Dispersant for metal oxide fine particles and dispersion containing same
The use of polyoxypropylene (poly)glyceryl ether dibasic acid ester as a dispersant addresses the dispersibility issues in non-aqueous dispersion compositions, enhancing the stability and dispersibility of metal oxide fine particles.
Patent Information
- Application Number
- JP2021100412
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-06-22
- Filing Date
- 2021-06-16
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2041-06-16
AI Technical Summary
Conventional polymeric dispersants face issues with reduced dispersibility and aggregation of metal oxide fine particles in non-aqueous dispersion compositions, leading to thickening and sedimentation, which affect productivity and product quality.
Incorporation of polyoxypropylene (poly)glyceryl ether dibasic acid ester as a dispersant for metal oxide microparticles, with specific molecular structures and properties to enhance dispersibility.
The dispersant effectively suppresses re-aggregation and sedimentation, resulting in a dispersion with excellent dispersibility and stability of metal oxide fine particles.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a dispersant and a dispersion containing the dispersant. [Background technology]
[0002] Non-aqueous dispersion compositions containing organic or inorganic powders dispersed in non-aqueous solvents are used in a variety of industrial fields. Examples of organic powders include organic pigments, and non-aqueous dispersion compositions containing organic pigments are used in paints, printing inks, inkjet inks, color filter resists, and writing instrument inks. Examples of inorganic powders include metal oxide fine particles such as ceramic powders. Due to their unique chemical and physical properties, they are used in a wide variety of materials, including pigments, ultraviolet and infrared absorbers, catalysts, antistatic agents, and transparent conductive films. Non-aqueous dispersion compositions containing metal oxide fine particles are also used in coating materials and molding materials that require transparency and high refractive index, dielectric layers in ceramic capacitors, semiconductor substrates, transparent conductive films, conductive inks, various sensors, and electronic components such as liquid crystal display elements, as well as abrasives and fireproofing materials.
[0003] In recent years, in electronic component applications, improvements in product properties such as miniaturization, higher capacity, and higher efficiency of components are desired. To meet these requirements, microparticulation of raw materials such as metal oxides and higher concentrations in non-aqueous dispersion compositions are required. When preparing non-aqueous dispersion compositions, organic or inorganic powders often lack sufficient dispersibility when used alone. Therefore, dispersants are generally used to improve the fluidity and storage stability of non-aqueous dispersion compositions. Many polymeric dispersants have been proposed as dispersants, such as polyacrylic acid and its copolymers, and copolymers of polyoxyalkylene derivatives and maleic anhydride.
[0004] However, with the reduction in particle size, conventional polymeric dispersants have a problem of reduced dispersibility due to the tendency for bridging aggregation, in which the dispersant is adsorbed across particles. The reduction in dispersibility associated with the reduction in particle size of the dispersion leads to problems such as thickening of the non-aqueous dispersion composition and sedimentation of the dispersion. Non-aqueous dispersion compositions with these problems not only lead to reduced productivity, processing properties, and handleability, but also to reduced quality of the final product.
[0005] To solve these problems, Patent Document 1 proposes the use of polyoxypropylene monomethacrylic ether and an ester of trimellitic anhydride, each of which has enhanced lipophilicity, but their effects on metal oxide microparticles were not fully satisfactory.
[0006] Furthermore, in Patent Document 2, by providing a polyoxyalkylene structure to the hydrophobic chain of the dispersant structure, compatibility with the dispersion medium is improved and three-dimensional repulsion can be obtained, but on the other hand, wettability with fine particles is insufficient and more energy is required for dispersion. Therefore, there are problems in that secondary aggregation is likely to occur due to the large amount of heat energy received during dispersion and the viscosity is also high. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-144402 [Patent Document 2] Japanese Patent Application Laid-Open No. 2016-147261 Summary of the Invention [Problem to be solved by the invention]
[0008] An object of the present invention is to provide a dispersant that finely disperses metal oxide fine particles in a non-aqueous solvent, and a dispersion of metal oxide fine particles that has excellent dispersibility. [Means for solving the problem]
[0009] In order to solve the above problems, the present inventors have conducted extensive research and have completed the present invention by incorporating a polyoxypropylene (poly)glyceryl ether dibasic acid ester represented by formula (1) as a dispersant for metal oxide microparticles. [ka] (In the formula, PO represents propylene oxide; k, l, and m represent the number of moles of propylene oxide added and are integers of 0 or greater, and k+l+m=1 to 150. n represents the average degree of polymerization of (poly)glycerin calculated from the hydroxyl value and is an integer of 1 to 20. Ra, Rb, and Rc each independently represent a hydrogen atom or a residue of a dicarboxylic acid having 4 carbon atoms, provided that they are not all hydrogen atoms.) [Effects of the Invention]
[0010] By incorporating the dispersant of the present invention, it is possible to suppress re-aggregation and sedimentation of particles, and to provide a dispersion in which metal oxide fine particles are excellently dispersible. DETAILED DESCRIPTION OF THE INVENTION
[0011] The following describes in more detail the embodiments for carrying out the present invention, but the scope of the present invention is not limited to these embodiments, and the present invention also includes embodiments to which modifications and the like are added as long as they do not deviate from the spirit of the present invention. Note that the range "to" includes the upper and lower limits.
