balls can be used.
[0073] Next, the bumps 30 and the resin composition (X) are heated in the state shown in Fig. 3B. The heating method is not particularly limited, but heating in a reflow furnace, for example, can be used. In this case, the bumps 30 and the resin composition (X) can be heated according to the reflow profile shown in Fig. 1, for example.
[0074] The fluxing properties of the resin composition (X) and the method for producing a reinforcing portion that reinforces the joint between the conductor and the solder bump will be described below.
[0075] Bumps made of solder are placed on a conductor, and by melting these bumps, the conductor and the bumps can be electrically connected. By attaching a cured product of a resin composition (X) to the joint between the conductor and the bumps, the joint between the conductor and the bumps can be reinforced. For example, with the resin composition (X) disposed between the conductor and the bumps, the bumps and the resin composition (X) are heated. As the viscosity of the resin composition (X) decreases with heating, the resin composition (X) acts as a flux while flowing. As the resin composition (X) flows, the bumps come into contact with the conductor. While the resin composition (X) maintains its fluidity, the bumps melt and adhere to the conductor. At this time, the resin composition (X) adheres to the outside of the joint between the conductor and the bumps, and by curing in that state, a reinforcing portion is produced. Thereby, the conductor and the bumps are electrically connected, and reinforcement can be achieved by fixing a reinforcing portion, which is a cured product of the resin composition (X), to the outside of the joint between the conductor and the bumps. To melt the bumps, the bumps and the resin composition (X) are heated to a temperature higher than the melting point of the solder.
[0076] Examples of the heating temperature profile and the viscosity change of the resin composition (X) when electrically connecting the conductor and the bumps and producing a reinforcing portion are shown in the graph of FIG. 1. In the graph of FIG. 1, the dashed line indicates the heating temperature, and the solid line indicates the viscosity of the resin composition (X). T3 (°C) in the figure is the melting point of the bumps, and T1 (°C) and T2 (°C) are specific temperatures that satisfy the relationship room temperature < T1 < T2 < T3.
[0077] As shown in FIG. 1, first, the heating temperature is raised from room temperature to T1 (°C). Subsequently, the heating temperature is raised to T2 (°C). Subsequently, the heating temperature is raised to a temperature (peak temperature) higher than T3 (°C). Subsequently, the heating temperature is lowered to room temperature.
[0078] The melting point T3 (°C) of the bumps depends on the composition of the solder that constitutes the bumps. For example, in the case of Sn-Ag-Cu (SAC) - based solder, T3 (°C) is 217 °C or higher and 230 °C or lower.
[0079] T1 (°C) is preferably set to a temperature close to the temperature at which the resin composition (X) starts to melt. T1 (°C) is not particularly limited, but is, for example, 140°C or higher and 160°C or lower.
[0080] T2 (°C) is preferably set to a temperature higher than T1 (°C) and lower than the temperature at which the resin composition (X) begins to cure. T2 is not particularly limited, but is, for example, 160°C or higher and 200°C or lower. The peak temperature is preferably set to a temperature higher than T3 (°C) and higher than the temperature at which the resin composition (X) begins to cure. The peak temperature is not particularly limited, but is, for example, 232°C or higher and 255°C or lower. The rate of temperature rise when the heating temperature rises from room temperature to T1 (°C) is not particularly limited, but is, for example, 5°C / second or less. The time required for the heating temperature to rise from T1 (°C) to T2 (°C) is not particularly limited, but is, for example, 60 seconds or higher and 100 seconds or less. The rate of temperature rise when the heating temperature rises from T2 (°C) to the peak temperature (°C) is, for example, 4°C / second or less. The time during which the heating temperature is at or above T3 (°C) is not particularly limited, but is, for example, 30 seconds or higher and 90 seconds or less.
