Emulsified cosmetics
The oil-in-water emulsion cosmetic composition addresses skin safety and usability issues by using specific surfactants and a controlled particle size, ensuring stability and transparency without high-pressure homogenizers.
Patent Information
- Application Number
- JP2021074275
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-04-26
- Publication Date
- 2025-11-19
- Estimated Expiration
- 2041-04-26
AI Technical Summary
Existing oil-in-water emulsion cosmetics face challenges in achieving a balance of skin safety, usability, and stability while avoiding the use of high-pressure homogenizers, leading to issues like stickiness, skin irritation, and poor transparency.
An oil-in-water emulsion cosmetic composition using specific surfactants, including a diester of a fatty acid and polyglycerin, and an ester of a straight-chain fatty acid and polyglycerin, with a mass ratio of surfactants to oil of 2.5 or more, and a particle size of 100 nm or less, ensuring stability and transparency.
The composition achieves excellent skin safety, ease of use, and stability over a wide temperature range without creaming, maintaining a translucent appearance and reducing energy consumption.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an emulsion cosmetic. [Background technology]
[0002] There are two types of emulsions: oil-in-water (O / W) and water-in-oil (W / O). Oil-in-water emulsion cosmetics emulsified as O / W emulsions are preferred in the cosmetics industry due to their pleasant texture. In particular, fine emulsions, which have been refined to nano-size oil droplets, are highly valued in the market for their beautiful, transparent appearance, excellent texture with reduced stickiness of oils, and excellent penetration into the skin. There are two emulsification methods for producing fine emulsions: (1) a method that uses high shear force to make oil droplets finer (high-pressure emulsification method), and (2) a method that uses the properties of surfactants to make oil droplets finer.
[0003] When high-pressure emulsification (1) is adopted as the emulsification method, it is possible to design a lower amount of surfactant than with conventional emulsification (such as homomixers or propeller stirring). This allows for the production of emulsified cosmetics that are highly safe for the skin. High-pressure emulsification requires special equipment such as a high-pressure homogenizer, and the amount that can be processed at one time is small, resulting in high production costs. Furthermore, precise control of shear force is required to homogenize the oil droplets, making management of the production process complicated. Refining emulsions using high-pressure emulsification is not necessarily a modern technology from the perspective of energy conservation, given the recent rise in environmental awareness.
[0004] On the other hand, if we adopt the emulsification method (2) that uses the properties of surfactants to make oil droplets finer, it does not require special emulsification equipment and can be emulsified with low energy, so it can be said to be a modern technology from the perspective of energy conservation. (2) Emulsification methods that use the properties of surfactants to make oil droplets finer include phase inversion emulsification, liquid crystal emulsification, D-phase emulsification, and phase inversion temperature emulsification. The inventors of the present application believe that the technology of adjusting the emulsion particle size depending on the characteristics of the surfactant (2) makes it easier to predict the characteristics of the resulting composition (emulsion particle size, skin safety, feel during use, appearance) by focusing on the value calculated by dividing the total content of oils by the total content of surfactants (hereinafter, this may be referred to as the oil / surfactant ratio), and have utilized this technology in formula development. In a typical composition, a small oil / surfactant ratio results in a small emulsion particle size, while a large oil / surfactant ratio results in a large emulsion particle size. When the oil / surfactant ratio is small, there is a relatively large amount of surfactant, which reduces skin safety. When the oil / surfactant ratio is large, there is a relatively small amount of surfactant, which increases skin safety. The smaller the emulsion particle size, the better the feel in use and the transparency of the appearance. Based on the experience of numerous formulation developments, the inventors of the present application realized that the numerical value of the oil / surfactant ratio is significant, and classified the prior art into three categories, based on the idea that if the value calculated by dividing the amount of oil by the amount of surfactant is set at "2.5," it is possible to distinguish whether the emulsification technology is ordinary or excellent. (a) Technology to reduce the emulsion particle size by reducing the oil / surfactant ratio to less than 2.5 (b) Technology to increase the emulsion particle size by increasing the oil / surfactant ratio to 2.5 or more (c) Technology to make the oil / surfactant ratio 2.5 or more and to make the emulsion particle size smaller by adding a third component
[0005] Patent Document 1 is an example of a technology classified as (a) where the "oil / surfactant ratio is less than 2.5." The emulsion particle size is reduced to 100 nm or less. In these conventional technologies, the amount of surfactant is relatively large compared to the amount of oil, which may lead to stickiness caused by the surfactant and reduce usability. Furthermore, a large amount of surfactant may reduce safety for the skin.
