Resin composition, resin-coated metal foil, metal-clad laminate sheet, and capacitor element
A resin composition with coated dielectric particles addresses capacitance and breakdown voltage issues by using a controlled coating of hydrated aluminum oxide on high dielectric metal oxides, enhancing dispersibility and reducing leakage current.
Patent Information
- Application Number
- JP2022553782
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-12-16
- Filing Date
- 2021-09-14
- Publication Date
- 2025-08-28
- Estimated Expiration
- 2041-09-14
AI Technical Summary
Existing capacitor elements face challenges in achieving high capacitance without compromising breakdown voltage due to insulation failures from increased packing density of dielectric particles, and surface coatings like aluminum oxide react with impurities or form aggregates leading to leakage current.
A resin composition with coated particles having a core of high dielectric metal oxides like BaTiO3 and a thin, uniform coating of hydrated aluminum oxide, controlled within specific atomic ratios, to enhance dispersibility and suppress leakage current.
The solution effectively suppresses leakage current and improves dispersibility, thereby increasing breakdown voltage and capacitance while maintaining stable dielectric properties.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a resin composition. The present invention also relates to a resin-coated metal foil, a metal-clad laminate sheet, and a capacitor element each having the resin composition. [Background technology]
[0002] As capacitor elements become smaller, there is a demand for higher capacitance of the dielectrics used in the capacitor elements, particularly for capacitor elements built into printed wiring boards. Capacitor elements built into printed wiring boards generally include a resin layer containing particles of a dielectric and a binder. To increase the capacitance of a capacitor element having this structure, it is possible to reduce the thickness of the resin layer, but this may result in a disadvantage that the breakdown voltage decreases. It is also possible to increase the capacitance of a capacitor element by increasing the dielectric constant of the resin layer. A simple way to increase the dielectric constant of the resin layer is to increase the packing density of the dielectric particles contained in the resin layer. However, increasing the packing density of the dielectric particles can lead to insulation failure due to leakage current.
[0003] In addition to the above-mentioned techniques, Patent Documents 1 and 2 propose a technique of coating the surfaces of dielectric particles with an aluminum compound. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2002-367856 [Patent Document 2] Japanese Patent Publication No. 2020-57667 Summary of the Invention
[0005] In the technology described in Patent Document 1, the surfaces of dielectric particles are coated with aluminum oxide. However, when the surfaces of dielectric particles are coated with aluminum oxide, they are prone to react with impurities (e.g., moisture), and it is not easy to stably control the coating state suitable for achieving high capacitance. In the technology described in Patent Document 2, the surfaces of dielectric particles are coated with hydrated aluminum oxide. However, in this document, hydrated aluminum oxide aggregates are formed, which may increase the leakage current of the resin composition and reduce the dispersibility of the particles in the resin and the binding ability of the resin. Therefore, an object of the present invention is to improve a resin composition that is suitable for use as a dielectric layer of a capacitor element, and more specifically, to provide a resin composition that suppresses leakage current and has sufficient binding properties.
[0006] The present invention provides a resin composition containing coated particles having a core containing a metal oxide and a coating layer containing a hydrated oxide of aluminum disposed on the surface of the core, and a resin, The metal oxide is M x O y (M represents at least one element selected from the group consisting of Ba, Ti, Sr, Pb, Zr, La, Ta, Ca, and Bi; x and y represent numbers determined from a stoichiometric ratio according to the valence of the metal element M), The above-mentioned problem has been solved by providing a resin composition in which, when particles contained in the resin composition are analyzed by XPS, the atomic ratio Al / (M+Al) is 0.05 or more and 0.7 or less.
[0007] The present invention also provides a resin-coated metal foil comprising a metal foil and a layer made of the resin composition provided on at least one surface of the metal foil.
[0008] Furthermore, the present invention provides a heat insulating film comprising a first metal foil, a second metal foil, and a resin composition layer sandwiched between the two metal foils, The present invention provides a metal-clad laminate sheet, wherein the resin composition layer is made of a cured product of the resin composition.
[0009] The present invention also provides a capacitor element having the metal-clad laminate sheet. [Brief explanation of the drawings]
[0010] [Figure 1(a)] FIG. 1(a) is a transmission electron microscope image of the coated particles obtained in Production Example 1. [Figure 1(b)] The left side of Figure 1(b) is a transmission electron microscope image of the coated particle obtained in Production Example 1 after cross-section processing, and the right side is an element mapping image in the same field of view. [Figure 2(a)] FIG. 2( a ) is a transmission electron microscope image of the coated particles obtained in Production Example 10. [Figure 2(b)] The left side of Figure 2(b) is a transmission electron microscope image of the coated particles obtained in Production Example 10 after cross-section processing, and the right side is an element mapping image in the same field of view. [Figure 3] FIG. 3 shows the results of analysis of the coated particles obtained in Production Examples 6 and 1 by XAFS (X-ray absorption fine structure analysis). DETAILED DESCRIPTION OF THE INVENTION
[0011] The present invention will be described below based on preferred embodiments. The present invention relates to a resin composition. This resin composition contains specific particles and a resin, and the particles are dispersed in a matrix containing the resin. The particles and resin will be described below.
[0012] The particles contained in the resin composition of the present invention are composite particles having a core and a coating layer disposed on the surface of the core. Hereinafter, such composite particles will also be referred to as "coated particles."
[0013] The core portion of the coated particle is the portion that occupies the majority of the volume of the coated particle and is located in the central region of the coated particle. The core portion is composed of a metal oxide. As the metal oxide, a substance with a high relative dielectric constant is preferably used. In particular, the metal oxide is preferably M x O y (M represents at least one element selected from the group consisting of Ba, Ti, Sr, Pb, Zr, La, Ta, Ca, and Bi; x and y represent numbers determined from the stoichiometric ratio according to the valence of the metal element M), from the viewpoint of a high relative dielectric constant of the metal oxide.
[0014] M x O y In the metal oxide represented by the formula (I), the metal element represented by M may be used alone or in combination of two or more. x O y In the metal oxide represented by the formula (I), when only one metal element represented by M is used, examples of the metal oxide include BiO, SrO, Pb(II)O, Pb(II)Pb(IV)O, Pb(IV)O, ZrO, LaO, TaO, TaO, CaO, BiO, and TiO. On the other hand, M x O y In the metal oxide represented by the formula (I), when two or more metal elements represented by M are used, examples of the metal elements include a combination of a divalent metal element and a tetravalent metal element. Specific examples include a combination of Ti and Ba, a combination of Ti and Sr, a combination of Ti and Ca, a combination of Ti and Mg, a combination of Ti and Bi, a combination of Zr and Ba, a combination of Zr and Sr, a combination of Zr and Ca, and a combination of Zr and Pb. By employing these combinations of elements, a metal oxide with a high dielectric constant can be obtained. From the viewpoint of further increasing the relative dielectric constant of the metal oxide, it is particularly preferable that the M element contains at least one of Ba and Sr, and Ti.
[0015] M x Oy The metal oxide represented by is also preferable in that it is a compound having a perovskite crystal structure and in terms of increasing the relative permittivity of the metal oxide. Particularly, M x O y The metal oxide represented by is preferably a compound having a cubic or tetragonal perovskite crystal structure in that it further increases the relative permittivity of the metal oxide. From this viewpoint, the metal oxide is preferably represented by the compositional formula: (M1)(M2)O3 (wherein the M1 element and the M2 element represent elements selected from the M element).
