Dishwashing formulations containing dispersant copolymers

A dispersant polymer with specific structural units enhances spotting and filming performance in phosphate-free dishwashing compositions, addressing film deposits and reducing the need for strong chelating agents, thus improving surface cleanliness and cost-effectiveness.

JP7803882B2Active Publication Date: 2026-01-21ROHM & HAAS CO +1
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Patent Information

Application Number
JP2022573147
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-24
Filing Date
2021-06-18
Publication Date
2026-01-21
Estimated Expiration
2041-06-18

AI Technical Summary

Technical Problem

Current phosphate-free automatic dishwashing compositions struggle with film deposits on glassware and stainless steel and require strong chelating agents or specialized surfactants, leading to increased costs and ineffective spotting and filming performance.

Method used

Incorporation of a dispersant polymer comprising >60 to <90 wt.% of structural units of formula I and >10 to <40 wt.% of structural units of formula II, along with a builder and nonionic surfactant, to enhance spotting and filming performance on various surfaces.

Benefits of technology

The dispersant polymer provides improved spotting and filming performance on surfaces, including plastics, compared to conventional polymers, while maintaining phosphate-free formulations.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is an automatic dishwashing composition comprising a builder, a nonionic surfactant, and a dispersant polymer comprising: (a) >60 to <90 wt. % structural units of Formula I, based on the weight of the dispersant polymer, where each R is independently selected from hydrogen and a —CH group; and (b) >10 to <40 wt. % structural units of Formula II, based on the weight of the dispersant polymer, where each R is independently selected from the group consisting of a C hydroxyalkyl group and a C alkoxy group, and each R is independently selected from hydrogen and a methyl group. [Formula 1] JPEG2023532408000022.jpg32128 [C2] JPEG2023532408000023.jpg32128
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Description

[Technical Field]

[0001] The present invention relates to dispersant copolymers for use in automatic dishwashing formulations. Specifically, the present invention relates to automatic dishwashing compositions incorporating dispersant polymers that have excellent multi-surface spotting and filming performance.

[0002] Automatic dishwashing compositions are generally recognized as a category of detergent compositions distinct from those used for fabric cleaning or water treatment, and are expected by users to result in a spot- and film-free appearance on washed items after the wash cycle is complete.

[0003] Phosphate-free automatic dishwashing compositions are increasingly desirable. Phosphate-free automatic dishwashing compositions typically rely on non-phosphate builders, such as citrates, carbonates, silicates, disilicates, bicarbonates, aminocarboxylates, and other salts, to capture calcium and magnesium from hard water, leaving an insoluble, visible deposit upon drying.

[0004] Currently available polymers used in phosphate-free automatic dishwashing compositions to combat the formation of undesirable deposits on glassware include polyacrylic acid polymers and copolymers of acrylic acid with 2-acrylamido-2-methylpropanesulfonic acid (AMPS) and sodium styrene sulfonate (SSS). However, polyacrylic acid polymers are unable to prevent certain film deposits on glassware (e.g., magnesium disilicate and calcium phosphonate scale), which appear as transparent blue to blue / white films on glassware and brown films on stainless steel. While copolymers of acrylic acid and sulfonated monomers are excellent at preventing silicate and phosphonate scale, such copolymers are not particularly effective at preventing carbonate scale. In addition, such polymers tend to have a negative effect on spotting and require the use of strong chelating agents or specialized surfactants, which undesirably increase the overall cost of the dishwashing composition.

[0005] Thus, there remains a need for new dispersant polymers for use in automatic dishwashing formulations. In particular, there remains a need for new dispersant polymers for use in automatic dishwashing formulations that provide suitable spotting and / or filming performance when the dispersant polymers are incorporated into phosphate-free formulations.

[0006] The present invention provides an automatic dishwashing composition comprising a builder, a nonionic surfactant, and (a) >60 to <90 wt. % of structural units of formula I, based on the weight of the dispersant polymer.