[0006] Patent Document 2, for example, is an example of a technology classified as (b) in which the "oil / surfactant ratio is 2.5 or more." These conventional technologies have a high level of skin safety because the amount of surfactant is relatively small compared to the amount of oil. The emulsion particle size exceeds 100 nm. If the emulsion particle size is large, the transparency of the appearance decreases and depending on the purpose of the product, it may be considered to lack aesthetic appeal. In addition, if the emulsion particle size is large, the "sticky feeling" caused by the oil is more likely to be felt.
[0007] Many companies have proposed technology classified as (c), which involves reducing the emulsion particle size by adding a third component and setting the oil / surfactant ratio at 2.5 or more. The emulsion particle size has been reduced to 100 nm or less. Representative third components are listed below.
[0008] An example of the third component to be added is the inclusion of an anionic surfactant. This is described, for example, in Patent Documents 3, 4, and 5. Anionic surfactants have a large curvature and are therefore effective in reducing the size of emulsion particles, but when incorporated into skin care products, particularly leave-on skin care products, they may cause skin irritation.
[0009] An example 2 of the addition of the third component is a high content of polyhydric alcohol as a hydrotrope. For example, this is described in Patent Document 6 and Patent Document 7. The incorporation of a high content of polyhydric alcohol may cause a sticky feeling and reduce usability.
[0010] An example 3 of adding the third component is a technique of adding a large amount of ethanol to the aqueous phase during emulsification. For example, Patent Document 8 describes in its working examples a composition in which the oil / surfactant ratio is 10 or more and the emulsion particle size is 100 nm or less. Although the emulsion particle size is fine, the technology requires ethanol, which can irritate skin that is sensitive to alcohol and may lead to dryness of the skin.
[0011] An example 4 of the addition of a third component is the inclusion of an emulsifier. This is a technology that reduces the emulsion particle size by combining an emulsifier with a high oil / surfactant ratio while ensuring skin safety. However, depending on the type of emulsifier, there is a risk that the feel and safety of the product may be impaired. As seen above, conventional techniques have not yet achieved an emulsion cosmetic with fine emulsion particles that is excellent in all aspects of safety to the skin, ease of use, and stability. There is a demand for an oil-in-water emulsion cosmetic that satisfies all of the above. [Prior art documents] [Patent documents]
[0012] [Patent Document 1] Japanese Patent Publication No. 2020-105077 [Patent Document 2] Patent No. 5053557 [Patent Document 3] Patent No. 4185081 [Patent Document 4] Patent No. 4116020 [Patent Document 5] Patent No. 5134197 [Patent Document 6] Japanese Patent Application Laid-Open No. 2010-6739 [Patent Document 7] Japanese Patent Application Laid-Open No. 2008-100937 Summary of the Invention [Problem to be solved by the invention]
[0013] The present invention addresses the problem of providing a translucent oil-in-water emulsion cosmetic that is excellent in skin safety, usability, and stability over time, without using a special emulsifying device such as a high-pressure homogenizer. [Means for solving the problem]
[0014] The present invention is configured as follows. (1) An oil-in-water emulsion cosmetic containing (A) to (D), and containing 50 to 98 mass % of water (D) per cosmetic. (A) A surfactant that is a diester of a fatty acid having 14 to 22 carbon atoms and polyglycerin (B) A surfactant that is an ester of a straight-chain fatty acid having 6 to 10 carbon atoms and polyglycerin. (C) Oil (D)Water (2) The oil-in-water emulsion cosmetic according to (1), wherein the mass ratio of the surfactant containing (A) and (B) to the oil (C) is 2.5 or more. (3) The oil-in-water emulsion cosmetic according to (1) or (2), wherein the volume-based average particle size of the emulsion particles is 100 nm or less. (4) The oil-in-water emulsion cosmetic according to any one of (1) to (3), which has a transmittance (wavelength 600 nm, optical path length 1 cm) of 0.1% or more. [Effects of the Invention]
[0015] The composition of the present invention enabled the production of oil-in-water emulsion cosmetics that exhibited excellent skin safety, ease of use, and stability over time. In particular, even in compositions where the mass ratio of surfactants (A) and (B) to oil (C) was 2.5 or greater, i.e., where the amount of surfactant was relatively small relative to the oil, fine emulsions with emulsified particles having a volume-based average particle size of 100 nm or less were obtained. The oil-in-water emulsion cosmetics were stable and maintained their appearance unchanged across all temperature ranges (-5°C, 0°C, 25°C, 40°C, and 50°C). They remained stable without creaming even after one month of storage under the harsh conditions of 50°C. Furthermore, they exhibited excellent skin safety, ease of use, and stability. Their beautiful translucent (blue-white translucent) appearance made them ideal for use as luxury lotions. The composition of the present invention eliminated the need for complex process management during production, enabling the production of oil-in-water emulsion cosmetics with low energy consumption. DETAILED DESCRIPTION OF THE INVENTION
[0016] The present invention relates to an oil-in-water emulsion cosmetic comprising (A) a surfactant which is a diester of a fatty acid having 14 to 22 carbon atoms and a polyglycerol, (B) a surfactant which is an ester of a linear fatty acid having 6 to 10 carbon atoms and a polyglycerol, (C) an oil, and (D) 50 to 98% by mass of water. The components of the present invention are described below.
