Microcapsule water dispersion
The aqueous microcapsule dispersion with an inorganic shell and organic core, stabilized by specific additives, addresses the issue of long-term retention and environmental burden in microcapsule technologies.
Patent Information
- Application Number
- JP2022105140
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-30
- Filing Date
- 2022-06-29
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2042-06-29
AI Technical Summary
Existing microcapsule technologies fail to retain encapsulated organic compounds such as fragrances for a long period and may release into the environment, posing a burden on the natural environment.
Aqueous microcapsule dispersion containing a shell made of an inorganic substance and a core with organic compounds, stabilized by additives like amino acids, polyhydroxyamines, and quaternary ammonium hydroxides, enhancing long-term retention and environmental safety.
The solution provides long-term preservation of organic compounds and reduces environmental impact by maintaining microcapsule stability and integrity.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an aqueous microcapsule dispersion, a method for producing an aqueous microcapsule dispersion, and a method for stabilizing an aqueous microcapsule dispersion. [Background technology]
[0002] Various microcapsules encapsulating fragrances or physiologically active substances have been developed and used in a wide range of business fields, including cosmetics, pharmaceuticals, general household products, and printing. Methods for producing such microcapsules include chemical methods such as suspension polymerization, miniemulsion polymerization, emulsion polymerization, precipitation polymerization, dispersion polymerization, interfacial polycondensation, and in-liquid curing; physicochemical methods such as in-liquid drying, phase inversion emulsification, and coacervation; and mechanical methods such as spray drying and heterocoagulation. Many of the methods for producing microcapsules involve obtaining an aqueous dispersion in which microcapsules are dispersed in an aqueous medium. From an industrial perspective, it is desirable to use the resulting aqueous dispersion of microcapsules as is, without performing isolation procedures such as filtration or drying. Therefore, various studies have been conducted on aqueous dispersions of microcapsules.
[0003] Patent Document 1 aims to provide microcapsules having a high concentration of a core substance, and describes microcapsules containing an active ingredient as a core substance, the microcapsules having a microcapsule shell made of an inorganic polymer formed by in situ polymerization using a metal alkoxide or semi-metal alkoxide as a precursor using an oil-in-water emulsion method, and a suspension made of the microcapsules. Patent Document 2 describes a method for preparing an encapsulated lipophilic active substance composition, in which an aqueous emulsion of the active substance composition is mixed with a water-reactive silicon compound to form a suspension of microcapsules having a core of the active substance composition and a shell of a silicon-based network polymer, and the microcapsules are then post-treated with a water-reactive metal alkoxy or acyloxy compound. Patent Document 3 describes a topically applied composition capable of stabilizing an active ingredient and delivering the ingredient, which comprises microcapsules having a core-shell structure, the core containing the active ingredient, the core being encapsulated within the microcapsule shell, and the shell being made of an inorganic polymer obtained by a sol-gel method. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-255915 [Patent Document 2] Special Publication No. 2005-526025 [Patent Document 3] Special Publication No. 2003-534249 Summary of the Invention [Problem to be solved by the invention]
[0005] It has been found that the techniques of Patent Documents 1 to 3 may not be able to retain encapsulated organic compounds such as fragrances for a long period of time. Furthermore, the microcapsules may ultimately be released into the natural environment. Therefore, there is a demand for an aqueous dispersion of microcapsules that can reduce the burden on the natural environment and that is excellent in retaining encapsulated organic compounds such as fragrances even after long-term storage. An object of the present invention is to provide an aqueous dispersion of microcapsules that can reduce the burden on the natural environment and can preserve organic compounds that are active ingredients such as fragrances for a long period of time, a method for producing an aqueous dispersion of microcapsules, and a method for stabilizing an aqueous dispersion of microcapsules.
[0006] The present inventors have found that the above-mentioned problem can be solved by noticing that an aqueous dispersion of microcapsules having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell can retain the organic compounds for a long period of time by adding one or more compounds selected from amino acids, polyhydroxyamines, and quaternary ammonium hydroxides. That is, the present invention provides the following [1] to [3]. [1] A microcapsule aqueous dispersion containing the following components (A) and (B): Component (A): a microcapsule having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell (B) Component: (B1) one or more selected from amino acids, (B2) polyhydroxyamines, and (B3) quaternary ammonium hydroxides [2] A method for producing a microcapsule aqueous dispersion containing the following components (A) and (B): Component (A): a microcapsule having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell (B) Component: (B1) one or more selected from amino acids, (B2) polyhydroxyamines, and (B3) quaternary ammonium hydroxides A method for producing an aqueous microcapsule dispersion, comprising the step of adding component (B) to an aqueous microcapsule dispersion containing component (A). [3] A method for stabilizing an aqueous dispersion of microcapsules, comprising the following components (A) and (B): Component (A): a microcapsule having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell (B) Component: (B1) one or more selected from amino acids, (B2) polyhydroxyamines, and (B3) quaternary ammonium hydroxides A method for stabilizing an aqueous dispersion of microcapsules, comprising adding component (B) to an aqueous dispersion of microcapsules containing component (A), thereby stabilizing the aqueous dispersion of microcapsules. [Effects of the Invention]
[0007] According to the present invention, it is possible to provide an aqueous microcapsule dispersion, a method for producing an aqueous microcapsule dispersion, and a method for stabilizing an aqueous microcapsule dispersion, which can reduce the burden on the natural environment and can preserve organic compounds that are active ingredients such as fragrances contained therein for a long period of time. DETAILED DESCRIPTION OF THE INVENTION
[0008] [Microcapsule water dispersion] The microcapsule aqueous dispersion of the present invention (hereinafter also simply referred to as "aqueous dispersion") contains the following components (A) and (B). Component (A): a microcapsule having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell (B) Component: (B1) one or more selected from amino acids, (B2) polyhydroxyamines, and (B3) quaternary ammonium hydroxides
[0009] The microcapsule aqueous dispersion of the present invention comprises microcapsules, which are component (A), dispersed in an aqueous medium. In this specification, the term "aqueous medium" refers to a liquid containing at least water, preferably a medium in which water accounts for the largest proportion. Examples of components other than water that may be contained in the aqueous medium include aliphatic alcohols having 1 to 4 carbon atoms; ketones having 3 to 8 carbon atoms; ethers such as ethyl ether and tetrahydrofuran; and esters such as methyl acetate. From the viewpoint of improving the dispersion stability and particle size stability of the microcapsules, the content of water in the aqueous medium is preferably 80% by mass or more, more preferably 90% by mass or more, and 100% by mass or less, and even more preferably 100% by mass. As the water, ion-exchanged water, deionized water, or distilled water is preferably used. In this specification, the ability to retain the encapsulated organic compound for a long period of time is also referred to as "long-term retention." In the present invention, "containing component (A) and component (B)" also means "composed of a blend of component (A) and component (B)."
[0010] The reason why the effects of the present invention are obtained is not clear, but will be explained by taking as an example the case of silica microcapsules in which the shell contains silica as a constituent component in an alkaline environment. In general, it is assumed that when the microcapsule aqueous dispersion is in an alkaline environment, the long-term retention of the encapsulated organic compounds is reduced. However, it is considered that the alkaline environment of microcapsule aqueous dispersion is advantageous for the condensation reaction of silica.In the present invention, the nitrogen atom of amino acid, polyhydroxyamine or quaternary ammonium hydroxide contained in aqueous dispersion is positively charged, and the oxygen atom of amino acid, polyhydroxyamine or quaternary ammonium hydroxide is negatively charged, and the functional group or ion of amino acid, polyhydroxyamine or quaternary ammonium hydroxide is localized on the surface of silica microcapsules, and this positively charged nitrogen atom and negatively charged oxygen atom interact to participate in the condensation reaction of silica, so that shell becomes denser and stronger, can suppress the leakage of encapsulated organic compounds, and improve long-term retention. Furthermore, in the present invention, the shell of the microcapsule contains an inorganic substance as a constituent, which can reduce the burden on the natural environment.
[0011] <Component (A)> The aqueous microcapsule dispersion of the present invention contains, as component (A), microcapsules having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell, from the viewpoint of reducing the burden on the natural environment when the microcapsules are released into the external environment. The inorganic material constituting the shell of component (A) is preferably a metal oxide containing a metal element or a metalloid element, and more preferably an inorganic polymer formed by a sol-gel reaction using a metal alkoxide [M(OR)x] as the shell precursor. Here, M is a metal or metalloid element, and R is a hydrocarbon group. Examples of metal or metalloid elements constituting the metal alkoxide include silicon, aluminum, titanium, zirconium, and zinc. From the viewpoint of improving long-term storage and reducing the burden on the natural environment when released into the external environment, the inorganic substance is more preferably an inorganic polymer formed by a sol-gel reaction using one or more metal alkoxides selected from silicon, aluminum, and titanium as a shell precursor, and even more preferably silica formed by a sol-gel reaction using an alkoxysilane as a shell precursor. That is, component (A) is preferably a microcapsule (silica microcapsule) (hereinafter also referred to as "silica capsule") having a shell containing silica as a constituent component and a core containing one or more organic compounds inside the shell.
