Method for dyeing keratinous materials comprising using an organic C1-C6 alkoxysilane and an acidifying agent

A two-component dyeing method using organic C1-C6 alkoxysilane and an acidifying agent enhances color strength and fastness on keratinous materials, addressing the limitations of existing dyeing technologies by improving washfastness and rubfastness with shorter application times.

JP7739268B2Active Publication Date: 2025-09-16HENKEL KGAA
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Patent Information

Application Number
JP2022517379
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-09-18
Filing Date
2020-08-25
Publication Date
2025-09-16
Estimated Expiration
2040-08-25

AI Technical Summary

Technical Problem

Existing dyeing methods for keratinous materials, such as human hair, face challenges in achieving optimal color strength and washfastness, especially with short application times, which are inconvenient for users.

Method used

A two-component method involving a composition (A) containing organic C1-C6 alkoxysilane and/or its condensate, and a composition (B) with an acidifying agent, applied sequentially to enhance color strength and fastness on keratinous materials.

Benefits of technology

The method significantly improves color strength and washfastness of dyeings on keratinous materials, providing long-lasting results with improved rubfastness and convenience through reduced application time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a method for dyeing keratinous materials, in particular human hair, by applying to the keratinous materials, in particular human hair, (A) a first composition comprising (A1) one or more organic C1-C6 alkoxysilanes and / or condensates thereof, and (A2) at least one coloring compound selected from the group consisting of pigments and direct dyes, and (B) a second composition comprising (B1) at least one acidifying agent.
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Description

[Technical Field]

[0001] The present application is in the field of cosmetics and relates to a method for coloring keratinous materials, in particular human hair, comprising the use of two compositions (A) and (B): composition (A) is a composition comprising at least one organic C1-C6 alkoxysilane (A1) and at least one coloring compound (A2), and composition (B) comprises at least one acidifying agent (B1).

[0002] A second object of the present invention is a multi-component container (kit) for dyeing keratinous materials, comprising the two compositions (A) and (B) described above packaged separately in two packaging containers. [Background technology]

[0003] Changing the shape and color of keratin fibers, especially hair, is an important area of ​​modern cosmetics. To change hair color, experts know a variety of coloring systems tailored to the coloring requirements. For long-lasting, intense dyeing with good fastness and good gray coverage, oxidation dyes are usually used. These dyes usually contain an oxidation dye precursor (a so-called developer) and a color-developing component, which react with each other to produce the actual dye under the influence of an oxidizing agent, such as hydrogen peroxide. Oxidation dyes are characterized by extremely long-lasting coloring results.

[0004] When using direct dyes, the already prepared dye diffuses from the colorant into the hair fiber. Compared to oxidative dyes, dyes obtained with direct dyes have a shorter color retention time and are more quickly washable. Direct dye stains typically remain on the hair for 5 to 20 washes.

[0005] The use of color pigments to change the color of hair and / or skin for a short period of time is known. Color pigments are understood to be insoluble coloring substances. They exist in the dye composition as small particles without dissolving and are exclusively attached externally to the surface of hair fibers and / or skin. Therefore, color pigments can usually be removed without residue by washing several times with detergents containing surfactants. Various products of this type are commercially available under the name "hair mascara."

[0006] EP 2168633 B1 deals with a method for producing long-lasting pigmented hair color, and teaches that by applying a combination of pigment, organosilicon compound, hydrophobic polymer and solvent to the hair, a coloration that is particularly resistant to shampooing can be achieved.

[0007] The organosilicon compounds used in EP 2168633 B1 are reactive compounds from alkoxysilanes. These alkoxysilanes rapidly hydrolyze in the presence of water, producing hydrolysates and / or condensates depending on the amount of alkoxysilane and water used in each case. The effect of the amount of water used in this reaction on the properties of the hydrolysates or condensates is described, for example, in WO 2013 / 068979 A2.

[0008] When these alkoxysilanes or their hydrolysates or condensates are applied to keratinous materials, a film or coating is formed on the keratinous materials, which completely envelops the keratinous materials and thus strongly influences the properties of the keratinous materials.Application areas include long-term styling or long-term shape modification of keratinous fibers.In this method, the keratinous fibers are mechanically molded into a desired shape, and then fixed in this shape by forming the coating.Another particularly suitable application is the coloring of keratinous materials.In this application, the coating or film is produced in the presence of a coloring compound, such as a pigment.The pigmented film remains on the keratinous materials or keratinous fibers, resulting in a surprisingly wash-resistant color.

[0009] The great advantage of alkoxysilane-based dyeing principles is that the high reactivity of these compounds allows for rapid coverage. This means that good color results can be achieved even after short application times of just a few minutes. The shorter the exposure time to the hair treatment product, the greater the user's comfort. [Prior art documents] [Patent documents]

[0010] [Patent Document 1] EP 2168633 B1 [Patent Document 2] WO 2013 / 068979 A2 Summary of the Invention [Problem to be solved by the invention]

[0011] However, the color strength of the colorations obtained still needs to be optimized, especially in the case of short application times, and there is still room for improvement in terms of the durability of the dyeings, especially their washfastness.

[0012] The object of the present invention was therefore to find a method for dyeing keratinous materials which exhibits an improvement in terms of color strength and fastness, which should be improved in color strength, wash fastness and rub fastness compared to the colorations hitherto achievable with compositions known from the prior art, when short application times are selected which are particularly convenient for the user. [Means for solving the problem]

[0013] Surprisingly, it has been found that this problem can be successfully solved by dyeing keratinous materials in a method in which two compositions (A) and (B) are applied to the keratinous materials, wherein the first composition (A) comprises at least one organic C1-C6 alkoxysilane and / or its condensate and at least one color-imparting compound, and the second composition (B) comprises at least one acidifying agent.

[0014] The first object of the present invention is to (A1) one or more organic C1-C6 alkoxysilanes and / or condensates thereof, and (A2) at least one coloring compound selected from the group consisting of pigments and direct dyes a first composition (A) comprising: (B1) at least one acidifying agent A second composition (B) comprising to the keratinous material, in particular human hair.

[0015] When composition (A) is applied to keratinous materials as part of a dyeing method, an increase in color strength has been observed when composition (B) is applied to the keratinous materials as a post-treatment agent after application of composition (A).In this regard, unexpectedly, in addition to an increase in color strength, improvements in wash fastness and rub fastness have also been observed. DETAILED DESCRIPTION OF THE INVENTION

[0016] Treatment of keratinous materials Keratinous materials include hair, skin, nails (e.g., fingernails and / or toenails). Wool, fur, and feathers are also included within the definition of keratinous materials.

[0017] Preferably, keratinous materials are understood to be human hair, human skin and human nails (in particular fingernails and toenails). Keratinous materials are understood to be human hair.

[0018] In the present invention, the term "coloring composition" refers to the coloring of keratinous materials (hair) using coloring compounds such as thermochromic and photochromic dyes, pigments, mica, and direct dyes. In this coloring method, the coloring compounds are deposited on the surface of the keratinous material or diffuse into the keratinous fibers in a particularly uniform and smooth film. The film is formed in situ by the oligomerization or polymerization of the organic alkoxysilane and by the interaction of the color-imparting compound with other components, such as an organosilicon compound and, optionally, a film-forming polymer.

[0019] Organic C1-C6 alkoxysilane (A1) and / or its condensate in composition (A) The composition (A) is characterized in that it contains one or more organic C1-C6 alkoxysilanes (A1) and / or condensates thereof.

[0020] The organic C1-C6 alkoxysilane is an organic non-polymeric silicon compound preferably selected from the group consisting of silanes having 1, 2 or 3 silicon atoms.

[0021] Organosilicon compounds, also known as organosilicon compounds, are compounds that have a silicon-carbon direct bond (Si-C) or carbon is bonded to a silicon atom via an oxygen, nitrogen, or sulfur atom.The organosilicon compounds of the present invention are preferably compounds containing 1 to 3 silicon atoms.The organosilicon compounds preferably contain 1 or 2 silicon atoms.

[0022] According to IUPAC nomenclature, the term "silane" refers to a compound based on a silicon skeleton and hydrogen. In organosilanes, the hydrogen atoms are completely or partially replaced by organic groups such as (substituted) alkyl and / or alkoxy groups.

[0023] The C1-C6 alkoxysilane of the present invention is characterized in that at least one C1-C6 alkoxy group is directly bonded to a silicon atom. Therefore, the C1-C6 alkoxysilane of the present invention has at least one structural unit: R'R"R"'Si-O-(C1-C6 alkyl) [The groups R', R" and R"' represent the remaining three valencies of the silicon atom] Includes:

[0024] One or more C1-C6 alkoxy groups attached to a silicon atom are highly reactive and are rapidly hydrolyzed in the presence of water. The reaction rate depends, among other things, on the number of hydrolyzable groups per molecule. When the hydrolyzable C1-C6 alkoxy groups are ethoxy groups, the organosilicon compound preferably comprises the structural unit R'R"R"'Si-O-CH2-CH3. The groups R', R" and R"' represent the remaining three free valences of the silicon atom.

[0025] The addition of even small amounts of water first causes hydrolysis, followed by a condensation reaction between the organoalkoxysilanes, so that both the organoalkoxysilane (A1) and its condensate may be present in the composition.

[0026] Condensates are understood to be products formed by the reaction of at least two organo C1-C6 alkoxysilanes with the elimination of water and / or C1-C6 alkanol.

[0027] The condensates may be, for example, dimers, trimers or oligomers, and the condensates are always balanced with monomers.

[0028] Depending on the amount of water used or consumed in the hydrolysis, the equilibrium shifts from the monomeric C1-C6 alkoxysilanes to the condensates.

[0029] In a particularly preferred embodiment, the method of the present invention is characterized in that the composition (A) comprises one or more organo C1-C6 alkoxysilanes (A1) selected from silanes containing one, two or three silicon atoms, the organosilicon compounds further comprising one or more basic chemical functional groups.

[0030] The basic group may be, for example, an amino group, an alkylamino group, or a dialkylamino group, and is preferably bound to the silicon atom via a linker. Preferably, the basic group is an amino group, a C1-C6 alkylamino group, or a di(C1-C6) alkylamino group.

[0031] A very particularly preferred method of the present invention is characterized in that the composition (A) comprises one or more organic C1-C6 alkoxysilanes (A1) selected from silanes containing one, two or three silicon atoms, which C1-C6 alkoxysilanes further comprise one or more basic chemical functional groups.

[0032] Particularly good results have been obtained when using C1-C6 alkoxysilanes of formula (SI) and / or (S-II) in the process of the present invention. As mentioned above, hydrolysis / condensation begins even with trace amounts of water, and therefore condensates of C1-C6 alkoxysilanes of formula (SI) and / or (S-II) are also included in this embodiment.

[0033] In another very particularly preferred embodiment, the process according to the invention comprises the step of: first composition (A) comprising a compound of formula (SI) and / or (S-II): R1R2N-L-Si(OR3) a (R4) b (SI) [In the formula, -R1 and R2 independently represent a hydrogen atom or a C1-C6 alkyl group; -L is a straight or branched chain divalent C-C 20 is an alkylene group, -R3 and R4 each independently represent a C1-C6 alkyl group; -a represents an integer from 1 to 3, -b represents the integer 3-a] TIFF0007739268000001.tif6151[In the formula, -R5, R 5' , R 5" , R6, R 6' and R 6" each independently represents a C1-C6 alkyl group; -A, A', A", A"' and A"" are independently straight or branched chain divalent C-C 20 represents an alkylene group, R7 and R8 are independently a hydrogen atom, a C1-C6 alkyl group, a hydroxy C1-C6 alkyl group, a C2-C6 alkenyl group, an amino C1-C6 alkyl group, or a group of formula (S-III): -(A"")-Si(R6") d" (OR5") c" (S-III) represents a group represented by -c represents an integer from 1 to 3, -d represents the integer 3-c, -c' represents an integer of 1 to 3, -d' represents the integer 3-c', -c" represents an integer from 1 to 3, -d" represents the integer 3-c", -e represents 0 or 1, -f represents 0 or 1, -g represents 0 or 1, -h represents 0 or 1, - at least one of e, f, g and h is different from 0] The present invention is characterized in that it comprises one or more organic C1-C6 alkoxysilanes (A1) represented by the following formula (I) and / or condensates thereof:

[0034] Examples of substituents R1, R2, R3, R4, R5, R5', R5", R6, R6', R6", R7, R8, L, A, A', A", A'' and A"" in compounds represented by formula (SI) and / or (S-II) are shown below.

[0035] Examples of C1-C6 alkyl groups are methyl, ethyl, propyl, isopropyl, n-butyl, s-butyl, t-butyl, n-pentyl, and n-hexyl. Propyl, ethyl, and methyl are preferred alkyl groups. Examples of C2-C6 alkenyl groups are vinyl, allyl, but-2-enyl, but-3-enyl, and isobutenyl, with vinyl and allyl being preferred C2-C6 alkenyl groups. Preferred examples of hydroxy C1-C6 alkyl groups are hydroxymethyl, 2-hydroxyethyl, 2-hydroxypropyl, 3-hydroxypropyl, 4-hydroxybutyl, 5-hydroxypentyl, and 6-hydroxyhexyl groups; the 2-hydroxyethyl group is particularly preferred. Examples of amino C1-C6 alkyl groups are aminomethyl, 2-aminoethyl, and 3-aminopropyl groups. The 2-aminoethyl group is particularly preferred. Straight-chain divalent C1-C 20 Examples of alkylene groups include methylene (-CH-), ethylene (-CH-CH-), propylene (-CH-CH-CH-), and butylene (-CH-CH-CH-CH-). Propylene (-CH-CH-CH-) is particularly preferred. Divalent alkylene groups may be branched from a chain length of 3 C atoms. Branched divalent C-C 20 Examples of alkylene groups are (-CH2-CH(CH3)-) and (-CH2-CH(CH3)-CH2-).

[0036] Formula (SI): R1R2N-L-Si(OR3) a (R4) b (SI) In the organosilicon compound of formula (I), the groups R1 and R2 independently of one another represent a hydrogen atom or a C1-C6 alkyl group. Highly preferably, R1 and R2 both represent a hydrogen atom.

[0037] At the center of the organosilicon compound is a structural unit or linker -L-, which is a linear or branched divalent C-C 20 It means an alkylene group.

[0038] Divalent C1-C20 The alkylene group is a divalent or bivalent C-C 20 They are sometimes referred to as alkylene groups, which means that each L group can form two bonds.

[0039] Preferably, -L- is a linear divalent C-C 20 It means an alkylene group. More preferably, -L- means a straight-chain divalent C1-C6 alkylene group. Particularly preferred -L- means a methylene group (-CH2-), an ethylene group (-CH2-CH2-), a propylene group (-CH2-CH2-CH2-) or a butylene group (-CH2-CH2-CH2-CH2-). L means a propylene group (-CH2-CH2-CH2-).

[0040] In the present invention, the compound of formula (SI): R1R2N-L-Si(OR3) a (R4) b (SI) The organosilicon compounds represented by the formula: a (R4) b It has.

[0041] Terminal structural unit - Si(OR3) a (R4) b In the formula (I), the groups R3 and R4 independently represent a C1-C6 alkyl group, and particularly preferably the groups R3 and R4 independently represent a methyl group or an ethyl group.

[0042] Here, a represents an integer between 1 and 3, and b represents the integer 3-a. If a represents the number 3, then b is equal to 0. If a represents the number 2, then b is equal to 1. If a represents the number 1, then b is equal to 2.

[0043] Keratin treatment agents with particularly suitable properties have been prepared when composition (A) contains at least one organic C1-C6 alkoxysilane of formula (SI), in which the radicals R3 and R4, independently of one another, represent a methyl or ethyl radical.

[0044] Furthermore, the most washfast dyeings were obtained when the composition (A) contained at least one organic C1-C6 alkoxysilane of formula (SI), where a is the number 3, and b is the number 0.

[0045] Furthermore, the most washfast dyeings were obtained when the composition (A) contained at least one organic C1-C6 alkoxysilane of formula (SI), where a represents the number 3, in which: - R3 and R4 each independently represent a methyl group or an ethyl group; -a means the number 3, -b means the number 0.