[0016] M x O y Particularly preferred in the present invention as the metal oxide represented by are BaTiO3, BaTi4O9, SrTiO3, Pb(Zr,Ti)O3, PbLaTiO3, PbLaZrO, SrBi2Ta2O9 and the like. Note that Pb(Zr,Ti)O3 means Pb(Zr z Ti 1-z )O3 (where 0 ≦ z ≦ 1, typically 0 < z < 1).
[0017] M x O y The metal oxide represented by may contain a trace amount of a metal element other than the M element for the purpose of further increasing the relative permittivity of the metal oxide. Examples of such a metal element include rare earth metal elements such as Y, Nd, Sm and Dy.
[0018] M x O y The core part containing the metal oxide represented by has its surface coated with a coating layer. The coating layer is a layer containing a hydrated oxide of aluminum. The hydrated oxide of aluminum includes so-called aluminum hydroxide and is generally represented by the compositional formula: Al2O3·nH2O (n represents a positive number) and / or the compositional formula: Al(OH)3. The coating layer directly coats the surface of the core part or indirectly coats the surface of the core part via a layer other than the coating layer.
[0019] Based on comprehensive consideration using analytical techniques such as H-NMR, Al-NMR, AES, and XPS, the present inventors believe that the most preferred structure of aluminum hydrate oxides in the present invention is Al2O3·3H2O. Furthermore, by comparing spectra obtained by XAFS (X-ray absorption fine structure) with references on aluminum compounds (e.g., J. Synchrotron Rad. (1999) 6, 621-623), the Al coordination structure can be estimated. Based on these results, the present inventors believe that a structure in which Al is six-coordinated is preferred. Examples of structures in which Al is six-coordinated include Bayerite, Gibbsite, Doyleite, and Nordstrandite.
[0020] In this specification, the term "coating layer" refers to a film-like portion present on the surface of the core portion. Therefore, even if a hydrated oxide of aluminum is present on the surface of the core portion, if the hydrated oxide is in the form of aggregated particles, the hydrated oxide does not qualify as a "coating layer." Whether or not a film-like portion containing a hydrated oxide of aluminum is present on the surface of the core portion can be determined by observation using a transmission electron microscope or element mapping of the coated particles. The coating layer may be present continuously over the entire surface of the core part, or may be present discontinuously so that part of the surface of the core part is exposed, as long as the coating layer is present in the form of a film on the surface of the core part to such an extent that the outline of the core part can be seen when elemental mapping of aluminum is performed. The thickness of the coating layer is preferably uniform, but may be non-uniform as long as it covers the surface of the core part in the form of a film. The average thickness of the coating layer is preferably 1 nm or more and 40 nm or less, more preferably 1 nm or more and 20 nm or less, and even more preferably 1 nm or more and 5 nm or less. The average thickness of the coating layer can be measured by performing element mapping using a transmission electron microscope (TEM) with the end of the particle having the coating layer standing upright (i.e., perpendicular to the observation surface), measuring the thickness at multiple randomly selected locations (e.g., 10 locations) from the Al portion observed as a film, and calculating the average value. Note that when performing element mapping, cross-section processing may be performed using a focused ion beam (FIB) or the like, if necessary.
[0021] By coating the surface of the core with a film-like portion containing hydrated aluminum oxide, i.e., a coating layer, when the resin composition of the present invention is used as, for example, the dielectric layer of a capacitor element, the leakage current is suppressed, thereby advantageously increasing the breakdown voltage. Another advantage is that the dispersibility of the coated particles in the resin is improved. In contrast, as is clear from Comparative Example 1 described below, when hydrated aluminum oxide is attached to the surface of the core in the form of agglomerated particles (see Figure 2), it is not easy to suppress the leakage current or improve the dispersibility of the particles in the resin. From the viewpoint of further suppressing leakage current and further improving dispersibility in resin, it is preferable that the coating layer directly coats the surface of the core portion. Whether or not the coating layer contains hydrated aluminum oxide can be determined by measurements using H-NMR, Al-NMR, AES, and XPS, as well as by synchrotron radiation XRD.
[0022] To further reduce leakage current, it is preferable to control the amount of the layer containing a hydrated oxide of aluminum covering the core portion of the coated particles. Controlling the amount of the coating layer improves the dispersibility of the coated particles in the resin, thereby further reducing leakage current. Furthermore, improved dispersibility of the coated particles in the resin also has the advantage of improving adhesion between the resin composition and the electrode when the resin composition of the present invention is used as a dielectric layer in a capacitor element. The coating state of the core portion with the coating layer can be determined by various means. Among these means, the present inventors discovered that the composition of aluminum and M elements on the surface of the coated particles, obtained by XPS (X-ray photoelectron spectroscopy), a method that can observe the elemental composition at the very surface of a substance, best reflects the coating state of the core portion with the coating layer. Based on this discovery, the present inventors further investigated the matter and found that when the resin composition of the present invention is analyzed by XPS, the dispersibility of the coated particles in the resin is significantly improved when the atomic ratio Al / (M+Al) satisfies a specific range. Specifically, when the resin composition of the present invention is analyzed by XPS, if the value of the atomic ratio Al / (M+Al) (hereinafter, this value is also referred to as the "aluminum coverage") is preferably 0.05 or more and 0.7 or less, the dispersibility of the coated particles in the resin is greatly improved while suppressing leakage current.
[0023] The inventors believe that an aluminum coverage rate within the above range corresponds to a state in which the coating layer thinly covers the surface of the core portion. If the degree of coverage of the core portion with the coating layer is excessively large, leakage current is suppressed, but the dispersibility of the coated particles in the resin tends to decrease. On the other hand, if the degree of coverage of the core portion with the coating layer is insufficient, it becomes difficult to suppress leakage current. From these perspectives, the aluminum coverage rate is more preferably 0.05 or more and 0.6 or less, and even more preferably 0.5 or less.
[0024] In the formula Al / (M+Al) that defines the aluminum coverage, "M" represents the number of moles of the M element. "Al" represents the number of moles of aluminum. When two or more types of M elements are contained in a resin composition, "M" represents the total number of moles of all M elements. The method for measuring the aluminum coverage by XPS will be explained in the examples below.
[0025] In relation to the aluminum coverage, the proportion of aluminum element relative to the mass of all particles contained in the resin composition is preferably 0.2 mass% or more and 3.0 mass% or less, more preferably 0.3 mass% or more and 2.5 mass% or less, and even more preferably 0.5 mass% or more and 2.0 mass% or less, from the viewpoint of suppressing leakage current and improving dispersibility of the coated particles in the resin. The proportion of aluminum element to the mass of all particles contained in the resin composition can be measured by ICP emission spectroscopy.
[0026] The coated particles, which have a core and a coating layer covering the core, have a controlled particle size, which is advantageous from the viewpoint of suppressing leakage current and improving dispersibility in the resin. From this viewpoint, the coated particles contained in the resin composition have a volume cumulative particle size D at 50% cumulative volume by a laser diffraction / scattering particle size distribution measurement method. 50 The particle size D is preferably 0.01 μm or more and 3.0 μm or less, more preferably 0.05 μm or more and 1.0 μm or less, and even more preferably 0.1 μm or more and 0.5 μm or less. 50 When the resin composition contains only coated particles, the particle diameter D of the coated particles is 50 On the other hand, when the resin composition contains coated particles and other particles, the particle diameter D measured for all particles is 50 This means that particle size D 50 In order to produce particles having a particle diameter within this range, for example, in the case of coated particles, the particle diameter of the core portion, which is the raw material of the coated particles, may be adjusted, or the thickness of the coating layer formed on the surface of the core portion may be adjusted.