[0081] As shown in FIG. 1, the viscosity of the resin composition (X) decreases around T1 (°C) and the resin composition (X) begins to flow. The "melting" in FIG. 1 refers to the melting of the epoxy resin (A). The time from the start of heating until the resin composition (X) begins to flow can be controlled by controlling the rate at which the heating temperature is increased from room temperature to T1 (°C). As shown in FIG. 1, even when the heating temperature is increased from T1 (°C) to T2 (°C), the resin composition (X) maintains a low viscosity. Therefore, by controlling the rate at which the temperature is increased from T1 (°C) to T2 (°C), the time during which the resin composition (X) maintains its fluidity can be controlled. This allows the resin composition (X) to flow sufficiently, thereby preventing voids from forming in the reinforcing portion 4.
[0082] As shown in Figure 1, when the heating temperature increases from T2 (°C) toward the peak temperature, the viscosity of the resin composition (X) does not increase significantly for a while even after the heating temperature exceeds T3 (°C), and the resin composition (X) maintains its fluidity, followed by a rapid increase in viscosity. In other words, even after the heating temperature exceeds the melting point of the solder, the resin composition (X) tends to maintain its fluidity for a while. As a result, the flow of the resin composition (X) facilitates contact of the bump with the conductor and facilitates fusion of the bump to the conductor. Furthermore, the self-alignment effect of the molten bump is not easily inhibited by the resin composition (X). Furthermore, because the resin composition (X) contains an activator (D), the fluxing action of the activator (D) can rapidly remove the oxide film on the solder during the heating temperature increase from T2 (°C) to T3 (°C) and before curing. As shown in Figure 1, the activity of the activator (D) continues even after the viscosity of the resin composition (X) increases due to the ring-opening and polymerization of the epoxy resin (A). This allows for a good connection between the conductor and the solder, and further reduces the occurrence of poor electrical continuity.
[0083] When the resin composition (X) adheres to the joint between the conductor and the solder, polymerization occurs due to the ring-opening of the epoxy group. As a result, the resin composition (X) hardens, creating a reinforcing part that adheres to the outside (outer surface) of the joint between the conductor and the solder. As shown in Figure 1, the viscosity of the resin composition (X) continues to increase even when the heating temperature drops from the peak temperature to room temperature. This allows the resin composition (X) to quickly harden while remaining attached to the outside of the joint between the conductor and the solder.
[0084] The reason why resin composition (X) can achieve such viscosity behavior is thought to be due to the high melting point of imidazole compound (B). Because the melting point of imidazole compound (B) is 130°C or higher, the curing reaction of resin composition (X) is unlikely to proceed between T1 (°C) and T3 (°C), and therefore resin composition (X) can maintain a low viscosity.
[0085] Furthermore, even when the heating temperature drops from the peak temperature to room temperature, the resin composition (X) cures quickly because the temperature of the resin composition (X) does not drop suddenly but remains above a temperature sufficient for the curing reaction between the epoxy resin (A) and the imidazole compound (B) to proceed for a certain period of time. This results in the formation of an ideal three-dimensional cross-linked structure, resulting in a cured product with a high glass transition temperature (Tg). If the resin composition (X) is applied to the electronic component 100 shown in Figure 2, it is possible to produce a reinforcing portion 4 that adheres to the outside of the joint 20 between the conductor 210 and the bump 32 of the electronic component body 200.
[0086] Furthermore, by applying the resin composition (X) to the mounting structure 1 shown in FIG. 4A, when the first conductor 21 of the circuit board 2 is connected to the bump 32, a reinforcing portion 4 can be produced that adheres to the joint 20 between the first conductor 21 and the bump 32.
[0087] The resin composition (X) of this embodiment may be used to produce a reinforcing part that covers the joint between the conductor and the bump after the conductor and the bump are electrically connected.
