Oil-in-water emulsion, with improved scalp tolerance, for oxidatively changing the color of keratin fibers
The oil-in-water emulsion formulation for hair color, with a balanced pH and specific surfactant and fatty alcohol composition, addresses the issues of hair damage and scalp irritation in conventional oxidative hair colorants, offering improved compatibility and stability.
Patent Information
- Application Number
- PCT/EP2024/081872
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-11-13
- Filing Date
- 2024-11-11
- Publication Date
- 2025-05-22
AI Technical Summary
Conventional oxidative hair colorants have a high alkaline pH, which causes hair damage, scalp irritation, and instability of the emulsion formulation, especially during storage and transportation.
An oil-in-water emulsion formulation with a selected mixture of anionic and non-ionic surfactants, fatty alcohols, and glycerol mono- and diesters, which maintains a pH between 8.0 and 11.5, enhancing scalp compatibility and application properties.
The formulation achieves improved scalp and skin compatibility, maintains color intensity and balance, and provides enhanced stability and application properties, reducing hair damage and irritation.
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Abstract
Description
[0001] November 11, 2024 Patent application "Oil-in-water emulsion for oxidative color change of keratin fibers with improved scalp compatibility." The present invention relates to an agent for oxidative color change for keratin fibers in the form of an oil-in-water emulsion with improved scalp compatibility, which also has optimized application properties and / or improved coloring performance, as well as to a process for oxidative color change using the aforementioned oxidative color change agent in emulsion form. So-called oxidation colorants are used for permanent, intensive colorations with corresponding fastness properties. Oxidative colorants typically consist of two components: one component usually contains oxidation dye precursors, so-called developer components, and coupler components.The developer components form the actual dyes under the influence of oxidizing agents, particularly hydrogen peroxide, which are added to the first component shortly before application to the hair, or of atmospheric oxygen, either with each other or by coupling with one or more coupler components. Developer components typically used are primary aromatic amines with an additional free or substituted hydroxy or amino group in the para or ortho position, diaminopyridine derivatives, heterocyclic hydrazones, 4-aminopyrazolone derivatives, and 2,4,5,6-tetraaminopyrimidine and its derivatives. Coupler components typically used are m-phenylenediamine derivatives, naphthols, resorcinol and resorcinol derivatives, pyrazolones, m-aminophenols, and substituted pyridine derivatives. The oxidation dyes are characterized by excellent, long-lasting color results.Conventional oxidative colorants have a more alkaline pH value, usually well above 8.5, to stabilize the dye precursors during storage and to accelerate the reaction during oxidative application. This pH is usually adjusted with alkalizing agents such as alkanolamines, ammonia, or inorganic bases. Ammonia, in particular, enables good color results, but also presents disadvantages for the user due to its odor and potential irritation to skin and mucous membranes. The alkalizing agent causes the keratin fibers to swell, allowing the dye precursors to penetrate the hair easily. However, the alkaline pH also intensifies the damaging effect of the oxidizing agent on the hair structure. The damage to the hair structure, which is particularly noticeable, affects the flaking of the cuticle, the outer layer of the keratin fiber.This is noticeable in increased roughness, poorer feel, reduced shine, and poorer fiber stability. The roughened cuticle structure allows small molecules, such as water, to escape more quickly. As a result, damaged hair loses further softness and elasticity. The roughened fiber surface also impairs colorfastness. To reduce hair damage caused by alkaline oxidative color-changing agents, fats or oils are often used in these products. The content of oil and / or fat components can also reduce the release of ammonia after application to the hair when ammonium hydroxide and ammonium salts are used as alkalizing agents.The hair dye's balancing ability can also be improved by containing oil and / or fatty components, so that the resulting color is less selective, meaning it absorbs roughly equally into both the damaged and undamaged sections of the keratin fibers. Many of the oxidation dye precursors are aromatic amines. Some of these aromatic amines are preferably used in the form of their salts, particularly in the form of sulfates and hydrogen sulfates, as these are more stable and easier to handle than the free amines. In the alkaline medium of the dye, the free amines are released from the salt and form the dyes. The oxidation dye precursors in salt form contribute an increased salt load to the dye component. This applies particularly to darker shades, which contain a higher overall concentration of oxidation dye precursors.Dyeing components in emulsion form are often less stable in storage due to this high salt concentration and tend to separate into the oil and water phases over time. This phase separation is accelerated by increasing the storage temperature. However, thermal stability is essential for a mass product in emulsion form, as the product can be exposed to large temperature fluctuations during transport from production via various intermediate storage facilities to the point of sale in online or stationary retail. Both high and very low temperatures can be detrimental to emulsion stability. However, high temperatures of 50°C and above, which can typically occur during ocean transport on container ships, are particularly problematic. Another problem that occurs with the use of conventional oxidation dyes and lightening agents is scalp irritation.The products must normally remain on the hair for at least 30 minutes to achieve satisfactory coloring or lightening. Naturally, this also involves contact with the scalp. The high pH and the oxidizing agent contained in the application mixture can have an irritating effect on the scalp. This can be very unpleasant for the user. Even after the oxidative hair color change treatment has been completed, the unpleasant sensations in the scalp can persist. State of the art: In the prior art, this problem was often addressed by adding a skin-soothing active ingredient. For example, WO 2013 / 098207 A1 teaches the addition of allantoin to oxidative hair color change products to reduce scalp irritation. However, such additional active ingredients increase the cost of the formulation.A more sustainable approach would therefore be to formulate the cosmetic carrier of the coloring or lightening agent in such a way that the ingredients of the carrier themselves make the agent more skin-compatible. The present application was therefore based on the object of providing an agent for the oxidative color change of keratin fibers with improved skin and scalp compatibility. The ingredients of the carrier should not impair the coloring properties, particularly with regard to color intensity and balancing power. It has now been found that an oxidative color-change agent based on an oil-in-water emulsion with a selected mixture of anionic and non-ionic surfactants and emulsifiers, as well as fatty alcohols, has excellent skin and scalp compatibility properties.The present invention relates, in a first embodiment, to an agent for the oxidative color change of keratin fibers, in particular human hair, which agent is in the form of an oil-in-water emulsion and which contains, in each case based on its weight, the following components: a) 45 to 85% by weight, preferably 50 to 80% by weight, particularly preferably 55 to 75% by weight, extraordinarily preferably 60 to 70% by weight of water, b) at least one anionic surfactant selected from non-ethoxylated C8-C18 alkyl sulfates in a total amount of 4 - 8% by weight, preferably 5 - 7% by weight, c) at least one non-ionic surfactant selected from alkyl mono- and oligoglycosides of the formula R. 4 O-[G] p , in the R 4represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5 - 15 wt.%, preferably 3.0 - 12 wt.%, particularly preferably 3.5 to 10 wt.%, extraordinarily preferably 4.0 to 6.0 wt.%, d) at least one linear 1-alkanol having 8 to 40 carbon atoms in a total amount - based on the weight of the agent - of 5 to 15 wt.%, preferably 7 - 13 wt.%, particularly preferably 9 - 11 wt.%, e) at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C 12 – C 30-carboxylic acids, which may be hydroxylated, in a total amount of 3 - 10 wt.%, preferably 4 - 8 wt.%, particularly preferably 5 - 7 wt.%, f) at least one alkalizing agent, g) zero to less than 0.1 wt.% of peroxide compounds, g) optionally at least one oxidation dye precursor of the developer type and at least one oxidation dye precursor of the coupler type, wherein the agent has a pH in the range from 8.0 to 11.5, preferably in the range from 9.0 to 11.0, particularly preferably in the range from 9.5 to 10.7, extremely preferably 9.8 to 10.5, in each case measured at a temperature of 20 °C. Surfactants and emulsifiers in the sense of the present application are amphiphilic (bifunctional) compounds which consist of at least one hydrophobic and at least one hydrophilic molecular part. The hydrophobic residue is preferably a hydrocarbon group with 8-28 carbon atoms, which can be saturated or unsaturated, linear or branched.This C8-C28 alkyl group is particularly preferably linear. Basic properties of surfactants and emulsifiers are oriented absorption at interfaces, aggregation to micelles, and the formation of lyotropic phases. All information on the states of aggregation of substances (solid, liquid, gaseous) in this application refers to standard conditions. "Standard conditions" in the sense of the present application are a temperature of 25°C and a pressure of 1013.25 mbar. The agent according to the invention is an oil-in-water emulsion. The agent according to the invention also represents the alkalizing component of a two-part oxidative coloring or lightening agent, which is mixed with an aqueous hydrogen peroxide solution shortly before use and then applied to the hair. The agent according to the invention contains, in each case based on its weight, 45 to 85% by weight, preferably 50 to 80% by weight, particularly preferably 55 to 75% by weight.-%, extremely preferably 60 to 70 wt.% water. A further obligatory component of the agents according to the invention and preferred according to the invention is a content of at least one anionic surfactant selected from non-ethoxylated C8-C18 alkyl sulfates, in a total amount of 4-8 wt.%, preferably 5-7 wt.%, in each case based on the weight of the agent according to the invention. Surprisingly, it has been found that non-ethoxylated C8-C18 alkyl sulfates in a total amount of 4-8 wt.% contribute significantly to the scalp compatibility of the agent, particularly in conjunction with the other obligatory components c), d) and e). At the same time, other advantageous application properties, in particular the spreadability on the keratin fibers, the homogeneity of the color change result, and the washability of the application mixture from the keratin fibers, are surprisingly improved.Preferred agents according to the invention are characterized in that the at least one anionic surfactant b), which is selected from non-ethoxylated C8-C18 alkyl sulfates, is selected from n-octyl sulfate, 2-ethylhexyl sulfate, n-decyl sulfate, lauryl sulfate, n-tetradecyl sulfate, cetyl sulfate, stearyl sulfate, and mixtures of these sulfates, in particular mixtures called cocosulfate, wherein the at least one C8-C18 alkyl sulfate is in salt form. Particular preference is given to using the at least one non-ethoxylated C8-C18 alkyl sulfate as the sodium salt. Another preferred salt is the magnesium salt of the at least one non-ethoxylated C8-C18 alkyl sulfate. However, the lithium, potassium and ammonium salt as well as the mono-, di- and trialkanolammonium salt with 2 to 4 C atoms in the alkanol group of the at least one non-ethoxylated C8-C18 alkyl sulfate is also preferred according to the invention.A further obligatory component of the agents according to the invention and preferred according to the invention is a content of at least one non-ionic surfactant selected from alkyl mono- and oligoglycosides of the formula R. 4 O-[G]p, in the R 4 represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms, and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5 - 15 wt.%, preferably 3.0 - 12 wt.%, particularly preferably 3.5 to 10 wt.%, extraordinarily preferably 4.0 to 6.0 wt.%, in each case based on the weight of the agent according to the invention. Surprisingly, it has been found that alkyl mono- and oligoglycosides of the formula R 4 O-[G] pin a total amount of 2.5 – 15 wt.% contribute significantly to the scalp compatibility of the product, especially in conjunction with the other mandatory components b), d) and e). At the same time, other advantageous application properties, in particular the homogeneity of the color change result and the washability of the application mixture from the keratin fibers, are surprisingly improved. Preferred sugars from which the sugar residue G of the non-ionic surfactant of the formula R 4 O-[G]p is selected from the group consisting of erythrose, threose, erythrulose, ribose, deoxyribose, arabinose, glucose, fructose, galactose, arabinose, ribose, xylose, lyxose, allose, altrose, mannose, gulose, idose, talose, fucose, and rhamnose, particularly preferably glucose, galactose, fructose, fucose, and rhamnose, and extremely preferably glucose. The alkyl mono- and oligoglycosides of the formula R 4 O-[G] p , in the R 4stands for an alkyl or alkenyl radical with 4 to 22 carbon atoms, G stands for a sugar radical with 5 or 6 carbon atoms and p stands for positive rational numbers from 1 to 6, contain with G a sugar radical with 5 or 6 carbon atoms, which is derived from aldoses or ketoses with 5 or 6 carbon atoms, preferably from glucose. The preferred alkyl mono- and oligoglycosides are therefore alkyl mono- and oligoglucosides. The index number p in the general formula indicates the degree of oligomerization (DP), i.e. the distribution of mono- and oligoglycosides, and stands for a positive rational number between 1 and 6. While p in the individual molecule must always be an integer and can take on the values p = 1 to 6, the value p for an industrially produced alkyl oligoglycoside is an analytically determined calculated value, which is usually a fractional number.Preference is given to using alkyl mono- and oligoglycosides with an average degree of oligomerization p of 1.1 to 3.0, preferably 1.5 to 2.0. From an application perspective, alkyl mono- and oligoglycosides with a degree of oligomerization of less than 1.7 and, in particular, in the range of 1.2 to 1.6 are preferred. The alkyl radical R. 4 is derived from primary alcohols having 4 to 22, preferably 8 to 18, particularly preferably 8 to 12 carbon atoms. Typical examples are butanol, caproic alcohol, caprylic alcohol, capric alcohol and undecyl alcohol as well as technical mixtures thereof, as obtained, for example, in the hydrogenation of technical fatty acid methyl esters or in the course of the hydrogenation of aldehydes from Roelen's oxosynthesis. Preference is given to alkyl oligoglucosides with a chain length of C8-C10 (DP = 1 to 3), which are used as first runnings in the distillative separation of technical C8-C 18-coconut fatty alcohol and containing less than 6 wt.