[0027] In relation to the particle size of the resin composition, various shapes can be used for the shape of the particles contained in the resin composition. Examples include spherical, polyhedral, flat, needle-like, spindle-like, and irregular shapes. These shapes may also be used in combination. The shape of the coated particles mainly depends on the shape of the core, and the shape of the core is generally reflected in the shape of the coated particles.
[0028] Various methods can be used to produce coated particles by providing a coating layer on the surface of the core. For example, raw material particles used for the core (hereinafter, these particles will also be referred to as "core particles") are dispersed in a dispersion medium such as water using a media mill such as a bead mill or ball mill. When an alkaline raw material is used as the aluminum source compound, the pH of the dispersion thus obtained is adjusted to alkaline (e.g., pH = 11 to 13) using an alkaline substance. This is intended to facilitate the dissolution of the aluminum source compound added in water in the subsequent step. If the aluminum source compound is added at a pH lower than this range, hydrated aluminum oxide is produced, but the hydrated oxide is formed in the form of aggregated particles, making it difficult to form a film-like portion. Examples of alkaline substances that can be used include hydroxides of alkali metals such as sodium hydroxide and potassium hydroxide, and hydroxides of alkaline earth metals such as calcium hydroxide. Before adding an alkaline substance to the dispersion, it is preferable to raise the temperature of the dispersion. The heating temperature is preferably 30° C. or higher and 65° C. or lower, more preferably 50° C. or higher and 65° C. or lower, and even more preferably 50° C. or higher and 60° C. or lower. By using a mild temperature condition within this range, it is possible to successfully form a film-like portion containing a hydrated oxide of aluminum in the process described below. An alkaline aluminum source compound such as sodium aluminate is added to the alkaline dispersion. Gradual addition of the aluminum source compound is preferred to ensure successful formation of membrane-like regions containing hydrated aluminum oxides. An acidic substance is then added to the dispersion to lower the pH of the dispersion to a neutral or weakly acidic range (e.g., pH 4.5 to 7). This allows hydrated aluminum oxides to form on the surfaces of the core particles, yielding the desired coated particles. Aging is then performed as needed, followed by washing and drying. Various mineral acids, such as sulfuric acid and hydrochloric acid, can be used as the acidic substance. This method is also referred to as "Method A." Heating the dispersion within the above-mentioned temperature range is preferably continued until aging is complete.
[0029] When an acidic raw material such as aluminum nitrate is used as the aluminum source compound, the pH of the dispersion is adjusted to an acidic value (e.g., pH = 2 to 4) using an acidic substance. The purpose of this is to facilitate the dissolution of the aluminum source compound in water, which is added in a subsequent step. If the aluminum source compound is added in a pH range higher than this range, hydrated aluminum oxide is produced, but the hydrated oxide is produced in the form of aggregated particles, making it difficult to form film-like portions. Examples of acidic substances that can be used include hydrochloric acid and sulfuric acid. Before adding the acidic substance to the dispersion, it is preferable to raise the temperature of the dispersion. The heating temperature is preferably 30° C. to 65° C., more preferably 50° C. to 65° C., and even more preferably 50° C. to 60° C. By using a mild temperature condition within this range, it is possible to successfully form a film-like portion containing a hydrated oxide of aluminum in the step described below. An acidic aluminum source compound such as aluminum nitrate is added to the acidified dispersion. Gradual addition of the aluminum source compound is preferred to ensure successful formation of membrane-like regions containing hydrated aluminum oxides. Next, an alkaline substance is added to the dispersion to raise the pH of the dispersion to a neutral or weakly acidic range. This produces hydrated aluminum oxides on the surfaces of the core particles, yielding the desired coated particles. Aging is then performed as needed, followed by washing and drying. Examples of alkaline substances that can be used include alkali metal hydroxides such as sodium hydroxide and potassium hydroxide, and alkaline earth metal hydroxides such as calcium hydroxide. This method is also known as "Method B." Heating the dispersion within the above-mentioned temperature range is preferably continued until aging is complete.
[0030] In the above-mentioned Method A, the pH of the dispersion is first increased toward the alkaline side and then decreased toward the acidic side, thereby generating an aluminum-containing compound on the surface of the core particles. In Method B, the pH of the dispersion is first decreased toward the acidic side and then increased toward the alkaline side, thereby generating an aluminum-containing compound on the surface of the core particles. Alternatively, an aluminum source compound such as sodium aluminate or aluminum nitrate, and an acidic substance such as hydrochloric acid or an alkaline substance such as sodium hydroxide can be simultaneously added to a dispersion containing core particles to generate an aluminum hydrate oxide on the surface of the core particles, thereby obtaining the desired coated particles. This method is also called "Method C." In Method C, the amount of acidic or alkaline substance added is preferably such that the pH of the dispersion is in the neutral or weakly acidic range. After that, aging is carried out as necessary, followed by washing and drying. In Method C, it is preferable to gradually add the aluminum source compound and the acidic or alkaline substance, since this allows for the successful formation of film-like sites containing hydrated oxides of aluminum. If the aluminum source compound and the acidic or alkaline substance are added all at once, hydrated oxides of aluminum are produced, but the hydrated oxide tends to form aggregated particles, making it difficult to form film-like sites. In Method C, an alkaline substance may be added between aging and washing to slightly increase the pH of the dispersion. The purpose of this step is to speed up the settling of the slurry and shorten the washing step time. The alkaline substance is preferably added so that the pH of the dispersion is in the range of 7 to 7.5. Furthermore, in Method C, the step of dispersing the core particles in the dispersion medium does not need to be performed using a media mill. That is, the core particles may be added to the dispersion medium and lightly mixed, and then the aluminum source compound and the acidic substance may be added to the dispersion simultaneously. In Method C as well, it is preferable to continue heating the dispersion within the temperature range employed in Methods A and B until aging is complete.
[0031] While the above-mentioned methods A, B, and C are wet processes, coated particles can also be produced by a dry process. Hereinafter, this dry process will also be referred to as "method D." In method D, core particles adjusted to a predetermined particle size are dry-mixed with alumina sol, i.e., a colloidal solution of hydrated aluminum oxide, using a mixer such as a shear mixer, to firmly adhere the alumina sol to the surface of the core particles. During dry mixing, adding a small amount of an organic solvent such as 2-propanol is preferred for successful formation of a coating layer. Conditions for dry mixing include, for example, setting the container filling rate to 70% or less to suppress heat generation during mixing, and setting the humidity to 50% RH or less to avoid the effects of moisture absorption.
[0032] The above explanation has been about the coated particles, and next we will explain the resin used with the coated particles. The resin used in the present invention is of an appropriate type depending on the specific application of the resin composition of the present invention. For example, thermosetting resins and thermoplastic resins can be used as the resin. When the resin composition of the present invention is used in the dielectric layer of a capacitor element, it is preferable to use a thermosetting resin. Thermosetting resins include both C-stage resins that have been cured, and B-stage resins that are semi-cured before curing is complete, as well as uncured resins.
[0033] When the resin contained in the resin composition of the present invention is a thermosetting resin, the thermosetting resin is preferably one used in the technical field of printed wiring boards. Such a thermosetting resin is preferably at least one selected from the group consisting of epoxy resin, polyphenylene ether resin, aromatic polyamide resin, polyamideimide resin, polyimide resin, active ester resin, phenolic resin, and diamine compound. These resins can be used alone or in combination of two or more.
[0034] From the viewpoint of further increasing the dispersibility of the coated particles in the resin and increasing the binding strength between the metal foil and the resin composition, which will be described later, it is preferable to use an epoxy resin, an aromatic polyamide resin, a polyimide resin, an active ester resin, a phenolic resin, or a diamine compound as the resin.
