Surfactant composition containing a mixture of fatty alcohol ether sulfates
A surfactant composition derived from litsea seed oil, with a high proportion of 12-carbon hydrocarbon chains, addresses the need for environmentally friendly surfactants with improved cleaning performance, particularly in laundry, dishwashing, and hair washing, by utilizing a process of transesterification, reduction, and sulfation.
Patent Information
- Authority / Receiving Office
- DE · DE
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-10-07
- Publication Date
- 2026-04-09
AI Technical Summary
There is a need for surfactants with hydrocarbon chains of varying lengths derived from renewable, environmentally friendly sources that exhibit similar or better cleaning performance than those from conventional sources like palm oil or coconut oil, while minimizing environmental impact.
A surfactant composition comprising a mixture of fatty alcohol ether sulfates with hydrocarbon chains of different lengths, primarily derived from litsea seed oil, where at least 50% of the chains are 12 carbon atoms, and optionally including chains of 10 and 14 carbon atoms, is produced through a process involving transesterification, reduction, alkoxylation, and sulfation.
The surfactant composition demonstrates improved cleaning performance, particularly in household applications, with enhanced foaming properties and reduced environmental footprint due to the use of litsea seed oil, which offers a sustainable alternative to palm oil.
Abstract
Description
Technical field
[0001] The present invention relates to surfactant compositions comprising a mixture of fatty alcohol ether sulfates with hydrocarbon chains of different lengths, and to processes for their preparation. State of the art
[0002] Most surfactants used in modern cleaning applications are organic compounds comprising hydrophilic head groups and hydrophobic tail groups. The hydrophobic tail groups of most surfactants are formed by hydrocarbon chains. The source of these hydrocarbon chains is of great economic and environmental importance.
[0003] Hydrocarbon chains for the production of surfactants can be obtained from fossil sources. Fossil sources are readily available, but less desirable from an ecological perspective. As an alternative, hydrocarbon chains can also be obtained from renewable sources such as palm oil or coconut oil. These oils, which are typically extracted from the seeds of the respective plants, contain triglycerides of fatty acids that can be industrially converted into fatty alcohols and further processed into the desired surfactants. However, the widespread use of palm oil or palm kernel oil as a renewable source is controversial due to environmental problems such as deforestation and the loss of biodiversity caused by widespread monoculture farming.
[0004] Sustainably sourced, environmentally friendly ingredients are becoming increasingly important for both manufacturers and consumers. Therefore, there is great interest in finding alternative, environmentally friendly sources for the production of surfactants.
[0005] The source of the hydrocarbon chains also determines their length. Fatty acids from palm kernel oil or coconut oil, for example, contain hydrocarbon chains with 10 to 18 carbon atoms, with a relatively high proportion of these chains having 14 or more carbon atoms. The chain length distribution of the hydrocarbon chains, in turn, determines the cleaning performance of the surfactants produced from them. Therefore, there is a need for surfactants with a hydrocarbon chain length distribution that exhibits the same or better cleaning performance than surfactants from conventional sources. Technical task
[0006] The present invention aims to provide surfactants containing hydrocarbon chains of varying lengths that can be obtained from renewable, environmentally friendly sources. These surfactants should exhibit similar or better cleaning performance than surfactants derived from conventional renewable sources such as palm oil or coconut oil. Summary of the invention
[0007] It has been found that litsea seed oil can be used as a source of fatty acids for the production of surfactants. The oil extracted from litsea seeds has a high proportion of fatty acids with 10 or 12 carbon atoms and can be readily processed into a surfactant composition with hydrocarbon chains of varying lengths.
[0008] In particular, it was found that this oil can be used to produce fatty alcohol ether sulfates with hydrocarbon chains of varying lengths, including a high relative proportion of hydrocarbon chains with 12 carbon atoms.
[0009] A first aspect of the invention therefore relates to a surfactant composition comprising a mixture of fatty alcohol ether sulfates with hydrocarbon chains of different lengths, characterized in that 50 wt.% or more of the fatty alcohol ether sulfates contain a hydrocarbon chain derived from saturated or unsaturated fatty acids with 12 carbon atoms.