[0017] Component (A): Diester of fatty acid having 14 to 22 carbon atoms and polyglycerin The oil-in-water emulsion cosmetic of the present invention uses a diester of a fatty acid having 14 to 22 carbon atoms and a polyglycerin as Component A. Examples of the diester of a fatty acid having 14 to 22 carbon atoms and a polyglycerin that is Component A include polyglyceryl-10 diisostearate, polyglyceryl-10 distearate, and polyglyceryl-10 dioleate. The content of the diester of a fatty acid and a polyglycerin as Component A is preferably 0.05 to 4.9% by mass, more preferably 0.1 to 3% by mass, and even more preferably 0.1 to 2% by mass, based on the total amount of the cosmetic. The polyglycerin in the polyglycerin fatty acid ester preferably has an average degree of polymerization of 5 to 15.
[0018] (B) Component: Ester of straight-chain fatty acid with 6 to 10 carbon atoms and polyglycerin The oil-in-water emulsion cosmetic of the present invention uses an ester of a straight-chain fatty acid having 6 to 10 carbon atoms and a polyglycerol as component B. Examples of the ester of a straight-chain fatty acid having 6 to 10 carbon atoms and a polyglycerol that is component (B) include triglyceryl caprylate, pentaglyceryl dicaprylate, eicosaglyceryl hexacaprylate, eicosaglyceryl hexacaprate, triglyceryl caprate, hexaglyceryl dicaprylate, and hexaglyceryl dicaprate. The component is an ester of a straight-chain fatty acid having 6 to 10 carbon atoms and a polyglycerol, in which the ratio of the degree of polymerization of polyglycerol to the number of bonded residues of fatty acid per molecule (degree of polymerization of polyglycerol / number of bonded residues of fatty acid) is 2.5 to 3.5. Triglyceryl caprylate (ratio of polyglycerin polymerization degree to the number of fatty acid bond residues is 3.0), pentaglyceryl dicaprylate (2.5), eicosaglyceryl hexacaprylate (3.3), eicosaglyceryl hexacaprate (3.3), triglyceryl caprate (3.0), hexaglyceryl dicaprylate (3.0), and hexaglyceryl dicaprate (3.0). Of these, eicosaglyceryl hexacaprylate (display name: Polyglyceryl-20 hexacaprylate) or hexaglyceryl dicaprate (display name: Polyglyceryl-6 dicaprate) is more preferred. The blending amount of component (B) is preferably 0.05 to 4.9% by mass, more preferably 0.1 to 3% by mass, and even more preferably 0.1 to 2% by mass, based on the total amount of the water-in-oil emulsion.
[0019] In the oil-in-water emulsion cosmetic of the present invention, the total content of the surfactant (A) and the surfactant (B) is preferably 0.1 to 9.8% by mass, more preferably 0.1 to 5% by mass, even more preferably 0.2 to 4% by mass, and even more preferably 0.2 to 3.5% by mass, based on the total amount of the cosmetic. This range is preferable because it reduces the risk of stickiness due to the surfactants. Note that if the oil-in-water emulsion cosmetic of the present invention contains any surfactant other than (A) and (B), it will be included in the total content of (A) and (B).