% C 12 -alcohol, as well as alkyl oligoglucosides based on technical C9 / 11 oxo alcohols (DP = 1 to 3). These are commercially available under the INCI name Caprylyl / Capryl Glucoside. Also preferred is an alkyl oligoglucoside commercial product whose alkyl radical R 4 of technical C8-C 18 -coconut fatty alcohol and is available under the INCI name Coco-Glucoside. The alkyl radical R 4can also be derived from primary alcohols having 12 to 22, preferably 12 to 14 carbon atoms. Typical examples are lauryl alcohol, myristyl alcohol, cetyl alcohol, palmitoleyl alcohol, stearyl alcohol, isostearyl alcohol, oleyl alcohol, elaidyl alcohol, petroselinyl alcohol, arachyl alcohol, gadoleyl alcohol, behenyl alcohol, erucyl alcohol, brassidyl alcohol and technical mixtures thereof, which can be obtained as described above. Preferred are alkyl oligoglucosides based on lauryl alcohol with a DP of 1 to 3. Preferred agents according to the invention are characterized in that at least one nonionic surfactant selected from alkyl mono- and oligoglycosides of the formula R 4 O-[G]p, in the R 4represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms, and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5-15% by weight, preferably 3.0-12% by weight, particularly preferably 3.5 to 10% by weight, extraordinarily preferably 4.0 to 6.0% by weight, in each case based on the weight of the agent. Further agents preferred according to the invention are characterized in that at least one alkyl oligoglycoside of the formula R 4 O-[G]p, in the R 4represents an alkyl radical having 8 to 18, preferably 8 to 12 carbon atoms, G represents a glucose radical and p represents positive rational numbers from 1.1 to 2, is selected from caprylyl glucoside, caprylglucoside, laurylglucoside, n-tetradecylglucoside, cetylglucoside, stearylglucoside, arachidylglucoside, behenylglucoside and mixtures of these glucosides, in particular mixtures with the designation cocoglucoside, mixtures of caprylylglucoside and caprylglucoside and mixtures of caprylylglucoside, caprylglucoside and cocoglucoside. Another mandatory component of the inventive and preferred agents is a content of at least one linear 1-alkanol having 8 to 40 carbon atoms in a total amount—based on the weight of the agent—of 5 to 15 wt.%, preferably 7 to 13 wt.%, particularly preferably 9 to 11 wt.%. Surprisingly, it has been found that linear 1-alkanols having 8 to 40 carbon atoms in a total amount of 5 to 15 wt.%-% contribute significantly to the scalp compatibility of the product, especially in conjunction with the other mandatory components b), c), and e). At the same time, other advantageous application properties, in particular the homogeneity of the color change result and the viscosity stability of the application mixture of the keratin fibers, are surprisingly improved.Preferred agents according to the invention are characterized in that the at least one linear 1-alkanol having 8 to 40 carbon atoms is selected from octan-1-ol (octyl alcohol, caprylic alcohol), decan-1-ol (decyl alcohol, capric alcohol), dodecan-1-ol (dodecyl alcohol, lauryl alcohol), tetradecan-1-ol (tetradecyl alcohol, myristyl alcohol), hexadecan-1-ol (hexadecyl alcohol, cetyl alcohol, palmityl alcohol), octadecan-1-ol (octadecyl alcohol, stearyl alcohol), eicosan-1-ol (eicosyl alcohol, arachidyl alcohol), docosan-1-ol (docosyl alcohol, behenyl alcohol), (13E)-docosen-1-ol (brassidyl alcohol), (13Z)-docos-13-en-1-ol (erucyl alcohol) and lanolin alcohol as well as mixtures of this.Another mandatory component of the inventive and preferred agents is a content of at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C12-C30 carboxylic acids, which may be hydroxylated, in a total amount of 3-10 wt.%, preferably 4-8 wt.%, particularly preferably 5-7 wt.%, based in each case on the weight of the agent. Surprisingly, it has been found that glycerol mono- and diesters of linear or branched, saturated or unsaturated C12-C30 carboxylic acids in a total amount of 3-10 wt.% contribute significantly to the scalp compatibility of the agent, particularly in conjunction with the other mandatory components b), c), and d).At the same time, other advantageous application properties, in particular the homogeneity of the color change result and the viscosity stability of the application mixture of the keratin fibers, are surprisingly improved. Preferred agents according to the invention are characterized in that the at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C12-C30 carboxylic acids, which may be hydroxylated, is selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C. 12 – C 30 -Carboxylic acids which may be hydroxylated, having the formula (II): (II), wherein R1, R2 and R3 independently represent a hydrogen atom or a group of formula (III), (III), whereinR4 represents a linear, saturated or linear, unsaturated C11-C29 alkyl group, with the proviso that at least one and a maximum of two of the radicals selected from R1, R2 and R3 represent a grouping of the formula (III). Particularly preferred agents according to the invention are characterized in that the at least one glycerol mono- or diester is selected from glycerol monostearate, glycerol distearate, glycerol monooleate, glycerol dioleate, glycerol monocaprinate, glycerol dicaprinate, glycerol monolaurate, glycerol dilaurate, glycerol monomyristate, glycerol dimyristate, glycerol monopalmitate, glycerol dipalmitate, glycerol mono-12-hydroxystearate, glycerol di-12-hydroxystearate, glycerol monolanolate, glycerol dilanolate and mixtures of these substances.Extraordinarily preferred agents according to the invention are characterized in that they contain at least two glycerol mono- or diesters of the formula (II), wherein in at least one of these esters the at least one radical R4 represents a linear, saturated C11-C29 alkyl group and in at least one of these esters the at least one radical R4 represents a linear, unsaturated C. 11 -C 29 -alkyl group. The radical R4 in formula (III) represents an unbranched or branched, saturated or unsaturated C 11 -C 27 -alkyl group. R4 is preferably an unbranched, saturated C 11 -C 27-Alkyl group. More preferably, R4 represents an unbranched, saturated C13-C23 alkyl group. Particularly preferably, R4 represents an unbranched, saturated C15-C17 alkyl group. Preferred agents according to the invention are characterized in that at least one compound from the group of formulas (IIa) to (IId) is contained as the glyceryl fatty acid ester of the general formula (II): The compounds of formulas (IIa) to (IId) are also known as glyceryl monostearate and glyceryl monopalmitate. Further preferred agents according to the invention are characterized in that at least one compound from the group of formulas (IIe) to (IIh) is contained as the glyceryl fatty acid ester of general formula (II): The compounds of formulas (IIe) to (IIh) are also known as glyceryl distearate and glyceryl dipalmitate. Further agents preferred according to the invention are characterized in that at least one compound from the group of formulas (IIa) to (IIh) is present as the glyceryl fatty acid ester of formula (II). Further agents particularly preferred according to the invention are characterized in that at least one compound selected from glyceryl monostearate, glyceryl distearate, glyceryl monopalmitate, and glyceryl dipalmitate is present as the glyceryl fatty acid ester of formula (II). Further agents particularly preferred according to the invention are characterized in that a mixture of glyceryl monostearate, glyceryl distearate, glyceryl monopalmitate, and glyceryl dipalmitate is present as the glyceryl fatty acid ester of formula (II).Further particularly preferred agents according to the invention are characterized in that at least one compound selected from glyceryl monooleate and glyceryl dioleate and mixtures thereof is contained as the glyceryl fatty acid ester of the formula (II). Further extremely preferred agents according to the invention are characterized in that a mixture of glyceryl monostearate, glyceryl distearate, glyceryl monopalmitate, glyceryl dipalmitate, glyceryl monooleate and glyceryl dioleate is contained as the glyceryl fatty acid ester of the formula (II). According to the invention, it may be preferable to use only a single glyceryl fatty acid ester of the formula (II). In another, far more preferred embodiment, the agents according to the invention contain mixtures, in particular technical mixtures, of at least four glyceryl fatty acid esters of the formula (II). A technical mixture is, for example, a commercial product such as Cutina. ^GMS is understood to be a mixture of glyceryl monostearate, glyceryl distearate, glyceryl monopalmitate, and glyceryl dipalmitate. The molar ratio of monoester to diester is approximately 1:1. Another technical emulsifier mixture preferred according to the invention is the commercial product Cutina. ^ GMS SE, which contains a mixture of glyceryl monostearate, glyceryl distearate, glyceryl monopalmitate, and glyceryl dipalmitate, where “SE” stands for “self-emulsifying.” The commercial product Cutina ^GMS SE contains, in addition to the mixture of glyceryl monostearate, glyceryl distearate, glyceryl monopalmitate, and glyceryl dipalmitate, 5-10% by weight, preferably 7-8% by weight, of potassium stearate, based in each case on its weight. It follows that further particularly preferred agents according to the invention are characterized in that, in a total amount of 0.1-1% by weight, based on the weight of the agent, at least one salt of a saturated or unsaturated C10-C22 alk(en)ylcarboxylic acid with a monovalent cation is additionally contained, which is preferably selected from the sodium, potassium, ammonium, and monoethanolamine salts of myristic acid, cetyl acid, palmitoleic acid, stearic acid, isostearic acid, oleic acid, elaidic acid, petroselinic acid, arachidic acid, gadoleic acid, behenic acid, erucic acid, and brassidic acid, as well as technical mixtures thereof.As already stated above, the agent according to the invention represents the alkalizing component of a two-part oxidative coloring or lightening agent, which is mixed with an aqueous hydrogen peroxide solution shortly before use and applied to the hair immediately afterward. Such alkalizing components are often formulated as a cream, because the agent requires a certain consistency in order to remain on the keratin fibers to be treated during the exposure time of the color-changing oxidative treatment agent without dripping down. Consistency agents are usually linear 1-alkanols with 8 to 40 carbon atoms, so-called fatty alcohols, i.e., the obligatory component d) of the agents according to the invention. To ensure that the cream can be easily rinsed out of the keratin fibers after the exposure time, it also contains surfactants, usually wash-active anionic surfactants.Alkyl mono- and oligoglycosides, so-called APGs, are also well-suited as detergent surfactants, even though they are non-ionic. Experts generally assume that detergent surfactants, especially anionic surfactants, have a higher skin irritation potential than fatty alcohols. To formulate a coloring or lightening agent that is particularly compatible with skin and scalp, the expert would therefore have kept the detergent content relatively low compared to the amount of fatty alcohols. During the present development work, it was surprisingly discovered that—at least with the detergents b) and c) selected according to the invention—skin compatibility is improved if, based on weight, approximately the same amount of detergent surfactants as fatty alcohols are contained.Agents which are particularly preferred according to the invention are therefore characterized in that the weight ratio of the total weight of components b) and c) to the total weight of component(s) d) is in the range from 0.8 to 1.2, preferably in the range from 0.9 to 1.1, particularly preferably in the range from 1.0 to 1.1. Additional surfactants which are different from the obligatory components b), c), d) and e) and which can optionally be present in small amounts can be selected from zwitterionic surfactants, amphoteric surfactants, anionic surfactants which are different from component b), and nonionic surfactants which are different from c). Zwitterionic surfactants are surface-active compounds which carry at least one quaternary ammonium group and at least one carboxylate, sulfonate or sulfate group in the molecule.Particularly suitable zwitterionic surfactants are the so-called betaines, such as N-alkyl-N,N-dimethylammonium glycinates, for example, cocoalkyl dimethylammonium glycinate, N-acylaminopropyl-N,N-dimethylammonium glycinates, for example, cocoacylaminopropyl dimethylammonium glycinate, and 2-alkyl-3-carboxymethyl-3-hydroxyethylimidazolines, each with 8 to 18 carbon atoms in the alkyl or acyl group, as well as cocoacylaminoethyl hydroxyethyl carboxymethyl glycinate. A preferred zwitterionic surfactant is the fatty acid amide derivative known under the INCI name Cocamidopropyl Betaine. Amphoteric surfactants are understood to be surface-active compounds which, in addition to a C8-C24 alkyl or acyl group in the molecule, contain at least one free amino group and at least one -COOH- or -SO3H- group and are capable of forming internal salts.Examples of suitable amphoteric surfactants are N-alkylglycines, N-alkylpropionic acids, N-alkylaminobutyric acids, N-alkyliminodipropionic acids, N-hydroxyethyl-N-alkylamidopropylglycines, N-alkyltaurines, N-alkylsarcosines, 2-alkylaminopropionic acids, and alkylaminoacetic acids, each containing approximately 8 to 24 carbon atoms in the alkyl group. Particularly preferred amphoteric surfactants are N-cocoalkylaminopropionate, cocoacylaminoethylaminopropionate, and C. 12 -C 18-Acylsarcosine. Suitable anionic surfactants are all anionic surface-active substances suitable for use on the human body that contain a water-solubilizing anionic group, for example a carboxylate, sulfate, sulfonate, or phosphate group, and a lipophilic alkyl group with approximately 8 to 30 carbon atoms, preferably 8 to 24 carbon atoms, in the molecule. The molecule may also contain glycol or polyglycol ether groups, ester, ether, and amide groups, as well as hydroxyl groups. Examples of surfactants suitable as additional anionic surfactants, which are different from components b), are, in the form of the sodium, potassium and ammonium as well as the mono-, di- and trialkanolammonium salts with 2 to 4 C atoms in the alkanol group, linear and branched fatty acids with 8 to 30 C atoms (soaps), polyethoxylated ethercarboxylic acids, acylsarcosides, acyltaurides, acyl isethionates,Sulfosuccinic acid mono- and dialkyl esters and sulfosuccinic acid mono-alkylpolyoxyethyl esters with 1 to 6 ethylene oxide groups, linear alkanesulfonates, linear alpha-olefinsulfonates, sulfonates of unsaturated fatty acids with up to 6 double bonds, alpha-sulfofatty acid methyl esters of fatty acids, C8-C20 alkyl ether sulfates with 1 to 4 ethoxy groups, sulfated hydroxyalkyl polyethylene and / or hydroxyalkylene propylene glycol ethers, esters of tartaric acid or citric acid with ethoxylated or propoxylated fatty alcohols, optionally polyethoxylated alkyl and / or alkenyl ether phosphates, sulfated fatty acid alkylene glycol esters, and monoglyceride sulfates and monoglyceride ether sulfates. Preferred additional anionic surfactants other than component b) are soaps, C8-C20 alkyl ether sulfates, and C8-C20 ether carboxylic acids with 8 to 20 carbon atoms in the alkyl group and up to 12 ethylene oxide groups in the molecule. Further agents preferred according to the invention are characterized in thatthat an additional non-ionic surfactant selected from N-acyl-N-methylglucamides of formula (I), where the acyl radical R 5CO- is derived from a linear or branched, saturated or unsaturated C8-C22 carboxylic acid, which may be hydroxylated, in a total amount of 1-10 wt.%, preferably 3-8 wt.%, particularly preferably 5-6 wt.