[0010] In a preferred embodiment, 5 wt.% or more of the fatty alcohol ether sulfates contain a hydrocarbon chain derived from saturated or unsaturated fatty acids with 10 carbon atoms.
[0011] In a preferred embodiment, less than 10 wt% of the fatty alcohol ether sulfates contain a hydrocarbon chain derived from saturated or unsaturated fatty acids with 14 carbon atoms.
[0012] In a preferred embodiment, the ratio is of the total weight of fatty alcohol ether sulfates containing a hydrocarbon chain derived from saturated or unsaturated fatty acids with 12 carbon atoms, to the total weight of fatty alcohol ether sulfates containing a hydrocarbon chain derived from saturated or unsaturated fatty acids with 14 carbon atoms, 5 or more.
[0013] In a preferred embodiment, 4 wt.% or more of the fatty alcohol ether sulfates contain a hydrocarbon chain derived from unsaturated fatty acids with 10 to 16 carbon atoms.
[0014] In a preferred embodiment, 1 wt.% or more of the fatty alcohol ether sulfates contain an unsaturated hydrocarbon chain with 10 to 16 carbon atoms.
[0015] In a preferred embodiment, the fatty alcohol ether sulfates contain hydrocarbon chains derived from litsea seed oil.
[0016] In a preferred embodiment, the surfactant composition is obtainable by the method according to the following aspect of the invention.
[0017] In another aspect, the invention relates to a method for producing a surfactant composition comprising a mixture of fatty alcohol ether sulfates with hydrocarbon chains of different lengths, wherein the method comprises the following steps: (a) Reacting a litsea seed oil comprising a mixture of triglycerides with an alcohol under acidic or basic conditions to obtain a mixture of fatty acid alcohol monoesters; (b) Reacting the mixture of fatty acid alcohol monoesters with a reducing agent to obtain a mixture of fatty alcohols; (c) Reacting the mixture of fatty alcohols with alkylene oxide to obtain a mixture of alkoxylated fatty alcohols; (d) Reacting the mixture of alkoxylated fatty alcohols with sulfuric acid, sulfur trioxide, chlorosulfonic acid and / or sulfamic acid to obtain the mixture of fatty alcohol ether sulfates.
[0018] In another aspect, the invention relates to a detergent composition, a cleaning agent composition for hard surfaces or a hair care composition containing the surfactant composition described above. Advantageous effects of the invention
[0019] The present invention provides surfactants of the class of fatty acid ether sulfates with a mixture of hydrocarbon chains, which consist predominantly of hydrocarbon chains derived from saturated or unsaturated fatty acids with 12 carbon atoms.
[0020] The surfactant composition thus contains a higher relative proportion of these hydrocarbon chains than previously known surfactants derived either from fossil sources or from conventional renewable sources such as palm oil or coconut oil. Due to this higher relative proportion, the surfactant composition according to the invention is expected to exhibit improved cleaning performance, particularly with regard to soiling encountered in typical household applications such as laundry, dishwashing, and hair washing. Furthermore, the surfactant composition exhibits good foaming properties.
[0021] Furthermore, the surfactant composition of the invention can be easily obtained from Litsea seed oil. Litsea species are evergreen or deciduous trees or shrubs from the laurel family (Lauraceae) and originate from parts of Asia and North America. The fruits of Litsea species, especially Litsea cubeba, are used as a source of lemon-scented essential oil due to their high content of citral, limonene, and other constituents. Until now, the residues from the production of this essential oil have been disposed of or incinerated. The present invention offers a way to utilize these residues, particularly the seeds, to obtain a surfactant composition.
[0022] Furthermore, it is assumed that the large-scale cultivation of litsea plants is less environmentally damaging than the cultivation of palm trees. Therefore, the present invention offers an environmentally friendly, renewable source for the production of surfactants. Description of the embodiments
[0023] The following section describes in detail embodiments for carrying out the present invention. However, the present invention is not limited to the following embodiments.
