Oil-in-water emulsion composition

The oil-in-water emulsion composition with specific components and viscosity achieves a fresh and moisturizing feel with improved stability, enhancing user experience and product longevity.

JP7735124B2Active Publication Date: 2025-09-08FUJIFILM CORP
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Patent Information

Application Number
JP2021138013
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-08-26
Publication Date
2025-09-08
Estimated Expiration
2041-08-26

AI Technical Summary

Technical Problem

Existing oil-in-water emulsion compositions used in cosmetics and quasi-drugs often lack a fresh feeling, moisturizing sensation, and stability during storage.

Method used

An oil-in-water emulsion composition containing betaine, (sodium acrylate/sodium acryloyldimethyltaurate) copolymer, gellan gum or polyacrylamide, (PEG-240/decyltetradeceth-20/HDI) copolymer, and water, with a viscosity of 1,000 mPa·s to 25,000 mPa·s, to achieve a fresh feeling, excellent moisturizing sensation, and emulsion stability.

Benefits of technology

The composition provides a fresh and moisturizing feel while maintaining emulsion stability, addressing the shortcomings of existing compositions.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an oil-in-water type emulsion composition having freshness, excellent moisture feeling and excellent emulsion stability.SOLUTION: There is provided an oil-in-water type emulsion composition having a viscosity measured with a B-type viscometer at 25°C of 1000 mPa s to 25000 mPa s which comprises a betaine, a sodium acrylate / sodium acryloyldimethyltaurate copolymer, at least one compound I selected from the group consisting of gellant gum and a polyacrylamide, at least one compound II selected from the group consisting of a (PEG-240 / decyltetradeceth-20 / HDI) copolymer, a bis-stearyl PEG / PPG-8 / 6 (SMDI / PEG-400) copolymer, an (acrylates / methacrylate steareth-20) copolymer and a (PEG-150 / Decyl alcohol / SMDI) copolymer, 0.1 to 10 mass% of an oil agent and 60 mass% or more of water.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present disclosure relates to oil-in-water emulsion compositions. [Background technology]

[0002] BACKGROUND ART Oil-in-water emulsion compositions are used in the fields of cosmetics, quasi-drugs, and the like.

[0003] Patent Document 1 describes an oil-in-water emulsion composition characterized by comprising (A): 0.01 to 2.0 mass% of a water-soluble gelling agent, (B): 0.01 to 1.0 mass% of a water-soluble thickener, (C): 0.01 to 2.0 mass% of a gemini type anionic surfactant, (D): a water-soluble whitening agent, (E): an electrolyte other than (D), and (F): an oil.

[0004] Patent Document 2 describes a composition for external use on the skin, characterized by containing 1) a melanin production inhibitor consisting of D-pantothenyl alcohol, and 2) one or more substances selected from specific plant extracts, compounds, and other substances.

[0005] Patent Document 3 describes an oil-in-water cosmetic containing (a) a (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, (b) gellan gum, (c) an electrolyte, and (d) an oil. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Publication No. 2019-142825 [Patent Document 2] Japanese Patent Application Publication No. 2019-019077 [Patent Document 3] Japanese Patent Application Laid-Open No. 2016-190835 Summary of the Invention [Problem to be solved by the invention]

[0007] Oil-in-water emulsion compositions used in applications such as cosmetics are often required to have a good feel when used, such as freshness and moisturizing sensation. In addition, when considering the storage of products to which the oil-in-water emulsion composition is applied, the oil-in-water emulsion composition is also required to have emulsion stability.

[0008] An object of one embodiment of the present disclosure is to provide an oil-in-water emulsion composition that has a fresh feeling, an excellent moisturizing feeling, and excellent emulsion stability. [Means for solving the problem]

[0009] The present disclosure includes the following embodiments. [1] Betaine and (Sodium acrylate / sodium acryloyldimethyltaurate) copolymer, at least one compound I selected from the group consisting of gellan gum and polyacrylamide; at least one compound II selected from the group consisting of (PEG-240 / decyltetradeceth-20 / HDI) copolymer, bisstearyl PEG / PPG-8 / 6 (SMDI / PEG-400) copolymer, (acrylates / steareth-20 methacrylate) copolymer, and (PEG-150 / decyl alcohol / SMDI) copolymer; an oil agent whose content relative to the total mass of the oil-in-water emulsion composition is 0.10 mass % to 10 mass %; and water, the content of which is 60% by mass or more relative to the total mass of the oil-in-water emulsion composition; The viscosity measured at 25°C using a Brookfield viscometer is 1,000 mPa·s to 25,000 mPa·s. Oil-in-water emulsion composition. [2] The oil-in-water emulsion composition according to [1], wherein the total content of compound II is 0.01% by mass to 0.5% by mass, based on the total mass of the oil-in-water emulsion composition. [3] The oil-in-water emulsion composition according to [1] or [2], wherein the content of (sodium acrylate / sodium acryloyldimethyltaurate) copolymer is 0.10% by mass to 1.0% by mass, based on the total mass of the oil-in-water emulsion composition. [4] The oil-in-water emulsion composition according to any one of [1] to [3], wherein the total content of Compound I is 0.01% by mass to 0.2% by mass, based on the total mass of the oil-in-water emulsion composition. [5] The oil-in-water emulsion composition according to any one of [1] to [4], wherein the ratio of the total content of Compound I to the content of (sodium acrylate / sodium acryloyldimethyltaurate) copolymer is 0.01 to 2 by mass. [6] The oil-in-water emulsion composition according to any one of [1] to [5], wherein the ratio of the total content of compound II to the content of (sodium acrylate / sodium acryloyldimethyltaurate) copolymer is 0.01 to 5 by mass. [7] The oil-in-water emulsion composition according to any one of [1] to [6], wherein the content of betaine is 0.10% by mass to 20% by mass, based on the total mass of the oil-in-water emulsion composition. [8] The oil-in-water emulsion composition according to any one of [1] to [7], wherein the oil comprises a fatty acid ester oil. [9] The oil-in-water emulsion composition according to any one of [1] to [8], which is a cosmetic. [Effects of the Invention]

[0010] According to one embodiment of the present disclosure, there is provided an oil-in-water emulsion composition that has a fresh feeling, an excellent moisturizing feeling, and excellent emulsion stability. DETAILED DESCRIPTION OF THE INVENTION

[0011] An example of an embodiment of the oil-in-water emulsion composition according to the present disclosure will be described below. However, the oil-in-water emulsion composition according to the present disclosure is not limited to the following embodiment and can be modified as appropriate within the scope of the present disclosure.