[0088] As described above, the resin composition (X) maintains a low viscosity until the bump 30 melts. Even when the bump 30 starts to melt, the viscosity of the resin composition (X) does not increase immediately, but rather rises sharply after a while. Therefore, the resin composition (X) can be cured after adhering to the outside of the joint 20 between the conductor 210 and the bump 30. This allows the conductor 210 and the bump 30 to be well connected. This prevents poor electrical continuity between the conductor 210 and the bump 30. Furthermore, the cured resin composition (X) can be fixed to the outside of the joint 20 between the conductor 210 and the bump 30. This allows the joint 20 between the conductor 210 and the bump 30 to be reinforced.
[0089] 2-3. Mounting structure and its manufacturing method (1) Mounting structure The mounting structure 1 of this embodiment will be described with reference to Figures 4A to 4C. Note that the configuration of the mounting structure 1 shown below is merely an example, and the configuration of the mounting structure 1 is not limited to the following content.
[0090] The mounting structure 1 includes a circuit board 2, an electronic component 3, bumps 32, and a reinforcing portion 4.
[0091] The circuit board 2 is, for example, a motherboard, a package board, or an interposer board. For example, the circuit board 2 is an insulating board made of glass epoxy, polyimide, polyester, ceramic, or the like. A first conductor 21 is formed on the surface of the circuit board 2. Therefore, the circuit board 2 includes the first conductor 21. The first conductor 21 is not particularly limited, but is, for example, a wiring formed of a conductor containing a metal such as copper or a copper alloy. The first conductor 21 may also include a plating layer, such as a nickel plating layer, a nickel-gold plating layer, or a gold plating layer, on its surface.
[0092] The electronic component 3 is, for example, a semiconductor chip, and more specifically, a flip-chip chip such as a BGA (ball grid array), an LGA (land grid array), or a CSP (chip-sized package). The electronic component 3 may also be a PoP (package-on-package) chip. A second conductor 31 is formed on the surface of the electronic component 3. Thus, the electronic component 3 includes the second conductor 31. The second conductor 31 is, but is not limited to, an electrode pad formed of a conductor containing a metal such as copper or a copper alloy. The second conductor 31 may also include a plating layer, such as a nickel plating layer, a nickel-gold plating layer, or a gold plating layer, on its surface.
[0093] The bumps 32 are fixed between the first conductors 21 of the circuit board 2 and the second conductors 31 of the electronic component 3. The bumps 32 electrically connect the first conductors 21 and the second conductors 31. The bumps 32 can be made of solder. In this case, the type of solder is not particularly limited, but may be, for example, SAC solder (lead-free solder) or tin-copper (Sn-Bi) solder.
[0094] The reinforcing portion 4 is a cured product of the resin composition (X). In the mounting structure 1, the reinforcing portion 4 is attached to the outside of the joint 20 between the bump 32 and the first conductor 21. Therefore, the reinforcing portion 4 can reinforce the joint 20 between the bump 32 and the first conductor 21, improving the connection reliability of the mounting structure 1. Note that if the connection reliability is low, repeated application of stress caused by environmental temperature changes and the like may result in fatigue failure.
[0095] In the mounting structure 1 shown in Fig. 4A, the reinforcing portion 4 is attached to the outside (outer surface) of the joint 20 between the first conductor 21 and the bump 32 of the circuit board 2, but this is not limiting. For example, as in the mounting structure 1 shown in Fig. 4B, the reinforcing portion 4 may be attached to the outside of the joint 20 between the second conductor 31 and the bump 32 of the electronic component 3. Furthermore, as in the mounting structure 1 shown in Fig. 4C, for example, the reinforcing portion 4 may be attached to the outside of the joint 20 between the first conductor 21 and the bump 32 of the circuit board 2, and the reinforcing portion 4 may also be attached to the outside of the joint 20 between the second conductor 31 and the bump 32 of the electronic component 3.
[0096] 4A and 4C, when the interval between adjacent first conductors 21 is small (narrow pitch), or when the interval between adjacent second conductors 31 is small in the mounting structure 1 shown in FIGS. 4B and 4C, adjacent reinforcing portions 4 may be connected to each other and integrated. Furthermore, in the mounting structure 1 shown in FIGS. 4A to 4C, all of the reinforcing portions 4 may be connected. That is, the surface of the circuit board 2 may be covered with the reinforcing portions 4, or the surface of the electronic component 3 may be covered with the reinforcing portions 4.