[0012] The alkoxysilane is preferably a tetraalkoxysilane from the viewpoint of improving long-term retention. From the same viewpoint as above, the tetraalkoxysilane is preferably one having an alkoxy group having from 1 to 4 carbon atoms, more preferably one or more selected from tetramethoxysilane, tetraethoxysilane, and tetraisopropoxysilane, even more preferably one or more selected from tetramethoxysilane and tetraethoxysilane, and still more preferably tetraethoxysilane.
[0013] The organic compound contained in the core of component (A) is preferably one or more selected from fragrances; fragrance precursors; oils; antioxidants; antibacterial agents; fertilizers; surface modifiers for fibers, skin, hair, etc.; cooling agents; dyes; pigments; silicones; solvents; and oil-soluble polymers, more preferably one or more selected from fragrances, fragrance precursors, oils, antioxidants, antibacterial agents, fertilizers, surface modifiers, and solvents, even more preferably one or more selected from fragrances, fragrance precursors, oils, antioxidants, and solvents, still more preferably one or more selected from fragrances, fragrance precursors, and oils, and even more preferably one or more selected from fragrances and fragrance precursors. The organic compounds can be combined as appropriate depending on the intended use of the microcapsules.
[0014] Examples of the fragrance precursor include a compound that releases a fragrance component in response to water, a compound that releases a fragrance component in response to light, and the like. Examples of compounds that release fragrance components in reaction with water include silicate ester compounds having an alkoxy component derived from a fragrance alcohol, fatty acid ester compounds having an alkoxy component derived from a fragrance alcohol, acetal compounds or hemiacetal compounds obtained by reacting a carbonyl component derived from a fragrance aldehyde or fragrance ketone with an alcohol compound, Schiff base compounds obtained by reacting a carbonyl component derived from a fragrance aldehyde or fragrance ketone with a primary amine compound, and hemiaminal compounds or hydrazone compounds obtained by reacting a carbonyl component derived from a fragrance aldehyde or fragrance ketone with a hydrazine compound. Examples of compounds that release fragrance components in response to light include 2-nitrobenzyl ether compounds having an alkoxy component derived from a fragrance alcohol, α-ketoester compounds having a carbonyl component derived from a fragrance aldehyde or fragrance ketone, coumaric acid ester compounds having an alkoxy component derived from a fragrance alcohol, etc. These fragrance precursors may be used as polymers, such as the reaction product of a portion of the carboxyl groups of polyacrylic acid with a fragrance alcohol.
[0015] From the viewpoint of long-term storage, the organic compound preferably has a moderate hydrophobicity. The cLogP value, which is the calculated value of the common logarithm (logP) of the partition coefficient P between n-octanol and water (n-octanol / water), can be used as an index representing the hydrophilicity or hydrophobicity of the organic compound. The cLogP value is "LogP (cLogP)" calculated by the method described in A. Leo, Comprehensive Medicinal Chemistry, Vol. 4, C. Hansch, P. G. Sammens, J. B. Taylor and C. A Ramsden, Eds., p. 295, Pergamon Press, 1990, and is calculated using the program CLOGP v4.01. When the organic compound is composed of multiple components, the cLogP value of the organic compound can be calculated by multiplying the cLogP value of each component by the volume ratio of each component and then summing the results. This calculation method takes into account all components whose content in the organic compound is 0.5% by mass or more. Furthermore, components whose content in the organic compound is less than 0.5% by mass and whose specific gravity and cLogP value are known are also included in the calculation. The cLogP value of the organic compound is preferably 1 or more, more preferably 2 or more, even more preferably 3 or more, and is preferably 30 or less, more preferably 20 or less, even more preferably 10 or less.
[0016] The shell of the silica capsule encapsulates the core, contains silica as a constituent component, and preferably has an average thickness of 5 nm or more and 20 nm or less. In order to improve the dispersion stability of microcapsules and improve long-term preservation, the shell of the silica capsule is preferably a multi-layer shell, and has an inner shell that comprises silica as a constituent component, which is hydrolysis polycondensation product of alkoxysilane, and an outer shell that further comprises silica as a constituent component, which is hydrolysis polycondensation product of alkoxysilane, outside of this inner shell.The specific example of this silica capsule can be, for example, the silica capsule described in JP 2015-128762 A. When the shell of the silica capsule is a multilayer shell having an inner shell and an outer shell, the inner shell encapsulates the core, contains silica as a constituent component, and preferably has an average thickness of 5 nm or more and 20 nm or less, and the outer shell encapsulates the inner shell, contains silica as a constituent component, and preferably has an average thickness of 10 nm or more and 100 nm or less. The average shell thickness of the silica capsules, as well as the average thickness of the inner and outer shells of the silica capsules, can be measured by observation with a transmission electron microscope (TEM). Specifically, the thickness of the shell or the inner and outer shells is measured on a photograph under observation with a transmission electron microscope. This operation is performed with the field of view changed five times. The distribution of the average thickness of the shell or the inner and outer shells is determined from the obtained data. The magnification of the transmission electron microscope is approximately 10,000 times or more and 100,000 times or less, but is adjusted appropriately depending on the size of the silica capsules. Here, as the transmission electron microscope (TEM), for example, a product name "JEM-2100" (manufactured by JEOL Ltd.) can be used.
[0017] The component (A) can be suitably synthesized. When component (A) is silica capsules, the silica capsules may be produced, for example, by a method including the following step I as a suitable production method. Step I: A step of subjecting an emulsion obtained by emulsifying an aqueous phase component containing a cationic surfactant with an oil phase component containing an organic compound and a tetraalkoxysilane to a sol-gel reaction under acidic conditions to form silica capsules having a core and a shell composed of silica, and obtaining an aqueous dispersion containing the silica capsules.
[0018] Examples of the cationic surfactant used in step I include alkylamine salts and alkyl quaternary ammonium salts. The number of carbon atoms in the alkyl group of the alkylamine salts and alkyl quaternary ammonium salts is preferably 10 or more and 22 or less. In step I, the content of the cationic surfactant in the aqueous phase component is preferably 0.05% by mass or more and 10% by mass or less, from the viewpoint of dispersion stability of the emulsified droplets. The amount of tetraalkoxysilane used in step I is preferably 10 parts by mass or more relative to 100 parts by mass of the organic compound used in step I, from the viewpoint of accelerating the sol-gel reaction and forming a sufficiently dense shell, and is preferably 60 parts by mass or less, from the viewpoint of preventing excess tetraalkoxysilane from remaining in the organic compound. The amount of the oil phase component in the total amount of the emulsion used in step I is preferably 5% by mass or more and 50% by mass or less, from the viewpoint of production efficiency. The stirring means used for preparing the emulsion is not particularly limited, but a homogenizer, a high-pressure disperser, an ultrasonic disperser, or the like having a strong shearing force can be used. The temperature during mixing and emulsification of the aqueous phase component and the oil phase component is preferably 5°C or higher and 50°C or lower from the viewpoint of production stability. The rotation speed of the stirring means and the time for mixing and emulsifying the aqueous phase component and the oil phase component are determined based on the median diameter D of the emulsion droplets of the emulsion. 50 is preferably adjusted appropriately so that it falls within the range described below. Median diameter D of the emulsion droplets in the emulsion of step I 50 is preferably 0.1 μm or more from the viewpoint of reducing the specific surface area relative to the environment outside the silica capsule and improving the retention of organic compounds, and is preferably 50 μm or less from the viewpoint of reducing the particle size of the silica capsule and improving the physical strength of the silica capsule. Median diameter of emulsion droplets D 50 can be measured by the method described in the Examples.
[0019] The initial pH of the sol-gel reaction in step I is preferably 3.0 or higher from the viewpoint of maintaining a balance between the hydrolysis reaction and condensation reaction of the tetraalkoxysilane, and from the viewpoint of suppressing the formation of a highly hydrophilic sol and promoting the progress of encapsulation, and is preferably 4.5 or lower from the viewpoint of suppressing the simultaneous formation of a silica shell and aggregation of emulsified droplets and obtaining silica capsules with a dense shell. The pH of the emulsion may be adjusted using a pH adjuster to adjust the initial pH to a desired level depending on the acidity or alkalinity of the oil phase components including the organic compound. Examples of acidic pH adjusters include inorganic acids such as hydrochloric acid, nitric acid, and sulfuric acid, organic acids such as acetic acid and citric acid, and solutions prepared by adding cation exchange resins to water, ethanol, etc., and preferably at least one selected from hydrochloric acid, sulfuric acid, nitric acid, and citric acid. Examples of alkaline pH adjusters include sodium hydroxide, sodium bicarbonate, potassium hydroxide, ammonium hydroxide, monoethanolamine, diethanolamine, triethanolamine, and trishydroxymethylaminomethane, and preferably at least one selected from sodium hydroxide and ammonium hydroxide. The pH of the emulsion may fall below the desired value, in which case it is preferable to adjust it using the alkaline pH adjuster described above.