[0012] In the present disclosure, a numerical range indicated using "to" means a range that includes the numerical values ​​before and after "to" as the minimum and maximum values, respectively. In the present disclosure, in the numerical ranges described in stages, the upper or lower limit value described in one numerical range may be replaced with the upper or lower limit value of another numerical range described in stages. Furthermore, in the numerical ranges described in the present disclosure, the upper or lower limit value of the numerical range may be replaced with the value shown in the examples. In the present disclosure, the amount of each component in an oil-in-water emulsion composition means the total amount of the multiple substances present in the oil-in-water emulsion composition, unless otherwise specified, when multiple substances corresponding to each component are present in the oil-in-water emulsion composition. In the present disclosure, a combination of two or more preferred embodiments is a more preferred embodiment. In the present disclosure, "mass %" and "weight %" are synonymous.

[0013] In the present disclosure, the term "freshness" refers to the sensation of moisture on the skin immediately after application of the oil-in-water emulsion composition. In the present disclosure, the term "moisturizing feeling" refers to the feeling of continuous moisture on the skin after application of the oil-in-water emulsion composition. In the present disclosure, "emulsion stability" refers to the property of suppressing separation of an oil-in-water emulsion composition and maintaining an emulsified state when the oil-in-water emulsion composition is left to age. In the present disclosure, "emulsion stability" can be rephrased as "separation resistance." When the oil-in-water emulsion composition is applied to a cosmetic product, it is sufficient that the emulsion stability is maintained at least during the storage period set for the cosmetic product.

[0014] In the present disclosure, the term "process" refers not only to an independent process, but also to a process that cannot be clearly distinguished from other processes, as long as the intended purpose of the process is achieved.

[0015] <Oil-in-water emulsion composition> The oil-in-water emulsion composition according to the present disclosure comprises: Betaine and (Sodium acrylate / sodium acryloyldimethyltaurate) copolymer, At least one compound I (hereinafter also simply referred to as "compound I") selected from the group consisting of gellan gum and polyacrylamide; at least one compound II (hereinafter also simply referred to as "compound II") selected from the group consisting of (PEG-240 / decyltetradeceth-20 / HDI) copolymer, bisstearyl PEG / PPG-8 / 6 (SMDI / PEG-400) copolymer, (acrylates / steareth-20 methacrylate) copolymer, and (PEG-150 / decyl alcohol / SMDI) copolymer; an oil agent whose content relative to the total mass of the oil-in-water emulsion composition is 0.1% by mass to 10% by mass; and water, the content of which is 60% by mass or more relative to the total mass of the oil-in-water emulsion composition; The viscosity measured at 25°C with a Brookfield viscometer is 1,000 mPa·s to 25,000 mPa·s.

[0016] The oil-in-water emulsion composition according to the present disclosure has a fresh feeling, an excellent moisturizing feeling, and excellent emulsion stability.

[0017] Measures for obtaining an oil-in-water emulsion composition having a fresh feeling when used include, for example, reducing the viscosity of the composition and reducing the amount of ingredients such as oils and moisturizers. However, oil-in-water emulsion compositions using such measures tend to lack moisturizing feeling or have reduced emulsion stability. Furthermore, in oil-in-water emulsion compositions, if the amount of ingredients such as oils and moisturizers is increased to improve moisturizing feeling, or if the viscosity is increased by increasing the amount of emulsifier or adding a thickener to improve emulsion stability, the freshness tends to be impaired. Furthermore, the more water contained in the composition, the more freshness can be felt. When various ingredients such as moisturizers, emollients, and active ingredients are added to the composition to improve the feel of touch, such as moisturizing feeling, or to obtain other desired functions, the amount of water is relatively reduced accordingly, and this factor can also lead to a decrease in freshness.

[0018] Under these circumstances, the present disclosure provides an oil-in-water emulsion composition that contains betaine, (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, Compound I, Compound II, a predetermined amount of oil, and a predetermined amount of water, and has a viscosity of 1,000 mPa·s to 25,000 mPa·s, thereby providing a fresh feeling, an excellent moisturizing feel, and excellent emulsion stability (separation resistance).

[0019] On the other hand, none of the compositions described in Patent Documents 1 to 3 focuses on the oil-in-water emulsion composition containing betaine, (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, Compound I, Compound II, a predetermined amount of oil, and a predetermined amount of water, and having a viscosity of 1,000 mPa·s to 25,000 mPa·s, and is therefore unable to achieve all of the desired freshness, moisturizing feel, and emulsion stability.

[0020] The oil-in-water emulsion composition according to the present disclosure will be described in detail below.

[0021] [(A) Betaine] The oil-in-water emulsion composition according to the present disclosure contains betaine. By containing betaine, the oil-in-water emulsion composition has excellent freshness and moisturizing feeling and improved emulsion stability. Furthermore, betaine also contributes to suppressing stickiness.

[0022] Betaine is trimethylglycine having the structure shown below and is sometimes called glycine betaine or betaine anhydrous.

[0023] [ka]

[0024] Betaine is an organic compound present in many living organisms. It can be obtained, for example, by extraction and purification from sugar beet molasses.

[0025] Betaine (i.e., trimethylglycine) may be a commercially available product. Examples of commercially available betaine products include Amicort (trade name) from Asahi Kasei Finechem Corporation and Betafin BP (trade name) from Ebisu Chemical Industry Co., Ltd.

[0026] From the viewpoints of freshness, moisturizing feeling, and emulsion stability, the content of betaine is preferably 0.10% by mass to 20% by mass, more preferably 0.50% by mass to 15% by mass, and even more preferably 5.0% by mass to 15% by mass, relative to the total mass of the oil-in-water emulsion composition.