[0097] 4C , the reinforcing portion 4 attached to the outside of the joint 20 between the first conductor 21 and the bump 32 and the reinforcing portion 4 attached to the outside of the joint 20 between the second conductor 31 and the bump 32 may be connected and integrated. However, if the bump 32 is heated multiple times at a temperature equal to or higher than the melting point of the solder constituting the bump 32 (e.g., in a reflow process or repair process), the internal pressure may increase when the solder remelts, potentially causing solder flash. If solder flash occurs, the expansion of the bump 32 may destroy the first conductor 21 and the second conductor 31. For this reason, it is preferable that the reinforcing portion 4 attached to the outside of the joint 20 between the first conductor 21 and the bump 32 and the reinforcing portion 4 attached to the outside of the joint 20 between the second conductor 31 and the bump 32 are not integrated.
[0098] (2) Manufacturing method of mounting structure A method for manufacturing the mounting structure 1 shown in FIG. 4A will be described below with reference to FIGS. 5A to 5C.
[0099] First, a circuit board 2 having first conductors 21 is prepared, and a resin composition (X) is arranged so as to cover the first conductors 21 (see FIG. 5A). The method for arranging the resin composition (X) is not particularly limited, and can be, for example, by printing, transferring, applying, or the like.
[0100] Next, an electronic component 3 is prepared that includes a second conductor 31. Bumps 32 are provided on the second conductor 31, and the second conductor 31 and the bumps 32 are electrically connected. This electronic component 3 is placed on the circuit board 2 so that the bumps 32 come into contact with the resin composition (X) (see FIG. 5B).
[0101] Next, in the state shown in Fig. 5B, the bumps 32 and the resin composition (X) are heated. The heating method is not particularly limited, but for example, heating in a reflow furnace can be used. In this case, the bumps 32 and the resin composition (X) can be heated according to the reflow profile shown in Fig. 1, for example.
[0102] As described in the above section "2-2. Electronic Components and Manufacturing Methods Thereof," the resin composition (X) maintains a low viscosity until the bumps 32 melt. Even when the bumps 32 begin to melt, the viscosity of the resin composition (X) does not increase immediately, but rather rises sharply after a while. Therefore, the resin composition (X) can be cured after covering the outside of the joints 20 between the first conductors 21 and the bumps 32. This allows the first conductors 21 and the bumps 32 to be well connected, preventing poor electrical connection between the first conductors 21 and the bumps 32. Furthermore, the cured resin composition (X) can be adhered to the outside of the joints 20 between the first conductors 21 and the bumps 32. Therefore, the joints 20 between the first conductors 21 and the bumps 32 can be reinforced with the reinforcing portion 4.