[0007] [ka] (In the formula, each R 1 are independently selected from hydrogen and —CH groups), and (b) >10 to <40 wt. % of structural units of formula II, based on the weight of the dispersant polymer.

[0008] [ka] (In the formula, each R 2 independently, C 1-6 Hydroxyalkyl groups and C 1-6 alkoxy groups, and each R 3 are independently selected from hydrogen and methyl groups; and

[0009] The present invention provides an automatic dishwashing composition comprising a builder, a phosphonate, a nonionic surfactant, and (a) >60 to <90 wt. % of structural units of formula I, where each R 1 are independently selected from hydrogen and —CH groups), and (b) >10 to <40 wt. % of structural units of formula II, based on the weight of the dispersant polymer, 2 independently, C 1-6 Hydroxyalkyl groups and C 1-6 alkoxy groups, and each R 3 are independently selected from hydrogen and methyl groups; and

[0010] The present invention provides an automatic dishwashing composition comprising 50 to 85 wt. % of a builder, based on the dry weight of the automatic dishwashing composition; 0.75 to 7 wt. % of a phosphonate, based on the dry weight of the automatic dishwashing composition; 1.5 to 7.5 wt. % of a nonionic surfactant, based on the dry weight of the automatic dishwashing composition; and 2 to 6 wt. % of a dispersant polymer, based on the dry weight of the automatic dishwashing composition, wherein: (a) 75 to 82.5 wt. % of structural units of formula I, where each R 1 are independently selected from hydrogen and a -CH group; R 1 is hydrogen at 98-100 mol % of the structural units of formula I, and (b) 17.5-25 wt % of structural units of formula II, based on the weight of the dispersant polymer, 2 independently, C 1-6 Hydroxyalkyl groups and C1-6 alkoxy groups; R 2 is a hydroxypropyl group in 98-100 mol % of the structural units of formula II, and each R 3 are independently selected from hydrogen and a methyl group; R 3 is hydrogen at 98-100 mol % of the structural units of formula II, The dispersant polymer has a weight average molecular weight M of 1,750 to 17,500 Daltons. W The present invention provides an automatic dishwashing composition having

[0011] The present invention provides a method of cleaning items in an automatic dishwashing machine, the method comprising providing at least one item, providing an automatic dishwashing composition according to the present invention, and applying the automatic dishwashing composition to the at least one item. DETAILED DESCRIPTION OF THE INVENTION

[0012] Surprisingly, it has been found that when the dispersant polymers of the present invention are incorporated into automatic dishwashing compositions, particularly phosphate-free automatic dishwashing compositions, as specifically described herein, the dispersant polymers of the present invention surprisingly provide better spotting and filming performance on a variety of surfaces, including plastics, compared to conventional dispersant polymers.

[0013] Unless otherwise indicated, ratios, percentages, parts, etc. are by weight. Weight percentages (or wt %) in compositions are percentages of dry weight, i.e., excluding any water that may be present in the composition. Percentages of monomer units in polymers are percentages of solid weight, i.e., excluding any water that may be present in the polymer emulsion.

[0014] As used herein, unless otherwise indicated, the terms "weight average molecular weight" and "Mw" are used interchangeably to refer to weight average molecular weight when measured in the conventional manner using gel permeation chromatography (GPC) and conventional standards such as polystyrene standards. The GPC technique is described in detail in "Modem Size Exclusion Chromatography," W.W. Yau, J.J. Kirkland, D.D.Bly; Wiley-Interscience, 1979, and in "A Guide to Materials Characterization and Chemical Analysis," J.P. Sibilia; VCH, 1988, pp. 81-84. Weight average molecular weight is reported herein in units of Daltons.

[0015] As used herein and in the appended claims, the term "phosphate-free" means a composition containing ≦1 wt. % (preferably ≦0.5 wt. %, more preferably ≦0.2 wt. %, even more preferably ≦0.01 wt. %, even more preferably ≦0.001 wt. %, and most preferably below the detection limit) phosphate (measured as elemental phosphorus).

