Water-based liquid laundry formulations

The inclusion of a protective polymer with specific compositions stabilizes cellulase in liquid laundry formulations, addressing enzyme instability and maintaining fabric condition during storage at elevated temperatures.

JP7828302B2Active Publication Date: 2026-03-11DOW GLOBAL TECHNOLOGIES LLC +1
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-05-27
Publication Date
2026-03-11

AI Technical Summary

Technical Problem

Aqueous liquid laundry formulations face enzyme instability issues due to chemical instability, microbial attack, electrolytes, charged surfactants, temperature, and pH fluctuations, leading to significant loss of enzyme activity during storage, especially at extreme temperatures, which limits their use in the liquid detergent industry.

Method used

Incorporating a protective polymer comprising 25 to 65% of a compound of formula I and 35 to 75% of structural units of formula II, along with cellulase, in the liquid laundry formulation to enhance enzyme stability during extended storage at elevated temperatures.

Benefits of technology

The formulation exhibits enhanced anti-redeposition performance on cotton-containing fabrics after storage at temperatures ≥ 40°C, maintaining enzyme activity and restoring fabric condition like-new.

✦ Generated by Eureka AI based on patent content.

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Abstract

An aqueous liquid laundry formulation is provided comprising a liquid carrier, a cellulase, and a protective polymer, wherein the protective polymer comprises 25 to 65 weight percent of a compound of formula I(I) based on the weight of the protective polymer. [Formula 1] JPEG2023529085000014.jpg32128 (in the formula, each R 1 are independently selected from hydrogen and —CH3), and 35 to 75 wt. % of a structural unit of formula II(II) [Case 2] JPEG2023529085000015.jpg32128 (in the formula, each R 2 independently, -C 2-3 alkyl groups, and each R 3 are independently selected from hydrogen and methyl groups. Also provided is a method of restoring soiled cotton-containing fabrics to a like-new condition using an aqueous liquid laundry formulation.
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Description

[Technical Field]

[0001] The present invention relates to aqueous liquid laundry formulations. In particular, the present invention relates to aqueous liquid laundry formulations comprising a liquid carrier, a cellulase, and a protective polymer, the protective polymer comprising 25 to 65% by weight of a compound of formula I, based on the weight of the protective polymer. [ka] (Each R in the formula 1 are independently selected from hydrogen and a —CH group) and 35 to 75% by weight of a structural unit of formula II, based on the weight of the protected polymer. [ka] (In the formula, each R 2 independently, -C 2-3 alkyl groups, and each R 3 are independently selected from hydrogen and a methyl group.

[0002] Enzymes (e.g., cellulases) are increasingly considered desirable for inclusion in cleaning formulations. However, these cleaning formulations have historically suffered from problems with loss of enzyme activity due to, for example, chemical instability. Loss of enzyme activity is more pronounced in liquid and gel compositions. Enzymes can be destabilized in these formulations by opening the enzyme's three-dimensional structure or by enzyme degradation. Common destabilizing agents include polar solvents such as water or other solvents, microbial attack, electrolytes, charged surfactants, temperature, and excessive pH. This instability becomes even more problematic during storage. The loss of enzyme activity during storage has further limited the use of certain enzymes in the liquid detergent industry. It is not uncommon for certain products to be stored in warehouses in various climates around the world, where they may be exposed to temperatures ranging from below freezing to above 40°C for extended periods of time. When stored under such extreme temperatures for several weeks, many liquid enzyme compositions lose 20 to 100 percent of their enzyme activity due to enzyme instability.

[0003] To compensate for the loss of enzyme activity during storage, formulators may resort to overusing enzymes in their formulations. Enzymes are relatively expensive formulation ingredients. Therefore, formulators have sought to use enzyme stabilizers in liquid compositions to inhibit enzyme destabilization reactions.

[0004] One approach to stabilizing enzyme-containing formulations is described by Lenoir in U.S. Patent No. 8,110,539. Lenoir discloses a method for stabilizing a liquid enzyme-containing liquid formulation by adding at least one boron compound and at least one alpha-hydroxy-monocarboxylic acid or salt of an alpha-hydroxy-monocarboxylic acid capable of forming an enzyme-stabilizing compound.

[0005] Nevertheless, there remains a continuing need for aqueous liquid laundry formulations that exhibit enzyme stability upon extended storage at elevated temperatures.

[0006] The present invention provides an aqueous liquid laundry formulation comprising a liquid carrier, a cellulase, and a protective polymer, wherein the protective polymer comprises 25 to 65 wt. % of a compound of formula I, where each R 1 are independently selected from hydrogen and a —CH group) and 35 to 75 weight percent, based on the weight of the protected polymer, of structural units of formula II, 2 independently, -C 2-3 alkyl groups, and each R 3 are independently selected from hydrogen and a methyl group.

[0007] The present invention provides a method for restoring soiled cotton-containing fabrics to a like-new condition, comprising providing soiled cotton-containing fabrics, providing an aqueous liquid laundry formulation of the present invention, providing wash water, providing rinse water, contacting the soiled cotton-containing fabrics with the aqueous liquid laundry formulation and the wash water to provide a like-new cotton-containing fabric, and contacting the like-new cotton-containing fabrics with rinse water to rinse off the aqueous liquid laundry formulation. DETAILED DESCRIPTION OF THE INVENTION

[0008] It has been surprisingly found that aqueous liquid laundry formulations of the present invention containing a protective polymer and cellulase exhibit enhanced anti-redeposition performance on cotton-containing fabrics after extended storage (i.e., 7 weeks) at temperatures ≥ 40°C (preferably 40°C).

