Composition

By using a combination of C8 to C11 branched alcohol ether sulfate surfactant and specific aromatic agents in the laundry detergent, the shortcomings of existing laundry detergents in cleaning effects and durability are solved, achieving more efficient stain removal and long-lasting cleaning.

CN120092072APending Publication Date: 2025-06-03UNILEVER IP HLDG BV
View PDF 75 Cites 0 Cited by

Patent Information

Application Number
CN202380074897.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2022-10-25
Filing Date
2023-10-04
Publication Date
2025-06-03

AI Technical Summary

Technical Problem

Existing laundry liquid compositions have shortcomings in terms of cleaning effects and durability, especially when dealing with different types of stains.

Method used

A liquid laundry composition comprising a C8 to C11 branched chain alcohol ether sulfate surfactant and a specific aromatic agent is provided, optimizing the structure of the surfactant and the composition of the aromatic agent to improve cleaning performance and durability.

Benefits of technology

Through the optimized combination of surfactant and fragrance, the cleaning effect and durability of laundry detergent is significantly improved, and various stains can be removed more effectively.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure BDA0005372609590000011
    Figure BDA0005372609590000011
  • Figure BDA0005372609590000211
    Figure BDA0005372609590000211
  • Figure BDA0005372609590000221
    Figure BDA0005372609590000221
Patent Text Reader

Abstract

A liquid laundry composition comprising a branched alcohol ether sulfate surfactant and a fragrance comprising at least one component selected from the group consisting of methyl nonyl acetaldehyde, tricyclodecenyl acetate (tricyclodecenyl acetate), hexyl salicylate, octahydrotetramethylacetophenone (OTNE), dihydromyrcenol, and mixtures of these components.
Need to check novelty before this filing date? Find Prior Art

Description

[0001] The present invention relates to an improved liquid laundry composition.

[0002] Despite the prior art, there is still a need for improved liquid laundry compositions.

[0003] Accordingly, in a first aspect, there is provided a liquid laundry composition comprising a C8 to C11 branched alcohol ether sulfate surfactant and an aroma, said aroma comprising at least one component selected from methyl nonyl acetaldehyde, tricyclodecenyl acetate (tricyclodecene acetate), hexyl salicylate, octahydrotetramethyl acetophenone (OTNE), dihydro myrcenol and mixtures of these components.

[0004] Branched surfactant

[0005] Preferably, the C8 to C11 branched alcohol ether sulfate surfactant has the formula:

[0006] RO-(EO) n SO 3 X

[0007] wherein R is a branched C8 to C11 alkyl chain (R), preferably C9 or C10; n is from 1 to 6, preferably from 2.5 to 5, most preferably from 3.5 to 4.5; and X is a cation, preferably sodium or amine. The integer n is a molar average. EO represents ethoxy. The branched alcohol ether sulfate surfactant can be obtained by sulfation of the corresponding branched alcohol ethoxylate. The sulfation reaction is described in Anionic Surfactants: Organic Chemistry edited by Helmut W. Stache (Marcel Dekker 1995), Surfactant Science Series published by CRCpress. Reaction with SO 3 is preferred, preferably in a multitube falling film reactor (MTFR) operated with gaseous SO 3 which can be provided by Ballestra.

[0008] Preferably, the branched alcohol ether sulfate surfactant has the following structure:

[0009]

[0010] Where p and m are greater than 1, more preferably m is 4, and p is 2 or m = p + 2. Preferably, the branched alcohol ethoxysulfate is made from Guerbet alcohols. Preferably, the alcohol used to prepare the branched alcohol ethoxysulfate surfactant has a single alkyl chain length and configuration of greater than 80 mol%. Most preferably, it is a C10 branched alcohol ethoxysulfate on 2-propylheptanol with a 4 molar average ethoxylation.

[0011] Farbe et al. discussed branched alcohols in the chapter Alcohols, Aliphatic of Ullmann’s Encyclopedia of Industrial Chemistry.

[0012] Branched alcohols are available from Sasol, Exxon, and BASF.

[0013] Preferably, the branched surfactant accounts for 1 to 20% by weight of the total surfactant in the composition.

[0014] Preferably, the branched alcohol ethoxysulfate surfactant is a narrow-range ethoxylated branched alcohol ethoxysulfate.

[0015] The narrow-range ethoxylated branched alcohol ethoxylate from which the narrow-range ethoxylated branched alcohol ethoxysulfate is prepared is prepared by the ethoxylation of the corresponding branched alcohol.

[0016] Generally, the ethoxylation reaction to form the alcohol ethoxylate is base-catalyzed using NaOH, KOH, or NaOCH 3 This reaction produces a distribution of ethoxy chain lengths in the alcohol ethoxylate. Narrow-range ethoxylation provides a narrower ethoxy chain length distribution than NaOH, KOH, or NaOCH 3 Narrow-range ethoxylation catalysts are described in US10099964 (Procter & Gamble), EP1747183 (Hacros); Santacesatia et al. Ind. Eng. Chem. Res. 1992, 31, 2419 - 2421; US4239917 (Conoco); Li et al. ACS Omega. 2021 Nov 9; 6(44):29774–29780; Hreczuch et al. J. Am. Oil Chem. Soc. 1996, 73, 73 - 78 and WO2022 / 129374 (Unilever).

[0017] Preferably, the narrow-range ethoxylated branched alcohol ethoxysulfate contains less than 12% by weight, preferably less than 10% by weight, and most preferably less than 7% by weight of the narrow-range ethoxylated branched alcohol ethoxysulfate having zero ethoxylate groups.

[0018] Farbe et al. discuss branched-chain alcohols in the chapter Alcohols, Aliphatic of Ullmann’s Encyclopedia of Industrial Chemistry.

[0019] Taking into account the typical surfactant loading of the composition as a whole, the content of the branched-chain surfactant is preferably from 0.05 to 3% by weight of the composition.

[0020] Preferably, the weight ratio of the total anionic and / or non-ionic surfactant to the C8 to C11 branched-chain alcohol ether sulfate is from 100:1 to 30:1, more preferably from 80:1 to 40:1.

[0021] Fragrance

[0022] The fragrance comprises components selected from methyl nonyl acetaldehyde, tricyclodecenyl acetate (tricyclodecene acetate), hexyl salicylate, octahydrotetramethylacetophenone (OTNE), dihydro myrcenol and mixtures of these components.

[0023] Preferably, the fragrance additionally comprises components selected from C6 to C12 straight-chain or branched-chain aldehydes, ethyl-2-methylvalerate (chrysanthemum ester), limonene, (4Z)-cyclopentadecen-4-en-1-one, dimethyl benzyl carbinyl acetate, benzyl acetate, spiro[1,3-dioxolane-2,5'-(4',4',8',8'-tetramethyl-hexahydro-3',9'-methylenenaphthalene)], benzyl acetate, rose oxide, geraniol, cyclamal, β-ionone, hexyl salicylate, tonalid, [2-(cyclohexyloxy)ethyl]benzene (phenafleur), benzene, toluene, xylene (BTX) raw materials such as 2-phenylethanol, phenoxanol and mixtures thereof, cyclododecanone raw materials such as habolonolide, phenolic raw materials such as hexyl salicylate, C5 block or oxygen-containing heterocyclic moiety raw materials such as γ-decalactone, methyl dihydrojasmonate and mixtures thereof, terpene raw materials such as linalool, terpinolene, camphor, citronellol and mixtures thereof, alkyl alcohol raw materials such as ethyl-2-methylbutyrate, diacid raw materials such as ethylene glycol brassylate and mixtures of these components.

[0024] Preferred fragrances comprise a mixture of at least (2-tert-butylcyclohexyl) acetate, dihydro myrcenol and straight-chain or branched-chain C8 to C12 aliphatic aldehydes.

[0025] Preferably, the fragrance comprises from 0.5 to 30% by weight, more preferably from 2 to 15% by weight, and particularly preferably from 6 to 10% by weight of C8 to C12 aliphatic aldehydes of the fragrance.

[0026] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of ethyl-2-methylvalerate (chrysanthemum ester) of the fragrance.

[0027] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of (4Z)-cyclopentadecen-4-en-1-one of the fragrance.

[0028] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of dimethyl benzyl carboacetate of the fragrance.

[0029] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of dihydro myrcenol of the fragrance.

[0030] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of rose oxide of the fragrance.

[0031] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of tricyclodecenyl acetate of the fragrance.

[0032] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of benzyl acetate of the fragrance.

[0033] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of spiro[1,3-dioxolane-2,5'-(4',4',8',8'-tetramethyl-hexahydro-3',9'-methylenenaphthalene)] of the fragrance.

[0034] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of geraniol of the fragrance.

[0035] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of methyl nonyl acetaldehyde of the fragrance.

[0036] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of tricyclodecenyl acetate (tricyclodecene acetate) of the fragrance.

[0037] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of cyclamen aldehyde, based on the fragrance.

[0038] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of β-ionone, based on the fragrance.

[0039] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of hexyl salicylate, based on the fragrance.

[0040] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of tonalide, based on the fragrance.

[0041] Preferably, the fragrance contains 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of [2-(cyclohexyloxy)ethyl]benzene, based on the fragrance.

[0042] Preferably, the fragrance contains a component selected from benzene, toluene, xylene (BTX) feedstock classes. More preferably, the fragrance component is selected from 2-phenylethanol, phenylpentanol, and mixtures thereof.

[0043] Preferably, the fragrance contains a component selected from cyclododecanone feedstock classes. More preferably, the fragrance component is habolonolide.

[0044] Preferably, the fragrance contains a component selected from phenolic feedstock classes. More preferably, the fragrance component is hexyl salicylate.

[0045] Preferably, the fragrance contains a component selected from C5 block or oxygen-containing heterocyclic moiety feedstock classes. More preferably, the fragrance component is selected from γ-decalactone, methyl dihydrojasmonate, and mixtures thereof.

[0046] Preferably, the fragrance contains a component selected from terpene feedstock classes. More preferably, the fragrance component is selected from linalool, terpinolene, camphor, citronellol, and mixtures thereof.

[0047] Preferably, the fragrance contains a component selected from alkyl alcohol feedstock classes. More preferably, the fragrance component is ethyl-2-methylbutyrate.

[0048] Preferably, the fragrance contains a component selected from diacid feedstock classes. More preferably, the fragrance component is ethylene glycol brazileinate.

[0049] Preferably, the fragrance comprises 0.5 to 30% by weight, more preferably 2 to 15% by weight, and particularly preferably 6 to 10% by weight of octahydrotetramethylacetophenone (OTNE). OTNE is an abbreviation for a fragrance material with CAS numbers 68155-66-8, 54464-57-2, and 68155-67-9 and EC List number 915-730-3. Preferably, OTNE is present as a multi-component isomer mixture comprising:

[0050] · 1-(1,2,3,4,5,6,7,8-octahydro-2,3,8,8-tetramethyl-2-naphthyl)ethan-1-one (CAS 54464-57-2)

[0051] · 1-(1,2,3,5,6,7,8,8a-octahydro-2,3,8,8-tetramethyl-2-naphthyl)ethan-1-one (CAS 68155-66-8)

[0052] · 1-(1,2,3,4,6,7,8,8a-octahydro-2,3,8,8-tetramethyl-2-naphthyl)ethan-1-one (CAS 68155-67-9)

[0053] This OTNE and its manufacturing method are fully described in US3907321 (IFF).

[0054] Fragrance Molecule 01 is a specific isomer of OTNE and is available from IFF. Another commercially available fragrance, Escentric 01, contains OTNE but also contains ambroxan, pink pepper, lime with balsamic notes such as benzoin, frankincense, and incense.

[0055] Generally, commercially available fragrance raw materials contain 1 to 8% by weight of the fragrance raw material OTNE.

[0056] Preferably, the fragrance components listed above are present in the final detergent composition at 0.0001 to 1% by weight of the composition.

[0057] Surfactant

[0058] The liquid detergent of the present invention preferably comprises 2 to 60% by weight of total surfactant, most preferably 4 to 30% by weight. Anionic and non-ionic surfactants are preferred. Preferably, the weight ratio of total non-ionic surfactant / total anionic surfactant is less than 0.2, preferably less than 0.05, and most preferably 0.005 to 0.02. Preferably, the non-ionic surfactant is an alcohol ethoxylate.

[0059] Anionic surfactants are discussed in Anionic Surfactants: Organic Chemistry, edited by Helmut W. Stache (Marcel Dekker 1995), Surfactant Science Series, published by CRC Press. Preferred anionic surfactants are sulfonate and sulfate surfactants, preferably alkylbenzene sulfonates, alkyl sulfates, and alkyl ether sulfates, more preferably alkylbenzene sulfonates and alkyl ether sulfates. The alkyl chain is preferably C12 - C18, more preferably C12, C13, C14, C15. Alkyl ether sulfates are also known as alcohol ether sulfates.

[0060] Preferably, the weight ratio of alkylbenzene sulfonate / alkyl ether sulfate is less than 1, more preferably less than 0.5, and most preferably 0.4 to 0.

[0061] C12 - C14 alkyl ether sulfates are commonly used in laundry liquid compositions, which have a straight or branched alkyl (C12 - 14) containing 12 to 14 carbon atoms and preferably 1 to 3 EO units per molecule on average. A preferred example is sodium lauryl ether sulfate (SLES), where the main C12 lauryl alkyl is ethoxylated with 3 EO units per molecule on average.