[0103] In the above-described method for manufacturing the mounting structure 1, the bumps 32 are provided on the second conductors 31, but the present invention is not limited to this. For example, the bumps 32 may be provided on the first conductors 21. In this case, the resin composition (X) is disposed so as to cover the second conductors 31, and when connecting the second conductors 31 and the bumps 32, the resin composition (X) can be applied to the outside of the joints 20 between the second conductors 31 and the bumps 32, and then the resin composition (X) can be cured. In this case, the outside of the joints 20 between the second conductors 31 and the bumps 32 can be reinforced by the reinforcing portion 4, as in the mounting structure 1 shown in FIG. 4B . [Example]
[0104] 1. Preparation of Resin Composition Resin compositions were obtained by mixing the components shown in Tables 1 to 3 in the ratios shown in Tables 1 to 3. Details of the components shown in Tables 1 to 3 are as follows. HP-6000L: A mixture of naphthalene-type epoxy resins represented by formula (5) and formula (6), epoxy group equivalent 215, manufactured by DIC Corporation. HP-4032D: naphthalene-type epoxy resin represented by formula (1), epoxy group equivalent weight 136 to 148, manufactured by DIC Corporation. HP-7250: Trisphenolmethane type epoxy resin represented by formula (8), epoxy group equivalent 162, manufactured by DIC Corporation. NC-3000-H: biphenyl aralkyl type epoxy resin represented by formula (10), epoxy group equivalent weight 280 to 300, manufactured by Nippon Kayaku Co., Ltd. YX4000H: Biphenyl-type epoxy resin represented by formula (11), epoxy group equivalent weight 187 to 197, manufactured by Mitsubishi Chemical Corporation. HP-7200HHH: Dicyclopentadiene type epoxy resin represented by formula (12), epoxy group equivalent weight 280 to 292, manufactured by DIC Corporation. YD8125: Bisphenol-type epoxy resin that is liquid at 25°C, manufactured by Nippon Steel Chemical & Material Co., Ltd. YDF8170: Bisphenol-type epoxy resin that is liquid at 25°C, manufactured by Nippon Steel Chemical & Material Co., Ltd. 2PHZ-PW: 2-phenyl-4,5-dihydroxymethylimidazole, melting point 230°C, manufactured by Shikoku Chemicals Corporation. 2P4MHZ-PW: 2-phenyl-4-methyl-5-hydroxymethylimidazole, melting point 191°C to 195°C, manufactured by Shikoku Chemicals Corporation. 2PZ-PW: 2-phenylimidazole, melting point 137℃~147℃, manufactured by Shikoku Chemicals Corporation. 2MAOK-PW: 2,4-diamino-6-[2'-methylimidazolyl-(1')]-ethyl-s-triazine isocyanuric acid adduct, melting point 260°C, manufactured by Shikoku Chemicals Corporation. 1,2-DMZ: Melting point 36°C, manufactured by Shikoku Chemicals Corporation. Adipic Acid: Adipic acid, manufactured by Tokyo Chemical Industry Co., Ltd. · Succinic acid: Succinic acid, manufactured by Tokyo Chemical Industry Co., Ltd. TEA: Triethanolamine, manufactured by Tokyo Chemical Industry Co., Ltd. · 1,3-Diphenylguanidine: 1,3-Diphenylguanidine, manufactured by Tokyo Chemical Industry Co., Ltd. Tsunodim 395: Contains 94% dimer acid. Manufactured by Tsuno Foods Co., Ltd. Gelall D: 1,3:2,4-bis-O-benzylidene-D-glucitol (dibenzylidene sorbitol), manufactured by New Japan Chemical Co., Ltd. Gelall MD: 1,3:2,4-bis-O-(4-methylbenzylidene)-D-sorbitol, manufactured by New Japan Chemical Co., Ltd. Bisamide LA: N,N'-methylenebis(stearamide), manufactured by Mitsubishi Chemical Corporation. DEDG: Diethylene glycol diethyl ether, manufactured by Nippon Nyukazai Co., Ltd. HEDG: Diethylene glycol monohexyl ether, manufactured by Nippon Nyukazai Co., Ltd.
[0105] 2. Evaluation (1) Viscosity The viscosity (Pa s) of the resin compositions of Examples 1 to 18 and Comparative Examples 1 to 10 was measured at 25°C and 10 rpm. An E-type viscometer (manufactured by Toki Sangyo Co., Ltd., model number RE-215U) was used to measure the viscosity. The results are shown in Tables 1 and 2 below.
[0106] (2) Thixotropy The thixotropic ratios at 25° C. were measured for the resin compositions of Examples 1 to 18 and Comparative Examples 1 to 10. The thixotropic ratios were calculated by dividing the viscosity at 2.5 rpm by the viscosity at 10 rpm.
