COSMETIC COMPOSITION FOR A MATTE FOUNDATION

FR3144757B1Active Publication Date: 2026-09-11LOREAL SA
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
FR2023000105
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-01-05
Publication Date
2026-09-11
Estimated Expiration
2043-01-05

AI Technical Summary

Technical Problem

Classic matte foundations struggle to balance high sun protection (IP > 20) with matte finish, shine control, and depth and purity of color due to the compromise between organic and inorganic UV filters.

Method used

A cosmetic composition comprising a UV filter system with a combination of organic hydrophobic, water-soluble organic, and inorganic UV filters, along with a mattifying filler, hydrocarbon-based oil, and colorant, providing a matte finish, shine control, and optical blurring effect while maintaining high sun protection.

Benefits of technology

The composition achieves a matte finish, effective sun protection, and depth of color while minimizing pore appearance and providing skin care benefits, including shine control and anti-aging properties.

✦ Generated by Eureka AI based on patent content.
Patent Text Reader

Abstract

COSMETIC COMPOSITION FOR A MATTE FOUNDATION The invention provides a cosmetic composition for a matte foundation, comprising a mattifying filler, a colorant, a hydrocarbon-based oil, a hydrocarbon-based emulsifier, water, and a UV filter system consisting of an organic hydrophobic UV filter, a water-soluble organic UV filter, and an inorganic UV filter. The mattifying filler may consist of a silica aerogel and optionally a modified starch, amorphous silica, a clay, and / or a silicone elastomer. The organic hydrophobic UV filter may consist of octyl salicylate, and the cosmetic composition may be free of other organic hydrophobic UV filters. The water-soluble organic ultraviolet filter may consist of 2-phenylbenzimidazole-5-sulfonic acid (PBSA) and the cosmetic composition may be free of other water-soluble organic ultraviolet filters.The inorganic UV filter may consist of UV-grade titanium dioxide, and the cosmetic composition may be free of other inorganic ultraviolet filters. Figure for the abbreviation: none.
Need to check novelty before this filing date? Find Prior Art

Description

Description Title of the invention: COSMETIC COMPOSITION FOR A MATTE FOUNDATION Technical field

[0001] — The present application relates to cosmetic compositions for use as foundations matte complexions, and in particular as foundations with SPF values ​​of higher sun protection (SPF), shine control and great depth and purity of color. CONTEXT

[0002] — Classic matte foundations that can be used with a variety of skin pigmentations do not contain ultraviolet (UV) filters or do not contain only relatively low levels of UV filters (e.g., sufficient for an SPF of 20 or less). This is because UV filter systems classics compromise the characteristics required for matte foundations. Specifically, the use of a high level of organic UV filters (to obtain a higher SPF) would allow the formula to achieve deep shades, but would have too high a refractive index to provide gloss control and a matte finish. Conversely, the use of a high level of inorganic UV filters (or filters "physical" solar) would facilitate the control of shine and the achievement of a matte finish, but would compromise the depth and purity of color.

[0003] It is therefore necessary to provide a composition which can be used as a foundation capable of providing the required characteristics: a high degree of control shine, a matte finish and great depth and purity of color. BRIEF SUMMARY

[0004] — A cosmetic composition offering the required characteristics while providing a relatively high IP (e.g., IP > 20), can be provided. The composition cosmetic can also provide an optical blurring effect to minimize the appearance pores, as well as the over-time benefits of shine control and care skin to combat dryness, imperfections and signs of aging.