[0020] The reaction temperature of the sol-gel reaction in step I can be selected from any value as long as it is above the melting point and below the boiling point of water contained as the aqueous phase, but from the viewpoint of controlling the balance between the hydrolysis reaction and the condensation reaction in the sol-gel reaction and forming a dense shell, it is preferable to set the temperature within a certain range, preferably from 5°C to 60°C, more preferably from 10°C to 50°C. The reaction time for the sol-gel reaction in step I is preferably 0.5 hours or more and 50 hours or less, when the start of the reaction is defined as when the reaction system reaches a predetermined reaction temperature.
[0021] Furthermore, when the shell of the silica capsule is the aforementioned multilayer shell, a specific example of such silica capsules preferably contains silica as a constituent component, which is formed by further adding tetraalkoxysilane as a silica precursor to an aqueous dispersion containing the silica capsules obtained in step I (hereinafter referred to as silica capsules (1)) and carrying out a sol-gel reaction in two stages. That is, the silica capsules in this case are preferably produced by a method including the following steps 1 and 2. Step 1: A step of subjecting an emulsion obtained by emulsifying an aqueous phase component containing a cationic surfactant and an oil phase component containing an organic compound and a tetraalkoxysilane to a sol-gel reaction under acidic conditions to form silica capsules (1) having a core and a first shell composed of silica, and obtaining an aqueous dispersion containing the silica capsules (1). Step 2: A step of adding tetraalkoxysilane to the aqueous dispersion containing the silica capsules (1) obtained in Step 1 to carry out a sol-gel reaction, thereby forming silica capsules having a second shell encapsulating the first shell.
[0022] In this specification, when performing steps 1 and 2, "encapsulating the first shell" means encapsulating the first shell of the silica capsule (1) formed in step 1, and also includes encapsulating the silica capsule (1). By step 2, an additional shell is formed on the silica capsules formed in step 1, and the silica capsules obtained in step 2 are thought to have a shell with an increased thickness overall, with the shell formed in step 1 as the inner shell and the shell formed in step 2 as the outer shell.
[0023] Step 1 can be carried out in the same manner as in Step I above. The amount of tetraalkoxysilane used in step 2 is preferably 7 parts by mass or more relative to 100 parts by mass of the organic compound used in step 1, from the viewpoint of forming a second shell that encapsulates the first shell, and is preferably 200 parts by mass or less, from the viewpoint of suppressing the generation of silica sol that disperses in the aqueous phase, improving the dispersion stability of the silica capsules, and improving long-term storage stability. The total amount of tetraalkoxysilane used when steps 1 and 2 are included, i.e., the total amount of tetraalkoxysilane used in steps 1 and 2, is preferably 30 parts by mass or more and preferably 250 parts by mass or less, relative to 100 parts by mass of the organic compound used in step 1.
[0024] (A) Median diameter D of the microcapsules of component50 is, based on Stokes' equation, from the viewpoint of improving dispersion stability and enhancing long-term retention, preferably 100 μm or less, more preferably 75 μm or less, even more preferably 50 μm or less, even more preferably 30 μm or less, and even more preferably 10 μm or less. From the viewpoint of reducing the specific surface area of the microcapsules and enhancing long-term retention, it is preferably 0.01 μm or more, more preferably 0.05 μm or more, even more preferably 0.07 μm or more, even more preferably 0.1 μm or more, even more preferably 0.5 μm or more, and even more preferably 1 μm or more. The median diameter D of component (A) 50 can be measured by the method described in the Examples.
[0025] From the viewpoint of suppressing floating or settling of the microcapsules over time, improving dispersion stability, and improving long-term retention, the difference in specific gravity between component (A) and the aqueous medium is preferably less than 0.30, more preferably less than 0.20, even more preferably less than 0.15, even more preferably less than 0.10, even more preferably less than 0.05, even more preferably less than 0.01, and even more preferably there is no difference in specific gravity. The specific gravity of component (A) is determined by the specific gravity of the shell and core that make up component (A) and the mass ratio of the shell to the core.
[0026] <(B) component> In order to improve long-term storage properties, the microcapsule aqueous dispersion of the present invention contains, as component (B), one or more selected from (B1) an amino acid, (B2) a polyhydroxyamine, and (B3) a quaternary ammonium hydroxide. From the viewpoint of improving long-term storage stability, component (B) may have a buffering effect capable of maintaining the pH of the aqueous microcapsule dispersion of the present invention in an alkaline environment. From the same viewpoint as above, component (B) is preferably capable of maintaining the pH of the aqueous microcapsule dispersion of the present invention at 25°C from 7.5 to 11.0. The component (B) may be used alone or in combination of two or more.
[0027] The acid dissociation exponent pKa at 25°C in at least one dissociation stage of component (B) is preferably 7.5 or more, more preferably 8.0 or more, even more preferably 9.0 or more, from the viewpoint of maintaining the pH of the microcapsule aqueous dispersion in an alkaline environment and improving long-term storage stability, and is preferably 13.0 or less, more preferably 12.0 or less, even more preferably 11.0 or less, and even more preferably 10.0 or less. In the present invention, it is sufficient that the acid dissociation exponent pKa of at least one dissociation stage of component (B) is within the above-mentioned range. In other words, when component (B) has multiple dissociation stages, it is sufficient that the acid dissociation exponent pKa of at least one dissociation stage is within the above-mentioned range. In the present invention, the acid dissociation index (pKa) of component (B) at 25°C is the pKa value of the conjugate acid calculated using "Chemicalize" (https: / / chemicalize.com / welcome), an online platform for chemical calculation, search, and text processing provided by ChemAxon Ltd. Specifically, pKa is calculated using Chemicalize by inputting the chemical structure of the target compound in a single line of text using SMILES notation.
[0028] (B1) The amino acids include neutral amino acids, acidic amino acids, and basic amino acids. Examples of neutral amino acids include aliphatic amino acids, aromatic amino acids, and heterocyclic amino acids, with aliphatic amino acids being preferred. Examples of aliphatic amino acids include monoaminomonocarboxylic acids such as glycine, alanine, valine, leucine, and isoleucine; hydroxymonoaminomonocarboxylic acids such as serine and threonine; monoaminodicarboxylic acids such as aspartic acid and glutamic acid; diaminomonocarboxylic acids such as acid amide amino acids such as asparagine and glutamine; and sulfur-containing amino acids such as cysteine, cystine, and methionine. Acidic amino acids include, for example, glutamic acid and aspartic acid. Examples of basic amino acids include lysine, hydroxylysine, histidine, and arginine.
[0029] (B2) Preferred examples of polyhydroxyamines include organic compounds having one amino group and two or more hydroxy groups. The amino group may be a primary amino group (-NH2), a secondary amino group (-NHR 1 , =NH (imino group)), tertiary amino group (-NR 1 R 2 ) etc. Here, R 1 ~R 3 represents a methyl group, an ethyl group, a propyl group, or an isopropyl group. Specific examples of (B2) polyhydroxyamine include one or more selected from dimethanolamine, trimethanolamine, diethanolamine, triethanolamine, N-methyldiethanolamine, dipropanolamine, tripropanolamine, diisopropanolamine, triisopropanolamine, trishydroxymethylaminomethane, and 2-amino-2-methyl-1,3-propanediol. Among these, (B2) polyhydroxyamine is more preferably one or more selected from diethanolamine, triethanolamine, and trishydroxymethylaminomethane, and even more preferably trishydroxymethylaminomethane.
[0030] The (B3) quaternary ammonium hydroxide is preferably a tetraalkylammonium hydroxide. Specific examples of the (B3) quaternary ammonium hydroxide include one or more selected from tetramethylammonium hydroxide (TMAH), tetraethylammonium hydroxide (TEAH), tetrabutylammonium hydroxide (TBAH), tetrahexylammonium hydroxide (THAH), and benzyltrimethylammonium hydroxide (BTMAH). Among these, the (B3) quaternary ammonium hydroxide is more preferably tetramethylammonium hydroxide.
[0031] Among these, from the viewpoint of maintaining the pH of the microcapsule aqueous dispersion in an alkaline environment and improving long-term storage stability, the (B) component is preferably at least one selected from (B1) amino acids and (B2) polyhydroxyamines, more preferably contains (B1) amino acids, and even more preferably is (B1) amino acids. When component (B) contains an amino acid (B1), the amino acid (B1) is preferably one or more selected from neutral amino acids and acidic amino acids, more preferably a neutral amino acid, even more preferably a monoamino monocarboxylic acid, still more preferably one or more selected from glycine and alanine, and even more preferably glycine.