%, in each case based on the weight of the composition. Surprisingly, it has been found that N-acyl-N-methylglucamides of formula (I) in a total amount of 1-10 wt.% further contribute to the scalp compatibility of the composition, particularly in conjunction with the obligatory components b), c), d), and e). At the same time, other advantageous application properties, in particular the homogeneity of the color change result and the softness of the keratin fibers after completion of the treatment according to the invention, are surprisingly improved.Particularly preferred agents according to the invention are characterized in that the at least one N-acyl-N-methylglucamide of the formula (I) is selected from N-capryloyl-N-methylglucamide, N-caproyl-N-methylglucamide, N-lauroyl-N-methylglucamide, N-myristoyl-N-methylglucamide, N-palmitoyl-N-methylglucamide, N-stearoyl-N-methylglucamide, N-arachidoyl-N-methylglucamide, N-behenoyl-N-methylglucamide, and from mixtures of these compounds, in particular from mixtures with the name N-cocoyl-N-methylglucamide. Further preferred agents according to the invention are characterized in that at least one additional non-ionic surfactant selected from C8-C ethoxylated with 7-80 mol of ethylene oxide per mol of castor oil. 30-alkanols with 4-100 mol of ethylene oxide per mole, with 4-50 mol of ethylene oxide per mole of ethoxylated sorbitan monoesters of linear saturated and unsaturated C12-C30 carboxylic acids, which may be hydroxylated, in particular those of myristic acid, palmitic acid, stearic acid or mixtures of these fatty acids, as well as mixtures of the aforementioned substances. Additional nonionic surfactants preferred according to the invention, which differ from c), are selected from castor oil ethoxylated with 7-80 mol of ethylene oxide per mole, are selected from castor oil ethoxylated with 20-65 mol of ethylene oxide per mole, particularly preferably from castor oil ethoxylated with 30-60 mol of ethylene oxide per mole, extremely preferably from castor oil ethoxylated with 40-55 mol of ethylene oxide per mole. Additional nonionic surfactants preferred according to the invention, other than c), are selected from ethoxylated C8-C30 alkanols having the formula R 1O(CH2CH2O)nH, where R 1stands for a linear or branched alkyl and / or alkenyl radical having 8 - 30 carbon atoms and n, the average number of ethylene oxide units per molecule, for numbers from 4 - 100, preferably 6 - 30, particularly preferably 12 to 20 mol of ethylene oxide to 1 mol of alkanol, which is preferably selected from caprylic alcohol, 2-ethylhexyl alcohol, capric alcohol, lauryl alcohol, isotridecyl alcohol, tridecyl alcohol, myristyl alcohol, cetyl alcohol, palmitoleyl alcohol, stearyl alcohol, isostearyl alcohol, oleyl alcohol, elaidyl alcohol, petroselinyl alcohol, arachyl alcohol, gadoleyl alcohol, behenyl alcohol, erucyl alcohol and brassidyl alcohol and from technical mixtures thereof. Adducts of 10-100 mol of ethylene oxide with technical fatty alcohols containing 12-18 carbon atoms, such as coconut, palm, palm kernel, or tallow fatty alcohol, are also suitable. Particularly preferred are Ceteth-20, Steareth-20, Ceteareth-20, Trideceth-6, Isotrideceth-6, Undeceth-6, Myreth-6, Laureth-10, Laureth-12, Laureth-15,Laureth-20, Laureth-30, Myreth-10, Myreth-12, Myreth-15, Myreth-20, Myreth-30, Ceteth-10, Ceteth-12, Ceteth-15, Ceteth-30, Steareth-10, Steareth-12, Steareth-15, Steareth-30, Oleth-10, Oleth-12, Oleth-15, Oleth-20, Oleth-30, Ceteareth-10, Ceteareth-15, Ceteareth-12, Ceteareth-15, Ceteareth-30 and Coceth-10, Coceth-12, Coceth-15, Coceth-20 and Coceth-30; Ceteth-20, Steareth-20, Ceteareth-20, Ceteth-10, Ceteth-12, Ceteth-15, Ceteth-30, Steareth-10, Steareth-12, Steareth-15, and Steareth-30, as well as mixtures thereof, are particularly preferred. Particularly preferred compositions according to the invention contain at least one nonionic surfactant other than c) and which is at least one of the aforementioned ethoxylated surfactants, in a total amount of 0.1-2.0% by weight, preferably 0.3-1.5% by weight, based in each case on the weight of the composition. These surfactants can also further improve scalp compatibility. Surprisingly, it was found thatthat the skin compatibility properties of the agents (M1) according to the invention can be improved by the addition of at least one further fatty component which differs from the obligatory components d) and e). Further agents (M1) preferred according to the invention are characterized in that they additionally contain at least one fatty component which differs from the obligatory components d) and e) and which is selected from oils that are liquid at 25°C and fatty components with a melting point in the range from >25°C to 120°C, as well as mixtures thereof. Fatty components according to the invention are lipophilic organic substances which have a water solubility of a maximum of 0.001% by weight or less at 20°C. These fatty substances include oils, fats, and waxes according to the invention. Linear,According to the invention, saturated fatty alcohols are considered non-ionic water-in-oil emulsifiers. Essential oils and perfume oils or fragrances are also not considered fatty substances for the purposes of the present invention. Particularly preferred agents (M1) according to the invention are characterized in that the at least one fatty component, which is different from the obligatory components d) and e), is selected from branched and saturated or unsaturated alkanols having 6 - 30 carbon atoms, glycerol triesters of linear or branched, saturated or unsaturated, optionally hydroxylated C8-30 fatty acids, dicarboxylic acid esters of linear or branched C2-C10 alkanols, esters of branched saturated or unsaturated fatty alcohols having 2 - 30 carbon atoms with linear or branched saturated or unsaturated fatty acids having 2 - 30 carbon atoms, which may be hydroxylated, mineral oil, isoparaffins,Polydecenes, silicone oils and mixtures thereof, preferably selected from branched and saturated or unsaturated alkanols having 6 - 30 carbon atoms, glycerol triesters of linear or branched, saturated or unsaturated, optionally hydroxylated C, 8-30 -fatty acids, dicarboxylic acid esters of linear or branched C2-C 10-alkanols, esters of branched saturated or unsaturated fatty alcohols having 2-30 carbon atoms with linear or branched saturated or unsaturated fatty acids having 2-30 carbon atoms, which may be hydroxylated, and mixtures thereof. Among the oils preferred according to the invention, which are liquid at 25°C and are selected from branched saturated or unsaturated fatty alcohols having 6-30 carbon atoms, are 2-octyldodecanol, 2-hexyldecanol, and 2-ethylhexyl alcohol, of which 2-octyldodecanol is particularly preferred. Further oils preferred according to the invention are selected from the triglycerides of linear or branched, saturated or unsaturated, optionally hydroxylated C8-30 fatty acids. The use of natural oils, e.g.These can be argan oil, moringa oil, macadamia oil, apricot kernel oil, marula oil, soybean oil, cottonseed oil, sunflower oil, palm oil, palm kernel oil, linseed oil, almond oil, castor oil, corn oil, olive oil, rapeseed oil, sesame oil, safflower oil, wheat germ oil, peach kernel oil, and the liquid components of coconut oil, as well as mixtures of these oils. Synthetic triglyceride oils or those obtained by transesterification of natural oils are also suitable, especially capric / caprylic triglycerides, e.g., the commercial product Myritol. ®318 (BASF) with unbranched fatty acid residues and glyceryl triisostearin with branched fatty acid residues. Other particularly preferred oils according to the invention are selected from the dicarboxylic acid esters of linear or branched C2-C10 alkanols, in particular diisopropyl adipate, di-n-butyl adipate, di-(2-ethylhexyl) adipate, dioctyl adipate, diethyl / di-n-butyl / dioctyl sebacate, diisopropyl sebacate, dioctyl malate, dioctyl maleate, dicaprylyl maleate, diisooctyl succinate, di-2-ethylhexyl succinate, and di-(2-hexyldecyl) succinate.Further oils which may be preferred according to the invention are selected from the esters of linear or branched saturated or unsaturated fatty alcohols having 2-30 carbon atoms with linear or branched saturated or unsaturated fatty acids having 2-30 carbon atoms, which may be hydroxylated, and which are preferably selected from isopropyl myristate, isopropyl palmitate, isopropyl stearate, isopropyl isostearate, isopropyl oleate, isooctyl stearate, isononyl stearate, isocetyl stearate, isononyl isononanoate, isotridecyl isononanoate, cetearyl isononanoate, 2-ethylhexyl laurate, 2-ethylhexyl isostearate, 2-ethylhexyl cocoate, 2-octyldodecyl palmitate, butyloctanoic acid 2-butyloctanoate, diisotridecyl acetate, n-butyl stearate, n-Hexyl laurate, n-decyl oleate, oleyl oleate, oleyl erucate, erucyl oleate, erucyl erucate, hexyldecyl stearate, hexyldecyl laurate, isodecyl neopentanoate, isononyl isononanoate, 2-ethylhexyl palmitate and 2-ethylhexyl stearate.Further oils which may be preferred according to the invention are selected from the C8-C22 fatty alcohol esters of monobasic or polybasic C2-C7 hydroxycarboxylic acids, in particular the esters of glycolic acid, lactic acid, malic acid, tartaric acid, citric acid and salicylic acid. It may be preferred according to the invention to use mixtures of the aforementioned oils. Further agents (M1) which are preferred according to the invention are characterized in that the at least one fatty component which differs from the obligatory components d) and e) is selected from fatty components with a melting point in the range from >25°C to 120°C, preferably selected from paraffin wax, saturated n-alkanes having at least 20 carbon atoms, preferably having 22 to 60 carbon atoms, for example docosane, Butyrospermum Parkii (shea butter), mango butter, cocoa butter and esters of saturated, monobasic C8-C. 18 - Alcohols with saturated C 12 -C 18-Monocarboxylic acids, in particular stearyl laurate, cetearyl stearate, cetyl palmitate and myristyl myristate, esters of a saturated, monovalent C16-C60 alkanol and a saturated C8-C36 monocarboxylic acid, in particular cetyl behenate, stearyl behenate C20-C40 alkyl stearate, candelilla wax, carnauba wax and beeswax, glycerol triesters of saturated linear C 12 – C 30-carboxylic acids, which may be hydroxylated, in particular castor wax, as well as mixtures of the aforementioned substances. Further particularly preferred agents (M1) according to the invention are characterized in that they contain at least one fatty component, which differs from the obligatory components d) and e), in a total amount of 0.1-5 wt.%, preferably 0.2-4 wt.%, particularly preferably 0.5-3 wt.%, and extraordinarily preferably 1 to 2 wt.%, in each case based on the weight of the agent (M1). Essential oils and perfume oils or fragrances are not considered fatty substances within the meaning of the present invention. Essential oils are understood, according to the invention, to be mixtures of volatile components produced by steam distillation from plant raw materials, such as citrus oils. Wherever a cosmetic oil is mentioned in the present application, this always refers to a cosmetic oil.which is neither a fragrance nor an essential oil, is liquid under normal conditions, and immiscible with water. The definition of a fragrance within the meaning of the present application corresponds to the definition commonly used by those skilled in the art, as can be found in the RÖMPP Chemistry Lexicon, as of December 2007. According to this definition, a fragrance is a chemical compound with odor and / or taste that stimulates the receptors of the hair cells of the olfactory system (adequate stimulus). The necessary physical and chemical properties for this are a low molecular weight of a maximum of 300 g / mol, a high vapor pressure, minimal water and high lipid solubility, as well as weak polarity and the presence of at least one osmophoric group in the molecule. In order to avoid volatile, low-molecular substances, which are usually not considered and used as fragrances, but primarily as solvents, such as ethanol,To distinguish propanol, isopropanol, and acetone from fragrances according to the invention, fragrances according to the invention have a molecular mass of 74 to 300 g / mol, contain at least one osmophoric group in the molecule, and exhibit an odor and / or taste, i.e., they stimulate the receptors of the hair cells of the olfactory system. Particularly preferred agents according to the invention (M1) are characterized in that they contain at least one essential oil, perfume oil, or fragrance, preferably in a total amount of 0.1-3% by weight, particularly preferably 0.2-1% by weight, extraordinarily preferably 0.5-0.8% by weight, in each case based on the weight of the agent according to the invention. Color-changing agents preferred according to the invention have a viscosity in the range of 5000 - 50000 mPas, preferably 5500 - 30000 mPas, particularly preferably 6000 - 25000 mPas, extraordinarily preferably 6500 - 20000 mPas,each measured at 20°C. The ready-to-use mixture of the color-changing agent according to the invention or preferred according to the invention and the hydrogen peroxide solution preferably has a viscosity in the range of 5,000-20,000 mPas, preferably 6,000-18,000 mPas, particularly preferably 6,500-15,000 mPas, and extraordinarily preferably 7,000-12,000 mPas, each measured at 20°C. A Haake Model MVII rheometer can be used for the measurement, for example, at a shear rate of 7.2 revolutions per second. Oxidative color-changing processes on keratin fibers typically occur in a neutral to alkaline environment. Therefore, the pH of the agent according to the invention is in the range from 8.0 to 11.5, preferably in the range from 9.0 to 11.0, particularly preferably in the range from 9.5 to 10.7, extremely preferably 9.8 to 10.5,each measured at a temperature of 20 °C. As a further obligatory ingredient, the agent according to the invention therefore contains at least one alkalizing agent. The alkalizing agents preferably suitable for adjusting the pH of the agents according to the invention are selected from ammonia, ammonium hydroxide, alkanolamines, alkali hydroxides, basic amino acids, alkali metal metasilicates, alkali metal disilicates, alkali phosphates and dialkali monohydrogen phosphates, as well as mixtures of these substances. Preferred color-changing agents according to the invention are characterized in that they do not contain ammonia or ammonium hydroxide. Particularly preferred alkalizing agents are selected from alkanolamines, alkali hydroxides, basic amino acids, alkali metal metasilicates, alkali metal disilicates,Alkali metal phosphates and dialkali monohydrogen phosphates, as well as mixtures of these substances. The alkali metal ions in the aforementioned alkalizing salts are preferably lithium, sodium, or potassium, in particular sodium or potassium. The basic amino acids usable as alkalizing agents are preferably selected from the group consisting of L-arginine, D-arginine, D,L-arginine, L-lysine, D-lysine, D,L-lysine, and mixtures thereof. Particularly preferred basic amino acids are L-arginine, L-lysine, and mixtures thereof. The alkali metal hydroxides usable as alkalizing agents are preferably selected from sodium hydroxide and potassium hydroxide, as well as mixtures thereof. Potassium hydroxide is extremely preferred according to the invention. The alkanolamines usable as alkalizing agents preferably have 2 to 9 carbon atoms in the molecule and are particularly preferably selected from primary amines with a C2-C6 alkyl parent structure,which carries at least one hydroxyl group. Particularly preferred alkanolamines are selected from the group consisting of 2-aminoethanol-1-ol (monoethanolamine), 3-aminopropan-1-ol, 4-aminobutan-1-ol, 5-aminopentan-1-ol, 1-aminopropan-2-ol, 1-aminobutan-2-ol, 1-aminopentan-2-ol, 1-aminopentan-3-ol, 1-aminopentan-4-ol, 3-amino-2-methylpropan-1-ol, 1-amino-2-methylpropan-2-ol, 3-aminopropan-1,2-diol, and 2-amino-2-methylpropan-1,3-diol, as well as mixtures thereof. Particularly preferred alkanolamines according to the invention are selected from the group consisting of 2-aminoethan-1-ol, 2-amino-2-methylpropan-1-ol, and 2-amino-2-methylpropan-1,3-diol; 2-aminoethan-1-ol is particularly preferred. However, secondary amines such as diisopropanolamine (1,1'-iminodipropan-2-ol) are also suitable alkalizing agents according to the invention. Particularly preferred agents according to the invention contain, as alkalizing agents, 2-aminoethan-1-ol, potassium hydroxide, L-arginine,L-lysine and mixtures thereof. Exceptionally preferred color-changing agents according to the invention contain a mixture of 2-aminoethanol-1-ol, potassium hydroxide, L-arginine, and L-lysine. Color-changing agents preferred according to the invention are characterized in that at least one alkalizing agent is present in a total amount of 0.5-10 wt.