[0035] The resin composition contains the coated particles described above, and may also contain particles other than the coated particles as needed. The proportions of the resin and all particles contained in the resin composition may be appropriately set depending on the specific application of the resin composition. When the resin composition is used, for example, as a dielectric layer of a capacitor element, from the viewpoint of achieving a balance between improving the capacitance and the strength of the dielectric layer, the proportion of all particles contained in the resin composition is preferably 30 parts by mass or more and 90 parts by mass or less, more preferably 60 parts by mass or more and 85 parts by mass or less, and even more preferably 70 parts by mass or more, per 100 parts by mass of the solid content of the resin composition. The proportion of all particles contained in the resin composition can be measured by burning off the resin content in the resin composition and measuring the mass of the remaining particles.
[0036] In addition to the coated particles described above, the resin composition may further contain components that can improve various properties of the resin composition. x O yand particles having no coating layer (hereinafter, these particles may be referred to as "uncoated particles"). When the resin composition contains uncoated particles in addition to coated particles, an effect of suppressing a decrease in the capacitance of the dielectric layer is achieved.
[0037] In order to make the above-mentioned effects more pronounced, the ratio of the uncoated particles to the total of 100 parts by mass of the coated particles and the uncoated particles is preferably 5 parts by mass or more and 50 parts by mass or less, more preferably 40 parts by mass or less, and even more preferably 30 parts by mass or less.
[0038] The type of M element contained in the coated particles and the type of M element contained in the uncoated particles may be the same or different. For example, the coated particles may be barium titanate particles coated with a coating layer containing a hydrated aluminum oxide, and the uncoated particles may be barium titanate particles without a coating layer. The coated particles and uncoated particles may have the same shape and particle size or may be different.
[0039] In addition to the metal oxide particles, such as the coated particles and uncoated particles, the resin composition may further contain other types of particles. Examples of such particles include barium sulfate particles. The inclusion of barium sulfate particles in the resin composition improves the rheology (fluidity) of the coating solution prepared to form the resin composition into a thin film, thereby making the coating solution easier to handle.
[0040] In order to make the above-mentioned effects more pronounced, the resin composition preferably contains 0.16 parts by mass or more and 3.2 parts by mass or less of barium sulfate particles per 100 parts by mass of the solid content, more preferably 0.24 parts by mass or more and 2.8 parts by mass or less, and even more preferably 0.32 parts by mass or more and 2.4 parts by mass or less. From the same viewpoint, the ratio of barium sulfate particles to a total of 100 parts by mass of coated particles, uncoated particles, and barium sulfate particles is preferably 0.2 parts by mass or more and 4.0 parts by mass or less, more preferably 3.5 parts by mass or less, and even more preferably 3.0 parts by mass or less.
[0041] The barium sulfate particles preferably have an average particle size of 0.1 μm to 5 μm, more preferably 3 μm or less, and even more preferably 1.5 μm or less, as determined by scanning electron microscope observation. The use of barium sulfate particles with a particle size within this range is preferred because it further improves the rheology (fluidity) of the coating solution described above. The shape of the barium sulfate particles is not particularly limited, and various shapes such as spherical or polyhedral can be employed. The average particle size can be calculated using image analysis software from an electron microscope photograph obtained by observing, for example, five or more, preferably ten or more particles under a scanning electron microscope.
[0042] When the resin composition contains coated particles and other particles (for example, the above-mentioned uncoated particles and barium sulfate particles), the above-mentioned atomic ratio Al / (M+Al) is determined by XPS measurement of all particles contained in the resin composition.
[0043] Specifically, the resin composition is heat-treated in a high-temperature oven (for example, in an air atmosphere at a maximum temperature of 500°C for 60 minutes) to burn off the resin component, and the resulting powder is subjected to the XPS measurement described below, which makes it possible to quantify the atomic ratios described above. Whether the resin component has been completely burned off can be confirmed by obtaining weight loss data from TG-DTA.
[0044] The resin composition of the present invention can be used alone or in combination with other components depending on the specific application. When the resin composition of the present invention is used, for example, as a dielectric layer of a capacitor element, it is preferable to use the resin composition in the form of a thin film layer. In this case, the thickness of the thin layer after curing is preferably 15 μm or less, more preferably 8 μm or less, and even more preferably 4 μm or less, from the viewpoint of achieving a balance between improving the capacitance of the dielectric layer and the strength of the dielectric layer. Furthermore, the thickness of the thin layer is preferably 0.2 μm or more, and more preferably 0.5 μm or more.
[0045] To form the resin composition of the present invention into a thin film, for example, a coating solution is prepared by mixing the coated particles, a resin, and an organic solvent capable of dissolving the resin, and the coating solution is applied to an object (e.g., a metal foil, as described below) to form a coating film, which is then dried. When the resin is a thermosetting resin, the coating film obtained by drying is in an uncured state, and can be converted into a B-stage, i.e., semi-cured, coating film by heating to a predetermined temperature. The B-stage coating film can be converted into a C-stage, i.e., fully cured, coating film by further heating.
[0046] One embodiment of using the resin composition of the present invention in combination with other components is to provide a layer of the resin composition (hereinafter also referred to as a "resin composition layer") on at least one surface of a metal foil to form a resin-coated metal foil. When the resin contained in the resin composition layer in this resin-coated metal foil is a thermosetting resin, the thermosetting resin is preferably in a B-stage state before complete curing. This ensures practically suitable adhesion between the metal foil and the resin composition layer.
[0047] The thickness of the resin composition layer in the resin-coated metal foil is preferably the same as the thickness of the above-mentioned thin film layer. The resin composition layer can be provided on at least one surface of the metal foil, and can also be provided on each surface of the metal foil depending on the application of the resin-coated metal foil.
[0048] The metal foil can be made of various metals. Examples include copper foil, aluminum foil, stainless steel foil, nickel foil, titanium foil, and foils made by laminating multiple of these. In particular, copper foil is preferred from the standpoint of economy and availability. The metal foil can be any of rolled foil, electrolytic foil, and vapor-phase foil.
[0049] The thickness of the metal foil is not particularly limited and can be determined depending on the specific application of the resin-coated metal foil. However, it is preferably 0.1 μm to 100 μm, more preferably 0.5 μm to 70 μm, even more preferably 2 μm to 70 μm, particularly preferably 10 μm to 70 μm, and most preferably 10 μm to 35 μm. A thickness within these ranges allows for the use of common pattern formation methods for forming wiring on printed wiring boards, such as the MSAP (modified semi-additive) method, the SAP (semi-additive) method, and the subtractive method. However, when the metal foil thickness is, for example, 10 μm or less, the resin-coated metal foil of the present invention may be a carrier-coated metal foil having a release layer and a carrier, with a resin composition layer formed on the metal foil surface to improve handling.
[0050] From the viewpoint of ensuring a sufficient thickness of the resin composition layer and sufficiently increasing the electrostatic capacitance of the resin composition layer, it is preferable that the roughness of the surface of the metal foil facing the resin composition layer is low. From this viewpoint, when the surface roughness of the metal foil facing the resin composition layer is expressed as the ten-point average roughness Rzjis measured in accordance with JIS B0601-2001, Rzjis is preferably 2.0 μm or less, more preferably 1.5 μm or less, even more preferably 1.0 μm or less, and particularly preferably 0.5 μm or less. This makes it easy to form a thin and uniform resin composition layer. While the lower limit of the ten-point average roughness Rzjis of the metal foil facing the resin composition layer is not particularly limited, from the viewpoint of improving adhesion to the resin composition layer, Rzjis is preferably 0.005 μm or more, more preferably 0.01 μm or more, and even more preferably 0.05 μm or more.