[0062] Anionic surfactants are preferably added to the detergent composition in the form of a salt. Preferred cations are alkali metal ions such as sodium and potassium. However, the salt form of the anionic surfactant can be formed in situ by neutralizing the acid form of the surfactant with a base (such as sodium hydroxide) or an amine (such as mono-, di-, or tri-ethanolamine). The weight ratio is calculated for the protonated form of the surfactant.

[0063] Non-ionic surfactants are discussed in Non-ionic Surfactants: Organic Chemistry, edited by Nico M. van Os (Marcel Dekker 1998), Surfactant Science Series, published by CRC Press. Preferred non-ionic surfactants are alkoxylates, preferably ethoxylated. Preferred non-ionic surfactants are alcohol ethoxylates and methyl ester ethoxylates, having a C10 - C18 alkyl chain. C12 - C15 alcohol ethoxylates are commonly used in laundry liquid compositions, which have a straight or branched alkyl containing 12 to 15 carbon atoms and contain an average of 3 to 12 EO units per molecule. A preferred example is C12 - C15 alcohol ethoxylate having 7 to 9 ethoxylate units per molecule on average.

[0064] In anionic and non-ionic surfactants, the ethoxy units can be partially replaced by propoxy units.

[0065] Further examples of suitable anionic surfactants are rhamnolipids, α-olefin sulfonates, olefin sulfonates, linear olefin sulfonates, alkane-2,3-diyl bis(sulfates), hydroxyalkane sulfonates and disulfonates, fatty alcohol sulfates (FAS), paraffin sulfonates, ester sulfonates, sulfonated fatty acid glycerides, methyl ester sulfonates alkyl- or alkenyl-succinic acids, dodecenyl / tetradecenyl succinic acid (DTSA), fatty acid derivatives of amino acids, diacetyl tartaric acid mono(bis)glycerides (DATEM’s), citric acid fatty acid glycerides (CITREM’s) and diesters and monoesters of sulfosuccinic acid.

[0066] Further examples of suitable nonionic surfactants include alkoxylated fatty acid alkyl esters, alkyl polyglycosides, alkoxylated amines, ethoxylated glycerides, fatty acid monoethanolamides, fatty acid diethanolamides, ethoxylated fatty acid monoethanolamides, propoxylated fatty acid monoethanolamides, N-acyl N-alkyl derivatives of polyhydroxyalkyl fatty acid amides or glucosamines, polysorbates (Tweens).

[0067] The formulation may contain soaps and zwitterionic or cationic surfactants as minor components, preferably in an amount of 0.1 to 3% by weight. Betaines such as CAPB are preferred zwitterionic surfactants.

[0068] Some nonionic and anionic surfactants are further described below.

[0069] C16 / C18 alcohol ethoxylate

[0070] Preferred C16 / 18 alcohol ethoxylates have the following formula:

[0071] R 1 -O-(CH 2 CH 2 O) q -H

[0072] wherein R 1 is selected from saturated, mono-unsaturated and poly-unsaturated straight-chain C16 and C18 alkyl chains, and wherein q is from 4 to 20, preferably from 5 to 14, more preferably from 8 to 12. Mono-unsaturation is preferably at the 9-position of the chain, where the carbon is counted from the end of the chain to which the ethoxylate is attached. The double bond may be in the cis or trans configuration (oleyl or elaidyl), preferably cis. Cis or trans alcohol ethoxylates CH 3 (CH 2 ) 7 -CH=CH-(CH 2 ) 8 O-(OCH 2 CH 2 ) nOH is described as C18:1(Δ9) alcohol ethoxylate. This follows the nomenclature CX:Y(ΔZ), where X is the number of carbons in the chain, Y is the number of double bonds, and ΔZ is the position of the double bond in the chain, with the carbons counted from the chain end to which the OH is attached.

[0073] Preferably, R1 is selected from saturated C16, saturated C18, and monounsaturated C18. More preferably, the saturated C16 alcohol ethoxylate is at least 90 wt% of the total C16 straight-chain alcohol ethoxylate. Regarding the C18 alcohol ethoxylate content, it is preferred that the major C18 moiety is C18:1, more preferably C18:1(Δ9). The proportion of the monounsaturated C18 alcohol ethoxylate is at least 50 wt% of the total C16 and C18 alcohol ethoxylate surfactants. Preferably, the proportion of monounsaturated C18 is at least 60 wt% of the total C16 and C18 alcohol ethoxylate surfactants, most preferably at least 75 wt%.

[0074] Preferably, the C16 alcohol ethoxylate surfactant is at least 2 wt% of the total C16 and C18 alcohol ethoxylate surfactants, more preferably 4 wt%. Preferably, the saturated C18 alcohol ethoxylate surfactant is at most 20 wt% of the total C16 and C18 alcohol ethoxylate surfactants, and more preferably at most 11 wt%.

[0075] Preferably, the saturated C18 content is at least 2 wt% of the total C16 and C18 alcohol ethoxylate content.

[0076] Alcohol ethoxylates are discussed in Non-ionic Surfactants: Organic Chemistry, edited by Nico M. van Os (Marcel Dekker 1998), Surfactant Science Series, published by CRC Press. Alcohol ethoxylates are commonly referred to as alkyl ethoxylates.

[0077] Preferably, the weight fraction of C18 alcohol ethoxylate / C16 alcohol ethoxylate is greater than 1, more preferably from 2 to 100, most preferably from 3 to 30. "C18 alcohol ethoxylate" is the sum of all C18 moieties in the alcohol ethoxylate, and "C16 alcohol ethoxylate" is the sum of all C16 moieties in the alcohol ethoxylate.

[0078] Straight-chain saturated or monounsaturated C20 and C22 alcohol ethoxylates may also be present. Preferably, the weight fraction of the sum of "C18 alcohol ethoxylate" / "C20 and C22 alcohol ethoxylate" is greater than 10.

[0079] Preferably, the C16 / 18 alcohol ethoxylate contains less than 15% by weight, more preferably less than 8% by weight, and most preferably less than 5% by weight of polyunsaturated alcohol ethoxylate. The polyunsaturated alcohol ethoxylate contains a hydrocarbon chain having two or more double bonds. The C16 / 18 alcohol ethoxylate can be synthesized by ethoxylation of an alkyl alcohol via the following reaction:

[0080] R 1 -OH + q ethylene oxide → R 1 -O-(CH 2 CH 2 O) q -H

[0081] The alkyl alcohol can be produced by transesterifying triglycerides into methyl esters and then distilling and hydrogenating them into alcohols. This process is discussed in Journal of the American Oil Chemists' Society by Kreutzer, U.R. 61(2):343 - 348. The preferred alkyl alcohol for this reaction is oleyl alcohol with an iodine value of 60 to 80, preferably 70 to 75, and this alcohol is available from BASF, Cognis, and Ecogreen.

[0082] The production of fatty alcohols is further discussed in Sanchez M.A. et al J.Chem.Technol.Biotechnol 2017;92:27 - 92 and Ullmann's Enzyclopaedie der technischen Chemie, Verlag Chemie, Weinheim, 4th Edition, Vol.11, pages 436 et seq.

[0083] Preferably, the ethoxylation reaction is base - catalyzed using NaOH, KOH, or NaOCH 3 Even more preferably, a catalyst that provides a narrower ethoxy distribution than NaOH, KOH, or NaOCH 3 is used. Preferably, these catalysts with narrower distributions involve Group II bases such as Ba dodecanoate; Group II metal alkoxides; Group II hydrotalcites as described in WO2007 / 147866. Lanthanides can also be used. Such alcohol ethoxylates with narrower distributions are available from Azo Nobel and Sasol.

[0084] Preferably, the narrow ethoxy distribution has greater than 70% by weight, more preferably greater than 80% by weight, of R - O-(CH 2 CH 2 O) x -H to R - O-(CH 2 CH 2 O)y -H within the alcohol ethoxylate R-O-(CH 2 CH 2 O) q -H, where q is the molar average degree of ethoxylation, x and y are absolute values, where x = q - q / 2, and y = q + q / 2. For example, when q = 10, more than 70% by weight of the alcohol ethoxylate should consist of ethoxylates having 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, and 15 ethoxylate groups.

[0085] C16 and / or C18 alcohol ether sulfate

[0086] The preferred ether sulfate has the following formula:

[0087] R 2 -O-(CH 2 CH 2 O) p SO 3 H

[0088] where R 2 is selected from saturated, mono-unsaturated, and poly-unsaturated straight-chain C16 and C18 alkyl chains, and where p is from 3 to 20, preferably from 4 to 12, more preferably from 5 to 10. Mono-unsaturation is preferably at the 9-position of the chain, where the carbon is counted from the end of the chain to which the ethoxylate is attached. The double bond can be in the cis or trans configuration (oleyl or elaidyl), but is preferably cis. The cis or trans ether sulfate CH 3 (CH 2 ) 7 -CH=CH-(CH 2 ) 8 O-(CH 2 CH 2 O) n SO 3 H is described as C18:1(Δ9) ether sulfate. This follows the nomenclature CX:Y(ΔZ), where X is the number of carbons in the chain, Y is the number of double bonds, and ΔZ is the position of the double bond in the chain, where the carbon is counted from the end of the chain to which the OH is attached.

[0089] Preferably, R 2 is selected from saturated C16, saturated C18, and mono-unsaturated C18. More preferably, the saturated C16 is a straight-chain alkyl having at least 90% by weight of C16 content. With respect to the C18 content, it is preferred that the major C18 portion is C18:1, more preferably C18:1(Δ9). Preferably, the proportion of mono-unsaturated C18 is at least 50% by weight of the total C16 and C18 alkyl ether sulfate surfactant.

[0090] More preferably, the proportion of monounsaturated C18 is at least 60% by weight of the total C16 and C18 alkyl ether sulfate surfactants, and most preferably at least 75% by weight.

[0091] Preferably, the C16 alcohol ethoxylate surfactant is at least 2% by weight of the total C16 and C18 alkyl ether sulfate surfactants, and more preferably 4% by weight. Preferably, the saturated C18 alkyl ether sulfate surfactant is at most 20% by weight of the total C16 and C18 alkyl ether sulfate surfactants, and more preferably at most 11% by weight. Preferably, the saturated C18 content is at least 2% by weight of the total C16 and C18 alkyl ether sulfate content.

[0092] In cases where the composition comprises a mixture of C16 / 18 source materials for the alkyl ether sulfates and more conventional C12 alkyl chain length materials, it is preferred that the total C16 / 18 alkyl ether sulfate content should be at least 10% by weight of the total alkyl ether sulfates, more preferably at least 50% by weight of the alkyl ether sulfates in the composition, even more preferably at least 70% by weight, particularly preferably at least 90% by weight, and most preferably at least 95% by weight.

[0093] The ether sulfates are discussed in Anionic Surfactants: Organic Chemistry, edited by Helmut W. Stache (Marcel Dekker 1995), Surfactant Science Series, published by CRC Press.

[0094] Linear saturated or monounsaturated C20 and C22 ether sulfates may also be present. Preferably, the weight fraction of "C18 ether sulfates" / "C20 and C22 ether sulfates" is greater than 10.

[0095] Preferably, the C16 and C18 ether sulfates contain less than 15% by weight of the ether sulfates, more preferably less than 8% by weight, most preferably less than 4% by weight, and most preferably less than 2% by weight of polyunsaturated ether sulfates. Polyunsaturated ether sulfates contain hydrocarbon chains having two or more double bonds.

[0096] Ether sulfates can be synthesized by sulfonation of the corresponding alcohol ethoxylates. Alcohol ethoxylates can be produced by ethoxylation of alkyl alcohols. The alkyl alcohols for preparing alcohol ethoxylates can be produced by transesterification of triglycerides into methyl esters followed by distillation and hydrogenation into alcohols. This process is discussed in Journal of the American Oil Chemists' Society by Kreutzer, U.R., 61(2):343 - 348. The preferred alkyl alcohol for this reaction is oleyl alcohol with an iodine value of 60 to 80, preferably 70 to 75, and such alcohol is available from BASF, Cognis, and Ecogreen. As described in A Practical Guide to Vegetable Oil Processing (Gupta M.K., Academic Press 2017), the poly - unsaturation in surfactants can be controlled by hydrogenation of triglycerides. Distillation and other purification techniques can be used.

[0097] The ethoxylation reaction is described in Non - Ionic Surfactant Organic Chemistry (N.M. van Os, ed.), Surfactant Science Series Volume 72, CRC Press.

[0098] Preferably, the ethoxylation reaction is base - catalyzed using NaOH, KOH, or NaOCH 3 Even more preferably, a catalyst that provides a narrower ethoxylate distribution than NaOH, KOH, or NaOCH 3 is used. Preferably, these catalysts with narrower distributions include Group II bases such as barium dodecanoate; Group II metal alkoxides; Group II hydrotalcites as described in WO2007 / 147866. Lanthanides can also be used. Such alcohol ethoxylates with narrower distributions are available from Azo Nobel and Sasol.

[0099] Preferably, the narrow ethoxylate distribution has more than 70 wt%, more preferably more than 80 wt% of the ether sulfates in the range of R 2 -O-(CH 2 CH 2 O) z SO 3 H to R 2 -O-(CH 2 CH 2 O) w SO 3 H. 2 -O-(CH 2 CH 2 O) p SO3 H, where q is the molar average degree of ethoxylation, x and y are absolute values, where z = p - p / 2, and w = p + p / 2. For example, when p = 6, more than 70% by weight of the ether sulfate should consist of ether sulfates having 3, 4, 5, 6, 7, 8, 9 ethoxylate groups.