[0012] The (poly)glycerin used in the present invention is glycerin or a polyglycerin having an average degree of polymerization of 2 to 20 calculated from the hydroxyl value, more preferably glycerin or a polyglycerin having an average degree of polymerization of 2 to 10, and even more preferably a polyglycerin having an average degree of polymerization of 2 to 6. Here, the average degree of polymerization is the average degree of polymerization (n) of polyglycerin calculated from the hydroxyl value by terminal group analysis. Specifically, the average degree of polymerization is calculated from the following formulas (Formula 2) and (Formula 3). (Formula 2) Molecular weight=74n+18 (Equation 3) Hydroxyl value = 56110(n + 2) / molecular weight The hydroxyl value in the above formula (3) is a numerical value that indicates the number of hydroxyl groups contained in polyglycerol, and refers to the number of milligrams of potassium hydroxide required to neutralize the acetic acid required to acetylate the free hydroxyl groups contained in 1 g of polyglycerol. The number of milligrams of potassium hydroxide is calculated in accordance with "Standard Test Methods for the Analysis of Fats, Oils and Related Materials, 2013 Edition, Established by the Japan Oil Chemists' Society," edited by the Japan Oil Chemists' Society.
[0013] In the polyglycerol having an average degree of polymerization of 2 to 20 calculated from the hydroxyl value, a composition having a molecular weight distribution is generally used, but two or more polyglycerols having different molecular weight distributions may be mixed, and polyglycerols having an average degree of polymerization of more than 20 may also be used as long as the polyglycerol mixture has an average degree of polymerization of 2 to 20 calculated from the hydroxyl value.
[0014] Polyglycerol can be obtained by dehydration condensation of glycerol, synthesis using glycerol analogues such as glycidol, epichlorohydrin, and glycerol halohydrin, or recovery of synthetic glycerol from the glycerol distillation residue.
[0015] The number of moles of propylene oxide added to the polyoxypropylene (poly)glyceryl ether used in the present invention is 1 to 150 moles, preferably 20 to 150 moles. When the number of moles of propylene oxide added is 20 to 150 moles, the steric hindrance effect is improved, resulting in better dispersibility. In addition, the number of moles of propylene oxide added per hydroxyl group of (poly)glycerin is preferably more than 0 and 30 or less.
[0016] The dicarboxylic acid having 4 carbon atoms used in the present invention is succinic acid, maleic acid, fumaric acid, and anhydrides thereof. These may be used alone or in combination of two or more.
[0017] The polyoxypropylene (poly)glyceryl ether dibasic acid ester of the present invention desirably has an acid value of 20 mgKOH / g to 200 mgKOH / g, preferably 25 mgKOH / g to 180 mgKOH / g, and more preferably 30 mgKOH / g to 170 mgKOH / g. An acid value of 20 mgKOH / g to 200 mgKOH / g improves the effect of inhibiting re-aggregation of metal oxide fine particles, resulting in better dispersibility. Here, the acid value refers to the number of milligrams of potassium hydroxide required to neutralize the carboxyl groups contained in 1 g of the polyoxypropylene (poly)glyceryl ether dibasic acid ester. The number of milligrams of potassium hydroxide is measured in accordance with "Standard Testing Methods for the Analysis of Fats, Oils, and Related Materials, 2013 Edition," compiled by the Japan Oil Chemists' Society, and calculated using the following formula (Formula 4): (Formula 4) Acid value = (5.611×A×F) / B A: Amount (mL) of 0.1 mol / L potassium hydroxide standard solution used F: Factor of 0.1 mol / L potassium hydroxide standard solution B: Sample collection amount (g)
[0018] The dispersion of metal oxide fine particles of the present invention contains a polyoxypropylene (poly)glyceryl ether dibasic acid ester, metal oxide fine particles, and a non-aqueous solvent. The content of the dispersant is preferably 0.01 to 20% by weight, more preferably 0.1 to 10% by weight.