[0016] As used herein and in 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 below.

[0017] [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.

[0018] Preferably, the automatic dishwashing composition of the present invention comprises a builder (preferably 1 to 97 wt. % (more preferably ≧10 wt. %, even more preferably ≧20 wt. %, even more preferably ≧25 wt. %, most preferably ≧50 wt. %, preferably ≦95 wt. %, more preferably ≦90 wt. %, even more preferably ≦85 wt. %, most preferably ≦80 wt. %) of builder, based on the dry weight of the automatic dishwashing composition) (preferably the builder comprises a mixture of at least one carbonate and at least one citrate), and a nonionic surfactant (preferably 1 to 97 wt. % (more preferably ≧10 wt. %, even more preferably ≧20 wt. %, even more preferably ≧25 wt. %, most preferably ≧50 wt. %, preferably ≦95 wt. %, more preferably ≦90 wt. %, even more preferably ≦85 wt. %, most preferably ≦80 wt. %) of builder, based on the dry weight of the automatic dishwashing composition) (preferably the builder comprises a mixture of at least one carbonate and at least one citrate). Preferably, the nonionic surfactant is a fatty alcohol alkoxylate, in an amount of from 0.2 to 15 wt. % (more preferably, from 0.5 to 10 wt. %, and most preferably, from 1.5 to 7.5 wt. %), based on the dry weight of the composition; and preferably, the nonionic surfactant is a fatty alcohol alkoxylate, and a dispersant polymer (preferably, the dispersant polymer is from 0.5 to 15 wt. % (more preferably, from 0.5 to 10 wt. %, even more preferably, from 1 to 8 wt. %, and most preferably, from 2 to 6 wt. %), based on the dry weight of the automatic dishwashing composition, comprising: (a) >60 to <90 wt. % of structural units of formula I, based on the weight of the dispersant polymer.

[0019] [ka] (In the formula, each R 1 are independently selected from hydrogen and —CH groups), and (b) >10 to <40 wt. % of structural units of formula II, based on the weight of the dispersant polymer.

[0020] [ka] (In the formula, each R 2 independently, C 1-6 Hydroxyalkyl groups and C 1-6 Alkoxy group -C 1-4 alkyl groups, and each R 3 are independently selected from hydrogen and methyl groups; and

[0021] Preferably, the automatic dishwashing compositions of the present invention comprise a builder. Preferably, the automatic dishwashing compositions of the present invention comprise a builder, wherein the builder comprises a mixture of at least one carbonate and at least one citrate. More preferably, the automatic dishwashing compositions of the present invention comprise a builder, wherein the builder comprises at least one carbonate, at least one citrate, and a mixture of at least one citrate. Most preferably, the automatic dishwashing compositions of the present invention comprise a builder, wherein the builder comprises a mixture of sodium carbonate and sodium citrate.

[0022] More preferably, the automatic dishwashing compositions of the present invention comprise 1 to 97 wt.% builder, based on the dry weight of the automatic dishwashing composition. Preferably, the automatic dishwashing compositions of the present invention comprise ≥ 1 wt.% (preferably ≥ 10 wt.%, more preferably ≥ 20 wt.%, even more preferably ≥ 25 wt.%, and most preferably ≥ 50 wt.%) builder, based on the dry weight of the automatic dishwashing composition. Preferably, the automatic dishwashing compositions of the present invention comprise ≤ 95 wt.% (preferably ≤ 90 wt.%, more preferably ≤ 85 wt.%, and most preferably ≤ 80 wt.%) builder, based on the dry weight of the automatic dishwashing composition. The weight percentages of carbonate, citrate, and silicate builders are based on the actual weight of the metal ion-containing salt.