[0051] The maximum peak height Sp of the metal foil surface facing the resin composition layer, as measured in accordance with ISO 25178, is preferably 0.05 μm or more and 3.3 μm or less, more preferably 0.06 μm or more and 3.1 μm or less, even more preferably 3.0 μm or less, and particularly preferably 0.07 μm or more and 2.9 μm or less. By controlling the surface properties of the metal foil in this manner, a metal-clad laminate sheet can be obtained that can exhibit excellent properties in terms of voltage resistance and peel strength while maintaining high capacitance.
[0052] From the same viewpoint, the root mean square gradient Sdq of the metal foil surface facing the resin composition layer, measured in accordance with ISO 25178, is preferably 0.01 or more and 2.3 or less, more preferably 0.02 or more and 2.2 or less, even more preferably 0.03 or more and 2.0 or less, and particularly preferably 0.04 or more and 1.8 or less.
[0053] Furthermore, from the same viewpoint, the kurtosis Sku measured in accordance with ISO25178 on the surface of the metal foil facing the resin composition layer is preferably 2.6 or more and 4.0 or less, more preferably 2.7 or more and 3.8 or less, and even more preferably 2.7 or more and 3.7 or less.
[0054] Another embodiment of the resin composition of the present invention, in combination with other components, is a metal-clad laminate sheet comprising a first metal foil, a second metal foil, and a resin composition layer sandwiched between these two metal foils. In the resin composition layer of this metal-clad laminate sheet, if the resin contained in the resin composition layer is a thermosetting resin, the thermosetting resin is preferably in a cured form. This ensures practically suitable adhesion between the first metal foil and the second metal foil. Furthermore, during the production of the metal-clad laminate sheet, the adhesion between the resin composition layers and the resin composition layer and the metal foil is improved, resulting in excellent moldability.
[0055] The first metal foil and the second metal foil in the metal-clad laminate sheet may be the same or different in type, and the type of metal foil may be the same as that of the resin-coated metal foil described above. The first metal foil and the second metal foil in the metal-clad laminate sheet may have the same thickness or different thicknesses. The thickness of the metal foil may be the same as that of the resin-coated metal foil described above.
[0056] From the viewpoint of ensuring a sufficient thickness of the resin composition layer and sufficiently increasing the electrostatic capacitance of the resin composition layer, it is preferable that the roughness of the surface of the first metal foil and the second metal foil facing the resin composition layer is low. From this viewpoint, when the surface roughness of the surfaces of the first metal foil and the second metal foil facing the resin composition layer is expressed in ten-point average roughness Rzjis measured in accordance with JIS B0601-2001, Rzjis is preferably 2.0 μm or less, more preferably 1.5 μm or less, even more preferably 1.0 μm or less, and particularly preferably 0.5 μm or less. This makes it easy to form a thin and uniform resin composition layer.
[0057] The surface of at least one of the first metal foil and the second metal foil facing the resin composition layer preferably has a maximum peak height Sp of 0.05 μm to 3.3 μm, as measured in accordance with ISO 25178. It is more preferably 0.06 μm to 3.1 μm, even more preferably 3.0 μm or less, and particularly preferably 0.07 μm to 2.9 μm. By controlling the surface properties of the metal foil in this manner, a metal-clad laminate sheet can be obtained that exhibits excellent properties in terms of voltage resistance and peel strength while maintaining high capacitance.
[0058] From the same viewpoint, the surface of at least one of the first metal foil and the second metal foil facing the resin composition layer preferably has a root-mean-square gradient Sdq measured in accordance with ISO 25178 of 0.01 to 2.3, more preferably 0.02 to 2.2, even more preferably 0.03 to 2.0, and particularly preferably 0.04 to 1.8.
[0059] Furthermore, from a similar viewpoint, it is preferable that the surface of at least one of the first metal foil and the second metal foil facing the resin composition layer has a kurtosis Sku measured in accordance with ISO25178 of 2.6 or more and 4.0 or less, more preferably 2.7 or more and 3.8 or less, and even more preferably 2.7 or more and 3.7 or less.
[0060] The metal-clad laminate sheet has a structure in which a resin composition layer is disposed as a dielectric layer between a first metal foil and a second metal foil, and therefore this metal-clad laminate sheet can be used as a capacitor element. Since the resin in this metal-clad laminate sheet contains the above-mentioned coated particles, using this metal-clad laminate sheet as a capacitor element can suppress the leakage current of the capacitor element, increase the withstand voltage, and further increase the electrostatic capacitance.
[0061] In detail, the metal-clad laminate sheet has a leakage current of preferably 150 μA / cm when a DC voltage of 50 V is applied between the first metal foil and the second metal foil in the metal-clad laminate sheet. 2 More preferably, 100 μA / cm 2 Less than 50 μA / cm, more preferably 2 It shows a low value of below.
[0062] Furthermore, the metal-clad laminate sheet exhibits a high withstand voltage per unit thickness of the resin composition layer when a DC voltage is applied between the first metal foil and the second metal foil in the metal-clad laminate sheet, preferably 50 V / μm or more, more preferably 75 V / μm or more, and even more preferably 100 V / μm or more, where the unit thickness refers to a thickness of the resin composition layer of 1 μm.
[0063] Furthermore, the metal-clad laminate sheet preferably has a capacitance per unit area of 10 nF / in at a frequency of 1 kHz. 2 More preferably, 20 nF / in 2 More preferably, 30 nF / in 2The unit area here is in 2 (1 square inch).
[0064] Furthermore, the metal-clad laminate sheet exhibits a high peel strength between the first metal foil and / or second metal foil and the resin composition layer, preferably 0.3 kN / m or more, more preferably 0.4 kN / m or more, and even more preferably 0.5 kN / m or more.
[0065] The metal-clad laminate sheet is suitably produced by preparing a set of resin-coated metal foils as described above, overlapping the two so that the resin composition layers (preferably B-stage resin composition layers) of the resin-coated metal foils face each other, and applying pressure under heat to completely harden the resin composition layers.
[0066] The resin-coated metal foil or metal-clad laminate sheet having a layer of the resin composition of the present invention is suitably used as a material for a printed wiring board having a dielectric layer.
[0067] Although the present invention has been described above based on its preferred embodiments, the present invention is not limited to these embodiments. For example, in the first metal foil and the second metal foil in the metal-clad laminate sheet described above, a carrier foil may be disposed on the side opposite to the resin composition layer via a release layer. In addition, in the metal foil of the resin-coated metal foil described above, a carrier foil may be disposed via a release layer on the surface of the metal foil that is not facing the resin composition layer. [Example]
[0068] The present invention will be described in more detail below with reference to examples. However, the scope of the present invention is not limited to such examples. Unless otherwise specified, "%" and "parts" mean "% by mass" and "parts by mass", respectively.
[0069] [Production Example 1] Particle size D 5080 kg of spherical barium titanate particles having a diameter of 0.1 μm and a perovskite crystal structure were mixed with 700 kg of water, and the barium titanate particles were dispersed in the water using a bead mill to obtain a dispersion. This dispersion was heated to 60° C. An aqueous solution of sodium hydroxide was added to this dispersion to adjust the pH of the dispersion to about 12. Next, an aqueous solution in which 3050 g of sodium aluminate had been dissolved was gradually added to the dispersion. Next, an aqueous sulfuric acid solution was added to the dispersion to lower the pH of the dispersion to about 5, thereby forming a coating layer of hydrated aluminum oxide on the surface of the barium titanate particles. After aging for 30 minutes, the particles were washed with water until the electrical conductivity of the aqueous phase reached 100 μS / cm or less, and then dried at 150°C to obtain the desired coated particles. Furthermore, barium sulfate with an average particle size of 0.8 μm was obtained as a by-product by observation with a scanning electron microscope. The formation of hydrated aluminum oxide was confirmed by a combination of H-NMR, Al-NMR, AES, and XPS evaluations of the obtained coated particles (the same applies to the subsequent manufacturing examples).