%, preferably 0.7-7 wt.%, particularly preferably 1.0-5 wt.%, extraordinarily preferably 1.2-3 wt.%, based in each case on the weight of the color-changing agent. The agents according to the invention are intended for use in the context of an oxidative color change of keratin fibers, in particular human hair. In oxidative color-changing processes, the agent according to the invention (M1) is usually applied to the keratin fibers immediately before application.which is neutral or alkaline and preferably contains one or more oxidation dye precursors and optionally one or more direct dyes, is mixed with an aqueous hydrogen peroxide-containing composition (M2) having an acidic pH to form a ready-to-use color-changing agent and is applied to the keratin fibers immediately after mixing. The neutral to alkaline medium of the application mixture leads to the activation of the hydrogen peroxide, whereby the melanin in the keratin fibers is degraded. If the agent according to the invention (M1) contains oxidation dye precursors, the hydrogen peroxide causes them to react with each other and form permanent dyes. To prevent this dye formation from starting during storage of the agent, the agents according to the invention contain, based on their weight, zero to less than 0,1 wt.% of peroxide compounds. In a preferred embodiment, the agent according to the invention for color-changing keratin fibers contains at least one developer-type oxidation dye precursor and at least one coupler-type oxidation dye precursor. Based on their reactivity, oxidation dye precursors can be divided into two categories: developer components and coupler components. Coupler components do not produce significant coloration on their own during oxidative coloring, but always require the presence of developer components. Developer components can form the actual dye with themselves. The developer and coupler components are usually used in free form. However, for substances containing amino groups, it may be preferable to use them in salt form.particularly in the form of hydrochlorides or hydrobromides or sulfates. Particularly preferred developer components are selected from at least one compound from the group formed by p-phenylenediamine, p-toluenediamine, 2-(2-hydroxyethyl)-p-phenylenediamine, 2-(1,2-dihydroxyethyl)-p-phenylenediamine, N,N-bis-(2-hydroxyethyl)-p-phenylenediamine, 2-methoxymethyl-p-phenylenediamine, N-(4-amino-3-methylphenyl)-N-[3-(1H-imidazol-1-yl)propyl]amine, N,N'-bis-(2-hydroxyethyl)-N,N'-bis-(4-aminophenyl)-1,3-diamino-propan-2-ol, bis-(2-hydroxy-5-aminophenyl)methane, 1,3-bis-(2,5-diaminophenoxy)propan-2-ol, N,N'-Bis-(4-amino-phenyl)-1,4-diazacycloheptane, 1,10-bis-(2,5-diaminophenyl)-1,4,7,10-tetraoxadecane, p-aminophenol, 4-amino-3-methylphenol, 4-amino-2-aminomethylphenol, 4-amino-2-(1,2-dihydroxyethyl)phe- nol and 4-amino-2-(diethylaminomethyl)phenol, 4,5-diamino-1-(2-hydroxyethyl)pyrazole, 2,4,5,6-tetraaminopyrimidine, 4-hydroxy-2,5,6-triaminopyrimidine, 2-hydroxy-4,5,6-triaminopyrimidine, the physiologically acceptable salts of these compounds, and mixtures of these developer components and developer component salts. Particularly preferred developer components are selected from 4,5-diamino-1-(2-hydroxyethyl)pyrazole, p-tolylenediamine, 2-(2-hydroxyethyl)-p-phenylenediamine, 2-methoxymethyl-p-phenylenediamine, N-(4-amino-3-methylphenyl)-N-[3-(1H-imidazol-1-yl)propyl]amine, and mixtures of these compounds and their physiologically acceptable salts. Exceptionally preferred are 4,5-diamino-1-(2-hydroxyethyl)pyrazole, p-toluenediamine, 2-(2-hydroxyethyl)-p-phenylenediamine, 2-methoxymethyl-p-phenylenediamine, and mixtures of these compounds, as well as their physiologically acceptable salts. At least one developer component or its salt is preferably present in a total amount of 0.01 to 5 wt.%, preferably 0.1 to 4 wt.%, particularly preferably 0.2 to 3.0 wt.%, exceptionally preferably 0.5 to 2.0 wt.%.in each case based on the weight of the agent (M1) according to the invention. Preferably, at least one coupler component or its salt is present in a total amount of 0.001 to 4 wt.%, preferably 0.01 to 3 wt.%, particularly preferably 0.05 to 2 wt.%, extraordinarily preferably 0.1 to 1 wt.%, in each case based on the weight of the agent (M1) according to the invention. The total amount of oxidation dye precursors or their salts in the agent (M1) according to the invention is preferably 0.011 to 9 wt.%, preferably 0.11 to 7 wt.%, particularly preferably 0.25 to 5 wt.%, extraordinarily preferably 0.6 to 3.0 wt.%, in each case based on the weight of the agent (M1). Coupler components within the meaning of the invention allow at least one substitution of a chemical radical of the coupler by the oxidized form of the developer component. A covalent bond forms between the coupler and developer components. Couplers are preferably cyclic compounds,which carry at least two groups on the ring selected from (i) optionally substituted amino groups and / or (ii) hydroxyl groups. If the cyclic compound is a six-membered ring (preferably aromatic), said groups are preferably in the ortho or meta position to each other. Preferred agents according to the invention are characterized in that the at least one oxidation dye precursor of the coupler type is selected from one of the following classes: - 3-aminophenol (m-aminophenol) and / or its derivatives, - 3-aminoaniline (m-diaminobenzene) and / or its derivatives, - 2-aminoaniline (1,2-diaminobenzene; o-diaminobenzene) and / or its derivatives, - 2-aminophenol (o-aminophenol) and / or its derivatives, - naphthalene derivatives having at least one hydroxyl group, - di- or trihydroxybenzene and / or their derivatives, - pyridine derivatives, - pyrimidine derivatives, - monohydroxyindole derivatives and / or monoaminoindole derivatives,- monohydroxyindoline derivatives and / or monoaminoindoline derivatives, - pyrazolone derivatives, such as 1-phenyl-3-methylpyrazol-5-one, - morpholine derivatives, such as 6-hydroxybenzomorpholine or 6-aminobenzomorpholine, - quinoxaline derivatives, such as 6-methyl-1,2,3,4-tetrahydroquinoxaline, Mixtures of two or more compounds from one or more of these classes are also preferred according to the invention in this embodiment. Particularly preferred additional coupler components according to the invention are selected from 3-aminophenol, 5-amino-2-methylphenol, 3-amino-2-chloro-6-methylphenol, 2-hydroxy-4-aminophenoxyethanol, 5-amino-4-chloro-2-methylphenol, 5-(2-hydroxyethyl)amino-2-methylphenol, 2,4-dichloro-3-aminophenol, 2-aminophenol, 3-phenylenediamine, 2-(2,4-diaminophenoxy)ethanol, 1,3-bis(2,4-diaminophenoxy)propane, 1-beta-hydroxyethyl-3,4-methylenedioxyaniline, 1-methoxy-2-amino-4-(2'-hydroxyethylamino)benzene (= 2-amino-4-hydroxyethylaminoanisole), 1,3-Bis (2,4-diaminophe- nyl)propan, 2,6-Bis(2'-hydroxyethylamino)-1-methylbenzol, 2-({3-[(2-Hydroxyethyl)amino]-4-meth- oxy-5-methylphenyl}amino)ethanol, 2-({3-[(2-Hydroxyethyl)amino]-2-methoxy-5-methylphenyl}- amino)ethanol, 2-({3-[(2-Hydroxyethyl)amino]-4,5-dimethylphenyl}amino)ethanol, 2-[3-Morpholin-4- ylphenyl)amino]ethanol, 3-Amino-4-(2-methoxyethoxy)-5-methylphenylamin, 1-Amino-3-bis-(2- hydroxyethyl)aminobenzol, Resorcin, 2-Methylresorcin, 4-Chlorresorcin, 1,2,4-Trihydroxybenzol, 2- Amino-3-hydroxypyridin, 3-Amino-2-methylamino-6-methoxypyridin, 2,6-Dihydroxy-3,4-dimethyl- pyridin, 3,5-Diamino-2,6-dimethoxypyridin, 1-Phenyl-3-methylpyrazol-5-on, 1-Naphthol, 1,5-Dihydro- xynaphthalin, 2,7-Dihydroxynaphthalin, 1,7-Dihydroxynaphthalin, 1,8-Dihydroxynaphthalin, 4- Hydroxyindol, 6-Hydroxyindol, 7-Hydroxyindol, 4-Hydroxyindolin, 6-Hydroxyindolin,7-Hydroxyindoline or mixtures of these compounds or the physiologically acceptable salts of the aforementioned compounds. Particularly preferred are 3-aminophenol, resorcinol, 2-methylresorcinol, 5-amino-2-methylphenol, 2-(2,4-diaminophenoxy)ethanol, 1,3-bis(2,4-diaminophenoxy)propane, 1-methoxy-2-amino-4-(2'-hydroxyethylamino)benzene, 2-amino-3-hydroxypyridine, 1-naphthol, and 1-beta-hydroxyethyl-3,4-methylenedioxyaniline, as well as their physiologically acceptable salts and mixtures of the aforementioned components. It may be preferable to avoid resorcinol and resorcinol derivatives. In order to achieve a balanced and subtle nuance formation or to mattify undesirable residual color impressions caused by melanin degradation products, especially in the reddish or bluish range, it is preferred according to the inventionif further color-providing components are contained in the oxidative color-changing agent according to the invention. In a further embodiment, the oxidative color-changing agents according to the invention can therefore additionally contain at least one direct dye. These are dyes that are absorbed directly onto the hair and do not require an oxidative process to form the color. Direct dyes are usually nitrophenylenediamines, nitroaminophenols, azo dyes, anthraquinones, or indophenols. Direct dyes can be anionic, cationic, or non-ionic. The direct dyes are each preferably contained in an amount of 0.001 to 2% by weight, based on the weight of the oxidative color-changing agent. Preferred anionic direct dyes are those known under the international designations or trade names Acid Yellow 1, Yellow 10, Acid Yellow 23, Acid Yellow 36, Acid Orange 7, Acid Red 33,Acid Red 52, Pigment Red 57:1, Acid Blue 7, Acid Green 50, Acid Violet 43, Acid Black 1, Acid Black 52, Bromophenol Blue, and Tetrabromophenol Blue. Preferred cationic direct dyes are cationic triphenylmethane dyes, for example Basic Blue 7, Basic Blue 26, Basic Violet 2, and Basic Violet 14; aromatic systems substituted with a quaternary nitrogen group, such as Basic Yellow 57, Basic Red 76, Basic Blue 99, Basic Brown 16, and Basic Brown 17; cationic anthraquinone dyes, such as HC Blue 16 (Bluequat B), and direct dyes containing a heterocycle having at least one quaternary nitrogen atom, in particular Basic Yellow 87, Basic Orange 31, and Basic Red 51. The cationic direct dyes marketed under the trademark ArianorCationic direct dyes are also preferred according to the invention. Nonionic direct dyes that are particularly suitable are nonionic nitro and quinone dyes and neutral azo dyes. Preferred non-ionic direct dyes are the compounds known under the international designations 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, 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-dinitro-phenol, 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. According to the invention, very particular preference is given to containing at least one cationic direct dye selected from Basic Blue 7, Basic Blue 26, Basic Violet 2, Basic Violet 14, Basic Yellow 57, Basic Red 76, Basic Blue 99, Basic Brown 16, Basic Brown 17, HC Blue 16 (Bluequat B), Basic Yellow 87, Basic Orange 31, and Basic Red 51, as well as mixtures thereof. Further preferred agents (M1) according to the invention are characterized in that they do not contain any polymer or copolymer with acrylate-, methacrylate- or vinyl-containing monomers and no polyurethane, that is to say that, based on their weight, 0.0 wt.% of the aforementioned (co)polymers are contained in (M1). Oxidative color-changing agents with ammonia or ammonium hydroxide release ammonia during the color-changing process, so that non-volatile alkalizing agents, i.e., all alkalizing agents other than ammonia or ammonium hydroxide, may be preferred according to the invention. Therefore, for some applications according to the invention, it may be preferred for the agents according to the invention not to contain ammonia or ammonium hydroxide as an alkalizing agent. The present invention further provides a packaging unit (kit of parts) which, packaged separately, comprises the following: i) at least one container (C1) containing an agent for the oxidative color change of keratin fibers, in particular human hair, which is in the form of an oil-in-water emulsion and which, in each case based on its weight, contains the following components: a) 45 to 85 wt.%,preferably 50 to 80 wt.%, particularly preferably 55 to 75 wt.%, extraordinarily preferably 60 to 70 wt.% water, b) at least one anionic surfactant selected from non-ethoxylated C8-C18 alkyl sulfates in a total amount of 4-8 wt.%, preferably 5-7 wt.%, c) at least one non-ionic surfactant selected from alkyl mono- and oligoglycosides of the formula R, 4 O-[G]p, in the R 4represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5 - 15 wt.%, preferably 3.0 - 12 wt.%, particularly preferably 3.5 to 10 wt.%, extraordinarily preferably 4.0 to 6.0 wt.%, d) at least one linear 1-alkanol having 8 to 40 carbon atoms in a total amount - based on the weight of the agent - of 5 - 15 wt.%, preferably 7 - 13 wt.%, particularly preferably 9 - 11 wt.%, e) at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C12 - C30 carboxylic acids, which may be hydroxylated, in a total amount of 3 - 10 % by weight, preferably 4 - 8 % by weight, particularly preferably 5 - 7 % by weight, f) at least one alkalizing agent, g) zero to less than 0.1 % by weight.-% of peroxide compounds, h) optionally at least one oxidation dye precursor of the developer type and at least one oxidation dye precursor of the coupler type, wherein the agent has a pH in the range from 8.0 to 11.5, preferably in the range from 9.0 to 11.0, particularly preferably in the range from 9.5 to 10.7, extremely preferably 9.8 to 10.5, in each case measured at a temperature of 20 °C, and ii) at least one container (C2) containing an oxidizing agent preparation (M2) which contains 40 - 96 wt.%, preferably 65 - 90 wt.%, particularly preferably 70 - 80 wt.%, water, furthermore hydrogen peroxide in a total amount of 0.5 to 23 wt.%, further preferably 2.5 to 21 wt.%, particularly preferably 4 to 20 wt.%, very particularly preferably 5 to 18 wt.% and extremely preferably 6 to 12 wt.%, and a pH in the range of 2.0 to 6.5, preferably 2.5 - 5.5, particularly preferably 2.8 to 4.5, each measured at 20°C, wherein the weight.-% data each refer to the weight of the oxidizing agent preparation (M2), optionally containing at least one oil and / or at least one surfactant. In a preferred embodiment according to the invention, this kit additionally comprises a separately packaged oxidizing agent preparation (M3) containing i) at least one oxidizing agent selected from the inorganic salts of a peroxosulfuric acid, and mixtures of these salts, and j) 0 to 10 wt.%, preferably 0.1 to 8 wt.%, particularly preferably 0.5 to 5 wt.% water, wherein the wt.