[0009] Unless otherwise indicated, ratios, percentages, parts, etc. are by weight. Weight percentages (or wt %) in a composition are percentages of dry weight, i.e., excluding any water that may be present in the composition.

[0010] As used herein, unless otherwise indicated, "weight average molecular weight" and "M W The terms "weight average molecular weight" are used interchangeably and refer to weight average molecular weight measured in the conventional manner using gel permeation chromatography (GPC) and conventional standards such as polystyrene standards. GPC techniques are discussed in detail in Modern Size Exclusion Liquid Chromatography: Practice of Gel Permeation and Gel Filtration Chromatography, Second Edition, Striegel et al., John Wiley & Sons, 2009. Weight average molecular weights are reported herein in units of Daltons.

[0011] As used in this specification and the appended claims, the term "structural unit" refers to the remnant of the indicated monomer; thus, the structural unit of (meth)acrylic acid is shown as follows: [ka] where the dotted lines represent points of attachment to the polymer backbone and R 1 is a hydrogen in the structural unit of acrylic acid and a -CH3 group in the structural unit of methacrylic acid.

[0012] Preferably, the liquid laundry formulation of the present invention comprises a liquid carrier (preferably 25 to 99.949 wt % (more preferably 30 to 99.89 wt %; even more preferably 35 to 99.7 wt %; most preferably 40 to 60 wt %) of the liquid carrier, based on the weight of the aqueous liquid laundry formulation), cellulase (preferably 0.001 to 2 wt % (more preferably 0.01 to 1 wt %; even more preferably 0.05 to 0.5 wt %; most preferably 0.075 to 0.2 wt %) of cellulase, based on the weight of the aqueous liquid laundry formulation), and a protective polymer (preferably 0.05 to 5 wt % (more preferably 0.1 to 3 wt %; even more preferably 0.25 to 2.0 wt %; most preferably 0.4 to 1 wt %) of the protective polymer, based on the weight of the aqueous liquid laundry formulation), wherein the protective polymer is 25 to 65 wt % (preferably 30 to 60 wt %; more preferably 35 to 55 wt %; most preferably 40 to 44 wt %) of a compound of formula I, based on the weight of the protective polymer. [ka] (In the formula, each R 1 are independently selected from hydrogen and a —CH group), and 35 to 75 wt % (preferably 40 to 70 wt %; more preferably 45 to 65 wt %; most preferably 56 to 60 wt %) of structural units of formula II, based on the weight of the protected polymer. [ka] (In the formula, each R 2 independently, -C 2-3 alkyl groups (preferably -C alkyl groups), and each R 3 are independently selected from hydrogen and methyl groups (preferably hydrogen).

[0013] Preferably, the aqueous liquid laundry formulation of the present invention comprises a liquid carrier. More preferably, the aqueous liquid laundry formulation of the present invention comprises 25 to 99.949 wt. % (preferably 30 to 99.89 wt. %; more preferably 35 to 99.7 wt. %; most preferably 40 to 60 wt. %) of the liquid carrier, based on the weight of the aqueous liquid laundry formulation. Even more preferably, the aqueous liquid laundry formulation of the present invention comprises 25 to 99.949 wt. % (preferably 30 to 99.89 wt. %; more preferably 35 to 99.7 wt. %; most preferably 40 to 60 wt. %) of the liquid carrier, based on the weight of the aqueous liquid laundry formulation, wherein the liquid carrier comprises water. Most preferably, the aqueous liquid laundry formulation of the present invention comprises 25 to 99.949 wt. % (preferably 30 to 99.89 wt. %; more preferably 35 to 99.7 wt. %; most preferably 40 to 60 wt. %) of the liquid carrier, based on the weight of the aqueous liquid laundry formulation, wherein the liquid carrier is water.

[0014] Preferably, the liquid carrier is optionally C 1-3 Alkanolamines (e.g., monoethanolamine), C 1-3 Alkanols (e.g., ethanol) and C 1-3 More preferably, the liquid carrier optionally comprises 0 to 20 wt. % (preferably 1 to 17.5 wt. %; more preferably 2.5 to 15 wt. %; most preferably 5 to 12 wt. %) of a water-miscible liquid, based on the weight of the liquid carrier, wherein the water-miscible liquid is selected from the group consisting of C 1-3 Alkanolamines, C 1-3 Alkanol, C 1-3 Most preferably, the liquid carrier comprises 0 to 20 wt. % (preferably 1 to 17.5 wt. %; more preferably 2.5 to 15 wt. %; most preferably 5 to 12 wt. %) of a water-miscible liquid, based on the weight of the liquid carrier, where the water-miscible liquid includes ethanol, monoethanolamine, and propylene glycol.

[0015] Preferably, the aqueous liquid laundry formulation of the present invention contains cellulase. More preferably, the aqueous liquid laundry formulation of the present invention contains 0.001 to 2 wt. % (preferably 0.01 to 1 wt. %; more preferably 0.05 to 0.5 wt. %; most preferably 0.075 to 0.2 wt. %) of cellulase based on the weight of the aqueous liquid laundry formulation. Most preferably, the aqueous liquid laundry formulation of the present invention contains 0.001 to 2 wt. % (preferably 0.01 to 1 wt. %; more preferably 0.05 to 0.5 wt. %; most preferably 0.075 to 0.2 wt. %) of cellulase based on the weight of the aqueous liquid laundry formulation, where the cellulase is derived from bacteria or fungi (preferably, the cellulase may be a chemically or genetically modified mutant). Suitable cellulases may include cellulases derived from the genera Bacillus, Pseudomonas, Fusarium, Humicola, Thielavia, Acremonium, and Myceliophthora. Preferred cellulases may include those derived from Humicola insolens, Myceliophthora thermophila, and Fusarium oxysporum. Commercially available cellulases include Carezyme™, Celluzyme™, Celluclean™, Celluclast™, Endolase™, Renozyme™, and Whitezyme™ (available from Novozymes A / S); Clazinase™, Puradax, Puradax HA, and Puradax EG (available from Genencor), and KAC-500(B)™ (available from Kao Corporation).