[0020] (C) Ingredient: Oil Examples of the oil agent (C) of the present invention include the following. Examples of suitable oils include natural animal and vegetable oils and semi-synthetic oils, hydrocarbon oils, ester oils, glyceride oils, silicone oils, fat-soluble vitamins, higher fatty acids, and animal, vegetable, and synthetic essential oil components. Examples of suitable oils include avocado oil, linseed oil, almond oil, olive oil (olive fruit oil), wheat germ oil, sesame oil, rice germ oil, rice bran oil, safflower oil, soybean oil, evening primrose oil, corn oil, rapeseed oil, horse fat, palm oil, palm kernel oil, castor oil, sunflower oil, jojoba oil, macadamia nut oil, coconut oil, hardened coconut oil, peanut oil, medusa oil, and lanolin. Examples of suitable hydrocarbon oils include squalane, squalene, liquid paraffin, and petrolatum. Ester oils include diisobutyl adipate, 2-hexyldecyl adipate, di-2-heptylundecyl adipate, isostearyl isostearate, trimethylolpropane triisostearate, cetyl ethylhexanoate, isotridecyl isononanoate, ethylhexyl palmitate, triethylhexanoin, neopentyl glycol di-2-ethylhexanoate, trimethylolpropane tri-2-ethylhexanoate, pentaerythritol tetra-2-ethylhexanoate, cetyl octanoate, oleyl oleate, octyldodecyl oleate, decyl oleate, neo dicaprate Examples of the oils include pentyl glycol, 2-ethylhexyl succinate, isocetyl stearate, butyl stearate, diisopropyl sebacate, cetyl lactate, tetradecyl lactate, isopropyl myristate, octyl palmitate, 2-hexyldecyl palmitate, 2-heptylundecyl palmitate, cholesteryl 12-hydroxystearate, phytosteryl oleate, diisostearyl malate, para-methoxycinnamate, pentaerythrityl tetrarosinate, caprylyl caprylate / caprate, dicaprylyl ether, butylene glycol diisononanoate, and diethylhexyl succinate. Examples of glyceride oils include glyceryl triisostearate, glyceryl triisopalmitate, glyceryl tri-2-ethylhexanoate, glyceryl tritetradecanoate, and glyceryl di-para-methoxycinnamate monoisooctylate.Examples of silicone oils include higher alkoxy-modified silicones such as dimethylpolysiloxane, methylphenylpolysiloxane, methylhydrogenpolysiloxane, octamethylcyclopentasiloxane, decamethylcyclohexasiloxane, diphenylsiloxyphenyltrimethicone, and stearoxysilicone, alkyl-modified silicones, and higher fatty acid ester-modified silicones. Examples of fat-soluble vitamins include tocopherol, and examples of essential oils include orange peel oil and rosemary leaf oil. Among these, cetyl ethylhexanoate, isotridecyl isononanoate, ethylhexyl palmitate, triethylhexanoin, caprylyl caprylate / caprate, dicaprylyl ether, butylene glycol diisononanoate, diethylhexyl succinate, mineral oil, avocado oil, medusa oil, olive fruit oil, tocopherol, orange peel oil, and rosemary leaf oil are preferred. Among these, cetyl ethylhexanoate, isotridecyl isononanoate, ethylhexyl palmitate, triethylhexanoin, caprylyl caprylate / caprate, dicaprylyl ether, butylene glycol diisononanoate, diethylhexyl succinate, and mineral oil are particularly preferred. The oils of component (C) may be used alone or in combination of two or more. The oil-in-water emulsion cosmetic of the present invention preferably contains an oil agent (component (C)) in an amount of 0.1 to 15 mass %, more preferably 0.5 to 12 mass %, and even more preferably 1 to 10 mass % based on the total amount of the cosmetic.
[0021] (D) Component: Water The oil-in-water emulsion cosmetic of the present invention contains 50 to 98 mass% of water as component (D). In the present invention, the blending amount of water as component (D) is preferably 50 to 98 mass%, more preferably 60 to 98 mass%, even more preferably 70 to 98 mass%, and even more preferably 73 to 98 mass%.
[0022] The oil-in-water emulsion cosmetic of the present invention may optionally contain the following components: The components exemplified below (E polyol, F antibacterial polyol) are components that the inventors have confirmed to exhibit favorable effects when included in the oil-in-water emulsion cosmetic having the configuration of the present invention. (optional ingredient) Component (E): Polyol The oil-in-water emulsion cosmetic of the present invention preferably optionally contains (E): a polyol. For example, the inclusion of one or more polyols selected from glycerin, diglycerin, polyglycerin-3, polyglycerin-4, polyglycerin-5, polyglycerin-6, polyglycerin-10, and methyl gluceth-10 is preferred because it acts as a solvent for the oil contained in the oil-in-water emulsion cosmetic and may contribute to the translucency of the oil-in-water emulsion cosmetic and its stability over time at high temperatures. When the oil-in-water emulsion cosmetic of the present invention contains a polyol as an optional component (E), the content is preferably 0.01 to 15 mass %, and more preferably 0.1 to 13 mass %, of the total amount of the cosmetic. This range is preferable because it may be possible to obtain an oil-in-water emulsion cosmetic that is more translucent and has excellent temperature stability without the stickiness that is typically associated with polyols.