% data each refer to the weight of the oxidizing agent preparation (M3), k) wherein (M3) optionally contains at least one oil and / or at least one surfactant. With regard to further preferred embodiments of the kit according to the invention and preferred according to the invention, what has been said regarding the agents according to the invention and preferred according to the invention for oxidative color change applies mutatis mutandis.The present invention further relates to the use of an agent according to the invention or preferred according to the invention for the oxidative color change of keratinic fibers, in particular human hair. With regard to further preferred embodiments of the use according to the invention, what has been said about the agents according to the invention and preferred according to the invention for oxidative color change applies mutatis mutandis. The present invention further relates to a method for oxidative color change, which comprises the following method steps: i) Providing a cosmetic agent (M1) for the oxidative color change of keratinic fibers, in particular human hair, which is in the form of an oil-in-water emulsion and which contains, in each case based on its weight, the following constituents: a) 45 to 85% by weight, preferably 50 to 80% by weight, particularly preferably 55 to 75% by weight, extraordinarily preferably 60 to 70% by weight-% water, b) at least one anionic surfactant selected from non-ethoxylated C8-C18 alkyl sulfates in a total amount of 4 - 8 wt.%, preferably 5 - 7 wt.%, c) at least one non-ionic surfactant selected from alkyl mono- and oligoglycosides of the formula R. 4 O-[G] p , in the R 4represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5 - 15 wt.%, preferably 3.0 - 12 wt.%, particularly preferably 3.5 to 10 wt.%, extraordinarily preferably 4.0 to 6.0 wt.%, d) at least one linear 1-alkanol having 8 to 40 carbon atoms in a total amount of 5 - 15 wt.%, preferably 7 - 13 wt.%, particularly preferably 9 - 11 wt.%, e) at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C12 - C30 carboxylic acids, which may be hydroxylated, in a total amount of 3 - 10 wt.%, preferably 4 - 8 wt.%, particularly preferably 5-7 wt.%, f) at least one alkalizing agent, g) zero to less than 0.1 wt.-% of peroxide compounds, h) optionally at least one oxidation dye precursor of the developer type and at least one oxidation dye precursor of the coupler type, wherein the agent has a pH in the range from 8.0 to 11.5, preferably in the range from 9.0 to 11.0, particularly preferably in the range from 9.5 to 10.7, extremely preferably 9.8 to 10.5, in each case measured at a temperature of 20 °C, and ii) providing an oxidizing agent preparation (M2) containing 40 - 96 wt.%, preferably 65 - 90 wt.%, particularly preferably 70 - 80 wt.%, water, furthermore hydrogen peroxide in a total amount of 0.5 to 23 wt.%, further preferably 2.5 to 21 wt.%, particularly preferably 4 to 20 wt.%, very particularly preferably 5 to 18 wt.% and extremely preferably 6 to 12 wt.%, and a pH in the range from 2.0 to 6.5, preferably 2.5 - 5.5, particularly preferably 2.8 to 4.5, each measured at 20°C, wherein the wt.- % figures refer in each case to the weight of the oxidizing agent preparation (M2), optionally containing at least one surfactant and / or an oil, iii) mixing the cosmetic agent (M1) with the oxidizing agent preparation (M2), preferably in a weight ratio (M1):(M2) in the range from 1:0.8 to 1:2.5, preferably 1:1 to 1:2, directly thereafter iv) applying the mixture obtained in step iii) to the hair and leaving this mixture on the hair for a time of 1 to 60 minutes, preferably from 20 to 45 minutes, at room temperature and / or at 30 - 60°C, preferably at 32 - 50°C, v) rinsing the hair with water and / or a cleansing composition, and vi) optionally applying an aftertreatment agent to the hair and optionally rinsing, then drying.For oxidative hair color-changing processes, the agent according to the invention (M1), which is adjusted to an alkaline pH and optionally contains one or more oxidation dye precursors and optionally one or more direct dyes, is usually mixed with an aqueous hydrogen peroxide-containing composition (M2) to form the ready-to-use color-changing agent immediately before application to the hair. The agent according to the invention (M1) and the hydrogen peroxide-containing composition (M2) are usually matched to one another such that, at a mixing ratio of 1 to 1, based on parts by weight, the finished application mixture contains an initial hydrogen peroxide concentration of 0.5-12% by weight, preferably 2-10% by weight, particularly preferably 3-6% by weight of hydrogen peroxide (calculated as 100% H2O2), in each case based on the weight of the application mixture.However, it is equally possible to match the agent according to the invention (M1) and the hydrogen peroxide-containing composition (M2) to one another in such a way that the concentrations required in the ready-to-use oxidation color-changing agent (application mixture) are obtained using mixing ratios other than 1:1, for example a weight-based mixing ratio of 1:2 or 1:3 or even 2:3. Weight-based mixing ratios (M1):(M2) preferred according to the invention are in the range from 1:0.8 to 1:2.5, particularly preferably in the range from 1:1 to 1:2. The time specification “immediately thereafter” in the context of the present invention means a period of time from 1 second to 10 minutes, preferably 10 seconds to 5 minutes, particularly preferably 15 seconds to 2 minutes. In the ready-to-use mixture of (M1) and (M2) and if necessary (M3) (see below), the reaction of the hydrogen peroxide with the contained reaction components begins immediately.This reaction must take place on the keratin fibers, so that the reactive, ready-to-use mixture must be applied to the keratin fibers immediately after its preparation. The term "room temperature" according to the invention refers to the temperature in the room in which a person usually applies a hair coloring or lightening agent, i.e. usually a bathroom or a hairdressing salon, where a temperature in the range of 10 - 29 °C prevails. Leaving the coloring or lightening application mixture in process step iv) in the color change processes according to the invention or preferred according to the invention can also take place at at least 30 °C, preferably at 30 - 60 °C, particularly preferably at 32 - 50 °C, if the hair is heated, for example, with a heat cap or with a heat lamp.The oxidizing agent composition (M2) used in the color-changing kits according to the invention and preferred according to the invention, as well as in the color-changing processes according to the invention and preferred according to the invention, contains, in each case based on its weight, 40-96% by weight, preferably 65-90% by weight, particularly preferably 70-80% by weight, of water. The oxidizing agent preparation (M2) used in the color-changing kits according to the invention and preferred according to the invention, as well as in the color-changing processes according to the invention and preferred according to the invention, further contains, in each case based on its weight, 0.5 to 23% by weight, more preferably 2.5 to 21% by weight, particularly preferably 4 to 20% by weight, very particularly preferably 5 to 18% by weight, and extraordinarily preferably 6 to 12% by weight, of hydrogen peroxide.To stabilize the hydrogen peroxide, the oxidizing agent preparation (M2) has a pH in the range of 2.0 to 6.5, preferably 2.5 to 5.5, particularly preferably 2.8 to 4.5, each measured at 20°C. Oxidative color change processes on keratin fibers typically occur in a neutral to alkaline environment; even a slightly acidic pH produces acceptable color results. Therefore, the pH of the agent (M1) according to the invention is in the range of 8.0 to 11.5, preferably in the range of 9.0 to 11.0, particularly preferably in the range of 9.5 to 10.7, extremely preferably 9.8 to 10.5, each measured at a temperature of 20°C.The ready-to-use color-changing agent obtained by mixing the agent (M1) according to the invention with the oxidizing agent preparation (M2) preferably has a pH in the range of 6.5-11.5, more preferably 8.0-11.0, particularly preferably 8.5-10.8, extraordinarily preferably 9.0-10.6, further extraordinarily preferably 9.5-10.5, in each case measured at a temperature of 20°C. If the oxidative color-changing agents according to the invention are intended to achieve a stronger lightening of the keratin fibers or the coloring of very dark, highly melanin-containing keratin fibers, at least one further oxidizing agent is required in addition to hydrogen peroxide in the application mixture applied to the keratin fibers to break down the melanin. Such additional oxidizing agents are often also referred to as blond boosters. These are oxidizing agents that are solid under normal conditions.They are formulated as an anhydrous oxidative hair treatment agent (M3) comprising at least one oxidizing agent that is solid under normal conditions. Consequently, a further subject of the present invention is a process for the oxidative color change of keratinic fibers, in particular for lightening keratinic fibers, which comprises the following process steps: i) providing a cosmetic agent (M1) for the oxidative color change of keratinic fibers, in particular human hair, which is in the form of an oil-in-water emulsion and which contains the following constituents, in each case based on its weight: a) 45 to 85% by weight, preferably 50 to 80% by weight, particularly preferably 55 to 75% by weight, extraordinarily preferably 60 to 70% by weight of water, b) at least one anionic surfactant selected from non-ethoxylated C8-C18 alkyl sulfates in a total amount of 4-8% by weight, preferably 5-7% by weight.-%, c) at least one non-ionic surfactant selected from alkyl mono- and oligoglycosides of the formula R. 4 O-[G]p, in the R 4represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5 - 15 wt.%, preferably 3.0 - 12 wt.%, particularly preferably 3.5 to 10 wt.%, extraordinarily preferably 4.0 to 6.0 wt.%, d) at least one linear 1-alkanol having 8 to 40 carbon atoms in a total amount - based on the weight of the agent - of 5 - 15 wt.%, preferably 7 - 13 wt.%, particularly preferably 9 - 11 wt.%, e) at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C12 - C30 carboxylic acids, which may be hydroxylated, in a total amount of 3 - 10 % by weight, preferably 4 - 8 % by weight, particularly preferably 5 - 7 % by weight, f) at least one alkalizing agent, g) zero to less than 0.1 % by weight.-% of peroxide compounds, h) optionally at least one oxidation dye precursor of the developer type and at least one oxidation dye precursor of the coupler type, wherein the agent has a pH in the range from 8.0 to 11.5, preferably in the range from 9.0 to 11.0, particularly preferably in the range from 9.5 to 10.7, extremely preferably 9.8 to 10.5, in each case measured at a temperature of 20 °C, and ii) providing an oxidizing agent preparation (M2) containing 40 - 96 wt.%, preferably 65 - 90 wt.%, particularly preferably 70 - 80 wt.%, water, furthermore hydrogen peroxide in a total amount of 0.5 to 23 wt.%, further preferably 2.5 to 21 wt.%, particularly preferably 4 to 20 wt.%, very particularly preferably 5 to 18 wt.% and extremely preferably 6 to 12 wt.%, and a pH in the range from 2.0 to 6.5, preferably 2.5 - 5.5, particularly preferably 2.8 to 4.5, each measured at 20°C, wherein the wt.- % figures each relate to the weight of the oxidizing agent preparation (M2), optionally containing at least one surfactant and / or an oil, and iii) providing an oxidizing agent preparation (M3) different from (M2), comprising i) at least one oxidizing agent selected from the inorganic salts of a peroxosulfuric acid, and mixtures of these salts, and j) and 0 to 10 wt.%, preferably 0.1 to 8 wt.%, particularly preferably 0.5 to 5 wt.% water, where the wt.-% details each relate to the weight of the oxidizing agent preparation (M3), k) where (M3) optionally contains at least one oil and / or at least one surfactant, iv) mixing the cosmetic agent (M1) with the oxidizing agent preparations (M2) and (M3), where it is preferred that the aforementioned components (M1), (M2) and (M3) are composed with regard to the weight ratio (M1):(M2):(M3) of the three components to one another such that the weight ratio (M1):(M2) is in the range from 1:0.8 to 1:2.5, preferably 1:1 to 1:2, and (M3) in an amount of 5 - 25 wt.%, preferably 7 - 20 wt.%, particularly preferably 7.5 - 17 wt.-%, based on the weight of the total mixture of (M1), (M2) and (M3), immediately thereafter v) applying the mixture obtained in step iv) to the hair and leaving this mixture on the hair for a time of 1 to 60 minutes, preferably from 20 to 45 minutes, at room temperature and / or at 30 - 60°C, preferably at 32 - 50°C, vi) rinsing the hair with water and / or a cleansing composition, and vii) optionally applying an aftertreatment agent to the hair and optionally rinsing, then drying. Preferably, the at least one oxidizing agent that is solid under normal conditions is selected from the inorganic salts of a peroxosulfuric acid, mixtures of these salts, sodium percarbonate, sodium percarbamide, sodium perborate and mixtures of at least one salt of a peroxosulfuric acid and an oxidizing agent selected from sodium percarbonate, sodium percarbamide, sodium perborate and mixtures thereof.Peroxosulfuric acids are understood to mean peroxodisulfuric acid and peroxomonosulfuric acid (Caro's acid). According to the invention, the at least one inorganic salt of a peroxosulfuric acid is preferably selected from ammonium peroxodisulfate, ammonium peroxomonosulfate, alkali metal peroxodisulfates, alkali metal peroxomonosulfates, and alkali metal hydrogen peroxomonosulfates. Particular preference is given to potassium peroxodisulfate, sodium peroxodisulfate, ammonium peroxodisulfate, and potassium hydrogen peroxomonosulfate, as well as mixtures thereof. Furthermore, it has proven particularly preferred in the work on the present invention if the anhydrous oxidative hair treatment agent (M3) according to the invention contains at least two different peroxodisulfates.Preferred peroxodisulfate salts are potassium peroxodisulfate-ammonium peroxodisulfate mixtures, potassium peroxodisulfate-ammonium peroxodisulfate-sodium peroxodisulfate mixtures, and potassium peroxodisulfate-sodium peroxodisulfate mixtures. Particular preference is given to mixtures of potassium peroxodisulfate and ammonium peroxodisulfate, and extraordinarily preferred are mixtures of potassium peroxodisulfate and ammonium peroxodisulfate with an excess of potassium peroxodisulfate, which are free of sodium peroxodisulfate. Particularly preferred mixtures of potassium peroxodisulfate (KPS) and ammonium peroxodisulfate (APS) according to the invention, which are free of sodium peroxodisulfate, are those with a KPS / APS weight ratio in the range of 4:1-2:1, preferably 3.5:1-2.5:1, particularly preferably 3.2:1-2.8:1.Anhydrous oxidative hair treatment agents (M3) preferably used according to the invention contain at least one oxidizing agent selected from inorganic salts of a peroxosulfuric acid and mixtures thereof, in a total amount of 5-85 wt.%, preferably 10-70 wt.%, particularly preferably 17-55 wt.%, extraordinarily preferably 22-45 wt.%, in each case based on the weight of the oxidative hair treatment agent (M3). The oxidative hair treatment agents (M3) used according to the invention are anhydrous, which in the sense of the present invention means that they contain, in each case based on their weight, 0 to 12 wt.%, preferably 0.1 to 10 wt.%, particularly preferably 0.5 to 9 wt.