[0024] The invention relates to a surfactant composition comprising a mixture of fatty alcohol ether sulfates. The fatty alcohol ether sulfates are esters of alkoxylated fatty alcohols and sulfuric acid. The hydrocarbon chains of the fatty alcohol ether sulfates are derived from the respective fatty alcohols and can be linear or branched, saturated or unsaturated. The hydrocarbon chains are preferably unsubstituted.
[0025] The fatty alcohol ether sulfates are preferably ethoxylated and / or propoxylated. The fatty alcohol ethers can also be mixed alkoxylates containing a mixture of ethoxylate and propoxylate groups. Preferably, the fatty alcohol ether sulfates comprise 1 to 20 alkoxylate units, more preferably 1 to 10, and most preferably 2 to 8.
[0026] Preferably, the fatty alcohol ether sulfates have the following general structure: R1 -O-(R2 -O) n -SO3 - X + where R1 represents the hydrocarbon chain, R2 represents an alkanediyl group with 2 to 4 carbon atoms, n is a number between 1 and 20, and X + a cation, such as a hydrogen ion or an alkali metal ion, for example a sodium ion or potassium ion. Preferably, R( 2) For an alkanediyl group with 2 or 3 carbon atoms, n is a number between 1 and 10, preferably 2 to 8.
[0027] The mixture of fatty alcohol ether sulfates consists of fatty alcohol ether sulfates with different hydrocarbon chain lengths. Preferably, the mixture comprises fatty alcohol ether sulfates with hydrocarbon chains containing between 10 and 18 carbon atoms. These hydrocarbon chains are derived from the respective fatty acids with 10 to 18 carbon atoms. The mixture may also contain fatty alcohol ether sulfates with hydrocarbon chains containing fewer than 10 or more than 18 carbon atoms, derived from shorter or longer fatty acids, respectively.
[0028] A key feature of the invention is that 50% by weight or more of the fatty alcohol ether sulfates contain a hydrocarbon chain derived from saturated or unsaturated fatty acids with 12 carbon atoms. The relative proportion refers to the total weight of all fatty alcohol ether sulfates in the mixture. Thus, at least 50% by weight of the fatty alcohol ether sulfates contain a saturated or unsaturated hydrocarbon chain with 12 carbon atoms.
[0029] This high proportion of 12-carbon hydrocarbon chains distinguishes the invention's mixture from fatty acid ether sulfate mixtures obtained from conventional sources. Palm kernel oil, for example, typically contains less than 50% by weight of fatty acids, so a surfactant mixture produced from palm kernel oil contains less than 50% by weight of surfactants derived from 12-carbon fatty acids.
[0030] Due to the high relative proportion of hydrocarbon chains derived from fatty acids with 12 carbon atoms, the surfactant composition exhibits unique cleaning properties and is particularly effective against soiling that occurs in typical household applications such as washing clothes, washing dishes and washing hair.
[0031] Preferably, the composition comprises 55 wt.% or more, more preferably 60 wt.% or more, most preferably 65 wt.% or more fatty alcohol ether sulfates having a hydrocarbon chain derived from saturated or unsaturated fatty acids with 12 carbon atoms, based on the total weight of the fatty alcohol ether sulfates.
[0032] The surfactant composition also includes fatty alcohol ether sulfates containing hydrocarbon chains derived from saturated or unsaturated fatty acids with fewer or more than 12 carbon atoms. The amount of fatty alcohol ether sulfates with a hydrocarbon chain derived from saturated or unsaturated fatty acids with 12 carbon atoms is therefore less than 100% by weight and is preferably limited to 99% by weight or less, preferably 95% by weight or less, and most ideally 90% by weight or less, based on the total weight of the fatty alcohol ether sulfates.
[0033] In a preferred embodiment, the surfactant composition comprises fatty alcohol ether sulfates containing hydrocarbon chains derived from saturated or unsaturated fatty acids with 10 carbon atoms. It is assumed that the combination of fatty alcohol ether sulfates containing hydrocarbon chains with 10 carbon atoms and those containing hydrocarbon chains with 12 carbon atoms further contributes to the cleaning performance of the surfactant composition.