[0023] Furthermore, the oil-in-water emulsion cosmetic of the present invention may optionally contain a polyol with high antibacterial activity in addition to the polyols described above. If the oil-in-water emulsion cosmetic of the present invention contains the following component (F), its content is not included in the polyol component (E). (F) Component: Antibacterial polyol The water-in-oil emulsion cosmetic of the present invention preferably contains an antibacterial polyol as component (F). In order to prevent spoilage of a cosmetic composition containing water, it is important in terms of quality design to include an antibacterial component to enhance antibacterial properties. When imparting antibacterial activity by incorporating a solid substance such as paraben, component (F) is not necessarily required. However, heating is required to dissolve paraben in water, and there is a risk of precipitation depending on storage conditions. Furthermore, since oil-in-water emulsion cosmetics involve rubbing against the skin during use, precipitation of solid substances that may injure the skin significantly reduces quality. Furthermore, preservatives such as paraben are components that raise concerns about safety to the eyes and skin. Therefore, it is even more preferable that the oil-in-water emulsion cosmetic of the present invention further contains one or more antibacterial polyols (F) to impart antibacterial properties. The antibacterial polyol of component (F) preferably contains one or more selected from BG (1,3-butylene glycol), DPG (dipropylene glycol), and pentylene glycol (1,2-pentanediol). In the present invention, the antibacterial polyol of component (F) is preferably blended in a total amount of 0.1 to 9 mass% based on the total amount of the cosmetic. For example, if BG or DPG is used alone, an appropriate amount is 5 to 9 mass%, and if pentylene glycol is used alone, an appropriate amount is 0.1 to 5 mass%. In the present invention, blending the antibacterial polyol of component (F) in a total amount of 0.1 to 9 mass% based on the total amount of the cosmetic is preferred because it imparts antibacterial properties to the cosmetic. When the polyol of component (E) is contained in the oil-in-water emulsion cosmetic of the present invention, it is preferred to incorporate the polyol of component (E) and the antibacterial polyol of component (F) in a mass ratio of 10:9 to 100:1, as this facilitates achieving a translucent appearance.
[0024] (Regarding other optional ingredients) The oil-in-water emulsion cosmetic of the present invention can also contain various ingredients commonly used in cosmetics, provided that the effects of the present invention are not impaired. For example, pH adjusters, neutralizing agents, antioxidants, fragrances, colorants (e.g., cyanocobalamin, chlorophyllin / copper complex), beauty ingredients (e.g., rosemary extract), etc. can be added.
[0025] The oil-in-water emulsion cosmetic of the present invention is designed in various dosage forms taking into consideration ease of use and feel upon use. Specifically, it is in liquid or gel form. The properties of the present invention are best exhibited in a lotion. [Example]
[0026] The present invention will be further described below with reference to test examples (Examples and Comparative Examples). Oil-in-water emulsion cosmetics of Examples 1 to 6 and Comparative Examples 1 to 6 were prepared using the compositions shown in Table 1 by the following preparation methods. The units of composition are % by mass. <Preparation method> The surfactant (Component A), the surfactant (Component B), the oil (Component C), and water (part of Component D) are heated and dissolved at 70-85°C to obtain a clear, single-phase composition (1). Next, the remaining water (Component D), which has been heated to 80-85°C for sterilization, is gradually added to composition (1) to obtain an oil-in-water emulsion cosmetic. The timing of addition of optional water-soluble ingredients such as polyols does not matter. That is, they can be added during the preparation of composition (1), after the preparation of the oil-in-water emulsion cosmetic, or they can be added separately, such as during the preparation of composition (1) or after the preparation of the oil-in-water emulsion cosmetic. In this test, the polyol was added separately.