[0016] Preferably, the aqueous liquid laundry formulations of the present invention comprise a protective polymer. More preferably, the aqueous liquid laundry formulations of the present invention comprise 0.05 to 5 wt. % (preferably 0.1 to 3 wt. %; more preferably 0.25 to 2.0 wt. %; most preferably 0.4 to 1 wt. %) of a protective polymer, based on the weight of the aqueous liquid laundry formulation. Most preferably, the aqueous liquid laundry formulations of the present invention comprise 0.05 to 5 wt. % (preferably 0.1 to 3 wt. %; more preferably 0.25 to 2.0 wt. %; most preferably 0.4 to 1 wt. %) of a protective polymer, based on the weight of the aqueous liquid laundry formulation, wherein the protective polymer comprises 25 to 65 wt. % (preferably 30 to 60 wt. %; more preferably 35 to 55 wt. %; most preferably 40 to 44 wt. %) of a protective polymer of formula I (wherein each R 1 are independently selected from hydrogen and —CH groups) structural units (preferably, R is present in 20 to 60 mole % of the structural units of formula I in the protected polymer). 1 is hydrogen, and more preferably, 30 to 50 mole % of the structural units of formula I in the protected polymer have R 1 is hydrogen, and even more preferably, 35 to 45 mole % of the structural units of formula I in the protected polymer have R 1 is hydrogen, and most preferably, 37.5 to 42.5 mole percent of the structural units of formula I in the protected polymer have R 1 is hydrogen), and 35 to 75 weight percent of a compound of formula II, 2 independently, -C 2-3 alkyl groups (preferably -C alkyl groups), and each R 3 are independently selected from hydrogen and methyl groups (preferably hydrogen).

[0017] Preferably, the protected polymer used in the aqueous liquid laundry formulations of the present invention comprises from 25 to 65% (preferably from 30 to 60%; more preferably from 35 to 55%; most preferably from 40 to 44% by weight) of a compound of formula I (wherein each R 1are independently selected from hydrogen and -CH groups. More preferably, the protected polymer used in the aqueous liquid laundry formulations of the present invention comprises 25 to 65 wt. % (preferably 30 to 60 wt. %; more preferably 35 to 55 wt. %; most preferably 40 to 44 wt. %) of structural units of formula I, based on the weight of the protected polymer, wherein 20 to 60 mol. % (preferably 30 to 50 mol. %; more preferably 35 to 45 mol. %; most preferably 37.5 to 42.5 mol. %) of the structural units of formula I in the protected polymer comprise R 1 is hydrogen.

[0018] Preferably, the protected polymer used in the aqueous liquid laundry formulations of the present invention comprises from 35 to 75 wt. % (preferably from 40 to 70 wt. %; more preferably from 45 to 65 wt. %; most preferably from 56 to 60 wt. %) of a compound of formula II (wherein each R 2 independently, -C 2-3 alkyl groups, and each R 3 are independently selected from hydrogen and methyl groups. More preferably, the protected polymer used in the aqueous liquid laundry formulations of the present invention comprises from 35 to 75 wt. % (preferably, 40 to 70 wt. %; more preferably, 45 to 65 wt. %; most preferably, 56 to 60 wt. %) of structural units of formula II, based on the weight of the protected polymer, wherein each R 2 independently, C 2-3 alkyl group, and 75 to 100 mol % (preferably 90 to 100 mol %; more preferably 98 to 100 mol %; most preferably 100 mol %) of the structural units of formula II in the protected polymer are selected from R 2 is an ethyl group, where each R 3 are independently selected from hydrogen and a methyl group, and R is present in 75 to 100 mol % (preferably 90 to 100 mol %; more preferably 98 to 100 mol %; most preferably 100 mol %) of the structural units of formula II in the protected polymer. 3is hydrogen. Most preferably, the protected polymer used in the aqueous liquid laundry formulations of the present invention comprises from 35 to 75 wt. % (preferably 40 to 70 wt. %; more preferably 45 to 65 wt. %; most preferably 56 to 60 wt. %) of a group of formula II (wherein R 2 is an ethyl group, and each R 3 is hydrogen).

[0019] Preferably, the protective polymers used in the aqueous liquid laundry formulations of the present invention have a weight average molecular weight M of 1,200 to 100,000 Daltons. w More preferably, the protective polymer used in the aqueous liquid laundry formulations of the present invention has a weight average molecular weight M of 5,000 to 80,000 Daltons. w Even more preferably, the protective polymer used in the aqueous liquid laundry formulations of the present invention has a weight average molecular weight M of 10,000 to 60,000 Daltons. w Most preferably, the protective polymers used in the aqueous liquid laundry formulations of the present invention have a weight average molecular weight M of 25,000 to 50,000 Daltons. w It has.