[0027] [(B) (Sodium acrylate / sodium acryloyldimethyltaurate) copolymer] The oil-in-water emulsion composition according to the present disclosure contains a (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, which contributes to freshness and emulsion stability.

[0028] Furthermore, the inclusion of the (sodium acrylate / sodium acryloyldimethyltaurate) copolymer can contribute to a pseudo-fresh feeling when the oil-in-water emulsion composition is applied to the skin. This is presumably because the (sodium acrylate / sodium acryloyldimethyltaurate) copolymer has low salt tolerance due to the presence of ionic groups, which causes the viscosity of the oil-in-water emulsion composition to drop instantly when applied to the skin.

[0029] (Sodium acrylate / sodium acryloyldimethyltaurate) copolymer is a copolymer of sodium acrylate and sodium acryloyldimethyltaurate.

[0030] The (sodium acrylate / sodium acryloyldimethyltaurate) copolymer may be a commercially available product. Commercially available products of the (sodium acrylate / sodium acryloyldimethyltaurate) copolymer include SIMULGEL EG QD from SEPPIC, which is a mixture containing water and isohexadecene as a solvent.

[0031] From the viewpoints of freshness and emulsion stability, the content of the (sodium acrylate / sodium acryloyldimethyltaurate) copolymer is preferably 0.10% by mass to 1.0% by mass, more preferably 0.15% by mass to 0.60% by mass, and even more preferably 0.20% by mass to 0.60% by mass, relative to the total mass of the oil-in-water emulsion composition.

[0032] [(C) Compound I] The oil-in-water emulsion composition according to the present disclosure contains at least one compound I selected from the group consisting of gellan gum and polyacrylamide. Due to the inclusion of compound I, the oil-in-water emulsion composition according to the present disclosure has a fresh and moisturizing feel and excellent emulsion stability.

[0033] Gellan gum is a polysaccharide produced extracellularly by the microorganism Sphingomonas elodea, and has the property of forming an elastic gel when swollen with water. Known gellan gums include native and deacylated forms in which the acetyl and glyceryl groups present in 1-3-linked glucose are removed. The gellan gum encompassed by Compound I may be either the native or deacylated form.

[0034] Gellan gum may be a commercially available product, such as deacylated Kelcogel "HM" and "CG-HA," and native Kelcogel "LT-100" and "CG-LA" (all manufactured by CP Kelco).

[0035] In the present disclosure, polyacrylamide is a general term for polymers containing a structural unit represented by "-CH2-CH(CONH2)-". Polyacrylamide may be a homopolymer or a copolymer. Polyacrylamide may contain structural units other than the structural unit represented by "-CH2-CH(CONH2)-". Some of the hydrogen atoms in the structural unit represented by "-CH2-CH(CONH2)-" may be substituted with atoms or atomic groups other than hydrogen atoms, within the scope of the present disclosure.

[0036] The oil-in-water emulsion composition according to the present disclosure may contain both gellan gum and polyacrylamide, or may contain only one of gellan gum and polyacrylamide, as Compound I. From the viewpoint of freshness, it is preferable to contain gellan gum.

[0037] As the polyacrylamide, known polyacrylamides can be used, and polyacrylamides that can be used in the fields of cosmetics or quasi-drugs are preferred.

[0038] The polyacrylamide may be a commercially available product, such as Seppic's composite raw material Sepigel 305 (polyacrylamide, hydrogenated polyisobutene, laureth-7, water) and Sepigel 501 (polyacrylamide, polysorbate 85, mineral oil, isoparaffin).

[0039] The total content of Compound I is preferably 0.01% by mass to 0.2% by mass, more preferably 0.02% by mass to 0.15% by mass, and even more preferably 0.02% by mass to 0.10% by mass, relative to the total mass of the oil-in-water emulsion composition.

[0040] The ratio [(C) / (B)] of the total content (C) of Compound I to the content (B) of (sodium acrylate / sodium acryloyldimethyltaurate) copolymer is preferably 0.01 to 2, and more preferably 0.1 to 1, on a mass basis, from the viewpoints of freshness, moisturizing feeling, and emulsion stability.

[0041] [(D) Compound II] The oil-in-water emulsion composition according to the present disclosure contains at least one compound II selected from the group consisting of (PEG-240 / decyltetradeceth-20 / HDI) copolymer, bisstearyl PEG / PPG-8 / 6 (SMDI / PEG-400) copolymer, (acrylates / steareth-20 methacrylate) copolymer, and (PEG-150 / decyl alcohol / SMDI) copolymer. PEG is an abbreviation for polyethylene glycol, PPG is an abbreviation for polypropylene glycol, HDI is an abbreviation for hexamethylene diisocyanate, and SMDI is an abbreviation for methylene diphenyl diisocyanate. By containing compound II, the oil-in-water emulsion composition according to the present disclosure has a fresh, moisturizing feel and excellent emulsion stability. Among these, (PEG-240 / decyltetradeceth-20 / HDI) copolymer is particularly preferred.

[0042] Compounds included in Compound II are compounds that can function as associative thickeners. Associative thickeners are polymers that have hydrophobic moieties at the ends of molecular chains containing hydrophilic moieties (e.g., polyether chains), and exhibit thickening properties in aqueous solutions when the hydrophobic moieties associate with each other or with a hydrophobic substance.

[0043] Compound II may be a commercially available product. Commercially available (PEG-240 / decyltetradeceth-20 / HDI) copolymers include, for example, ADEKA Corporation's ADEKA NOL GT-700 and the composite raw material ADEKA NOL GT-730 ((PEG-240 / decyltetradeceth-20 / HDI) copolymer, BG, water). An example of a commercially available product of bisstearyl PEG / PPG-8 / 6 (SMDI / PEG-400) copolymer is AQUPEC (registered trademark) HU C2002 (Sumitomo Seika Chemicals Co., Ltd.). Commercially available acrylates / steareth-20 methacrylate copolymers include, for example, ACULYN® 22 RHEOLOGY MODIFIER (Dow Chemicals). Commercially available (PEG-150 / decyl alcohol / SMDI) copolymers include, for example, ACULYN® 44 (DOW CHEMICALS).