[0027] [Testing and Evaluation] For the test examples (Examples and Comparative Examples), the emulsion particle size and transmittance were measured, and appearance observation (the next day and one month later) and sensory evaluation were carried out to evaluate the stability and usability (usability). <Emulsion particle size> 1 g of the prepared oil-in-water emulsion cosmetic was diluted with 99 g of ion-exchanged water to prepare a sample. The volume-average particle size of the sample was measured by dynamic light scattering using a zeta potential / particle size measurement system (device name: ELSZ-1000ZS, manufactured by Otsuka Electronics Co., Ltd.). Based on the extensive experience of formula development, the inventors are well aware that when the emulsion particle size of an oil agent is 100 nm or less, the oil agent does not feel sticky. Therefore, in this test, the target emulsion particle size was set at 100 nm, and it was determined that the objective was achieved if the emulsion particle size was 100 nm or less. <Transmittance> The transmittance of the prepared oil-in-water emulsion cosmetic was measured using a spectrophotometer (device name: UV-Visible Spectrophotometer V-750DS, manufactured by JASCO Corporation) at a measurement wavelength of 600 nm, with an optical path length of 1 cm, using a quartz cell and ion-exchanged water as the standard. In the course of research, the inventors have observed the appearance and measured the transmittance of various cosmetics. Cosmetics recognized as pale-white translucent have a transmittance of 0.1% or more. Therefore, in the present invention, in order to obtain a pale-white translucent cosmetic, the goal is to achieve a transmittance of 0.1% or more for the composition, and the inventors have determined that the goal has been achieved if the transmittance is 0.1% or more. <Appearance observation> The prepared oil-in-water emulsion cosmetic was filled into a 30 mm diameter transparent glass bottle with a screw cap, and after storing at room temperature (25°C) for one day, the appearance was visually observed from the side of the container. The observation results were recorded in the table as a direct representation of the appearance, with pale translucent being recorded as "pale translucent" and cloudy being recorded as "cloudy". No transparent cosmetic was found in this test. <Stability over time - appearance observation after 1 month> The prepared oil-in-water emulsion cosmetics were filled into transparent glass bottles with a diameter of 30 mm and fitted with screw caps, and after storing them for one month at each of the temperature ranges of -5°C, 0°C, 25°C, 40°C, and 50°C, the appearance of the containers was visually observed from the side. There was no change in appearance in the products stored at -5°C, 0°C, 25°C, and 40°C, and all were stable in both the Examples and Comparative Examples. Only the test products stored at 50°C showed a change in appearance (creaming). The table shows the results of the appearance observation after one month of storage at 50°C, and indicates whether creaming occurred or not. Creaming: Yes Uncreamed: None <Sensory evaluation> A professional sensory evaluator applied one drop of the obtained oil-in-water emulsion cosmetic to the inside of the forearm using a dropper, rubbed it into the skin, and then tapped it to evaluate the "stickiness." ○: No stickiness ×: Sticky feeling In addition, in the sensory evaluation, there were some cases where the product did not feel sticky but felt slimy due to the oil. In such cases, the product was not rated as "○" but was rated as "not sticky but slimy" and was rated as "△".
[0028] The present invention will be explained below, focusing on the oil / surfactant ratio, focusing on the composition in which the oil / surfactant ratio is fixed at "3". In this test, the oil / surfactant ratio was fixed at "3" because it is generally believed that an oil / surfactant ratio of 2.5 or higher is a composition that is composed of a relatively small amount of surfactant, and it has been empirically proven that the resulting cosmetic is low in irritation to the skin. This "system with an oil / surfactant ratio of 2.5 or more" that is guaranteed to be safe for the skin has achieved all of the following features that were difficult to achieve with conventional technology: a translucent (pale translucent) appearance, excellent usability (no stickiness or sliminess), and storage stability (no change in appearance after storage for one month at all temperatures (-5°C, 0°C, 25°C, 40°C, 50°C), and in particular no creaming after storage for one month at 50°C). This is the significance of the present invention. Test results are shown below for explanation. First, the compositions with different surfactant types and the test results are shown in Table 1.
[0029] [Table 1]
[0030] (result) In Examples 1 to 6, the oil / surfactant ratio was 3, exceeding 2.5. By adopting the composition (A+B+C+D) of the present invention, an oil-in-water emulsion cosmetic was obtained with an emulsion particle size (volume-based mean diameter) of 100 nm or less, and the minimum transmittance at a wavelength of 600 nm was 0.86%, exceeding the target of 0.1%. The cosmetic exhibited a pale, translucent appearance, was neither sticky nor slimy, and was excellent in usability. Furthermore, no creaming was observed after storage at 50°C for one month, demonstrating excellent stability. The compositions of Examples 1, 3, and 4 contained optional glycerin, while Examples 2 and 5 did not contain optional glycerin, but similar results were obtained. In contrast, the oil-in-water emulsion cosmetic (A+C+D) of Comparative Example 1, which did not contain Component B but had an increased amount of Component A, had an emulsion particle size (volume-based average diameter) of 7506.3 nm, which did not achieve the target of 100 nm or less. The transmittance at a wavelength of 600 nm was 0.01%, which did not achieve the target of 0.1% or more. The appearance was cloudy, and in the sensory evaluation, it was rated as fair, as it did not feel sticky but had a slimy feeling due to the oil. Creaming was observed when stored at 50°C. Comparative Examples 2 and 3 were compositions that did not contain Component A but had an increased amount of Component B. The resulting oil-in-water emulsion cosmetics (B+C+D) had emulsion particle sizes of 7545 nm (Comparative Example 2) and 267 nm (Comparative Example 3), which did not achieve the target of 100 nm or less. The transmittance at a wavelength of 600 nm was 0.01% (Comparative Example 2) and 0.01% (Comparative Example 3), which did not achieve the target of 0.1% or more. Both Comparative Examples 2 and 3 were cloudy in appearance, and in the sensory evaluation, a stickiness due to the oily agent was felt, resulting in a rating of Fair. Creaming was observed in both cases when stored at 50°C. Comparative Example 4 did not contain Component A, but had it replaced with other surfactants (B + optional other surfactants + C + D). The resulting oil-in-water emulsion cosmetic had a wavelength of 691 nm (Comparative Example 4), which did not achieve the target of 100 nm or less. The transmittance at a wavelength of 600 nm was 0.0164% (Comparative Example 4), which did not achieve the target of 0.1% or more. Comparative Example 4 had a cloudy appearance, and in the sensory evaluation, it was evaluated as fair due to a sticky feeling caused by the oil. Creaming was observed in all cases when stored at 50°C. From the above, it was found that when either component A or component B is missing from the composition, the target emulsion particle size of 100 nm or less is not achieved, but rather the emulsion particle size is large, causing a sticky feeling and a problem with the feel when used, and the transmittance does not exceed 0.1%, resulting in a cloudy appearance. As component A, decaglyceryl diisostearate, decaglyceryl distearate, and decaglyceryl dioleate were effective. As component B, eicosaglyceryl hexacaprylate and hexaglyceryl dicaprate were effective. The oil-in-water emulsion cosmetics shown in Table 2 below have a composition in which the oil / surfactant ratio is fixed at 3 and various oils are used.