[0020] Preferably, the protected polymer used in the aqueous liquid laundry formulations of the present invention comprises ≦0.3 wt.% (more preferably ≦0.1 wt.%; even more preferably ≦0.05 wt.%; still even more preferably ≦0.03 wt.%; most preferably <detection limit) structural units of a multi-ethylenically unsaturated crosslinking monomer, based on the weight of the protected polymer.

[0021] Preferably, the protected polymer used in the aqueous liquid laundry formulations of the present invention comprises ≦1 wt.% (preferably ≦0.5 wt.%; more preferably ≦0.001 wt.%; even more preferably ≦0.0001 wt.%; most preferably <detection limit) of sulfonated monomer structural units, based on the weight of the protected polymer. More preferably, the protected polymer used in the aqueous liquid laundry formulations of the present invention comprises ≦1 wt. % (preferably ≦0.5 wt. %; more preferably ≦0.001 wt. %; even more preferably ≦0.0001 wt. %; most preferably <detection limit), based on the weight of the protected polymer, of structural units of a sulfonated monomer selected from the group consisting of 2-acrylamido-2-methylpropanesulfonic acid (AMPS), 2-methacrylamido-2-methylpropanesulfonic acid, 4-styrenesulfonic acid, vinylsulfonic acid, 3-allyloxysulfonic acid, 2-hydroxy-1-propanesulfonic acid (HAPS), 2-sulfoethyl(meth)acrylic acid, 2-sulfopropyl(meth)acrylic acid, 3-sulfopropyl(meth)acrylic acid, 4-sulfobutyl(meth)acrylic acid, and salts thereof. Most preferably, the protected polymer used in the aqueous liquid laundry formulations of the present invention comprises ≦1 wt. % (preferably ≦0.5 wt. %; more preferably ≦0.001 wt. %; even more preferably ≦0.0001 wt. %; most preferably <detection limit) structural units of 2-acrylamido-2-methylpropanesulfonic acid (AMPS) monomer, based on the weight of the protected polymer.

[0022] Methods for making the protective polymers used in the aqueous liquid laundry formulations of the present invention are known in the art.

[0023] Preferably, the aqueous liquid laundry formulations of the present invention contain <1 wt.% (preferably <0.5 wt.%; more preferably <0.2 wt.%; even more preferably <0.1 wt.%; still even more preferably <0.01 wt.%; most preferably <detection limit) vinyl alcohol polymer (PVA), based on the dry weight of the aqueous liquid laundry formulation.

[0024] Preferably, the aqueous liquid laundry formulations of the present invention contain <0.1 wt.% (preferably <0.05 wt.%; more preferably <0.02 wt.%; even more preferably <0.01 wt.%; still even more preferably <0.001 wt.%; most preferably <the limit of detection) of low molecular weight carboxylic acids selected from the group consisting of formates, acetates, propionates, and mixtures thereof, based on the dry weight of the aqueous liquid laundry formulation.

[0025] Preferably, the aqueous liquid laundry formulations of the present invention contain <0.1 wt.% (preferably <0.05 wt.%; more preferably <0.02 wt.%; even more preferably <0.01 wt.%; still even more preferably <0.001 wt.%; most preferably <limit of detection) of boron-containing compounds, based on the dry weight of the aqueous liquid laundry formulation.

[0026] Preferably, the aqueous liquid laundry formulations of the present invention contain <0.1 wt. % (preferably <0.05 wt. %; more preferably <0.02 wt. %; even more preferably <0.01 wt. %; still even more preferably <0.001 wt. %; most preferably < detection limit) of alpha-hydroxy-monocarboxylic acid or salt of alpha-hydroxy-monocarboxylic acid, based on the dry weight of the aqueous liquid laundry formulation.

[0027] Preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise an additional ingredient selected from the group consisting of at least one detersive surfactant, structurant, hydrotrope, perfume, foam control agent (e.g., fatty acid, polydimethylsiloxane), builder, and fabric softener.

[0028] Preferably, the aqueous liquid laundry formulation of the present invention further comprises a cleaning surfactant. More preferably, the aqueous liquid laundry formulation of the present invention comprises 2 to 60 wt. % (preferably 5 to 50 wt. %; even more preferably 7.5 to 40 wt. %; even more preferably 10 to 30 wt. %; most preferably 15 to 25 wt. %) of a cleaning surfactant based on the weight of the aqueous liquid laundry formulation. Even more preferably, the aqueous liquid laundry formulation of the present invention comprises 2 to 60 wt. % (more preferably 5 to 50 wt. %; even more preferably 7.5 to 40 wt. %; even more preferably 10 to 30 wt. %; most preferably 15 to 25 wt. %) of a cleaning surfactant based on the weight of the aqueous liquid laundry formulation, the cleaning surfactant being selected from the group consisting of anionic surfactants, nonionic surfactants, cationic surfactants, amphoteric surfactants, and mixtures thereof. Even more preferably, the aqueous liquid laundry formulation of the present invention comprises 2 to 60% by weight (more preferably 5 to 50%; even more preferably 7.5 to 40%; even more preferably 10 to 30%; most preferably 15 to 25% by weight) of a cleaning surfactant, based on the weight of the aqueous liquid laundry formulation, wherein the cleaning surfactant is selected from the group consisting of a mixture comprising an anionic surfactant and a nonionic surfactant. Most preferably, the aqueous liquid laundry formulation of the present invention comprises 2 to 60% by weight (more preferably 5 to 50%; even more preferably 7.5 to 40%; even more preferably 10 to 30%; most preferably 15 to 25% by weight) of a cleaning surfactant, based on the weight of the aqueous liquid laundry formulation, wherein the cleaning surfactant comprises a mixture of linear alkylbenzene sulfonate, sodium lauryl ethoxy sulfate, and nonionic alcohol ethoxylate.