[0107] (3) Printability The printability was evaluated by printing the resin compositions of Examples 1 to 18 and Comparative Examples 1 to 10 onto a substrate having a Φ250 μm, 0.5 mmP Ni—Au pad (conductor) using a printer, and observing the printed state under a microscope. A: There is no problem with the shape. B: Bridges and chips are present, but do not pose any practical problems. C: Bridges, many chips.
[0108] (4) Glass transition temperature (Tg) The glass transition temperatures of the resin compositions of Examples 1 to 18 and Comparative Examples 1 to 10 after curing were measured by thermomechanical analysis (TMA, in accordance with JIS K 7197:1991). A:Above 85°C. B: 80℃ or higher but less than 85℃. C:Below 80℃.
[0109] (5) Wetting and spreading rate The wetting and spreading ratio is calculated on the copper plate using the diameter D of the solder ball before reflow and the height H of the solder ball after reflow as {(DH) / D} x 100(%). The wetting and spreading ratio was calculated using a method in accordance with JIS Z 3198-3, and reflow was performed according to the reflow profile shown in Figure 1. A: Over 60%. B: 50% or more but less than 60%. C: Less than 50%.
[0110] (6) Life The life is defined as the time from the start of storage to the end of storage. That is, the life is calculated by (viscosity after storage / viscosity at the start of storage) x 100 (%) and judged as the time when the viscosity reaches 120% (storage temperature: 25°C, viscosity measured in the same manner as in (1)). A: More than 24 hours. B: More than 20 hours but less than 24 hours. C: Less than 20 hours.
[0111] (7) Overall rating The overall evaluation was made based on the results of the printability, wet spreadability, and life evaluation, using the following criteria. A: The printability, wetting and spreading rate, and life evaluation all received an A rating. B: In the evaluations of printability, wetting and spreading rate, and life, there was one or more B ratings and no C ratings. C: One or more C ratings in the evaluations of printability, wet spread rate, and life.
[0112] The results of the above evaluations are shown in Tables 1 to 3 below.
[0113] [Table 1]
[0114] [Table 2]
[0115] [Table 3]
[0116] In Example 1-3, the glass transition point is higher than that of Comparative Example 1-2, which indicates that it is preferable to include the epoxy resin (A1) in the resin composition (X) in an amount ranging from 17.5% by weight to 70% by weight.
[0117] In Examples 4-7, the printability and wet spreadability are better than in Comparative Example 4. From this, it is considered preferable to contain 0.75% by weight or more and 5.55% by weight or less of the thixotropic agent (C) relative to the resin composition (X). However, when Example 4 is compared with Examples 5, 6, and 7, the results are even better in Examples 5, 6, and 7, and it is considered particularly preferable to contain 0.9% by weight or more and 5.3% by weight or less of the thixotropic agent (C) relative to the resin composition (X).
[0118] Examples 8-11 have better wetting and spreading rates and life than Comparative Example 6. This indicates that the imidazole compound (B) preferably has a melting point of 130°C or higher. Furthermore, a comparison of Examples 8-11 with Comparative Examples 7 and 8 indicates that the imidazole compound (B) is preferably contained in an amount of 0.05% by weight or more and 2.4% by weight or less. Furthermore, a comparison of Example 8 with Examples 9, 10, and 11 indicates that the imidazole compound (B) is particularly preferably contained in an amount of 0.1% by weight or more and 2.35% by weight or less.
[0119] Comparing Examples 12-15 with Comparative Example 9, Comparative Example 9 had a low activator (D) content, resulting in poor wet spreadability. On the other hand, Comparative Example 10 had an excessively high activator (D) content, resulting in poor printability, glass transition temperature, wet spreadability, and life compared to Examples 12-15. For these reasons, it is considered preferable that the activator (D) content be 4.25% by weight or more and 23% by weight or less. Furthermore, comparing Examples 12 and 15 with Examples 13 and 14, the results of Examples 13 and 14 were favorable, and it is considered that an activator (D) content of 4.75% by weight or more and 22% by weight or less is particularly preferable.