[0023] As used herein and in the appended claims, the term "carbonate" refers to alkali metal or ammonium carbonate, bicarbonate, and / or sesquicarbonate. Preferably, the carbonate (if present) used in the automatic dishwashing composition is selected from the group consisting of sodium, potassium, and lithium carbonate (more preferably, sodium or potassium salts, most preferably, sodium salts). Most preferably, the carbonate (if present) used in the automatic dishwashing composition comprises at least one of sodium carbonate and sodium bicarbonate. Preferably, when the builder used in the automatic dishwashing composition of the present invention comprises a carbonate, the automatic dishwashing composition preferably comprises 0 to 97 wt. % (preferably, 10 to 75 wt. %, more preferably, 25 to 60 wt. %, and most preferably, 40 to 50 wt. %) of the carbonate, based on the dry weight of the automatic dishwashing composition.

[0024] As used herein and in the appended claims, the term "citrate" refers to an alkali metal citrate. Preferably, the citrate salt (if present) used in the automatic dishwashing composition is selected from the group consisting of sodium, potassium, and lithium citrate salts (more preferably, the sodium or potassium salts, and most preferably, the sodium salt). More preferably, the citrate salt (if present) used in the automatic dishwashing composition is sodium citrate. Preferably, when the builder used in the automatic dishwashing composition of the present invention includes a citrate salt, the automatic dishwashing composition preferably includes 0 to 97 wt. % (preferably, 5 to 75 wt. %, more preferably, 10 to 60 wt. %, and most preferably, 20 to 40 wt. %) of the citrate salt, based on the dry weight of the automatic dishwashing composition.

[0025] As used herein and in the appended claims, the term "silicate" refers to an alkali metal silicate. Preferably, the silicate (if present) used in the automatic dishwashing composition is selected from the group consisting of sodium, potassium, and lithium silicates (more preferably, the sodium or potassium salts, most preferably, the sodium salts). More preferably, the silicate (if present) used in the automatic dishwashing composition is sodium disilicate. Preferably, the builder used in the automatic dishwashing composition of the present invention includes a silicate. Preferably, when the builder used in the automatic dishwashing composition of the present invention includes a silicate, the automatic dishwashing composition preferably includes 0 to 97 wt. % (preferably 0.1 to 10 wt. %, more preferably 0.5 to 7.5 wt. %, and most preferably 0.75 to 3 wt. %) of the silicate, based on the dry weight of the automatic dishwashing composition.

[0026] Preferably, the automatic dishwashing composition of the present invention comprises 0.2 to 15 wt. % (preferably 0.5 to 10 wt. %, more preferably 1.5 to 7.5 wt. %) of a nonionic surfactant, based on the dry weight of the automatic dishwashing composition. More preferably, the automatic dishwashing composition of the present invention comprises 0.2 to 15 wt. % (preferably 0.5 to 10 wt. %, more preferably 1.5 to 7.5 wt. %) of a nonionic surfactant, based on the dry weight of the automatic dishwashing composition, and the surfactant comprises a fatty alcohol alkoxylate. Most preferably, the automatic dishwashing composition of the present invention comprises 0.2 to 15 wt. % (preferably 0.5 to 10 wt. %, more preferably 1.5 to 7.5 wt. %) of a nonionic surfactant, based on the dry weight of the automatic dishwashing composition, and the surfactant is a fatty alcohol alkoxylate.

[0027] Preferably, the nonionic surfactant used in the automatic dishwashing compositions of the present invention is a compound of the formula selected from the following: ROM) x -(N) y -OH, and ROM) x -(N) y-(P) z -OH (In the formula, M represents a structural unit of ethylene oxide, and N represents C 3-18 Represents the structural unit of 1,2-epoxyalkane, and P is C 6-18 where x is 5 to 40, y is 0 to 20, z is 0 to 3, and R is C 6-22 represents a straight or branched chain alkyl group).