[0031] [Table 2]
[0032] (result) The oil-in-water emulsion cosmetics of Example 1 (same composition as in Table 1) and Examples 7 to 11 contain one or more of the following oils: cetyl 2-ethylhexanoate, tri-2-ethylhexanoin, mineral oil, 2-ethylhexyl palmitate, isotridecyl isononanoate, and neopentyl glycol dicaprate. The oil / surfactant ratio is 3, exceeding 2.5. By adopting the composition of the present invention, fine oil-in-water emulsion cosmetics with a volume-based average diameter of 100 nm or less were obtained. The obtained oil-in-water emulsion cosmetics had a pale, translucent appearance, were neither sticky nor slimy, and were excellent in usability. All of the cosmetics showed a transmittance of 0.1% or more at a wavelength of 600 nm. No creaming was observed in appearance observation after storage at 50°C for one month. Examples 12 to 15 are compositions based on cetyl 2-ethylhexanoate as an oil agent, containing a combination of ascorbyl tetra-2-hexyldecanoate, di(octyldodecyl / phytosteryl) lauroyl glutamate, jojoba seed oil, and olive fruit oil. By adopting the composition of the present invention, a fine oil-in-water emulsion cosmetic was obtained with an emulsion particle size (volume-based average diameter) of 100 nm or less. The cosmetic exhibited a pale, translucent appearance, was neither sticky nor slimy, and was excellent in usability. No creaming was observed even after storage at 50°C for one month. As described above, it has been found that excellent effects can be obtained by adopting the configuration of the present invention, even when the type of oil agent is changed or when a plurality of oil agents are combined. The compositions in Table 3 below have an oil / surfactant ratio of 2.5 to 4.0.
[0033] [Table 3]
[0034] The oil-in-water emulsion cosmetics of Example 1 (same composition as in Table 1) and Examples 16 to 18 had oil / surfactant ratios of 3.0, 2.5, 3.5, and 4.0, respectively, with the oil / surfactant ratio falling within the range of 2.5 to 4.0. The compositions of Examples 1 and 16 to 18 yielded fine oil-in-water emulsion cosmetics with emulsion particles having a volume-based average diameter of 100 nm or less. These oil-in-water emulsion cosmetics exhibited a pale, translucent appearance, were non-sticky, and had excellent usability. All of the cosmetics exhibited a transmittance of 0.1% or greater at a wavelength of 600 nm. After storage at 50°C for one month, no creaming was observed in appearance observations. Next, the oil content was increased and the test was conducted. The oil content of the test product was set to "1 to 10 mass %", which is the amount of oil contained in a typical lotion or emulsion. The test was conducted in the same manner as the above test. The results are shown in Table 4.
[0035] [Table 4]
[0036] The oil-in-water emulsion cosmetics of Examples 19 to 22 had oil / surfactant ratios of 3.0, 3.0, 3.5, and 3.0, with the oil / surfactant ratio falling within the range of 2.5 to 4. The compositions of Examples 19 to 22 yielded fine oil-in-water emulsion cosmetics with emulsion particle diameters (volume-based average diameter) of 100 nm or less. These oil-in-water emulsion cosmetics had a pale, translucent appearance, were not sticky or slimy, and were excellent in usability. All of the cosmetics exhibited the target transmittance of 0.1% or greater at a wavelength of 600 nm. They also showed no creaming even after storage at 50°C for one month, demonstrating excellent stability over time. From the above results, it was confirmed that the present invention has excellent effects when the amount of oil contained in emulsions and lotions is in the range of 1 to 10% by mass, which is considered to be preferable from the viewpoint of usability. Next, similar tests were conducted on compositions containing other optional ingredients. The results are shown in Table 5.