[0029] Anionic surfactants include alkyl sulfates, alkylbenzene sulfates, alkylbenzene sulfonic acids, alkylbenzene sulfonates, alkyl polyethoxy sulfates, alkoxylated alcohols, paraffin sulfonic acids, paraffin sulfonates, olefin sulfonic acids, olefin sulfonates, alpha-sulfocarboxylates, esters of alpha-sulfocarboxylates, alkyl glyceryl ether sulfonic acids, alkyl glyceryl ether sulfonates, sulfates of fatty acids, sulfonates of fatty acids, sulfonates of fatty acid esters, alkyl phenols, alkylphenol polyethoxy ether sulfates, 2-acryloxy-alkane-1-sulfonic acids, 2-acryloxy-alkane-1-sulfonates, beta-alkyloxyalkane sulfonic acids, beta-alkyloxyalkane sulfonates, amine oxides, and mixtures thereof. Preferred anionic surfactants include C 8-20 Alkylbenzene sulfate, C 8-20 Alkylbenzene sulfonic acid, C 8-20 Alkylbenzene sulfonates, paraffin sulfonic acids, paraffin sulfonates, alpha-olefin sulfonic acids, alpha-olefin sulfonates, alkoxylated alcohols, C 8-20 Alkylphenols, amine oxides, sulfonates of fatty acids, sulfonates of fatty acid esters, C 8-10 alkyl polyethoxy sulfates, and mixtures thereof. More preferred anionic surfactants include C 12-16 Alkylbenzene sulfonic acid, C 12-16 Alkylbenzene sulfonate, C 12-18 Paraffin sulfonic acid, C 12-18 Paraffin sulfonate, C 12-16 Alkyl polyethoxy sulfates, and mixtures thereof.

[0030] Nonionic surfactants include alkoxylates, polyglycol ethers, fatty alcohol polyglycol ethers, alkylphenol polyglycol ethers, end-capped polyglycol ethers, mixed ethers, hydroxy mixed ethers, fatty acid polyglycol esters, and mixtures thereof. Preferred nonionic surfactants include alkoxylates. More preferred nonionic surfactants include ethoxylated and propoxylated alcohols. Most preferred nonionic surfactants include ethoxylated and propoxylated alcohols derived from bio-renewable seed oil alcohols.

[0031] The cationic surfactant includes a quaternary surfactant compound.Preferred cationic surfactants include a quaternary surfactant compound having at least one of an ammonium group, a sulfonium group, a phosphonium group, an iodonium group, and an arsonium group.More preferred cationic surfactants include at least one of dialkyldimethylammonium chloride and alkyldimethylbenzylammonium chloride.Even more preferred cationic surfactants include C 16-18 Dialkyldimethylammonium chloride, C 8-18 The cationic surfactants include at least one of alkyl dimethyl benzyl ammonium chloride, ditallow dimethyl ammonium chloride, and ditallow dimethyl ammonium chloride. The most preferred cationic surfactant is ditallow dimethyl ammonium chloride.

[0032] Examples of amphoteric surfactants include betaine, amine oxide, alkylamidoalkylamine, alkyl-substituted amine oxide, acylated amino acid, derivatives of aliphatic quaternary ammonium compounds, and mixtures thereof. Preferred amphoteric surfactants include derivatives of aliphatic quaternary ammonium compounds. More preferred amphoteric surfactants include derivatives of aliphatic quaternary ammonium compounds having a long-chain group with 8 to 18 carbon atoms. Even more preferred amphoteric surfactants include C 12-14 The most preferred amphoteric surfactants include at least one of alkyl dimethylamine oxide, 3-(N,N-dimethyl-N-hexadecyl-ammonio)propane-1-sulfonate, and 3-(N,N-dimethyl-N-hexadecylammonio)-2-hydroxypropane-1-sulfonate. 12-14 At least one of alkyl dimethyl amine oxides may be mentioned.

[0033] Preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise a structuring agent. More preferably, the aqueous liquid laundry formulations of the present invention further comprise 0 to 2 wt. % (preferably 0.05 to 0.8 wt. %; more preferably 0.1 to 0.4 wt. %) of a structuring agent, based on the weight of the aqueous liquid laundry formulation. Most preferably, the aqueous liquid laundry formulations of the present invention further comprise 0 to 2 wt. % (preferably 0.05 to 0.8 wt. %; more preferably 0.1 to 0.4 wt. %) of a structuring agent, based on the weight of the aqueous liquid laundry formulation, the structuring agent being a non-polymeric crystalline hydroxy-functional material capable of forming a thread-like structured system throughout the liquid laundry detergent formulation when crystallized in situ. The structuring agent is useful for providing sufficient yield stress or low shear viscosity to stabilize the aqueous liquid laundry formulation.