[0044] From the viewpoints of freshness, moisturizing feeling, and emulsion stability, the content of compound II is preferably 0.01% by mass to 0.5% by mass, more preferably 0.05% by mass to 0.25% by mass, and even more preferably 0.05% by mass to 0.20% by mass, relative to the total mass of the oil-in-water emulsion composition.

[0045] The ratio [(D) / (B)] of the total content (D) of compound II to the content (B) of (sodium acrylate / sodium acryloyldimethyltaurate) copolymer is preferably 0.01 to 5, and more preferably 0.1 to 1, on a mass basis, from the viewpoints of freshness, moisturizing feeling, and emulsion stability.

[0046] The ratio (D) of the total content of compound II to the total content (C) of compound I [(D) / (C)] is preferably 0.60 to 5.0, more preferably 1.0 to 4.0, on a mass basis, from the viewpoint of freshness and anti-stickiness effect.

[0047] [(E) Oil] The oil-in-water emulsion composition according to the present disclosure contains an oil, and the content of the oil relative to the total mass of the oil-in-water emulsion composition is 0.10% by mass to 10% by mass.

[0048] In the present disclosure, the term "oil" is used as a general term for a group of compounds consisting of hydrocarbon oils, ester oils, silicone oils, animal and vegetable oils, higher fatty acids, and higher alcohols. As the oil in the present disclosure, for example, a compound belonging to these groups and having a proven track record of being generally used as an oil in the fields of cosmetics or quasi-drugs can be selected.

[0049] The oil-in-water emulsion composition according to the present disclosure may contain one type of oil agent alone, or two or more types of oil agents.

[0050] The oil may be liquid, semi-solid, or solid at room temperature (25°C, the same applies hereinafter). The oil may be a commercially available product or a synthetic product.

[0051] The oil agent is preferably at least one selected from the group consisting of hydrocarbon oils, ester oils, and animal and vegetable oils.

[0052] From the viewpoint of freshness, the oil preferably contains an ester oil, and more preferably contains an ester oil that is liquid at room temperature. The ester oil refers to an oil having an ester bond in its molecular structure.

[0053] Examples of hydrocarbon oils include liquid paraffin, isoparaffin, ethylene-propylene copolymer, hydrogenated polyisobutene, squalane, petrolatum, paraffin wax, ceresin wax, microcrystalline wax, Fischer-Tropsch wax, and polyethylene wax.

[0054] As the ester oil, various esters can be used which combine fatty acids, polybasic acids, etc. as acids with lower alcohols, higher alcohols, polyhydric alcohols, etc. as alcohols.

[0055] Examples of ester oils include isopropyl myristate, octyldodecyl myristate, cholesteryl stearate, tricaprylin, diethylhexyl succinate, diisopropyl adipate, diisobutyl adipate, diisostearyl malate, neopentyl glycol diethylhexanoate, pentaerythrityl tetraethylhexanoate, cetyl ethylhexanoate, tri(caprylic / capric)glyceryl, di(phytosteryl / octyldodecyl) lauroyl glutamate, triisostearin, glyceryl stearate, glyceryl diisostearate, and triethylhexanoate. Ingredients include phytosteryl / behenyl dimer dilinoleate, phytosteryl / isostearyl / cetyl / stearyl / behenyl dimer dilinoleate, isopropyl palmitate, phytosteryl macadamiate, pentaerythrityl tetrabehenate / benzoate / ethylhexanoate, ethylhexyl palmitate, myristyl myristate, tripropylene glycol dipivalate, isotridecyl isononanoate, pentaerythritol rosinate, glyceryl behenate / eicosanedioate, and polyglyceryl-10 behenate / eicosanedioate.

[0056] Examples of silicone oils include chain polysiloxanes such as dimethylpolysiloxane (dimethicone, methylphenylpolysiloxane, decamethyltetrasiloxane, and methylhydrogenpolysiloxane; cyclic polysiloxanes such as octamethylcyclotetrasiloxane, decamethylcyclopentasiloxane, dodecamethylcyclohexasiloxane, and tetramethyltetrahydrogencyclotetrasiloxane; and caprylyl methicone.

[0057] Examples of animal and vegetable oils include jojoba seed oil, avocado oil, almond oil, olive oil, cacao oil, sesame oil, wheat germ oil, safflower oil, shea butter, turtle oil, camellia oil, persic oil, castor oil, grape oil, macadamia nut oil, palm oil, rosehip oil, soybean oil, egg yolk oil, hydrogenated castor oil, hydrogenated palm oil, hydrogenated cacao oil, hydrogenated turtle oil, hydrogenated mink oil, beef tallow, mink oil, lanolin (so-called wool fat), beeswax, Japan wax, gay wax, carnauba wax, candelilla wax, and montan wax.

[0058] Examples of higher fatty acids include stearic acid, lauric acid, myristic acid, palmitic acid, oleic acid, isostearic acid, hydroxystearic acid, and behenic acid.

[0059] Examples of higher alcohols include cetyl alcohol, stearyl alcohol, myristyl alcohol, oleyl alcohol, isostearyl alcohol, lauryl alcohol, and behenyl alcohol.

[0060] In one embodiment, the oil is preferably at least one selected from the group consisting of triethylhexanoin, tri(caprylic / capric acid)glyceryl, and diethylhexyl succinate.

[0061] From the viewpoint of freshness, the content of the oil is 0.10% by mass to 10% by mass, and more preferably 1.0% by mass to 7.5% by mass, relative to the total mass of the oil-in-water emulsion composition.

[0062] [(F)Water] The oil-in-water emulsion composition according to the present disclosure contains water, and the water content relative to the total mass of the oil-in-water emulsion composition is 60 mass % or more.

[0063] The water is not particularly limited, and can be natural water, purified water, distilled water, ion-exchanged water, pure water, ultrapure water (Milli-Q water, etc.), etc. Milli-Q water is ultrapure water obtained using a Milli-Q water production system from Merck Millipore, a company owned by Merck.

[0064] The water contained in the oil-in-water emulsion composition is preferably purified water, distilled water, ion-exchanged water, pure water, or ultrapure water, from the viewpoint of having few impurities.