[0032] <(C) component> From the viewpoint of improving long-term storage properties, the microcapsule aqueous dispersion of the present invention preferably further contains an alkali agent (excluding component (B)) as component (C). In the present invention, "further containing component (C)" also means "further containing component (C)." The component (C) is preferably contained or blended in order to adjust the aqueous microcapsule dispersion to a desired alkaline environment. Component (C) may be an inorganic alkali agent or an organic alkali agent, and is not particularly limited as long as it is other than component (B). Component (C) may be used alone or in combination of two or more types.
[0033] Examples of inorganic alkaline agents include alkali metal hydroxides such as sodium hydroxide and potassium hydroxide; alkali metal silicates such as potassium silicate (potassium silicate No. 1, potassium silicate No. 2, potassium orthosilicate, potassium metasilicate, etc.) and sodium silicate (sodium silicate No. 1, sodium silicate No. 2, sodium orthosilicate, sodium metasilicate, etc.); alkali metal carbonates such as disodium carbonate, sodium bicarbonate, dipotassium carbonate; alkali metal phosphates such as trisodium phosphate; alkali metal borates such as sodium borate; and ammonia.
[0034] Examples of the organic alkaline agent include organic amines such as monohydroxyalkylamines and alkylamines. Examples of monohydroxyalkylamines include monomethanolamine, monoethanolamine, N-methylethanolamine, monopropanolamine, monoisopropanolamine, N-methylpropanolamine, N-(2-aminoethyl)ethanolamine, and 2-amino-2-methyl-1-propanol. Examples of alkylamines include monomethylamine, dimethylamine, monoethylamine, diethylamine, triethylamine, mono-n-propylamine, monoisopropylamine, diisopropylamine, triisopropylamine, mono-n-butylamine, mono-tert-butylamine, mono-sec-butylamine, mono-2-ethylhexylamine, tri-n-octylamine, and N-methylethylamine. The total number of carbon atoms in the organic amine is preferably 1 or more, more preferably 2 or more, and preferably 10 or less, more preferably 8 or less, even more preferably 6 or less, and still more preferably 4 or less.
[0035] Among these, from the viewpoints of ease of preparation under the desired alkaline environment, ease of availability, economy, etc., component (C) is preferably one or more selected from alkali metal hydroxides, silicates, carbonates, and phosphates, and organic amines, more preferably one or more selected from alkali metal silicates and monohydroxyalkylamines having a total carbon number of 1 to 10, even more preferably one or more selected from sodium silicate and monohydroxyalkylamines having a total carbon number of 2 to 6, and still more preferably one or more selected from sodium silicate No. 2 and monoethanolamine.
[0036] <(D) component> From the viewpoint of improving the dispersion stability of the microcapsules, the microcapsule aqueous dispersion of the present invention preferably further contains a dispersant as component (D). In the present invention, "further containing component (D)" also means "further containing component (D)." Examples of the component (D) include anionic surfactants and nonionic surfactants. The component (D) may be used alone or in combination of two or more.
[0037] Anionic surfactants have anionic groups and lipophilic groups in the molecule as hydrophilic groups, from the viewpoint of improving long-term retention. The anionic groups include groups that dissociate to release hydrogen ions, such as sulfate ester groups (-OSO3M), sulfonic acid groups (-SO3M), carboxyl groups (-COOM), and phosphate groups (-OPO3M2), or their dissociated ionic forms (-OSO3 - , -SO3 - , -COO - , -OPO3 2- , -OPO3 - In the above chemical formula, M represents a counter ion of the anionic group. Examples of counter ions of the anionic group of an anionic surfactant include alkali metal ions such as sodium ion and potassium ion; alkaline earth metal ions such as calcium ion and magnesium ion; ammonium ion; and alkanolammonium having 1 to 3 alkanol groups having 2 or 3 carbon atoms (for example, monoethanolammonium, diethanolammonium, triethanolammonium, triisopropanolammonium, etc.).
[0038] Examples of the anionic surfactant include low molecular weight dispersants having an anionic group and polymeric dispersants having an anionic group. Examples of low molecular weight dispersants having an anionic group include sulfonates such as linear alkylbenzenesulfonic acid (LAS) salts; sulfates such as alkyl sulfates, polyoxyethylene alkyl ether sulfates, and polyoxyethylene polyoxypropylene alkyl ether sulfates; and carboxylates such as alkenyl succinates and fatty acid salts having from 8 to 22 carbon atoms. Among these, the low molecular weight dispersant having an anionic group is preferably a linear alkylbenzene sulfonate. A specific example of the linear alkylbenzene sulfonate is sodium dodecylbenzene sulfonate.
[0039] The polymer dispersant having an anionic group is preferably a polymer dispersant having at least one anionic group selected from a carboxy group and a sulfonic acid group. The polymer dispersant having a carboxy group preferably contains a structural unit derived from at least one carboxy group-containing vinyl monomer selected from acrylic acid, methacrylic acid, maleic acid, and maleic anhydride, and is more preferably at least one selected from acrylic acid homopolymers, methacrylic acid homopolymers, acrylic acid / maleic acid copolymers, methacrylic acid / maleic acid copolymers, acrylic acid / maleic anhydride copolymers, methacrylic acid / maleic anhydride copolymers, and salts thereof. Examples of polymer dispersants having a sulfonic acid group include salts of aromatic sulfonic acid formalin condensates, such as the sodium salt of β-naphthalene sulfonic acid formalin condensate. Among these, the polymer dispersant having an anionic group is more preferably one or more selected from polymer dispersants having a carboxy group, and even more preferably one or more selected from acrylic acid / maleic acid copolymer, acrylic acid / maleic anhydride copolymer, and salts thereof.
[0040] Examples of the nonionic dispersant include a nonionic surfactant. Examples of nonionic surfactants include polyoxyethylene alkyl ethers, sorbitol fatty acid esters, sorbitan fatty acid esters, glycerin fatty acid esters, pentaerythritol fatty acid esters, polyoxyethylene fatty acid esters, alkylphenol ethylene oxide adducts, higher alkylamine ethylene oxide adducts, and polypropylene glycol ethylene oxide adducts, each of which has an alkyl group with 8 to 22 carbon atoms.
[0041] As described above, from the viewpoint of improving the dispersion stability of the microcapsules and improving their long-term retention, the component (D) is preferably an anionic surfactant, more preferably one or more selected from low-molecular-weight dispersants having an anionic group and polymeric dispersants having an anionic group, even more preferably one or more selected from linear alkylbenzene sulfonates and polymeric dispersants having at least one anionic group selected from carboxy groups and sulfonic acid groups, even more preferably one or more selected from linear alkylbenzene sulfonates and polymeric dispersants having a carboxy group, and even more preferably More preferably, the dispersant is at least one selected from linear alkylbenzene sulfonates, and polymeric dispersants having a carboxy group that contain a structural unit derived from at least one carboxy group-containing vinyl monomer selected from acrylic acid, methacrylic acid, maleic acid, and maleic anhydride, and even more preferably, the dispersant is at least one selected from sodium dodecylbenzene sulfonate, acrylic acid homopolymers, methacrylic acid homopolymers, acrylic acid / maleic acid copolymers, methacrylic acid / maleic acid copolymers, acrylic acid / maleic anhydride copolymers, methacrylic acid / maleic anhydride copolymers, and salts of these homopolymers or copolymers.
[0042] The microcapsule aqueous dispersion of the present invention may contain other components in addition to components (A) to (D), as necessary, such as dyes, preservatives, antioxidants, UV absorbers, shell surface modifiers, thickeners, deposition aids, and rheology adjusters.
[0043] In order to incorporate the microcapsule aqueous dispersion of the present invention into various preparations, the aqueous dispersion of the microcapsules of the present invention may previously contain, as necessary, other additives than the components (A) to (D), such as fabric softeners, fabric freshening agents, fabric strengthening agents, enzymes, builders, hair conditioning agents, skin conditioning agents, fragrances, clays, zeolites, silicones, etc.
[0044] [Method of manufacturing a microcapsule aqueous dispersion] The method for producing the aqueous microcapsule dispersion of the present invention is not particularly limited. For example, the aqueous microcapsule dispersion can be produced by a method including a step of mixing components (A) and (B), which have been previously produced by known methods, and, if necessary, components (C) and (D) and the other components described above. In particular, from the viewpoints of improving long-term storage stability and ease of production, the method for producing the microcapsule aqueous dispersion of the present invention is preferably a method including a step of adding component (B) to a microcapsule aqueous dispersion containing component (A). In the method for producing the microcapsule aqueous dispersion of the present invention, when component (B) is added to the microcapsule aqueous dispersion containing component (A), component (C) or component (D) and the other components described above may also be added as necessary.