[0100] The weight of the ether sulfate is calculated as the protonated form: R 2 -O-(CH 2 CH 2 O) p SO 3 H. In the formulation, it exists as the ionic form R 2 -O-(CH 2 CH 2 O) p SO 3 - in the presence of the corresponding counterion, and the preferred counterions are Group I and Group II metals, amines, and most preferably sodium.

[0101] Methyl ester ethoxylate (MEE)

[0102] The preferred methyl ester ethoxylate surfactant has the following form:

[0103] R 3 (-C=O)-O-(CH 2 CH 2 -O) n -CH 3

[0104] where R 3 COO is the fatty acid moiety, such as oleic acid, stearic acid, palmitic acid. Fatty acid nomenclature describes the fatty acid by two numbers A:B, where A is the number of carbons in the fatty acid and B is the number of double bonds it contains. For example, oleic acid is 18:1, stearic acid is 18:0, and palmitic acid is 16:0. The position of the double bond in the chain can be given in parentheses, oleic acid is 18:1(9), linoleic acid is 18:2(9,12), where 9 is the carbon number starting from the COOH end.

[0105] The integer n is the molar average of the ethoxylate.

[0106] Methyl ester ethoxylates (MEE) are described in Chapter 8, pages 287 - 301 of Biobased Surfactants (Second Edition) Synthesis, Properties, and Applications by G.A. Smith (AOCS press 2019); J. Am. Oil Chem. Soc. vol 74 (1997), pages 847 - 859 by Cox M.E. and Weerasooriva U; Tenside Surf. Det. Vol. 28 (2001), pages 72 - 80 by Hreczuch et al.; Household and Personal Care Today (2012), pages 52 - 55 by C. Kolano; J. Am. Oil Chem. Soc. vol 72 (1995), pages 781 - 784 by A. Hama et al. MEE can be produced by the reaction of methyl esters with ethylene oxide using a calcium or magnesium - based catalyst. The catalyst can be removed or left in the MEE.

[0107] Alternative preparation routes are the transesterification of methyl esters or the esterification of carboxylic acids with polyethylene glycol capped with a methyl group at one end of the chain.

[0108] Methyl esters can be produced by the transesterification of methanol with triglycerides or the esterification of methanol with fatty acids. Fattah et al. (Front. Energy Res., June 2020, Vol. 8 Article 101) discussed the transesterification of triglycerides with fatty acid methyl esters and glycerol and are hereby incorporated by reference. Common catalysts for these reactions include sodium hydroxide, potassium hydroxide, and sodium methoxide. Esterases and lipases can also be used. Triglycerides occur naturally in vegetable fats or oils. Preferred sources are rapeseed oil, castor oil, corn oil, cottonseed oil, olive oil, palm oil, safflower oil, sesame oil, soybean oil, high - stearic / high - oleic sunflower oil, high - oleic sunflower oil, non - edible vegetable oils, tall oil, and any mixtures and any derivatives thereof. Oils from trees are called tall oil. Used food cooking oils can be used. Triglycerides can also be obtained from algae, fungi, yeast, or bacteria. Vegetable sources are preferred.

[0109] Distillation and fractionation processes can be used in the production of methyl esters or carboxylic acids to produce the desired carbon - chain distribution. Preferred sources of triglycerides are those that contain less than 35 wt% polyunsaturated fatty acids in the oil before distillation, fractionation, or hydrogenation.

[0110] Fatty acids and methyl esters can be obtained from oleochemical suppliers such as Wilmar, KLK Oleo, Unilever oleochemical Indonesia. Biodiesel is a methyl ester and can be used from these sources.

[0111] When the ESB is MEE, it preferably has a molar average of 8 to 30 ethoxylate groups (EO), more preferably 10 to 20. The most preferred ethoxylate contains 12 to 18 EO.

[0112] Preferably, at least 10% by weight, more preferably at least 30% by weight of the total C18:1 MEE in the composition has 9 to 11 EO, and even more preferably at least 10% by weight is exactly 10 EO. For example, when the MEE has a molar average of 10 EO, then at least 10% by weight of the MEE should consist of ethoxylates having 9, 10, and 11 ethoxylate groups.

[0113] Methyl ester ethoxylates preferably have a molar average of 8 to 13 ethoxylate groups (EO). The most preferred ethoxylates have a molar average of 9 to 11 EO, and even more preferably 10 EO. When the MEE has a molar average of 10 EO, then at least 10% by weight of the MEE should consist of ethoxylates having 9, 10, and 11 ethoxylate groups.

[0114] In the case of a broader MEE distribution, it is preferred that at least 40% by weight of the total MEE in the composition is C18:1.

[0115] In addition, it is preferred that the MEE component also contains some C16 MEE.

[0116] Therefore, it is preferred that the total MEE component contains 5 to 50% by weight of the total MEE of C16 MEE. Preferably, the C16 MEE is greater than 90% by weight, more preferably greater than 95% by weight of C16:0.

[0117] In addition, it is preferred that the total MEE component contains less than 15% by weight, more preferably less than 10% by weight, and most preferably less than 5% by weight of polyunsaturated C18, i.e., C18:2 and C18:3. Preferably, C18:3 is present at less than 1% by weight, more preferably less than 0.5% by weight, and most preferably is substantially absent. The polyunsaturation can be controlled by distillation, fractionation, or partial hydrogenation of the raw material (triglyceride or methyl ester) or the MEE.

[0118] In addition, it is preferred that the C18:0 component is less than 10% by weight of the total MEE present.

[0119] In addition, it is preferred that the components with a carbon chain of 15 or shorter account for less than 4% by weight of the total MEE present.

[0120] Particularly preferred MEE has C16:0 chains of 2 to 26% by weight of MEE, C18:0 chains of 1 to 10% by weight, C18:1 chains of 50 to 85% by weight and C18:2 chains of 1 to 12% by weight.

[0121] Preferred sources of the alkyl groups for MEE include methyl esters derived from distilled palm oil and distilled high oleic methyl esters derived from palm kernel oil, partially hydrogenated methyl esters of low erucic acid rapeseed oil, methyl esters of high oleic sunflower oil, methyl esters of high oleic safflower oil and methyl esters of high oleic soybean oil.

[0122] High oleic oils are available from DuPont (Plenish high oleic soybean oil), Monsanto (Visitive Gold soybean oil), Dow (Omega-9 canola oil, Omega-9 sunflower oil), the National Sunflower Association and Oilseeds International. Preferably, more than 80% by weight of the double bonds in the MEE are in the cis configuration. Preferably, the 18:1 component is oleic acid. Preferably, the 18:2 component is linoleic acid.

[0123] The methyl group of the methyl ester can be replaced by an ethyl or propyl group. Methyl is most preferred.

[0124] Preferably, the methyl ester ethoxylate comprises 0.1 to 95% by weight of the methyl ester ethoxylate of the composition. More preferably, the composition comprises 2 to 40% of MEE, most preferably 4 to 30% by weight of MEE.

[0125] Preferably, the composition comprises at least 50% by weight of water, but this depends on the total surfactant level and is adjusted accordingly.

[0126] The composition may comprise further surfactants, and preferably other anionic and / or non-ionic surfactants, for example, alkyl ether sulfates or alcohol ethoxylates comprising C12 to C18 alkyl chains. In such cases where the surfactant source comprises C18 chains, it is preferred that at least 30% by weight of the total C18 surfactant is the methyl ester ethoxylate surfactant.

[0127] Preferably, the methyl ester ethoxylate surfactant is used in combination with an anionic surfactant. Preferably, the weight fraction of the methyl ester ethoxylate surfactant / total anionic surfactant is 0.1 to 9, more preferably 0.15 to 2, most preferably 0.2 to 1. The total anionic surfactant refers to the total content of any type of anionic surfactant, preferably ether sulfates, linear alkyl benzene sulfonates, alkyl ether carboxylates, alkyl sulfates, rhamnolipids and mixtures thereof.

[0128] The weight of the anionic surfactant is calculated in its protonated form.

[0129] Source of alkyl chain

[0130] The alkyl chains of the C16 / 18 surfactants are preferably obtained from renewable sources, preferably from triglycerides. Renewable sources are sources in which the material is produced through the natural ecological cycle of living species, preferably by plants, algae, fungi, yeast or bacteria, more preferably by plants, algae or yeast. Preferred plant sources of oil are rapeseed, sunflower, corn, soybean, cottonseed, olive oil and trees. The oil from trees is called tall oil. Most preferably, the source is palm oil and rapeseed oil.

[0131] Algal oils are discussed in Energies 2019, 12, 1920 by Saad M.G. et al. Algal Biofuels: Current Status and Key Challenges. A method for producing triglycerides from biomass using yeast is described by Masri M.A. et al. in Energy Environ. Sci., 2019, 12, 2717 A sustainable, high-performance process for the economic production of waste-free microbial oils that can replace plant-based equivalents.

[0132] Non-edible vegetable oils can be used and are preferably selected from the fruits and seeds of the following plants: Jatropha curcas, Calophyllum inophyllum, Sterculia feotida, Madhuca indica (mahua), Pongamia glabra (koroch seeds), linseed, Pongamia pinnata (karanja), Hevea brasiliensis (rubber seeds), Azadirachta indica (neem), Camelina sativa, Lesquerella fendleri, Nicotiana tabacum (tobacco leaves), Deccan hemp, Ricinus communis L. (castor), Simmondsia chinensis (Jojoba), Eruca sativa.L., Cerbera odollam (Seamango), Coriandrum sativum L. (coriander seeds), Croton megalocarpus, Pilu, Crambe, syringa, Scheleichera triguga (kusum), Stillingia, Shorea robusta (sal), Terminalia belerica Roxb, Cuphea, Camellia, Champaca, Simarouba glauca, Garcinia indica, rice bran, Hingan (balanites), Desertdate, Cardoon, Asclepias syriaca (Milkweed), Guizotia abyssinica, Radish Ethiopian mustard, Syagrus, Tung, Idesia polycarpa var. vestita, algae, Argemone mexicana L.)(Mexican prickly poppy), Putranjiva roxburghii (lucky bean tree), Sapindus mukorossi (Soapnut), Melia azedarach (lilac), Thevetia peruviana (yellow oleander), Copaiba, Milk bush, Laurel, Cumaru, Andiroba, Piqui, Brassica napus, Zanthoxylum bungeanum.

[0133] SLES and PAS

[0134] SLES and other such alkali metal alkyl ether sulfate anionic surfactants are typically obtained by sulfating alcohol ethoxylates. These alcohol ethoxylates are typically obtained by ethoxylating linear alcohols. Similarly, primary alkyl sulfate surfactants (PAS) can be obtained directly from linear alcohols by sulfating the linear alcohols. Thus, forming linear alcohols is a central step in obtaining both PAS and alkali metal alkyl ether sulfate surfactants.

[0135] Linear alcohols suitable as an intermediate step in manufacturing alcohol ethoxylates and thus anionic surfactants such as sodium lauryl ether sulfate can be obtained from many different sustainable sources. These include:

[0136] Primary sugar

[0137] Primary sugars are obtained from sources such as sucrose or sugar beets and can be fermented to form bioethanol. The bioethanol is then dehydrated to form bioethylene, which then undergoes olefin metathesis to form linear olefins. These linear olefins are then processed into linear alcohols by hydroformylation or oxidation.

[0138] An alternative method that also utilizes primary sugars to form linear alcohols can be used, in which the primary sugars are microbially converted by algae to form triglycerides. These triglycerides are then hydrolyzed into linear fatty acids, which are then reduced to form linear alcohols.

[0139] Biomass

[0140] Biomass, such as forest products, rice husks, and wheat straw, etc., can be processed into syngas by gasification. Through the Fischer - Tropsch reaction, these are processed into alkanes, which are dehydrogenated to form olefins. These olefins can be processed in the same manner as the linear olefins described above [for primary sugars].

[0141] An alternative method is to convert the same biomass into polysaccharides by steam explosion, which can be enzymatically degraded into secondary sugars. These secondary sugars are then fermented to form bioethanol, which is in turn dehydrated to form bioethylene. This bioethylene is then processed into linear alcohols as described above [primary sugars].

[0142] Waste plastics

[0143] Waste plastics are pyrolyzed to form pyrolysis oil. It is then fractionated to form linear alkanes, which are dehydrogenated to form olefins. These olefins are processed as described above [primary sugars].

[0144] Alternatively, the pyrolysis oil is cracked to form ethylene, which is then processed by olefin metathesis to form the desired olefins. These are then processed into linear alcohols as described above [primary sugars].

[0145] Municipal solid waste

[0146] MSW is converted into syngas by gasification. From the syngas, it can be processed as described above [primary sugars], or it can be converted into ethanol through an enzymatic process before dehydrogenation into ethylene. The ethylene can then be converted into linear alcohols by the Ziegler process.

[0147] MSW can also be converted into pyrolysis oil by gasification, which is then fractionated to form alkanes. These alkanes are then dehydrogenated to form olefins, and then into linear alcohols.

[0148] Marine carbon

[0149] There are various carbon sources from marine communities such as seaweeds and kelps. From such marine communities, triglycerides can be separated from the source, and it is then hydrolyzed to form fatty acids, which are reduced to linear alcohols in the usual manner.

[0150] Alternatively, the feedstock can be separated into polysaccharides, which are enzymatically degraded to form secondary sugars. These can be fermented to form bioethanol, and then processed as described above [primary sugars].

[0151] Waste oil

[0152] Waste oils such as used cooking oil can be physically separated into triglycerides, which are split as described above to form linear fatty acids and then into linear alcohols.