[0065] From the viewpoint of freshness, a larger amount of water is preferable. The water content in the oil-in-water emulsion composition according to the present disclosure is 60% by mass or more, and more preferably 70% by mass or more, based on the total mass of the oil-in-water emulsion composition. The upper limit of the water content is not particularly limited, but can be, for example, 90% by mass.

[0066] [Other added ingredients] The oil-in-water composition according to the present disclosure may contain other additive components in addition to betaine, (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, Compound I, Compound II, oil, and water.

[0067] Examples of other additive components include additive components commonly used in cosmetics or quasi-drugs. Examples of other additive components include functional components that exhibit useful beauty effects (e.g., moisturizing effect, skin conditioning effect, etc.) when used in cosmetics. Further additive components include whitening agents such as tranexamic acid and arbutin, anti-inflammatory agents such as stearyl glycyrrhetinate, dipotassium glycyrrhizinate, and allantoin, surfactants such as polyglycerol fatty acid esters and lecithin, carotenoids such as astaxanthin, preservatives such as phenoxyethanol and ethylhexylglycerin, vitamin E compounds such as tocopherol, polyhydric alcohols, colorants, thickeners, pH adjusters such as sodium hydroxide and hydrochloric acid, buffers, fragrances, antibacterial agents, ultraviolet absorbers, active oxygen scavengers, antimicrobial agents, and minerals.

[0068] The additive component may be added to the oil-in-water composition as is, or may be added in the form of a microcapsule, liposome, or the like in which the additive component is encapsulated. The liposome may have a single lamellar structure with a single lipid bilayer membrane, or a multilamellar structure with multiple lipid bilayer membranes, but from the viewpoint of the amount of component encapsulation, a single lamellar structure is preferred. The liposome can be produced based on or with reference to a known production method for producing liposomes.

[0069] [viscosity] The oil-in-water emulsion composition according to the present disclosure has a viscosity (hereinafter also simply referred to as "viscosity") of 1,000 mPa·s to 25,000 mPa·s as measured with a Brookfield viscometer at 25°C. A viscosity of 1,000 mPa·s to 25,000 mPa·s contributes to both freshness and emulsion stability.

[0070] In the present disclosure, the viscosity of an oil-in-water emulsion composition is measured by the following measurement method and measurement conditions.

[0071] -Measurement method- 50 g of the oil-in-water emulsion composition is filled into a glass container having a diameter of 40 mm and a height of 75 mm, sealed, and stored for 24 hours in an environment of 25° C. After storage, the viscosity of the oil-in-water emulsion composition is measured using a Brookfield viscometer under the following measurement conditions. -Measurement conditions- Measurement temperature: 25℃ Rotor: M3 rotor, Rotation speed: 12 rpm (revolutions per minute, same below) Rotation time: 60 seconds B-type viscometer: Toki Sangyo Co., Ltd.'s B-type viscometer "TV-10M"

[0072] The viscosity of the oil-in-water emulsion composition is 1,000 mPa·s to 25,000 mPa·s, more preferably 1,500 mPa·s to 20,000 mPa·s, and even more preferably 2,000 mPa·s to 10,000 mPa·s.

[0073] [Uses of oil-in-water emulsion composition] The oil-in-water emulsion composition according to the present disclosure can be applied to cosmetic products such as cosmetics and quasi-drugs, for example.

[0074] Cosmetics using the oil-in-water emulsion composition according to the present disclosure have a fresh feeling, an excellent moisturizing feel, and excellent emulsion stability.

[0075] Examples of uses of cosmetics include, but are not limited to, skin care cosmetics (skin lotions, emulsions, serums, sunscreens (sunscreens), packs, etc.), body cosmetics (body lotions, body sunscreens, etc.), and scalp cosmetics.

[0076] [Method of producing oil-in-water emulsion composition] The method for producing the oil-in-water emulsion composition according to the present disclosure is not particularly limited. The oil-in-water emulsion composition according to the present disclosure can be produced using betaine, (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, Compound I, Compound II, an oil, water, and, if desired, the above-mentioned additive components, according to a known method for producing an oil-in-water emulsion composition.

[0077] A preferred method for producing the oil-in-water emulsion composition according to the present disclosure is, for example, a method in which an aqueous phase composition containing at least betaine, (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, Compound I, Compound II, and water is mixed with an oil phase composition containing at least an oil agent, and emulsified and dispersed.

[0078] The aqueous phase composition can be prepared, for example, by mixing betaine, (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, Compound I, Compound II, water, and aqueous additive components among the additive components that are optionally blended. When preparing the aqueous phase composition, all of the components to be incorporated into the aqueous phase composition may be mixed at once, or each component to be incorporated into the aqueous phase composition may be mixed in several batches. The components to be blended in the aqueous phase composition may be simply mixed in the aqueous phase composition, but it is preferable that they are mixed uniformly. The mixing method is not particularly limited, and any commercially available mixing means may be used. Examples of the mixing means include a stirrer, a paddle mixer, an impeller mixer, a homomixer, a disper mixer, an ultra mixer, a high-pressure homogenizer, an ultrasonic homogenizer, etc. Among these, the mixing means is preferably at least one selected from the group consisting of a homomixer and a disper mixer.

[0079] When compound I is mixed with water and other components to be contained in the aqueous phase composition, the stirring temperature is preferably set to 70° C. to 90° C. The temperature when mixing other components is not particularly limited and can be set appropriately depending on the components to be mixed, etc. The means for adjusting the temperature is not particularly limited. A common heating device (for example, a water bath) can be used to adjust the temperature.

[0080] The stirring conditions for mixing the components are not particularly limited as long as they can be mixed thoroughly, and can be appropriately set depending on the mixing means. For example, when a homomixer is used as the mixing means, the components can usually be stirred at 500 rpm (revolutions per minute; the same applies hereinafter) to 8000 rpm for 5 to 60 minutes.