[0070] [Production Example 2] Particle size D 50 700 g of spherical barium titanate particles having a diameter of 0.1 μm and a perovskite crystal structure were mixed with 7000 g of water, and the barium titanate particles were dispersed in the water using a bead mill to obtain a dispersion. This dispersion was heated to 60°C. Aqueous solutions of hydrochloric acid and sodium aluminate were simultaneously and gradually added to this dispersion to adjust the pH of the dispersion to about 5, thereby forming a coating layer of hydrated aluminum oxide on the surfaces of the barium titanate particles. The amount of sodium aluminate added was 27 g. After aging for 30 minutes, the particles were washed with water until the electrical conductivity of the aqueous phase was 100 μS / cm or less, and then dried at 150° C. to obtain the desired coated particles.
[0071] [Production Example 3] Particle size D 50700 g of spherical barium titanate particles having a particle size of 0.1 μm was mixed with 7000 g of water, and the barium titanate particles were dispersed in the water using a bead mill to obtain a dispersion. This dispersion was heated to 60°C. Aqueous solutions of hydrochloric acid and sodium aluminate were simultaneously and gradually added to this dispersion to adjust the pH of the dispersion to about 5, thereby forming a coating layer of hydrated aluminum oxide on the surfaces of the barium titanate particles. The amount of sodium aluminate added was 27 g. After aging for 30 minutes, an aqueous sodium hydroxide solution was added to the dispersion to raise the pH of the dispersion to approximately 7. The particles were then washed with water until the electrical conductivity of the aqueous phase was 100 μS / cm or less, and then dried at 150°C to obtain the desired coated particles.
[0072] [Production Example 4] Particle size D 50 A dispersion was obtained by mixing 700 g of spherical barium titanate particles having a particle size of 0.1 μm with 7,000 g of water. The target coated particles were obtained in the same manner as in Production Example 2, except that dispersion using a bead mill was not performed.
[0073] [Production Example 5] Particle size D 50 700 g of spherical barium titanate particles having a particle size of 0.1 μm were mixed with 7000 g of water, and the barium titanate particles were wet-crushed and dispersed in water using a bead mill to obtain a dispersion. The intended coated particles were obtained in the same manner as in Production Example 2, except that the amount of sodium aluminate added was 19 g.
[0074] [Production Example 6] Particle size D 50 700 g of spherical barium titanate particles having a particle size of 0.1 μm was mixed with 7000 g of water, and the barium titanate particles were dispersed in the water using a bead mill to obtain a dispersion. The intended coated particles were obtained in the same manner as in Production Example 2, except that the amount of sodium aluminate added was 68 g.
[0075] [Production Example 7] Particle size D 50 700 g of spherical barium titanate particles having a particle size of 0.1 μm was mixed with 7000 g of water, and the barium titanate particles were dispersed in the water using a bead mill to obtain a dispersion. This dispersion was heated to 60°C. An aqueous solution of sodium hydroxide was added to this dispersion to adjust the pH of the dispersion to about 12. Next, an aqueous solution of sodium aluminate was gradually added to the dispersion. The amount of sodium aluminate added was 27 g. Next, an aqueous solution of hydrochloric acid was added to the dispersion to lower the pH of the dispersion to about 5, thereby forming a coating layer of hydrated aluminum oxide on the surface of the barium titanate particles. After aging for 30 minutes, the particles were washed with water until the electrical conductivity of the aqueous phase was 100 μS / cm or less, and then dried at 150° C. to obtain the desired coated particles.
[0076] [Production Example 8] Particle size D 50 200 g of spherical barium titanate particles having a particle size of 0.1 μm was mixed with 2000 g of water, and the barium titanate particles were dispersed in the water using a bead mill to obtain a dispersion. This dispersion was heated to 60°C. An aqueous solution of sodium hydroxide and an aqueous solution of aluminum nitrate were simultaneously and gradually added to this dispersion to adjust the pH of the dispersion to about 5, thereby forming a coating layer of hydrated aluminum oxide on the surface of the barium titanate particles. The amount of aluminum nitrate added was 30 g. After aging for 30 minutes, the particles were washed with water until the electrical conductivity of the aqueous phase was 100 μS / cm or less, and then dried at 150° C. to obtain the desired coated particles.
[0077] [Production Example 9] In this production example, the coated particles were produced by a dry method. 100 g of barium titanate particles were crushed in a mixer (Osaka Chemical Force Mill) to a particle size of D 50 The particles were spherical and had a diameter of 0.15 μm. The crushed barium titanate particles, alumina sol (Alumina Sol-10A manufactured by Kawaken Fine Chemicals), and 2-propanol were mixed in a mixer (Force Mill manufactured by Osaka Chemicals) at a filling rate of 40% and a humidity of 40% RH to form a coating layer of hydrated aluminum oxide on the surface of the barium titanate particles. The amount of alumina sol used was 20 g. The amount of 2-propanol used was 2 g. The particles were then dried at 110°C to obtain the desired coated particles.
[0078] [Production Example 10] This manufacturing example corresponds to an example in Patent Document 2 (JP 2020-57667 A). 700 g of spherical barium titanate particles having a perovskite crystal structure and 7000 g of water were mixed, and the barium titanate particles were dispersed in the water using a bead mill to obtain a dispersion liquid. This dispersion was heated to 70°C. At this time, the pH of the dispersion was approximately 9. To this dispersion, an aqueous solution of sodium aluminate was added. The amount added was 106 g. At this point, precipitation of a water-insoluble compound containing aluminum was observed. The pH of the dispersion at this time was approximately 10. Next, an aqueous solution of sodium hydroxide was added to the dispersion, and the pH of the dispersion was adjusted to approximately 11. Next, an aqueous solution of hydrochloric acid was added to the dispersion to lower the pH of the dispersion to about 7, thereby forming a coating layer of hydrated aluminum oxide on the surface of the barium titanate particles. After aging for 30 minutes, the particles were washed with water until the electrical conductivity of the aqueous phase was 100 μS / cm or less, and then dried at 150° C. to obtain the desired coated particles.
[0079] [Production Example 11] In this production example, the amount of the coating layer attached was significantly increased compared to Production Example 1. 700 g of spherical barium titanate particles having a perovskite crystal structure and 7000 g of water were mixed, and the barium titanate particles were dispersed in the water using a bead mill to obtain a dispersion liquid. This dispersion was heated to 60°C. An aqueous solution of sodium hydroxide was added to this dispersion to adjust the pH of the dispersion to about 12. Next, an aqueous solution of sodium aluminate was added to the dispersion. The amount of sodium aluminate added was 106 g. Next, an aqueous solution of hydrochloric acid was added to the dispersion to lower the pH of the dispersion to about 7, thereby forming a coating layer of hydrated aluminum oxide on the surface of the barium titanate particles. After aging for 30 minutes, the particles were washed with water until the electrical conductivity of the aqueous phase was 100 μS / cm or less, and then dried at 150° C. to obtain the desired coated particles.
[0080] [Production Example 12] Particle size D 50 The intended coated particles were obtained in the same manner as in Production Example 7, except that spherical barium titanate particles having a particle size of 0.2 μm were used.
[0081] [Production Example 13] The intended coated particles were obtained in the same manner as in Production Example 12, except that the amount of sodium aluminate added was changed to 20 g.