[0153] Alternatively, used cooking oil can undergo the Neste process, whereby the oil is catalytically cracked to form bioethylene. It is then processed as described above.

[0154] Methane capture

[0155] Methane capture methods capture methane from landfills or fossil fuel production. Methane can be converted to syngas by gasification. The syngas can be processed as described above, whereby the syngas is converted to methanol (Fischer Tropsch reaction) and then to olefins before being converted to linear alcohols by hydroformylation oxidation.

[0156] Alternatively, the syngas can be converted to alkanes and then to olefins by Fischer Tropsch and then dehydrogenation.

[0157] Carbon capture

[0158] Carbon dioxide can be captured by any of a variety of well-known methods. Carbon dioxide can be converted to carbon monoxide by the reverse water gas shift reaction, and it can then be converted to syngas using hydrogen in an electrolysis reaction. The syngas is then processed as described above and converted to methanol and / or alkanes before reacting to form olefins.

[0159] Alternatively, the captured carbon dioxide is mixed with hydrogen before being enzymatically processed to form ethanol. This is a process developed by Lanzatech. Thereby, ethanol is converted to ethylene, and then processed to olefins and then linear alcohols as described above.

[0160] The above methods can also be used to obtain C16 / 18 chains of C16 / 18 alcohol ethoxylates and / or C16 / 18 ether sulfates.

[0161] Linear alkylbenzene sulfonate

[0162] LAS (linear alkylbenzene sulfonate) is the generally preferred anionic surfactant. However, considering the improved performance of using SAS instead of LAS, it is preferred to use SAS instead of LAS.

[0163] The key intermediate compound in LAS manufacture is the relevant olefin. These olefins (alkenes) can be produced by any of the above methods and can be formed from primary sugars, biomass, waste plastics, MSW, carbon capture, methane capture, marine carbon, etc.

[0164] Whereas in the above methods the olefins are processed by hydroformylation and oxidation to form linear alcohols, the olefins react with benzene and then are sulfonated to form LAS.

[0165] Linear alkylbenzene sulfonates with an alkyl chain length of 10 to 18 carbon atoms. Commercial LAS is a mixture of closely related isomers and homologues of alkyl chains, each containing an aromatic ring sulfonated in the "para" position and attached to the linear alkyl chain at any position other than the terminal carbon. The linear alkyl chain preferably has a chain length of 11 to 15 carbon atoms, and the main material has a chain length of about C12. Each alkyl chain homologue consists of a mixture of all possible sulfophenyl isomers except the 1-phenyl isomer. LAS is usually formulated into the composition in the acid form (i.e., HLAS) and then at least partially neutralized in situ. If used outside of SAS, the linear alkylbenzene sulfonate surfactant is present in the composition at 1 to 20% by weight, more preferably 2 to 15% by weight, and most preferably 8 to 12% by weight.

[0166] Liquid laundry detergent

[0167] In the context of the present invention, the term "laundry detergent" refers to a formulated composition intended for use and capable of wetting and cleaning household fabrics such as clothes, linens, and other household textiles. The object of the present invention is to provide a composition that can form a liquid laundry detergent composition in the manner now described when diluted.

[0168] In a preferred embodiment, the liquid composition is isotropic.

[0169] The term "linens" is commonly used to describe certain types of laundry items, including sheets, pillowcases, towels, tablecloths, napkins, and uniforms. Textiles can include woven, non-woven, and knitted fabrics; and can include natural or synthetic fibers such as silk fibers, linen fibers, cotton fibers, polyester fibers, polyamide fibers such as nylon, acrylic fibers, acetate fibers, and their blends, including cotton and polyester blends.

[0170] Examples of liquid laundry detergents include heavy-duty liquid laundry detergents for use in the wash cycle of automatic washing machines, as well as liquid delicate wash and liquid color care detergents, such as those suitable for hand washing or for washing delicate fabrics (e.g., fabrics made of silk or wool) in the wash cycle of automatic washing machines.

[0171] The term "liquid" in the context of the present invention means that the continuous phase or the main part of the composition is liquid, and the composition is flowable at 15 °C and above. Thus, the term "liquid" can cover emulsions, suspensions, and compositions with a flowable but stiffer consistency, called gels or pastes. The viscosity of the composition is preferably at 25 °C and 21 seconds -1At a shear rate of from 200 to about 10,000 mPa·s. This shear rate is the shear rate typically applied to the liquid when pouring it out of the bottle. The pourable liquid detergent composition preferably has a viscosity of from 200 to 1,500 mPa·s, preferably from 200 to 700 mPa·s.

[0172] The composition according to the invention may suitably have an aqueous continuous phase. "Aqueous continuous phase" means a water-based continuous phase. Preferably, the composition comprises at least 50% by weight of water, more preferably at least 70% by weight of water.

[0173] The alkyl ether sulfate may be provided in the form of a single raw material component or in the form of a mixture of components.

[0174] In the case where the composition comprises a mixture of C16 / 18 source materials for the alkyl ether sulfate and more conventional C12 alkyl chain length materials, it is preferred that the C16 / 18 alkyl ether sulfate in the composition should account for at least 10% by weight of the total alkyl ether sulfate, more preferably at least 50% by weight of the alkyl ether sulfate, even more preferably at least 70% by weight, particularly preferably at least 90% by weight, and most preferably at least 95% by weight.

[0175] The alcohol ethoxylate may be provided in the form of a single raw material component or in the form of a mixture of components.

[0176] In the case where the composition comprises a mixture of C16 / 18 source materials for the alcohol ethoxylate and more conventional C12 alkyl chain length materials, it is preferred that the C16 / 18 alcohol ethoxylate in the composition should account for at least 10% by weight of the total alcohol ethoxylate, more preferably at least 50% by weight of the alcohol ethoxylate, even more preferably at least 70% by weight, particularly preferably at least 90% by weight, and most preferably at least 95% by weight.

[0177] Preferably, the surfactant is selected and the amount is such that the composition and the diluted mixture are isotropic in nature.

[0178] Hydroxamic acid

[0179] Preferably, the composition comprises hydroxamic acid.

[0180] Whenever the term "hydroxamic acid" or "hydroxamate" is used, this encompasses hydroxamic acid and the corresponding hydroxamates (salts of hydroxamic acid), unless otherwise stated.

[0181] Hydroxamic acid is a class of compounds in which a hydroxylamine is inserted into a carboxylic acid. The general structure of hydroxamic acid is as follows:

[0182]

[0183] wherein R 1 is an organic residue such as an alkyl or alkenyl group. The hydroxamic acid may be present as its corresponding alkali metal salt or hydroxamate. The preferred salt is the potassium salt.

[0184] The hydroxamate can be conveniently formed from the corresponding hydroxamic acid by replacing the acidic hydrogen atom with a cation:

[0185]

[0186] L + is a monovalent cation such as an alkali metal (e.g., potassium, sodium) or ammonium or substituted ammonium.

[0187] In the present invention, the hydroxamic acid or its corresponding hydroxamate has the following structure:

[0188]

[0189] wherein R 1 is

[0190] a straight-chain or branched C 4 -C 20 alkyl group, or

[0191] a straight-chain or branched substituted C 4 -C 20 alkyl group, or

[0192] a straight-chain or branched C 4 -C 20 alkenyl group, or

[0193] a straight-chain or branched substituted C 4 -C 20 alkenyl group, or

[0194] an alkyl ether group CH 3 (CH 2 ) n (EO) m where n is from 2 to 20 and m is from 1 to 12, or

[0195] a substituted alkyl ether group CH 3 (CH 2 ) n (EO) m where n is from 2 to 20 and m is from 1 to 12, and the substitution types include one or more of NH 2 , OH, S, -O-, and COOH,

[0196] and R 2 is selected from hydrogen and a moiety that forms part of a cyclic structure with the branched R 1 group.

[0197] Preferred hydroxamates are those in which R 2 is hydrogen, R 1 is C 8 -C 14 alkyl, preferably a normal alkyl, most preferably those that are saturated.

[0198] In the context of the present invention, the general structure of the hydroxamic acid is indicated in Formula 3, and R 1 is defined as above. When R 1 is an alkyl ether group CH 3 (CH 2 ) n (EO) m , where n is from 2 to 20, and m is from 1 to 12, then the alkyl portion caps the side group. Preferably, R 1 is selected from C 4 , C 5 , C 6 , C 7 , C 8 , C 9 , C 10 , C 11 , C 12 and C 14 normal alkyls, most preferably R 1 is at least C 8-14 normal alkyl. When using C 8 materials, this is referred to as octyl hydroxamic acid. The potassium salt is particularly useful.

[0199]

[0200] Potassium octyl hydroxamate

[0201] However, other hydroxamic acids, although less preferred, are also suitable for use in the present invention. Such suitable compounds include, but are not limited to, the following compounds:

[0202] Such hydroxamic acids include lysine hydroxamate hydrochloride, methionine hydroxamate, and norvaline hydroxamate, and are commercially available.

[0203] Hydroxamic acids are thought to act by binding to metal ions present in the dirt on the fabric. This binding action (which is actually the known chelating agent property of hydroxamic acids) by itself has no use for removing dirt from the fabric. The key is the "tail" of the hydroxamic acid, i.e., the group R 1 minus the group R 2Fold back any branches onto the oxime nitrogen. The tail is chosen to have an affinity for the surfactant system. This means that the detergency of an already optimized surfactant system is further enhanced by the use of hydroxamic acid, as it effectively labels the difficult-to-remove particulate matter (clay) as "dirt" so that it can be removed by the surfactant system acting on the hydroxamic acid molecules that are actually fixed to the particles by binding to metal ions embedded in the clay-type particles. The non-soap detergency surfactant adheres to the hydroxamic acid, thus generally resulting in more surfactant interacting with the fabric and leading to better detergency. Thus, hydroxamic acid is used as a linking molecule, thus facilitating the removal of particulate dirt from the fabric and suspension into the wash liquor and thus enhancing the primary detergency.

[0204] Hydroxamic acid salts have a higher affinity for transition metals (such as iron) than for alkaline earth metals (such as calcium and magnesium), so hydroxamic acid mainly acts to improve the removal of dirt on fabrics, especially particulate dirt, rather than as a builder for calcium and magnesium.

[0205] The preferred hydroxamic acid is coconut hydroxamic acid at 80% solids, which can be obtained under the trade name RK853 from Axis House. The corresponding potassium salt can be obtained under the trade name RK852 from Axis House. Axis house also supplies coconut hydroxamic acid as a 50% solid under the trade name RK858. The 50% potassium salt of coconut hydroxamic acid is available as RK857. Another preferred material is RK842 from Axis House, an alkyl hydroxamic acid made from palm kernel oil.

[0206] Preferably, the hydroxamic acid is present at 0.1 to 3% by weight of the composition, more preferably 0.2 to 2% by weight of the composition.

[0207] Preferably, the weight ratio of hydroxamic acid to surfactant is 0.05 to 0.3, more preferably 0.75 to 0.2, and most preferably 0.8 to 1.2. The weight is calculated based on the protonated form.

[0208] Alkoxylated cationic or zwitterionic polyamine polymer

[0209] Preferably, the composition comprises an alkoxylated cationic or zwitterionic polyamine polymer. Preferably, the polyamine is an alkoxylated cationic or zwitterionic diamine or polyamine polymer, where the positive charge is provided by quaternization of the nitrogen atom of the amine and the anionic group (if present) is provided by sulfation or sulfonation of the alkoxylated group.

[0210] Preferably, the alkoxylate is selected from propoxylate and ethoxylate, most preferably ethoxylate.

[0211] Preferably, at least 50 mol% of the nitrogen amines are quaternized, preferably with methyl groups. Preferably, the polymer contains from 2 to 10, more preferably from 2 to 6, and most preferably from 3 to 5 quaternized nitrogen amines. Preferably, the alkoxylate groups are selected from ethoxylate and propoxylate, and most preferably ethoxylate.

[0212] Preferably, the polymer contains ester (COO) or amide (CONH) groups in its structure. Preferably, these groups are arranged such that when all of the ester or amide groups are hydrolyzed, at least one, preferably all, of the hydrolysis fragments have a molecular weight of less than 4000, preferably less than 2000, and most preferably less than 1000.

[0213] Preferably, the polymer has the following form:

[0214]

[0215] where R 1 is a C3 to C8 alkyl group, X is a (C 2 H 4 O) n Y group, where n is from 15 to 30, where m is from 2 to 10, preferably 2, 3, 4 or 5, and where Y is selected from OH and SO 3 - , and preferably the number of SO 3 - groups is greater than the number of OH groups. Preferably, there are 0, 1 or 2 OH groups. X and R 1 may contain ester groups therein. X may contain a carbonyl group, preferably an ester group. Preferably, there is 1 C 2 H 4 O unit separating the ester group from the N, such that preferably the structural unit is N-C 2 H 4 O-ester-(C 2 H 4 O) n-1 Y.

[0216] Such polymers are described in WO2021239547 (Unilever). Exemplary polymers are sulfated ethoxylated hexamethylenediamine and Examples P1, P2, P3, P4, P5 and P6 of WO2021239547. The ester groups can be included by adding them to OH or NH groups using lactones or sodium chloroacetate (modified Williamson synthesis), followed by subsequent ethoxylation.

[0217] Enzyme

[0218] The composition preferably contains an enzyme selected from cellulase, protease and amylase / mannanase mixtures.