[0005] The cosmetic composition intended to provide a matte foundation may include a mattifying filler, a colorant, a hydrocarbon-based oil, a hydrocarbon-based emulsifier hydrocarbons, water and a UV filter system consisting of a hy- UV filter organic drophobe, a water-soluble organic UV filter and an in- organic. The mattifying filler can consist of a silica aerogel and possibly actually a modified starch, amorphous silica, a clay and / or an elastomer of silicone. The organic hydrophobic UV filter can be made of salicylate octyl and the cosmetic composition may be free of other organic hydrophobic UV filters. The water-soluble organic UV filter may be 2-phenylbenzimidazole-5-sulfonic acid (PBSA) and the cosmetic composition may be free of other water-soluble organic UV filters. The inorganic UV filter may be UV-grade titanium dioxide and the cosmetic composition may be free of other inorganic UV filters. In some embodiments, the composition may be a water-in-oil emulsion. In some embodiments, the inorganic ultraviolet filter may be present in an amount of less than 5% by weight of the composition. In some embodiments, the inorganic ultraviolet filter may be present in an amount of less than 3% by weight of the composition. In some embodiments, the matting filler may be present in an amount of less than 10% by weight of the composition. In some embodiments, the composition may include a polyol. In some embodiments, the composition may include a non-volatile silicone oil. In some embodiments, the composition may include a vitamin. In some embodiments, the amount of the hydrocarbon-based oil plus the amount of the non-volatile silicone oil may be less than 30% by weight of the composition.In preferred embodiments, the cosmetic composition may be free of volatile silicone oils. In some embodiments, the hydrocarbon-based oil may be present in an amount of less than 10% by weight of the composition. In some embodiments, the colorant may be present in an amount of less than 30% by weight of the composition. In some embodiments, the colorant may be one or more pigments, each pigment preferably being coated. In some embodiments, the one or more pigments comprise pigment-grade titanium dioxide. In some embodiments, the composition may include a preservative, a silicone resin, a thickening agent, a pH adjusting or buffering agent, an electrolyte, a flavonoid, a synthetic peptide, and / or an amino acid or amino acid derivative. In some embodiments, the composition may include the matting filler, the colorant, the hydrocarbon-based oil, the hydrocarbon-based emulsifier, water, and the UV filter system, may optionally include a polyol, a non-volatile silicone oil, a vitamin, a preservative, a silicone resin, a thickening agent, a pH adjusting or buffering agent, an electrolyte, a flavonoid, a synthetic peptide, and / or an amino acid or amino acid derivative, may optionally be free of a volatile silicone oil, and may be substantially free of any other material. A method of applying cosmetic products to a face may be provided. The method may include applying the cosmetic composition as disclosed herein to the face for a first period of time and then removing the cosmetic composition from the face for a second period of time after the first period of time. In some embodiments, the method may include applying a second composition on top of the cosmetic composition after the first period of time and before the second period of time. DETAILED DESCRIPTION In the following description of the invention and the claims appended thereto, it is to be understood that the terms used have the ordinary and customary meanings in the art, unless otherwise indicated. Unless otherwise indicated, all concentrations are expressed as a percentage by weight on an active basis. As used herein, all proposed ranges are intended to include every specific range within the given ranges, and all combinations of subranges therein. Thus, a range of 1 to 5 specifically includes 1, 2, 3, 4, and 5, as well as subranges 2 to 5, 3 to 5, 2 to 3, 2 to 4, 1 to 4, and so on. The term "matte," as used herein, refers to a non-glossy finish. As used herein, the term matte may be used to describe the finish provided by a composition to a substrate, such as a matte finish on oily or combination skin, as well as to describe the finish of a composition on a substrate, such as a matte film of lipstick on the lips. In some cases, the degree of matteness of a composition may be measured using a gonioreflectometer to measure the reflectance, R, of a composition, where R is the ratio of specular reflectance to diffuse reflectance. The lower the value of R, the greater the matting effect. Preferably, R is less than 1.6. In some cases, the degree of matteness of a composition on a substrate is also measured using a gloss meter to measure the gloss of a film in terms of % reflectance, where a lower reflectance has a higher degree of matteness.Preferably, the reflectance may be 5% or less. The term "substantially free" as used herein refers to a particular material that may be present at less than 1% by weight based on the total weight of the composition, and without substantially affecting the basic and novel features of the claimed invention. In some cases, the composition may contain less than 0.5% by weight, less than 0.1% by weight, less than 0.05% by weight or less than 0.01% by weight of the specified material or be completely free of the specified material. A cosmetic composition that can create a matte foundation can be provided. Mattifying filler The cosmetic composition may include a mattifying filler. The mattifying filler may consist of a silica aerogel and optionally a modified starch, amorphous silica, a clay and / or a silicone elastomer. In some embodiments, the matting filler present in the composition may be present at a maximum of 15%, 12%, 10%, 9%, 8% or 7% by weight of the composition. In some embodiments, the total amount of matting filler present in the composition is preferably not greater than 7% by weight of the composition. Silica aerogel. The amount of silica aerogel present in the compositions will usually be at least 0.5%, at least 0.6% or at least 0.7% by weight of the composition. It will usually be at most 0.7%, at most 0.8% or at most 0.9% by weight of the composition. Silica aerogels are porous materials obtained by replacing (by drying) the liquid component of a silica gel with air. They are usually synthesized via a sol-gel process in a liquid medium and then dried, usually by extraction of a supercritical fluid, the most commonly used being CO; supercritical. The hydrophobic silica aerogel particles used in the present invention have a specific surface area per unit mass (SM) ranging from 500 to 1500 m° / g, preferably from 600 to 1200 m? / g and more preferably from 600 to 800 m? / g, and a size expressed as volume average diameter (D[0.5]), ranging from 1 to 30 µm, preferably from 5 to 25 µm, more preferably from 5 to 20 µm and even more preferably from 5 to 15 µm. The specific surface area per unit mass can be determined via the BET (Brunauer-Emmett-Teller) nitrogen absorption method described in the Journal of the American Chemical Society, vol. 60, page 309, February 1938, corresponding to the international standard ISO 5794 / 1 (Annex D). The BET specific surface area corresponds to the total specific surface area of ​​the particles considered. The size of the silica aerogel particles can be measured by static light scattering using a commercial particle size analyzer such as the Malvern MasterSizer 2000 machine. The data is processed based on Mie scattering theory. This theory, which is accurate for isotropic particles, makes it possible to determine, in the case of non-spherical particles, an “effective” particle diameter. In certain embodiments, the hydrophobic silica aerogel particles can have a specific surface area per unit mass (Sy) ranging from 600 to 800 m / g and a size expressed as a volume average diameter (D[0.5]) ranging from 5 to 20 µm and more preferably from 5 to 15 µm. In some embodiments, the hydrophobic silica aerogel particles may have a specific surface area per unit volume Sy ranging from 5 to 60 m? / cm”, preferably from 10 to 50 m° / cm° and even better from 15 to 40 m' / em°. In some embodiments, the hydrophobic silica aerogel particles may have an oil absorption capacity, measured at the wet point, ranging from 5 to 18 mL / g, preferably from 6 to 15 mL / g and more preferably from 8 to 12 mL / g. The oil absorption capacity measured at the wet point, denoted Wp, corresponds to the amount of water that must be added to 100 g of particles to obtain a homogeneous paste. It is measured according to the wet point method or the method for determining the oil uptake of a powder described in standard NF T 30-022. It corresponds to the amount of oil adsorbed on the available surface of the powder and / or absorbed by the powder by measuring the wetting point. In some embodiments, the silica aerogels may be hydrophobic silica aerogels, and may preferably be silylated silica (INCI name: silica silylate). As used herein, the term "hydrophobic silica" refers to any silica whose surface is treated with silylating agents, e.g., halogenated silanes, such as alkylchlorosilanes, siloxanes, particularly dimethylsiloxanes, such as hexamethyldisiloxane, or silazanes, so as to functionalize the OH groups with Si-Rn silyl groups, e.g., trimethylsilyl groups. In some embodiments, the silica aerogel may be hydrophobic silica aerogel particles surface-modified with trimethylsilyl groups.Non-limiting examples of silica aerogels include the aerogel sold under the name VM-2260 (INCI name: Silica Silylate), by Dow Corning, the particles of which have an average size of approximately 1000 um and a specific surface area per unit mass ranging from 600 to 800 m' / g; aerogels sold by Cabot under the references Aerogel TLD 201, Aerogel OGD 201 and AerogelTLD 203, Enova Aerogel MT 1 100 and Enova Aerogel MT 1200. In certain embodiments, the aerogel may be an aerogel sold under the name VM-2270 (INCI name: Silica Silylate), by Dow Corning, whose particles have an average size ranging from 5 to 15 um and a specific surface area per unit mass ranging from 600 to 800 m? / g. It has an oil absorption capacity of 1090 mL / 100 g based on isononyl isononanoate. Modified starch. . The amount of modified starch present in the compositions, if any, will usually be at least 0.5%, at least 0.75% or at least 1% by weight of the composition. It will usually be at most 1%, at most 1.5% or at most 2% by weight of the composition. Modified starch is starch that has been modified by methods known to those skilled in the art such as, for example, esterification, etherification, oxidation, acid hydrolysis, crosslinking or enzymatic conversion. The modified starch may be a hydrophobically modified starch. Non-limiting examples of modified starch include aluminum starch octenyl succinate, sodium starch octenyl succinate, calcium starch octenyl succinate, distarch phosphate, hydroxyethyl starch phosphate, hydroxypropyl starch phosphate, sodium carboxymethyl starch, and sodium starch glycolate. In some embodiments, the modified starch may be a starch octenylsuccinate, in particular aluminum octenylsuccinate, the starch being corn, wheat or rice. Mention may in particular be made of the product offered by AKZO NOBEL under the name DRY FLO PLUS. Mention may also be made of rice starch such as the DSA7 product offered by the company Agrana Starch. Amorphous silica. The amount of modified starch present in the compositions, if any, will usually be at least 1%, at least 2% or at least 3% by weight of the composition. It will usually be at most 5%, at most 7% or at most 10% by weight of the composition. The