[0034] Preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise a hydrotrope. More preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise 0 to 10 wt. % (preferably 0.1 to 7.5 wt. %; more preferably 0.2 to 5 wt. %; most preferably 0.5 to 2.5 wt. %) of a hydrotrope, based on the weight of the aqueous liquid laundry formulation. More preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise 0 to 10 wt. % (preferably 0.1 to 7.5 wt. %; more preferably 0.2 to 5 wt. %; most preferably 0.5 to 2.5 wt. %) of a hydrotrope, based on the weight of the aqueous liquid laundry formulation, the hydrotrope being selected from the group consisting of calcium, sodium, potassium, ammonium and alkanolammonium salts of alkyl hydroxides, glycols, urea, monoethanolamine, diethanolamine, triethanolamine, xylene sulfonic acid, toluene sulfonic acid, ethylbenzene sulfonic acid, naphthalene sulfonic acid, and cumene sulfonic acid, salts thereof, and mixtures thereof. Most preferably, the aqueous liquid laundry formulations of the present invention further comprise 0 to 10 wt. % (preferably 0.1 to 7.5 wt. %; more preferably 0.2 to 5 wt. %; most preferably 0.5 to 2.5 wt. %) of a hydrotrope, based on the weight of the aqueous liquid laundry formulation, the hydrotrope being selected from the group consisting of sodium toluene sulfonate, potassium toluene sulfonate, sodium xylene sulfonate, ammonium xylene sulfonate, potassium xylene sulfonate, calcium xylene sulfonate, sodium cumene sulfonate, ammonium cumene sulfonate, and mixtures thereof.

[0035] Preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise a perfume. More preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise 0 to 10% by weight (preferably 0.001 to 5% by weight; more preferably 0.005 to 3% by weight; most preferably 0.01 to 2.5% by weight) of perfume, based on the weight of the aqueous liquid laundry formulation.

[0036] Preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise a builder. More preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise 0 to 50% (preferably 5 to 50%; more preferably 7.5 to 30%) by weight of a builder, based on the weight of the aqueous liquid laundry formulation. Most preferably, the aqueous liquid laundry formulations of the present invention optionally further comprise 0 to 50 wt. % (preferably 5 to 50 wt. %; more preferably 7.5 to 30 wt. %) of a builder, based on the weight of the aqueous liquid laundry formulation, the builder being selected from the group consisting of inorganic builders (e.g. tripolyphosphate, pyrophosphate), alkali metal carbonates, borates, bicarbonates, hydroxides, zeolites, citrates (e.g. trisodium citrate dihydrate), polycarboxylates, monocarboxylates, aminotrismethylenephosphonic acid, salts of aminotrismethylenephosphonic acid, hydroxyethanediphosphonic acid, salts of hydroxyethanediphosphonic acid, diethylenetriaminepenta(methylenephosphonic acid), salts of diethylenetriaminepenta(methylenephosphonic acid), ethylenediaminetetraethylene-phosphonic acid, salts of ethylenediaminetetraethylene-phosphonic acid, oligomeric phosphonates, polymeric phosphonates, and mixtures thereof.

[0037] Preferably, the aqueous liquid laundry formulation of the present invention optionally further comprises a fabric softener. More preferably, the aqueous liquid laundry formulation of the present invention optionally further comprises 0 to 10% by weight (preferably 0.5 to 10% by weight) of a fabric softener based on the weight of the aqueous liquid laundry formulation. Most preferably, the aqueous liquid laundry formulation of the present invention optionally further comprises 0 to 10% by weight (preferably 0.5 to 10% by weight) of a fabric softener based on the weight of the aqueous liquid laundry formulation, the fabric softener being a cationic coacervated polymer (e.g., cationic hydroxyethyl cellulose, polyquaternium polymer, and combinations thereof).

[0038] Preferably, the aqueous liquid laundry formulation of the present invention optionally further comprises a pH adjuster. More preferably, the aqueous liquid laundry formulation of the present invention optionally further comprises a pH adjuster, and the aqueous liquid laundry formulation has a pH of 6 to 12.5 (preferably, 6.5 to 11; more preferably, 7.5 to 10). Bases for adjusting pH include mineral bases such as sodium hydroxide (including soda ash) and potassium hydroxide, sodium bicarbonate, sodium silicate, ammonium hydroxide, and organic bases (e.g., mono-, di-, or tri-ethanolamine, and 2-dimethylamino-2-methyl-1-propanol (DMAMP)). Acids for adjusting pH include mineral acids (e.g., hydrochloric acid, phosphoric acid, and sulfuric acid) and organic acids (e.g., acetic acid).

[0039] Preferably, the method of restoring soiled cotton-containing fabrics of the present invention comprises providing soiled cotton-containing fabrics, providing an aqueous liquid laundry formulation of the present invention, providing wash water, providing rinse water, contacting the soiled cotton-containing fabrics with the aqueous liquid laundry formulation and the wash water to provide a like-new cotton-containing fabric, and contacting the like-new cotton-containing fabrics with rinse water to rinse off the aqueous liquid laundry formulation. More preferably, the method of restoring soiled cotton-containing fabrics of the present invention includes providing a soiled cotton-containing fabric, wherein preferably the soiled cotton-containing fabric is soiled with at least one of oil and clay soil, more preferably the soiled cotton-containing fabric is soiled with sebum oil and clay soil, wherein preferably the soiled cotton-containing fabric is selected from the group consisting of at least one of soiled cotton fabric, soiled polyester-cotton blend fabric, soiled cotton terry fabric, and soiled cotton smooth fabric, more preferably the soiled cotton-containing fabric is at least one of soiled polyester-cotton blend fabric and soiled cotton fabric; providing an aqueous liquid laundry formulation of the present invention; providing wash water (wherein the wash water is preferably at a temperature of 20 to 60°C; more preferably 30 to 50°C; most preferably 35 to 45°C); providing rinse water; contacting soiled cotton-containing fabrics with the aqueous liquid laundry formulation and the wash water to provide like-new cotton-containing fabrics (wherein sufficient aqueous liquid laundry formulation is provided to achieve a cellulase concentration in the wash water of 0.005 to 1.0 ppm by weight (preferably 0.02 to 0.5 ppm by weight)); and contacting the like-new cotton-containing fabrics with rinse water to rinse off the aqueous liquid laundry formulation.