[0046] In another preferred embodiment, the method of the present invention comprises the step of: R1R2N-L-Si(OR3) a (R4) b (SI) [In the formula, -R1 and R2 both represent hydrogen atoms; -L represents a linear divalent C1-C6 alkylene group, preferably a propylene group (-CH2-CH2-CH2-) or an ethylene group (-CH2-CH2-), -R3 represents an ethyl group or a methyl group; -R4 represents a methyl group or an ethyl group; -a represents the number 3, -b represents the number 0] The present invention is characterized in that it comprises at least one organic C1-C6 alkoxysilane represented by the following formula:

[0047] Particularly suitable for solving the problems of the present invention are organosilicon compounds of formula (I): -(3-aminopropyl)triethoxysilane TIFF0007739268000002.tif3473-(3-aminopropyl)trimethoxysilane TIFF0007739268000003.tif3465-(2-aminoethyl)triethoxysilane TIFF0007739268000004.tif3464-(2-aminoethyl)trimethoxysilane TIFF0007739268000005.tif3455-(3-Dimethylaminopropyl)triethoxysilane TIFF0007739268000006.tif3475-(3-Dimethylaminopropyl)trimethoxysilane TIFF0007739268000007.tif3466-(2-Dimethylaminoethyl)triethoxysilane TIFF0007739268000008.tif3566-(2-Dimethylaminoethyl)trimethoxysilane The file is TIFF0007739268000009.tif3457.

[0048] In another preferred embodiment, the method of the present invention comprises the step of: -(3-aminopropyl)triethoxysilane -(3-aminopropyl)trimethoxysilane -(2-aminoethyl)triethoxysilane -(2-aminoethyl)trimethoxysilane -(3-dimethylaminopropyl)triethoxysilane -(3-dimethylaminopropyl)trimethoxysilane -(2-dimethylaminoethyl)triethoxysilane -(2-dimethylaminoethyl)trimethoxysilane and characterized in that it comprises at least one organic C1-C6 alkoxysilane (A1) represented by formula (SI) and / or a condensate thereof.

[0049] Organosilicon compounds of formula (I) are commercially available. (3-aminopropyl)trimethoxysilane can be purchased, for example, from Sigma-Aldrich. (3-aminopropyl)triethoxysilane is also commercially available from Sigma-Aldrich.

[0050] In another embodiment of the method of the present invention, composition (A) comprises a compound represented by formula (S-II): The compound may comprise one or more organic C1-C6 alkoxysilanes shown in TIFF0007739268000010.tif6151.

[0051] The organosilicon compound represented by formula (S-II) in the present invention has a silicon-containing group (RO) at each end. c (R6) d Si- and -Si(R6') d' (OR5') c' It has.

[0052] The central part of the molecule represented by formula (S-II) contains a group -(A) e - and -[NR7-(A')] f -and-[O-(A")] g - and -[NR8-(A"')] h - is present, where e, f, g and h are each independently the number 0 or 1, and at least one of e, f, g and h is different from 0. In other words, the organosilicon compound of the present invention represented by formula (S-II) contains at least one atomic group selected from the group consisting of -(A)-, -[NR7-(A')]-, -[O-(A")]- and -[NR8-(A"')]-.

[0053] Two terminal structural units (RO) c (R6) d Si- and -Si(R6') d' (OR5') c' wherein the groups R5, R5', and R5" each independently represent a C1-C6 alkyl group. The groups R6, R6', and R6" each independently represent a C1-C6 alkyl group.

[0054] Here, c represents an integer between 1 and 3, and d represents the integer 3-c. If c represents the number 3, then d is equal to 0. If c represents the number 2, then d is equal to 1. If c represents the number 1, then d is equal to 2.

[0055] Similarly, c' represents an integer from 1 to 3, and d' represents the integer 3-c'. When c' represents the number 3, d' is 0. When c' represents the number 2, d' is 1. When c' represents the number 1, d' is 2.

[0056] Dyeings with the best washing fastness were obtained when c and c' both represented the number 3. In this case, d and d' both represented the number 0.

[0057] In another preferred embodiment, the method of the present invention comprises the step of: TIFF0007739268000011.tif6151[In the formula, -R5 and R5' independently represent a methyl group or an ethyl group; -c and c' together represent the number 3, -d and d' both represent the number 0] The present invention is characterized in that it comprises one or more organic C1-C6 alkoxysilanes represented by the following formula:

[0058] When c and c' are both the number 3 and d and d' are both the number 0, the organosilicon compound in the present invention has the formula (S-IIa): (RO)Si-(A) e -[NR7-(A')] f -[O-(A")] g -[NR8-(A"')] h -Si(OR5')3(S-IIa) is equivalent to

[0059] e, f, g and h may independently represent the numbers 0 or 1, and at least one of e, f, g and h is different from 0. Thus, the symbols e, f, g and h represent the atomic group -(A) e - and -[NR7-(A')] f -and-[O-(A")] g - and -[NR8-(A"')] h - is present in the central portion of the organosilicon compound represented by formula (II).

[0060] In the present invention, it has been found that the presence of certain atomic groups is particularly advantageous for achieving washfast dyeing results. Particularly good results have been obtained when at least two of e, f, g and h represent the number 1. Particularly preferably, e and f together represent the number 1. Furthermore, g and h together represent the number 0.

[0061] When e and f both represent 1, and g and h both represent 0, the organosilicon compound of the present invention has the formula (S-IIb): (R5O) c (R6) d Si-(A)-[NR7-(A')]-Si(R6') d' (OR5') c' (S-IIb) It is expressed by:

[0062] The groups A, A', A", A"' and A"" are independently straight chain or divalent C-C 20 Preferably, the groups A, A', A", A"' and A"" are each independently a linear divalent C-C alkylene group. 20 More preferably, the groups A, A', A", A"' and A"" independently represent a straight chain divalent C1-C6 alkylene group.

[0063] Divalent C1-C 20 The alkylene group is a divalent or bivalent C-C 20 Sometimes referred to as alkylene groups, this means that each of the groups A, A', A", A"' and A"" can form two bonds.

[0064] In particular, the groups A, A', A", A"' and A"" independently of one another represent a methylene group (-CH-), an ethylene group (-CH-CH-), a propylene group (-CH-CH-CH-) or a butylene group (-CH-CH-CH-CH-). Particularly preferably, the groups A, A', A", A"' and A"" represent a propylene group (-CH-CH-CH-).

[0065] When f represents the number 1, the organosilicon compound of formula (II) in the present invention contains the structural atomic group -[NR7-(A')]-.

[0066] When f represents the number 1, the organosilicon compound of formula (II) in the present invention contains the structural atomic group -[NR8-(A"')]-.

[0067] In the formula, R7 and R8 independently represent a hydrogen atom, a C1-C6 alkyl group, a hydroxy C1-C6 alkyl group, a C2-C6 alkenyl group, an amino C1-C6 alkyl group, or a group represented by formula (S-III): -(A"")-Si(R6") d "(OR5") c " (S-III) represents a group represented by the following formula:

[0068] Very preferably, the groups R7 and R8 independently of one another represent a hydrogen atom, a methyl group, a 2-hydroxyethyl group, a 2-alkenyl group, a 2-aminoethyl group or a group of atoms of formula (S-III).

[0069] When f represents the number 1 and h represents the number 0, the organosilicon compound of the present invention contains the atomic group -[NR7-(A')]- but does not contain the atomic group -[NR8-(A"')]-. When the group R7 represents the atomic group of formula (III), the organosilicon compound contains three reactive silane groups.

[0070] In another preferred embodiment, the method of the present invention comprises the step of: TIFF0007739268000012.tif6151[In the formula, - e and f together represent the number 1, - g and h together represent the number 0, -A and A' independently represent a linear divalent C1-C6 alkylene group; -R7 represents a hydrogen atom, a methyl group, a 2-hydroxyethyl group, a 2-alkenyl group, a 2-aminoethyl group, or a group represented by formula (S-III). The compound is characterized in that it comprises one or more organic C1-C6 alkoxysilanes (A1) represented by the following formula:

[0071] In another preferred embodiment, the method of the present invention comprises the step of: - e and f together represent the number 1, - g and h together represent the number 0, -A and A' each independently represent a methylene group (-CH2-), an ethylene group (-CH2-CH2-) or a propylene group (-CH2-CH2-CH2-), -R7 represents a hydrogen atom, a methyl group, a 2-hydroxyethyl group, a 2-alkenyl group, a 2-aminoethyl group, or a group represented by formula (S-III). The compound is characterized in that it comprises one or more organic C1-C6 alkoxysilanes (A1) represented by the following formula:

[0072] The organosilicon compound represented by formula (S-II) suitable for solving the problems of the present invention is -3-(trimethoxysilyl)-N-[3-(trimethoxysilyl)propyl]-1-propanamine TIFF0007739268000013.tif39113-3-(triethoxysilyl)-N-[3-(triethoxysilyl)propyl]-1-propanamine TIFF0007739268000014.tif45130-N-Methyl-3-(trimethoxysilyl)-N-[3-(trimethoxysilyl)propyl]-1-propanamine TIFF0007739268000015.tif39113-N-Methyl-3-(triethoxysilyl)-N-[3-(triethoxysilyl)propyl]-1-propanamine TIFF0007739268000016.tif45130-2-[bis[3-(trimethoxysilyl)propyl]amino]ethanol TIFF0007739268000017.tif47113-2-[bis[3-(triethoxysilyl)propyl]amino]ethanol TIFF0007739268000018.tif53130-3-(Trimethoxysilyl)-N,N-bis[3-(trimethoxysilyl)propyl]-1-propanamine TIFF0007739268000019.tif60113-3-(triethoxysilyl)-N,N-bis[3-(triethoxysilyl)propyl]-1-propanamine TIFF0007739268000020.tif63126-N1,N1-bis[3-(trimethoxysilyl)propyl]-1,2-ethanediamine TIFF0007739268000021.tif48113-N1,N1-Bis[3-(triethoxysilyl)propyl]-1,2-ethanediamine TIFF0007739268000022.tif54130-N,N-Bis[3-(trimethoxysilyl)propyl]-2-propen-1-amine TIFF0007739268000023.tif45113-N,N-Bis[3-(triethoxysilyl)propyl]-2-propen-1-amine The file is TIFF0007739268000024.tif51130.

[0073] The organosilicon compounds of formula (S-II) are commercially available.

[0074] Bis(trimethoxysilylpropyl)amine, which has the CAS number 82985-35-1, can be purchased from Sigma-Aldrich.

[0075] Bis[3-(triethoxysilyl)propyl]amine, which has the CAS number 13497-18-2, can be purchased, for example, from Sigma-Aldrich.

[0076] N-methyl-3-(trimethoxysilyl)-N-[3-(trimethoxysilyl)propyl]-1-propanamine, also known as bis(3-trimethoxysilylpropyl)-N-methylamine, can be purchased commercially from Sigma-Aldrich or Fluorochem.

[0077] 3-(triethoxysilyl)-N,N-bis[3-(triethoxysilyl)propyl]-1-propanamine, which has the CAS number 18784-74-2, can be purchased, for example, from Fluorochem or Sigma-Aldrich.

[0078] In another preferred embodiment, the method of the present invention comprises the steps of: -3-(trimethoxysilyl)-N-[3-(trimethoxysilyl)propyl]-1-propanamine -3-(triethoxysilyl)-N-[3-(triethoxysilyl)propyl]-1-propanamine -N-methyl-3-(trimethoxysilyl)-N-[3-(trimethoxysilyl)propyl]-1-propanamine -N-methyl-3-(triethoxysilyl)-N-[3-(triethoxysilyl)propyl]-1-propanamine -2-[bis[3-(trimethoxysilyl)propyl]amino]ethanol -2-[bis[3-(triethoxysilyl)propyl]amino]ethanol -3-(trimethoxysilyl)-N,N-bis[3-(trimethoxysilyl)propyl]-1-propanamine -3-(triethoxysilyl)-N,N-bis[3-(triethoxysilyl)propyl]-1-propanamine -N1,N1-bis[3-(trimethoxysilyl)propyl]-1,2-ethanediamine -N1,N1-bis[3-(triethoxysilyl)propyl]-1,2-ethanediamine -N,N-bis[3-(trimethoxysilyl)propyl]-2-propen-1-amine, and / or -N,N-bis[3-(triethoxysilyl)propyl]-2-propen-1-amine and characterized in that it comprises one or more organic C1-C6 alkoxysilanes represented by formula (S-II) and / or condensates thereof.

[0079] In another staining test, in the method of the present invention, a dye of formula (S-IV): R9Si(OR 10 ) k (R 11 ) m (S-IV) It has been found to be particularly advantageous when at least one organic C1-C6 alkoxysilane (A1) of the formula

[0080] The compound represented by formula (S-IV) is an organosilicon compound selected from silanes having one, two, or three silicon atoms, and the organosilicon compound contains one or more hydrolyzable groups per molecule.

[0081] Formula (S-IV): R9Si(OR 10 ) k (R 11 ) m (S-IV) [In the formula, -R9 is C1-C 12 represents an alkyl group, -R 10 represents a C1-C6 alkyl group, -R 11 represents a C1-C6 alkyl group, -k is an integer from 1 to 3, -m represents the integer 3-k] The organosilicon compounds represented by the formula (I) are also called alkyl C1-C6 alkoxysilane type silanes.

[0082] In another embodiment, a particularly preferred method of the present invention is characterized in that the first composition (A) comprises a compound of formula (S-IV): R9Si(OR 10 ) k (R 11 ) m (S-IV) [In the formula, -R9 is C1-C 12 represents an alkyl group, -R 10 represents a C1-C6 alkyl group, -R11 represents a C1-C6 alkyl group, -k is an integer from 1 to 3, -m represents the integer 3-k] The compound is characterized in that it comprises one or more organic C1-C6 alkoxysilanes (A1) represented by the following formula:

[0083] In the organic C1-C6 alkoxysilane represented by formula (S-IV), the group R9 is C1-C 12 This C1-C alkyl group 12 The alkyl group is saturated and may be linear or branched. Preferably, R9 represents a linear C1-C8 alkyl group. Preferably, R9 represents a methyl group, an ethyl group, an n-propyl group, an n-butyl group, an n-pentyl group, an n-hexyl group, an n-octyl group, or an n-dodecyl group. Particularly preferably, R9 represents a methyl group, an ethyl group, or an n-octyl group.

[0084] In the organosilicon compound represented by formula (S-IV), the group R 10 represents a C1-C6 alkyl group. Particularly preferably, R 10 represents a methyl group or an ethyl group.

[0085] In the organosilicon compound represented by formula (S-IV), the group R 11 represents a C1-C6 alkyl group. Particularly preferably, R 11 represents a methyl group or an ethyl group.

[0086] Furthermore, k represents an integer from 1 to 3, and m represents the integer 3-k. When k represents the number 3, m is equal to 0. When k represents the number 2, m is equal to 1. When k represents the number 1, m is equal to 2.

[0087] Dyeings with the best washing fastness properties were obtained when the composition (A) comprised at least one organic C1-C6 alkoxysilane (A1) of formula (S-IV) in which k is the number 3, and m is the number 0.

[0088] Organosilicon compounds of formula (S-IV) that are particularly suitable for solving the problems of the present invention are -Methyltrimethoxysilane TIFF0007739268000025.tif3430-Methyltriethoxysilane TIFF0007739268000026.tif4139-Ethyltrimethoxysilane TIFF0007739268000027.tif3439-Ethyltriethoxysilane TIFF0007739268000028.tif4147-n-Propyltrimethoxysilane (also known as propyltrimethoxysilane) TIFF0007739268000029.tif3043-n-Propyltriethoxysilane (also known as propyltriethoxysilane) TIFF0007739268000030.tif3649-n-Hexyltrimethoxysilane (also known as hexyltrimethoxysilane) TIFF0007739268000031.tif3475-n-Hexyltriethoxysilane (also known as hexyltriethoxysilane) TIFF0007739268000032.tif4184-n-Octyltrimethoxysilane (also known as octyltrimethoxysilane) TIFF0007739268000033.tif3494-n-Octyltriethoxysilane (also known as Octyltriethoxysilane) TIFF0007739268000034.tif41102-n-Dodecyltrimethoxysilane (also known as dodecyltrimethoxysilane) TIFF0007739268000035.tif34130-n-Dodecyltriethoxysilane (also known as dodecyltriethoxysilane) TIFF0007739268000036.tif43140-n-Octadecyltrimethoxysilane (also known as dodecyltrimethoxysilane) and / or -n-octadecyltriethoxysilane (also known as octadecyltriethoxysilane).