compositions of the present invention may be spherical amorphous silica. By "spherical" amorphous silica is meant particulate silica that is substantially spherical. In some embodiments, the spherical amorphous silica may be coated with a hydrophobic treatment agent. In some embodiments, the spherical silica is "native" silica, i.e., without a hydrophobic surface treatment, and may have a chemical purity of at least 90%, such as at least 95% or at least 98% relative to silica. In some embodiments, the average size of these spherical amorphous silica particles is less than 15.0 microns and more particularly is in a range of 3 to 10 microns. The spherical amorphous silica particles useful according to the invention are colorless or white solid particles of any shape, which are in insoluble form and dispersed in the medium of the composition. Non-limiting examples of amorphous silica include porous silica microspheres sold as SilicaBeads SB-700 by Myoshi Company (average size 4.6 microns and oil absorption capacity Wp: 133 mL / 100 g); Sunsphere® H51 (average size 5.1 microns and oil absorption capacity Wp: 133 mL / 100 g), Sunsphere® H33 (average size 2.9 microns and oil absorption capacity Wp: 370 mL / 100 g) by Asahi Glass Company. Clay. The amount of clay present in the compositions, if any, will usually be relatively small and will usually be at most 0.01% or at most 0.1% by weight of the composition. These clays, if any, may be either modified clays or natural clays, and are preferably non-swelling clays. In some embodiments, the clay may be, for example, kaolin. Silicone elastomer. The amount of silicone elastomer present in the compositions, if any, will usually be at least 0.5%, at least 0.75% or at least 1% by weight of the composition. It will usually be at most 1%, at most 1.5% or at most 2% by weight of the composition. The silicone elastomer should be a matting silicone polymer. The silicone elastomer may be a non-emulsifying silicone elastomer. The term "non-emulsifying," as used herein, refers to organopolysiloxane elastomers that do not contain hydrophilic chains, particularly polyoxyalkylene (especially polyoxyethylene or polyoxypropylene) or polyglyceryl units. Thus, in some embodiments, the composition may comprise a silicone elastomer that is free of polyoxyalkylene units and polyglyceryl units. Non-limiting non-emulsifying elastomers are described in US Patent 8,637,057, and are also those sold under the names KSG-6, KSG-15, KSG-16, KSG-18, KSG-41, KSG-42, KSG-43 and KSG-44 by Shin-Etsu Company, DC 9040, DC 9041, DC 9509, DC 9505 and DC 9506, by Dow Corning Company and SFE 839 by General Flectric Company. The silicone elastomers may take the form of a gel or a powder. In some embodiments, the silicone elastomer may be carried as a gel formed from an elastomeric organopolysiloxane included in at least one hydrocarbon-based oil and / or a silicone oil. In these gels, the organopolysiloxane particles are often non-spherical particles. Non-limiting examples of silicone elastomers useful in the present invention are dimethicone crosslinked polymer gels (blends of dimethicone crosslinked polymers in solvents) having viscosity values ​​of about 150 to about 700 mm? / s, about 200 to about 650 mm? / s, and about 300 to about 600 mm? / s, including all ranges and subranges between these values. Non-limiting examples of silicone elastomer gels include DC EL-8040 ID (INCI name: Isododecane (and) Dimethicone Crosspolymer) and DC EL-9140 DM (INCI name: Dimethicone (and) Dimethicone Crosspolymer), supplied by Dow Corning. While not wishing to be bound by any particular theory, it is believed that the silicone elastomer thickens the composition, adds a creamy (spongy) effect and / or improves the application properties of the cosmetic composition. It also provides a very soft feel and a mattifying effect after application. UV filter system The cosmetic composition may include a UV filter system. In some embodiments, the UV filter system consists of an organic hydrophobic UV filter, a water-soluble organic UV filter, and an inorganic UV filter. These UV filters are active in the UVA and / or UVB wavelengths. Organic hydrophobic UV filter. The organic hydrophobic UV filter may consist of octyl salicylate (also known as ethylhexyl salicylate). The cosmetic composition may be free of other organic hydrophobic UV filters. The organic hydrophobic UV filter will usually be present in an amount not exceeding 5% by weight of the composition. The organic hydrophobic UV filter will usually be present in an amount of 3 to 5% by weight of the composition. Water-soluble organic UV filter. The water-soluble organic UV filter may consist of 2-phenylbenzimidazole-S-sulfonic acid (PBSA). The cosmetic composition may be free of other water-soluble organic UV filters. The water-soluble organic UV filter will ordinarily be present in an amount not exceeding 4% by weight of the composition. The organic hydrophobic UV filter will ordinarily be present in an amount of 2 to 4% by weight of the composition. A ratio of the amount of organic hydrophobic UV filter to the amount of water-soluble UV filter will ordinarily be 1.25:1 to 1.75:1. Inorganic UV filter. The inorganic UV filter may consist of UV-grade titanium dioxide, and the cosmetic composition may be free of other inorganic ultraviolet filters. “UV-grade” titanium dioxide typically has a relatively small particle size—typically average particle sizes of 250 nm or less, including 200 nm or less and / or 150 nm or less. In some cases, the average particle size is about 130 nm. The inorganic UV filter will typically be present in an amount of less than 5% by weight of the composition. In some embodiments, the inorganic UV filter may be present in an amount of less than 3% by weight of the composition. In some embodiments, the inorganic UV filter may be present in an amount less than the amount of the organic hydrophobic UV filter or the water-soluble organic UV filter. In some embodiments, the inorganic ultraviolet filter may be present in an amount of less than 5% by weight of the composition. In some embodiments, the inorganic ultraviolet filter may be present in an amount of less than 3% by weight of the composition. Dye The cosmetic composition may include a colorant. In some embodiments, the colorant may be present in an amount of less than 30% by weight of the composition. In some embodiments, the colorant may be present in an amount of less than 20% by weight of the composition. In some embodiments, the colorant may be present in an amount of at least 10% by weight of the composition. The colorant(s) may be selected from organic and / or inorganic colorants, such as in particular pigments or nacres traditionally used in cosmetic compositions, liposoluble or water-soluble coloring agents, materials having a specific optical effect and mixtures thereof. Pigments. The colorant may include, or consist of, one or more pigments. Each pigment is preferably coated. In some embodiments, the one or more pigments comprise pigment-grade titanium dioxide. “Pigment-grade” titanium dioxide generally has a larger particle size than UV-grade titanium dioxide—typically having average particle sizes of 400 nm or greater, including 500 nm or greater and / or 600 nm or greater. “Pigments” are white or colored, inorganic or organic particles which are insoluble in an aqueous solution and are intended to color and / or opacify the film obtained. The pigments may be present in a proportion of 0.1% to 30% by weight, for example 1% to 30% by weight or 5% to 20% by weight, relative to the total weight of the cosmetic composition. Inorganic pigments that can be used include titanium dioxide, zirconium oxide or cerium oxide, as well as zinc oxide, iron oxide or chromium oxide, ferric blue, manganese violet, ultramarine blue and chromium hydrate. The pigment may also be a pigment whose structure may be, for example, of the sericite / brown iron oxide / titanium dioxide / silica type. This pigment is sold, for example, under the reference Coverleaf NS or JS by the company Chemicals and Catalysts and has a contrast ratio of approximately 30. The colorant may also comprise a pigment whose structure may be, for example, of the type of silica microspheres containing iron oxide. An example of a pigment having this structure is sold by the company Miyoshi under the reference PC Ball PC-LL-100 P, this pigment being composed of silica microspheres containing yellow iron oxide. Among the organic pigments that can be used, mention may be made of carbon black, D & C pigments, lakes based on cochineal carmine, barium, strontium, calcium or aluminium, or even the diketopyrrolopyrroles (DPP) described in documents EP-A-542 669, EP-A-787 730, EP-A-787 731 and WO-A-96 / 08537. In some embodiments, the coating may include pigment grade alumina, silica, aluminum hydroxide, or titanium dioxide, and a hydrocarbon-based emulsifier as disclosed herein. In some embodiments, the coating may be present in a total amount of less than 1% by weight of the composition. When iron oxides are present, these iron oxides (i.e., excluding coatings) are present in a total amount not exceeding 5% by weight of the composition. In some embodiments, these iron oxides (excluding coatings) are present in a total amount not exceeding 3% by weight of the composition. In some embodiments, these iron oxides (excluding coatings) are present in a total amount not exceeding 2% by weight of the composition. In some embodiments, these iron oxides (excluding coatings) are present in a total amount of 1 to 1.5% by weight of the composition. When pigment grade titanium dioxide is present, such pigment grade titanium dioxide (i.e., excluding coatings) is present in a total amount not exceeding 25% by weight of the composition. In some embodiments, such pigment grade titanium dioxide (excluding coatings) is present in a total amount not exceeding 20% ​​by weight of the composition. In some embodiments, such pigment grade titanium dioxide (excluding coatings) is present in a total amount of 10-20% by weight of the composition. In some embodiments, such pigment grade titanium dioxide (excluding coatings) is present in a total amount of 15-20% by weight of the composition. Mother-of-pearl. The colorant may also include one or more nacres. "Nacres" means iridescent or non-iridescent colored particles of any shape, which are produced in particular by certain molluscs in their shell or are synthesized, and which exhibit a color effect by optical interference. The nacres may be selected from pearlescent pigments. These pigments may include natural or synthetic mica (fluorphlogopite). Non-limiting examples of pearlescent pigments include white pearlescent pigments such as mica coated with titanium oxide, mica coated with titanium dioxide, oxychloride bismuth, titanium oxychloride, colored pearlescent pigments such as titanium mica with iron oxides, titanium mica with ferric blue, chromium oxide and the like, titanium mica with an organic pigment of the aforementioned type as well as those based on bismuth oxychloride and mixtures thereof. This may also involve mica particles on the surface of which are superimposed at least two successive layers of metal oxides and / or organic colorants. If pearlescent pigments are present, they are usually present in a total amount not exceeding 5% by weight of the composition. In some embodiments, pearlescent pigments are present in a total amount not exceeding 3% by weight of the composition. In some embodiments, pearlescent pigments are present in a total amount not exceeding 2% by weight of the composition. Among the pearlescent agents available on the market, we can cite Timica, Flamenco and Duochrome pearlescent agents (mica-based) sold by the company