% water. These details relate to the free water content. A content of molecularly bound water or water of crystallization, which individual powder constituents may have, is not taken into account.The water content can be determined, for example, using Karl Fischer titration based on ISO 4317 (version 2011-12). Alkalizing agent: For the melanin-degrading effect of hydrogen peroxide and the bleaching effect on the keratin fiber, it is advantageous if the application mixture of agent (M1), hydrogen peroxide solution (M2), and persalt-containing oxidative hair treatment agent (M3) has a pH value in the range of 6.5-11.5, more preferably 8.0-11.0, particularly preferably 8.5-10.8, extraordinarily preferably 9.0-10.6, further extraordinarily preferably 9.5-10.5, in each case measured at a temperature of 20°C.To establish an alkaline pH of the ready-to-use mixture of (M1), (M2), and (M3), the oxidative hair treatment agents (M3) preferably used according to the invention can contain, in addition to the at least one persalt that is solid under normal conditions, at least one alkalizing agent that is solid under normal conditions in such a total amount that the ready-to-use mixture of (M1), (M2), and (M3) has the desired alkaline pH. The oxidative hair treatment agents (M3) preferably used according to the invention are therefore characterized by containing at least one inorganic alkalizing agent that is solid at 20°C and 1013 mbar. Oxidative hair treatment agents (M3) which are particularly preferably used according to the invention contain at least one inorganic alkalizing agent which is solid at 20 °C and 1013 mbar in a total amount of 4 - 70 wt.%, preferably 10 - 65 wt.%, particularly preferably 15 - 60 wt.%, extremely preferably 20 - 55 wt.-%, in each case based on the weight of the oxidative hair treatment agent (M3). Further oxidative hair treatment agents (M3) preferably used according to the invention contain at least one inorganic alkalizing agent that is solid at 20°C and 1013 mbar, including, in a total amount of 0.1 to 50 wt.%, preferably 4 to 30 wt.%, particularly preferably 15-25 wt.%, in each case based on the weight of the oxidative hair treatment agent, at least one sodium silicate or sodium metasilicate with a molar SiO2 / Na2O ratio of ≥ 2, preferably 2.5-3.5. In addition to the at least one sodium silicate or sodium metasilicate with a molar SiO2 / Na2O ratio of ≥ 2, preferably 2.5-3.5, in a total amount of 0.1 - 50 wt.%, preferably 4 - 30 wt.%, particularly preferably 15 - 25 wt.-%, each based on the weight of the oxidative hair treatment agent (M3), as optional alkalizing agents, further inorganic alkalizing agents that are particularly preferred according to the invention and are solid at 20°C and 1013 mbar are selected from alkaline earth metal silicates, alkaline earth metal hydroxide carbonates, alkaline earth metal carbonates, alkaline earth metal metasilicates, alkali metal hydroxides, alkaline earth metal hydroxides, (alkali) earth metal phosphates and (alkali) earth metal hydrogen phosphates, and mixtures of these substances. Particularly preferred inorganic alkalizing agents that are solid at 20°C and 1013 mbar are, in addition to the at least one obligatory sodium silicate or sodium metasilicate, each with a molar SiO2 / Na2O ratio of ≥ 2, preferably from 2.5 to 3.5, selected from magnesium hydroxide carbonates and mixtures of these alkalizing agents.Magnesium hydroxide carbonates preferred according to the invention are those with the formula MgCO3 ^ Mg(OH)2 ^ 2 H2O and those with the formula MgCO3 ^ Mg(OH)2. Magnesium hydroxide carbonate with the formula MgCO3 ^ Mg(OH)2 is particularly preferred according to the invention. Oxidative hair treatment agents (M3) particularly preferably used according to the invention contain, in each case based on their total weight, 0.1 to 50 wt. %, preferably 4 - 30 wt. %, particularly preferably 15 - 25 wt. %, sodium silicates with a molar SiO2 / Na2O ratio of ≥ 2, preferably from 2.5 to 3.5, and 2 - 40 wt. %, preferably 5 - 35 wt. %, particularly preferably 10 - 32 wt. % magnesium hydroxide carbonate as inorganic alkalizing agents which are solid at 20°C and 1013 mbar.Surprisingly, it has further been found that an application mixture with further optimized skin and scalp compatibility is obtained if the agent (M1) according to the invention or preferred according to the invention is mixed with an oxidizing agent preparation (M2) which contains at least one cationic surfactant, preferably in a total amount of 0.05-3 wt.%, particularly preferably 0.1-1.5 wt.%, extraordinarily preferably 0.5-0.9 wt.%, in each case based on the weight of the oxidizing agent preparation (M2). In a further preferred embodiment of the invention, the oxidizing agent preparation (M2) used according to the invention contains at least one cationic surfactant, preferably in a total amount of 0.05-3 wt.%, particularly preferably 0.1-1.5 wt.%, extraordinarily preferably 0.5-0.9 wt.%, in each case based on the weight of the oxidizing agent preparation (M2).Cationic surfactants are surfactants, i.e. surface-active compounds, each with one or more positive charges. Cationic surfactants contain exclusively positive charges. These surfactants are usually made up of a hydrophobic part and a hydrophilic head group, whereby the hydrophobic part generally consists of a hydrocarbon backbone (e.g. consisting of one or two linear or branched alkyl groups), and the positive charge(s) are localized in the hydrophilic head group. Cationic surfactants adsorb at interfaces and aggregate in aqueous solution above the critical micelle formation concentration to form positively charged micelles. According to the invention, cationic surfactants of the alkylamidoamine, quaternary ammonium compound, and esterquat type are preferred. Alkylamidoamines have the general structural formula R. 1 -CO-NH-(CH2) n -NR 2 R 3 where R1 represents a long-chain, mostly linear alkyl radical derived from natural or synthetic fatty acids, i.e. preferably a linear C13-C23 alkyl radical that is saturated or unsaturated. The index n is preferably a number from 2 to 5, preferably 3 or 4. The radicals R 2 and R 3 preferably independently represent a methyl, ethyl or n-propyl group, particularly preferably R 2 and R 3each with a methyl group. Alkylamidoamines are usually produced by amidation of natural or synthetic fatty acids and fatty acid cuts with short-chain dialkylaminoamines. In acidic medium, the alkylamidoamines are permanently protonated, i.e., cationic. Particularly preferred compounds from this group of substances according to the invention are stearamidopropyldimethylamine, behenamidopropyldimethylamine, and palmitamidopropyldimethylamine, as well as mixtures thereof, in particular mixtures of stearamidopropyldimethylamine and behenamidopropyldimethylamine. Preferred quaternary ammonium compounds are ammonium halides, such as alkyltrimethylammonium chlorides, dialkyldimethylammonium chlorides, trialkylmethylammonium chlorides, and the imidazolium compounds known under the INCI names Quaternium-27 and Quaternium-83.Further preferred quaternary ammonium compounds are tetraalkylammonium salts, such as in particular Quaternium-52, a poly(oxy-1,2-ethanediyl), ((octadecylnitrilio)tri-2,1-ethanediyl)tris(hydroxy)phosphate (1:1) salt known under the INCI name, which has the general structural formula (III) in which x + y + z = 10. The long alkyl groups of the above-mentioned surfactants preferably have 10 to 22, particularly preferably 12 to 18 carbon atoms. Behenyltrimethylammonium chloride, stearyltrimethylammonium chloride, and cetyltrimethylammonium chloride are particularly preferred, with stearyltrimethylammonium chloride being extremely preferred. Further cationic surfactants suitable according to the invention are quaternized protein hydrolysates. Esterquats are substances that contain both at least one ester function and at least one quaternary ammonium group as a structural element. Preferred esterquats are quaternized ester salts of fatty acids with triethanolamine, quaternized ester salts of fatty acids with diethanolalkylamines, and quaternized ester salts of fatty acids with 1,2-dihydroxypropyldialkylamines. Such products are marketed under the trademarks Stepantex, Dehyquart, and Armocare.With regard to optimal application properties and optimal color results, C10-C22-alkyltrimethylammonium chlorides have proven to be particularly suitable. Particularly preferred oxidizing agent preparations (M2) used according to the invention are therefore characterized in that they contain at least one cationic surfactant in a total amount of 0.05-3 wt. %, particularly preferably 0.1-1.5 wt. %, extraordinarily preferably 0.3-0.9 wt. %, in each case based on the weight of the oxidizing agent preparation (M2), wherein preferably at least one surfactant selected from C10-C22-alkyltrimethylammonium chlorides, in particular selected from behenyltrimethylammonium chloride, stearyltrimethylammonium chloride and cetyltrimethylammonium chloride, as well as mixtures of these surfactants, is present. Extremely preferred oxidizing agent preparations (M2) used according to the invention contain stearyltrimethylammonium chloride in a total amount of 0.05 - 3 wt.-%, particularly preferably from 0.1 to 1.5 wt.%, extraordinarily preferably from 0.3 to 0.9 wt.%, in each case based on the weight of the oxidizing agent preparation (M2). Another preferred packaging unit according to the invention (kit of parts) is characterized in that the oxidizing agent preparation (M2) contains at least one cationic surfactant, preferably in a total amount of 0.05 to 3 wt.%, particularly preferably from 0.1 to 1.5 wt.%, extraordinarily preferably from 0.5 to 0.9 wt.%, in each case based on the weight of the oxidizing agent preparation (M2). A further preferred packaging unit according to the invention (kit of parts) is characterized in that the oxidizing agent preparation (M2) contains at least one cationic surfactant, which is preferably selected from at least one alkylamidoamine, in a total amount of 0.05 - 3 wt.%, particularly preferably 0.1 - 1.5 wt.%, extraordinarily preferably 0.5 - 0.9 wt.- %, in each case based on the weight of the oxidizing agent preparation (M2). A preferred method for oxidative hair coloring according to the invention is characterized in that the oxidizing agent preparation (M2) contains at least one cationic surfactant, preferably in a total amount of 0.05 - 3 wt. %, particularly preferably 0.1 - 1.5 wt. %, extraordinarily preferably 0.5 - 0.9 wt. %, in each case based on the weight of the oxidizing agent preparation (M2). A further preferred method according to the invention for the oxidative color change of keratin fibers is characterized in that the oxidizing agent preparation (M2) contains at least one cationic surfactant, which is preferably selected from at least one alkylamidoamine, in a total amount of 0.05 - 3 wt.%, particularly preferably 0.1 - 1.5 wt.%, extraordinarily preferably 0.5 - 0.9 wt.%, in each case based on the weight of the oxidizing agent preparation (M2).Surprisingly, it has also been found that an application mixture with further optimized skin and scalp compatibility is obtained when the agent (M1) according to the invention or preferred according to the invention is mixed with an oxidizing agent preparation (M2) containing xanthan gum, preferably 1 to 5% by weight, particularly preferably 1.5 to 4% by weight, extraordinarily preferably 2-3% by weight of xanthan gum, based in each case on the weight of the oxidizing agent preparation (M2). Xanthan gum supports scalp compatibility. Furthermore, the consistency of the application mixture achieved with xanthan gum leads to optimal application properties, for example, for brush application.The resulting application mixtures, particularly with weight-based mixing ratios (M1):(M2) in the range from 1:0.8 to 1:2.5, particularly preferably in the range from 1:1 to 1:2, preferably have a viscosity in the range from 3500 to 8000 mPas, preferably 4000 to 7000 mPas, particularly preferably 4500 to 6500 mPas, extraordinarily preferably 5000 to 6000 mPas, in each case measured at 20°C using a Haake Model MVII rheometer at a shear rate of 7.2 revolutions per second. Preferred oxidizing agent preparations (M2) used according to the invention contain at least one surfactant or one emulsifier, but only in minor amounts. In a further preferred embodiment of the invention, the oxidizing agent preparations (M2) used according to the invention are characterized in that their content of surfactants and emulsifiers is zero to a maximum of 3.0 wt.%, preferably 0.5 to 2.0 wt.%, particularly preferably 1.0 to 1.5 wt.-%, in each case based on the weight of the oxidizing agent preparation (M2). Higher amounts of surfactant could possibly impair the good scalp compatibility of the agents according to the invention in the ready-to-use agent. The components d) and e) which are mandatory for (M1) are not considered surfactants and emulsifiers within the meaning of the present invention. Preferred surfactants and emulsifiers in (M2) are selected from anionic, cationic, zwitterionic, amphoteric and nonionic surfactants and emulsifiers and mixtures thereof. Further oxidizing agent preparations (M2) which are preferably used according to the invention contain at least one zwitterionic and / or at least one amphoteric surfactant and / or at least one anionic surfactant. Zwitterionic surfactants are those surface-active compounds which carry at least one quaternary ammonium group and at least one carboxylate, sulfonate or sulfate group in the molecule.Particularly suitable zwitterionic surfactants are the so-called betaines such as N-alkyl-N,N-dimethylammonium glycinates, for example cocoalkyl dimethylammonium glycinate, N-acylaminopropyl-N,N-dimethylammonium glycinates, for example cocoacylaminopropyl dimethylammonium glycinate, and 2-alkyl-3-carboxymethyl-3-hydroxyethyl-imidazolines, each with 8 to 18 C atoms in the alkyl or acyl group, as well as cocoacylaminoethyl hydroxyethyl carboxymethyl glycinate. A preferred zwitterionic surfactant is the fatty acid amide derivative known under the INCI name Cocamidopropyl Betaine. Amphoteric surfactants are understood to be surface-active compounds which, in addition to a C8-C 24-Alkyl or -acyl group in the molecule contain at least one free amino group and at least one -COOH- or -SO3H- group and are capable of forming internal salts. Examples of suitable amphoteric surfactants are N-alkylglycines, N-alkylpropionic acids, N-alkylaminobutyric acids, N-alkyliminodipropionic acids, N-hydroxyethyl-N-alkylamidopropylglycines, N-alkyltaurines, N-alkylsarcosines, 2-alkylaminopropionic acids, and alkylaminoacetic acids, each with approximately 8 to 24 carbon atoms in the alkyl group. Particularly preferred amphoteric surfactants are N-cocoalkylaminopropionate, cocoacylaminoethylaminopropionate, and C12-C18 acylsarcosine.Suitable anionic surfactants are all anionic surface-active substances suitable for use on the human body that contain a water-solubilizing anionic group, for example a carboxylate, sulfate, sulfonate, or phosphate group, and a lipophilic alkyl group with approximately 8 to 30 carbon atoms, preferably 8 to 24 carbon atoms, in the molecule. The molecule may also contain glycol or polyglycol ether groups, ester, ether, and amide groups, as well as hydroxyl groups.Examples of suitable anionic surfactants are, in the form of sodium, potassium and ammonium as well as mono-, di- and trialkanolammonium salts with 2 to 4 C atoms in the alkanol group, linear and branched fatty acids with 8 to 30 C atoms (soaps), polyethoxylated ether carboxylic acids, acyl sarcosides, acyl taurides, acyl isethionates, sulfosuccinic acid mono- and dialkyl esters and sulfosuccinic acid mono-alkyl polyoxyethyl esters with 1 to 6 ethylene oxide groups, linear alkanesulfonates, linear alpha-olefinsulfonates, sulfonates of unsaturated fatty acids with up to 6 double bonds, alpha-sulfofatty acid methyl esters of fatty acids, C8-C. 20 -alkyl sulfates and C8-C 20Alkyl ether sulfates with up to 15 oxyethyl groups, mixtures of surface-active hydroxysulfonates, sulfated hydroxyalkyl polyethylene and / or hydroxyalkylene propylene glycol ethers, esters of tartaric acid or citric acid with ethoxylated or propoxylated fatty alcohols, optionally polyethoxylated alkyl and / or alkenyl ether phosphates, sulfated fatty acid alkylene glycol esters, and monoglyceride sulfates and monoglyceride ether sulfates. Preferred anionic surfactants are soaps, C8-C20 alkyl sulfates, C8-C20 alkyl ether sulfates, and C8-C20 ether carboxylic acids with 8 to 20 carbon atoms in the alkyl group and up to 12 ethylene oxide groups in the molecule. Sodium cetearyl sulfate is particularly preferred.Surprisingly, it has been found that an application mixture with a viscosity suitable for application and drip-free retention on the hair is obtained by mixing the agent (M1) according to the invention or preferred according to the invention with an oxidizing agent preparation (M2) containing at least one oil, preferably at least one oil in a total amount of 0.5-40 wt.