[0089] In another preferred embodiment, the method of the present invention comprises the step of: -Methyltrimethoxysilane -Methyltriethoxysilane -Ethyltrimethoxysilane -Ethyltriethoxysilane -Propyltrimethoxysilane -Propyltriethoxysilane -Hexyltrimethoxysilane -Hexyltriethoxysilane -Octyltrimethoxysilane -Octyltriethoxysilane -Dodecyltrimethoxysilane -Dodecyltriethoxysilane -Octadecyltrimethoxysilane -Octadecyltriethoxysilane -A mixture of them and characterized in that it comprises at least one organic C1-C6 alkoxysilane (A1) represented by formula (S-IV) and / or a condensate thereof.

[0090] Corresponding hydrolysates or condensates are, for example, the following compounds: Hydrolysis of C1-C6 alkoxysilanes of formula (SI) with water (reaction scheme using 3-aminopropyltriethoxysilane as an example): TIFF0007739268000037.tif15110

[0091] Depending on the amount of water used, several hydrolysis reactions may occur per C1-C6 alkoxysilane used. TIFF0007739268000038.tif15114 or TIFF0007739268000039.tif15114

[0092] Hydrolysis of C1-C6 alkoxysilanes represented by formula (S-IV) with water (reaction scheme using methyltrimethoxysilane as an example): TIFF0007739268000040.tif1585

[0093] Depending on the amount of water used, several hydrolysis reactions may occur per C1-C6 alkoxysilane used. TIFF0007739268000041.tif1488 or TIFF0007739268000042.tif1488

[0094] The condensation reaction (illustrated using a mixture of (3-aminopropyl)triethoxysilane and methyltrimethoxysilane) involves: TIFF0007739268000043.tif30143 and / or TIFF0007739268000044.tif30142 and / or TIFF0007739268000045.tif30143 and / or TIFF0007739268000046.tif30132 and / or TIFF0007739268000047.tif30130 and / or TIFF0007739268000048.tif30132 and / or TIFF0007739268000049.tif1595

[0095] In each of the above exemplary reaction schemes, condensation to a dimer is shown, however, further condensation to an oligomer having multiple silicon atoms is also possible and preferred.

[0096] Both partially hydrolyzed C1-C6 alkoxysilanes and fully hydrolyzed C1-C6 alkoxysilanes of formula (SI) can participate in this condensation reaction, condensing with an unreacted partially hydrolyzed C1-C6 alkoxysilane or fully hydrolyzed C1-C6 alkoxysilane of formula (SI). In this case, the C1-C6 alkoxysilane of formula (SI) reacts with itself.

[0097] In addition, both the partially hydrolyzed C1-C6 alkoxysilane and the fully hydrolyzed C1-C6 alkoxysilane represented by formula (SI) can participate in this condensation reaction and condense with the partially hydrolyzed C1-C6 alkoxysilane or the fully hydrolyzed C1-C6 alkoxysilane represented by formula (S-IV) that has not yet reacted. In this case, the C1-C6 alkoxysilane represented by formula (SI) reacts with the C1-C6 alkoxysilane represented by formula (S-IV).

[0098] Furthermore, both the partially hydrolyzed C1-C6 alkoxysilane and the fully hydrolyzed C1-C6 alkoxysilane represented by formula (S-IV) can participate in a condensation reaction and condense with the partially hydrolyzed C1-C6 alkoxysilane or the fully hydrolyzed C1-C6 alkoxysilane represented by formula (S-IV) that has not yet reacted. In this case, the C1-C6 alkoxysilane represented by formula (S-IV) reacts with itself.

[0099] The composition (A) according to the invention may contain one or more organic C1-C6 alkoxysilanes (A1) in various proportions, which will be determined by the skilled artisan depending on the desired thickness of the silane coating on the keratinous materials and the amount of keratinous materials to be treated.

[0100] When composition (A) contains one or more organic C1-C6 alkoxysilanes (A1) and / or condensates thereof in a total amount of 30.0 to 85.0% by weight, preferably 35.0 to 80.0% by weight, more preferably 40.0 to 75.0% by weight, even more preferably 45.0 to 70.0% by weight, and particularly preferably 50.0 to 65.0% by weight, based on the total weight of the composition, particularly storage-stable compositions are obtained which give very good dyeing results on application.

[0101] In another embodiment, a very particularly preferred method is characterized in that the first composition (A) comprises one or more organic C1-C6 alkoxysilanes (A2) and / or condensates thereof in a total amount of 30.0 to 85.0 wt.-%, preferably 35.0 to 80.0 wt.-%, more preferably 40.0 to 75.0 wt.-%, even more preferably 45.0 to 70.0 wt.-%, and most preferably 50.0 to 65.0 wt.-%, based on the total weight of composition (A).

[0102] Coloring compound (A2) in composition (A) As a second component essential to the present invention, composition (A) comprises at least one coloring compound (A2) selected from the group consisting of pigments and direct dyes.

[0103] In the present invention, the colored compounds are selected from pigments, direct dyes, which may be photochromic dyes and thermochromic dyes.

[0104] Highly preferably, composition (A) contains at least one pigment.

[0105] A pigment within the meaning of the present invention is a coloring compound having a solubility in water of less than 0.5 g / L, preferably less than 0.1 g / L, and more preferably less than 0.05 g / L at 25°C. Water solubility can be measured, for example, by the following method: 0.5 g of pigment is weighed into a beaker. A magnetic stirring bar is added. 1 L of distilled water is then added. The mixture is heated at 25°C for 1 hour while stirring on a magnetic stirrer. If undissolved pigment components are visible in the mixture after this time, the solubility of the pigment is less than 0.5 g / L. If the pigment-water mixture cannot be visually evaluated, perhaps due to the high strength of the finely dispersed pigment, the mixture is filtered. If undissolved pigment remains on the filter paper, the solubility of the pigment is less than 0.5 g / L.

[0106] Suitable color pigments may be of inorganic and / or organic origin.

[0107] In a preferred embodiment, the composition of the invention is characterized in that it comprises at least one coloring compound selected from the group consisting of inorganic and / or organic pigments.

[0108] Preferred color pigments are selected from synthetic or natural inorganic pigments. Naturally occurring inorganic color pigments can be prepared, for example, from chalk, ochre, umber, green earth, calcined sienna, or graphite. Also usable as inorganic color pigments are black pigments such as black iron oxide, color pigments such as ultramarine or red iron oxide, and fluorescent or phosphorescent pigments.

[0109] Particularly suitable are colored metal oxides, metal hydroxides and metal oxide hydrates, mixed-phase pigments, sulfur-containing silicates, silicates, metal sulfides, complex metal cyanides, metal sulfates, chromates and / or molybdates. Particularly preferred colored pigments are black iron oxide (CI 77499), yellow iron oxide (CI 77492), red and brown iron oxide (CI 77491), manganese violet (CI 77742), ultramarine (sodium aluminum sulfosilicate, CI 77007, pigment blue 29), chromium oxide hydrate (CI 77289), Prussian blue (iron ferrocyanide, CI 77510) and / or carmine (cochineal).

[0110] Colored pearlescent pigments are also particularly preferred colorants from the pigment group of the present invention. They are usually mica and / or mica-based, and may be coated with one or more metal oxides. Mica belongs to the layered silicates. The most important representatives of these silicates are muscovite, phlogopite, sodalite, biotite, lepidolite, and margarite. To prepare pearlescent pigments combined with metal oxides, mica, muscovite, or phlogopite are coated with metal oxides.

[0111] As an alternative to natural mica, synthetic mica coated with one or more metal oxides can also be used as pearlescent pigments. Particularly preferred pearlescent pigments are based on natural or synthetic mica and coated with one or more of the above-mentioned metal oxides. By varying the thickness of the metal oxide layer, the color of the respective pigment can be changed.

[0112] A preferred mica-based pigment is a synthetic mica platelet based on synthetic fluorphlogopite (INCI) and coated with a metal oxide. The synthetic fluorphlogopite platelet is coated with, for example, tin oxide, iron oxide, and / or titanium dioxide. The metal oxide layer may further contain a pigment such as iron hexacyanoferrate (II / III) or carmine red. Such mica pigments are available, for example, from Eckart under the name SYNCRYSTAL.

[0113] In a very particularly preferred embodiment, the method according to the invention is characterized in that the first composition (A) comprises at least one organic pigment (A2), preferably selected from the group consisting of colored metal oxides, metal hydroxides, metal oxide hydrates, silicates, metal sulfides, complex metal cyanides, metal sulfates, bronze pigments, and / or from colored mica or mica-based pigments coated with at least one metal oxide and / or metal oxychloride.

[0114] In another preferred embodiment, the composition (A) according to the invention is characterized in that it comprises at least one coloring compound (A2) from the group consisting of colored metal oxides, metal hydroxides, metal oxide hydrates, silicates, metal sulfides, complex metal cyanides, metal sulfates, bronze pigments, and / or from the group of pigments selected from mica or mica-based coloring compounds coated with at least one metal oxide and / or metal oxychloride.

[0115] In another preferred embodiment, the composition (A) according to the invention is characterized in that it comprises at least one coloring compound (A2) chosen from mica or mica-based pigments reacted with one or more metal oxides selected from the group consisting of titanium dioxide (CI 77891), black iron oxide (CI 77499), yellow iron oxide (CI 77492), red and / or brown iron oxides (CI 77491, CI 77499), manganese violet (CI 77742), ultramarine (sodium aluminum sulfosilicate, CI 77007, Pigment Blue 29), chromium oxide hydrate (CI 77289), chromium oxide (CI 77288) and / or Prussian blue (iron ferrocyanide, CI 77510).

[0116] Examples of particularly suitable color pigments are commercially available from Merck under the trade names Rona®, Colorona®, Xirona®, Dichrona® and Timiron®, from Sensient under the trade names Ariabel® and Unipure®, from Eckart Cosmetic Colors under the trade name Prestige® and from Sunstar under the trade name Sunshine®.

[0117] Particularly preferred color pigments under the trade name Colorona® are, for example: Colorona Copper, Merck, Mica, CI 77491 (Iron Oxide) Colorona Passion Orange, Merck, Mica, CI 77491 (Iron Oxide), Alumina Colorona Patina Silver, Merck, Mica, CI 77499 (Iron Oxides), CI 77891 (Titanium Dioxide) Colorona RY, Merck, CI 77891 (Titanium Dioxide), Mica, CI 75470 (Carmine) Colorona Oriental Beige, Merck, Mica, CI 77891 (Titanium Dioxide), CI 77491 (Iron Oxides) Colorona Dark Blue, Merck, Mica, Titanium Dioxide, Ferric Ferrocyanide Colorona Chameleon, Merck, CI 77491 (iron oxide), mica Colorona Aborigine Amber, Merck, Mica, CI 77499 (Iron Oxides), CI 77891 (Titanium Dioxide) Colorona Blackstar Blue, Merck, CI 77499 (iron oxide), mica Colorona Patagonian Purple, Merck, Mica, CI 77491 (Iron Oxides), CI 77891 (Titanium Dioxide), CI 77510 (Ferric Ferrocyanide) Colorona Red Brown, Merck, Mica, CI 77491 (Iron Oxides), CI 77891 (Titanium Dioxide) Colorona Russet, Merck, CI 77491 (Titanium Dioxide), Mica, CI 77891 (Iron Oxides) Colorona Imperial Red, Merck, Mica, Titanium Dioxide (CI 77891), D&C Red No. 30 (CI 73360) Colorona Majestic Green, Merck, CI 77891 (Titanium Dioxide), Mica, CI 77288 (Chromium Oxide Green) Colorona Light Blue, Merck, Mica, Titanium Dioxide (CI 77891), Ferric Ferrocyanide (CI 77510) Colorona Red Gold, Merck, Mica, CI 77891 (Titanium Dioxide), CI 77491 (Iron Oxides) Colorona Gold Plus MP 25, Merck, Mica, Titanium Dioxide (CI 77891), Iron Oxide (CI 77491) Colorona Carmine Red, Merck, mica, titanium dioxide, carmine Colorona Blackstar Green, Merck, Mica, CI 77499 (Iron Oxides) Colorona Bordeaux, Merck, Mica, CI 77491 (Iron Oxides) Colorona Bronze, Merck, Mica, CI 77491 (Iron Oxides) Colorona Bronze Fine, Merck, Mica, CI 77491 (Iron Oxides) Colorona Fine Gold MP 20, Merck, Mica, CI 77891 (Titanium Dioxide), CI 77491 (Iron Oxides) Colorona Sienna Fine, Merck, CI 77491 (iron oxide), mica Colorona Sienna, Merck, Mica, CI 77491 (Iron Oxide) Colorona Precious Gold, Merck, Mica, CI 77891 (Titanium Dioxide), Silica, CI 77491 (Iron Oxides), Tin Oxide Colorona Sun Gold Sparkle MP 29, Merck, Mica, Titanium Dioxide, Iron Oxides, Mica, CI 77891, CI 77491 (EU) Colorona Mica Black, Merck, CI 77499 (Iron Oxides), Mica, CI 77891 (Titanium Dioxide) Colorona Bright Gold, Merck, Mica, CI 77891 (Titanium Dioxide), CI 77491 (Iron Oxides) Colorona Blackstar Gold, Merck, Mica, CI 77499 (Iron Oxides) Colorona SynCopper, Merck, Synthetic Fluorphlogopite and Iron Oxide Colorona SynBronze, Merck, Synthetic Fluorphlogopite and Iron Oxide

[0118] Other particularly preferred color pigments under the trade name Xirona® are, for example: Xirona Golden Sky, Merck, Silica, CI 77891 (Titanium Dioxide), Tin Oxide Xirona Caribbean Blue, Merck, Mica, CI 77891 (Titanium Dioxide), Silica, Tin Oxide Xirona Kiwi Rose, Merck, Silica, CI 77891 (Titanium Dioxide), Tin Oxide Xirona Magic Mauve, Merck, Silica, CI 77891 (Titanium Dioxide), Tin Oxide Xirona Le Rouge, Merck, iron oxide and silica

[0119] Furthermore, particularly preferred color pigments under the trade name Unipure (registered trademark) are, for example: Unipure Red LC 381 EM, Sensitive CI 77491 (iron oxide), silica Unipure Black LC 989 EM, Sensient, CI 77499 (Iron Oxides), Silica Unipure Yellow LC 182 EM, Sensient, CI 77492 (Iron Oxide), Silica

[0120] Particularly preferred pigments under the trade name Flamenco (registered trademark) are, for example: Flamenco® Summit Turquoise T30D, BASF, titanium dioxide and mica Flamenco® Super Violet 530Z, BASF, mica and titanium dioxide

[0121] In another embodiment, composition (A) may also contain one or more coloring compounds selected from the group consisting of organic pigments.

[0122] Organic pigments in the context of the present invention are correspondingly insoluble organic dyes or color lacquers, which may be selected, for example, from the group consisting of nitroso, nitro-azo, xanthene, anthraquinone, isoindolinone, isoindoline, quinacridone, perinone, perylene, diketopyrrolopyrrole, indigo, thioindigo, dioxazine and / or triarylmethane compounds.

[0123] Examples of particularly suitable organic pigments are carmine, quinacridone, phthalocyanine, sorghum, blue pigments with a color index of CI 42090, CI 69800, CI 69825, CI 73000, CI 74100, CI 74160, yellow pigments with a color index of CI 11680, CI 11710, CI 15985, CI 19140, CI 20040, CI 21100, CI 21108, CI 47000, CI 47005, green pigments with a color index of CI 61565, CI 61570, CI 74260, orange pigments with a color index of CI 11725, CI 15510, CI 45370, CI 71105, and orange pigments with a color index of CI 12085, CI 12120, CI 13000, CI 14000, CI 15000, CI 16000, CI 17000, CI 18000, CI 19140, CI 20040, CI 21100, CI 21108, CI 4 ...9140, CI 20040, CI 21100, CI 21108, CI 47000, CI 19140, CI 20040, CI 21100, 12370, CI 12420, CI 12490, CI 14700, CI 15525, CI 15580, CI 15620, CI 15630, CI 15800, CI 15850, CI 15865, CI 15880, CI 17200, CI 26100, CI 45380, CI 45410, CI 58000, CI 73360, CI 73915 and / or CI 75470 red pigments.