Engelhard, Timiron pearlescent agents sold by the company Merck, Prestige mica-based pearlescent agents sold by the company Eckart and Sunshine synthetic mica-based pearlescent agents sold by the company Sun Chemical. Mother-of-pearl can be more particularly yellow, pink, red, bronze, orange, brown, golden and / or coppery or shiny. As an illustration of mother-of-pearls that may be used in the context of this disclosure, mention may be made in particular of the golden mother-of-pearls sold in particular by the company Engelhard under the names Brillant gold 212G (Timica), Gold 222C (Cloisonne), Sparkle gold (Timica), Gold 4504 (Chromalite) and Monarch gold 233X (Cloisonne); the bronze mother-of-pearls sold in particular by the company Merck under the names Bronze fine (17384) (Colorona) and Bronze (17353) (Colorona) and by the company Engelhard under the name Super bronze (Cloisonne); the orange mother-of-pearls sold in particular by the company Engelhard under the names Orange 363C (Cloisonne) and Orange MCR 101 (Cosmica) and by the company Merck under the names Passion orange (Colorona) and Matte Orange (17449) (Microna); burnished mother-of-pearl sold in particular by the company Engelhard under the name Nu-antique copper 340XB (Cloisonne) and Brown CL4509 (Chromalite);mother-of-pearl with copper highlights sold in particular by the company Engelhard under the name Copper 340A (Timica), mother-of-pearl with red highlights sold in particular by the company Merck under the name Sienna fine (17386) (Colorona); mother-of-pearl with yellow highlights sold in particular by the company Engelhard under the name Yellow (4502) (Chromalite); mother-of-pearl with a red tint and golden highlights sold in particular by the company Engelhard under the name Sunstone G012 (Gemtone); pink mother-of-pearl sold in particular by the company Engelhard under the name Tan opale GO05 (Gemtone); black mother-of-pearl with golden highlights sold in particular by the company Engelhard under the name Nu antique bronze 240 AB; (Timica), blue mother-of-pearl sold in particular by the Merck company under the name Matte blue (17433) (Microna), white mother-of-pearl with silver highlights sold in particular by the Merck company under the name Xirona Silver and green-gold and orange-pink mother-of-pearl sold in particular by the Merck company under the name Indian summer (Xirona), and mixtures thereof. Dyes. The colorant may also include water-soluble or fat-soluble colorants. Fat-soluble colorants include, for example, Sudan Red, DC Red 17, DC Green 6, f-carotene, soybean oil, Sudan Brown, DC Yellow 11, DC Violet 2, DC Orange 5, and quinoline yellow. Water-soluble colorants include, for example, beetroot juice and caramel. Material with special optical effect. The colorant may also include at least one material having a specific optical effect. This effect is different from a simple conventional hue effect, namely, a unified and stabilized effect of the type produced by conventional colorants, such as, for example, monochromatic pigments. For the purposes of the present disclosure, the term "stabilized" means the absence of an effect of variability of the color with the angle of observation or in response to a change in temperature. This material may be selected, for example, from particles having a metallic luster, goniochromatic coloring agents, diffraction pigments, thermochromatic agents, optical brighteners, as well as fibers, in particular of the interference type. Of course, these different materials may be combined in order to allow the simultaneous manifestation of two effects, or even a new effect. The metallic-reflecting particles that can be used in the present disclosure are in particular selected from: (i) particles of at least one metal and / or at least one metal derivative; (ii) particles comprising a mono-substance or multi-substance, organic or inorganic substrate, at least partially coated with at least one metallic-reflecting layer comprising at least one metal and / or at least one metal derivative, and (iii) mixtures of these particles. The expression “metal derivatives” designates compounds derived from metals, in particular oxides, fluorides, chlorides and sulfides. Non-limiting examples of metals that may be present in these particles include Ag, Au, Cu, Al, Ni, Sn, Mg, Cr, Mo, Ti, Zr, Pt, Va, Rb, W, Zn, Ge, Te, Se and mixtures or alloys of these metals, such as Ag, Au, Cu, Al, Zn, Ni, Mo, Cr and mixtures or alloys of these metals (e.g., bronzes and brasses). Examples of these particles include aluminum particles, such as those sold under the names STARBRITE 1200 EAC® by Siberline and METALURE® by Eckart. Metal powders may also be mentioned. of copper or alloy mixtures, such as references 2844 sold by the company Radium Bronze, metallic pigments such as aluminum or bronze, for example those sold under the name Rotosafe 700 by the company Eckart, silica-coated aluminum particles sold under the name Visionaire Bright Silver by the company Eckart, and metal alloy particles such as silica-coated bronze (copper and zinc alloy) sold under the name Visionaire Bright Natural Gold by the company Eckart. The particles in question may also be particles comprising a glass substrate, such as those sold by the company Nippon Sheet Glass under the name Microglass Metashine. The goniochromatic coloring agent may be selected, for example, from multilayer interference structures and liquid crystal coloring agents. Examples of symmetrical multilayer interference structures that may be used in compositions prepared in accordance with the present disclosure include the following structures: Al / SiO2 / A1 / SiO2 / AI, pigments having this structure being sold by Dupont de Nemours; Cr / MgF2 / AI / MgF2 / Cr, pigments having this structure being sold under the name Chromaflair by Flex; MoS2 / SiO2 / A1 / SiO2 / MoS2: Fe203 / SiO2 / A1 / SiO2 / Fe203 and Fe203 / Si02 / Fe203 / S102 / Fe203, pigments having these structures being sold under the name Sicopearl by BASF; MoS2 / SiO2 / mica-oxide / Si02 / Mo82; Fe203 / Si02 / mica-oxide / Si02 / Fe203; Ti02 / SiO2 / Ti02 and Ti02 / Al203 / Ti02; SnO / TiO2 / SiO2 / Ti02 / SnO; Fe203 / Si02 / Fe203; SnO / mica / TiO2 / Si02 / Ti02 / mica / SnO, pigments having these structures being sold under the name Xirona by Merck (Darmstadt). Examples of such pigments include silica / titanium oxide / tin oxide structure pigments sold under the name Xirona Magic by Merck, silica / brown iron oxide structure pigments sold under the name Xirona Indian Summer by Merck, and silica / titanium oxide / mica / tin oxide structure pigments sold under the name Xirona Carribean Blue by Merck. Shiseido's Infinite Colors pigments can also be mentioned. Different effects are achieved depending on the thickness and nature of the individual layers.Thus, with the Fe2O3 / Si02 / AI / SiO2 / Fe203 structure, the color changes from green-gold to red-grey for the SiO2 layers from 320 to 350 nm; from red to gold for the SiO2 layers from 380 to 400 nm; from violet to green for the SiO2 layers from 410 to 420 nm; from copper to red for the SiO2 layers from 430 to 440 nm. Examples of pigments with a multi-layer polymer structure include those sold by 3M under the name Color Glitter. Examples of liquid crystal goniochromatic particles that can be used include those sold by Chenix, as well as the product sold under the name HELICONE® HC by Wacker. Hydrocarbon-based oil. The cosmetic composition may include a hydrocarbon-based oil. In some embodiments, the hydrocarbon-based oil may be present in a total amount not exceeding 15% by weight of the composition. In some embodiments, the hydrocarbon-based oil may be present in a total amount not exceeding 12% by weight of the composition. In some embodiments, the hydrocarbon-based oil may be present in a total amount of between 5% and 15% by weight. In some embodiments, the hydrocarbon-based oil may be present in a total amount of between 7% and 12% by weight. The term "oil" means any fatty substance that is in liquid form at room temperature (20-25°C) and atmospheric pressure (760 mmHg). The term "hydrocarbon-based oil" or "hydrocarbon oil" means an oil containing primarily hydrogen and carbon atoms and optionally oxygen, nitrogen, sulfur, and / or phosphorus atoms. In some embodiments, the hydrocarbon-based oil may be linear or branched. In some embodiments, the hydrocarbon-based oil is a hydrocarbon. Representative examples of hydrocarbon-based oils include oils containing 8 to 16 carbon atoms, and in particular the branched C8-C16 alkanes (also known as isoparaffins), for example, isododecane (also known as 2,2,4,4,6-pentamethylheptane) and isohexadecane. In some embodiments, the hydrocarbon-based oil may be non-polar (i.e., consisting of only carbon and hydrogen atoms). In some embodiments, the hydrocarbon-based oil may contain from 12 to 18 carbon atoms. In some embodiments, the hydrocarbon-based oils may include hydrocarbon-based oils of vegetable origin, such as triglycerides comprised of fatty acid esters of glycerol, the fatty acids of which may have chain lengths ranging from C4 to C24, such chains optionally being straight or branched, and saturated or unsaturated;these oils are in particular triglycerides of heptanoic or octanoic acid or, alternatively, a wheat germ oil, a sunflower oil, a grape seed oil, a sesame oil, a corn oil, an apricot kernel oil, a castor oil, a shea oil, an avocado oil, an olive oil, a soybean oil, a sweet almond oil, a rapeseed oil, a cottonseed oil, a hazelnut oil, a macadamia oil, a jojoba oil, a palm oil, an alfalfa oil, a poppy oil, a pumpkin oil, a zucchini oil, a blackcurrant oil, an evening primrose oil, a millet oil, a barley oil, a quinoa oil, a rye oil, a safflower oil, a bancoul oil, ; passionflower oil and rosehip oil; shea butter; or caprylic / capric acid triglycerides, for example those sold by the company Stéarineries Dubois or those sold under the names Miglyol 810®, 812® and 818® by the company Dynamit Nobel, In some embodiments, the hydrocarbon-based oil may include synthetic ethers having from 10 to 40 carbon atoms. In some embodiments, the hydrocarbon-based oil may include linear or branched hydrocarbons of mineral or synthetic origin, such as petroleum jelly, polydecenes, hydrogenated polyisobutene such as Parleam®, squalane and liquid paraffins, and mixtures thereof. In some embodiments, the hydrocarbon-based oil may include synthetic esters, such as oils of the formula RCOOR? in which R! represents a linear or branched fatty acid residue containing from 1 to 40 carbon atoms and R? represents a chain, in particular branched, hydrocarbon-based oil containing from 1 to 40 carbon atoms, provided that R! + R? > 10, for example purcellin oil (cetostearyl octanoate), isopropyl myristate, isopropyl palmitate, C'?