[0120] Examples 16 to 18 gave good results, and it was found that an epoxy resin having a biphenylaralkyl skeleton, a biphenyl skeleton, or a dicyclopentadiene skeleton can also be used as the epoxy resin (A1). [Explanation of symbols]
[0121] 1 Implementation structure 2 Circuit Boards 3. Electronic Components 20 seams 21 First Conductor 30, 32 bump 31 Second Conductor 100 Electronic Components 200 Electronic component body 210 Conductor
Claims
1. The composition contains an epoxy resin (A), an imidazole compound (B), a thixotropic agent (C), and an activator (D), the epoxy resin (A) contains 20% by weight or more and 80% by weight or less of an epoxy resin (A1) based on the total weight of the epoxy resin (A), and the remainder is an epoxy resin (A2) other than the epoxy resin (A1); the epoxy resin (A1) is at least one selected from the group consisting of biphenylaralkyl-type epoxy resins, trisphenolmethane-type epoxy resins, biphenyl-type epoxy resins, and dicyclopentadiene-type epoxy resins, relative to the total amount of the epoxy resin (A), the imidazole compound (B), the thixotropic agent (C), and the activator (D), The proportion of the epoxy resin (A) is 70% by weight or more and 94.7% by weight or less, the proportion of the imidazole compound (B) is 0.05% by weight or more and 2.4% by weight or less, The proportion of the thixotropic agent (C) is 0.75% by weight or more and 5.55% by weight or less, The proportion of the activator (D) is 4.25% by weight or more and 23% by weight or less, The imidazole compound (B) has a melting point of 130°C or higher, the time from the start of storage at 25°C until the value calculated by (viscosity after storage / viscosity at the start of storage) x 100 (%) reaches 120% is 24 hours or more, The wetting and spreading rate of the solder balls before and after reflow is 50% or more, The glass transition temperature of the cured product is 85°C or higher, The wetting and spreading ratio is calculated by a method in accordance with JIS Z 3198-3 using the diameter D of the solder balls of the Sn-Ag-Cu solder before reflow on a copper plate and the height H of the solder balls after reflow from {(D-H) / D} x 100(%), and the reflow is performed according to a temperature profile in which the temperature is increased to a curing temperature of the resin composition for flux, which is a temperature higher than the melting temperature of the solder balls, and then decreased to a temperature lower than the melting temperature of the solder balls. Resin composition for flux.
2. The rotational speed of a rotational viscometer is set to 2.5 rpm and 10 rpm at 25°C, the viscosity (25°C, 10 rpm) is 35 Pa·s or more and 280 Pa·s or less, and the thixotropy ratio calculated from (viscosity at 2.5 rpm) / (viscosity at 10 rpm) is 1.5 or more and 5.5 or less. The resin composition for flux according to claim 1.
3. An electronic component body; a conductor formed on a surface of the electronic component body; a solder bump disposed on the conductor and electrically connected to the conductor; A cured product of the resin composition for flux according to claim 1 or 2, comprising a reinforcing portion that reinforces a joint between the conductor and the bump. Electronic components.
4. A method for manufacturing an electronic component according to claim 3, comprising: The flux resin composition according to claim 1 or 2 is applied to the joint between the conductor and the bump, and then cured. Manufacturing methods for electronic components.
5. A circuit board having a first conductor; an electronic component including a second conductor; a solder bump disposed between the first conductor and the second conductor and electrically connecting the first conductor and the second conductor; 3. A cured product of the flux resin composition according to claim 1, further comprising a reinforcing portion that reinforces at least one of a joint between the first conductor and the bump and a joint between the second conductor and the bump. Implementation structure.
6. A method for manufacturing the mounting structure according to claim 5, the flux resin composition according to claim 1 or 2 is applied to at least one of the joint between the first conductor and the bump and the joint between the second conductor and the bump, and then cured; A method for manufacturing a mounting structure.
Citation Information
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