[0124] In another particularly preferred embodiment, the method of the present invention further comprises the step of: providing the first composition (A) with a composition selected from the group consisting of carmine, quinacridone, phthalocyanine, sorghum, blue pigments with a Color Index of CI 42090, CI 69800, CI 69825, CI 73000, CI 74100, CI 74160, yellow pigments with a Color Index of CI 11680, CI 11710, CI 15985, CI 19140, CI 20040, CI 21100, CI 21108, CI 47000, CI 47005, green pigments with a Color Index of CI 61565, CI 61570, CI 74260, orange pigments with a Color Index of CI 11725, CI 15510, CI 45370, CI 71105, and / or quinacridones with a Color Index of CI 15510, CI 45370, CI 71105. 12085, CI 12120, CI 12370, CI 12420, CI 12490, CI 14700, CI 15525, CI 15580, CI 15620, CI 15630, CI 15800, CI 15850, CI 15865, CI 15880, CI 17200, CI 26100, CI 45380, CI 45410, CI 58000, CI 73360, CI 73915, CI 75470.

[0125] The organic pigment may be a color paint. In the sense of the present invention, the term "color lacquer" refers to particles comprising a layer of absorbed dye, and the particles and dye units are insoluble under the above conditions. The particles may be, for example, inorganic materials, such as aluminum, silica, calcium borosilicate, calcium aluminum borosilicate, or aluminum.

[0126] For example, alizarin color varnish can be used.

[0127] Due to their excellent resistance to light and temperature, it is particularly preferred to use pigments in the present invention. It is also preferred if the pigments used have a specific particle size. This particle size, on the one hand, ensures a uniform distribution of the pigment in the formed polymer film, and on the other hand, avoids a rough feel on the hair or skin after application of the cosmetic product. Therefore, in the present invention, at least one pigment has an average particle size D of 1.0 to 50 μm, preferably 5.0 to 45 μm, preferably 10 to 40 μm, and 14 to 30 μm. 50 It is advantageous if the average particle size D 50 can be measured, for example, using dynamic light scattering (DLS).

[0128] Pigments of specific shapes can also be used to color keratin materials. For example, pigments based on lamellar and / or lenticular substrate platelets can be used. Also possible are colorants based on vacuum-deposited pigment-containing substrate platelets.

[0129] In another particularly preferred embodiment, the method of the present invention comprises the step of: the first composition (A) comprising at least one colored pigment (A2) selected from the group consisting of layered substrate platelet-based pigments, lenticular substrate platelet-based pigments, and substrate platelet-based pigments, including vacuum-deposited pigments.

[0130] This type of substrate platelet has an average thickness of at most 50 nm, preferably less than 30 nm, particularly preferably at most 25 nm, for example at most 20 nm. The average thickness of the substrate platelet is at least 1 nm, preferably at least 2.5 nm, particularly preferably at least 5 nm, for example at least 10 nm. Preferred ranges for the thickness of the substrate wafer are 2.5 to 50 nm, 5 to 50 nm, 10 to 50 nm, 2.5 to 30 nm, 5 to 30 nm, 10 to 30 nm, 2.5 to 25 nm, 5 to 25 nm, 10 to 25 nm, 2.5 to 20 nm, 5 to 20 nm, and 10 to 20 nm. Preferably, each substrate plate has as uniform a thickness as possible.

[0131] Due to the low thickness of the substrate platelets, the pigments exhibit particularly high hiding power.

[0132] The substrate plate has a monolithic structure. In this specification, "monolithic" means that the substrate plate consists of a single closed unit without cracks, stratification, or inclusions, although structural variations may occur within the substrate platelet. The substrate platelet is preferably homogeneous in structure, i.e., there is no concentration gradient within the platelet. In particular, the substrate platelet does not have a layered structure and does not have particles or dispersed particles therein.

[0133] The dimensions of the substrate platelets can be adjusted depending on the respective application purpose, in particular the desired effect on keratinous materials. Typically, the substrate platelets have an average maximum diameter of about 2 to 200 μm, in particular about 5 to 100 μm.

[0134] In a preferred embodiment, the aspect ratio, which is the ratio of the average dimension to the average thickness, is at least 80, preferably at least 200, more preferably at least 500, and more preferably greater than 750. The average dimension of the uncoated substrate platelet is the d50 value of the uncoated substrate platelet. Unless otherwise stated, the d50 value is measured by quixel wet dispersion using a Sympatec Helos instrument. To prepare the sample, the sample to be analyzed is pre-dispersed in isopropanol for 3 minutes.

[0135] The substrate platelet can be made of any material that can be formed into a platelet shape.

[0136] The substrate platelet can be of natural origin, but can also be synthetically produced. Materials that can be used to form the substrate platelet include metals and metal alloys, metal oxides, preferably aluminum oxide, inorganic compounds, and minerals, such as mica and (semi)precious stones, and plastics. Preferably, the substrate platelet is made of metal (alloy).

[0137] Any metal suitable for metallic luster pigments can be used.Such metals include iron and steel, and any (semi)metal that is resistant to air and water, such as platinum, zinc, chromium, molybdenum, and silicon, and their alloys, such as aluminum bronze and brass.Preferred metals are aluminum, copper, silver, and gold.Preferred substrate platelets include aluminum platelets and brass platelets, and aluminum substrate platelets are particularly preferred.

[0138] The layered substrate platelets are characterized by irregularly configured edges, giving them the appearance also known as "corn flakes."

[0139] Due to their irregular structure, pigments based on layered substrate platelets produce a high percentage of scattered light. Furthermore, pigments based on layered substrate platelets do not completely cover the existing color of keratin materials, and can achieve, for example, an effect similar to natural graying.

[0140] Lenticular (lens-shaped) substrate platelets have regular rounded edges, giving them the appearance of a "dollar coin." Due to their regular structure, pigments based on lenticular substrate platelets are predominantly reflective.

[0141] Vacuum deposition pigments (VMP) are obtained, for example, by releasing metals, metal alloys, or metal oxides from a suitably coated film. Vacuum deposition pigments are characterized by a particularly low substrate platelet thickness in the range of 5-50 nm and a particularly smooth surface with increased reflectivity. Substrate platelets containing vacuum deposition pigments are also referred to as VMP substrate platelets in this application. Aluminum VMP substrate platelets are obtained, for example, by releasing aluminum from a metallized film.

[0142] The metal or metal alloy substrate plate may be passivated, for example, by anodizing (oxide layer) or chromate treatment.

[0143] Uncoated layered, lenticular and / or VPM substrate plates, especially those made of metals or metal alloys, are highly reflective of incident light, producing light-dark flop but no color appearance.

[0144] The color effect can be caused, for example, by optical interference effects. Such pigments can be based on at least a single coated substrate platelet, which exhibits interference effects due to the overlap of differently refracted and reflected light rays.

[0145] Therefore, a preferred pigment is a pigment based on a coated substrate platelet. The substrate wafer preferably has at least one coating B of a highly refractive metal oxide with a coating thickness of at least 50 nm. Preferably, another coating A is present between the coating B and the surface of the substrate wafer. Optionally, another coating C is present on layer B, which is different from the underlying layer B.

[0146] Suitable materials for coatings A, B, and C are all substances that can be applied to the substrate platelet in a long-term coating-like manner, and in the case of coatings A and B, have the required optical properties. The coated portion of the substrate platelet surface is sufficient to obtain a pigment with a gloss effect. For example, only the top and / or bottom of the substrate platelet can be coated, and the side surfaces can be omitted. Preferably, the entire surface of the substrate platelet, including the side surfaces, which may be passivated, is covered with coating B. Thus, the substrate platelet is completely covered with coating B. This improves the optical properties of the pigment and increases its mechanical and chemical resistance. The above also applies to layer A and, preferably, to layer C, if present.

[0147] Although several coatings A, B and / or C can be present in each case, the coated substrate wafer preferably has in each case exclusively one coating A, B and, if present, coating C.

[0148] Coating B is composed of at least one high refractive index metal oxide. The high refractive index material has a refractive index of at least 1.9, preferably at least 2.0, more preferably at least 2.4. Preferably, Coating B comprises at least 95% by weight, more preferably at least 99% by weight, of the high refractive index metal oxide.

[0149] Coating B has a thickness of at least 50 nm. Preferably, the thickness of Coating B is 400 nm or less, more preferably 300 nm or less.

[0150] Suitable high refractive index metal oxides for Coating B are preferably selectively light-absorbing (i.e. colored) metal oxides such as iron(III) oxide (α- and γ-FeO, red), cobalt(II) oxide (blue), chromium(III) oxide (green), titanium(III) oxide (blue, usually present in a mixture with titanium oxynitride and titanium nitride) and vanadium(V) oxide (orange), as well as mixtures thereof. Colorless high refractive index oxides such as titanium dioxide and / or zirconium oxide are also suitable.

[0151] Coating B may preferably contain 0.001 to 5% by weight, particularly preferably 0.01 to 1% by weight, of selectively absorbing dyes, in each case based on the total amount of coating B. Suitable dyes are organic and inorganic dyes that can be stably incorporated into metal oxide coatings.

[0152] Coating A preferably comprises at least one low refractive index metal oxide and / or metal oxide hydrate. Preferably, Coating A comprises at least 95% by weight, more preferably at least 99% by weight, of low refractive index metal oxide (hydrate). The low refractive index material has a refractive index of 1.8 or less, preferably 1.6 or less.

[0153] Suitable low refractive index metal oxides for Coating A include, for example, silicon dioxide, silicon oxide hydrate, aluminum oxide, aluminum oxide hydrate, boron oxide, germanium oxide, manganese oxide, magnesium oxide, and mixtures thereof, with silicon dioxide being preferred. Coating A preferably has a thickness of 1 to 100 nm, particularly preferably 5 to 50 nm, and particularly preferably 5 to 20 nm.

[0154] Preferably, the distance between the surface of the substrate platelet and the inner surface of Coating B is at most 100 nm, particularly preferably at most 50 nm, and especially preferably at most 20 nm. By ensuring that the thickness of Coating A, and thus the distance between the surface of the substrate platelet and Coating B, is within the above-specified range, it is possible to ensure that the pigment has high hiding power.

[0155] When the substrate platelet-based pigment has only one layer A, it is preferred that the pigment has an aluminum substrate platelet and a silica layer A. When the substrate platelet-based pigment has layers A and B, it is preferred that the pigment has an aluminum substrate platelet, a silica layer A, and an iron oxide layer B.

[0156] Alternatively, for metal oxides, layer B may comprise a metal particle carrier layer having metal particles attached to its surface. In a preferred embodiment, the metal particles directly cover part of the metal particle carrier layer. In this embodiment, the effect pigment has areas where no metal particles are present, i.e., areas not covered by metal particles.

[0157] The metal particle carrier layer comprises a metal layer and / or a metal oxide layer.

[0158] When the metal particle carrier layer comprises a metal layer and a metal oxide layer, the arrangement of these layers is not particularly limited.

[0159] The metal particle support layer preferably comprises at least a metal layer, and more preferably the metal layer comprises an element selected from tin (Sn), palladium (Pd), platinum (Pt), and gold (Au).

[0160] The metal layer can be formed, for example, by adding an alkali to a metal salt solution containing the metal.

[0161] When the metal particle carrier layer comprises a metal oxide layer, it preferably does not contain silicon dioxide. The metal oxide layer preferably contains an oxide of at least one element selected from the group consisting of Mg (magnesium), Sn (tin), Zn (zinc), Co (cobalt), Ni (nickel), Fe (iron), Zr (zirconium), Ti (titanium) and Ce (cerium). Particularly preferably, the metal particle support layer iii) in the form of a metal oxide layer contains metal oxides of Sn, Zn, Ti and Ce.

[0162] A metal particle support layer in the form of a metal oxide layer can be produced, for example, by hydrolyzing an alkoxide of the metal that forms the metal of the metal oxide in a sol-gel process.

[0163] The thickness of the metal layer is preferably 30 nm or less.

[0164] The metal particles may comprise at least one element selected from the group consisting of aluminum (Al), titanium (Ti), chromium (Cr), iron (Fe), cobalt (Co), nickel (Ni), copper (Cu), zinc (Zn), ruthenium (Ru), rhodium (Rh), palladium (Pd), silver (Ag), tin (Sn), platinum (Pt), gold (Au), and alloys thereof. It is particularly preferred that the metal particles comprise at least one element selected from copper (Cu), nickel (Ni), and silver (Ag).

[0165] The average particle size of the metal particles is preferably 50 nm or less, more preferably 30 nm or less, and the distance between the metal particles is preferably 10 nm or less.

[0166] Suitable methods for forming metal particles include vacuum deposition, sputtering, chemical vapor deposition (CVD), electroless plating, etc. Among these methods, electroless plating is particularly preferred.

[0167] In a preferred embodiment, the pigment further comprises a coating C of a metal oxide (hydrate) different from the underlying coating B. Suitable metal oxides include silicon (dioxide), silicon oxide hydrate, aluminum oxide, aluminum oxide hydrate, zinc oxide, tin oxide, titanium dioxide, zirconium oxide, iron (III) oxide, chromium (III) oxide. Silicon dioxide is preferred.

[0168] Coating C preferably has a thickness of 10 to 500 nm, more preferably 50 to 300 nm. By providing coating C, which is, for example, TiO2-based, it is possible to achieve better interference while maintaining high hiding power.

[0169] Layers A and C serve to protect against corrosion and for chemical and physical stabilization. Particularly preferably, layers A and C are silica or alumina applied by a sol-gel method. This method involves dispersing an uncoated substrate wafer or a substrate wafer already coated with layers A and / or B in a solution of a metal alkoxide, such as tetraethyl orthosilicate or aluminum triisopropanolate (usually a solution in an organic solvent or a mixture of an organic solvent and water, containing at least 50% by weight of an organic solvent, such as a C1-C4 alcohol), and adding a weak base or acid to hydrolyze the metal alkoxide, thereby forming a metal oxide film on the surface of the (coated) substrate platelet.

[0170] Layer B can be produced, for example, by hydrolysis of one or more organometallic compounds and / or by precipitation of one or more dissolved metal salts, followed by subsequent post-treatment (e.g., annealing the formed hydroxide-containing layer to convert it into an oxide layer).

[0171] Each of coatings A, B and / or C may be composed of a mixture of two or more metal oxides (hydrates), however each of the coatings is preferably composed of one metal oxide (hydrate).

[0172] Pigments based on coated lamellar or lenticular substrate platelets or coated VMP substrate platelets preferably have a thickness of 70 to 500 nm, particularly preferably 100 to 400 nm, and particularly preferably 150 to 320 nm, for example 180 to 290 nm. Due to the low thickness of the substrate platelets, the pigments exhibit particularly high hiding power. A low thickness of the coated substrate platelets is achieved by keeping the thickness of the uncoated substrate platelet small and by adjusting the thickness of Coating A and, if present, Coating C, to as small a value as possible. The thickness of Coating B determines the color appearance of the pigment.

[0173] The adhesion and abrasion resistance of the coated substrate platelet-based pigment in keratin materials can be significantly improved by additionally modifying the outermost layer (A, B, or C layer, depending on the structure) with an organic compound such as silane, phosphate ester, titanate, borate, or carboxylic acid. In this case, the organic compound is bonded to the surface of the outermost, preferably metal oxide-containing, layer A, layer B, or layer C. The outermost layer refers to the layer spatially furthest from the substrate platelet. The organic compound is preferably a functional silane compound capable of bonding to the metal oxide-containing layer A, B, or C. These may be monofunctional or bifunctional compounds. Examples of bifunctional organic compounds include methacryloxypropenyltrimethoxysilane, 3-methacryloxypropyltrimethoxysilane, 3-acryloxypropyltrimethoxysilane, 2-acryloxyethyltrimethoxysilane, 3-methacryloxypropyltriethoxysilane, 3-acryloxypropyltrimethoxysilane, 2-methacryloxyethyltriethoxysilane, 2-acryloxyethyltriethoxysilane, 3-methacryloxypropyltris(methoxyethoxy)silane, 3-methacryloxypropyltris(butoxyethoxy)silane, 3-methacryloxypropyltris( Examples of suitable silanes include 3-propoxysilane, 3-methacryloxypropyltris(butoxy)silane, 3-acryloxypropyltris(methoxyethoxy)silane, 3-acryloxypropyltris(butoxyethoxy)silane, 3-acryloxypropyltris(butoxy)silane, vinyltrimethoxysilane, vinyltriethoxysilane, vinylethyldichlorosilane, vinylmethyldiacetoxysilane, vinylmethyldichlorosilane, vinylmethyldiethoxysilane, vinyltriacetoxysilane, vinyltrichlorosilane, phenylvinyldiethoxysilane, and phenylallyldichlorosilane. Modification with monofunctional silanes, alkylsilanes, or arylsilanes is also possible. These silanes have only one functional group, which can be covalently bonded to the surface of the coated substrate platelet-based pigment (i.e., to the outermost metal oxide-containing layer) or to the metal surface if the pigment is not completely coated. The hydrocarbon group of the silane is detached from the pigment.Depending on the type and nature of the hydrocarbon group in the silane, the degree of hydrophobicity of the pigment can be varied. Examples of such silanes include hexadecyltrimethoxysilane and propyltrimethoxysilane. Particularly preferred are pigments based on silica-coated aluminum substrate platelets that have been surface-modified with monofunctional silanes. Octyltrimethoxysilane, octyltriethoxysilane, hecadecyltrimethoxysilane, and hecadecyltriethoxysilane are particularly preferred. Due to the altered surface properties / hydrophobicity, improved adhesion, abrasion resistance, and orientation can be achieved in applications.