[0219] In addition, further enzymes may be present, such as those described below. Preferably, the composition may comprise an effective amount of one or more enzymes, preferably selected from lipase, hemicellulase, peroxidase, hemicellulase, xylanase, xantanase, lipase, phospholipase, esterase, cutinase, pectinase, carrageenase, pectate lyase, keratinase, reductase, oxidase, phenol oxidase, lipoxygenase, ligninase, pullulanase, tannase, pentosanase, malic enzyme, β-glucanase, arabinosidase, hyaluronidase, chondroitinase, laccase, tannase, nuclease (such as deoxyribonuclease and / or ribonuclease), phosphodiesterase or mixtures thereof.

[0220] Preferably, the level of the enzyme is 0.1 to 100 mg per 100 g of the finished laundry liquid composition, more preferably 0.5 to 50 mg, and most preferably 5 to 30 mg of active enzyme protein.

[0221] Examples of preferred enzymes are sold under the following trade names: Purafect (DuPont), Stainzyme (Novozymes), Biotouch (ABEnzymes), (BASF).

[0222] Detergent enzymes are discussed in WO2020 / 186028 (Procter and Gamble), WO2020 / 200600 (Henkel), WO2020 / 070249 (Novozymes), WO2021 / 001244 (BASF) and WO2020 / 259949 (Unilever).

[0223] A nuclease is an enzyme capable of cleaving the phosphodiester bonds between the nucleotide subunits of nucleic acids, and is preferably deoxyribonuclease or ribonuclease. Preferably, the nuclease is deoxyribonuclease, preferably selected from any one of E.C.3.1.21.x (where x = 1, 2, 3, 4, 5, 6, 7, 8 or 9), E.C.3.1.22.y (where y = 1, 2, 4 or 5), E.C.3.1.30.Z (where z = 1 or 2), E.C.3.1.31.1 and mixtures thereof.

[0224] Proteases hydrolyze the bonds within peptides and proteins, which, in the case of laundry, results in enhanced removal of stains containing proteins or peptides. Examples of suitable protease families include aspartic proteases; cysteine proteases; glutamic proteases; aspartic peptidases; serine proteases and threonine proteases. These protease families are described in the MEROPS peptidase database (http: / / merops.sanger.ac.uk / ). Serine proteases are preferred. Subtilisin-type serine proteases are more preferred. The term "subtilisin" refers to a subgroup of serine proteases according to Siezen et al., Protein Engng. 4 (1991) 719-737 and Siezen et al Protein Science 6 (1997) 501-523. Serine proteases are a subgroup of proteases characterized by having serine in the active site that forms a covalent adduct with the substrate. Subtilisins can be divided into 6 subclasses, namely the subtilisin family, the thermitase family, the proteinase K family, the lantibiotic peptidase family, the kexin family and the pyrolysin family.

[0225] Examples of subtilisins are those derived from: Bacillus species such as Bacillus lentus, Bacillus alkalophilus, Bacillus subtilis, Bacillus amyloliquefaciens, Bacillus pumilus and Bacillus gibsonii as described in US7262042 and WO09 / 021867, and subtilisin lentus, subtilisin Novo, subtilisin Carlsberg, Bacillus licheniformis, subtilisin BPN', subtilisin 309, subtilisin 147 and subtilisin 168 as described in WO 89 / 06279, and proteinase PD138 as described in (WO 93 / 18140). Other useful proteases can be those described in WO 92 / 175177, WO 01 / 016285, WO 02 / 026024 and WO 02 / 016547. Examples of trypsin-like proteases are trypsin (e.g. of porcine or bovine origin) and fusarium protease as described in WO 89 / 06270, WO 94 / 25583 and WO 05 / 040372, and chymotrypsin derived from Cellulomonas as described in WO 05 / 052161 and WO 05 / 052146.

[0226] Most preferably, the protease is subtilisin (EC 3.4.21.62).

[0227] Examples of subtilisins are those derived from Bacillus species such as Bacillus lentus, Bacillus alcalophilus, Bacillus subtilis, Bacillus amyloliquefaciens, Bacillus pumilus and Bacillus gibsonii as described in US 7,262,042 and WO 09 / 021867, and subtilisin lentus, subtilisin Novo, subtilisin Carlsberg, Bacillus licheniformis, subtilisin BPN', subtilisin 309, subtilisin 147 and subtilisin 168 as described in WO 89 / 06279, and protease PD138 as described in (WO 93 / 18140). Preferably, the subtilisin is derived from a Bacillus species, preferably Bacillus lentus, Bacillus alcalophilus, Bacillus subtilis, Bacillus amyloliquefaciens, Bacillus pumilus and Bacillus gibsonii as described in US 6,312,936 B1, US 5,679,630, US 4,760,025, US 7,262,042 and WO 09 / 021867. Most preferably, the subtilisin is derived from Bacillus gibsonii or Bacillus lentus.

[0228] Suitable commercially available proteases include those sold under the following trade names: DuralaseTm, DurazymTm, Ultra, Ultra, Ultra, Ultra, and are all available as or (Novozymes A / S).

[0229] Suitable amylases (α and / or β) include those of bacterial or fungal origin. Also included are chemically modified or protein engineered mutants. Amylases include, for example, α-amylases obtained from Bacillus species, such as the particular strain of Bacillus licheniformis more particularly described in GB 1,296,839, or Bacillus strains disclosed in WO 95 / 026397 or WO 00 / 060060. Commercially available amylases are Duramyl TM , Termamyl TM , TermamylUltra TM , Natalase TM , Stainzyme TM , Fungamyl TM and BANTM (Novozymes A / S), Rapidase TM and Purastar TM (from Genencor International Inc.).

[0230] Suitable cellulases include those derived from bacteria or fungi. Also included are chemically modified or protein engineered mutants. Suitable cellulases include cellulases from the genera Bacillus, Pseudomonas, Humicola, Fusarium, Thielavia, and Acremonium, for example, the fungal cellulases produced by Humicola insolens, Thielavia terrestris, Myceliophthora thermophila, and Fusarium oxysporum as disclosed in US 4,435,307, US 5,648,263, US 5,691,178, US 5,776,757, WO 89 / 09259, WO 96 / 029397, and WO 98 / 012307. Commercially available cellulases include Celluzyme TM , Carezyme TM , Celluclean TM , Endolase TM , Renozyme TM (Novozymes A / S), Clazinase TM and Puradax HA TM (Genencor International Inc.) and KAC-500(B) TM (Kao Corporation). Celluclean TM is preferred.

[0231] Lipase

[0232] Preferably, the composition comprises a lipase.

[0233] A lipase is a lipid esterase, and the terms lipid esterase and lipase are used synonymously herein.

[0234] The composition preferably comprises from 0.0005 to 0.5% by weight, preferably from 0.005 to 0.2% by weight of lipase.

[0235] Cleaning lipid esterases are discussed in Enzymes in Detergency, edited by Jan H. Van Ee, Onno Misset, and Erik J. Baas (1997 Marcel Dekker, New York).

[0236] The lipid esterase may be selected from lipases in E.C. class 3.1 or 3.2 or a combination thereof.

[0237] Preferably, the cleaning lipid esterase is selected from:

[0238] (1) Triacylglycerol lipase (E.C. 3.1.1.3)

[0239] (2) Carboxylic ester hydrolase (E.C. 3.1.1.1)

[0240] (3) Cutinase (E.C. 3.1.1.74)

[0241] (4) Sterol esterase (E.C. 3.1.1.13)

[0242] (5) Wax-ester hydrolase (E.C. 3.1.1.50)

[0243] Triacylglycerol lipase (E.C. 3.1.1.3) is most preferred.

[0244] Suitable triacylglycerol lipases may be selected from variants of the lipase of Humicola lanuginosa (Thermomyces lanuginosus). Other suitable triacylglycerol lipases may be selected from variants of Pseudomonas lipases, such as from Pseudomonas alcaligenes or Pseudomonas pseudoalcaligenes (EP 218 272), Pseudomonas cepacia (EP 331 376), Pseudomonas stutzeri (GB 1,372,034), Pseudomonas fluorescens, Pseudomonas strain SD 705 (WO 95 / 06720 and WO 96 / 27002), Pseudomonas wisconsinensis (WO 96 / 12012); variants of Bacillus lipases, such as from Bacillus subtilis (Dartois et al. (1993), Biochemica et Biophysica Acta, 1131, 253 - 360), Bacillus stearothermophilus (JP 64 / 744992) or Bacillus pumilus (WO 91 / 16422).

[0245] Suitable carboxylesterases can be selected from wild-type carboxylesterases or variants endogenous to Burkholderia gladioli, Pseudomonas fluorescens, Pseudomonas putida, Bacillus acidocaldarius, Bacillus subtilis, Bacillus stearothermophilus, Streptomyces chrysomallus, Streptomyces diastatochromogenes, and Saccharomyces cerevisiae.

[0246] Suitable cutinases can be selected from wild-type cutinases or variants endogenous to strains of the genus Aspergillus, particularly Aspergillus oryzae; the genus Alternaria, particularly Alternaria brassiciola; the genus Fusarium, particularly Fusarium solani, Fusarium solani pisi, Fusarium oxysporum, Fusarium oxysporum cepa, Fusarium culmorum, or Fusarium roseum sambucium; the genus Helminthosporium, particularly Helminthosporium sativum; the genus Humicola, particularly Humicola insolens; the genus Pseudomonas, particularly Pseudomonas mendocina or Pseudomonas putida; the genus Rhizoctonia, particularly Rhizoctonia solani; the genus Streptomyces, particularly Streptomyces scabies; the genus Coprinus, particularly Coprinus cinereus; the genus Thermobifida, particularly Thermobifida fusca; the genus Magnaporthe, particularly Magnaporthe grisea; or the genus Ulocladium, particularly Ulocladium consortiale.

[0247] In a preferred embodiment, the cutinase is a variant of the Pseudomonas mendocina cutinase described in WO 2003 / 076580 (Genencor), such as a variant having three substitutions of I178M, F180V, and S205G.

[0248] In another preferred embodiment, the cutinase is the wild-type or a variant of six cutinases endogenous to Coprinus cinereus described in H. Kontkanen et al., App. Environ. Microbiology, 2009, p2148 - 2157.

[0249] In another preferred embodiment, the cutinase is the wild type or variant of two endogenous cutinases of Trichoderma reesei described in WO2009007510 (VTT).

[0250] In a most preferred embodiment, the cutinase is derived from a strain of Humicola insolens, in particular the Humicola insolens DSM1800 strain. The Humicola insolens cutinase is described in WO 96 / 13580, which is incorporated herein by reference. The cutinase can be a variant, such as one of the variants disclosed in WO 00 / 34450 and WO 01 / 92502. Preferred cutinase variants include those listed in Example 2 of WO 01 / 92502. Preferred commercial cutinases include Novozym51032 (available from Novozymes, Bagsvaerd, Denmark).

[0251] Suitable sterol esterases can be derived from Ophiostoma, such as strains of Ophiostoma piceae; Pseudomonas, such as strains of Pseudomonas aeruginosa; or Melanocarpus, such as strains of Melanocarpus albomyces.

[0252] In a most preferred embodiment, the sterol esterase is the Melanocarpus albomyces sterol esterase described in H. Kontkanen et al., Enzyme Microb Technol., 39, (2006), 265 - 273.

[0253] Suitable wax - ester hydrolases can be derived from Simmondsia chinensis.

[0254] The lipid esterase is preferably a lipase selected from the classes E.C. 3.1.1.1 or 3.1.1.3 or a combination thereof, most preferably E.C. 3.1.1.3.

[0255] Examples of E.C. 3.1.1.3 lipases include those described in WIPO publications WO 00 / 60063, WO 99 / 42566, WO 02 / 062973, WO 97 / 04078, WO 97 / 04079 and US 5,869,438. Preferred lipases are from Absidia reflexa, Absidia corymbefera, Rhizomucor miehei, Rhizopus deleman, Aspergillus niger, Aspergillus tubigensis, Fusarium oxysporum ( produced by Fusarium oxysporum, Fusarium heterosporum, Aspergillus oryzae, Penicilium camembertii, Aspergillus foetidus, Aspergillus niger, Thermomyces lanoginosus (synonym: Humicola lanuginosa) and Landerina penisapora, especially Thermomyces lanoginosus. Certain preferred lipases are sold by Novozymes under the trade name Lipolase and (registered trademark of Novozymes); and LIPASE P available from Areario Pharmaceutical Co., Ltd., Nagoya, Japan; commercially available from Toyo Jozo Co., Tagata, Japan; and additional Chromobacter viscosum lipases, from Amersham Pharmacia Biotech., Piscataway, New Jersey, U.S.A and Diosynth Co., Netherlands; and other lipases, such as Pseudomonas gladioli. Additional useful lipases are described in WIPO publications WO 02062973, WO 2004 / 101759, WO 2004 / 101760 and WO 2004 / 101763. In one embodiment, suitable lipases include the "first cycle lipases" described in WO00 / 60063 and U.S. Patent 6,939,702 B1, preferably variants of SEQ ID No. 2, more preferably SEQ ID No. 2 variants having at least 90% homology with SEQ ID No. 2, which contain a substitution of an amino acid that is electrically neutral or negatively charged at any of positions 3, 224, 229, 231 and 233 with R or K, and most preferably variants containing the T231R and N233R mutations, and such most preferred variants are sold under the trade name (Novozymes).

[0256] The above lipases can be used in combination (any mixture of lipases can be used). Suitable lipases can be purchased from Novozymes, Bagsvaerd, Denmark; Areario Pharmaceutical Co., Ltd., Nagoya, Japan; Toyo Jozo Co., Tagata, Japan; Amersham Pharmacia Biotech., Piscataway, New Jersey, U.S.A; Diosynth Co., Oss, Netherlands, and / or prepared according to the examples included herein.