[0034] Preferably, the surfactant composition comprises 1 wt.% or more, more preferably 5 wt.% or more, even more preferably 7 wt.% or more, most preferably 9 wt.% or more fatty alcohol ether sulfates with a hydrocarbon chain derived from saturated or unsaturated fatty acids with 10 carbon atoms, based on the total weight of the fatty alcohol ether sulfates.
[0035] In a preferred embodiment, the surfactant composition comprises only a limited amount of fatty alcohol ether sulfates containing a hydrocarbon chain derived from saturated or unsaturated fatty acids with 14 carbon atoms. Preferably, the surfactant composition comprises 10 wt.% or less, more preferably 8 wt.% or less, most preferably 5 wt.% or less, and most preferably 2 wt.% or less of fatty alcohol ether sulfates containing a hydrocarbon chain derived from saturated or unsaturated fatty acids with 14 carbon atoms, based on the total weight of the fatty alcohol ether sulfates.
[0036] In a preferred embodiment, the surfactant composition comprises a larger proportion of fatty alcohol ether sulfates containing a hydrocarbon chain derived from saturated or unsaturated fatty acids with 12 carbon atoms, compared to the proportion of fatty alcohol ether sulfates containing a hydrocarbon chain derived from saturated or unsaturated fatty acids with 14 carbon atoms. Preferably, the ratio of the total weight of the fatty alcohol ether sulfates containing a hydrocarbon chain derived from saturated or unsaturated fatty acids with 12 carbon atoms to the total weight of the fatty alcohol ether sulfates containing a hydrocarbon chain derived from saturated or unsaturated fatty acids with 14 carbon atoms is 5 or more, preferably 8 or more, and most preferably 10 or more.
[0037] In a preferred embodiment, the surfactant composition comprises fatty alcohol ether sulfates containing unsaturated hydrocarbon chains, preferably unsaturated hydrocarbon chains derived from unsaturated fatty acids with 10 to 16 carbon atoms. The inclusion of unsaturated hydrocarbon chains can influence the surfactant composition's ability to form micelles and thus improve its cleaning performance against certain types of soiling. The surfactant composition preferably contains unsaturated hydrocarbon chains derived from medium-length unsaturated fatty acids, i.e., with a length of 10 to 16 carbon atoms.This distinguishes the surfactant composition from conventional surfactants, which are derived from palm oil, for example, and contain only small amounts of medium-length unsaturated fatty acids, but a higher proportion of unsaturated fatty acids with 18 or more carbon atoms.
[0038] Preferably 4 wt.% or more, preferably 6 wt.% or more, most preferably 8 wt.% or more of the fatty alcohol ether sulfates contain a hydrocarbon chain derived from unsaturated fatty acids with 10 to 16 carbon atoms, based on the total weight of the fatty alcohol ether sulfates.
[0039] In a further preferred embodiment, 1 wt.% or more, preferably 2 wt.% or more, most preferably 4 wt.% or more of the fatty alcohol ether sulfates contain an unsaturated hydrocarbon chain with 10 to 16 carbon atoms, based on the total weight of the fatty alcohol ether sulfates.
[0040] In a preferred embodiment, the fatty alcohol ether sulfates contain hydrocarbon chains derived from litsea seed oil. Litsea seed oil is the preferred starting material for the production of the surfactant composition according to the invention. It contains a mixture of fatty acids that can be converted into the surfactants according to the invention.
[0041] Litsea seed oil provides a mixture of hydrocarbon chains that is rich in hydrocarbon chains with 12 or 10 carbon atoms and has a low relative proportion of hydrocarbon chains with 14 carbon atoms.
[0042] Furthermore, litsea seed oil has a high relative proportion of unsaturated hydrocarbon chains with 10 to 16 carbon atoms.
[0043] The hydrocarbon chains can originate from a variety of Litsea species, such as Litsea cubeba, Litsea confertiflora, Litsea coriacea, Litsea auriculata, Litsea angustifolia, Litsea glutinosa, Litsea laeta, Litsea lanuginosa, or Litsea subcoriacea, as well as mixtures thereof. Preferably, the hydrocarbon chains originate from Litsea cubeba.