[0174] Suitable substrate platelet-based pigments include, for example, Eckart's VISIONAIRE series of pigments.

[0175] Pigments based on lenticular substrate platelets are available, for example, under the name Alegrace® Gorgeous from Schlenk Metallic Pigments GmbH.

[0176] Pigments based on substrate platelets comprising vacuum-deposited pigments are available, for example, from Schlenk Metallic Pigments GmbH under the name Alegrace® Marvelous or Alegrace® Aurous.

[0177] In another embodiment, the method of the present invention is characterized in that composition (A) contains one or more pigments in a total amount of 0.001 to 20% by weight, 0.05 to 5% by weight, based on the total weight of composition (A).

[0178] As a coloring compound, the composition of the present invention may contain one or more direct dyes. Direct-acting dyes are dyes that act directly on hair and do not require an oxidation step to form color. Direct dyes are usually nitrophenylenediamines, nitroaminophenols, azo dyes, anthraquinones, triarylmethane dyes, or indophenols.

[0179] Direct dyes within the meaning of the present invention have a solubility in water (760 mmHg) at 25°C of greater than 0.5 g / L and are therefore not considered pigments. Preferably, direct dyes within the meaning of the present invention have a solubility in water (760 mmHg) at 25°C of greater than 1.0 g / L. In particular, direct dyes within the meaning of the present invention have a solubility in water (760 mmHg) at 25°C of greater than 1.5 g / L.

[0180] Direct dyes can be classified into anionic direct dyes, cationic direct dyes and non-ionic direct dyes.

[0181] In another preferred embodiment, the agent according to the invention is characterized in that it contains at least one anionic direct dye, cationic direct dye and / or non-ionic direct dye as coloring compound.

[0182] In another preferred embodiment, the method according to the invention is characterized in that composition (B) and / or composition (C) comprise at least one coloring compound selected from the group consisting of anionic direct dyes, nonionic direct dyes and / or cationic direct dyes.

[0183] Suitable cationic direct dyes include Basic Blue 7, Basic Blue 26, Basic Violet 2, Basic Violet 14, Basic Yellow 57, Basic Red 76, Basic Blue 16, Basic Blue 347 (Cationic Blue 347 / Dystar), HC Blue No. 16, Basic Blue 99, Basic Brown 16, Basic Brown 17, Basic Yellow 57, Basic Yellow 87, Basic Orange 31, Basic Red 51, and Basic Red 76.

[0184] As non-ionic direct dyes, non-ionic nitro and quinone dyes and natural azo dyes can be used. Suitable non-ionic direct dyes are those described under the following international names or trade names: HC Yellow 2, HC Yellow 4, HC Yellow 5, HC Yellow 6, HC Yellow 12, HC Orange 1, Disperse Orange 3, HC Red 1, HC Red 3, HC Red 10, HC Red 11, HC Red 13, HC Red BN, HC Blue 2, HC Blue 11, HC Blue 12, Disperse Blue 3, HC Violet 1, Disperse Violet 1, Disperse Violet 4, Disperse Black. 9 known compounds, as well as 1,4-diamino-2-nitrobenzene, 2-amino-4-nitrophenol, 1,4-bis-(2-hydroxyethyl)-amino-2-nitrobenzene, 3-nitro-4-(2-hydroxyethyl)-aminophenol, 2-(2-hydroxyethyl)amino-4,6-dinitrophenol, 4-[(2-hydroxyethyl)amino]-3-nitro-1-methylbenzene, 1-amino-4-(2-hydroxyethyl)-amino-5-chloro-2 -nitrobenzene, 4-amino-3-nitrophenol, 1-(2'-ureidoethyl)amino-4-nitrobenzene, 2-[(4-amino-2-nitrophenyl)amino]benzoic acid, 6-nitro-1,2,3,4-tetrahydroquinoxaline, 2-hydroxy-1,4-naphthoquinone, picramic acid and its salts, 2-amino-6-chloro-4-nitrophenol, 4-ethylamino-3-nitrobenzoic acid and 2-chloro-6-ethylamino-4-nitrophenol.

[0185] Anionic direct dyes are also called acid dyes. Acid dyes are direct dyes that have at least one carboxylic acid group (-COOH) and / or at least one sulfonic acid group (-SO3H). Depending on the pH value, the protonated forms of the carboxylic acid or sulfonic acid groups (-COOH, -SO3H) can be converted to their deprotonated forms (-COO - , -SO3 -The proportion of the protonated form increases with decreasing pH. When direct dyes are used as their salts, the carboxylic acid or sulfonic acid groups are present in deprotonated form and are neutralized with the corresponding stoichiometrically equivalent cation to maintain electrical neutrality. The acid dyes of the present invention can also be used in the form of their sodium salts and / or potassium salts.

[0186] Acid dyes within the meaning of the present invention have a solubility in water (760 mmHg) at 25°C of greater than 0.5 g / L and are therefore not considered pigments. Preferably, acid dyes within the meaning of the present invention have a solubility in water (760 mmHg) at 25°C of greater than 1.0 g / L.

[0187] Alkaline earth salts (e.g., calcium and magnesium salts) or aluminum salts of acid dyes often have lower solubilities than the corresponding alkali salts. If the solubility of these salts is less than 0.5 g / L (25°C, 760 mmHg), they are not included in the definition of direct dyes.

[0188] An essential feature of acid dyes is their ability to form an anionic charge, the resulting carboxylic or sulfonic acid group usually being attached to a variety of chromophore systems, such as those found in the structures of nitrophenylenediamines, nitroaminophenols, azo dyes, anthraquinone dyes, triarylmethane dyes, xanthan dyes, rhodamine dyes, oxazine dyes and / or indophenol dyes.

[0189] For example, one or more compounds from the following groups may be selected as particularly suitable acid dyes: Acid Yellow 1 (D&C Yellow 7, Citronin A, Ext. D&C Yellow No. 7, Japan Yellow 403, CI 10316, COLIPA no. B001), Acid Yellow 3 (COLIPA no. 54, D&C Yellow No. 10, Quinoline Yellow, E104, Food Yellow 13), Acid Yellow 9 (CI 13015), Acid Yellow 17 (CI 18965), Acid Yellow 23 (COLIPA no. 29, Covacap Jaune W 1100 (LCW), Sicovit Tartrazine 85 E 102 (BASF), Tartrazine, Food Yellow 4, Japan Yellow 4, FD&C Yellow No. 5), Acid Yellow 36 (CI 13065), Acid Yellow 121 (CI 18690), Acid Orange 6 (CI 14270), Acid Orange 7 (2-Naphthol orange, Orange II, CI 15510, D&C Orange 4, COLIPA no. 015), Acid Orange 10 (CI 16230; Orange G sodium salt), Acid Orange 11 (CI 45370), Acid Orange 15 (CI 50120), Acid Orange 20 (CI 14600), Acid Orange 24 (BROWN 1; CI 20170; KATSU 201; sodium salt-free; Brown No. 201; RESORCIN BROWN; ACID ORANGE 24; Japan Brown 201; D&C Brown No. 1), Acid Red 14 (CI 14720), Acid Red 18 (E124, Red 18; CI 16255), Acid Red 27(E 123, CI 16185, C-Rot 46, Real red D, FD&C Red Nr.2、Food Red 9、Naphthol red S)、Acid Red 33(Red 33、Fuchsia Red、D&C Red 33、CI 17200)、Acid Red 35(CI C.I.18065)、Acid Red 51(CI 45430、Pyrosin B、Tetraiodfluorescein、Eosin J、Iodeosin)、Acid Red 52(CI 45100、Food Red 106、Solar Rhodamine B、Acid Rhodamine B、Red n°106 Pontacyl Brilliant Pink)、Acid Red 73(CI 27290)、Acid Red 87(Eosin、CI 45380)、Acid Red 92(COLIPA n℃53、CI 45410)、Acid Red 95(CI 45425、Erythtosine,Simacid Erythrosine Y)、Acid Red 184(CI 15685)、Acid Red 195、Acid Violet 43(Jarocol Violet 43、Ext. D&C Violet n°2、C.I. 60730、COLIPA n°063)、Acid Violet 49(CI 42640)、Acid Violet 50(CI 50325)、Acid Blue 1(Patent Blue、CI 42045)、Acid Blue 3(Patent Blue V、CI 42051)、Acid Blue 7(CI 42080)、Acid Blue 104(CI 42735)、Acid Blue 9(E 133、Patent blue AE、Amido blue AE、Erioglaucin A、CI 42090、C.I. Food Blue 2)、Acid Blue 62(CI 62045)、Acid Blue 74(E 132、CI 73015)、Acid Blue 80(CI 61585)、Acid Green 3(CI 42085、Foodgreen1)、Acid Green 5(CI 42095)、Acid Green 9(C.I.42100)、Acid Green 22(C.I.42170), Acid Green 25 (CI 61570, Japan Green 201, D&C Green No. 5), Acid Green 50 (Brilliant Acid Green BS, CI 44090, Acid Brilliant Green BS, E 142), Acid Black 1 (Black n°401, Naphthalene Black 10B, Amido Black 10B, CI 20 470, COLIPA n°B15), Acid Black 52(CI 15711), Food Yellow 8(CI 14270), Food Blue 5, D&C Yellow 8, D&C Green 5, D&C Orange 10, D&C Orange 11, D&C Red 21, D&C Red 27, D&C Red 33, D&C Violet 2 and / or D&C Brown 1. .

[0190] For example, the water solubility of an anionic direct dye can be measured as follows: 0.1 g of the anionic direct dye is introduced into a beaker. A magnetic stir bar is added. 100 mL of water is then added. The mixture is heated to 25°C while stirring on a magnetic stirrer. Stir for 60 minutes. The aqueous mixture is then visually evaluated. If undissolved residues are still present, increase the amount of water, for example, in 10 mL increments. Add water until the amount of dye used is completely dissolved. If the dye strength is too high to visually evaluate the dye-water mixture, filter the mixture. If undissolved dye remains on the filter paper, repeat the solubility test with more water. If 0.1 g of anionic direct dye dissolves in 100 mL of water at 25°C, the solubility of the dye is 1.0 g / L.

[0191] Acid Yellow 1 is referred to as 8-hydroxy-5,7-dinitro-2-naphthalenesulfonic acid disodium salt and has a solubility in water (25° C.) of at least 40 g / L. Acid Yellow 3 is a mixture of the mono- and disulfonic acid sodium salts of 2-(2-quinolyl)-1H-indene-1,3(2H)-dione and has a solubility in water (25° C.) of 20 g / L. Acid Yellow 9 is the disodium salt of 8-hydroxy-5,7-dinitro-2-naphthalenesulfonic acid, and its solubility in water is greater than 40 g / L (25°C). Acid Yellow 23 is the trisodium salt of 4,5-dihydro-5-oxo-1-(4-sulfophenyl)-4-((4-sulfophenyl)azo)-1H-pyrazole-3-carboxylic acid and is highly soluble in water at 25°C. Acid Orange 7 is the sodium salt of 4-[(2-hydroxy-1-naphthyl)azo]benzenesulfonate. Its solubility in water is greater than 7 g / L at 25 °C. Acid Red 18 is the trisodium salt of 7-hydroxy-8-[(E)-(4-sulfonato-1-naphthyl)-diazenyl)]-1,3-naphthalenedisulfonate and has very high water solubility of greater than 20% by weight. Acid Red 33 is the disodium salt of 5-amino-4-hydroxy-3-(phenylazo)-naphthalene-2,7-disulfonate, and its solubility in water is 2.5 g / L (25° C.). Acid Red 92 is the disodium salt of 3,4,5,6-tetrachloro-2-(1,4,5,8-tetrabromo-6-hydroxy-3-oxoxanthen-9-yl)benzoic acid, and its solubility in water is greater than 10 g / L (25° C.). Acid Blue 9 is the disodium salt of 2-({4-[N-ethyl(3-sulfonatobenzyl]amino]phenyl}{4-[(N-ethyl(3-sulfonatobenzyl)imino]-2,5-cyclohexadien-1-ylidene}methyl)-benzenesulfonate and has a solubility in water of greater than 20% by weight (25°C).

[0192] Thermochromic dyes can also be used. Thermochromism involves the property of a material to change its color, reversibly or irreversibly, as a function of temperature. This can be achieved by changing both the intensity and / or wavelength maximum.

[0193] Finally, photochromic dyes can also be used. Photochromism refers to the property of a material to change its color, reversibly or irreversibly, in response to irradiation with light, especially UV light. This can be achieved by changing both the intensity and / or wavelength maximum.

[0194] In another embodiment, the method according to the present invention is characterized in that composition (A) contains one or more direct dyes in a total amount of 0.001 to 20% by weight, 0.05 to 5% by weight, based on the total weight of composition (A).

[0195] Other cosmetic ingredients in composition (A) In addition, composition (A) may contain one or more other cosmetic ingredients. The cosmetic ingredient that may be optionally used in composition (A) may be any ingredient suitable for imparting additional beneficial properties to the composition, such as solvents, thickeners or film-forming polymers; surface-active compounds from the group consisting of nonionic, cationic, anionic or zwitterionic / amphoterionic surface-active compounds; coloring compounds from the group consisting of pigments, direct dyes, and oxidation dye precursors; C8-C 30 Fatty components from the group consisting of fatty alcohols, hydrocarbon compounds, fatty acid esters; acids and bases belonging to the group of pH adjusters; flavorings, preservatives, plant extracts, and protein hydrolysates.

[0196] The selection of these other substances is carried out by those skilled in the art depending on the desired properties of the agent. For other optional ingredients and the amounts of these ingredients used, explicit reference is made to the relevant manuals known to those skilled in the art.

[0197] In this regard, it has been found to be particularly preferred to use in composition (A) cosmetic ingredients selected from the group consisting of hexamethyldisiloxane, octamethyltrisiloxane, decamethyltetrasiloxane, hexamethylcyclotrisiloxane, octamethylcyclotetrasiloxane and / or decamethylcyclopentasiloxane.

[0198] In another particularly preferred embodiment, the method according to the invention is characterized in that the first composition (A) comprises at least one cosmetic ingredient selected from the group consisting of hexamethyldisiloxane, octamethyltrisiloxane, decamethyltetrasiloxane, hexamethylcyclotrisiloxane, octamethylcyclotetrasiloxane and decamethylcyclopentasiloxane.

[0199] Hexamethyldisiloxane has the CAS number 107-46-0 and can be purchased commercially, for example, from Sigma-Aldrich. TIFF0007739268000050.tif2552

[0200] Octamethyltrisiloxane has the CAS number 107-51-7 and is commercially available from Sigma-Aldrich. TIFF0007739268000051.tif2571

[0201] Decamethyltetrasiloxane has the CAS number 141-62-8 and is commercially available from Sigma-Aldrich. TIFF0007739268000052.tif2590

[0202] Hexamethylcyclotrisiloxane has the CAS number 541-05-9. Octamethylcyclotetrasiloxane has the CAS number 556-67-2. Decamethylcyclopentasiloxane has the CAS number 541-02-6.

[0203] The use of hexamethyldisiloxane in composition (A) has been found to be particularly preferred. Particularly preferably, hexamethyldisiloxane is present in composition (A) in an amount of 1.0 to 20.0% by weight, preferably 1.3 to 10.0% by weight, more preferably 1.6 to 5.0% by weight, and even more preferably 2.0 to 4.0% by weight, based on the total weight of composition (A).

[0204] Water content (A1) in composition (A) The method according to the invention is characterized by the application of a first composition (A) to the keratinous materials. In the present specification, composition (A) means a ready-to-use composition, which in its embodiments can be applied to keratinous materials, to the hair.