[0040] Preferably, the method of restoring soiled cotton-containing fabrics of the present invention further comprises aging the aqueous liquid laundry formulation at ≥ 40°C (preferably 40-90°C) for at least 7 weeks (preferably 7-12 weeks; more preferably 7-10 weeks; most preferably 7-8 weeks) before contacting the soiled cotton-containing fabrics.

[0041] Some embodiments of the present invention are further illustrated in the following examples.

[0042] The abbreviations for the monomers used in the examples are listed in Table 1.

[0043] [Table 1]

[0044] Synthesis S1: Protective Polymer A monomer emulsion was prepared in a plastic-coated container by adding 28% sodium lauryl sulfate (9.4 g) and deionized water (309.3 g) and mixing with an overhead stirrer. Ethyl acrylate (297.2 g) was then charged to the plastic-coated container, followed by methacrylic acid (138.8 g). Acrylic acid (77.11 g) was then slowly added to the contents of the plastic-coated container to form a smooth, stable monomer emulsion.

[0045] In a separate container, an initiator solution was prepared by adding ammonium persulfate (0.55 g) and deionized water (18.6 g).

[0046] In a separate container, a cofeed catalyst solution was prepared by dissolving ammonium persulfate (0.22 g) in deionized water (47 g).

[0047] A 3-liter round-bottom flask equipped with a mechanical stirrer, heating mantle, thermocouple, condenser, and inlets for monomer, initiator, and nitrogen addition was charged with deionized water (609 g), followed by 28% sodium lauryl sulfate (13.73 g), and then deionized water (15 g). The contents of the flask were then set to stir under a nitrogen flow and heated to 89 °C. When the contents of the flask reached 89 °C, 13.73 g of 28% sodium lauryl sulfate was added, followed by 15 g of deionized water. 41.6 g of monomer emulsion was then added from a plastic-coated container to the contents of the flask, followed by the initiator solution. Once the reaction in the flask began, 1-dodecanethiol (10 g) was added to the stirring monomer emulsion in the plastic-coated container. The contents of the plastic-coated container were then added to the contents of the flask at 8.89 mL / min over 90 minutes, maintaining a temperature of 84–86 °C. Concurrent with the monomer feed from the plastic-coated vessel, the cofeed catalyst solution was started and continued at a constant rate over 95 minutes. A rinse of deionized water (36 g) through the monomer feed line was then added to the flask contents. At the end of the cofeed catalyst solution, the flask contents were held at 85°C for 20 minutes.

[0048] A chase solution of ammonium persulfate (0.22 g) dissolved in 62.6 g of deionized water (62.6 g) was prepared. The contents of the flask were cooled to 75° C. while the chase solution was added at a rate of 3.15 g / min over 20 minutes. The contents of the flask were then held for 15 minutes.

[0049] A chase activator solution was prepared by dissolving 70% tert-butyl hydroperoxide (1.25 g) in deionized water (34.6 g). A catalyst solution was prepared by dissolving isoascorbic acid (1.77 g) in deionized water (42.1 g).

[0050] A promoter solution of 0.15% iron sulfate heptahydrate solution (2.8 g) was added to the contents of the flask. The chase activator solution and catalyst solution were then added to the contents of the flask over 45 minutes while the contents of the flask were cooled to 55°C. The contents of the flask were then held for 5 minutes. Deionized water (50 g) was then added to the contents of the flask and cooling was initiated.

[0051] A pH buffer solution of sodium benzoate (2.4 g) dissolved in deionized water (15 g) was prepared. Once the contents of the flask had cooled to <40° C., the pH buffer solution was added to the contents of the flask over 5 minutes. The contents of the flask were then further cooled to room temperature, and the product emulsion polymer was filtered through a 100 mesh bag.

[0052] The product emulsion polymer had a solids content of 29.1% and a pH of 3.7. Total residual monomer content was <100 ppm by GC.

[0053] Synthetic S2: Protective Polymer A glacial supply of acrylic acid (AA) (356.4 g) was added to a graduated cylinder.

[0054] A syringe was charged with 2-(dimethylamino)ethyl methacrylate (DMAEMA) (39.6 g).

[0055] In a separate container, an initiator solution was prepared by dissolving sodium persulfate (2.42 g) in deionized water (25 g).

[0056] In a separate container, a chain regulator solution was prepared by dissolving 25.64 g of sodium metabisulfite (25.64 g) in 64 g of deionized water (64 g).

[0057] In a separate container, a precharge solution was prepared by dissolving sodium metabisulfite (1.08 g) in deionized water (5 g).

[0058] In a separate container, a promoter solution of 0.15% ferrous sulfate heptahydrate (3.32 g) was prepared.

[0059] Deionized water (346 g) was charged to a 2-liter round-bottom flask equipped with a mechanical stirrer, heating mantle, thermocouple, condenser, and inlets for the addition of monomer, initiator, and chain control agent. The contents of the flask were set to stir and heated to 72°C.

[0060] Once the contents of the flask reached 72°C, the promoter solution was added, followed by a rinse of deionized water (1.4g), followed by the precharge solution. The following was fed to the contents of the flask: Chain control agent solution—1.18 g / min for 75 min; Glacial acrylic acid (AA) feed—3.95 g / min for 90 min; 2-(dimethylamino)ethyl methacrylate (DMAEMA) feed—0.44 g / min for 90 min, and Initiator solution - 0.28 g / min for 95 min was started simultaneously.