[0044] The surfactant composition preferably contains the mixture of fatty alcohol ether sulfates as the main component. The surfactant composition may optionally contain further components in addition to the mixture of fatty alcohol ether sulfates. For example, the surfactant composition may contain a solvent, in particular an organic solvent such as an ether or alcohol. Preferably, the total amount of additional components not belonging to the mixture of fatty alcohol ether sulfates is limited to 10% by weight, preferably 5% by weight, and most preferably 1% by weight, based on the total weight of the surfactant composition. The surfactant composition may be solid or liquid and is preferably solid.
[0045] The present invention also relates to a method for producing the above-mentioned surfactant composition.
[0046] The process comprises a first step (a) in which litsea seed oil, containing a mixture of triglycerides, is reacted with an alcohol under acidic or basic conditions to obtain a mixture of fatty acid alcohol monoesters. This step constitutes a transesterification reaction in which the fatty acid triglycerides present in the litsea seed oil are converted into monoesters of the fatty acids derived from the litsea seed oil and the added alcohol. The litsea seed oil thus serves as a raw material or starting material for the production of the aforementioned surfactant composition.
[0047] The litsea seed oil used in this step is preferably obtained from the seeds of Litsea cubeba, Litsea confertiflora, Litsea coriacea, Litsea auriculata, Litsea angustifolia, Litsea glutinosa, Litsea laeta, Litsea lanuginose, Litsea subcoriacea, or mixtures thereof. Seed oil from the seeds of Litsea cubeba is preferred.
[0048] The seed oil can be extracted from litsea seeds, for example, by pressing, especially cold pressing, solvent extraction, especially extraction with petroleum ether, ultrasound-assisted extraction, and CO2 extraction. Combinations of these methods can also be used. Preferably, the extracted seed oil is decolorized with active clay before further processing steps.
[0049] To establish the required acidic or basic conditions, the transesterification is carried out in the presence of an acid or a base, preferably a strong acid or a strong base. The acid or base acts as a catalyst for the transesterification. The reaction can be carried out, for example, by adding sodium hydroxide, potassium hydroxide, hydrochloric acid, or sulfuric acid. The use of an acid can be advantageous because it prevents salt formation and facilitates phase separation after the reaction is complete. Therefore, the transesterification is preferably carried out in the presence of an acid, ideally sulfuric acid.
[0050] The alcohol is preferably a monoalkanol, such as butanol, propanol, ethanol, or methanol. Methanol is best. The alcohol is preferably added to the seed oil in excess and can simultaneously serve as a solvent for the reaction.
[0051] After completion of the transesterification, the fatty acid monoesters are preferably separated from the remaining solvent. Optionally, the fatty acid monoesters can also be treated with activated carbon to remove byproducts.
[0052] The process comprises a second step (b) in which the mixture of fatty acid monoesters obtained in the first step is reacted with a reducing agent to obtain a mixture of fatty alcohols. The reducing agent is preferably added in a molar ratio of 1 or more to the amount of fatty acid monoesters. The reducing agent can be selected from any known reducing agent. Preferably, the reducing agent is lithium aluminum hydride.
[0053] After the reduction is complete, the mixture of fatty alcohols is preferably treated with activated carbon or charcoal to remove colored by-products.
[0054] The process comprises a third step (c) in which the mixture of fatty alcohols is reacted with alkylene oxide to obtain a mixture of alkoxylated fatty alcohols. The alkylene oxide is preferably selected from the group consisting of ethylene oxide, propylene oxide, butylene oxide, and mixtures thereof. Preferably, the fatty alcohols are reacted with ethylene oxide, propylene oxide, or a mixture thereof to obtain a mixture of ethoxylated and / or propoxylated fatty alcohols.
[0055] The process comprises a fourth step (d) in which the mixture of alkoxylated fatty alcohols obtained in the previous step is reacted with sulfuric acid, sulfur trioxide, chlorosulfonic acid, and / or sulfamic acid to obtain the mixture of fatty alcohol ether sulfates. Preferably, chlorosulfonic acid is used as the reagent in this step. The reaction is preferably carried out at a temperature between 0 °C and 30 °C. Preferably, the reaction is carried out in an organic solvent, such as an ether, preferably diethyl ether.