[0257] As described in WO 2007 / 087243, lipid esterases with reduced odor generation potential and good relative performance are particularly preferred. These include (Novozyme).

[0258] Preferred commercially available lipases include Lipolase TM and Lipolase Ultra TM 、Lipex TM and Lipoclean TM (Novozymes A / S).

[0259] Fluorescent agent

[0260] Preferably, the composition contains a fluorescent agent. More preferably, the fluorescent agent comprises a sulfonated stilbenyl biphenyl fluorescent agent, such as those discussed in Chapter 7 of Industrial Dyes (edited by K. Hunger, Wiley VCH 2003). Sulfonated stilbenyl biphenyl fluorescent agents are discussed in US5145991 (Ciba Geigy). 4,4'-stilbenyl biphenyl is preferred. Preferably, the fluorescent agent contains 2 SO 3 - groups.

[0261] Most preferably, the fluorescent agent has the following structure:

[0262]

[0263] wherein X is a suitable counterion, preferably selected from metal ions, ammonium ions or amine salt ions, more preferably alkali metal ions, ammonium ions or amine salt ions, and most preferably Na or k.

[0264] Preferably, the fluorescent agent is present at a level of 0.01 wt% to 1 wt% of the composition, more preferably 0.05 to 0.4 wt%, and most preferably 0.11 to 0.3 wt%.

[0265] Surfactants based on C16 and / or C18 alkyls, whether alcohol ethoxylates or alkyl ether sulfates, are typically obtained as mixtures with C16 and C18 alkyl chain length feedstocks.

[0266] Defoamer

[0267] The composition may also contain an antifoaming agent, but preferably it is free of antifoaming agents. Antifoaming agent materials are well known in the art and include siloxanes and fatty acids.

[0268] Preferably, the fatty acid soap is present in the composition at 0 to 0.5% by weight (measured as the acid added to the composition), more preferably 0 to 0.1% by weight, and most preferably zero.

[0269] In the context of the present invention, suitable fatty acids include aliphatic carboxylic acids of the formula RCOOH, where R is a straight or branched alkyl or alkenyl chain containing 6 to 24, more preferably 10 to 22, and most preferably 12 to 18 carbon atoms and 0 or 1 double bond. Preferred examples of such materials include saturated C12-18 fatty acids such as lauric acid, myristic acid, palmitic acid or stearic acid; and fatty acid mixtures in which 50 to 100% (by weight based on the total weight of the mixture) consists of saturated C12-18 fatty acids. Such mixtures can typically be derived from natural fats and / or optionally hydrogenated natural oils (such as coconut oil, palm kernel oil or tallow).

[0270] The fatty acid can be present in the form of its sodium, potassium or ammonium salts, and / or in the form of soluble salts with organic bases (such as monoethanolamine, diethanolamine or triethanolamine).

[0271] Mixtures of any of the above materials can also be used.

[0272] For the purposes of formulation calculations, in the formulation, the fatty acid and / or its salts (as defined above) are not included in the surfactant content or the builder content.

[0273] Preferably, the composition contains 0.2 to 10% by weight of a cleaning polymer based on the composition.

[0274] Preferably, the cleaning polymer is selected from alkoxylated polyethyleneimines, polyester detergency polymers and copolymers of PEG / vinyl acetate.

[0275] Preservative

[0276] Food Chemistry (Belitz H.-D., Grosch W., Schieberle), 4th Edition, Springer discusses food preservatives.

[0277] The preparation contains a preservative or a mixture of preservatives selected from benzoic acid and its salts, alkyl esters of p-hydroxybenzoic acid and their salts, sorbic acid, diethyl pyrocarbonate, dimethyl pyrocarbonate, preferably benzoic acid and its salts, and most preferably sodium benzoate.

[0278] Optional preferred preservatives are selected from sodium benzoate, phenoxyethanol, dehydroacetic acid and mixtures thereof.

[0279] The preservative is present in an amount of 0.1 to 3% by weight, preferably 0.3 to 1.5% by weight. Where appropriate, the weight is calculated for the protonated form.

[0280] Preferably, the composition contains 0.1 to 3% by weight, preferably 0.3 to 1.5% by weight of sodium benzoate based on the composition.

[0281] Preferably, the composition contains 0.1 to 3% by weight, preferably 0.3 to 1.5% by weight of phenoxyethanol based on the composition.

[0282] Preferably, the composition contains 0.1 to 3% by weight, preferably 0.3 to 1.5% by weight of dehydroacetic acid based on the composition.

[0283] Preferably, the composition contains less than 0.1% by weight of isothiazolinone-based preservatives, more preferably less than 0.05% by weight.

[0284] Polymer cleaning synergist

[0285] Preferably, the composition contains an anti-redeposition polymer that stabilizes the dirt in the washing liquid, thereby preventing the redeposition of dirt. The soil release polymers suitable for the present invention include alkoxylated polyamines, preferably alkoxylated polyethyleneimines. Polyethyleneimine is a material composed of ethyleneimine units -CH 2 CH 2 NH-, and in the case of branching, the hydrogen on the nitrogen is replaced by another ethyleneimine unit chain. The preferred alkoxylated polyethyleneimine for use in the present invention has a polyethyleneimine backbone with a weight average molecular weight (M w ) of about 300 to about 10,000. The polyethyleneimine backbone can be linear or branched. It can be branched to the extent of a dendrimer. The alkoxylation can generally be ethoxylation or propoxylation, or a mixture of both. When the nitrogen atom is alkoxylated, the preferred average degree of alkoxylation is 10 to 30, preferably 15 to 25 alkoxy groups per modification. The preferred material is ethoxylated polyethyleneimine, in which each ethoxylated nitrogen atom in the polyethyleneimine backbone has an average degree of ethoxylation of 10 to 30, preferably 15 to 25 ethoxy groups.

[0286] Mixtures of any of the above materials can also be used.

[0287] More preferably, the polyamine is an alkoxylated cationic or zwitterionic diamine or polyamine polymer, wherein the positive charge is provided by quaternization of the nitrogen atoms of the amines, and the anionic group (if present) is provided by sulfation or sulfonation of the alkoxylated groups.

[0288] Preferably, the alkoxylation is selected from propoxylation and ethoxylation, and most preferably ethoxylation.

[0289] Preferably, greater than or equal to 50 mole % of the nitrogen amines are quaternized, preferably with methyl quaternization. Preferably, the polymer contains from 2 to 10, more preferably from 2 to 6, and most preferably from 3 to 5 quaternized nitrogen amines. Preferably, the alkoxide groups are selected from ethoxide and propoxide, and most preferably ethoxide.

[0290] Preferably, the polymer contains ester (COO) or amide (CONH) groups in its structure, and preferably, these groups are arranged such that when all the ester or amide groups are hydrolyzed, at least one, preferably all, of the hydrolysis fragments have a molecular weight of less than 4000, preferably less than 2000, and most preferably less than 1000.

[0291] Preferably, the polymer has the following form:

[0292]

[0293] wherein R 1 is a C3 to C8 alkyl group, X is a (C 2 H 4 O) n Y group, where n is from 15 to 30, where m is from 2 to 10, preferably 2, 3, 4 or 5, and where Y is selected from OH and SO 3 - and preferably the number of SO 3 - groups is greater than the number of OH groups. Preferably, there are 0, 1 or 2 OH groups. X and R 1 may contain ester groups therein. X may contain a carbonyl group, preferably an ester group. Preferably, there is 1 C 2 H 4 O unit that separates the ester group from the N such that the structural unit N-C 2 H 4 O-ester-(C 2 H 4 O) n-1 Y is preferred.

[0294] Such polymers are described in WO2021239547 (Unilever). Exemplary polymers are sulfated ethoxylated hexamethylenediamine and Examples P1, P2, P3, P4, P5 and P6 of WO2021239547. Amide and ester groups can be included by adding lactones or sodium chloroacetate (modified Williamson synthesis) to OH or NH groups respectively, followed by subsequent ethoxylation.

[0295] An exemplary reaction scheme for including an ester group is

[0296]

[0297] The addition of lactones is discussed in WO2021 / 165468.

[0298] The compositions of the present invention preferably comprise from 0.025 to 8% by weight of one or more anti-redeposition polymers such as, for example, the above-mentioned alkoxylated polyethyleneimines or zwitterionic polyamines.

[0299] Detergent polymer

[0300] The soil release polymer helps to improve the detachment of soil from the fabric by modifying the fabric surface during the washing process. The chemical structure of the SRP and the affinity between the target fibers promote the adsorption of the SRP on the fabric surface.

[0301] The SRP used in the present invention can include a variety of charged (e.g., anionic) and uncharged monomer units, and the structure can be linear, branched or star-shaped. The SRP structure can also include end groups to control the molecular weight or change polymer properties such as surface activity. The weight average molecular weight (M w)It can suitably be in the range of about 1000 to about 20,000, preferably in the range of about 1500 to about 10,000. The SRP for use in the present invention can suitably be selected from copolyesters of dicarboxylic acids (such as adipic acid, phthalic acid or terephthalic acid), diols (such as ethylene glycol or propylene glycol) and polyglycols (such as polyethylene glycol or polypropylene glycol). The copolyesters can also include monomer units substituted with anionic groups, such as, for example, sulfonated isophthaloyl units. Examples of such materials include low polyesters produced by transesterification / oligomerization of poly(ethylene glycol) methyl ether, dimethyl terephthalate (“DMT”), propylene glycol (“PG”) and poly(ethylene glycol) (“PEG”); partially and fully anionic-capped low polyesters, such as oligomers from ethylene glycol (“EG”), PG, DMT and sodium 3,6-dioxaoctane sulfonate; non-ionic-capped block polyester oligomeric compounds, such as combinations of DMT, Me-capped PEG and EG and / or PG, or DMT, EG and / or PG, Me-capped PEG and sodium dimethyl-5-sulfonatoisophthalate, and those produced by copolymerization blocks of ethylene glycol terephthalate or propylene glycol terephthalate with polyethylene oxide or polypropylene oxide terephthalate.

[0302] Other types of SRP for use in the present invention include cellulose derivatives, such as hydroxyether cellulose polymers, C 1 -C 4 alkyl celluloses and C 4 hydroxyalkyl celluloses; polymers having poly(vinyl ester) hydrophobic segments, such as graft copolymers of poly(vinyl esters), for example C 1 -C 6 vinyl esters (such as poly(vinyl acetate)); poly(vinylcaprolactam) and related copolymers with monomers such as vinylpyrrolidone and / or dimethylaminoethyl methacrylate; and polyester-polyamide polymers prepared by condensing adipic acid, caprolactam and polyethylene glycol.

[0303] Preferred SRP for use in the present invention include copolyesters formed by the condensation of terephthalates and diols, preferably 1,2-propanediol, and further comprising end caps formed from alkylene oxide repeat units capped with an alkyl group. Examples of such materials have a structure corresponding to general formula (I):

[0304]

[0305] wherein R 1 and R 2 are independently of each other X-(OC 2 H 4 ) n -(OC 3 H 6) m ;

[0306] wherein X is C 1-4 alkyl, preferably methyl;

[0307] n is a number from 12 to 120, preferably from 40 to 50;

[0308] m is a number from 1 to 10, preferably from 1 to 7; and

[0309] a is a number from 4 to 9.

[0310] Since they are average values, m, n and a are not necessarily integers for the overall polymer.

[0311] Mixtures of any of the above materials may also be used.

[0312] When including SRP, the total content of SRP can range from 0.1 to 10%, depending on the content of the polymer intended for use in the final diluted composition, and it is preferably from 0.3 to 7%, more preferably from 0.5 to 5% (by weight based on the total weight of the diluted composition).

[0313] Suitable soil-release polymers are described in more detail in U.S. Patent Nos. 5,574,179; 4,956,447; 4,861,512; 4,702,857, WO 2007 / 079850 and WO2016 / 005271. If used, the soil-release polymer is typically incorporated into the liquid laundry detergent composition herein at a concentration in the range of 0.01% to 10%, more preferably 0.1% to 5% by weight of the composition.

[0314] Hydrotrope

[0315] The compositions of the present invention may be incorporated into non-aqueous carriers such as hydrotropes, cosolvents and phase stabilizers. Such materials are typically low molecular weight, water-soluble or water-miscible organic liquids such as C1 to C5 monohydric alcohols (such as ethanol and n-propanol or isopropanol); C2 to C6 diols (such as monopropylene glycol and dipropylene glycol); C3 to C9 triols (such as glycerol); polyethylene glycols with a weight average molecular weight (M w ) in the range of about 200 to 600; C1 to C3 alkanolamines such as monoethanolamine, diethanolamine and triethanolamine; and alkylarylsulfonates having at most 3 carbon atoms in the lower alkyl (such as sodium and potassium xylene, toluene, ethylbenzene and cumene (isopropylbenzene) sulfonates).

[0316] Mixtures of any of the above materials may also be used.

[0317] When a non-aqueous carrier is included, its amount may be in the range of 0.1 to 3%, preferably 0.5 to 1% (by weight based on the total weight of the composition). The content of the hydrotrope used is related to the content of the surfactant, and it is desirable to use the content of the hydrotrope to control the viscosity of such a composition. Preferred hydrotropes are monopropylene glycol and glycerol.

[0318] Cosurfactant

[0319] In addition to the above non-soap anionic and / or non-ionic detergent surfactants, the compositions of the present invention may include one or more co-surfactants (such as amphoteric (zwitterionic) and / or cationic surfactants).