[0082] [Production Example 14] The intended coated particles were obtained in the same manner as in Production Example 12, except that the amount of sodium aluminate added was 13 g.
[0083] [Production Example 15] The intended coated particles were obtained in the same manner as in Production Example 12, except that the amount of sodium aluminate added was changed to 7 g.
[0084] Examples 1 to 13 and Comparative Examples 1 and 2 The coated particles obtained in Production Examples 1 to 15 (including barium sulfate in Production Example 1) and the dispersant component were mixed in a cyclopentanone solvent and slurried in a disperser. After the formation of a slurry was confirmed, a coating liquid was prepared by kneading a varnish of the resin component of Blending Example 1 shown in Table 1 below. The mass ratios of the coated particles, other particles, and resin component in the coating liquid were as shown in Table 2. The obtained coating solution was applied to a copper foil (manufactured by Mitsui Mining & Smelting Co., Ltd., thickness 18 μm, surface roughness Rzjis=0.5 μm) using a bar coater so that the thickness of the resin composition layer after drying would be about 1.5 μm, and then dried in an oven heated to 160° C. for 3 minutes to semi-cure the resin composition, thereby obtaining a resin-coated copper foil. Two sheets of resin-coated copper foil were laminated together with the resin surfaces facing each other, and a pressure of 40 kgf / cm was applied. 2 The resin composition was cured by vacuum pressing at 200°C for 90 minutes. A copper-clad laminate sheet containing the cured resin composition as a dielectric layer was obtained. The thickness of the resin composition layer in the obtained copper-clad laminate sheet was measured, and the results are shown in Table 2.
[0085] Example 14 The coated particles obtained in Production Example 1 and spherical barium titanate particles (D 50 The powder (particle size: 0.3 μm) and the dispersant component were mixed in a cyclopentanone solvent and slurried in a disperser. After the formation of a slurry was confirmed, a coating liquid was prepared by kneading the varnish of the resin component of Blending Example 1 shown in Table 1. The mass ratio of the coated particles, other particles, and resin component in the coating liquid was set as shown in Table 2. Other than this, a copper-clad laminate sheet was obtained in the same manner as in Example 1. Table 2 shows the thickness of the resin composition layer in the obtained copper-clad laminate sheet.
[0086] Example 15 The coated particles obtained in Production Example 1 and spherical barium titanate particles (D 50 The powder (particle size: 0.2 μm) and the dispersant component were mixed in a cyclopentanone solvent and slurried in a disperser. After the formation of a slurry was confirmed, a coating liquid was prepared by kneading the varnish of the resin component of Blending Example 1 shown in Table 1. The mass ratio of the coated particles, other particles, and resin component in the coating liquid was set as shown in Table 2. Other than this, a double-sided copper-clad laminate sheet was obtained in the same manner as in Example 1. Table 2 shows the thickness of the resin composition layer in the obtained copper-clad laminate sheet.
[0087] Comparative Example 3 Barium titanate particles (D 50 The powder (particle size: 0.1 μm) and the dispersant component were mixed in a cyclopentanone solvent and slurried in a disperser. After the formation of a slurry was confirmed, a coating liquid was prepared by kneading the varnish of the resin component of Blending Example 1 shown in Table 1. The mass ratio of the barium titanate particles to the resin component in the coating liquid was as shown in Table 2. Other than this, a double-sided copper-clad laminate sheet was obtained in the same manner as in Example 1. Table 2 shows the thickness of the resin composition layer in the obtained copper-clad laminate sheet.
[0088] Examples 16 to 21 The coated particles obtained in Production Example 1 and the dispersant component were mixed in a cyclopentanone solvent and slurried in a disperser. After the formation of a slurry was confirmed, a coating liquid was prepared by kneading the varnishes of the resin components of Blending Examples 1 to 6 shown in Table 1. The mass ratio of the coated particles to the resin components in the coating liquid was as shown in Table 3. Other than this, a double-sided copper-clad laminate sheet was obtained in the same manner as in Example 1. Table 3 shows the thickness of the resin composition layer in the obtained copper-clad laminate sheet.
[0089] [Rating 1] Regarding the copper clad laminate sheets obtained in the Examples and Comparative Examples (i.e., the copper clad laminate sheets obtained using the particles obtained in Production Examples 1 to 15, and the copper clad laminate sheets obtained in Examples 14 and 15), the particle diameter D of the particles contained in the resin composition layer was 50 was determined using a laser diffraction / scattering particle size distribution analyzer. The results are shown in Table 4 below. The slurries used in each of the Examples and Comparative Examples were used for the measurements.
[0090] [Rating 2] For the copper-clad laminate sheets obtained in the Examples and Comparative Examples, the copper foil was peeled off, and the mass ratio of aluminum element in the particles contained in the resin composition layer was measured by ICP atomic emission spectroscopy. Furthermore, XPS measurement was performed on the resin composition layer using PHIQuantes manufactured by ULVAC-PHI, Inc. to measure the atomic ratio Al / (M+Al). The results are shown in Table 4. Details of the XPS measurement and analysis are as follows. 〔conditions〕 Excitation X-ray: Monochromated Al-Kα radiation (1486.7 eV) Output: 50W Acceleration voltage: 15kV ·X-ray irradiation diameter: 200μmφ X-ray scanning area: 1000μm×300μm Detection angle: 45° Pass energy: 26.0 eV Energy step: 0.1 eV / step ·Measurement elements: C:1s,O:1s,Al:2p,Ti:2p,Ba:3d 5 / 2 〔analysis〕 XPS data were analyzed using data analysis software (ULVAC-PHI, "Multipack Ver. 9.9"), with Shirley as the background mode.
[0091] [Rating 3] The copper-clad laminate sheets obtained in the examples and comparative examples were evaluated for formability by the following method. Furthermore, for the copper-clad laminate sheets obtained in the Examples and Comparative Examples, the thickness of the resin composition layer, the withstand voltage, the leakage current, the capacitance, and the peel strength (circuit adhesion) between the copper foil and the resin composition layer were measured by the following methods. The results are shown in Tables 2 and 3.
[0092] [Evaluation of formability of copper-clad laminate sheet] The copper-clad laminate sheet was cut into a size of approximately 8 mm wide and 5 mm long, and then cut in the thickness direction using a fully automated universal rotary microtome (Leica Biosystems, RM2265) to expose the cross section. The cross section was observed with an optical microscope (Leica Microsystems, Leica DM LM) to check for adhesion failure at the bonding interface of the resin composition layer. The quality was evaluated according to the following criteria. The results are shown in Tables 2 and 3. Good: No adhesion failure occurs at the bonding interface of the resin composition layer (no problems with formability). Poor: Poor adhesion occurs at the bonding interface of the resin composition layer (poor molding).
[0093] [Thickness of Resin Composition Layer] The cross section exposed in the same manner as in the evaluation of the formability of the copper-clad laminate sheet was observed with an optical microscope (Leica Microsystems, Leica DM LM), and the thickness of the resin composition layer was measured at any five points and the average value was calculated. The results are shown in Tables 2 and 3.
[0094] [Voltage resistance] A measurement sample was prepared by etching one side of a copper-clad laminate sheet to create a circular circuit with a diameter of 0.5 inches (12.6 mm). The breakdown voltage of this measurement sample was measured at a voltage rise rate of 167 V / sec using an insulation resistance measuring instrument (Hioki E.E. Corporation, Super Megohmmeter SM7110). This measurement was performed in accordance with IPC-TM-650 2.5.6.2a. The breakdown voltage measured above was divided by the thickness of the resin composition layer to be measured to calculate the withstand voltage per unit thickness. The results are shown in Tables 2 and 3.