[0081] The oil phase composition can be prepared, for example, by mixing an oil agent with an oily additive component among the optional additive components. Note that a preparation using only a single oil agent as the oil phase component is also included in one embodiment of the oil phase composition of the present disclosure. When preparing the oil phase composition, all of the components to be incorporated into the oil phase composition may be mixed at once, or each component to be incorporated into the oil phase composition may be mixed in several batches. The components to be blended in the oil phase composition may be simply mixed in the oil phase composition, but it is preferable that they are mixed uniformly. The mixing method is not particularly limited, and any commercially available mixing means may be used. Examples of the mixing means include a stirrer, a paddle mixer, an impeller mixer, a homomixer, a disper mixer, an ultra mixer, a high-pressure homogenizer, an ultrasonic homogenizer, etc. Among these, the mixing means is preferably at least one selected from the group consisting of a homomixer and a disper mixer.

[0082] The stirring temperature is not particularly limited as long as it is a temperature condition that allows uniform mixing and dispersion, but it is preferable to set it to, for example, 60°C to 90°C. The means for adjusting the temperature is not particularly limited. A common heating device (for example, a water bath) can be used to adjust the temperature. The stirring time is not particularly limited and can be appropriately set depending on the type of stirring tool or stirring device, the composition of the oil phase composition, and the like. A preferred example of the stirring temperature and stirring time is a stirring temperature of 80° C. and a stirring time of 1 hour.

[0083] The method of emulsification and dispersion is not particularly limited. Although the emulsification dispersion may be carried out by a step of mixing the oil phase composition and the aqueous phase composition all at once, it is preferable to carry out the emulsification dispersion by a step of stirring the aqueous phase composition and adding the oil phase composition little by little to the stirred aqueous phase composition while mixing. For emulsification and dispersion, a conventional emulsification means utilizing shearing action, such as a stirrer, impeller, homomixer, or continuous flow shearing device, can be used. For the purpose of further uniforming the particle size, the emulsification dispersion may be carried out multiple times.

[0084] The ratio of the oil phase composition to the aqueous phase composition (oil phase composition / aqueous phase composition) is not particularly limited, but is preferably 1 / 99 to 50 / 50 by mass, more preferably 3 / 97 to 40 / 60, even more preferably 5 / 95 to 30 / 70, and particularly preferably 10 / 90 to 20 / 80, for example.

[0085] The method for producing an oil-in-water emulsion composition according to the present disclosure may include steps other than the step of mixing the oil phase composition and the aqueous phase composition (so-called other steps) as needed. Examples of other steps include a degassing step, a heat sterilization step, a cooling step, a removal step, etc. Methods known in the art may be applied to the degassing step, heat sterilization step, cooling step, removal step, etc. [Example]

[0086] The oil-in-water emulsion composition according to the present disclosure will be described in more detail below using examples, but the oil-in-water emulsion composition according to the present disclosure is not limited to the following examples.

[0087] Example 1 Among the ingredients listed in Table 1 below, betaine and water were mixed and stirred for 10 minutes using a stirrer in a water bath at 80°C. Gellan gum and PEG-240 / decyltetradeceth-20 / HDI copolymer were added to the resulting mixture, and the mixture was stirred at 4000 rpm for 20 minutes using a homomixer (model name: Homomixer MARK II 2.5, Primix Corporation). Next, sodium acrylate / sodium acryloyldimethyltaurate copolymer was added, and the mixture was mixed at 4000 rpm for 5 minutes using a homomixer to obtain an aqueous phase composition.

[0088] Next, among the components listed in Table 1 below, triethylhexanoin, an oil (ester oil), was placed in a container and heated and stirred for 10 minutes using a stirrer in a water bath at 80°C to obtain an oil phase composition. Next, the aqueous phase composition was stirred at 4000 rpm using a homomixer, and the oil phase composition was added little by little to the stirred aqueous phase composition. After the addition, the mixture was stirred and mixed at 4000 rpm for 20 minutes to obtain the oil-in-water emulsion composition of Example 1.

[0089] [Examples 2 to 21 and Comparative Examples 1 to 14] In preparing the oil-in-water emulsion composition of Example 1, the oil-in-water emulsion compositions of Examples 2 to 21 and the comparative compositions of Comparative Examples 1 to 14 were obtained in the same manner as in Example 1, except that the components and their blending amounts were appropriately changed so as to obtain the compositions shown in Tables 1 to 6 below.

[0090] [Evaluation and Measurement] The oil-in-water emulsion compositions obtained in the examples and the comparative compositions obtained in the comparative examples were used as evaluation samples to carry out the following evaluations and measurements. The results are shown in Tables 1 to 6.

[0091] The unit (%) for the amount of each component listed in Tables 1 to 6 is "% by mass," and the amount of water is such that the total amount of each composition is 100% by mass.

[0092] In Tables 1 to 6, "-" in the composition column means that the corresponding component was not blended.

[0093] Furthermore, Example 1 shown in Tables 2 to 3 and Tables 5 to 6 is listed for comparison with the Examples and Comparative Examples shown in each table, and is the same as Example 1 shown in Table 1.

[0094] 1. Evaluation of physical properties immediately after preparation (initial physical properties) 1-1.Viscosity The viscosity was measured by the following method and conditions.

[0095] -Measurement method- 50 g of the evaluation sample was filled into a glass container having a diameter of 40 mm and a height of 75 mm, sealed, and stored for 24 hours in an environment of 25° C. After storage, the viscosity of each evaluation sample was measured using a B-type viscometer under the following measurement conditions.

[0096] -Measurement conditions- Measurement temperature: 25℃ Rotor: M3 rotor, Rotation speed: 12 rpm Rotation time: 60 seconds B-type viscometer: Toki Sangyo Co., Ltd.'s B-type viscometer "TV-10M"

[0097] 1-2. Emulsifying property The evaluation samples were visually observed, and the particle size (median size) of the emulsified particles was measured using a laser diffraction / scattering particle size distribution analyzer, and the emulsifiability was evaluated according to the following ranks, with "A" being the best rank.

[0098] The laser diffraction / scattering particle size distribution measuring device used was a laser diffraction / scattering particle size distribution measuring device manufactured by Horiba Ltd. (product name: LA960).

[0099] ~Rank~ A: No oil floating was observed, and the particle size of the emulsified particles was less than 5 μm. B: No oil floating was observed, and the particle size of the emulsified particles was 5 μm or more and less than 10 μm. C: Oil floating was observed and the particle size of the emulsified particles was 10 μm or more.