[0045] For example, when component (A) is silica capsules, the method for producing the microcapsule aqueous dispersion of the present invention preferably includes a step of mixing an aqueous dispersion containing silica capsules as component (A), component (B), and, if necessary, component (C) or (D) and the other components described above. The aqueous dispersion containing silica capsules can be obtained by the above-mentioned method. The order of addition of each component is not particularly limited, but it is preferable to add component (B) and, if necessary, component (C) in this order to the microcapsule aqueous dispersion containing component (A), adjust the pH, and then add the other components described above as necessary. Component (B) and the optional component (C) may be added as an aqueous solution as necessary. Furthermore, when the microcapsule aqueous dispersion contains component (D), it is preferable to add component (D) to the microcapsule aqueous dispersion containing component (A), then add component (B) and, if necessary, component (C) in this order to adjust the pH, and then add the other components described above if necessary. Component (D) may also be added as an aqueous solution if necessary. The mixing temperature of the microcapsule aqueous dispersion containing component (A), component (B), and optionally component (C) or (D) and other components is preferably 15°C or higher, more preferably 20°C or higher, and is preferably 35°C or lower, more preferably 30°C or lower, from the viewpoint of improving the dispersion stability of the microcapsules and improving their long-term storage properties. The components can be mixed using a known stirring device or the like.
[0046] (Composition of microcapsule aqueous dispersion) The content or blending amount of component (A) in the microcapsule aqueous dispersion of the present invention is preferably 50% by mass or less, more preferably 45% by mass or less, even more preferably 40% by mass or less, still more preferably 35% by mass or less, and even more preferably 30% by mass or less, from the viewpoint of reducing the viscosity of the aqueous dispersion and improving handleability, and is preferably 5% by mass or more, more preferably 10% by mass or more, even more preferably 15% by mass or more, still more preferably 18% by mass or more, and even more preferably 20% by mass or more, from the viewpoint of facilitating the preparation of a liquid composition or product using the aqueous dispersion.
[0047] From the viewpoint of improving long-term storage stability, the content or blending amount of component (B) in the microcapsule aqueous dispersion according to the present invention is preferably 0.1% by mass or more, more preferably 0.15% by mass or more, even more preferably 0.2% by mass or more, and is preferably 1% by mass or less, more preferably 0.7% by mass or less, even more preferably 0.5% by mass or less, still more preferably 0.4% by mass or less, and even more preferably 0.3% by mass or less.
[0048] The content or blending amount of component (B) per 100 parts by mass of component (A) in the microcapsule aqueous dispersion of the present invention is preferably 0.1 parts by mass or more, more preferably 0.5 parts by mass or more, and even more preferably 0.9 parts by mass or more, from the viewpoint of improving long-term storage stability, and is preferably 5.0 parts by mass or less, more preferably 4.0 parts by mass or less, even more preferably 3.0 parts by mass or less, and even more preferably 2.0 parts by mass or less, from the viewpoint of suppressing the salt concentration in the aqueous dispersion and improving the dispersion stability of the microcapsules.
[0049] When the microcapsule aqueous dispersion according to the present invention contains component (D), the content or blending amount of component (D) in the microcapsule aqueous dispersion is, from the viewpoint of improving the dispersion stability of the microcapsules, preferably 0.05% by mass or more, more preferably 0.07% by mass or more, even more preferably 0.1% by mass or more, and is preferably 3% by mass or less, more preferably 2% by mass or less, even more preferably 1% by mass or less, still more preferably 0.7% by mass or less, and even more preferably 0.5% by mass or less.
[0050] The content or blending amount of component (D) per 100 parts by mass of component (A) in the microcapsule aqueous dispersion of the present invention is preferably 0.1 parts by mass or more, more preferably 0.3 parts by mass or more, and even more preferably 0.5 parts by mass or more, from the viewpoints of improving the dispersion stability of the microcapsules, suppressing the occurrence of cracks between capsules due to aggregation of the microcapsules, and improving long-term storage stability, and from the viewpoints of suppressing foaming and improving handleability, it is preferably 10 parts by mass or less, more preferably 9.0 parts by mass or less, even more preferably 8.0 parts by mass or less, still more preferably 7.0 parts by mass or less, still more preferably 5.0 parts by mass or less, still more preferably 3.0 parts by mass or less, still more preferably 2.0 parts by mass or less, and still more preferably 1.7 parts by mass or less.
[0051] From the viewpoint of improving long-term storage stability by adjusting to a desired alkaline environment and from the viewpoint of ease of handling, the pH of the microcapsule aqueous dispersion according to the present invention is preferably 7.5 or more, more preferably 8.0 or more, even more preferably 8.5 or more, and still more preferably 9.0 or more, and is preferably 11.0 or less, more preferably 10.5 or less, and even more preferably 10.0 or less. The pH of the microcapsule aqueous dispersion can be measured by the method described in the Examples. In the present invention, the component (C) is preferably contained in or blended into the aqueous dispersion of microcapsules so that the pH of the aqueous dispersion of microcapsules falls within the above range.
[0052] The viscosity at 25°C of the microcapsule aqueous dispersion of the present invention is preferably 1 mPa·s or more, more preferably 2 mPa·s or more, even more preferably 3 mPa·s or more, and preferably 4,000 mPa·s or less, more preferably 2,000 mPa·s or less, even more preferably 1,000 mPa·s or less, still more preferably 500 mPa·s or less, even more preferably 100 mPa·s or less, still more preferably 50 mPa·s or less, and even more preferably 30 mPa·s or less. The viscosity at 25°C of the aqueous microcapsule dispersion of the present invention can be measured by the method described in the Examples.
[0053] The microcapsule aqueous dispersion according to the present invention has excellent long-term storage properties, is easy to handle, and has a low environmental impact, and therefore can be used in a variety of applications, including cosmetics such as emulsions, lotions, skin care products, beauty serums, creams, gel preparations, hair treatment agents, and quasi-drugs, textile treatment agents such as detergents, fabric softeners, and anti-wrinkle sprays, hygiene products such as disposable diapers, and fragrances, and can be suitably used in the production of these applications.
[0054] The microcapsule aqueous dispersion according to the present invention is preferably used by being contained in or blended with a liquid composition such as a detergent composition, a fabric treatment composition, a cosmetic composition, an air freshener composition, a deodorant composition, etc. The composition is preferably one or more selected from detergent compositions such as powder detergent compositions and liquid detergent compositions; and fabric treatment compositions such as softener compositions, more preferably a fabric treatment composition, and even more preferably a softener composition.
[0055] [Method for stabilizing aqueous microcapsule dispersion] The method for stabilizing a microcapsule aqueous dispersion of the present invention is a method for stabilizing a microcapsule aqueous dispersion, which comprises the following components (A) and (B) from the viewpoint of improving long-term storage stability: Component (A): a microcapsule having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell (B) Component: (B1) one or more selected from amino acids, (B2) polyhydroxyamines, and (B3) quaternary ammonium hydroxides This method stabilizes the aqueous dispersion of microcapsules by adding component (B) to an aqueous dispersion of microcapsules containing component (A). In the present invention, "stabilization" means maintaining the organic compounds encapsulated in the microcapsules for a long period of time by suppressing leakage of the organic compounds, which are active ingredients such as fragrances, encapsulated in the microcapsules contained in the microcapsule aqueous dispersion. In the method for stabilizing a microcapsule aqueous dispersion of the present invention, when component (B) is added to a microcapsule aqueous dispersion containing component (A), component (C) or component (D) and the other components described above may also be added as necessary. Here, explanations of components (A) to (D) and other components are omitted because they are the same as those in the section on the microcapsule aqueous dispersion described above.
[0056] For example, when component (A) is silica capsules, the stabilization method for the aqueous microcapsule dispersion of the present invention preferably includes a step of mixing an aqueous dispersion containing silica capsules as component (A), component (B), and, if necessary, component (C) or (D) and the other components described above. The aqueous dispersion containing silica capsules can be obtained by the above-mentioned method. The order of addition of each component is not particularly limited, but it is preferable to add component (B) and, if necessary, component (C) in this order to the microcapsule aqueous dispersion containing component (A), adjust the pH, and then add the other components described above as necessary. Component (B) and the optional component (C) may be added as an aqueous solution as necessary. Furthermore, when the microcapsule aqueous dispersion contains component (D), it is preferable to add component (D) to the microcapsule aqueous dispersion containing component (A), then add component (B) and, if necessary, component (C) in this order to adjust the pH, and then add the other components described above if necessary. Component (D) may also be added as an aqueous solution if necessary. The mixing temperature of the microcapsule aqueous dispersion containing component (A), component (B), and optionally component (C) or (D) and other components is preferably 15°C or higher, more preferably 20°C or higher, and is preferably 35°C or lower, more preferably 30°C or lower, from the viewpoint of improving the dispersion stability of the microcapsules and improving their long-term storage properties. The components can be mixed using a known stirring device or the like.