[0028] Preferably, the nonionic surfactant used in the automatic dishwashing compositions of the present invention is a compound of the formula selected from the following: ROM) x -(N) y -OH, and ROM) x -(N) y -O-R' (wherein M and N are structural units derived from alkylene oxides, one of which is ethylene oxide); x is 5 to 40, y is 0 to 20, R is C 6-22 represents a linear or branched alkyl group, and R' is a C 6-22 represents a group derived from the reaction of a linear or branched alkyl halide, an epoxyalkane, or a glycidyl ether.

[0029] Preferably, the nonionic surfactant used in the automatic dishwashing compositions of the present invention has the formula: ROM) x -OH (wherein M represents an ethylene oxide structural unit, x has at least 3 (preferably at least 5, preferably 10 or less, more preferably 8 or less). Preferably, in the formula, R and R' each have at least 8 (more preferably, at least 10) carbon atoms.

[0030] Preferably, the automatic dishwashing composition of the present invention comprises a dispersant polymer. More preferably, the automatic dishwashing composition of the present invention comprises 0.5 to 15 wt. % of a dispersant polymer, based on the dry weight of the automatic dishwashing composition. Even more preferably, the automatic dishwashing composition of the present invention comprises 0.5 to 10 wt. % of a dispersant polymer, based on the dry weight of the automatic dishwashing composition. Even more preferably, the automatic dishwashing composition of the present invention comprises 1 to 8 wt. % of a dispersant polymer, based on the dry weight of the automatic dishwashing composition. Most preferably, the automatic dishwashing composition of the present invention comprises 2 to 6 wt. % of a dispersant polymer, based on the dry weight of the automatic dishwashing composition.

[0031] Preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention contain >60 to <90 wt. % (preferably 70 to 85 wt. %, more preferably 75 to 82.5 wt. %, most preferably 78 to 82 wt. %) of structural units of formula I in the dispersant polymer, based on the weight of the dispersant polymer.

[0032] [ka] (In the formula, each R 1 are independently selected from hydrogen and —CH groups. More preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention comprise >60 to <90 wt. % (preferably 70 to 85 wt. %, more preferably 75 to 82.5 wt. %, and most preferably 78 to 82 wt. %) of structural units of formula I, where R 1 contains 75 to 100 mol % (preferably 90 to 100 mol %, more preferably 98 to 100 mol %, even more preferably ≧99 mol %, most preferably 100 mol %) hydrogen.

[0033] Preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention comprise >10 to <40 wt. % (preferably 15 to 30 wt. %, more preferably 17.5 to 25 wt. %, most preferably 18 to 22 wt. %) of structural units of formula II, based on the weight of the dispersant polymer.

[0034] [ka] (In the formula, each R 2 independently, C 1-6 Hydroxyalkyl groups and C 1-6 Alkoxy groups (preferably C 1-5 Hydroxyalkyl groups and C 1-5 Alkoxy groups, more preferably C 1-4 Hydroxyalkyl groups and C 1-4 Alkoxy groups, even more preferably C 2-4 Hydroxyalkyl groups and C 2-4 Alkoxy groups, even more preferably C 2-4 hydroxyalkyl groups, most preferably hydroxypropyl groups), and each R 3 are independently selected from hydrogen and methyl groups. More preferably, the dispersant polymer used in the automatic dishwashing compositions of the present invention comprises >10 to <40 wt. % (preferably 15 to 30 wt. %, more preferably 17.5 to 25 wt. %, most preferably 18 to 22 wt. %) of structural units of formula II, based on the weight of the dispersant polymer.

[0035] [ka] (In the formula, each R 2 independently, C 2-4 Hydroxyalkyl groups and C 2-4 Alkoxy groups (preferably C 2-4 hydroxyalkyl groups, more preferably hydroxypropyl groups), and each R 3are independently selected from hydrogen and methyl groups. Most preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention contain >10 to <40 wt. % (preferably 15 to 30 wt. %, more preferably 17.5 to 25 wt. %, most preferably 18 to 22 wt. %) of structural units of formula II (wherein R 2 is a hydroxypropyl group in an amount of 75 to 100 mol % (preferably 90 to 100 mol %, more preferably 98 to 100 mol %, most preferably 100 mol %), and R 3 contains 75 to 100 mol % (preferably 90 to 100 mol %, more preferably 98 to 100 mol %, most preferably 100 mol %) hydrogen).