[0100] 2. Evaluation of usability The evaluation samples were evaluated for feel upon use, specifically, freshness, moisturizing feeling, and stickiness, as follows.

[0101] 2-1. Freshness The evaluation samples were used immediately after preparation by 10 monitors in the following manner to evaluate freshness. Specifically, the monitors were asked to take 100 μL of the evaluation sample on their finger and spread it on the inside of the forearm of the opposite arm. Based on the sensation of moisture on the skin after application (i.e., the degree of freshness), the freshness was evaluated using the following rankings. The rank selected by each monitor most frequently was used as the freshness evaluation result, and if the number of selections was the same, the better rank was used as the freshness evaluation result. The best evaluation rank is "A".

[0102] ~Rank~ A: I feel a strong sense of freshness. B: It feels fresh. C: A slight feeling of freshness. D: It doesn't feel fresh.

[0103] 2-2. Moisturizing feeling Immediately after preparation, the evaluation samples were used by 10 monitors in the following manner to evaluate the moisturizing sensation. Specifically, the monitors were asked to take 100 μL of the evaluation sample on their fingers and spread it on the inside of the forearm of the opposite arm, and the feeling of lasting moisture on the skin after application (i.e., moisturizing feeling) was evaluated using the following evaluation ranks. The rank selected by each monitor most frequently was regarded as the result of the moisturizing sensation evaluation, and in the case of a tie, the better rank was regarded as the result of the moisturizing sensation evaluation. The best evaluation rank was "A".

[0104] ~Rank~ A: I feel a strong moisturizing sensation. B: It feels moisturizing. C: Slight moisturizing sensation. D: I don't feel any moisturizing sensation.

[0105] 2-3. Stickiness Immediately after preparation, the evaluation samples were used by 10 monitors in the following manner to evaluate stickiness. Specifically, the monitors were asked to take 100 μL of the evaluation sample on their finger and spread it on the inside of the forearm of the opposite arm, and the stickiness of the skin surface during spreading or after application was evaluated using the following rankings. The rank selected by each monitor with the most number of selections was determined as the stickiness evaluation result, and if the number of selections was the same, the better rank was determined as the stickiness evaluation result. The best evaluation rank was "A".

[0106] ~Rank~ A: It doesn't feel sticky. B: Almost no stickiness. C: Slight stickiness is felt. D: It feels sticky.

[0107] 3. Evaluation of emulsion stability (separation resistance) A specified amount of the evaluation sample was filled into a disposable cell (polycarbonate, 10 mm optical path length) designed specifically for the Lumicizer device. The disposable cell filled with the evaluation sample was then set into the Lumicizer, a particle size distribution analyzer for multiple samples and dispersibility evaluation manufactured by LUM JAPAN. The device was operated under the measurement conditions below to perform the measurement process and obtain a transmitted light profile. The change in transmittance before and after the measurement process, obtained from the transmitted light profile of each evaluation sample, was used as an index to evaluate emulsion stability (separation resistance) using the following evaluation ranks. The smaller the change in transmittance, the less separation occurred in the evaluation sample. The best evaluation rank is "A." -Measurement conditions- Measurement temperature: 25℃ Gravitational acceleration: ×2300g Operating time: 632 minutes

[0108] ~Rank~ A: The change in transmittance is less than 10 B: The change in transmittance is 10 or more and less than 20 C: The change in transmittance is 20 or more

[0109] [Table 1]

[0110] [Table 2]

[0111] [Table 3]

[0112] [Table 4]

[0113] [Table 5]

[0114] [Table 6]

[0115] The results shown in Tables 1 to 6 reveal the following. Each of the oil-in-water emulsion compositions of the Examples had a fresh feeling, an excellent moisturizing feel, and excellent emulsion stability. On the other hand, Comparative Example 1, which did not contain betaine, did not provide a moisturizing feeling and also had poor emulsion stability. Comparative Examples 2 and 3, which did not contain the (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, and Comparative Examples 4 and 5, which used other polymers instead of the (sodium acrylate / sodium acryloyldimethyltaurate) copolymer, were unable to achieve both freshness and emulsion stability. Comparative Examples 2 and 3 also had poor emulsifiability immediately after preparation. Comparative Examples 6 and 7, which did not contain Compound I, and Comparative Examples 8 to 12, which used other components instead of Compound I, all had poor emulsion stability. Comparative Example 13, which did not contain Compound II, did not provide a moisturizing feel and was also poor in emulsion stability. In Comparative Example 14, in which the content of the oil exceeded 10 mass %, no fresh feeling was obtained.

[0116] Each component shown in Tables 1 to 6 will be described in detail below. Betaine (Amicoat, Asahi Kasei Finechem Co., Ltd.) (Sodium acrylate / sodium acryloyldimethyltaurate) copolymer (SIMULGEL EG QD, SEPPIC) (Acrylates / C10-30 alkyl acrylate) crosspolymer (PEMULEN TR-2, Loop Resol Co., Ltd.) Carbomer (Carbopol 980, Loop Resor Co., Ltd.) Gellan gum (Kelcogel HM, CP Kelco, Compound I) Polyacrylamide (SEPIGEL 305, SEPPIC, Compound I) Xanthan gum (Nomcoat ZZ, Nisshin Oillio Group Co., Ltd.) Agar (Ina Agar CS-120, Ina Foods) Locust bean gum (GENUGUM RL-200-Z, Sansho Co., Ltd.) Sodium dilauramidoglutamide lysine (Pellicer® L-30, Asahi Kasei Finechem) (PEG-240 / Decyltetradeceth-20 / HDI) copolymer (GT-700, ADEKA Corporation, Compound II) Bisstearyl PEG / PPG-8 / 6 (SMDI / PEG-400) copolymer (AQUPEC® HU C200, Sumitomo Seika Chemicals Co., Ltd., Compound II) Acrylates / steareth-20 methacrylate copolymer (ACULYN® 22 RHEOLOGY MODIFIER, Dow Chemicals, Compound II) PEG-150 / Decyl Alcohol / SMDI Copolymer (ACULYN® 44, Dow Chemicals, Compound II) Triethylhexanoin (TIO, Nisshin Oillio Group Co., Ltd., oil) Caprylic / capric triglyceride (Coconard MT, Kao, oil) Diethylhexyl succinate (KAK DIOS, Kokyu Alcohol Kogyo Co., Ltd., oil) Squalane (NIKKOL refined olive squalane, Nikko Chemicals Co., Ltd., oil)

[0117] Example 22 1. Preparation of Liposome-Containing Composition A An oil phase composition A, an aqueous phase composition A-1, and an aqueous phase composition A-2 were each prepared, and the resulting oil phase composition A, aqueous phase composition A-1, and aqueous phase composition A-2 were mixed, stirred, emulsified, and allowed to form liposomes, thereby preparing liposome-containing composition A.