[0019] The metal oxide fine particles contained in the dispersion of the present invention are not particularly limited, but examples thereof include zirconium oxide, titanium oxide, hafnium oxide, zinc oxide, tin oxide, tungsten oxide, iron oxide, aluminum oxide, silicon oxide, molybdenum oxide, vanadium oxide, cobalt oxide, copper oxide, silver oxide, indium tin oxide, indium oxide, and antimony oxide. These may be used alone or in combination of two or more. As the metal oxide fine particles, zirconium oxide, titanium oxide, and hafnium oxide are preferred from the viewpoint of high refractive index.
[0020] The primary particle size of the metal oxide fine particles is usually preferably 100 nm or less, which makes it easier to obtain features such as high transparency of the dispersion.
[0021] The metal oxide fine particles desirably have a Z-average particle size of 300 nm or less, preferably 250 nm or less, and more preferably 200 nm or less, as determined by analyzing scattered light using a particle size distribution analyzer using dynamic light scattering.
[0022] The content of metal oxide fine particles is usually 0.1% by weight to 50% by weight, preferably 1% by weight to 30% by weight. When the content of metal oxide fine particles is 50% by weight or less, the wettability of the metal oxide fine particles with the non-aqueous solvent is improved, resulting in a dispersion with excellent dispersibility. Furthermore, when the content of metal oxide fine particles is 0.1% by weight or more, features such as high refractive index are easily obtained.
[0023] The non-aqueous solvent contained in the dispersion of the present invention is not particularly limited, and examples thereof include esters such as ethyl acetate, butyl acetate, ethyl lactate, propylene glycol monomethyl ether acetate, and γ-butyrolactone, ethers such as diethyl ether, ethylene glycol monomethyl ether (methyl cellosolve), ethylene glycol monoethyl ether (ethyl cellosolve), ethylene glycol monobutyl ether (butyl cellosolve), diethylene glycol monomethyl ether, diethylene glycol monoethyl ether, and propylene glycol monomethyl ether, ketones such as acetone, methyl ethyl ketone, methyl isobutyl ketone, acetylacetone, and cyclohexanone, aromatic hydrocarbons such as benzene, toluene, xylene, and ethylbenzene, and amides such as dimethylformamide, N,N-dimethylacetamide, and N-methylpyrrolidone. These solvents may be used alone or in combination of two or more.
[0024] The ratio of the dispersant to the non-aqueous solvent contained in the dispersion of the present invention is usually 1:3 to 1:10000 by weight, preferably 1:4 to 1:1000, from the viewpoint of the solubility of the dispersant in the dispersion.
[0025] The dispersion of metal oxide microparticles of the present invention can be blended with various additives such as thermoplastic resins, plasticizers, polymerizable monomers such as (meth)acrylic acid esters and epoxies, other dispersants, other surfactants, viscosity modifiers, antifoaming agents, antioxidants, radical polymerization initiators, acid generators, base generators, and water-soluble organic solvents such as alcohols and glycol ethers, within the scope of the invention, so long as the purpose of the dispersion is not impaired.
[0026] The dispersion of metal oxide fine particles of the present invention can be prepared according to a conventionally known preparation method. For example, a method in which metal oxide fine particles are added to a non-aqueous solvent containing the dispersant of the present invention, and then stirred, mixed, and dispersed at room temperature can be used. Examples of dispersing machines include a rocking mill, a paint shaker, a ball mill, a bead mill, a roll mill, a sand mill, a jet mill, a homogenizer, a rotation-revolution mixer, and an ultrasonic dispersing machine, but the dispersion method is not limited to these. Furthermore, beads such as zirconia beads and alumina beads can be used as needed.
[0027] The dispersion of metal oxide fine particles of the present invention may be in a liquid or solid state, and if it is in a solid state, it is sufficient that the liquidity is restored by vigorous stirring or shaking.
[0028] The dispersion of metal oxide fine particles of the present invention has excellent dispersibility and can therefore be used in coating materials, anti-reflection films, optical components and other electronic materials that require transparency and high refractive index. [Example]
[0029] Next, the present invention will be described in detail with reference to examples and comparative examples, but the present invention is not limited to these examples.
[0030] (Synthesis of Dispersants A to G) 301.5 g of polyoxypropylene (poly)glyceryl ether with 40 moles of PO added and 48.6 g of succinic anhydride were placed in a reaction vessel, and sodium acetate was added as a catalyst. The mixture was heated to 70-100°C under a nitrogen stream to react, yielding polyoxypropylene (poly)glyceryl ether succinate ester (Dispersant A) with an acid value of 83.4 mgKOH / g. Similarly, Dispersants B to G were produced by varying the degree of polymerization of polyglycerin, the number of moles of PO added to the polyoxypropylene (poly)glyceryl ether, and the charged weight. The details of each dispersant are shown in Table 1.