[0320] Specific cationic surfactants include C8 to C18 alkyldimethylammonium halides and their derivatives (where one or two hydroxyethyl groups replace one or two methyl groups), and mixtures thereof. When a cationic surfactant is included, its amount may be in the range of 0.1 to 5% (by weight based on the total weight of the composition).

[0321] Specific amphoteric (zwitterionic) surfactants include alkylamine oxides, alkylbetaines, alkylamidopropylbetaines, alkylsulfobetaines (sulfobetaines), alkylglycinates, alkylcarboxyglycinates, alkylamphoacetates, alkylamphopropionates, alkylamphoglycinates, alkylamidopropylhydroxysulfobetaines, acyltaurates and acylglutamates, which have an alkyl group containing about 8 to about 22 carbon atoms, preferably selected from C12, C14, C16, C18 and C18:1, and the term "alkyl" is used to include the alkyl portion of the higher acyl groups. When an amphoteric (zwitterionic) surfactant is included, its amount may be in the range of 0.1 to 5% (by weight based on the total weight of the composition).

[0322] Mixtures of any of the above materials may also be used.

[0323] Builders and chelating agents

[0324] The detergent composition may also optionally contain a relatively low content of an organic detergent builder or chelating agent substance. Examples include alkali metal citrates, succinates, malonates, carboxymethylsuccinates, carboxylates, polycarboxylates and polyacetylcarboxylates. Specific examples include the sodium, potassium and lithium salts of oxydisuccinic acid, mellitic acid, benzene polycarboxylic acids and citric acid. Other examples are DEQUEST TM , an organic phosphonate type chelating agent sold by Monsanto, and alkylene hydroxyphosphonates.

[0325] Other suitable organic builders include high molecular weight polymers and copolymers known to have builder properties. For example, such materials include suitable polyacrylic acids, polymaleic acids, and polyacrylic acid / polymaleic acid copolymers and their salts, such as those sold by BASF under the name SOKALAN TM If used, the organic builder material can be present in the composition in an amount of from about 0.5 wt% to 20 wt%, preferably from 1 wt% to 10 wt%. The preferred builder content is less than 10 wt% of the composition, preferably less than 5 wt%. More preferably, the liquid laundry detergent formulation is a non-phosphate builder laundry detergent formulation, i.e., contains less than 1 wt% of phosphate. Most preferably, the laundry detergent formulation is non-built, i.e., contains less than 1 wt% of builder. Typically in liquids, the preferred chelating agent is HEDP (1-hydroxyethylidene-1,1-diphosphonic acid), for example, sold as Dequest 2010. Also suitable but less preferred due to its poorer cleaning effect is Dequest(R) 2066 (diethylenetriamine penta(methylenephosphonic acid) or DTPMP heptasodium). However, it is preferred that the composition contains less than 0.5 wt% of a phosphonate-based chelating agent, and more preferably less than 0.1 wt% of a phosphonate-based chelating agent. Most preferably, the composition is free of phosphonate-based chelating agents.

[0326] Aminocarboxylate

[0327] Preferably, the composition contains an aminocarboxylate. Preferably, the aminocarboxylate is selected from GLDA and MGDA.

[0328] Preferably, the aminocarboxylate is present in the composition in an amount of from 0.1 to 15 wt%, more preferably from 0.1 to 10 wt%, even more preferably from 0.3 to 5 wt%, still more preferably from 0.8 to 3 wt%, and most preferably from 1 to 2.5 wt% (based on the weight of the composition).

[0329] Glutamic acid diacetic acid (GLDA)

[0330] GLDA can be present in the form of the salt of GDLA or a mixture of the salt of GDLA and the salt of GDLA. Preferred salt forms include the mono-, di-, tri- or tetra-alkali metal salts and mono-, di-, tri- or tetra-ammonium salts of GLDA. The alkali metal salts of glutamic acid diacetic acid GDLA are preferably selected from the lithium salt, potassium salt, and more preferably the sodium salt of GLDA.

[0331] Glutamic acid diacetic acid can be partially or preferably completely neutralized with the corresponding base. Preferably, the average of 3.5 to 4 COOH groups of GLDA are neutralized with an alkali metal, preferably with sodium. Most preferably, the composition contains the tetrasodium salt of GLDA.

[0332] GLDA is at least partially neutralized with an alkali metal, more preferably with sodium or potassium, and most preferably with sodium.

[0333] The GLDA salt can be an alkali metal salt of L-GLDA, an alkali metal salt of D-GLDA, or a mixture of enantiomerically enriched isomers.

[0334] Preferably, the composition comprises a mixture of L- and D-enantiomers of glutamic acid diacetic acid (GLDA) or their respective mono-, di-, tri- or tetra-alkali metal salts or mono-, di-, tri- or tetra-ammonium salts or mixtures thereof, said mixture mainly comprising the respective L-isomers, with an enantiomeric excess ranging from 10 to 95%.

[0335] Preferably, the GLDA salt is substantially L-glutamic acid diacetic acid at least partially neutralized with an alkali metal.

[0336] The sodium salt of GLDA is preferred.

[0337] A suitable commercial source of GLDA in the tetrasodium salt form is available from Nouryon as GL.

[0338] Preferably, the amount of GLDA present in the composition is from 0.1 to 15% by weight, more preferably from 0.1 to 10% by weight, even more preferably from 0.3 to 5% by weight, still more preferably from 0.8 to 3% by weight, and most preferably from 1 to 2.5% by weight (based on the weight of the composition).

[0339] Methylglycine diacetic acid (MGDA)

[0340] Preferred salt forms include mono-, di-, tri- or tetra-alkali metal salts and mono-, di-, tri- or tetra-ammonium salts of MGDA. The alkali metal salts are preferably selected from lithium salts, potassium salts, and more preferably the sodium salt of MGDA.

[0341] The sodium salt of methylglycine diacetic acid is preferred. Particularly preferred is the trisodium salt of MGDA.

[0342] MGDA can be partially or preferably completely neutralized with the corresponding alkali metal. Preferably, on average 2.7 to 3 COOH groups per molecule of MGDA are neutralized with an alkali metal, preferably with sodium.

[0343] MGDA can be selected from racemic mixtures of alkali metal salts of MGDA and pure enantiomers (such as alkali metal salts of L-MGDA, alkali metal salts of D-MGDA), and mixtures of enantiomerically enriched isomers.

[0344] A suitable commercial source of MGDA in the trisodium salt form is available from BASF as M and from Nouryon as M-40

[0345] Preferably, the amount of MGDA present in the composition is from 0.1 to 15% by weight, more preferably from 0.1 to 10% by weight, even more preferably from 0.3 to 5% by weight, still more preferably from 0.8 to 3% by weight, and most preferably from 1 to 2.5% by weight (based on the weight of the composition).

[0346] A small amount of aminocarboxylate may carry cations other than alkali metals. Thus, it is possible that a small amount, such as 0.01 to 5 mol%, carries alkaline earth metal cations, such as Mg 2+ or Ca2 + or Fe(II) or Fe(III) cations. GLDA may contain small amounts of impurities derived from its synthesis, such as lactic acid, alanine, propionic acid, etc. "Small amount" in this context refers to a total amount of 0.1 to 1% by weight, which refers to the chelating agent aminocarboxylate.

[0347] Organic acid

[0348] The composition preferably contains an organic acid. Preferably, the organic acid has a general formula structure R-CH(OH)-COOH, where R is a straight-chain C1-C5, more preferably C2-C4, and most preferably C4 alkyl.

[0349] Preferably, at least two, more preferably all, of the carbon atoms in the straight-chain C1-4 are substituted by OH groups. Preferably, R contains a terminal COOH group.

[0350] Preferred examples are lactic acid, tartaric acid, gluconic acid, mucic acid, glucoheptonic acid. Most preferably, the organic acid is gluconic acid.

[0351] The organic acid can be of the D or L form.

[0352] Gluconic acid can be selected from the racemic mixture of the salts of gluconic acid (gluconates) and the pure enantiomers (such as the alkali metal salts of L-gluconic acid, D-gluconic acid, and mixtures of enantiomerically enriched isomers). The preferred is the D-isomer form.

[0353] Preferably, the organic acid is present in the range of 0.1 to 15% by weight, more preferably 0.1 to 10% by weight, even more preferably 0.2 to 4% by weight, still more preferably 0.5 to 3% by weight, and most preferably 0.8 to 2% by weight (based on the weight of the composition). Measured in its protonated form.

[0354] In the most preferred embodiment, the composition contains GLDA and / or MGDA and gluconic acid, more preferably GLDA and gluconic acid.

[0355] Polymer thickener

[0356] The compositions of the present invention may comprise one or more polymeric thickeners. Suitable polymeric thickeners for use in the present invention include hydrophobically modified alkali-swellable emulsion (HASE) copolymers. Exemplary HASE copolymers for use in the present invention include linear or crosslinked copolymers prepared by addition polymerization of a monomer mixture comprising at least one acidic vinyl monomer such as (meth)acrylic acid (i.e., methacrylic acid and / or acrylic acid); and at least one associative monomer. The term "associative monomer" in the context of the present invention denotes a monomer having an ethylenically unsaturated segment (for addition polymerization with other monomers in the mixture) and a hydrophobic segment. Preferred types of associative monomers include a polyoxyalkylene segment between the ethylenically unsaturated segment and the hydrophobic segment. Preferred HASE copolymers for use in the present invention include linear or crosslinked copolymers prepared by addition polymerization of (meth)acrylic acid with (i) at least one associative monomer selected from linear or branched C 8 -C 40 alkyl (preferably linear C 12 -C 22 alkyl) polyethoxylated (meth)acrylate; and (ii) at least one further monomer selected from C 1 -C 4 alkyl esters of (meth)acrylic acid, polyacid vinyl monomers such as maleic acid, maleic anhydride and / or their salts, and mixtures thereof. The polyethoxylated portion of the associative monomer (i) generally comprises from about 5 to about 100, preferably from about 10 to about 80, more preferably from about 15 to about 60 oxyethylene repeat units.

[0357] Mixtures of any of the above materials may also be used.

[0358] When included, the compositions of the present invention preferably comprise from 0.01 to 5% by weight of the composition, but depending on the amount intended to be used in the final diluted product, it is desirably from 0.1 to 3% by weight based on the total weight of the diluted composition.

[0359] Toning dye

[0360] Toning dyes may be used to improve the performance of the composition. Preferred dyes are purple or blue. It is believed that deposition of low levels of these hue dyes on the fabric masks the yellowing of the fabric. Another advantage of toning dyes is that they can be used to mask any yellow tint of the composition itself.

[0361] Toning dyes are well known in the field of liquid laundry detergent formulations.

[0362] Suitable and preferred dye classes include direct dyes, acid dyes, hydrophobic dyes, basic dyes, reactive dyes and dye conjugates. Preferred examples are Disperse Violet 28, Acid Violet 50, anthraquinone dyes covalently bound to ethoxylated or propoxylated polyethyleneimine as described in WO2011 / 047987 and WO 2012 / 119859, alkoxylated monoazo thiophenes, dyes having CAS-No 72749-80-5, Acid Blue 59 and phenazine dyes selected from:

[0363]

[0364] wherein:

[0365] X 3 selected from: -H; -F; -CH 3 ; -C 2 H 5 ; -OCH 3 ; and -OC 2 H 5 ;

[0366] X 4 selected from: -H; -CH 3 ; -C 2 H 5 ; -OCH 3 ; and -OC 2 H 5 ;

[0367] Y 2 selected from: -OH; -OCH 2 CH 2 OH; -CH(OH)CH 2 OH; -OC(O)CH 3 ; and C(O)OCH 3 .

[0368] Alkoxylated thiophene dyes are discussed in WO2013 / 142495 and WO2008 / 087497.

[0369] The toning dye is preferably present in the composition in the range of 0.0001 to 0.1% by weight. Depending on the nature of the toning dye, there is a preferred range depending on the potency of the toning dye, which depends on the class and the specific potency within any particular class.

[0370] External structuring agent

[0371] The composition of the present invention can be further modified in terms of its rheology by using one or more external structuring agents that form a structured network within the composition. Examples of such materials include crystallizable glycerides such as hydrogenated castor oil; microcrystalline cellulose and citrus pulp fibers. The presence of the external structuring agent can provide shear-thinning rheology and can also stably suspend materials such as encapsulates and visual cues in the liquid.

[0372] The composition preferably contains a crystallizable glyceride.

[0373] As described in WO2011 / 031940, crystallizable glycerides can be used to form an external structuring system, the content of which (particularly regarding the manufacture of ESS) is incorporated herein by reference. When ESS is present, it is preferred that the ESS of the present invention preferably comprises: (a) a crystallizable glyceride; (b) an alkanolamine; (c) an anionic surfactant; (d) additional components; and (e) optional components. Each of these components will be discussed in detail below.

[0374] The crystallizable glyceride used herein preferably includes "hydrogenated castor oil" or "HCO". The HCO used herein can most commonly be any hydrogenated castor oil as long as it is capable of crystallizing in the ESS premix. Castor oil can include glycerides, especially triglycerides, which contain C10 to C22 alkyl or alkenyl moieties incorporating hydroxyl groups. Hydrogenation of castor oil such that the HCO converts double bonds (which may be present in the feedstock oil such as the castor oil moiety) converts the castor oil moiety to a saturated hydroxyalkyl moiety (e.g., hydroxystearyl). In some embodiments, the HCO herein can be selected from: trihydroxystearin; dihydroxystearin; and mixtures thereof. The HCO can be processed in any suitable starting form, including but not limited to those selected from solids, melts, and mixtures thereof. The level of HCO present in the ESS of the present invention is typically from about 2% to about 10%, from about 3% to about 8% or from about 4% to about 6% by weight of the structuring system. In some embodiments, the corresponding percentage of hydrogenated castor oil delivered to the finished laundry detergent product is less than about 1.0%, typically from 0.1% to 0.8%.