[0056] The product obtained in step (d) can preferably be purified by recrystallization and optionally by washing with an organic solvent, such as ether or acetone.
[0057] The present invention also relates to a detergent composition, a cleaning agent composition for hard surfaces, or a hair care composition containing the surfactant composition described above. Due to its good cleaning performance against soils that occur in typical household applications such as laundry, dishwashing, and hair washing, the surfactant composition described above is particularly useful as a surfactant in these compositions.
[0058] The detergent composition, the cleaning agent composition for hard surfaces, or the hair care composition may contain additional components.
[0059] Preferably, the detergent composition, the cleaning agent composition for hard surfaces, or the hair care composition comprises at least one additional surfactant that differs from the fatty alcohol ether sulfates of the invention. Preferably, the fatty alcohol ether sulfates of the invention are combined with at least one additional surfactant selected from the group consisting of anionic surfactants, nonionic surfactants, amphoteric surfactants, or cationic surfactants.
[0060] Additional anionic surfactants are preferably selected from the group consisting of linear alkylbenzenesulfonates, fatty acid salts (soaps), fatty alcohol sulfates, alkyl sulfonates, carboxylated alkyl polyglycosides, isethionates, amino acid-based surfactants such as taurates, sarcosinates, and glutamates, and sulfosuccinate esters. The anionic surfactants may be in the form of their alkali, alkaline earth, or ammonium salts. Preferably, the anionic surfactants are in the form of their sodium salts.
[0061] Non-ionic surfactants are preferably selected from the group consisting of alkoxylated fatty alcohols, alkoxylated fatty amines, alkoxylated alkanolamines, fatty acid amides, alkoxylated fatty acid amides, amine oxides, alkyl polyglycosides and alkoxylated alkylphenols.
[0062] Amphoteric surfactants are preferably selected from the group consisting of betaines, such as cocamidopropyl betaine, sulfobetaines, such as cocamidopropyl hydroxysultan, and imidazoline derivatives, such as cocoamphoacetate.
[0063] Cationic surfactants are preferably selected from the group consisting of salts of fatty amines and quaternary ammonium derivatives, in particular long-chain quaternary ammonium surfactants such as cetyltrimethylammonium chloride and behentrimonium chloride.
[0064] Preferably, the surfactant composition of the invention is combined with a surfactant selected from the group of biosurfactants. Biosurfactants are surfactants of microbial origin and are produced by cultivating biosurfactant-producing microorganisms on substrates such as vegetable oils or carbohydrates. They consist of a hydrophilic unit, typically composed of amino acids, peptides, mono-, di-, or polysaccharides, or sugar alcohols, and a hydrophobic unit composed of fatty acids. Preferred biosurfactants are glycolipids, lipopeptides / lipoproteins, and polymeric surfactants. Among the glycolipids, rhamnolipids, sophorolipids, and mannosylerythritol lipids are particularly preferred.
[0065] Preferably, the detergent composition, the cleaning agent composition for hard surfaces, or the hair care product composition additionally contains a complexing agent. The addition of a complexing agent is particularly advantageous in the case of a detergent composition or a cleaning agent composition for hard surfaces. A complexing agent according to the invention is a compound that can form a complex with a metal ion, in particular with an alkali or alkaline earth metal ion.
[0066] The forming agent is preferably selected from the group consisting of phosphates, carboxylic acids, and ion exchangers. Preferred phosphates are selected from diphosphate and triphosphate salts, phosphonic acids such as 1-hydroxyethyl-1,1-diphosphonic acid, aminotri(methylenephosphonic acid), and diethylenetriaminepentakis(methylenephosphonic acid) (DTPMP). Preferred carboxylic acids are selected from di- or polycarboxylic acids such as citric acid, nitrilotriacetic acid (NTA), N-(2-hydroxyethyl)iminodiacetic acid, ethylenediaminetetraacetic acid (EDTA), 1,2,3,4-cyclopentanetetracarboxylic acid, L-glutamic acid N,N-diacetate (GLDA), and methylglycinediacetate (MGDA). Preferred ion exchangers are selected from polyacrylic acid, poly-(α-hydroxy-acrylic acid), poly-[(3-hydroxymethyl)-hexamethylene-1,3,5-tricarboxylic acid], poly-[(4-methoxy)-tetramethylene-1,2-dicarboxylic acid], poly-(tetramethylene-1,2-dicarboxylic acid) and silicates.