[0205] In the method of the present invention, composition (A) can be provided in its existing form in a container. However, when a C1-C6 alkoxysilane is used, composition (A) contains highly reactive compounds. However, to avoid problems related to storage stability, it is particularly preferred to prepare a ready-to-use and reactive composition (A) immediately before use by mixing two or more storage-stable compositions. For example, a ready-to-use composition (A) can be prepared by mixing a low-water silane blend (AI) containing a high concentration of one or more organic C1-C6 alkoxysilanes (A1) with a high-water carrier composition (A-II), which can be, for example, a gel, lotion, or surfactant system.

[0206] Therefore, the ready-to-use composition (A) preferably has a higher water content, which may be in the range of 50.0 to 90.0 wt %, preferably 55.0 to 90.0 wt %, more preferably 60.0 to 90.0 wt %, and particularly preferably 70.0 to 90.0 wt %, based on the total weight of the composition (A).

[0207] In another embodiment, the method of the present invention is characterized in that the first composition (A) contains 50.0 to 90.0 wt %, preferably 55.0 to 90.0 wt %, more preferably 60.0 to 90.0 wt %, and particularly preferably 70.0 to 90.0 wt % of water based on the total weight of the composition (A).

[0208] pH value of composition (A) In other experiments, it was found that the pH value of composition (A) can influence the color strength obtained during dyeing. It was found that an alkaline pH value has a beneficial effect on the dyeing performance achievable in the process.

[0209] For this reason, it is preferred that composition (A) has a pH of 7.0 to 12.0, preferably 7.5 to 11.5, more preferably 8.0 to 11.0, and most preferably 8.0 to 10.5.

[0210] The pH value can be measured using conventional methods known in the art, such as using a glass electrode via a combination electrode or using pH test paper.

[0211] In another very particularly preferred embodiment, the method according to the invention is characterized in that composition (A) has a pH of 7.0 to 12.0, preferably 7.5 to 11.5, more preferably 8.0 to 11.0, most preferably 8.0 to 10.5.

[0212] To adjust the pH value, an acidifying agent, which is also used in composition (B), can be used.

[0213] Acidifying Agent in Composition (B) As an essential component (B1) of the present invention, the composition (B) contains at least one acidifying agent (B1).

[0214] Particularly preferably, the acidifying agent (B1) is selected from the group consisting of inorganic acids, organic acids and mixtures thereof.

[0215] Favorable results have been obtained when composition (B) contains at least one inorganic acid as acidifying agent (B1). Suitable inorganic acids are, for example, phosphoric acid, sulfuric acid and / or hydrochloric acid, with sulfuric acid being particularly preferred.

[0216] In another preferred embodiment, the method is characterized in that the composition (B) comprises an acidifying agent (B1) selected from the group consisting of inorganic acids, preferably selected from the group consisting of phosphoric acid, sulfuric acid, hydrochloric acid and mixtures thereof.

[0217] In another more preferred embodiment, the method is characterized in that the composition (B) comprises sulfuric acid as acidifying agent (B1).

[0218] Likewise, good results have been obtained when composition (B) contains at least one organic acid as acidifying agent (B1), preferably formic acid, acetic acid, propionic acid, butyric acid, isobutyric acid, valeric acid, isovaleric acid, pivalic acid, oxalic acid, malonic acid, succinic acid, glutaric acid, glyceric acid, glyoxylic acid, adipic acid, pimelic acid, corkic acid, azelaic acid, sebacic acid, propiolic acid, crotonic acid, isocrotonic acid, elaidic acid, maleic acid, fumaric acid, muconic acid, citraconic acid, mesaconic acid, camphoric acid, benzoic acid, o, m, p-phthalic acid, naphthoic acid, toluoylic acid, hydratropic acid, atropic acid, cinnamic acid. acid, isonicotinic acid, nicotinic acid, bicarbamic acid, 4,4'-dicyano-6,6'-vinicotinic acid, 8-carbamoyloctanoic acid, 1,2,4-pentanetricarboxylic acid, 2-pyrrolecarboxylic acid, 1,2,4,6,7-naphthalenepentaacetic acid, malonaldehyde acid, 4-hydroxyphthalamic acid, 1-pyrazolecarboxylic acid, gallic acid or propanetricarboxylic acid, glycolic acid, gluconic acid, lactic acid, maleic acid, ascorbic acid, malic acid, tartaric acid, citric acid and mixtures thereof.

[0219] In another preferred embodiment, the method comprises the step of preparing the composition (B) comprising at least one acidifying agent (B1) selected from the group consisting of organic acids, preferably formic acid, acetic acid, propionic acid, butyric acid, isobutyric acid, valeric acid, isovaleric acid, pivalic acid, oxalic acid, malonic acid, succinic acid, glutaric acid, glyceric acid, glyoxylic acid, adipic acid, pimelic acid, corkic acid, azelaic acid, sebacic acid, propiolic acid, crotonic acid, isocrotonic acid, elaidic acid, maleic acid, fumaric acid, muconic acid, citraconic acid, mesaconic acid, camphoric acid, benzoic acid, o, m, p-phthalic acid, naphthoic acid, toluoic acid, hydratrolic acid, benzoic acid, o, m, p-phthalic acid, naphthoic acid, toluoic acid, hydratrolic acid, benzoic acid, o, m, p-phthalic acid, naphthoic acid, benzoic acid, benzoic acid, o, m, p-phthalic acid, naphthoic acid, benzoic acid, benzoic acid, o, m, p-phthalic acid, benzo ...benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, benzoic acid, hydratropasic acid, atropasic acid, cinnamic acid, isonicotinic acid, nicotinic acid, bicarbamic acid, 4,4'-dicyano-6,6'-vinicotinic acid, 8-carbamoyloctanoic acid, 1,2,4-pentanetricarboxylic acid, 2-pyrrolecarboxylic acid, 1,2,4,6,7-naphthalenepentaacetic acid, malonaldehyde acid, 4-hydroxyphthalamic acid, 1-pyrazolecarboxylic acid, gallic acid or propanetricarboxylic acid, glycolic acid, gluconic acid, lactic acid, maleic acid, ascorbic acid, malic acid, tartaric acid, citric acid and mixtures thereof.

[0220] In a further more preferred embodiment the method is characterized in that the composition (B) comprises acetic acid as acidifying agent (B1).

[0221] Suitable acidifying agents also include methanesulfonic acid and / or 1-hydroxyethane-1,1-diphosphonic acid.

[0222] In the group of the acidifying agents (B1), sulfuric acid and / or acetic acid have been found to be particularly suitable.

[0223] In a further particularly preferred embodiment, the method is characterized in that the composition (B) comprises at least one acidifying agent (B1) selected from the group consisting of sulfuric acid, acetic acid and mixtures thereof.

[0224] Composition (B) comprises an acidifying agent (B1) in a cosmetic carrier, preferably an aqueous cosmetic carrier. In this regard, it has been found to be advantageous when composition (B) contains 5.0 to 99.0% by weight, preferably 15.0 to 97.0% by weight, more preferably 25.0 to 97.0% by weight, even more preferably 35.0 to 97.0% by weight, and very particularly preferably 45.0 to 97.0% by weight, of water, based on the total weight of composition (B).

[0225] The acidifying agent contained in composition (B) influences the pH of composition (B). It has been found that an acidic pH value also has a beneficial effect on the dyeing performance and fastness of the dyeings obtained in the process.

[0226] For this reason, the composition (B) containing the acidifying agent (B1) preferably has a pH value of 2.0 to 6.5, preferably 3.0 to 6.0, more preferably 4.0 to 6.0, and most preferably 4.5 to 5.5.

[0227] The pH value can be measured by conventional methods known in the art, for example, by measuring the pH using a glass electrode via a combination electrode or using pH test paper.

[0228] In another very particularly preferred embodiment, the method is characterized in that the composition (B) comprises an acidifying agent (B1) and has a pH value of 2.0 to 6.5, preferably 3.0 to 6.0, more preferably 4.0 to 6.0, most preferably 4.5 to 5.5.

[0229] For the purposes of the present invention, pH values ​​are those measured at a temperature of 22°C.

[0230] Film-forming polymer in composition (B) Composition (B) may additionally further comprise at least one film-forming polymer. Polymer is a macromolecule that has a molecular weight of at least 1000g / mol, preferably at least 2500g / mol, particularly preferably at least 5000g / mol, and is composed of identical repeating organic units.The polymer of the present invention can be a synthetic polymer that is produced by polymerizing one kind of monomer or by polymerizing multiple kinds of monomers that are structurally different from each other.When polymer is produced by polymerizing one kind of monomer, it is called homopolymer.When multiple kinds of structurally different monomers are used in polymerization, the resulting polymer is called copolymer.

[0231] The maximum molecular weight of the polymer depends on the degree of polymerization (number of monomers being polymerized) and the batch size, which is determined by the polymerization method. In the present invention, the maximum molecular weight of the film-forming hydrophobic polymer is 10 7 g / mol or less, preferably 10 6 g / mol or less, particularly preferably 10 5 It is preferred that it is less than or equal to g / mol.

[0232] In the sense of the present invention, a film-forming polymer is a polymer capable of forming a film on a substrate, for example on keratinous materials or keratinous fibers. The formation of a film can be demonstrated, for example, by microscopic observation of keratinous materials treated with the polymer.

[0233] In another preferred embodiment, the method according to the invention is characterized in that the second composition (B) comprises at least one film-forming polymer.

[0234] In another particularly preferred embodiment, the method according to the invention is characterized in that the second composition (B) comprises at least one film-forming polymer, preferably selected from the group consisting of acrylic acid, methacrylic acid, acrylic acid esters, methacrylic acid esters, acrylic acid amides, methacrylic acid amides, vinylpyrrolidone, vinyl alcohol, vinyl acetate, homopolymers or copolymers of ethylene, propylene, styrene, polyurethanes, polyesters and / or polyamides.

[0235] The film-forming polymer may be hydrophilic or hydrophobic.

[0236] In a first embodiment, it may be preferable to use at least one hydrophobic film-forming polymer in composition (B).

[0237] A hydrophobic polymer is a polymer that has a solubility in water of less than 1% by weight at 25° C. (760 mmHg).

[0238] The solubility of a film-forming hydrophobic polymer in water can be measured, for example, as follows: Place 1.0 g of polymer in a beaker. Draw up to 100 g with water. Add a magnetic stir bar and heat the mixture to 25°C on a magnetic stirrer while stirring. Allow to stir for 60 minutes. The aqueous mixture is then visually assessed. If the polymer-water mixture cannot be visually assessed due to high turbidity of the mixture, filter the mixture. If undissolved polymer remains on the filter paper, the polymer solubility is less than 1% by weight.

[0239] These include acrylic acid type polymers, polyurethanes, polyesters, polyamides, polyureas, cellulose polymers, nitrocellulose polymers, silicone polymers, acrylamide type polymers and polyisoprene.

[0240] Particularly suitable film-forming hydrophobic polymers are, for example, polymers from the group consisting of copolymers of acrylic acid, copolymers of methacrylic acid, homopolymers or copolymers of acrylic acid esters, homopolymers or copolymers of methacrylic acid esters, homopolymers or copolymers of acrylic acid amides, homopolymers or copolymers of methacrylic acid amides, copolymers of vinylpyrrolidone, copolymers of vinyl alcohol, copolymers of vinyl acetate, homopolymers or copolymers of ethylene, homopolymers or copolymers of propylene, homopolymers or copolymers of styrene, polyurethanes, polyesters and / or polyamides.

[0241] In another preferred embodiment, composition (B) is characterized in that it comprises at least one film-forming hydrophobic polymer selected from the group consisting of copolymers of acrylic acid, copolymers of methacrylic acid, homopolymers or copolymers of acrylic acid esters, homopolymers or copolymers of methacrylic acid esters, homopolymers or copolymers of acrylic acid amides, homopolymers or copolymers of methacrylic acid amides, copolymers of vinylpyrrolidone, copolymers of vinyl alcohol, copolymers of vinyl acetate, homopolymers or copolymers of ethylene, homopolymers or copolymers of propylene, homopolymers or copolymers of styrene, polyurethanes, polyesters and / or polyamides.

[0242] It has been found that film-forming hydrophobic polymers selected from the group of synthetic polymers, polymers obtained by radical polymerization or natural polymers are particularly suitable for solving the problems in the present invention.

[0243] Other particularly suitable film-forming hydrophobic polymers are olefins, such as cycloolefins, butadiene, isoprene or styrene, vinyl ethers, vinyl amides, at least one C-C 20 Alkyl group, aryl group or C2-C 10 It can be selected from homopolymers or copolymers of esters or amides of (meth)acrylic acid having hydroxyalkyl groups.

[0244] Other film-forming hydrophobic polymers may be selected from homopolymers or copolymers of isooctyl (meth)acrylate, isononyl (meth)acrylate, 2-ethylhexyl (meth)acrylate, lauryl (meth)acrylate, isopentyl (meth)acrylate, n-butyl (meth)acrylate, isobutyl (meth)acrylate, ethyl (meth)acrylate, methyl (meth)acrylate, tert-butyl (meth)acrylate, stearyl (meth)acrylate, hydroxyethyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, 3-hydroxypropyl (meth)acrylate and / or mixtures thereof.

[0245] Another film-forming hydrophobic polymer is (meth)acrylamide, N-alkyl (meth)acrylamide, C2-C 18 It may be selected from those having an alkyl group, such as homopolymers or copolymers of N-ethylacrylamide, N-tert-butylacrylamide, N-octylacrylamide, and N-di(C1-C4)alkyl(meth)acrylamide.

[0246] Other preferred anionic copolymers are, for example, copolymers of acrylic acid, methacrylic acid, or their C1-C6 alkyl esters, which are sold under the INCI name Acrylate Copolymer. A suitable commercial product is, for example, Aculyn® 33 from Rohm & Haas. Copolymers of acrylic acid, methacrylic acid, or their C1-C6 alkyl esters, and esters of ethylenically unsaturated acids with alkoxylated fatty alcohols are also preferred. Suitable ethylenically unsaturated acids are, in particular, acrylic acid, methacrylic acid, and itaconic acid, and suitable alkoxylated fatty alcohols are, in particular, steareth-20 or ceteth-20.

[0247] Very particularly preferred commercially available polymers are, for example, Aculyn® 22 (acrylates / steareth-20 methacrylate copolymer), Aculyn® 28 (acrylates / beheneth-25 methacrylate copolymer), Structure 2001® (acrylates / steareth-20 itaconate copolymer), Structure 3001® (acrylates / ceteth-20 itaconate copolymer), Structure Plus® (acrylates / aminoacrylate C10-30 alkyl PEG-20 itaconate copolymer), Carbopol® 1342, 1382, Ultrez 20, Ultrez 21 (acrylates / C10-30 alkyl acrylate crosspolymer), Synthalen W 2000® (acrylates / palmethylene-25 acrylate copolymer) or Rohme und The commercially available product is Soltex OPT (Acrylates / C12-22 Alkyl Methacrylate Copolymer) manufactured by Haas.

[0248] Suitable polymers based on vinyl monomers include homopolymers and copolymers of N-vinylpyrrolidone, vinylcaprolactam, vinyl-(C1-C6)alkyl-pyrrole, vinyloxazole, vinylthiazole, vinylpyrimidine or vinylimidazole.

[0249] Also particularly suitable are copolymers octylacrylamide / acrylates / butylaminoethyl methacrylate copolymers, such as those sold under the trade names AMPHOMER® or LOVOCRYL® 47 by NATIONAL STARCH, or the acrylates / octylacrylamide copolymers sold under the trade names DERMACRYL® LT and DERMACRYL® 79 by NATIONAL STARCH.

[0250] Suitable olefin-based polymers include homopolymers and copolymers of ethylene, propylene, butene, isoprene, and butadiene.

[0251] In another embodiment, the film-forming hydrophobic polymer may be a block copolymer containing at least one block of styrene or a styrene derivative. Such a block copolymer may be a copolymer containing, in addition to a styrene block, one or more other blocks, such as styrene / ethylene, styrene / ethylene / butylene, styrene / butylene, styrene / isoprene, or styrene / butadiene. Such polymers are commercially available from BASF under the trade name "Luvitol HSB."