-C'* alkyl benzoates., hexyl laurate, diisopropyl adipate, isononyl isononanoate, 2-ethylhexyl, isostearyl isostearate, 2-hexyldecyl laurate, 2-octyldecyl palmitate, 2-octyldodecyl myristate, alkyl or polyalkyl heptanoates, octanoates, decanoates or ricinoleates, such as propylene glycol dioctanoate; hydroxylated esters, such as isostearyl lactate, diisostearyl maleate and 2-octyldodecyl lactate; and polyol esters and pentaerythritol esters. Other synthetic esters may include, for example, butyloctyl salicylate. . In some embodiments, the hydrocarbon-based oil may include fatty alcohols that are liquid at room temperature, branched and / or unsaturated carbon chain containing from 12 to 26 carbon atoms, for example, octyldodecanol, isostearyl alcohol, oleyl alcohol, 2-hexyldecanol, 2-butyloctanol, and 2-undecylpentadecanol. In some embodiments, the hydrocarbon-based oil may include a chain of C1-Cn fatty acids, such as those selected from stearic acid, palmitic acid, oleic acid, linoleic acid, linolenic acid, etc., and mixtures thereof. Preferably, these fatty acid chains are hydrogenated. Hydrocarbon-based oil can be volatile or non-volatile. The term "volatile" oil refers to an oil that is capable of evaporating upon contact with the skin or a keratin fiber in less than one hour, at room temperature and atmospheric pressure. Volatile oils are liquid at room temperature and have a non-zero vapor pressure, at room temperature and atmospheric pressure, ranging in particular from 0.13 Pa to 40,000 Pa (107 to 300 mmHg). The term "non-volatile oil" means an oil which remains on the skin or keratin fibre, at room temperature and atmospheric pressure, for at least several hours and which in particular has a vapour pressure of less than 10*mmHg (0.13 Pa). In some embodiments, the composition may include up to 10% by weight of C8-C16 alkanes and up to 5% by weight of synthetic esters. Hydrocarbon-based emulsifier. The composition may include one or more hydrocarbon-based emulsifiers. In some embodiments, the composition may include two or more hydrocarbon-based emulsifiers. In some embodiments, the composition may include three or more hydrocarbon-based emulsifiers. In some embodiments, the composition may include four or more hydrocarbon-based emulsifiers. The hydrocarbon-based emulsifiers are generally present in a total amount not exceeding 3% by weight of the composition. In some embodiments, the hydrocarbon-based emulsifiers may be present in a total amount not exceeding 2.5% by weight of the composition. In some embodiments, the hydrocarbon-based emulsifiers may be present in a total amount not exceeding 2% by weight of the composition. The hydrocarbon-based emulsifiers are typically present in a total amount of at least 1% by weight of the composition. In some embodiments, the hydrocarbon-based emulsifiers may be present in an amount of 1.5% to 2.5% by weight of the composition. In some embodiments, the hydrocarbon-based emulsifiers may be present in an amount of 1 to 2% by weight of the composition. The hydrocarbon-based emulsifier may include oxyethylated and / or oxypropylated ethers (which may comprise from 20 to 1000 oxyethylene and / or oxypropylene groups) of fatty alcohols (especially C1-C18 alcohols, and preferably C12-C18 alcohols) such as oxyethylated stearyl alcohol ether containing 20 oxyethylene groups (CTFA name Steareth-20) such as Brij 78 sold by Unigema, oxyethylated cetearyl alcohol ether containing 30 oxyethylene groups (CTFA name Ceteareth-30) and oxyethylated ether of the mixture of C1-C18 fatty alcohols comprising 7-oxyethylene groups (CTFA name C12-15 Pareth-7) sold under the name Neodol 25-7® by Shell. Chemicals. If oxyethylated and / or oxypropylated ethers are present, they are usually present in a total amount not exceeding 0.01%, 0.1% or 0.5% by weight of the composition. The hydrocarbon-based emulsifier may include an amino acid surfactant. Non-limiting examples of amino acid surfactants are alanine salts, of arginine, aspartic acid, glutamic acid, glycine, isoleucine, leucine, lysine, phenylalanine, serine, tyrosine, valine, sarcosine and any mixture thereof, and more particularly, dipotassium capryloyl glutamate, dipotassium undecylenoyl glutamate, disodium capryloyl glutamate, disodium cocoyl glutamate, disodium lauroyl glutamate, disodium stearoyl glutamate, disodium undecylenoyl glutamate, potassium capryloyl glutamate, potassium cocoyl glutamate, potassium lauroyl glutamate, potassium myristoyl glutamate, potassium stearoyl glutamate, potassium undecylenoyl glutamate, sodium capryloyl glutamate, sodium cocoyl glutamate, sodium lauroyl glutamate, sodium myristoyl glutamate, sodium olivoyl glutamate, sodium palmitoyl glutamate, sodium stearoyl glutamate, sodium undecylenoyl glutamate, cocoyl methyl B-alaninate, lauroyl B-alaninate, lauroyl methyl B-alaninate, myristoyl B-alaninate, potassium lauroyl methyl P-alaninate,sodium cocoyl alaninate, sodium cocoyl méthyl B-alaninate et sodium myristoyl méthyl B-alaninate palmitoyl glycinate, sodium lauroyl glycinate, sodium cocoyl glycinate, sodium myristoyl glycinate, potassium lauroyl glycinate, potassium cocoyl glycinate, potassium lauroyl sarcosinate, potassium cocoyl sarcosinate, sodium cocoyl sarcosinate, sodium lauroyl sarcosinate, sodium myristoyl sarcosinate, sodium oléoyl sarcosinate, sodium palmitoyl sarcosinate ammonium lauroyl sarcosinate, sodium lauroyl aspartate, sodium myristoyl aspartate, sodium cocoyl aspartate, sodium caproyl aspartate, disodium lauroyl aspartate, disodijum myristoyl aspartate, disodium cocoyl aspartate, disodium caproyl aspartate, potassium lauroyl aspartate, potassium myristoyl aspartate, potassium cocoyl aspartate, potassium caproyl aspartate, di- potassium lauroyl aspartate, dipotassium myristoyl aspartate, dipotassium cocoyl aspartate, dipotassium caproyl aspartate,and mixtures thereof. If amino acid surfactants are present, they are usually present in a total amount not exceeding 0.75%, 1% or 1.5% by weight of the composition. The hydrocarbon-based emulsifier may include a polyol alkyl ester. Non-limiting examples of polyol alkyl esters include glycerol and / or sorbitan esters, for example, polyglyceryl-3 diisostearate sold under the name Lameform TGI by Cognis, polyglyceryl-4 isostearate, such as the product sold under the name Isolan GI 34 by Goldschmidt, sorbitan isostearate, such as the product sold under the name Arlacel 987 by ICI, sorbitan glyceryl isostearate, such as the product sold under the name Arlacel 986 by ICI, and mixtures thereof. If polyol alkyl esters are present, they are ordinarily present in a total amount not exceeding 1%, 1.5% or 2% by weight of the composition. Water. The cosmetic composition may include water. Water will usually be present in an amount not exceeding 30% by weight of the composition. In some embodiments, water may be present in an amount not exceeding 25% by weight of the composition. In some embodiments, water may be present in an amount not exceeding 20% ​​by weight of the composition. In some embodiments, water may be present in an amount of at least 10% by weight of the composition. In some embodiments, water may be present in an amount of 15% to 25% by weight of the composition. Other components. The cosmetic composition may include one or more other components, including a polyol, a non-volatile silicone oil, a vitamin, a preservative, a silicone resin, a thickening agent, a pH correcting or buffering agent, an electrolyte, a flavonoid, a synthetic peptide and / or an amino acid or amino acid derivative. Polyol. In some embodiments, the composition may include a polyol. In some embodiments, the polyol may be a hydrocarbon-based polyol. In some embodiments, the polyol may be present in a total amount of no more than 15% by weight of the composition. In some embodiments, the polyol may be present in a total amount of no more than 12% by weight of the composition. In some embodiments, the polyol may be present in a total amount of no more than 10% by weight of the composition. In some embodiments, the polyol may be present in a total amount of less than 10% by weight of the composition. In some embodiments, the polyol may be present in a total amount of between 5% and 9% by weight. In some embodiments, the composition may include a plurality of polyols present in a total amount greater than 1% by weight of the composition, and a plurality of polyols present in a total amount less than 0.5% by weight of the composition. The term "polyol" shall be understood to mean any organic molecule comprising at least two free hydroxyl groups. Preferably, the polyol may be present in liquid form at room temperature. In various embodiments, the polyol suitable for use in the invention may be a compound of linear, branched or cyclic alkyl type, saturated or unsaturated, carrying on each alkyl chain at least two —OH functions, in particular at least three —OH functions and more particularly at least four —OH functions. In some embodiments, the polyol may contain from 2 to 32 carbon atoms, preferably 2 to 20 carbon atoms and more preferably 2 to 16 carbon atoms. of carbon, preferably 2 to 10 carbon atoms, more preferably 2 to 6 carbon atoms. In some embodiments, the polyol may be a polyethylene glycol. In some embodiments, the polyol may be a polyhydric alcohol, preferably C2-C8 and more preferably C3-C6. Non-limiting examples thereof include glycerol, pentaerythritol, trimethylolpropane, ethylene glycol, propylene glycol, 1,3-butylene glycol, 1,3-propanediol, pentylene glycol, hexylene glycol, isoprene glycol, dipropylene glycol, diethylene glycol and di-glycerol, ethylhexylglycerin, caprylyl glycol and mixtures thereof, glycerol and its derivatives, polyglycerols, such as glycerol oligomers, e.g., diglycerol, and polyethylene glycols, glycol ethers (especially containing 3 to 16 carbon atoms) such as C1-C4 alkyl ethers of mono-, di-, or tripropylene glycol, C1-C4 alkyl ethers of mono-, di-, or triethylene glycol, and mixtures of these. Non-volatile silicone oil. In some embodiments, the composition may include a non-volatile silicone oil. The term "silicone oil" means an oil containing at least one silicon atom and in particular containing Si-O groups. In some embodiments, the composition may include a non-volatile silicone oil. In some embodiments, the composition may include only two non-volatile silicone oils. In some embodiments, the non-volatile silicone oil may be present in a total amount of no more than 20% by weight of the composition. In some embodiments, a first non-volatile silicone oil may be present in a total amount of at least 10% by weight of the composition (such as, for example, PDMS), and a second non-volatile silicone oil (such as, for example, an alkyl-dimethicone copolymer) may be present in a total amount of no more than 5% by weight of the composition. In some embodiments, the amount of the hydrocarbon-based oil plus the amount of the non-volatile silicone oil may be less than 30% by weight of the composition. In preferred embodiments, the cosmetic composition may be free of volatile silicone oils. The non-volatile silicone oils may be non-phenyl silicone oils. The term "non-phenyl silicone oil" refers to a silicone oil not bearing phenyl substituents. Representative examples of such non-volatile non-phenyl silicone oils include polydimethylsiloxanes, alkyl dimethicones, vinylmethyl methicones, and silicones modified with aliphatic groups and / or functional groups such as hydroxyl groups, thiol and / or amine. In some embodiments, the alkyl dimethicone may be an alkyl-dimethicone copolymer, such as lauryl PEG / PPG-18 / 18 methicone (which is more particularly an alkoxylic derivative of laurylmethicone containing on average 18 moles of ethylene oxide and 18 moles of propylene oxide, sold under the name "Dow Corning 5200 Formulation Aid" by Dow Corning; cetyl PEG / PPG-10 / 1 dimethicone (which is more particularly a copolymer of cetyl-dimethicone and an alkoxylic derivative of dimethicone containing on average 10 moles of ethylene oxide and 1 mole of propylene oxide) such as the product sold under the name Abil EM 90 by Evonik Goldschmidt as well as the mixture of cetyl PEG / PPG-10 / 1 dimethicone, polyglycerol isostearate (4 moles) and hexyl laurate sold under the name ABIL WE 09 by Evonik Goldschmidt. Vitamins. In some embodiments, the composition may include a vitamin. In some embodiments, the composition may include a plurality of vitamins. These vitamins include materials having vitamin activity. In some embodiments, the vitamins may be present in a total amount of no more than 3% by weight of the composition. In some embodiments, the vitamins may be present in a total amount of no more than 2.5% by weight of the composition. In some