[0057] In relation to the above-described embodiments, the present invention further discloses the following aqueous microcapsule dispersion, a method for producing an aqueous microcapsule dispersion, and a method for stabilizing an aqueous microcapsule dispersion. <1> An aqueous microcapsule dispersion containing the following components (A) and (B): Component (A): a microcapsule having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell (B) Component: (B1) one or more selected from amino acids, (B2) polyhydroxyamines, and (B3) quaternary ammonium hydroxides
[0058] <2> The acid dissociation index pKa at 25°C in at least one dissociation stage of component (B) is preferably 7.5 or more, more preferably 8.0 or more, even more preferably 9.0 or more, and is preferably 13.0 or less, more preferably 12.0 or less, even more preferably 11.0 or less, and still more preferably 10.0 or less. <1> The microcapsule aqueous dispersion according to claim 1. <3> The component (B) is preferably at least one selected from (B1) an amino acid and (B2) a polyhydroxyamine, more preferably contains (B1) an amino acid, and even more preferably is (B1) an amino acid. <1> or <2> The microcapsule aqueous dispersion according to claim 1. <4> (B1) The amino acid is preferably one or more selected from neutral amino acids and acidic amino acids, more preferably a neutral amino acid, even more preferably a monoamino monocarboxylic acid, still more preferably one or more selected from glycine and alanine, and even more preferably glycine. <1> ~ <3> The microcapsule aqueous dispersion according to any one of the above.
[0059] <5> The above-mentioned composition further contains an alkali agent (excluding component (B)) as component (C). <1> ~ <4> The microcapsule aqueous dispersion according to any one of the above. <6> The component (C) is preferably at least one selected from alkali metal hydroxides, silicates, carbonates, and phosphates, and organic amines, more preferably at least one selected from alkali metal silicates and monohydroxyalkylamines having a total carbon number of 1 to 10, even more preferably at least one selected from sodium silicate and monohydroxyalkylamines having a total carbon number of 2 to 6, and even more preferably at least one selected from sodium silicate No. 2 and monoethanolamine. <5> The microcapsule aqueous dispersion according to claim 1.
[0060] <7> The inorganic material is preferably a metal oxide containing a metal element or a metalloid element, more preferably an inorganic polymer formed by a sol-gel reaction using a metal alkoxide [M(OR)x] as a shell precursor, even more preferably an inorganic polymer formed by a sol-gel reaction using one or more metal alkoxides selected from silicon, aluminum, and titanium as a shell precursor, and even more preferably silica formed by a sol-gel reaction using an alkoxysilane as a shell precursor. <1> ~ <6> The microcapsule aqueous dispersion according to any one of the above. <8> The alkoxysilane is preferably a tetraalkoxysilane. <7> The microcapsule aqueous dispersion according to claim 1. <9> The component (A) is a microcapsule having a shell containing silica as a constituent component and a core containing one or more organic compounds inside the shell. <1> ~ <6> The microcapsule aqueous dispersion according to any one of the above. <10> The shell is a multilayer shell having an inner shell containing silica, which is a hydrolysis polycondensate of alkoxysilane, as a constituent component, and an outer shell outside the inner shell, which further contains silica, which is a hydrolysis polycondensate of alkoxysilane, as a constituent component. <9> The microcapsule aqueous dispersion according to claim 1.
[0061] <11> The organic compound is preferably one or more selected from fragrances; fragrance precursors; oils; antioxidants; antibacterial agents; fertilizers; surface modifiers for fibers, skin, hair, etc.; cooling agents; dyes; pigments; silicones; solvents; and oil-soluble polymers, more preferably one or more selected from fragrances, fragrance precursors, oils, antioxidants, antibacterial agents, fertilizers, surface modifiers, and solvents, even more preferably one or more selected from fragrances, fragrance precursors, oils, antioxidants, and solvents, still more preferably one or more selected from fragrances, fragrance precursors, and oils, and even more preferably one or more selected from fragrances and fragrance precursors. <1> ~ <10> The microcapsule aqueous dispersion according to any one of the above. <12> The cLogP value of the organic compound is preferably 1 or more, more preferably 2 or more, even more preferably 3 or more, and is preferably 30 or less, more preferably 20 or less, even more preferably 10 or less. <1> ~ <11> The microcapsule aqueous dispersion according to any one of the above. <13> The median diameter D of the microcapsules of the component (A) 50 is preferably 100 μm or less, more preferably 75 μm or less, even more preferably 50 μm or less, still more preferably 30 μm or less, still more preferably 10 μm or less, and is preferably 0.01 μm or more, more preferably 0.05 μm or more, even more preferably 0.07 μm or more, still more preferably 0.1 μm or more, still more preferably 0.5 μm or more, still more preferably 1 μm or more. <1> ~ <12> The microcapsule aqueous dispersion according to any one of the above.
[0062] <14> An aqueous microcapsule dispersion containing the following components (A), (B), and (C): Component (A): a microcapsule having a shell containing silica as a constituent component and a core containing one or more organic compounds inside the shell. (B) Component: (B1) one or more selected from amino acids, (B2) polyhydroxyamines, and (B3) quaternary ammonium hydroxides Component (C): Alkaline agent (excluding component (B)) <15> The component (B) is preferably at least one selected from (B1) an amino acid and (B2) a polyhydroxyamine, more preferably contains (B1) an amino acid, and even more preferably is (B1) an amino acid. <14> The microcapsule aqueous dispersion according to claim 1. <16> The component (B1) is preferably one or more selected from neutral amino acids and acidic amino acids, more preferably a neutral amino acid, even more preferably a monoamino monocarboxylic acid, even more preferably one or more selected from glycine and alanine, and even more preferably glycine. <14> or <15> The microcapsule aqueous dispersion according to claim 1. <17> The component (C) is preferably at least one selected from alkali metal hydroxides, silicates, carbonates, and phosphates, and organic amines, more preferably at least one selected from alkali metal silicates and monohydroxyalkylamines having a total carbon number of 1 to 10, even more preferably at least one selected from sodium silicate and monohydroxyalkylamines having a total carbon number of 2 to 6, and even more preferably at least one selected from sodium silicate No. 2 and monoethanolamine. <14> ~ <16> The microcapsule aqueous dispersion according to any one of the above.
[0063] <18> The content or blending amount of component (A) in the microcapsule aqueous dispersion is preferably 50% by mass or less, more preferably 45% by mass or less, even more preferably 40% by mass or less, still more preferably 35% by mass or less, even more preferably 30% by mass or less, and is preferably 5% by mass or more, more preferably 10% by mass or more, even more preferably 15% by mass or more, still more preferably 18% by mass or more, and even more preferably 20% by mass or more. <1> ~ <17> The microcapsule aqueous dispersion according to any one of the above. <19> The content or blending amount of the (B) component in the microcapsule aqueous dispersion is preferably 0.1% by mass or more, more preferably 0.15% by mass or more, even more preferably 0.2% by mass or more, and is preferably 1% by mass or less, more preferably 0.7% by mass or less, even more preferably 0.5% by mass or less, still more preferably 0.4% by mass or less, and still more preferably 0.3% by mass or less. <1> ~ <18> The microcapsule aqueous dispersion according to any one of the above. <20> The content or blending amount of the (B) component relative to 100 parts by mass of the (A) component in the microcapsule aqueous dispersion is preferably 0.1 parts by mass or more, more preferably 0.5 parts by mass or more, even more preferably 0.9 parts by mass or more, and is preferably 5.0 parts by mass or less, more preferably 4.0 parts by mass or less, even more preferably 3.0 parts by mass or less, and still more preferably 2.0 parts by mass or less. <1> ~ <19> The microcapsule aqueous dispersion according to any one of the above.