[0067] Preferably, the detergent composition, the hard surface cleaning composition or the hair care product composition contains the surfactant composition in an amount of 1 wt.% to 50 wt.%, preferably 3 wt.% to 40 wt.%, most preferably 5 wt.% to 30 wt.%, based on the total weight of the mixture of fatty alcohol ether sulfates and the total weight of the detergent composition, the hard surface cleaning composition or the hair care product composition.
[0068] A detergent composition according to the invention is a composition for cleaning textiles. The detergent composition can be solid or liquid. Preferably, the detergent composition is liquid. Preferably, in addition to the surfactant composition according to the invention, the detergent composition contains at least one surfactant. Even more preferably, the detergent composition comprises at least one additional anionic surfactant and one nonionic surfactant. Preferably, the detergent composition also comprises a complexing agent in an amount of 1% to 10% by weight, more preferably 2% to 8% by weight, and most preferably 4% to 6% by weight, based on the total weight of the detergent composition.
[0069] The detergent composition may furthermore contain one or more active ingredients selected from the group consisting of additional surfactants, complexing agents, bleaching agents, bleach activators, bleaching catalysts, acids, alkalis, perfumes, solvents, dyes, opacifiers, viscosity regulators, enzymes, electrolytes, complexing agents, dyes, optical brighteners, hydrotropes, dirt-repellent polymers, dye transfer inhibitors, graying inhibitors, anti-reposition agents, antistatic agents, wrinkle inhibitors, corrosion inhibitors, pH regulators, preservatives, foam inhibitors, rheology modifiers, rheology stabilizers, ironing aids, bittering agents, shrinkage inhibitors, swelling inhibitors and anti-slip agents, waterproofing agents, UV absorbers, antimicrobial agents, germicides, fungicides, antioxidants, skin conditioning agents, plasticizers or mixtures thereof.
[0070] A cleaning composition for hard surfaces according to the invention is a composition for cleaning surfaces other than textiles used on the human body, such as ceramic, metal, or glass surfaces. The cleaning composition for hard surfaces can be solid or liquid. Preferably, the cleaning composition for hard surfaces is liquid. Preferably, the cleaning composition for hard surfaces is a dishwashing composition, more preferably a handwashing composition.
[0071] The cleaning composition for hard surfaces may furthermore contain one or more active ingredients selected from the group consisting of additional surfactants, acids, alkalis, perfumes, dyes, hydrotropes, complexing agents, bleaching agents, bleach activators, bleaching catalysts, silver protectants, skin conditioners, antibacterial agents, enzymes or mixtures thereof.
[0072] A hair care composition according to the invention is a composition for cleansing or conditioning hair, such as a shampoo or a hair conditioner. Preferably, the hair care composition is a shampoo. The hair care composition is preferably liquid. Preferably, the hair care composition is a shampoo and contains, in addition to the surfactant composition according to the invention, at least one surfactant. Preferably, the hair care composition contains at least one additional anionic surfactant and one amphoteric surfactant. Most preferably, the additional anionic surfactant is selected from the taurate group and the amphoteric surfactant from the betaine group. In a preferred embodiment, the hair care composition additionally contains a nonionic surfactant.
[0073] The hair care composition may further include one or more active ingredients selected from the group consisting of additional surfactants, non-ionic polymers, anionic polymers, amino acids, oligopeptides, vitamins, provitamins, vitamin precursors, bioquinones, purine (derivatives), taurine (derivatives), L-carnitine (salts), panthenol, pantothenic acid, 2-furanone (derivatives), ectoin, allantoin, plant extracts, ester oils, UV filters, structuring agents, thickening agents, electrolytes, pH regulators, dyes, perfume oils, anti-dandruff agents, opacifiers, pearlescent agents, pigments, stabilizers, swelling agents, complexing agents, propellants, preservatives, antioxidants, or mixtures thereof.
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