[0375] Useful HCO may have the following properties: a melting point of from about 40 °C to about 100 °C, or from about 65 °C to about 95 °C; and / or an iodine value ranging from 0 to about 5, 0 to about 4, or 0 to about 2.6. The melting point of the HCO can be measured by ASTM D3418 or ISO 11357; both tests utilize DSC: differential scanning calorimetry. The HCOs used in the present invention include those commercially available. Non-limiting examples of commercially available HCOs used in the present invention include: THIXCIN(R) from Rheox, Inc. Further examples of useful HCOs can be found in U.S. Patent No. 5,340,390. The source of castor oil used for hydrogenation to form HCO can be any suitable source of origin, such as from Brazil or India. In a suitable embodiment, castor oil is hydrogenated using a noble metal (e.g., palladium catalyst), and the hydrogenation temperature and pressure are controlled to optimize the hydrogenation of the double bonds of natural castor oil while avoiding unacceptable levels of dehydroxylation.

[0376] The present invention is not intended to relate only to the use of hydrogenated castor oil. Any other suitable crystallizable glyceride can be used. In one example, the structurant is a triglyceride of substantially pure 12-hydroxy stearic acid. This molecule represents the pure form of the fully hydrogenated triglyceride of 12-hydroxy-9-cis-octadecenoic acid. In nature, the composition of castor oil is rather stable, but it can vary slightly. Similarly, the hydrogenation process can vary. Any other suitable equivalent materials can be used, such as mixtures of triglycerides, where at least 80 wt% is from castor oil. Exemplary equivalent materials mainly comprise or consist essentially of triglycerides; or mainly comprise or consist essentially of a mixture of diglycerides and triglycerides; or mainly comprise or consist essentially of a mixture of triglycerides with diglycerides and a limited amount (e.g., less than about 20 wt% of the glyceride mixture) of monoglycerides; or mainly comprise or consist essentially of any of the foregoing glycerides with a limited amount (e.g., less than about 20 wt%) of the corresponding acid hydrolysis products of any of the said glycerides. The proviso above is that the major portion of any of the said glycerides, typically at least 80 wt%, is chemically the same as the glyceride of fully hydrogenated ricinoleic acid, i.e., the glyceride of 12-hydroxy stearic acid. For example, it is well known in the art to modify hydrogenated castor oil such that in a given triglyceride, there are two 12-hydroxy stearic acid moieties and one stearic acid moiety. Similarly, it is foreseeable that the hydrogenated castor oil may not be fully hydrogenated. Conversely, when poly(oxyalkylated) castor oil does not meet the melting criteria, the present invention does not include poly(alkoxylated) castor oil.

[0377] The melting point of the crystallizable glyceride used in the present invention can be from about 40 °C to about 100 °C.

[0378] Microcapsule

[0379] One type of particulate suitable for the present invention is microcapsules. Microencapsulation can be defined as the process of surrounding or encapsulating a substance within another substance on a very small scale, resulting in capsules ranging in size from less than one micron to several hundred microns. The material being encapsulated can be referred to as the core, active ingredient or agent, filler, payload, nucleus or internal phase. The material encapsulating the core can be called the coating, membrane, shell or wall material.

[0380] Microcapsules typically have at least one generally spherical continuous shell surrounding the core. Depending on the materials and encapsulation techniques employed, the shell can contain pores, voids or interstitial openings. Multiple shells can be made of the same or different encapsulating materials and can be arranged in layers of different thicknesses around the core. Alternatively, the microcapsules can be asymmetrically and variably shaped, with a certain amount of smaller core material droplets embedded throughout the microcapsule.

[0381] The shell can have a barrier function to protect the core material from the external environment of the microcapsule, but it can also be used as a means to regulate the release of core materials such as fragrances. Thus, the shell can be water-soluble or water-swellable and can initiate fragrance release in response to the microcapsule being exposed to a humid environment. Similarly, if the shell is temperature-sensitive, the microcapsule can release fragrance in response to an increase in temperature. The microcapsule can also release fragrance in response to shear forces applied to the surface of the microcapsule.

[0382] A preferred type of polymer particulate suitable for the present invention is polymer core-shell microcapsules, where at least one generally spherical continuous shell of polymer material surrounds a core containing a fragrance formulation (f2). Based on the total weight of the microcapsule, the shell typically accounts for at most 20% by weight. Based on the total weight of the microcapsule, the fragrance formulation (f2) typically accounts for about 10 to about 60% by weight, preferably about 20 to about 40% by weight. The amount of fragrance (f2) can be measured by taking a slurry of the microcapsules, extracting into ethanol and measuring by liquid chromatography.

[0383] Further optional ingredients

[0384] The compositions of the present invention can contain further optional ingredients to enhance performance and / or consumer acceptability. Examples of such ingredients include foam boosters, preservatives (e.g., bactericides), polyelectrolytes, anti-shrinkage agents, anti-wrinkle agents, antioxidants, sunscreens, anti-corrosion agents, drape imparting agents, anti-static agents, ironing aids, colorants, pearlescents and / or opacifiers and color-toning dyes. The amount of each of these ingredients is present in an amount effective to achieve its purpose. Typically, these optional ingredients are individually included in amounts up to 5% (by weight based on the total weight of the diluted composition) and are thus adjusted according to the dilution ratio with water.

[0385] Automatic dosing

[0386] In a further aspect, the composition of the present invention can be used in an automatic dosing washing machine.

[0387] Thus, in a further aspect, there is provided a washing machine comprising a detergent reservoir containing 80 ml to 3000 ml of a liquid detergent according to the first aspect.

[0388] Also in a further aspect, there is provided a method for cleaning fabrics, comprising filling the reservoir of a washing machine with 80 ml to 3000 ml of a liquid detergent composition according to the first aspect and performing at least two washing cycles before adding further liquid detergent to the reservoir.

[0389] In yet a further aspect, there is provided a method for cleaning fabrics, comprising filling the reservoir of a washing machine with 80 ml to 3000 ml of a liquid laundry detergent composition according to the first aspect and performing a washing cycle that draws off a portion of the liquid detergent from the reservoir and leaves at least 20 ml in the reservoir.

[0390] In yet a further aspect, there is provided a method for cleaning a first fabric, which comprises filling the reservoir of a washing machine with 80 ml to 3000 ml of a liquid detergent composition according to the first aspect and forming a first wash liquor in the washing machine by drawing off a portion of the liquid detergent from the reservoir and combining it with water to form a first wash liquor, and performing a first wash cycle by washing the first fabric;

[0391] Optionally rinsing; and removing the first fabric from the washing machine; and performing a further wash cycle by drawing off a portion of the liquid detergent from the reservoir and combining it with water to form a further wash liquor and washing a further fabric to clean the further fabric;

[0392] Optionally rinsing; and removing the further fabric from the washing machine;

[0393] Optionally repeating the further wash cycle; and

[0394] Adding further liquid detergent to the reservoir.

[0395] The amount of 80 ml to 3000 ml of liquid detergent characterizes the amount of more than one dose of detergent. Preferably, the reservoir contains 250 ml to 2500 ml, more preferably 400 ml to 2000 ml of liquid detergent.

[0396] The washing machine preferably includes a detergent reservoir capable of storing up to 3000 ml of detergent. Such washing machines are known in the market as automatic dosing washing machines and are capable of storing sufficient liquid detergent for more than one wash cycle, preferably for multiple wash cycles. Typical examples of such machines are found in EP-A-3 071 742 (Electrolux). Preferably, the washing machine is a front-loading automatic washing machine.

[0397] Preferably, the washing machine includes a housing; a wash tub disposed within the housing, the opening or mouth of which directly faces a laundry loading / unloading opening formed in the front wall of the housing; a detergent dispensing assembly configured to supply detergent into the wash tub; a main fresh water supply circuit configured to be connected to a main water pipe and to selectively direct a flow of fresh water from the main water pipe to the detergent dispensing assembly and / or the wash tub, and an electrical control panel configured to allow a user to manually select a desired wash cycle.

[0398] The washing machine detergent dispensing assembly further includes an automatic dosing detergent dispenser configured to automatically dose a suitable amount of detergent for use during a selected wash cycle based on the selected wash cycle, and which includes: one or more detergent reservoirs, each configured to receive an amount of detergent to perform multiple wash cycles; and for each detergent reservoir, a corresponding detergent supply pump configured to selectively draw from the corresponding detergent reservoir the amount of detergent for performing the selected wash cycle and to pump / guide the specific amount of detergent into a detergent collection chamber in fluid communication with the wash tub.

[0399] In addition to the reservoir capable of holding the required amount of liquid detergent, the washing machine of the present invention further includes an electric motor for driving the drum to agitate. Water is flushed through the washing machine and a predetermined dose of detergent is added to the water to produce a wash liquor.

[0400] With an automatic dosing washing machine, the consumer can perform multiple wash cycles before needing to add further liquid detergent to the reservoir. Typically, the reservoir is sufficient for five or more washes and may be up to 20 or more, depending on the size of the reservoir in the washing machine and the dose used per wash cycle.

[0401] Each wash cycle includes drawing a volume of liquid laundry detergent sufficient to form a suitable wash liquor from the reservoir to clean the fabric.

[0402] Preferably, the volume is 10 to 75 ml, but this may depend on the amount of fabric, the stains to be cleaned, and the amount of surfactant and other cleaning reagents in the liquid laundry composition.

[0403] After the first wash cycle is completed, the remaining liquid detergent remains in the washing machine until the start of the next cycle, at which point a further dose is pumped from the reservoir and mixed with water to form the wash liquor.

[0404] It is also possible that the compositions described herein are loaded into the washing machine via a cartridge that mates with components of the washing machine. The cartridge can contain the necessary volume of the desired liquid detergent composition, and it can be from 200 ml to 3000 ml. Examples

[0405] The liquid detergent formulations were made from the following recipes.

[0406] Table 1

[0407]

[0408] The formulations were colored light blue using Acid Blue 3 and preserved using an isothiazolinone preservative. The cleaning polymer is a mixture of ethoxylated polyethyleneimine and a cotton soil release polymer.

[0409] The C10 branched alcohol ether sulfate is based on 2-propylheptanol with an average degree of ethoxylation of 4 moles.

[0410] The fragrance contains methyl nonyl acetaldehyde, tricyclodecenyl acetate (tricyclodecene acetate), hexyl salicylate, octahydrotetramethyl acetophenone (OTNE), and dihydro myrcenol.

[0411] These formulations were visually identical and given to 160 - 170 consumers to wash their clothes. The consumers were asked to rate the fragrance on a 7-point scale, with 7 being the most preferred. The results are given in the table below.

[0412] Table 2

[0413] Formulation 1 (comparison) Formulation 2 (the present invention) Clothes worn for the first time after washing 5.76 6.01 Clothes worn during the day 5.65 5.93

[0414] The formulations of the present invention were rated higher than the comparative formulations, and this was confirmed using a two-sided test with 95% confidence. The C10 branched alcohol ether sulfate with an average of 4 EO increased the effect of the fragrance on the washed clothes.

Claims

1. A liquid laundry composition comprising a C8 to C11 branched alcohol ethoxysulfate surfactant and an aroma, said aroma comprising at least one component selected from methyl nonyl acetaldehyde, tricyclodecenyl acetate (tricyclodecene acetate), hexyl salicylate, octahydrotetramethyl acetophenone (OTNE), dihydro myrcenol, and mixtures of these components.

2. The composition according to claim 1, which comprises a C12-C15 alkyl ether sulfate.

3. The composition according to claim 1 or 2, which comprises 0.1 to 3% by weight of the aroma.

4. The composition according to any one of the preceding claims, wherein the aroma comprises at least one of 1 to 50% by weight of the aroma of OTNE, dihydro myrcenol, tricyclodecenyl acetate, and mixtures thereof.

5. The composition according to any one of the preceding claims, which comprises a mixture in which the aroma comprises at least (2-tert-butylcyclohexyl) acetate, dihydro myrcenol, and a straight-chain or branched C8 to C12 aliphatic aldehyde.

6. The composition according to any one of the preceding claims, wherein the weight ratio of total nonionic surfactant / total anionic surfactant is less than 0.2, preferably less than 0.05, and most preferably from 0.005 to 0.

02.

7. The composition according to any one of the preceding claims, wherein the C8 to C11 branched alcohol ethoxysulfate surfactant has the following structure: wherein p and m are greater than 1, and n is from 3.5 to 4.5, more preferably m is 4, and p is 2, or m = p + 2.

8. The composition according to claim 9, wherein m is 4 and p is 2, or m = p + 2.

Citation Information

Patent Citations

  • Novel lipolytic enzymes and their use in detergent compositions

    EP0218272A1

  • Recombinant DNA, bacterium of the genus pseudomonas containing it, and process for preparing lipase by using it

    EP0331376A2

  • Method of preparing alkoxylation catalysts and their use in alkoxylation processes

    EP1747183A2

  • Laundry washing machine with detergent drawer comprising a control panel

    EP3071742A1

  • PROCEDURE FOR PREPARING AN ALPHA-AMILLASE-CONTAINING ENZYME PRODUCT.

    GB1296839A