%, preferably 1-25 wt.%, particularly preferably 3-20 wt.%, extraordinarily preferably 5-17 wt.%, in each case based on the weight of the oxidizing agent preparation (M2). The resulting consistency of the application mixture leads to optimal application properties, for example for brush application.The resulting application mixtures, particularly with weight-based mixing ratios (M1):(M2) in the range from 1:0.8 to 1:2.5, particularly preferably in the range from 1:1 to 1:2, preferably have a viscosity in the range from 3500 to 8000 mPas, preferably 4000 to 7000 mPas, particularly preferably 4500 to 6500 mPas, and extremely preferably 5000 to 6000 mPas, measured in each case at 20°C using a Haake Model MVII rheometer at a shear rate of 7.2 revolutions per second. Further oxidizing agent preparations (M2) preferably used according to the invention contain at least one oil.According to the invention, the at least one oil is preferably selected from mineral oils, branched fatty alcohols having 8-24 carbon atoms, dialkyl ethers having 6 to 18 carbon atoms in the alkyl groups, esters of linear or branched saturated or unsaturated fatty alcohols having 2-30 carbon atoms with linear or branched saturated or unsaturated fatty acids having 2-30 carbon atoms, which may be hydroxylated, and mixtures of the aforementioned substances. Mineral oil is particularly preferred. Kits, uses, and methods preferred according to the invention are characterized in that the composition (M2) used for their preparation contains—based on its weight—at least one oil in a total amount of 0.5-40 wt.%, preferably 1-25 wt.%, particularly preferably 3-20 wt.%, extraordinarily preferably 5-17 wt.%.Further kits, uses and methods preferred according to the invention are characterized in that the composition (M2) used for their preparation contains - based on its weight - at least 0.5-40 wt. %, preferably 1-25 wt. %, particularly preferably 3-20 wt. %, extraordinarily preferably 5-17 wt. %, mineral oil. The following examples are intended to illustrate the subject matter of the invention without restricting it thereto. The following colorant or composition (M1) was prepared (oil-in-water emulsion, all amounts in wt. %), which represents the alkalization component (M1) of a two-part oxidative colorant: Colorant component in the form of an oil-in-water emulsion (M1-1) Sample weight [wt. ] Sample weight [wt.-%] Ingredient according to the invention Comparison (M1-1 E) (M1-1 V) Cetearyl alcohol 7.000 7.000 Glyceryl stearate SE (glyceryl mono-, distearate, 1:1, 6.000 0.000 self-emulsifying) Sodium coco-sulfate 5.200 0.000 Ammonium hydroxide 4.100 4.100 Toluene-2,5-diamine sulfate 2.850 2.850 Decyl glucoside 3.200 0.000 Coconut alcohol 2.000 2.000 Coco-glucoside 1.000 0.000 Potassium hydroxide 1.200 1.200 Glyceryl oleate 1.000 0.000 Octyldodecanol 1.000 1.000 Ceteareth-20 0.000 0.600 Ceteareth-12 0.000 0.600 Resorcinol 1.000 1.000 2,4-Diaminophenoxyethanol HCl 0.486 0.486 Parfum 0.400 0.400 Sodium sulfite 0.400 0.400 Glycerin 0.500 0.500 m-Aminophenol 0.200 0.200 Sodium silicate 0.200 0.200 Trisodium dicarboxymethylalaninate 0.200 0.200 Citric acid 0.120 0.120 Sodium sulfate 0.110 0.110 Ascorbic acid 0.100 0.100 Water 61.734 76.934 Both coloring components showed a pH value of 9.9, measured at 20°C. The following oxidation compositions (M2) were prepared (all amounts in wt.%): Developer emulsion (M2-1) (6 wt.-% H2O2) Hydrogen peroxide 6.00 Cetearyl alcohol 3.50 Ceteareth-20 1.00 Brassicamidopropyl Dimethylamine 0.50 Etidronic acid 0.20 Phosphoric acid 0.17 Potassium hydroxide 0.10 Disodium pyrophosphate 0.10 2,6-Dicarboxypyridine 0.10 Sodium benzoate 0.04 Water 88.29 Developer emulsion (M2-2) (9 wt.% H2O2) Mineral oil 17.00 Hydrogen peroxide 9.00 Cetearyl alcohol 3.50 PEG-40 Castor oil 0.70 Sodium cetearyl sulfate 0.40 Etidronic acid 0.20 Potassium hydroxide 0.12 Disodium pyrophosphate 0.10 2,6-Dicarboxypyridine 0.10 Sodium benzoate 0.04 Sodium sulfate 0.01 Sodium Chloride 0.01 Water 68.82 Developer Emulsion (M2-3) (12 wt.% H2O2) Mineral Oil 17.00 Hydrogen Peroxide 12.00 Cetearyl Alcohol 3.50 PEG-40 Castor Oil 0.70 Sodium Cetearyl Sulfate 0.40 Etidronic Acid 0.20 Potassium Hydroxide 0.12 Disodium Pyrophosphate 0.10 2,6-Dicarboxypyridine 0.10 Sodium Benzoate 0.04 Sodium Sulfate 0.01 Sodium Chloride 0.01 Water 65.82 Developer Emulsion (M2-4) (6 wt.-% H2O2) Sodium benzoate 0.04 2,6-Dicarboxypyridine 0.10 Disodium pyrophosphate 0.10 Potassium hydroxide 0.09 Propanediol-1,2 0.50 Etidronic acid 0.15 Paraffinum liquidum 2.00 Ceteareth-20 1.20 Cetearyl alcohol 3.60 Hydrogen peroxide 6.00 Water, demineralized 86.22 Developer emulsion (M2-5) (3 wt.% H2O2) Sodium benzoate 0.04 2,6-Dicarboxypyridine 0.10 Disodium pyrophosphate 0.10 Potassium hydroxide 0.09 Propanediol-1,2 0.50 Etidronic acid 0.15 Paraffinum liquidum 2.00 Ceteareth-20 1.20 Cetearyl alcohol 3.60 Hydrogen peroxide 3.00 Demineralized water 89.22 Developer emulsion (M2-6) (11.5 wt.-% H2O2) 2,6-Dicarboxypyridine 0.10 Disodium pyrophosphate 0.10 Potassium hydroxide 0.20 Propanediol-1,2 0.50 Etidronic acid 0.30 Isopropyl myristate 10.00 Ceteareth-20 0.50 Cetearyl alcohol 3.60 PEG-40 Castor Oil 0.60 Sodium cetearyl sulfate 0.30 Hydrogen peroxide 11.50 Demineralized water 72.30 Coloring To produce ready-to-use oxidative coloring agents, the agent according to the invention (M1-1) was mixed in a weight ratio of 1:1 with one of the oxidizing agent preparations (M2-1), (M2-2), (M2-3), (M2-4) or (M2-5). The oxidative dyes prepared in this way were each applied in a defined amount (4 g of oxidative dye per 1 g of yak hair) to lying yak hair strands (12 strands per oxidative dye) and remained on the hair strands for a contact time of 30 minutes at 32 °C.The remaining products were then rinsed out of the hair strands with lukewarm water for 2 minutes, the strands were first dried with a towel, and then blow-dried. Intensely colored strands were obtained in each case. When the aforementioned coloring agents according to the invention were applied to the hair of test subjects, the agents could be easily prepared homogenously by mixing components (M1) and (M2) by hand. They were then effortlessly applied to the hair to be colored and remained there for the 30-minute exposure time without dripping. Here, too, intense and homogeneous colors were achieved along the entire length of the keratin fibers. The 1:1 mixtures of the coloring components (M1-1 E) and (M1-1 V) with the developer emulsion (M2-1) were tested on 15 people. They were asked about their subjective feelings after application.The objective parameters erythema and efflorescence were assessed by a dermatologist. The higher the score, the more undesirable scalp reactions were observed. The colorant according to the invention is significantly more scalp-compatible than the surfactant-free comparison colorant. Erythema Efflorescence Itching / all subjective burning Parameters Colorant according to the invention 2.8 1.5 7.8 15.8 Comparison colorant 6.2 4.6 14.5 27.5 Study to improve the scalp compatibility of a 3-component bleaching agent Conduct of the experiments Production of the ready-to-use bleaching agents First, the following alkalization components were prepared, which were mixed with a bleaching powder and a hydrogen peroxide preparation to form a ready-to-use bleaching agent: Alkalization components (all quantities in wt.-%) E1 E2 (according to the invention) (according to the invention) V1 (reference) V2 (reference) Monoethanolamine 7.50 2.00 7.50 2.00 Ammonium hydroxide - 3.90 - 3.90 Cetearyl alcohol 6.60 6.60 - - Sodium coco-sulfate 5.00 5.00 - - Sodium laureth sulfate (2 EO) - - 0.80 0.80 Cocoyl methyl glucamide 5.00 5.00 - - Glyceryl stearate SE 3.70 3.70 - - Coconut fatty alcohol 2.40 2.40 - - Ceteareth-20 1.50 1.50 - - Decyl glucoside 1.30 1.30 - - Octyldodecanol 1.00 1.00 4.50 4.50 Xanthan Gum - - 1.50 1.50 Cellulose Gum 0.90 0.90 Ammonium Sulfate - - - 0.50 Glycerin 0.20 0.20 0.20 0.20 Etidronic Acid 0.12 0.12 0.12 0.12 Sodium Sulfate 0.11 0.11 0.11 0.11 Sorbic Acid 0.07 0.07 0.07 0.07 Water 65.50 67.10 84.30 85.40 All 4 alkalization components E1, E2, V1 and V2 had a pH value of 10.2, each measured at 20°C. Bleaching Powder (all quantities in wt.-%) BP-1 BP-2 Potassium peroxodisulfate 96.00 40.00 Ammonium peroxodisulfate - 15.00 Sodium peroxodisulfate - 13.30 Silica 3.50 0.50 Water - 4.00 Mineral oil - 1.50 Disodium EDTA - 1.00 Potassium sulfate 0.50 0.50 Sodium sulfate - 0.10 Ammonium sulfate - 0.10 Sodium silicate 24.00 For test series 1, 1) the alkalizing component E1 according to the invention was mixed with the developer emulsion (M2-6) and the bleaching powder BP-1 in a weight ratio of 60:60:10 to form a ready-to-use bleaching agent according to the invention and 2) the comparison alkalizing component V1 was mixed with the developer emulsion (M2-6) and the bleaching powder BP-1 in a weight ratio 60:60:10 mixed to create a ready-to-use comparison bleaching agent.For test series 2, 3) the alkalizing component E2 according to the invention was mixed with the developer emulsion (M2-6) and the bleaching powder BP-2 in a weight ratio of 50:50:20 to form a ready-to-use bleaching agent according to the invention, and 4) the comparison alkalizing component V2 was mixed with the developer emulsion (M2-6) and the bleaching powder BP-2 in a weight ratio of 50:50:20 to form a ready-to-use comparison bleaching agent. The test results of the open patch test presented below are considered transferable to scalp compatibility. Test description of the open patch test: Each ready-to-use bleaching agent was applied to the skin on the inner forearms of 47 volunteers in an open patch test, taking into account a specific randomization scheme. The test products were applied by the volunteers themselves repeatedly every 30 seconds to a defined area of skin on the inner forearm.The application, subsequent incubation, and assessment process took 45 minutes for each test area. The products were then rinsed with tap water, and the skin was gently dried with a paper towel. Objective skin irritation (erythema and rash) was assessed by a trained technician 10, 20, 30, and 45 minutes after the start of product application using a predefined scale (erythema: 0–4; rash: 0–3). During product application, subjects rated their subjective sensations and perceptions (itching, burning, tingling, stinging, feeling of heat) every 5 minutes using a predefined scale (0 – 3). The results are shown in the following tables: Objective skin irritation for comparison product V1 Test subjects Time [min] without reactions Erythema Efflorescences 1 2 3 4 1 2 3 10 39 / 47 6 1 0 0 1 0 0 20 20 / 47 24 2 0 0 4 1 0 30 18 / 47 22 6 0 0 7 3 0 45 13 / 47 20 9 1 0 15 7 0 Total 73 18 1 0 27 11 0 Total value 111 49 Test subjects without reactions (all time points / all parameters): 12 Objective skin irritation for comparison product V2 Test subjects Time [min] without reactions Erythema Efflorescences 1 2 3 4 1 2 3 10 43 / 47 4 0 0 0 1 0 0 20 24 / 47 23 0 0 0 7 1 0 30 20 / 47 21 5 0 0 10 2 0 45 9 / 47 20 16 0 0 19 3 0 Total 68 21 0 0 36 5 0 Total value 110 49 volunteers without reactions (all time points / all parameters): 9 objective skin irritation for the product according to the invention E1 volunteers time [min] withoutReactions Erythema Efflorescences 1 2 3 4 1 2 3 10 40 / 47 6 1 0 0 0 0 0 20 33 / 47 11 1 0 0 2 1 0 30 26 / 47 16 4 0 0 6 1 0 45 16 / 47 22 8 0 0 15 2 0 Total 55 14 0 0 23 4 0 Total value 83 31 Subjects without reactions (all time points / all parameters): 15 objective skin irritation for the product according to the invention E2 Subjects Time [min] without reactions Erythema Efflorescences 1 2 3 4 1 2 3 10 44 / 47 3 0 0 0 1 0 0 20 36 / 47 10 1 0 0 3 0 0 30 28 / 47 15 2 0 0 8 1 0 45 16 / 47 17 13 0 0 13 1 0 Total 45 16 0 0 25 2 0 Total value 77 29 Subjects without reactions (all time points / all parameters): 15
[0002] Subjective skin irritation for comparison product V1 Time Test subjects [min] No reactions Itching Burning Tingling Stinging Warmth sensation 1 2 3 1 2 3 1 2 3 1 2 3 1 2 3 5 34 / 47 2 0 0 2 0 0 5 0 0 8 1 0 0 0 0 10 29 / 47 5 1 0 4 1 0 4 1 0 12 1 0 0 0 0 15 24 / 47 5 3 0 4 4 0 4 1 0 13 0 0 0 0 0 20 24 / 47 6 3 0 3 5 0 7 2 0 12 2 0 0 0 0 25 21 / 47 7 3 1 4 4 0 9 1 1 12 2 0 0 0 0 30 21 / 47 9 2 1 4 3 1 8 1 1 11 3 0 0 0 0 35 19 / 47 8 2 2 3 5 1 7 3 1 11 3 0 0 0 0 40 19 / 47 6 5 2 2 5 1 8 3 1 10 4 0 0 0 0 45 19 / 47 7 4 2 3 5 1 7 3 1 9 4 0 0 0 0 Total 55 23 8 29 32 4 59 15 5 96 20 0 0 0 0 Total value 125 105 104 138 0 Subjects without reactions (all time points / all parameters): 17 Subjective skin irritation for comparison product V2 Test subjects Time without [min] Reactions Itching Burning Tingling Stinging Warmth sensation 1 2 3 1 2 3 1 2 3 1 2 3 1 2 3 5 37 / 47 1 0 0 2 0 0 4 1 0 8 1 0 0 0 0 10 34 / 47 3 1 0 3 1 0 4 1 0 9 1 0 0 0 0 15 26 / 47 3 1 0 4 1 0 9 1 0 12 1 0 0 0 0 20 24 / 47 3 3 0 7 2 0 10 2 0 9 3 0 0 0 0 25 21 / 47 2 3 0 5 4 0 12 20 8 3 0 0 0 0 30 20 / 47 2 4 0 5 6 1 13 2 0 9 2 0 0 0 0 35 20 / 47 3 4 0 6 5 1 11 1 10 2 0 0 0 0 40 19 / 47 2 5 0 6 5 1 12 0 1 9 2 0 1 0 0 45 18 / 47 5 3 0 7 4 2 11 1 1 9 2 0 1 0 0 Total 24 24 0 45 28 5 86 11 3 83 17 0 2 0 0 Total 72 116 117 117 2 value Subjects without reactions (all Time points / all parameters): 16 subjective skin irritation for the product according to the invention E1 Time Test subjects [min] without reactions Itching Burning Tingling Stinging Warmth sensation 1 2 3 1 2 3 1 2 3 1 2 3 1 2 3 5 40 / 47 0 0 0 2 0 0 4 0 0 3 0 0 0 0 0 10 34 / 47 2 0 0 2 0 0 6 0 0 9 0 0 0 0 0 15 31 / 47 3 0 0 1 1 0 7 1 0 11 0 0 0 0 0 20 31 / 47 3 0 0 3 1 0 6 2 0 9 1 0 0 0 0 25 29 / 47 4 1 0 2 2 0 9 1 0 6 2 0 0 0 0 30 26 / 47 5 2 0 5 2 0 8 1 1 6 2 0 0 0 0 35 25 / 47 6 0 1 4 2 0 9 1 1 7 1 1 0 0 0 40 25 / 47 5 1 1 4 2 0 9 1 1 7 1 1 0 0 0 45 25 / 47 6 0 1 4 2 1 10 1 1 6 1 1 0 0 0 Total 34 4 3 27 12 1 66 8 4 64 8 3 0 0 0 Total value 51 54 96 89 0 Subjects without reactions (all time points / all parameters): 22 subjective Skin irritation forInventive product E2 Time Test subjects [min] No reactions Itching Burning Tingling Stinging Warmth sensation 1 2 3 1 2 3 1 2 3 1 2 3 1 2 3 5 41 / 47 0 0 0 1 0 0 3 0 0 4 0 0 0 0 0 10 43 / 47 0 0 0 1 0 0 2 0 0 3 0 0 0 0 15 39 / 47 1 0 0 3 1 0 3 3 0 5 0 0 0 0 0 20 34 / 47 5 1 0 4 1 0 4 0 0 5 1 0 0 0 0 25 29 / 47 6 0 0 4 1 0 6 0 0 6 1 0 1 0 0 30 29 / 47 9 0 0 3 2 0 7 0 0 5 1 0 0 0 0 35 26 / 47 9 1 0 5 2 0 7 0 0 5 2 0 0 0 0 40 25 / 47 8 1 0 7 1 0 8 0 0 4 2 0 0 0 0 45 24 / 47 11 1 0 7 1 0 7 1 0 6 2 0 0 0 0 Total 49 4 0 35 9 0 47 1 0 43 9 0 1 0 0 Total value 57 53 49 61 1 Subjects without reactions (all time points / all parameters): 23 Compilation of the mean irritation score (mean irritation score, MIS) for the objective and subjective skin reactions: Test product Erythema Efflorescences Itching, burning etc. all subjective parameters V-1 5.2 2.2 10.9 22.3 V-2 5.2 2 8.9 20 E-1 4 1.5 5.0 13.7 E-2 3.5 1.4 5.2 10.4 The data show that the comparison formulations V1 and V2 have a higherThey exhibited a greater potential for irritation than the inventive formulas E1 and E2. The advantages of the inventive formulas E1 and E2 are particularly evident in terms of the improvement in subjective sensations.