[0037] [Table 5]
[0038] Examples 23 to 25 are oil-in-water emulsion cosmetics (milky lotions / toners) containing optional polyols (E polyol, F antibacterial polyol) and preservatives (phenoxyethanol) to enhance moisturizing and antiseptic properties. Example 24 also contains an optional viscosity modifier to impart viscosity (thickness). Example 25 also contains an optional fragrance to impart fragrance. The oil-in-water emulsion cosmetics of Examples 23 to 25 have an oil / surfactant ratio of 3.0, falling within the range of 2.5 to 4.0. The compositions of Examples 23 to 25 yielded fine oil-in-water emulsion cosmetics with emulsion particles of 100 nm or less (volume-based average diameter). These oil-in-water emulsion cosmetics had a pale, translucent appearance. They were neither sticky nor slimy, and were easy to use. All of the films exhibited the target transmittance of 0.1% or more at a wavelength of 600 nm, and showed excellent storage stability with no creaming even after storage at 50°C for one month.
[0039] When the oil-in-water emulsion cosmetics (lotions) of Examples 1 to 25 were actually used, none of them caused skin irritation. As shown in Tables 1 to 5 (Examples 1 to 25), the oil-in-water emulsion cosmetics having the configuration of the present invention had a volume-based mean particle size of 49.6 to 93.7 nm, were free of the stickiness caused by oily agents, and achieved the target value of 100 nm or less, which is evaluated as providing a good feel in use. The oil-in-water emulsion cosmetics of Examples 1 to 25 had a transmittance (measured at a wavelength of 600 nm) of 0.29 to 29.12%, achieving the 0.1% or higher required for visual evaluation as translucent, and were evaluated as bluish-white translucent by visual observation. The oil-in-water emulsion cosmetics of Examples 1 to 25 had a mass ratio of surfactants containing (A) and (B) to oil (C) (oil / surfactant ratio) ranging from 2.5 to 4.0, with an oil / surfactant ratio of 2.5 or higher, but were not sticky or slimy and had an excellent feel when used. Furthermore, they remained stable with no change in appearance even after one month of storage at all temperature ranges (-5°C, 0°C, 25°C, 40°C, 50°C), demonstrating excellent storage stability.
[0040] The composition of the present invention enabled the production of an oil-in-water emulsion cosmetic that exhibited excellent skin safety, ease of use, and stability over time. In particular, even in compositions where the mass ratio of surfactants (A) and (B) to oil (C) was 2.5 or greater, i.e., where the amount of surfactant was relatively small relative to the oil, a fine emulsion was obtained in which the emulsion particles had a volume-based average particle size of 100 nm or less. The oil-in-water emulsion cosmetic remained stable and showed no change in appearance across all temperature ranges (-5°C, 0°C, 25°C, 40°C, and 50°C). In particular, it remained stable and did not cream even after one month of storage under the harsh conditions of 50°C. Furthermore, it exhibited excellent skin safety, ease of use, and stability. Its beautiful translucent (blue-white translucent) appearance made it ideal for a luxurious lotion. The composition of the present invention eliminated the need for complex process management during production, enabling the production of an oil-in-water emulsion cosmetic with low energy consumption.
Claims
1. An oil-in-water emulsion cosmetic comprising (A) to (D), wherein the mass ratio of the surfactant comprising (A) and (B) to the oil (C) [amount of oil ÷ amount of surfactant] is 2.5 to 4, and the cosmetic contains 50 to 98 mass% of water (D). (A) A surfactant that is a diester of a fatty acid having 14 to 22 carbon atoms and polyglycerin (B) A surfactant that is an ester of a linear fatty acid having 6 to 10 carbon atoms and polyglycerin. (C) 0.1 to 15% by mass of oil based on the total amount of the cosmetic (D) Water
2. 2. The oil-in-water emulsion cosmetic according to claim 1, wherein the volume-based average particle size of the emulsion particles is 100 nm or less.
Citation Information
Patent Citations
JP1975053557A
Kinazorinkagobutsuno seizohoho
JP1976034197A
O / w type finely emulsified preparation for external use and method for producing the same
JP2008100937A
Emulsified cosmetic
JP2010006739A
Oil-in-water-type emulsified cosmetic
JP2012077001A