[0118] (Preparation of Oil Phase Composition A) Polyoxyethylene phytosterol (average number of moles of oxyethylene groups added: 20), hydrogenated lecithin (hydrogenated soybean phospholipid, phosphatidylcholine content: 90% or more), cholesterol, ascorbyl tetra-2-hexyldecanoate, stearyl glycyrrhetinate, and absolute ethanol were mixed and dissolved by heating at 60°C for 10 minutes, to obtain oil phase composition A.

[0119] (Preparation of Aqueous Phase Compositions A-1 and A-2) Disodium hydrogen phosphate anhydrous, sodium dihydrogen phosphate, tranexamic acid (Maruzen Pharmaceutical Co., Ltd.), Sanguisorba officinalis extract (Jiyu Extract Powder, Maruzen Pharmaceutical Co., Ltd.), and purified water were mixed and dissolved by heating at 60°C for 10 minutes to obtain aqueous phase composition A-1. Also, methyl parahydroxybenzoate and purified water were mixed and dissolved by heating at 60° C. for 10 minutes to obtain an aqueous phase composition A-2.

[0120] (Preparation of Liposome-Containing Composition A) The aqueous phase composition A-1 obtained above was stirred with a homomixer (3400 rpm) while being kept at 60°C, and then the oil phase composition A was added to the aqueous phase composition A-1. After the addition, stirring was continued for 45 minutes at 3400 rpm. After stirring, the mixture was cooled to 35°C or below, and after cooling, aqueous phase composition A-2 was added. After homogenization by stirring and mixing, the mixture was filtered through a 230 mesh filter cloth to obtain a cosmetic composition (liposome-containing composition A).

[0121] [Composition] [Content (mass%)] Polyoxyethylene phytosterol 0.05 Hydrogenated lecithin 0.55 Cholesterol 0.15 Glyceryl Tetra-2-Hexyldecanoate 0.05 Stearyl glycyrrhetinate 0.0025 Absolute ethanol 10.05 Disodium hydrogen phosphate anhydrous 0.065 Sodium dihydrogen phosphate 0.003 Tranexamic acid 0.050 Sanguisorba officinalis extract 0.05 Methylparaben 0.2 Remaining purified water

[0122] 2. Preparation of oil-in-water emulsion composition An oil-in-water emulsion composition having the following composition was prepared (total amount 100% by mass). [Composition] [Content (mass%)] ·(Sodium acrylate / sodium acryloyldimethyltaurate) copolymer 0.35 Gellan gum 0.10 ·(PEG-240 / Decyltetradeceth-20 / HDI) Copolymer 0.15 Triethylhexanoin 5.0 Caprylic / Capric Triglyceride 1.0 Glycerin 2.0 1,3 Butylene Glycol 10.0 Betaine 10.0 Tranexamic acid 2.0 Stearyl Glycyrrhetinate 0.1 γ-oryzanol 0.001 Lecithin 0.01 Polyglyceryl-10 Oleate 0.01 Sucrose stearate 0.01 Liposome-containing composition A (prepared as above) 1.0 Phenoxyethanol 0.20 Methylparaben 0.10 ·Fragrance (appropriate amount) Water remaining

Claims

1. A betaine having a content of 0.10% by mass to 20% by mass relative to the total mass of an oil-in-water emulsion composition; a (sodium acrylate / sodium acryloyldimethyltaurate) copolymer in an amount of 0.10% by mass to 1.0% by mass relative to the total mass of the oil-in-water emulsion composition; at least one compound I selected from the group consisting of gellan gum and polyacrylamide, the content of which is 0.01% by mass to 0.2% by mass relative to the total mass of the oil-in-water emulsion composition; at least one compound II selected from the group consisting of (PEG-240 / decyltetradeceth-20 / HDI) copolymer, bisstearyl PEG / PPG-8 / 6 (SMDI / PEG-400) copolymer, (acrylates / steareth-20 methacrylate) copolymer, and (PEG-150 / decyl alcohol / SMDI) copolymer, the content of which is 0.01% by mass to 0.5% by mass relative to the total mass of the oil-in-water emulsion composition; an oil agent whose content relative to the total mass of the oil-in-water emulsion composition is 0.10% by mass to 10% by mass; and water, the content of which is 60% by mass or more relative to the total mass of the oil-in-water emulsion composition; The viscosity measured with a Brookfield viscometer at 25°C is 1,000 mPa·s to 25,000 mPa·s. Oil-in-water emulsion composition.

2. 2. The oil-in-water emulsion composition according to claim 1, wherein the ratio of the total content of Compound I to the content of (sodium acrylate / sodium acryloyldimethyltaurate) copolymer is 0.01 to 2 on a mass basis.

3. 3. The oil-in-water emulsion composition according to claim 1 or claim 2, wherein the ratio of the total content of compound II to the content of (sodium acrylate / sodium acryloyldimethyltaurate) copolymer is 0.01 to 5 on a mass basis.

4. The oil-in-water emulsion composition according to any one of claims 1 to 3, wherein the oil comprises an ester oil.

5. The oil-in-water emulsion composition according to any one of claims 1 to 4, which is a cosmetic.

Citation Information

Patent Citations

  • Thickening composition, and cosmetic containing the same

    JP2011231061A

  • Oil-in-water type cosmetic

    JP2016190835A

  • Skin external composition

    JP2019019077A

  • Oil-in-water emulsion composition

    JP2019142825A