[0252] When composition (B) contains at least one film-forming polymer selected from the group consisting of homopolymers and copolymers of acrylic acid, homopolymers and copolymers of methacrylic acid, homopolymers and copolymers of acrylic acid esters, homopolymers and copolymers of methacrylic acid esters, homopolymers and copolymers of acrylic acid amides, homopolymers and copolymers of methacrylic acid amides, homopolymers and copolymers of vinylpyrrolidone, homopolymers and copolymers of vinyl alcohol, homopolymers and copolymers of vinyl acetate, homopolymers and copolymers of ethylene, homopolymers and copolymers of propylene, homopolymers and copolymers of styrene, polyurethanes, polyesters, and polyamides, dyed goods with strong color tone and good washing fastness could be obtained.

[0253] In another preferred embodiment, the method according to the present invention is characterized in that the composition (B) comprises at least one film-forming polymer selected from the group consisting of homopolymers and copolymers of acrylic acid, homopolymers and copolymers of methacrylic acid, homopolymers and copolymers of acrylic acid esters, homopolymers and copolymers of methacrylic acid esters, homopolymers and copolymers of acrylic acid amides, homopolymers and copolymers of methacrylic acid amides, homopolymers and copolymers of vinylpyrrolidone, homopolymers and copolymers of vinyl alcohol, homopolymers and copolymers of vinyl acetate, homopolymers and copolymers of ethylene, homopolymers and copolymers of propylene, homopolymers and copolymers of styrene, polyurethanes, polyesters and polyamides.

[0254] In a first embodiment, it may be preferable to use at least one hydrophilic film-forming polymer in composition (B).

[0255] A hydrophilic polymer is a polymer that has a solubility in water at 25° C. (760 mmHg) of greater than 1% by weight, preferably greater than 2% by weight.

[0256] The solubility of a film-forming hydrophilic polymer in water can be measured, for example, as follows: Place 1.0 g of polymer in a beaker. Draw up to 100 g with water. Add a magnetic stir bar and heat the mixture to 25°C on a magnetic stirrer while stirring. Allow to stir for 60 minutes. The aqueous mixture is then visually assessed. A completely dissolved polymer will appear homogeneous to the naked eye. If the polymer-water mixture cannot be visually assessed due to high turbidity of the mixture, filter the mixture. If no undissolved polymer remains on the filter paper, the solubility of the polymer is greater than 1% by weight.

[0257] Nonionic, anionic and cationic polymers can be used as film-forming hydrophilic polymers.

[0258] Suitable film-forming hydrophilic polymers may, for example, be selected from the group consisting of polyvinylpyrrolidone (co)polymers, polyvinyl alcohol (co)polymers, vinyl acetate (co)polymers, carboxyvinyl (co)polymers, acrylic acid (co)polymers, methacrylic acid (co)polymers, natural gums, polysaccharides and / or acrylamide (co)polymers.

[0259] Furthermore, it is particularly preferred to use polyvinylpyrrolidone (PVP) and / or vinylpyrrolidone-containing copolymers as film-forming hydrophilic polymers.

[0260] In another very particularly preferred embodiment, composition (B) is characterized in that it comprises at least one film-forming hydrophilic polymer selected from the group consisting of polyvinylpyrrolidone (PVP) and copolymers of polyvinylpyrrolidone.

[0261] It is further preferred if the composition (B) comprises polyvinylpyrrolidone (PVP) as the film-forming hydrophilic polymer. Surprisingly, the washfastness of the dyeings obtained with the PVP-containing agent (b) was also very good.

[0262] Particularly suitable polyvinylpyrrolidones are available, for example, under the name Luviskol® K from BASF SE, in particular under the name Luviskol® K 90 or Luviskol® K 85 from BASF SE.

[0263] The polymer PVP K 30 sold by Ashland (ISP, POI Chemical) is another very suitable polyvinylpyrrolidone (PVP). PVP K 30 is a polyvinylpyrrolidone that is highly soluble in cold water and has the CAS number 9003-39-8. The molecular weight of PVP K 30 is approximately 40,000 g / mol.

[0264] Other particularly suitable polyvinylpyrrolidones are the substances known under the trade names LUVITEC K 17, LUVITEC K 30, LUVITEC K 60, LUVITEC K 80, LUVITEC K 85, LUVITEC K 90 and LUVITEC K 115, available from BASF.

[0265] The use of film-forming hydrophilic polymers from the group of polyvinylpyrrolidone copolymers also leads to particularly good, wash-fast colouring results.

[0266] Vinylpyrrolidone-vinyl ester copolymers, such as those sold under the trademark Luviskol® (BASF), are particularly suitable film-forming hydrophilic polymers. Luviskol® VA 64 and Luviskol® VA 73, both vinylpyrrolidone / vinyl acetate copolymers, are particularly preferred nonionic polymers.

[0267] Among the vinylpyrrolidone-containing copolymers, styrene / VP copolymer and / or vinylpyrrolidone-vinyl acetate copolymer and / or VP / DMAPA acrylate copolymer and / or VP / vinylcaprolactam / DMAPA acrylate copolymer are particularly preferred in cosmetic compositions.

[0268] Vinylpyrrolidone-vinyl acetate copolymers are sold by BASF SE under the name Luviskol® VA. For example, VP / vinylcaprolactam / DMAPA acrylate copolymers are sold by Ashland Inc. under the trade name Aquaflex® SF-40. For example, VP / DMAPA acrylate copolymers are sold by Ashland under the name Styleze CC-10, which is a highly preferred vinylpyrrolidone-containing copolymer.

[0269] Other suitable copolymers of polyvinylpyrrolidone may also be obtained by reaction of N-vinylpyrrolidone with at least one further monomer from the group consisting of N-vinylformamide, vinyl acetate, ethylene, propylene, acrylamide, vinylcaprolactam, vinylcaprolactone and / or vinyl alcohol.

[0270] In another very particularly preferred embodiment, composition (B) is characterized in that it comprises at least one film-forming hydrophilic polymer selected from the group consisting of polyvinylpyrrolidone (PVP), vinylpyrrolidone / vinyl acetate copolymer, vinylpyrrolidone / styrene copolymer, vinylpyrrolidone / ethylene copolymer, vinylpyrrolidone / propylene copolymer, vinylpyrrolidone / vinyl caprolactam copolymer, vinylpyrrolidone / vinyl formamide copolymer and / or vinylpyrrolidone / vinyl alcohol copolymer.

[0271] Another suitable copolymer of vinylpyrrolidone is the polymer known by the INCI name Maltodextrin / VP Copolymer.

[0272] It has also been possible to obtain intensively dyed keratinous materials, especially hair, having particularly good washfastness properties when non-ionic film-forming hydrophilic polymers are used as film-forming hydrophilic polymers.

[0273] In a first embodiment, it may be preferred that composition (B) comprises at least one non-ionic, film-forming hydrophilic polymer.

[0274] According to the present invention, nonionic polymers are understood to be polymers that, under standard conditions in protic solvents, such as water, do not have structural units with permanent cationic or anionic groups that must be compensated by counterions, and remain electrically neutral. Cationic groups include quaternized ammonium groups, but do not include protonated amines. Anionic groups include carboxylic and sulfonic acid groups.

[0275] the below described: Polyvinylpyrrolidone, N-vinylpyrrolidone and copolymers of vinyl esters of N-vinylpyrrolidone and vinyl acetate of carboxylic acids containing 2 to 18 carbon atoms, Copolymer of N-vinylpyrrolidone, N-vinylimidazole and methacrylamide, Copolymer of N-vinylpyrrolidone, N-vinylimidazole and acrylamide, Copolymer of N-vinylpyrrolidone and N,N-di(C1-C4)alkylamino-(C2-C4)alkylacrylamide Particularly preferred is a composition (B) which comprises as non-ionic film-forming hydrophilic polymer at least one polymer selected from the group consisting of:

[0276] When a copolymer of N-vinylpyrrolidone and vinyl acetate is used, the molar ratio of structural units contained in the N-vinylpyrrolidone monomer to structural units contained in the vinyl acetate monomer is preferably in the range of 20:80 to 80:20, in particular 30:70 to 60:40. Suitable copolymers of vinylpyrrolidone and vinyl acetate are available, for example, from BASF SE under the trademarks Luviskol® VA 37, Luviskol® VA 55, Luviskol® VA 64 and Luviskol® VA 73.

[0277] Another particularly preferred polymer is selected from the INCI name VP / methacrylamide / vinylimidazole copolymer, which is available from BASF SE under the trade name Luviset Clear.

[0278] Another particularly preferred non-ionic film-forming hydrophilic polymer is the copolymer of N-vinylpyrrolidone and N,N-dimethylaminiopropylmethacrylamide, which is sold, for example, by ISP under the INCI name VP / DMAPA acrylate copolymer, e.g. under the trade name Styleze® CC 10.

[0279] An interesting cationic polymer is the copolymer of N-vinylpyrrolidone, N-vinylcaprolactam, N-(3-dimethylaminopropyl) methacrylamide and 3-(methacryloylamino)propyl-lauryl-dimethylammonium chloride (INCI name: Polyquaternium-69), which is sold, for example, by ISP under the trade name AquaStyle® 300 (28-32% by weight of active substance in an ethanol-water mixture, molecular weight 350,000).

[0280] Other suitable film-forming hydrophilic polymers include: vinylpyrrolidone-vinylimidazolium methchloride copolymers, available under the names Luviquat® FC 370, FC 550 and INCI names Polyquaternium-16, as well as FC 905 and HM 552; vinylpyrrolidone-vinylcaprolactam-acrylate terpolymers (which are commercially available, for example, under the name Aquaflex® SF 40, with acrylic esters and acrylic amides as third monomer components); Examples include:

[0281] Polyquaternium-11 is a reaction product of diethyl sulfate with a copolymer of vinylpyrrolidone and dimethylaminoethyl methacrylate. Suitable commercial products are available from BASF SE under the names Dehyquart® CC 11 and Luviquat® PQ 11 PN, or from Ashland Inc. under the names Gafquat 440, Gafquat 734, Gafquat 755, or Gafquat 755N.

[0282] Polyquaternium-46 is a reaction product of vinylcaprolactam and vinylpyrrolidone with methylvinylimidazolium methosulfate, and is available, for example, from BASF SE under the name Luviquat® Hold. Polyquaternium-46 is preferably used in an amount of 1 to 5 wt. % based on the total weight of the cosmetic composition. It is particularly preferred to use Polyquaternium-46 in combination with a cationic guar compound. It is even more highly preferred to use Polyquaternium-46 in combination with a cationic guar compound and Polyquaternium-11.

[0283] Suitable anionic film-forming hydrophilic polymers may be, for example, acrylic acid polymers, which may be in non-crosslinked or crosslinked form. Such products are sold by Lubrizol under the trade names Carbopol 980, 981, 954, 2984 and 5984, or by 3V Sigma (The Sun Chemicals, Inter-Harz) under the names Synthalen M and Synthalen K.

[0284] Examples of suitable film-forming hydrophilic polymers from the group of natural gums are xanthan gum, gellan gum, carob gum.

[0285] Examples of suitable film-forming hydrophilic polymers from the group of polysaccharides are hydroxyethyl cellulose, hydroxypropyl cellulose, ethyl cellulose and carboxymethyl cellulose.

[0286] Suitable film-forming hydrophilic polymers from the acrylamide group are, for example, polymers prepared from (meth)acrylamido-C1-C4-alkylsulfonic acid or salt monomers. The corresponding polymers may be selected from the polymers of polyacrylamidomethanesulfonic acid, polyacrylamidoethanesulfonic acid, polyacrylamidopropanesulfonic acid, poly2-acrylamido-2-methylpropanesulfonic acid, poly-2-methylacrylamido-2-methylpropanesulfonic acid and / or poly-2-methylacrylamido-n-butanesulfonic acid.

[0287] Preferred polymers of poly(meth)acrylamide-C1-C4-alkylsulfonic acid are crosslinked and at least 90% neutralized. These polymers may be crosslinked or non-crosslinked.

[0288] Crosslinked, fully or partially neutralized polymers of the poly-2-acrylamido-2-methylpropanesulfonic acid type are available under the INCI names "ammonium polyacrylamido-2-methyl-propanesulfonate" or "ammonium polyacryldimethyltauramide".

[0289] Another preferred polymer of this type is a cross-linked poly-2-acrylamido-2-methyl-propanesulfonic acid polymer, which is partially neutralized with ammonia, sold by Clamant under the trade name Hostacerin AMPS.

[0290] In another, obviously very particularly preferred embodiment, the process according to the invention is characterized in that composition (B) comprises at least one anionic film-forming polymer.

[0291] In this context, composition (B) comprises at least one structural unit of formula (PI) and at least one structural unit of formula (P-II): TIFF0007739268000053.tif29168[In the formula, M is a hydrogen atom, ammonium (NH4), sodium, potassium, 1 / 2 magnesium, or 1 / 2 calcium. Best results were obtained when the composition contained at least one film-forming polymer including:

[0292] When M represents a hydrogen atom, the structural unit represented by formula (PI) is based on an acrylic acid unit.

[0293] When M represents an ammonium counterion, the structural unit of formula (PI) is based on the ammonium salt of acrylic acid.

[0294] When M represents a sodium counterion, the structural unit of formula (PI) is based on the sodium salt of acrylic acid.

[0295] When M represents a potassium counterion, the structural unit of formula (PI) is based on the potassium salt of acrylic acid.

[0296] When M represents half an equivalent of a magnesium counterion, the structural unit of formula (PI) is based on the magnesium salt of acrylic acid.

[0297] When M represents half an equivalent of a calcium counterion, the structural unit of formula (PI) is based on the calcium salt of acrylic acid.

[0298] The one or more film-forming polymers according to the invention are preferably used in specific quantitative ranges in the composition (B) according to the invention. In this regard, it has been found to be particularly advantageous for solving the problems of the invention when the composition (B) comprises one or more film-forming polymers in a total amount of 0.1 to 18.0% by weight, preferably 1.0 to 16.0% by weight, more preferably 5.0 to 14.5% by weight, and very particularly preferably 8.0 to 12.0% by weight, in each case based on the total weight of the composition (B).

[0299] In a further preferred embodiment, the method according to the invention is characterized in that composition (B) comprises one or more film-forming polymers in a total amount of 0.1 to 18.0% by weight, preferably 1.0 to 16.0% by weight, more preferably 5.0 to 14.5% by weight, and very particularly preferably 8.0 to 12.0% by weight, based on the total weight of composition (B).

[0300] Other cosmetic ingredients in composition (B) In addition, composition (B) may contain one or more other cosmetic ingredients. The cosmetic ingredient that may be optionally used in composition (B) may be any ingredient suitable for imparting additional beneficial properties to the composition, such as, for example, in composition (A), a solvent, a thickener, or a film-forming polymer; a surface-active compound from the group consisting of nonionic, cationic, anionic, or zwitterionic / amphoterionic surface-active compounds; a coloring compound from the group consisting of pigments, direct dyes, and oxidation dye precursors; a C8-C 30 Fatty components from the group consisting of fatty alcohols, hydrocarbon compounds, fatty acid esters; acids and bases belonging to the group of pH adjusters; flavorings, preservatives, plant extracts, and protein hydrolysates.

[0301] The selection of these additional substances is carried out by those skilled in the art depending on the desired properties of the composition. For other optional ingredients and the amounts of these ingredients used, explicit reference is made to the relevant manuals known to those skilled in the art.

[0302] Application of compositions (A) and (B) The method according to the invention comprises the application of both compositions (A) and (B) to keratinous materials. The two compositions (A) and (B) are two different compositions.

[0303] As mentioned above, it is particularly preferred to first apply composition (A) to the keratinous material, and then apply composition (B) to the keratinous material as a post-treatment agent.

[0304] In another embodiment, the method comprises the steps of: (1) applying a first composition (A) to a keratinous material; (2) applying the composition (A) to the keratinous material for 1 to 10 minutes, preferably 1 to 5 minutes; (3) rinsing the composition (A) from the keratinous material; (4) applying composition (B) to keratinous materials; (5) applying the composition (B) to the keratinous material for 1 to 10 minutes, preferably 1 to 5 minutes; (6) Rinse the composition (B) from the keratinous material. Particularly preferred is a method according to the invention comprising:

[0305] Rinsing of keratinous materials with water in steps (3) and (6) of the method is understood in the present invention to mean that in the rinsing step, no other compositions different from compositions (a) and (b) are used, but only water.

[0306] In step (1), composition (A) is first applied to keratinous materials, in particular human hair.