embodiments, the vitamins may be present in a total amount of at least 0.5% by weight of the composition. In some embodiments, the vitamins may be present in a total amount of at least 1% by weight of the composition. In some embodiments, the vitamins may be present in a total amount of 2% to 2.5% by weight of the composition. Non-limiting examples of these vitamins include vitamin K, vitamin B8, vitamin B12, thiamine riboflavin, nicotinamide (also known as niacinamide), pantothenic acid, pyridoxine and its derivatives, biotin (vitamin B7), folic acid, cyanocobalamin, and ascorbic acid. Vitamins contain vitamin derivatives.For example, ascorbic acid (vitamin C) and its derivatives, in particular its phosphate derivatives such as di-alpha-tocopheryl diascorbyl phosphate potassium salt (sold by Senju Pharmaceutical under the reference Sepivital EPC), magnesium ascorbyl phosphate and sodium ascorbyl phosphate (sold by Roche under the reference Stay-C 50), and esters thereof such as ascorbyl acetate, palmitate and propionate; retinol (vitamin A) and its derivatives, in particular its esters such as retinyl acetate, palmitate and propionate; and pantothenic acid (vitamin B) and its derivatives such as pantolactone and D-panthenol. Conservative. In some embodiments, the composition may include a preservative. In some embodiments, the composition may include a plurality of preservatives. In some embodiments, the preservative may be present in an amount not exceeding 1.5% by weight of the composition. Non-limiting examples of preservatives include phenoxyethanol, benzyl alcohol, parabens (methylparaben, ethylparaben, propylparaben, butylparaben, isobutylparaben, etc.), sodium benzoate, ethylenediaminetetraacetic acid (EDTA), potassium sorbate and / or grapefruit seed extract, or combinations thereof. More than one preservative may be included in the composition. Other preservatives are known in the cosmetic industry and include salicylic acid, DMDM ​​hydantoin, formaldehyde, chlorphenesin, triclosan, chlorhexidine digluconate, imidazolidinyl urea and diazolidinyl urea. These may all be used alone or in combination with each other. Silicone resin. The composition according to the invention comprises at least one silicone resin. In certain embodiments, the composition comprises only one silicone resin. The term “resin” designates a compound whose structure is three-dimensional. Thus, within the meaning of the present invention, a polydimethylsiloxane is not a silicone resin. In some embodiments, the silicone resin may be present in a total amount not exceeding 3% by weight of the composition. In some embodiments, the silicone resin may be present in a total amount not exceeding 2% by weight of the composition. In some embodiments, the silicone resin may be present in a total amount of 1.5% to 2.5% by weight of the composition. The classification of silicone resins (also called siloxane resins or silicon resins) is known as "MDTQ", the resin being described according to the different siloxane monomer units it comprises, each of the letters "MDTQ" characterizing a type of unit. The "letter M" represents the monofunctional unit having the formula RIR2R3SiO,2, the silicon atom being bonded to a single oxygen atom in the polymer comprising this unit. The letter "D" denotes a difunctional unit RIR2SiOz in which the silicon atom is bonded to two oxygen atoms. The letter "T" represents a trifunctional unit having the formula R1SiO47. These resins are described, for example, in the "Encyclopedia of Polymer Science and En- gineering, vol. 15, John and Wiley and Sons, New York (1989), pp. 265-270, and in U.S. Pat. Nos. 2,676,182, 3,627,851, 3,772,247, 5,248,739 or U.S. Pat. Nos. 5,082,706, 5,319,040, 5,302,685 and 4,935,484. In the M, D, T units defined above, Ri, namely R1, R2 and R3, identical or different, represent a hydrocarbon radical (in particular alkyl) having from 1 to 10 carbon atoms, a phenyl group, a phenylalkyl group or a hydroxyl group. Finally, the letter "Q" denotes a tetrafunctional unit SIO, in which the silicon atom is bonded to four oxygen atoms in turn bonded to the rest of the polymer. Various silicone resins having different properties can be obtained from these various units, the properties of these polymers varying depending on the type of monomers (or units), the type and number of the radical or radicals Ri, the length of the polymer chain, the degree of branching and the size of the pendant chain. In some embodiments, the silicone resin may be of the MQ type, the T type, or the MQT type. MO resins: In the case of silicone resins of the MQ type, mention may be made of alkylsiloxysilicates having a formula [(R1):Si0.2],(SiO42), (MQ units) in which x and y are integers ranging from 50 to 80, and such that the group R1 is a radical as defined above, and preferably an alkyl group which has from 1 to 8 carbon atoms, or a hydroxyl group, preferably a methyl group. An MQ resin may be a trimethylsiloxysilicate. Examples of solid silicone resins of the MQ type of the trimethylsiloxysilicate type include those sold under the reference SR1000 by General Electric, under the reference TMS 803 by Wacker, under the name "KF-7312J" by Shin-Etsu, "DC 749", "DC 593" by Dow Corning. As silicone resins comprising MQ siloxysilicate units, mention may also be made of phenylalkylsiloxysilicate resins, such as phenylpropyldimethylsiloxysilicate (Silshine 151 sold by General Electric). The preparation of these resins is described in particular in US Patent No. 5,817,302. T Resins: Examples of T-type silicone resins include polysilsesquioxanes of formula (RSiO3z), (T units) wherein x is greater than 100 and such that the R group is an alkyl group having from 1 to 10 carbon atoms, said polysilsesquioxanes may further include Si-OH end groups. Polymethylsilsesquioxanes which are polysilses- quioxanes in which none of the methyl radicals is substituted by another group. These polymethylsilsesquioxanes are described, for example, in U.S. Patent No. 5,246,694, Preferably, polymethylsilsesquioxane resins may be used in which R is a methyl group, such as those sold by Wacker under the reference Resin MK such as Belsil PMS MK: polymer comprising CH3SiO3 / 2 repeating units (T units), which may also comprise up to 1% by weight of (CH3)2SiO2 / 2 units (D units) and having an average molecular weight of about 10,000 g / mol, or by Shin-Etsu under the references KR-220L consisting of T units having the formula CH;SiO,, and having Si-OH (silanol) end groups, under the reference KR-242A comprising 98% T units and 2% dimethyl D units and having Si-OH end units or under the reference KR-251 comprising 88% T units and 12% dimethyl units D and having Si-OH end groups. MOT resins: As a resin comprising MQT units, those mentioned in US patent 5,110,890 are known. A preferred form of resins of the MQT type are MQT-propyl resins (also called MQTPr). These resins which can be used in the compositions according to the invention are in particular those described and prepared in application 8,124,710 US. The MQ-T-propyl resin preferably comprises the units: (i) (R13S1012); (ii) (R2 251022)»; (iii) (R3SiO42). and (iv) (SIO4 / 2)4, R1, R2 and R3 being independently a hydrocarbon radical (in particular alkyl) having from 1 to 10 carbon atoms, a phenyl group, a phenylalkyl group or a hydroxyl group and preferably an alkyl radical having | with 8 carbon atoms or a phenyl group, a, b, c and d being mole fractions, a being between 0.05 and 0.5, b being between zero and 0.3, c being greater than zero, d being between 0.05 and 0.6,a+b+c+d=1,provided that more than 40 mol% of the R3 groups of the siloxane resin are propyl groups. Preferably, the siloxane resin comprises the units: (i) (R13Si0.2),; (iii) (R3SiO an). and (iv) (SIO4 / 2),, R1 and R3 being independently an alkyl group having from 1 to 8 carbon atoms, R1 preferably being a methyl group and R3 preferably a propyl group, a being between 0.05 and 0.5, preferably between 0.15 and 0.4, c being greater than zero, preferably between 0.15 and 0.4, d being between 0.05 and 0.6, preferably between 0.2 and 0.6, or between 0.2 and 0.55, a + c + d = 1, and a, c and d being mole fractions, provided that more than 40 mol% of the R3 groups of the siloxane resin are propyl groups. The siloxane resins which can be used according to the invention can be obtained by a process comprising the reaction of: A) an MQ resin comprising at least 80 mol% of (R1:Si0,) and (S104 / 2) units, R1 being an alkyl group having from 1 to 8 carbon atoms, an aryl group, a carbinol group or an amino group, a and d being greater than zero, the ratio a / d being between 0.5 and 1.5; and of B) a propyl T resin comprising at least 80 mol% of (R3Si032)e units, R3 being an alkyl group having from 1 to 8 carbon atoms, an aryl group, a carbinol group or an amino group, c is greater than zero, provided that at least 40 mol% of the R3 groups are propyl groups, wherein the mass ratio A / B is between 95:5 and 15:85, preferably the mass ratio A / B is 30:70. Advantageously, the mass ratio A / B is between 95:5 and 15:85. Preferably, the ratio A / B is less than or equal to 70:30. These preferred ratios have been found to allow comfortable depositions. Preferably, the composition according to the invention comprises, as silicone resin, at least one resin of the MQ type as described above. In preferred embodiments, the silicone resin is a siloxysilicate resin, more preferably a trimethylsiloxysilicate resin. Thickening agent. In some embodiments, the composition may include a thickening agent. In some embodiments, the composition may include a plurality of thickening agents. In some embodiments, the thickening agent is present in an amount of less than 3% by weight of the composition. In preferred embodiments, the composition is substantially free of a thickening agent. In more preferred embodiments, the composition is free of a thickening agent. The thickening agent may be selected from organic and inorganic thickeners. Non-limiting examples of organic thickeners include: (i) associative thickeners; (ii) crosslinked acrylic acid homopolymers; (iii) crosslinked copolymers of (meth)acrylic acid and C1-C6 alkyl acrylate; (iv) nonionic homopolymers and copolymers comprising at least one of ethylenically unsaturated ester monomers and ethylenically unsaturated amide monomers; (v) homopolymers and copolymers of ammonium acrylate and acrylamide. As used herein, the term "associative thickener" means an amphiphilic thickener comprising both hydrophilic units and hydrophobic units, e.g., comprising at least one C8-C30 fatty chain and at least one hydrophilic unit. pH correcting or buffering agent. In some embodiments, the composition may include a pH adjusting and / or buffering agent. pH adjusters include, but are not limited to, sodium metasilicate, silicate compounds, citric acid, ascorbic acid, carbonate compounds, and sodium hydroxide. Non-limiting examples of buffering agents include an acetate buffer (e.g., acetic acid + sodium acetate), a phosphate buffer (e.g., sodium dihydrogen phosphate + disodium hydrogen phosphate), a citrate buffer (e.g., citric acid + sodium citrate), a borate buffer (e.g., boric acid + sodium borate), a tartrate buffer (e.g., tartaric acid + sodium tartrate dihydrate), a Tris buffer (e.g., tris(hydroxymethyl)aminomethane), or a HEPES buffer (e.g., citric acid + sodium citrate). 