[0095] [Leakage current] A measurement sample was prepared by etching one side of a copper-clad laminate sheet to create a circular circuit with a diameter of 0.5 inches (12.6 mm). The leakage current value of this measurement sample was measured at an applied voltage of 50 V using an insulation resistance measuring instrument (Hioki E.E. Corporation, Super Megohmmeter SM7110). The measurement was performed in accordance with IPC-TM-650 2.5.6.2a. The results are shown in Tables 2 and 3.
[0096] [Capacitance] A measurement sample was prepared by etching one side of a double-sided copper-clad laminate sheet to create a circular circuit with a diameter of 0.5 inches (12.6 mm). The capacitance of this measurement sample was measured at a frequency of 1 kHz using an LCR meter (Hioki E.E. Corporation, LCR HiTester 3532-50). This measurement was performed in accordance with IPC-TM-650 2.5.2. The capacitance measured above was divided by the thickness of the resin composition layer to be measured to calculate the capacitance equivalent to a thickness of 3 μm. The results are shown in Tables 2 and 3.
[0097] [Peel strength between copper foil and resin composition layer (circuit adhesion)] A measurement sample was prepared by etching one side of a copper-clad laminate sheet to create a 3 mm wide linear circuit. The circuit was peeled off from this measurement sample at a peeling speed of 50 mm / min using an autograph, and the peel strength was measured. This measurement was performed in accordance with IPC-TM-650 2.4.8. A measured value of 0.3 kN / m or greater was deemed suitable for practical use. The results are shown in Tables 2 and 3.
[0098] [Rating 4] The coated particles obtained in Production Examples 1 and 10 were observed with a transmission electron microscope and elemental mapping was performed, and the results are shown in FIGS.
[0099] [Rating 5] The coated particles obtained in Production Examples 6 and 1 were analyzed by XAFS (X-ray absorption fine structure analysis). The results are shown in Figure 3. In the figure, 1 indicates the spectrum of Production Example 6, and 2 indicates the spectrum of Production Example 1. The details of the conditions are as follows: 〔conditions〕 Measurement facility: Aichi Synchrotron Light Center Beamline: BL1N2 -Sample holding method: Painted on indium film Measurement energy: 1500-2000 eV Measurement time: 51 minutes Detection method: partial fluorescence yield method Detector and sample arrangement: X-rays are incident at 22.5° from the perpendicular direction to the sample surface, and are detected at 90°. Background exclusion range: 1500-2000 eV
[0100] [Table 1]
[0101] [Table 2]
[0102] [Table 3]
[0103] [Table 4]
[0104] As is clear from the results shown in Tables 2 and 3, the copper-clad laminate sheets obtained in each example have high withstand voltage, low leakage current, high capacitance, and excellent adhesion between the copper foil and the resin composition layer.
[0105] 1, it is confirmed that film-like portions are formed on the surface of the core portion made of barium titanate in the coated particles obtained in Production Example 1. Furthermore, the results of H-NMR, Al-NMR, AES, XPS, synchrotron XRD, etc. confirmed that the film-like portions contain hydrated aluminum oxide. On the other hand, as is clear from the results shown in Figure 2, it was confirmed that agglomerated particles adhered to the surface of the core portion made of barium titanate in the coated particles obtained in Production Example 10. The reason for this is thought to be that the pH of the dispersion was not sufficiently high when sodium aluminate was added to the dispersion, and that the heating temperature of the dispersion was high. Furthermore, using a technique similar to that used to analyze the film-like portion, it was confirmed that the agglomerated particles contained hydrated oxide of aluminum. Although not shown in the figure, the present inventors have confirmed that for the coated particles obtained in Production Examples 2 to 9 and Production Examples 12 to 15, a film-like portion containing hydrated aluminum oxide is formed on the surface of the core portion made of barium titanate. Furthermore, as is clear from the results shown in Figure 3, two peaks (i.e., peaks A and B) were observed between 1567 eV and 1577 eV in the XAFS spectra of the coated particles obtained in Production Examples 6 and 1. When this is compared with references on aluminum compounds, such as J. Synchrotron Rad. (1999) 6. 621-623, it is found to be similar to the spectrum of a hexacoordinated structure, and therefore it is inferred that the aluminum compound in the film-like portion has a hexacoordinated structure. [Industrial Applicability]
[0106] According to the present invention, a resin composition suitable for use as a dielectric layer of a capacitor element is provided. A capacitor element having this resin composition as a dielectric layer exhibits reduced leakage current. Furthermore, this resin composition has high binding properties, and therefore bonds well to electrodes such as metal foil.
Claims
1. A resin composition containing coated particles having a core containing a metal oxide and a coating layer containing a hydrated oxide of aluminum disposed on the surface of the core, and a resin, The metal oxide is M x O y (M represents at least one element selected from the group consisting of Ba, Ti, Sr, Pb, Zr, La, Ta, Ca, and Bi; x and y represent numbers determined from a stoichiometric ratio according to the valence of the metal element M), particles contained in the resin composition have an atomic ratio Al / (M+Al) of 0.05 or more and 0.7 or less when analyzed by XPS; A resin composition, wherein the proportion of aluminum element relative to the mass of all particles contained in the resin composition is 0.2 mass% or more and 3.0 mass% or less.
2. The coated particles have a volume cumulative particle size D at 50% cumulative volume by a laser diffraction / scattering particle size distribution measurement method. 50 The resin composition according to claim 1, wherein the particle size is 0.01 μm or more and 3.0 μm or less.
3. The resin composition according to claim 1 or 2, wherein the M element includes at least one of Ba and Sr, and Ti.
4. 4. The resin composition according to claim 1, wherein the metal oxide comprises a compound having a perovskite crystal structure.
5. A resin composition described in any one of claims 1 to 4, wherein the coating layer exists so as to form a continuous film-like portion over the entire surface of the core portion.
6. The resin composition according to claim 1 , wherein the resin composition contains 30 parts by mass or more and 90 parts by mass or less of the coated particles relative to 100 parts by mass of a solid content of the resin composition.
7. 7. The resin composition according to claim 1, wherein the resin comprises at least one selected from the group consisting of an epoxy resin, a polyphenylene ether resin, an aromatic polyamide resin, a polyamideimide resin, a polyimide resin, an active ester resin, a phenolic resin, and a diamine compound.
8. The resin composition according to claim 1 , further comprising barium sulfate particles.
9. The resin composition according to claim 1 , which is in the form of a film and has a thickness of 15 μm or less.
10. A resin-coated metal foil comprising a metal foil and a layer made of the resin composition according to any one of claims 1 to 9 provided on at least one surface of the metal foil.
11. The resin-coated metal foil according to claim 10, wherein the metal foil is a copper foil.
12. The insulating film comprises a first metal foil, a second metal foil, and a resin composition layer sandwiched between the two metal foils, A metal-clad laminate sheet, wherein the resin composition layer comprises a cured product of the resin composition according to claim 1 .
13. The metal-clad laminate sheet according to claim 12, wherein the withstand voltage per unit thickness of the resin composition layer when a DC voltage is applied between the two metal foils is 50 V / µm or more.
14. When a DC voltage of 50 V was applied between the two metal foils, the leakage current was 150 μA / cm 2 The metal-clad laminate sheet according to claim 12 or 13, wherein:
15. The metal-clad laminate sheet according to any one of claims 12 to 14, wherein a peel strength between the metal foil and the resin composition layer is 0.3 kN / m or more.
16. A capacitor element comprising the metal-clad laminate sheet according to any one of claims 12 to 15.
Citation Information
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