[0307] After application, the composition (A) is allowed to act on the keratinous materials. In this respect, application times to the hair of 10 seconds to 10 minutes, preferably 20 seconds to 5 minutes, particularly preferably 30 seconds to 2 minutes, have been found to be particularly advantageous.

[0308] In a preferred embodiment of the method according to the invention, composition (A) can be rinsed from the keratinous materials before composition (B) is applied to the hair in a subsequent step.

[0309] In step (4), composition (B) is then applied to the keratinous material. After application, composition (B) is left to act on the hair.

[0310] The process according to the invention allows the production of dyeings with particularly good strength and wash resistance, even with short exposure times of the compositions (A) and (B). Application times to the hair of from 10 seconds to 10 minutes, preferably from 20 seconds to 5 minutes, particularly preferably from 30 seconds to 3 minutes, have been found to be particularly advantageous.

[0311] In step (6), composition (B) is rinsed from the keratinous material with water.

[0312] In another embodiment, the method comprises the steps of: (1) applying a first composition (A) to a keratinous material; (2) applying the composition (A) to the keratinous material for 1 to 10 minutes, preferably 1 to 5 minutes; (3) rinsing the composition (A) from the keratinous material; (4) applying composition (B) to keratinous materials; (5) applying the composition (B) to the keratinous material for 1 to 10 minutes, preferably 1 to 5 minutes; (6) Rinse the composition (B) from the keratinous material. Particularly preferred is a method according to the invention comprising in the order given:

[0313] The components required for the dyeing process are supplied in the form of a multi-component packaged unit (kit).

[0314] A second object of the present invention is to provide a separately packaged a first container containing a first composition (A), and a second container containing a second composition (B) A multi-component packaging unit (kit) for dyeing keratinous materials, comprising: Compositions (A) and (B) are multi-component packaging units, as already explained in detail in the description of the first subject matter of the invention.

[0315] The multi-component packaging unit of the present invention may also comprise a third packaging unit containing a cosmetic composition (C), which, as described above, very particularly preferably contains at least one color-imparting compound.

[0316] In another particularly preferred embodiment, the multi-component packaging unit (kit) according to the invention comprises independently assembled components: a third container containing a third composition (C) The third composition (C) has already been described in detail in the description of the first object of the present invention.

[0317] With regard to the further preferred embodiments of the multi-component packaging unit according to the invention, what has already been said in relation to the method according to the invention applies analogously. Preferred aspects of the present invention include the following. [1] (A1) 1 or more organic C 1 -C 6 Alkoxysilanes and / or condensates thereof, and (A2) at least one coloring compound selected from the group consisting of pigments and direct dyes a first composition (A) comprising: (B1) at least one acidifying agent A second composition (B) comprising to the keratinous material, particularly human hair. [2] The first composition (A) comprises a compound of formula (SI) and / or (S-II): R 1 R 2 NL-Si(OR 3 ) a (R 4 ) b (SI) [In the formula, -R 1 、R 2 are independently hydrogen atoms or C 1 -C 6 represents an alkyl group, -L is a linear or branched divalent C 1 -C 20 is an alkylene group, -R 3 and R 4 are C independently of each other. 1 -C 6 represents an alkyl group, -a represents an integer from 1 to 3, -b represents the integer 3-a] TIFF0007739268000054.tif6151 [In the formula, -R 5 、R 5' 、R 5" 、R6 、R 6' and R 6" independently, C 1 -C 6 represents an alkyl group, -A, A', A", A"' and A"" are independently straight or branched chain divalent C 1 -C 20 represents an alkylene group, -R 7 and R 8 are independently hydrogen atoms, C 1 -C 6 Alkyl group, hydroxy C 1 -C 6 Alkyl group, C 2 -C 6 Alkenyl group, amino C 1 -C 6 An alkyl group or a group of formula (S-III): -(A"")-Si(R 6 ") d" (OR 5 ") c" (S-III) represents a group represented by -c represents an integer from 1 to 3, -d represents the integer 3-c, -c' represents an integer of 1 to 3, -d' represents the integer 3-c', -c" represents an integer from 1 to 3, -d" represents the integer 3-c", -e represents 0 or 1, -f represents 0 or 1, -g represents 0 or 1, -h represents 0 or 1, - at least one of e, f, g and h is different from 0] One or more organic C 1 -C 6 The method according to [1], characterized in that it comprises an alkoxysilane (A1) and / or a condensate thereof. [3] The first composition (A) is -(3-aminopropyl)triethoxysilane -(3-aminopropyl)trimethoxysilane -(2-aminoethyl)triethoxysilane -(2-aminoethyl)trimethoxysilane -(3-dimethylaminopropyl)triethoxysilane -(3-dimethylaminopropyl)trimethoxysilane -(2-dimethylaminoethyl)triethoxysilane -(2-dimethylaminoethyl)trimethoxysilane and at least one organic C selected from the group consisting of 1 -C 6 The method according to [1] or [2], characterized in that it contains an alkoxysilane (A1) and / or a condensate thereof. [4] The first composition (A) has the formula (S-IV): R 9 Si(OR 10 ) k (R 11 ) m (S-IV) [In the formula, -R 9 is C 1 -C 12 represents an alkyl group, -R 10 is C 1 -C 6 represents an alkyl group, -R 11 is C 1 -C 6 represents an alkyl group, -k is an integer from 1 to 3, -m represents the integer 3-k] One or more organic C 1 -C 6 The method according to any one of [1] to [3], characterized in that the composition contains an alkoxysilane (A1) and / or a condensate thereof. [5] The first composition (A) is -methyltrimethoxysilane, -methyltriethoxysilane, -ethyltrimethoxysilane, -ethyltriethoxysilane, -propyltrimethoxysilane, -propyltriethoxysilane, -hexyltrimethoxysilane, -hexyltriethoxysilane, -octyltrimethoxysilane, -octyltriethoxysilane, -dodecyltrimethoxysilane, -dodecyltriethoxysilane, -octadecyltrimethoxysilane, -octadecyltriethoxysilane and -A mixture of them and at least one organic C selected from the group consisting of: 1 -C 6 The method according to any one of [1] to [4], characterized in that the method comprises an alkoxysilane (A1). [6] The method according to any one of [1] to [5], characterized in that the first composition (A) comprises at least one inorganic pigment (A2), preferably selected from the group consisting of colored metal oxides, metal hydroxides, metal oxide hydrates, silicates, metal sulfides, complex metal cyanides, metal sulfates, bronze pigments, and / or colored mica or mica-based pigments coated with at least one metal oxide and / or metal oxychloride. [7] The method according to any one of [1] to [6], characterized in that the first composition (A) comprises at least one colored pigment (A2) selected from the group consisting of pigments based on lamellar substrate platelets, pigments based on lenticular substrate platelets, and pigments based on substrate platelets, including vacuum-deposited pigments. [8] The method according to any one of [1] to [7], wherein the first composition (A) comprises at least one cosmetic ingredient selected from the group consisting of hexamethyldisiloxane, octamethyltrisiloxane, decamethyltetrasiloxane, hexamethylcyclotrisiloxane, octamethylcyclotetrasiloxane, and decamethylcyclopentasiloxane. [9] The method according to any one of [1] to [8], wherein the second composition (B) comprises at least one acidifying agent (B1) as an inorganic acid selected from the group consisting of phosphoric acid, sulfuric acid and / or hydrochloric acid.

[10] The method according to any one of [1] to [9], wherein the second composition (B) contains sulfuric acid as the acidifying agent (B1).

[11] The second composition (B) may comprise any of formic acid, acetic acid, propionic acid, butyric acid, isobutyric acid, valeric acid, isovaleric acid, pivalic acid, oxalic acid, malonic acid, succinic acid, glutaric acid, glyceric acid, glyoxylic acid, adipic acid, pimelic acid, succinic acid, azelaic acid, sebacic acid, propiolic acid, crotonic acid, isocrotonic acid, elaidic acid, maleic acid, fumaric acid, muconic acid, citraconic acid, mesaconic acid, camphoric acid, benzoic acid, o, m, p-phthalic acid, naphthoic acid, toluoylic acid, hydratropic acid, atropic acid, cinnamic acid, isonicotinic acid, nicotinic acid, bicarbamic acid, benzoic acid, benzoic acid, o-phthalic acid, m-phthalic acid, naphthoic acid, toluoylic acid, hydroxyatropic acid, atropic acid, cinnamic acid, isonicotinic acid, nicotinic acid, bicarbamic acid, benzo ... ic) acid, 4,4'-dicyano-6,6'-vinicotinic acid, 8-carbamoyloctanoic acid, 1,2,4-pentanetricarboxylic acid, 2-pyrrolecarboxylic acid, 1,2,4,6,7-naphthalenepentaacetic acid, malonaldehyde acid, 4-hydroxyphthalamic acid, 1-pyrazolecarboxylic acid, gallic acid or propanetricarboxylic acid, glycolic acid, gluconic acid, lactic acid, maleic acid, ascorbic acid, malic acid, tartaric acid, citric acid and mixtures thereof.

[12] The method according to any one of [1] to

[11] , wherein the second composition (B) contains acetic acid as the acidifying agent (B1).

[13] The method according to any one of [1] to

[12] , wherein the second composition (B) has a pH of 2.0 to 6.5, preferably 3.0 to 6.0, more preferably 4.0 to 6.0, and most preferably 4.5 to 5.5.

[14] The method according to any one of [1] to

[13] , wherein the second composition (B) further comprises at least one film-forming polymer preferably selected from the group consisting of acrylic acid, methacrylic acid, acrylic acid esters, methacrylic acid esters, acrylic acid amides, methacrylic acid amides, vinylpyrrolidone, vinyl alcohol, vinyl acetate, homopolymers or copolymers of ethylene, propylene, styrene, polyurethanes, polyesters and / or polyamides.

[15] Separately manufactured, a first container containing a first composition (A), and a second container containing a second composition (B) A kit for dyeing keratinous materials, comprising: The kit, wherein the compositions (A) and (B) are those described in any one of [1] to

[14] .

Claims

1. (A1) one or more organic alkoxysilanes and / or condensates thereof having at least one C 1 -C 6 alkoxy group, and (A2) at least one coloring compound selected from the group consisting of pigments and direct dyes a first composition (A) comprising (B1) at least one acidifying agent A second composition (B) comprising A method for dyeing keratinous materials, comprising applying a first composition (A) to the keratinous material, the first composition (A) being represented by formula (S-IV): R 9 Si(OR 10 ) k (R 11 ) m (S-IV) [In the formula, -R 9 is C 1 -C 12 represents an alkyl group, -R 10 is C 1 -C 6 represents an alkyl group, -R 11 is C 1 -C 6 represents an alkyl group, -k is an integer from 1 to 3, -m represents the integer 3-k. The method of claim 1, further comprising the step of:

2. The first composition (A) has the formula (SI) and / or (S-II): R 1 R 2 N-L-Si(OR 3 ) a (R 4 ) b (S-I) [In the formula, -R 1 , R 2 are independently hydrogen atoms or C 1 -C 6 represents an alkyl group, -L is a linear or branched divalent C 1 -C 20 is an alkylene group, -R 3 and R 4 are C independently of each other. 1 -C 6 represents an alkyl group, -a represents an integer from 1 to 3, -b represents the integer 3-a] [In the formula, -R 5 , R 5' , R 5" , R 6 , R 6' and R 6" independently, C 1 -C 6 represents an alkyl group, - A, A', A", A"' and A"" are independently straight or branched chain divalent C 1 -C 20 represents an alkylene group, -R 7 and R 8 are independently hydrogen atoms, C 1 -C 6 Alkyl group, hydroxy C 1 -C 6 Alkyl group, C 2 -C 6 Alkenyl group, amino C 1 -C 6 An alkyl group or a group of formula (S-III): -(A"")-Si(R 6 ") d" (OR 5 ") c" (S-III) represents a group represented by -c represents an integer from 1 to 3, -d represents the integer 3-c; -c' represents an integer of 1 to 3, -d' represents the integer 3-c'; -c" represents an integer from 1 to 3, -d" represents the integer 3-c"; -e represents 0 or 1, -f represents 0 or 1, -g represents 0 or 1; -h represents 0 or 1; - at least one of e, f, g and h is different from 0] 2. The method according to claim 1, characterized in that it comprises one or more organic alkoxysilanes (A1) of the following formula (I) and / or condensates thereof:

3. The first composition (A) is -(3-aminopropyl)triethoxysilane -(3-aminopropyl)trimethoxysilane -(2-aminoethyl)triethoxysilane -(2-aminoethyl)trimethoxysilane -(3-dimethylaminopropyl)triethoxysilane -(3-dimethylaminopropyl)trimethoxysilane -(2-dimethylaminoethyl)triethoxysilane -(2-dimethylaminoethyl)trimethoxysilane 3. The method according to claim 2, characterized in that it comprises at least one organic alkoxysilane (A1) and / or its condensate selected from the group consisting of:

4. The first composition (A) is -methyltrimethoxysilane, -methyltriethoxysilane, -ethyltrimethoxysilane, -ethyltriethoxysilane, -propyltrimethoxysilane, -propyltriethoxysilane, -hexyltrimethoxysilane, - hexyltriethoxysilane, -octyltrimethoxysilane, - octyltriethoxysilane, - dodecyltrimethoxysilane, - dodecyltriethoxysilane and - their mixtures The method according to any one of claims 1 to 3, characterized in that it comprises at least one organic alkoxysilane (A1) represented by formula (S-IV) selected from the group consisting of:

5. 5. The method according to claim 1, wherein the first composition (A) comprises at least one inorganic pigment (A2).

6. 6. The method according to claim 1, wherein the first composition (A) comprises at least one colored pigment (A2) selected from the group consisting of lamellar substrate platelet-based pigments, lenticular substrate platelet-based pigments, and substrate platelet-based pigments, including vacuum-deposited pigments.

7. 7. The method according to claim 1, wherein the first composition (A) comprises at least one cosmetic ingredient selected from the group consisting of hexamethyldisiloxane, octamethyltrisiloxane, decamethyltetrasiloxane, hexamethylcyclotrisiloxane, octamethylcyclotetrasiloxane, and decamethylcyclopentasiloxane.

8. 8. The method according to claim 1, wherein the second composition (B) comprises at least one acidifying agent (B1) as an inorganic acid selected from the group consisting of phosphoric acid, sulfuric acid and / or hydrochloric acid.

9. 9. The method according to claim 1, wherein the second composition (B) comprises sulfuric acid as acidifying agent (B1).

10. The second composition (B) may comprise any of formic acid, acetic acid, propionic acid, butyric acid, isobutyric acid, valeric acid, isovaleric acid, pivalic acid, oxalic acid, malonic acid, succinic acid, glutaric acid, glyceric acid, glyoxylic acid, adipic acid, pimelic acid, succinic acid, azelaic acid, sebacic acid, propiolic acid, crotonic acid, isocrotonic acid, elaidic acid, maleic acid, fumaric acid, muconic acid, citraconic acid, mesaconic acid, camphoric acid, benzoic acid, o-, m-, p-phthalic acid, naphthoic acid, toluoylic acid, hydratropic acid, atropic acid, cinnamic acid, isonicotinic acid, nicotinic acid, bicarbaminic acid, 10. The process according to claim 1, characterized in that it comprises c) at least one acidifying agent (B1) as an organic acid selected from the group consisting of acids, 4,4'-dicyano-6,6'-vinicotinic acid, 8-carbamoyloctanoic acid, 1,2,4-pentanetricarboxylic acid, 2-pyrrolecarboxylic acid, 1,2,4,6,7-naphthalenepentaacetic acid, malonaldehyde acid, 4-hydroxyphthalamic acid, 1-pyrazolecarboxylic acid, gallic acid or propanetricarboxylic acid, glycolic acid, gluconic acid, lactic acid, maleic acid, ascorbic acid, malic acid, tartaric acid, citric acid and mixtures thereof.

11. 11. The method according to claim 1, wherein the second composition (B) comprises acetic acid as acidifying agent (B1).

12. 12. The method according to claim 1, wherein the second composition (B) has a pH of from 2.0 to 6.

5.

13. The method according to any one of claims 1 to 12, characterized in that the second composition (B) further comprises at least one film-forming polymer.

14. manufactured separately, a first container containing a first composition (A), and - a second container containing a second composition (B); A kit for dyeing keratinous materials, comprising: A kit, wherein the compositions (A) and (B) are as defined in any one of claims 1 to 13.

Citation Information

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