4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid). In some embodiments, the thickening agent is present in an amount of less than 3% by weight of the composition. In some embodiments, the composition is substantially free of both a pH correcting and buffering agent. In some embodiments, the pH correcting and buffering agent may be present in a total amount of 0.001% to 0.5% by weight of the composition. Electrolyte. In some embodiments, the composition may include an electrolyte. In some embodiments, the composition may include a plurality of electrolytes. In some embodiments, the composition may include only one electrolyte. The electrolyte may be present in a total amount of not more than 2%, not more than 1.5%, or not more than 1% by weight of the composition. The at least one electrolyte present in the composition may be selected from, for example, alkali metal salts, for example, sodium chloride, potassium chloride, or potassium sulfate. Flavonoid. In some embodiments, the composition may include a flavonoid. The flavonoid may be present in a total amount of less than 0.1%, less than 0.01%, less than 0.001%, or less than 0.0001% by weight of the composition. The flavonoid may be a flavanone (derived from 2,3-dihydro-2-phenylchromen-4-one). These flavanones include: butin, eriodictyol, hesperetin, hesperidin, homoeriodictyol, isosakuranetin, naringenin, naringin, pinocembrin, poncirin, sakuranetin, sakurinin and sterubin. The flavonoid may be a flavanonol (3-hydroxy-2,3-dihydro-2-phenylchromen-4-one derivative); these flavanols include: taxifolin, aromadedrin, chrysandroside A, chrysandroside B, xeractinol, astilbin and fustin. The flavonoid may be a flavone (2-phenylchromen-4-one derivative); These flavones include: apigenin, luteolin, tangeritin, chrysin, baicalein, scutellarein, wogonin, synthetic flavones: diosmin and flavoxate. The flavonoid may be a flavonol (derived from 3-hydroxy-2-phenylchromen-4-one); these flavonols include: 3-hydroxyflavone, azaleatin, fisetin, galangin, gossypetin, kaempferide, kaempferol, isorhamnetin, morin, myricetin, natsudaidain, pachypodol, quercetin, rhamnazine, rhamnetin, azalein, hyperoside, isoquercitin, kaempferitrin, myricitrin, quercitrin, robinin, rutin, spiraeoside, xanthorhamnin, amurensin, icariin and troxerutin. Synthetic peptide. In some embodiments, the composition may include a synthetic peptide. The synthetic peptide may be present in a total amount of less than 0.1%, less than 0.01%, less than 0.001%, or less than 0.0001% by weight of the composition. In some embodiments, these synthetic peptides include iamine, biopeptide CL, or various palmitoyl peptides, such as palmitoyl tripeptide-1 or palmitoyl tetrapeptide-7. Amino acid or amino acid derivative. In some embodiments, the composition may include an amino acid or amino acid derivative. In some embodiments, the composition may include an amino acid or amino acid derivative. The amino acid or amino acid derivative may be present in a total amount of less than 0.5% or less than 0.1% by weight of the composition. For example, one amino acid that can be used is adenosine. Adenosine derivatives include, in particular, non-phosphate adenosine derivatives such as: 2'-deoxyadenosine; 2,3"-isopropylidene adenosine; toyocamycin; 1-methyladenosine; N-6-methyladenosine; adenosine N-oxide; 6-methylmercaptopurine riboside or 6-chloropurine riboside. Other adenosine derivatives include adenosine receptor agonists, including phenylisopropyladenosine ("PIA"), 1-methylisoguanosine, N6-cyclohexyladenosine (CHA), N6-cyclopentyladenosine (CPA), 2-chloro-N-6-cyclopentyladenosine, 2-chloroadenosine, N6-phenyladenosine, 2-phenylaminoadenosine, MECA, N6-phenethyladenosine, 2-p-(2-carboxy-ethyl) phenethyl- amino-5-N-ethylcarboxamido-adenosine (CGS-21680), N-ethylcarboxamido-adenosine (NECA), 5' (N-cyclopropyl)-carboxamido-adenosine, DPMA (PD 129,944) and metrifudile. Other adenosine derivatives include compounds that increase the intracellular concentration of adenosine, such as erythro-9-(2-hydroxy-3-nonyl)adenine ("EHNA") or iodotubercidine. Still other adenosine derivatives include salts and alkyl esters. In some embodiments, the composition may include the matting filler, the colorant, the hydrocarbon-based oil, the hydrocarbon-based emulsifier, water, and the UV filter system, may optionally include a polyol, a non-volatile silicone, a vitamin, a preservative, a silicone resin, a thickening agent, a pH correcting or buffering agent, an electrolyte, a flavonoid, a synthetic peptide and / or an amino acid or amino acid derivative, may be free of a volatile silicone oil and may be substantially free of any other material. Antioxidant. In some embodiments, the composition may include an antioxidant. In some embodiments, the composition may include a plurality of antioxidants. In some embodiments, the composition may include only one antioxidant. The antioxidant may be present in a total amount of less than 0.5% or less than 0.2% by weight of the composition. Non-limiting examples of antioxidants include polyphenols, tannic acid, epigallocatechins and natural extracts containing them, anthocyanins, pentaerythrityl tetra-di-t-butyl hydroxyhydrocinnamate, rosemary extracts, lens esculenta (lentil) seed extract, olive leaf extracts, green tea, resveratrol and its compounds, pycnogenol, ergothineine, N-acetylcysteine, idebenone, plant extracts such as PRONALEN BIOPROTECTTM from Provital, coenzyme Q10, bioflavonoids, SOD, phytantriol, lignans, melatonin, pidolates and glutathione. Active ingredients. In some embodiments, the composition may include certain active ingredients. In some embodiments, the composition may include a plurality of active ingredients. In some embodiments, the composition may include only one active ingredient. The active ingredient may be present in a total amount of less than 0.5% or less than 0.25% by weight of the composition. In some embodiments, the active ingredient may include a hyaluronic acid derivative, such as sodium hyaluronate. In some embodiments, the hyaluronic acid derivative may be present in a total amount of less than 0.2% by weight of the composition. In some embodiments, the hyaluronic acid derivative may be present in a total amount of no more than 0.1% by weight of the composition.In some embodiments, the hyaluronic acid derivative may be present in a total amount of 0.05 to 0.15% by weight of the composition. In some embodiments, the active ingredient may include a chelating agent. In some embodiments, the composition may include a plurality of chelating agents. In some embodiments, the composition may include only one chelating agent. In some embodiments, the chelating agent may be present in a total amount of less than 0.2% by weight of the composition. In some embodiments, the chelating agent may be present in a total amount of . 0.05% to 0.15% by weight of the composition. Non-limiting examples of chelating agents include aminocarboxylic acids (i.e., acids comprising at least one carboxylic acid group) such as compounds having the following INCI names: phytic acid, diethylenetriaminepentaacetic acid (DTPA), ethylenediaminedisuccinic acid (EDDS), and trisodium ethylenediamine disuccinate such as Octaquest E30 from Octel, ethylenediaminetetraacetic acid (EDTA), ethylenediamine-N,N'-diglutaric acid (EDDG), glycinamide-N,N”-disuccinic acid (GADS), 2-hydroxypropylenediamine-N,N"-disuccinic acid (HPDDS), ethylenediamine- N,N'-bis(ortho-hydroxyphenylacetic acid) (EDDHA), acid N,N"-bis(2-hydroxybenzyl)ethylenediamine-N,N"'-diacetic acid (HBED) and nitrilotriacetic acid (NTA), methylglycine diacetic acid (MGDA), N-2-hydroxyethyl-N,N-diacetic acid and glyceryl imino diacetic acid (as described in EP-A-317 542 and EP-A-399 133), iminodiacetic acid-N-2-hydroxypropyl sulfonic acid and aspartic acid-N-carboxymethyl N-2-hydroxypropyl-3-sulfonic acid (as described in EP-A-516 102), beta-alanine-N,N'-diacetic acid, aspartic acid-N,N”-diacetic acid and aspartic acid-N-monoacetic acid (described in EP-A-509 382), iminodisuccinic acid (IDSA) chelating agents (as described in EP-A-509 382), ethanoldiglycine acid, phosphonobutane tricarboxylic acid, such as the compound sold by Bayer under the reference Bayhibit AM, tetrasodium glutamate diacetate (GLDA) such as Dissolvine GL38 or 45S from Akzo Nobel, mono- or polyphosphonic acid-based chelating agents, such as compounds with the following INCI name: diethylenetriaminepenta (methylenephosphonic acid) (DTPMP),ethane-1-hydroxy-1,1,2-triphosphonic acid (E1HTP), ethane-2-hydroxy-1,1,2-triphosphonic acid (E2HTP), ethane- , 1-hydroxy-1,1-diphosphonic acid (EHDP), ethane-1,1,2-triphosphonic acid (ETP), ethylenediaminetetramethylenephosphonic acid (EDTMP), hydroxyethane-1,1-diphosphonic acid (HEDP), polyphosphoric acid-based chelating agents, such as compounds having the following INCI name: sodium tripolyphosphate (STP), tetrasodium diphosphate, hexametaphosphoric acid, sodium metaphosphate, phytic acid, salts and derivatives thereof, and mixtures thereof. In some embodiments, the active material may be an active ester or derivative thereof. The active ester or derivative may be present in a total amount of less than 0.1%, less than 0.01%, less than 0.001%, or less than 0.0001% by weight of the composition. Active esters are well known in the peptide synthesis and refer to certain esters that react readily with an amine of an amino acid under conditions commonly used in the peptide synthesis. A common active ester is N-hydroxysuccinimide, and a commonly used form of this active ester is N-hydroxysuccinimidyl ester (NHS). In some embodiments, the composition may include the matting filler, the colorant, the hydrocarbon-based oil, the hydrocarbon-based emulsifier, water, and the UV filter system, may optionally include a polyol, a non-volatile silicone oil, a vitamin, a preservative, a silicone resin, a thickening agent, a pH adjusting or buffering agent, and an electrolyte, may be free of a volatile silicone oil, and may be substantially free of any other material. In some embodiments, the composition may include the matting filler, the colorant, the hydrocarbon-based oil, the hydrocarbon-based emulsifier, water and the UV filter system, may optionally include a polyol, a non-volatile silicone oil, a vitamin, a preservative, a silicone resin, a thickening agent, a pH correcting or buffering agent, an electrolyte, a flavonoid, a synthetic peptide, an antioxidant, an active ingredient and / or an amino acid or amino acid derivative, may be free of a volatile silicone oil and may be substantially free of any other material. Examples An inventive example such as that shown in Table 1 below can be created by first mixing the oils, oil-soluble ingredients, and inorganic UV filter in one container, then mixing the water and water-soluble ingredients in a separate container, and then, while homogenizing, combining the two phases, and then adding the matting fillers and colorants. [Tables 1] % by weight (active base) 0.5-1% 3-5% 1-:2% 1.5-2.5% 15-20% 5-9% 15-20% 3-5% <0.0001% Synthetic peptide < 0.0001% The above formulas can provide a matte finish and all-day shine control, as well as an optical blurring effect to minimize the appearance of pores and smooth skin texture. Over time, the above formulas also improve dryness, skin tone and texture, the appearance of pores, the appearance of blemishes, and visible signs of aging. The SPF provided will vary depending on the levels of UV filters actually used, but as will be appreciated by those skilled in the art, SPF values ​​will increase as the amount of UV filters used increases. For example, some of the formulas shown in Table 1 may provide SPF values ​​> 40. Some embodiments may provide a method for applying cosmetics to a face. The method may include applying the cosmetic composition as disclosed herein to the face for a first period of time, and then removing the cosmetic composition from the face for a second period of time after the first period of time. In some embodiments, the method may include applying a second composition on top of the cosmetic composition after the first period of time and before the second period of time.