Claims
Claims 1. Agent for the oxidative color change of keratin fibers, in particular human hair, which is in the form of an oil-in-water emulsion and which contains, in each case based on its weight, the following components: a) 45 to 85% by weight, preferably 50 to 80% by weight, particularly preferably 55 to 75% by weight, extraordinarily preferably 60 to 70% by weight of water, b) at least one anionic surfactant selected from non-ethoxylated C8-C18 alkyl sulfates in a total amount of 4 - 8% by weight, preferably 5 - 7% by weight, c) at least one non-ionic surfactant selected from alkyl mono- and oligoglycosides of the formula R 4 O-[G]p, in the R 4represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5 - 15 wt.%, preferably 3.0 - 12 wt.%, particularly preferably 3.5 to 10 wt.%, extraordinarily preferably 4.0 to 6.0 wt.%, d) at least one linear 1-alkanol having 8 to 40 carbon atoms in a total amount - based on the weight of the agent - of 5 - 15 wt.%, preferably 7 - 13 wt.%, particularly preferably 9 - 11 wt.%, e) at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C12 - C30 carboxylic acids, which may be hydroxylated, in a total amount of 3 - 10 % by weight, preferably 4 - 8 % by weight, particularly preferably 5 - 7 % by weight, f) at least one alkalizing agent, g) zero to less than 0.1 % by weight.-% of peroxide compounds, h) optionally at least one oxidation dye precursor of the developer type and at least one oxidation dye precursor of the coupler type, the agent having a pH in the range from 8.0 to 11.5, preferably in the range from 9.0 to 11.0, particularly preferably in the range from 9.5 to 10.7, extraordinarily preferably 9.8 to 10.5, in each case measured at a temperature of 20 °C.
2. Agent according to claim 1, characterized in that the at least one anionic surfactant b) is selected from n-octyl sulfate, 2-ethylhexyl sulfate, n-decyl sulfate, lauryl sulfate, n-tetradecyl sulfate, cetyl sulfate, stearyl sulfate and mixtures of these sulfates, in particular mixtures with the designation cocosulfate, the at least one C8-C18 alkyl sulfate being in salt form.
3. Agent according to claim 1 or 2, characterized in that the at least one alkyl mono- or oligoglycoside of the formula R. 4 O-[G] pis selected from caprylyl glucoside, capryl glucoside, lauryl glucoside, n-tetradecyl glucoside, cetyl glucoside, stearyl glucoside, arachidyl glucoside, behenyl glucoside and mixtures of these glucosides, in particular mixtures with the designation Cocoglucoside, mixtures of caprylyl glucoside and capryl glucoside, and mixtures of caprylyl glucoside, capryl glucoside, and cocoglucoside.
4. Agent according to one of claims 1-3, characterized in that the at least one linear 1-alkanol having 8 to 40 carbon atoms is selected from octan-1-ol, decan-1-ol, dodecan-1-ol, tetradecan-1-ol, hexadecan-1-ol, octadecan-1-ol, eicosane-1-ol, docosane-1-ol, (13E)-docosen-1-ol (brassidyl alcohol), (13Z)-docos-13-en-1-ol (erucyl alcohol), and lanolin alcohol, and mixtures thereof.
5. Agent according to one of claims 1-4, characterized in that the at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C12-C30 carboxylic acids, which may be hydroxylated, is selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C 12 – C 30-Carboxylic acids which may be hydroxylated, having the formula (II): (II), worin R1, R2 and R3 independently represent a hydrogen atom or a group of formula (III), (III), worinR4 represents a linear, saturated or linear, unsaturated C11-C29 alkyl group, with the proviso that at least one and a maximum of two of the radicals selected from R1, R2 and R3 represent a grouping of the formula (III).
6. Agent according to one of claims 1-5, characterized in that the at least one glycerol mono- or diester is selected from glycerol monostearate, glycerol distearate, glycerol monooleate, glycerol dioleate, glycerol monocaprinate, glycerol dicaprinate, glycerol monolaurate, glycerol dilaurate, glycerol monomyristate, glycerol dimyristate, glycerol monopalmitate, glycerol dipalmitate, glycerol mono-12-hydroxystearate, glycerol di-12-hydroxystearate, glycerol monolanolate, glycerol dilanolate, and mixtures of these substances. 7.Agent according to claim 5 or 6, characterized in that at least two glycerol mono- or diesters are present, wherein in at least one of these esters the at least one radical R4 represents a linear, saturated C11-C29 alkyl group and in at least one of these esters the at least one radical R4 represents a linear, unsaturated C. 11 -C 29 -alkyl group.
8. Agent according to one of claims 1 - 7, characterized in that additionally in a A total amount of 0.1-1 wt. %, based on the weight of the agent, of at least one salt of a saturated or unsaturated C10-C22-alk(en)ylcarboxylic acid with a monovalent cation is present, which is preferably selected from the sodium, potassium, ammonium, and monoethanolamine salts of myristic acid, cetyl acid, palmitoleic acid, stearic acid, isostearic acid, oleic acid, elaidic acid, petroselinic acid, arachidic acid, gadoleic acid, behenic acid, erucic acid, and brassidic acid, as well as technical mixtures thereof.
9. Agent according to one of claims 1-8, characterized in that the weight ratio of the total weight of components b) and c) to the total weight of component(s) d) is in the range of 0.8-1.2, preferably in the range of 0.9-1.1, particularly preferably in the range of 1.0-1.1.Agent according to one of claims 1-9, characterized in that the alkalizing agent f) is selected from ammonia, ammonium hydroxide, alkanolamines, alkali hydroxides, basic amino acids, alkali metal metasilicates, alkali metal disilicates, alkali phosphates, and dialkali monohydrogen phosphates, as well as mixtures of these substances.
11. Use of an agent according to one of claims 1 to 10 for the oxidative color change of keratin fibers, in particular human hair.
12. A method for oxidative color change, which comprises the following method steps: i) providing a cosmetic agent (M1) for oxidative color change of keratinic fibers, in particular human hair, according to one of claims 1 to 10, which is in the form of an oil-in-water emulsion and which contains, in each case based on its weight, the following components: a) 45 to 85% by weight, preferably 50 to 80% by weight, particularly preferably 55 to 75% by weight.- %, extraordinarily preferably 60 to 70 wt.% water, b) at least one anionic surfactant selected from non-ethoxylated C8-C18 alkyl sulfates in a total amount of 4 - 8 wt.%, preferably 5 - 7 wt.%, c) at least one non-ionic surfactant selected from alkyl mono- and oligoglycosides of the formula R. 4 O-[G]p, in the R 4represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5 - 15% by weight, preferably 3.0 - 12% by weight, particularly preferably 3.5 to 10% by weight, extraordinarily preferably 4.0 to 6.0% by weight, d) at least one linear 1-alkanol having 8 to 40 carbon atoms in a total amount - based on the weight of the agent - of 5 - 15% by weight, preferably 7 - 13% by weight, particularly preferably 9 - 11% by weight, e) at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C 12 – C 30-carboxylic acids, which may be hydroxylated, in a total amount of 3-10 wt.%, preferably 4-8 wt.%, particularly preferably 5-7 wt.%, f) at least one alkalizing agent, g) zero to less than 0.1 wt.% of peroxide compounds, h) optionally at least one oxidation dye precursor of the developer type and at least one oxidation dye precursor of the coupler type, wherein the agent has a pH in the range from 8.0 to 11.5, preferably in the range from 9.0 to 11.0, particularly preferably in the range from 9.5 to 10.7, extremely preferably 9.8 to 10.5, in each case measured at a temperature of 20°C, and ii) providing an oxidizing agent preparation (M2) containing 40-96 wt.%, preferably 65-90 wt.%, particularly preferably 70-80 wt.%, water, furthermore Hydrogen peroxide in a total amount of 0.5 to 23 wt.%, more preferably 2.5 to 21 wt.%, particularly preferably 4 to 20 wt.%, most preferably 5 to 18 wt.-% and extremely preferably 6 to 12 wt.%, and a pH in the range of 2.0 to 6.5, preferably 2.5 - 5.5, particularly preferably 2.8 to 4.5, in each case measured at 20°C, wherein the wt.% figures refer in each case to the weight of the oxidizing agent preparation (M2), optionally containing at least one oil and / or at least one surfactant, iii) mixing the cosmetic agent (M1) with the oxidizing agent preparation (M2), preferably in a weight ratio (M1):(M2) in the range from 1:0.8 to 1:2.5, preferably 1:1 to 1:2, directly followed by iv) applying the mixture obtained in step iii) to the hair and leaving this mixture on the hair for a time of 1 to 60 minutes, preferably from 20 to 45 minutes, at room temperature and / or at 30-60°C, preferably at 32-50°C, v) rinsing the hair with water and / or a cleansing composition, and vi) optionally applying an aftertreatment agent to the hair and optionally rinsing, then drying. 13.Process for the oxidative color change of keratinic fibers, in particular for lightening keratinic fibers, which comprises the following process steps: i) Providing a cosmetic agent (M1) for the oxidative color change of keratinic fibers, in particular human hair, according to one of claims 1 to 10, which is in the form of an oil-in-water emulsion and which, in each case based on its weight, contains the following components: a) 45 to 85% by weight, preferably 50 to 80% by weight, particularly preferably 55 to 75% by weight, extraordinarily preferably 60 to 70% by weight of water, b) at least one anionic surfactant selected from non-ethoxylated C8-C18-alkyl. sulfates in a total amount of 4-8 wt.%, preferably 5-7 wt.%, c) at least one non-ionic surfactant selected from alkyl mono- and oligoglycosides of the formula R 4 O-[G]p, in the R 4represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms, and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5 - 15% by weight, preferably 3.0 - 12% by weight, particularly preferably 3.5 to 10% by weight, extraordinarily preferably 4.0 to 6.0% by weight, d) at least one linear 1-alkanol having 8 to 40 carbon atoms in a total amount - based on the weight of the agent - of 5 - 15% by weight, preferably 7 - 13% by weight, particularly preferably 9 - 11% by weight, e) at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C12 - C30 carboxylic acids, which may be hydroxylated, in a total amount of 3 - 10 wt.%, preferably 4 - 8 wt.%, particularly preferably 5 - 7 wt.%, f) at least one alkalizing agent, g) zero to less than 0.1 wt.-% of peroxide compounds, h) optionally at least one oxidation dye precursor of the developer type and at least one oxidation dye precursor of the coupler type, the agent having a pH in the range from 8.0 to 11.5, preferably in the range from 9.0 to 11.0, particularly preferably in the range from 9.5 to 10.7, extremely preferably 9.8 to 10.5, in each case measured at a temperature of 20 °C, ii) providing an oxidizing agent preparation (M2) containing 40-96 wt.%, preferably 65-90 wt.%, particularly preferably 70-80 wt.%, water, furthermore hydrogen peroxide in a total amount of 0.5 to 23 wt.%, further preferably 2.5 to 21 wt.%, particularly preferably 4 to 20 wt.%, very particularly preferably 5 to 18 wt.% and extremely preferably 6 to 12 wt.%, and a pH in the range of 2.0 to 6.5, preferably 2.5 - 5.5, particularly preferably 2.8 to 4.5, each measured at 20°C, wherein the weight.-% data each relate to the weight of the oxidizing agent preparation (M2), optionally containing at least one oil and / or at least one surfactant, and iii) providing an oxidizing agent preparation (M3) different from (M2), comprising i) at least one oxidizing agent selected from the inorganic salts of a peroxosulfuric acid, and mixtures of these salts, and j) and 0 to 10 wt.%, preferably 0.1 to 8 wt.%, particularly preferably 0.5 to 5 wt.% water, wherein the wt.% data each relate to the weight of the oxidizing agent preparation (M3), k) wherein (M3) optionally contains at least one oil and / or at least one surfactant, iv) mixing the cosmetic agent (M1) with the oxidizing agent preparations (M2) and. (M3), wherein it is preferred that the aforementioned components (M1), (M2) and (M3) are composed with respect to the weight ratio (M1):(M2):(M3) of the three components to one another such that the weight ratio (M1):(M2) is in the range from 1:0.8 to 1:2.5, preferably 1:1 to 1:2, and (M3) is present in an amount of 5-25 wt.%, preferably 7-20 wt.%, particularly preferably 7.5-17 wt.%, based on the weight of the total mixture of (M1), (M2) and (M3), immediately following v) applying the mixture obtained in step iv) to the hair and leaving this mixture for a time of 1 to 60 minutes, preferably 20 to 45 minutes, at room temperature and / or at 30-60°C, preferably at 32-50°C on the hair, vi) rinsing the hair with water and / or a cleansing composition, and vii) if necessary, applying a post-treatment product to the hair and, if necessary, rinsing, followed by drying. 14.Packaging unit (kit of parts) which, when packaged separately, comprises the following: i) at least one container (C1) containing an agent for the oxidative color change of keratin fibers, in particular human hair, according to one of claims 1 to 10, which is in the form of an oil-in-water emulsion and which, in each case based on its weight, contains the following components: a) 45 to 85% by weight, preferably 50 to 80% by weight, particularly preferably 55 to 75% by weight, extraordinarily preferably 60 to 70% by weight of water, b) at least one anionic surfactant selected from non-ethoxylated C8-C18 alkyl sulfates in a total amount of 4-8% by weight, preferably 5-7% by weight, c) at least one non-ionic surfactant selected from alkyl mono- and oligoglycosides of the formula R. 4 O-[G] p , in the R 4represents an alkyl or alkenyl radical having 4 to 22 carbon atoms, G represents a sugar radical having 5 or 6 carbon atoms and p represents a positive rational number in the range from 1 to 6, in a total amount of 2.5 - 15 wt.%, preferably 3.0 - 12 wt.%, particularly preferably 3.5 to 10 wt.%, extraordinarily preferably 4.0 to 6.0 wt.%, d) at least one linear 1-alkanol having 8 to 40 carbon atoms in a total amount - based on the weight of the agent - of 5 - 15 wt.%, preferably 7 - 13 wt.%, particularly preferably 9 - 11 wt.%, e) at least one compound selected from glycerol mono- and diesters of linear or branched, saturated or unsaturated C12 - C30 carboxylic acids, which may be hydroxylated, in a total amount of 3 - 10 % by weight, preferably 4-8% by weight, particularly preferably 5-7% by weight, f) at least one alkalizing agent, g) zero to less than 0.1% by weight of peroxide compounds, h) optionally at least one oxidation dye precursor of the developer type and at least one oxidation dye precursor of the coupler type, the agent having a pH in the range from 8.0 to 11.5, preferably in the range from 9.0 to 11.0, particularly preferably in the range from 9.5 to 10.7, extremely preferably 9.8 to 10.5, in each case measured at a temperature of 20 °C, and ii) at least one container (C2) containing an oxidizing agent preparation (M2) which contains 40-96% by weight, preferably 65-90% by weight, particularly preferably 70-80% by weight, water, furthermore hydrogen peroxide in a total amount of 0.5 to 23% by weight, further preferably 2.5 to 21% by weight, particularly preferably 4 to 20% by weight, very particularly preferably 5 to 18% by weight and extremely preferably 6 to 12% by weight, and has a pH in the Range of 2.0 to 6.5, preferably 2.5 - 5.5, particularly preferably 2.8 to 4.5, each measured at 20°C, wherein the wt.-% data in each case refer to the weight of the oxidizing agent preparation (M2), wherein optionally at least one oil and / or at least one surfactant are contained.
15. Packaging unit (kit of parts) according to claim 14, which additionally comprises a separately packaged oxidizing agent preparation (M3) containing l) at least one oxidizing agent selected from the inorganic salts of a peroxosulfuric acid, and mixtures of these salts, and m) 0 to 10 wt.%, preferably 0.1 to 8 wt.%, particularly preferably 0.5 to 5 wt.% water, wherein the wt.% data in each case refer to the weight of the oxidizing agent preparation (M3), n) wherein (M3) optionally contains at least one oil and / or at least one surfactant.
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