[0064] <21> The composition further contains a dispersant as component (D). <1> ~ <20> The microcapsule aqueous dispersion according to any one of the above. <22> The component (D) is preferably an anionic surfactant, more preferably at least one selected from a low-molecular-weight dispersant having an anionic group and a polymeric dispersant having an anionic group, even more preferably at least one selected from a linear alkylbenzene sulfonate and a polymeric dispersant having at least one anionic group selected from a carboxy group and a sulfonic acid group, still more preferably at least one selected from a linear alkylbenzene sulfonate and a polymeric dispersant having a carboxy group, still more preferably at least one selected from a linear alkylbenzene sulfonate and a polymeric dispersant having a carboxy group containing a structural unit derived from at least one carboxy group-containing vinyl monomer selected from acrylic acid, methacrylic acid, maleic acid, and maleic anhydride, and still more preferably at least one selected from sodium dodecylbenzene sulfonate, an acrylic acid homopolymer, a methacrylic acid homopolymer, an acrylic acid / maleic acid copolymer, a methacrylic acid / maleic acid copolymer, an acrylic acid / maleic anhydride copolymer, a methacrylic acid / maleic anhydride copolymer, and a salt of these homopolymers or copolymers. <21> The aqueous dispersion of microcapsules according to <23> The content or blending amount of the (D) component in the microcapsule aqueous dispersion is preferably 0.05% by mass or more, more preferably 0.07% by mass or more, even more preferably 0.1% by mass or more, and is preferably 3% by mass or less, more preferably 2% by mass or less, even more preferably 1% by mass or less, still more preferably 0.7% by mass or less, and even more preferably 0.5% by mass or less. <21> or <22> The microcapsule aqueous dispersion according to claim 1. <24> The content or blending amount of the (D) component relative to 100 parts by mass of the (A) component in the microcapsule aqueous dispersion is preferably 0.1 parts by mass or more, more preferably 0.3 parts by mass or more, even more preferably 0.5 parts by mass or more, and is preferably 10 parts by mass or less, more preferably 9.0 parts by mass or less, even more preferably 8.0 parts by mass or less, still more preferably 7.0 parts by mass or less, still more preferably 5.0 parts by mass or less, still more preferably 3.0 parts by mass or less, still more preferably 2.0 parts by mass or less, and still more preferably 1.7 parts by mass or less. <21> ~ <23> The microcapsule aqueous dispersion according to any one of the above.
[0065] <25> The pH of the microcapsule aqueous dispersion is preferably 7.5 or higher, more preferably 8.0 or higher, even more preferably 8.5 or higher, still more preferably 9.0 or higher, and is preferably 11.0 or lower, more preferably 10.5 or lower, even more preferably 10.0 or lower. <1> ~ <24> The microcapsule aqueous dispersion according to any one of the above.
[0066] <26> The method includes a step of mixing an aqueous dispersion containing the component (A) with the component (B). <1> ~ <25> 1. A method for producing the aqueous microcapsule dispersion according to any one of the preceding claims. <27> The method includes a step of mixing an aqueous dispersion containing the component (A), the component (B), and the component (C). <1> ~ <26> 1. A method for producing the aqueous microcapsule dispersion according to any one of the preceding claims.
[0067] <28> A method for producing a microcapsule aqueous dispersion containing the following components (A) and (B): Component (A): a microcapsule having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell (B) Component: (B1) one or more selected from amino acids, (B2) polyhydroxyamines, and (B3) quaternary ammonium hydroxides A method for producing an aqueous microcapsule dispersion, comprising the step of adding component (B) to an aqueous microcapsule dispersion containing component (A). <29> the step of adding the component (B) and the component (C) in this order to the microcapsule aqueous dispersion containing the component (A) to adjust the pH; <28> A method for producing the microcapsule aqueous dispersion described in 1. <30> the step of adding the component (D) to the microcapsule aqueous dispersion containing the component (A), and then adding the components (B) and (C) in this order to adjust the pH; <28> or <29> A method for producing the microcapsule aqueous dispersion described in 1.
[0068] <31> A method for stabilizing an aqueous dispersion of microcapsules, comprising the following components (A) and (B): Component (A): a microcapsule having a shell containing an inorganic substance as a constituent component and a core containing one or more organic compounds inside the shell (B) Component: (B1) one or more selected from amino acids, (B2) polyhydroxyamines, and (B3) quaternary ammonium hydroxides A method for stabilizing an aqueous dispersion of microcapsules, comprising adding component (B) to an aqueous dispersion of microcapsules containing component (A), thereby stabilizing the aqueous dispersion of microcapsules. <32> The method includes a step of adding the component (B) and the component (C) in this order to a microcapsule aqueous dispersion containing the component (A) to adjust the pH. <31> A method for stabilizing the aqueous microcapsule dispersion according to claim 1. <33> The method includes a step of adding the component (D) to a microcapsule aqueous dispersion containing the component (A), and then adding the components (B) and (C) in this order to adjust the pH. <31> or <32> A method for stabilizing the aqueous microcapsule dispersion according to claim 1. [Example]
[0069] Various measurements in the examples and comparative examples were carried out by the following methods. [Median diameter D 50 Measurement of Median diameter of emulsion droplets D 50 and the median diameter of the microcapsules D 50was measured using a laser diffraction / scattering particle size distribution analyzer "LA-960" (trade name, manufactured by Horiba, Ltd.). A flow cell was used for the measurement, and the medium was water, with the refractive index of the dispersoid set to 1.45-0i. An emulsion or a water dispersion containing microcapsules was added to the flow cell, and measurements were carried out at a concentration where the transmittance was around 90%, and the median diameter D 50 asked for.
[0070] [pH measurement] The pH at 25°C was measured using a portable pH meter "D-71" (trade name, manufactured by Horiba Ltd.) that uses a pH electrode "9680S-10D" (trade name, manufactured by Horiba Ltd.).
[0071] [Measurement of Viscosity] The viscosity of the microcapsule aqueous dispersion was measured using an E-type viscometer (model: TVE35L, manufactured by Toki Sangyo Co., Ltd.) with a cone rotor of 1°34' x R24, at a rotation speed of 20 rpm and a measurement temperature of 25°C.
[0072] <Model Fragrance> Model fragrance A (volume average cLogP: 3.9, specific gravity: 0.96) having the composition shown in Table 1 was used as the organic compound encapsulated in the microcapsules. The volume average cLogP value of the model fragrance was calculated as the sum of the cLogP values of the fragrance components contained in the model fragrance multiplied by their volume ratios in the model fragrance. In this calculation, all fragrance components contained in model fragrance A at a content of 0.5% by mass or more were taken into consideration, and fragrance components contained in model fragrance A at a content of less than 0.5% by mass, whose specific gravity and cLogP value were known, were also included in the calculation.
[0073] [Table 1]
[0074] (Synthesis of component (A)) Synthesis Example 1-1 (Process 1) An aqueous phase component was obtained by diluting 0.91 g of Coatamine 60W (trade name, manufactured by Kao Corporation, cetyltrimethylammonium chloride, active ingredient 30% by mass) with 224.13 g of ion-exchanged water. An oil phase component prepared by mixing 60.03 g of model fragrance A and 15.10 g of tetraethoxysilane (hereinafter also referred to as "TEOS") was added to this aqueous phase component, and the mixture was emulsified for 10 minutes at room temperature (approximately 25°C) using a homomixer (manufactured by HsiangTai Co., Ltd., model: HM-310) set at a rotation speed of 9,000 rpm for 10 minutes to obtain an emulsion. The median diameter D of the emulsified droplets at this time was 0.03 g. 50 was 1.3 μm. Next, the pH of the resulting emulsion was adjusted to 3.7 using a 1% by mass aqueous solution of sulfuric acid, and then transferred to a separable flask equipped with a stirring blade and a cooler.While maintaining the liquid temperature at 30°C, the emulsion was stirred at 200 rpm for 24 hours to obtain an aqueous dispersion containing microcapsules having a core made of model fragrance A and a first shell. (Process 2) Next, 8.4 g of TEOS was added dropwise to 280.0 g of the aqueous dispersion obtained in step 1 over 420 minutes. After the addition, the mixture was stirred for an additional 17 hours to form a second shell encapsulating the first shell, thereby obtaining an aqueous dispersion containing 21.7 mass% of silica capsules (A-1) in which model fragrance A was encapsulated in amorphous silica. The median diameter D of the silica capsules (A-1) was 50 The content of the silica capsules (A-1) in the aqueous dispersion was a calculated value based on the composition at the time of synthesis of the silica capsules.
[0075] (Production of aqueous microcapsule dispersion) Examples 1 and 2 To an aqueous dispersion containing component (A), components (B) and (C) were added in this order at 20 to 25°C to obtain the composition shown in Table 2 below, and the pH was adjusted to the value shown in Table 2. Then, PROXEL BDN (trade name, manufactured by Lonza Japan Co., Ltd., active ingredient: 1,2-benzisothiazolin-3-one) (hereinafter referred to as "PROXEL BDN") was added as a preservative so that the concentration in the aqueous dispersion was 600 ppm in Example 1 and 1,000 ppm in Example 2, thereby obtaining a microcapsule aqueous dispersion. The viscosity of the microcapsule aqueous dispersion obtained in Example 1 was 4.5 mPa·s.
[0076] Examples 3 to 7 To an aqueous dispersion containing component (A), components (D), (B), and (C) were added in this order at 20 to 25°C to adjust the pH to 9.5, so as to obtain the composition shown in Table 2 below. PROXEL BDN was then added as a preservative to give a concentration of 1,000 ppm in the aqueous dispersion, thereby obtaining an aqueous microcapsule dispersion. The aqueous microcapsule dispersions obtained in Examples 3 to 7 were stored at 20°C and observed for gelation and aggregation of the silica capsules. No gelation or aggregation of the silica capsules was observed even after 14 days, demonstrating good dispersion stability of the microcapsules.