Claims

Claims

1. Cosmetic composition intended to provide a matte tint background, including: a mattifying filler consisting of a silica aerogel and possibly of a modified starch, amorphous silica, a clay and / or a silicone elastomer; an organic hydrophobic ultraviolet filter consisting of salicylate octyl, the cosmetic composition being free from other ul- filters organic hydrophobic transviolets; a water-soluble organic ultraviolet filter consisting of acid 2-phenylbenzimidazole-5-sulfonic acid (PBSA), the composition cosmetic being free from other organic ultraviolet filters soluble in water: an inorganic ultraviolet (UV) filter consisting of titanium dioxide UV quality, the cosmetic composition being free from other ul- filters inorganic transviolets; a colorant; a hydrocarbon-based oil; a hydrocarbon-based emulsifier and water.

2. Cosmetic composition according to claim 1, in which the filter inorganic ultraviolet is present in an amount less than 5% in weight of the composition.

3. Cosmetic composition according to claim 2, wherein the mattifying filler is present in an amount of less than 10% in weight of the composition.

4. A cosmetic composition according to claim 3, further comprising a polyol.

5. A cosmetic composition according to claim 4, further comprising a non-volatile silicone oil.

6. A cosmetic composition according to claim 5, further comprising a vitamin.

7. Cosmetic composition according to claim 6, wherein the quantity of hydrocarbon-based oil plus the quantity of the oil non-volatile silicone is less than 30% by weight of the composition.

8. A cosmetic composition according to claim 7, wherein the com- position is free from volatile silicone oils.

9. A cosmetic composition according to claim 8, wherein the com- position further includes a preservative, a silicone resin, a thickening agent, a pH correcting or buffering agent, an electrolyte, a flavonoid, a synthetic peptide and / or an amino acid or derivative of amino acid.

10. | Cosmetic composition according to claim 9, wherein the com- position is substantially free from any other matter.