[0031] [Table 1]
[0032] Example 1 0.5 g of dispersant A and 8.5 g of toluene were added to a 50 mL plastic container and dissolved, and then 1.0 g of zirconium oxide (UEP-100, manufactured by Daiichi Kigenso Kagaku Kogyo Co., Ltd.) and 30 g of zirconia beads (φ1 mm) were added. This was dispersed at 600 rpm for 15 hours using a rocking mill (RM-05, manufactured by Seiwa Giken Co., Ltd.), and the zirconia beads were then removed by filtration to obtain a zirconium oxide dispersion.
[0033] Examples 2 to 10 In Examples 2 to 10, dispersions were prepared in the same manner as in Example 1, except that the types and amounts of the non-aqueous solvent and dispersant were changed.
[0034] (Comparative Examples 1 to 3) In Comparative Examples 1 to 3, dispersions were prepared in the same manner as in Example 1, Example 4 or Example 6, except that no dispersant was added and the amount of non-aqueous solvent added was increased.
[0035] (Particle size measurement) The dispersion was placed in a disposable cell, and the measurement temperature was set to 25°C. The particle size distribution was measured using a particle size distribution analyzer (Nanosizer ZS-100, manufactured by Malvern Instruments, Inc.) that uses dynamic light scattering. Each measurement was performed three times, and the particle sizes were compared using the average value of the Z-average particle size. The results are shown in Tables 2 and 3.
[0036] [Table 2] *: Zirconium oxide (UEP-100, D50 diameter: 0.6 μm, manufactured by Daiichi Kigenso Kagaku Kogyo Co., Ltd.)
[0037] In Examples 1 and 2, toluene was used as the non-aqueous solvent, and zirconium oxide dispersions having a Z-average particle size of 200 nm or less were obtained, whereas in Comparative Example 1, in which no dispersant was added, thickening and separation occurred, and no dispersion was obtained. Also, in Examples 3 to 5, methyl ethyl ketone was used as the non-aqueous solvent, and zirconium oxide dispersions having a Z-average particle size of 300 nm or less were obtained, whereas in Comparative Example 2, in which no dispersant was added, thickening and separation occurred, and no dispersion was obtained.
[0038] [Table 3] *: Zirconium oxide (UEP-100, D50 diameter: 0.6 μm, manufactured by Daiichi Kigenso Kagaku Kogyo Co., Ltd.)
[0039] In Examples 6 to 10, propylene glycol monomethyl ether was used as the non-aqueous solvent, and zirconium oxide dispersions with a Z-average particle size of 450 nm or less were obtained, whereas in Comparative Example 3, in which no dispersant was added, thickening and separation occurred, and no dispersion was obtained. This demonstrates that dispersions of metal oxide microparticles using specific polyoxypropylene (poly)glyceryl ether dibasic acid esters as dispersants have excellent dispersibility of metal oxide microparticles.
Claims
1. A dispersion of metal oxide fine particles, comprising a dispersant which is a polyoxypropylene (poly)glyceryl ether dibasic acid ester represented by formula (1), metal oxide fine particles, and a non-aqueous solvent. 【Chemistry 1】 (In the formula, PO represents propylene oxide; k, l, and m represent the number of moles of propylene oxide added and are integers of 0 or more, and k+l+m=1 to 150; n represents the average degree of polymerization of (poly)glycerol calculated from the hydroxyl value and is an integer of 1 to 20; Ra, Rb, and Rc each independently represent a hydrogen atom or a residue of a dicarboxylic acid having 4 carbon atoms, provided that they cannot all be hydrogen atoms.)
2. 2. The dispersion of metal oxide fine particles according to claim 1, wherein the acid value of the polyoxypropylene (poly)glyceryl ether dibasic acid ester is 20 mgKOH / g to 200 mgKOH / g.
3. 3. The dispersion of metal oxide fine particles according to claim 1, wherein the blending amount of the dispersant is 0.01% by weight to 20% by weight.
4. 4. The dispersion of metal oxide fine particles according to claim 1, wherein the amount of the metal oxide fine particles blended is 0.1% by weight to 50% by weight.
5. 5. The dispersion of metal oxide fine particles according to claim 1, wherein the metal oxide fine particles are zirconium oxide.
6. A paint or ink containing the dispersion according to any one of claims 1 to 5.
Citation Information
Patent Citations
Dispersing agent, and method for producing the same
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Nonaqueous dispersant and nonaqueous dispersion composition
JP2016147261A
Dispersant
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Metal oxide fine particle aqueous dispersant and dispersion containing the same
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