[0077] Comparative Example 1 To obtain the composition shown in Table 2 below, component (C) was added to an aqueous dispersion containing component (A) at 20 to 25°C to adjust the pH to 9.5, and then PROXEL BDN was added as a preservative to a concentration of 1,000 ppm in the aqueous dispersion, thereby obtaining an aqueous microcapsule dispersion.
[0078] Comparative Example 2 To an aqueous dispersion containing component (A) at 20 to 25°C, components (D) and (C) were added and the pH was adjusted to 9.5 to obtain the composition shown in Table 2 below. PROXEL BDN was then added as a preservative to give a concentration of 1,000 ppm in the aqueous dispersion, thereby obtaining an aqueous microcapsule dispersion.
[0079] Details of the ingredients used in Table 2 are given below. Tris: Trishydroxymethylaminomethane No. 2 sodium silicate: 2Na2O·5SiO2 aqueous solution, active ingredient: 40% by mass (manufactured by Fuji Chemical Co., Ltd.) LAS-Na: Sodium dodecylbenzenesulfonate (product name: Neopelex G-25, manufactured by Kao Corporation, active ingredient: 25% by mass) Poise 520: Polycarboxylic acid type polymer surfactant (product name: Poise 520, manufactured by Kao Corporation, active ingredient: 40% by mass) Poise 521: Polycarboxylic acid type polymer surfactant (product name: Poise 521, manufactured by Kao Corporation, active ingredient: 40% by mass)
[0080] [Evaluation of long-term retention of fragrance ingredients] The aqueous microcapsule dispersions of the Examples and Comparative Examples were sealed in screw tubes and then allowed to stand at 30° C. After being left to stand for 14 days, 20 mg of the aqueous microcapsule dispersion was scooped out and precisely weighed, diluted with 50 g of ion-exchanged water, and then passed through a membrane filter (manufactured by Millipore Corporation, product name "Omnipore", model number "JAWP04700") to recover silica capsules on the membrane filter. The silica capsules were then washed on the membrane filter with 10 mL of ion-exchanged water and then with 10 mL of hexane, and the silica capsules were then immersed in 10 mL of methanol containing 10 μg / mL of tridecane as an internal standard, and ultrasonic irradiation was performed for 60 minutes using an ultrasonic irradiation device (manufactured by Branson, model "5510") at an output of 180 W and an oscillation frequency of 42 kHz to elute the fragrance from the silica capsules. This solution was again passed through a membrane filter (manufactured by Toyo Roshi Kaisha, Ltd., product name "DISMIC", model "13JP020AN"), and each fragrance component contained in this solution was measured using gas chromatography, and the amount of fragrance component encapsulated in the silica capsules was determined as α. Furthermore, 20 mg of the microcapsule aqueous dispersions prepared in the Examples and Comparative Examples before storage at 30°C were weighed out, immersed in 10 mL of methanol, and irradiated with ultrasound for 60 minutes at an output of 180 W and an oscillation frequency of 42 kHz using an ultrasonic irradiation device to elute the fragrance from the silica capsules. This solution was passed through a membrane filter (manufactured by Toyo Roshi Kaisha, Ltd., product name "DISMIC", model "13JP020AN"), and each fragrance component contained in this solution was measured using gas chromatography, and the amount β of fragrance component contained in the microcapsule aqueous dispersion was determined. The retention rate of methyl dihydrojasmonate, a fragrance component contained in model fragrance A, was calculated according to the following formula to evaluate long-term retention. For convenience of analysis, when the retention rate of methyl dihydrojasmonate exceeded 100%, the retention rate of methyl dihydrojasmonate was taken as 100%. The results are shown in Table 2 below. Retention rate of methyl dihydrojasmonate (%) = {(amount of methyl dihydrojasmonate encapsulated in silica capsules after storage α) / (amount of methyl dihydrojasmonate contained in microcapsule aqueous dispersion β)} × 100
[0081] [Table 2]
[0082] From Table 2, it can be seen that the microcapsule aqueous dispersions of the Examples are superior in long-term retention of the encapsulated fragrance ingredients compared to those of the Comparative Examples. Furthermore, it is clear that the microcapsule aqueous dispersions of Examples 3 and 7 are superior in long-term retention of the encapsulated fragrance component compared to Comparative Example 2, which uses the same component (D). [Industrial Applicability]
[0083] According to the present invention, it is possible to obtain an aqueous microcapsule dispersion capable of retaining the organic compounds that are the active ingredients, such as fragrances, for a long period of time. Therefore, according to the present invention, it is possible to obtain an aqueous microcapsule dispersion that is easy to handle and does not thicken due to gelation or aggregation, and that can be widely used in imparting various functionalities, such as fragrance, to various products, such as laundry products, personal care products, cosmetics, and household liquid products.
Claims
1. The microcapsule aqueous dispersion contains the following components (A) and (B), and the content of the component (B) relative to 100 parts by mass of the component (A) in the microcapsule aqueous dispersion is 0.1 parts by mass or more and 2.0 parts by mass or less. Microcapsule aqueous dispersion. Component (A): a microcapsule having a shell containing silica as a constituent component and a core containing one or more organic compounds inside the shell. Component (B): (B1) one or more neutral amino acids selected from glycine and alanine, and (B2) one or more polyhydroxyamines
2. 2. The microcapsule aqueous dispersion according to claim 1, wherein the acid dissociation index pKa at 25°C in at least one dissociation stage of the component (B) is 7.5 or more and 13.0 or less.
3. The microcapsule aqueous dispersion according to claim 1, wherein the component (B) comprises (B1) one or more neutral amino acids selected from glycine and alanine.
4. The microcapsule aqueous dispersion according to any one of claims 1 to 3, further comprising an alkaline agent as component (C) (excluding component (B)).
5. 5. The microcapsule aqueous dispersion according to claim 4, wherein the component (C) is at least one selected from the group consisting of hydroxides, silicates, carbonates, and phosphates of alkali metals, and organic amines.
6. The microcapsule aqueous dispersion according to any one of claims 1 to 3, wherein the pH of the microcapsule aqueous dispersion is 7.5 or more and 11.0 or less.
7. The microcapsule aqueous dispersion according to any one of claims 1 to 3, wherein the content of the component (B) in the microcapsule aqueous dispersion is 0.1% by mass or more and 1% by mass or less.
8. The microcapsule aqueous dispersion according to any one of claims 1 to 3, wherein the content of the component (A) in the microcapsule aqueous dispersion is 5% by mass or more and 50% by mass or less.
9. The microcapsule aqueous dispersion according to any one of claims 1 to 3, further comprising a dispersant as component (D).
10. The microcapsule aqueous dispersion according to claim 9, wherein the content of the component (D) in the microcapsule aqueous dispersion is 0.05% by mass or more and 3% by mass or less.
11. The component (A) is a microcapsule having a shell containing silica as a constituent component and a core containing one or more organic compounds inside the shell. The microcapsule aqueous dispersion according to any one of claims 1 to 3.
12. The median diameter D of the microcapsules of the component (A) 50 The microcapsule aqueous dispersion according to any one of claims 1 to 3, wherein the average particle size is 0.1 µm or more and 50 µm or less.
13. The microcapsule aqueous dispersion according to any one of claims 1 to 3, wherein the organic compound is at least one selected from the group consisting of a fragrance, a fragrance precursor, an oil, an antioxidant, and a solvent.
14. A method for producing a microcapsule aqueous dispersion, comprising the following components (A) and (B), wherein the content of component (B) per 100 parts by mass of component (A) in the microcapsule aqueous dispersion is 0.1 parts by mass or more and 2.0 parts by mass or less: Component (A): a microcapsule having a shell containing silica as a constituent component and a core containing one or more organic compounds inside the shell. Component (B): (B1) one or more neutral amino acids selected from glycine and alanine, and (B2) one or more polyhydroxyamines A method for producing an aqueous microcapsule dispersion, comprising the step of adding component (B) to an aqueous microcapsule dispersion containing component (A).
15. A method for stabilizing an aqueous dispersion of microcapsules, comprising the following components (A) and (B), wherein the content of component (B) per 100 parts by mass of component (A) in the aqueous dispersion of microcapsules is 0.1 parts by mass or more and 2.0 parts by mass or less: Component (A): a microcapsule having a shell containing silica as a constituent component and a core containing one or more organic compounds inside the shell. Component (B): (B1) one or more neutral amino acids selected from glycine and alanine, and (B2) one or more polyhydroxyamines A method for stabilizing an aqueous dispersion of microcapsules, comprising adding component (B) to an aqueous dispersion of microcapsules containing component (A), thereby stabilizing the aqueous dispersion of microcapsules.
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