[0061] Upon completion of these feeds, deionized water (6 g) was added to the contents of the flask through the glacial acrylic acid (AA) feed line, and deionized water (6 g) was added to the contents of the flask through the DMAEMA syringe, after which the contents of the flask were held at 72°C for 10 minutes.

[0062] A first chase solution was prepared using sodium persulfate (0.99 g) and deionized water (10 g). A second chase solution was prepared using sodium persulfate (1.08 g) and deionized water (10 g).

[0063] At the completion of the 10 minute hold, a first chase solution was added linearly to the contents of the flask over 10 minutes. The contents of the flask were then held at 72°C for 20 minutes. A second chase solution was then added to the contents of the flask over 10 minutes. The contents of the flask were then held at 72°C for 20 minutes.

[0064] At the completion of the final hold, deionized water (51 g) was added to the contents of the flask with cooling. Once the contents of the flask reached <50°C, monoethanolamine (203 g) was added to the addition funnel and slowly added to the contents of the flask over 30 minutes, controlling the exotherm to maintain the contents of the flask below 70°C. The funnel was then rinsed down the contents of the flask with deionized water (8 g). 35% aqueous hydrogen peroxide (1 g) was added to the contents of the flask. Deionized water (60 g) was then added to the contents of the flask. After cooling, the product emulsion polymer was recovered.

[0065] The final polymer had a solids content of 53.7% (measured at 60 minutes in a forced air oven at 150° C.), the pH of the solution was 6.11, and the final molecular weight, as determined by gel permeation chromatography, was 6,848 Da.

[0066] Comparative Examples C1-C5 and Example 1: Aqueous Liquid Laundry Formulation The aqueous liquid laundry formulations used in the anti-redeposition tests in the subsequent examples were prepared using the formulations listed in Table 2 using standard liquid laundry formulation preparation procedures and synthetic S1-S2 protective polymers having the monomer feed compositions shown in Table 3.

[0067] [Table 2]

[0068] [Table 3]

[0069] Prevention of redeposition The anti-redeposition ability of the aqueous liquid laundry formulations of Comparative Examples C1-C5 and Example 1 was evaluated after preparation (time: T0) and after aging in a sealed container at 40°C for 7 weeks (time: T7-40°C) according to the method recommended by the European Soap and Detergent Industry Association. A washing machine (Miele Novotronic W1614) was used under the conditions shown in Table 4.

[0070] [Table 4]

[0071] The fabrics were washed for six consecutive cycles, and the reflectance Y (D65) of each white fabric swatch (cotton, CO; and polyester:cotton blend, PB) was measured using a spectrophotometer (Konica Minolta CM2600d). Each white fabric swatch was folded in the same manner, and the Y value was measured at two points on each side of the fabric, with the average values ​​listed in Table 5.

[0072] [Table 5]

Claims

1. 1. An aqueous liquid laundry formulation comprising: a liquid carrier, cellulase, a protective polymer, and Contains a pH adjuster, The protective polymer comprises 25 to 65 weight percent of a compound of Formula I, based on the weight of the protective polymer. 【Chemistry 1】 (In the formula, each R 1 are independently hydrogen and —CH 3 and 35 to 75% by weight, based on the weight of the protected polymer, of structural units of formula II 【Chemistry 2】 (In the formula, each R 2 are independently -C 2-3 alkyl groups, and each R 3 are independently selected from hydrogen and methyl groups), and having a pH of 7.5 to 12.

5.

2. 1. A method for restoring soiled cotton-containing fabric to like-new condition, comprising: Providing a fabric containing soiled cotton; Providing an aqueous liquid laundry formulation according to claim 1; Providing wash water; providing rinse water; contacting soiled cotton-containing fabrics with said aqueous liquid laundry formulation and wash water to provide like-new cotton-containing fabrics; and contacting the like-new cotton-containing fabric with rinse water to rinse off the aqueous liquid laundry formulation.

3. 3. The method of claim 2, further comprising aging the aqueous liquid laundry formulation at ≥ 40°C for at least 7 weeks before contacting soiled cotton-containing fabrics.

4. 4. The method of claim 3, wherein the aqueous liquid laundry formulation further comprises additional ingredients selected from the group consisting of detersive surfactants, organic solvents, structurants, hydrotropes, fragrances, ethanolamines, foam control agents, builders, and fabric softeners.

5. 5. The method of claim 4, wherein said aqueous liquid laundry formulation comprises a cleaning surfactant selected from the group consisting of anionic surfactants, nonionic surfactants, cationic surfactants, amphoteric surfactants, and mixtures thereof.

6. 6. The method of claim 5, wherein said aqueous liquid laundry formulation comprises an anionic surfactant.

7. The anionic surfactant is C 12-16 Alkylbenzene sulfonic acid, C 12-16 Alkylbenzene sulfonate, C 12-18 Paraffin sulfonic acid, C 12-18 Paraffin sulfonate, C 12-16 7. The method of claim 6, wherein the organic solvent is selected from the group consisting of alkyl polyethoxy sulfates, alkyl polyethoxy sulfates, and mixtures thereof.

8. 8. The method of claim 7, wherein the aqueous liquid laundry formulation comprises a hydrotrope.

9. 9. The method of claim 8, wherein the aqueous liquid laundry formulation includes a builder.

10. 10. The method of claim 9, wherein the aqueous liquid laundry formulation comprises at least an organic solvent and a foam control agent.

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