[0036] Preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention have a weight average molecular weight of 1,200 to 25,000 daltons. More preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention have a weight average molecular weight of 1,500 to 20,000 daltons. Even more preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention have a weight average molecular weight of 1,750 to 17,500 daltons. Most preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention have a weight average molecular weight of 1,900 to 14,250 daltons.

[0037] Preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention comprise ≦0.3 wt.% (more preferably ≦0.1 wt.%, even more preferably ≦0.05 wt.%, even more preferably ≦0.03 wt.%, and most preferably ≦0.01 wt.%) structural units of a multi-ethylenically unsaturated crosslinking monomer.

[0038] Preferably, the dispersant polymers used in the automatic dishwashing compositions of the present invention comprise ≦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. More preferably, the dispersant polymer used in the automatic dishwashing compositions 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 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 dispersant polymers used in the automatic dishwashing compositions of the present invention comprise ≦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.

[0039] Methods for making the dispersant copolymers used in the automatic dishwashing compositions of the present invention are well known to those skilled in the art of copolymerization.

[0040] Preferably, the automatic dishwashing composition of the present invention further comprises 0.1 to 15 wt. % (more preferably 0.5 to 10 wt. %, even more preferably 0.75 to 7 wt. %, and most preferably 0.9 to 5 wt. %) of a phosphonate, based on the dry weight of the automatic dishwashing composition. More preferably, the automatic dishwashing composition of the present invention comprises 0.1 to 15 wt. % (more preferably 0.5 to 10 wt. %, even more preferably 0.75 to 7 wt. %, and most preferably 0.9 to 5 wt. %) of a phosphonate, based on the dry weight of the automatic dishwashing composition, and the phosphonate is low molecular weight, having a weight average molecular weight of ≦1,000 Daltons. Even more preferably, the automatic dishwashing composition of the present invention comprises 0.1 to 15 wt. % (more preferably, 0.5 to 10 wt. %, even more preferably, 0.75 to 7 wt. %, and most preferably, 0.9 to 5 wt. %) of a phosphonate, based on the dry weight of the automatic dishwashing composition, the phosphonate comprising at least one of 1-hydroxyethylidene-1,1-diphosphonic acid (HEDP) and a salt of 1-hydroxyethylidene-1,1-diphosphonic acid. Most preferably, the automatic dishwashing composition of the present invention comprises 0.1 to 15 wt. % (more preferably, 0.5 to 10 wt. %, even more preferably, 0.75 to 7 wt. %, and most preferably, 0.9 to 5 wt. %) of a phosphonate, based on the dry weight of the automatic dishwashing composition, the phosphonate being selected from the group consisting of 1-hydroxyethylidene-1,1-diphosphonic acid (HEDP) and salts thereof.

[0041] The automatic dishwashing compositions of the present invention optionally further comprise additives. Preferably, the automatic dishwashing compositions of the present invention further comprise additives selected from the group consisting of an alkaline source, a bleaching agent (e.g., sodium percarbonate, sodium perborate), a bleach activator (e.g., tetraacetylethylenediamine (TAED)), a bleach catalyst (e.g., manganese(II) acetate, cobalt(II) chloride, bis(TACN)) magnesium trioxide diacetate), an enzyme (e.g., protease, amylase, lipase, or cellulase), a foam suppressor, a colorant, a fragrance, an additional builder, an antimicrobial agent, a filler, a deposit control polymer, and mixtures thereof. More preferably, the automatic dishwashing compositions of the present invention further comprise additives selected from the group consisting of bleaching agents, bleach activators, enzymes, fillers, and mixtures thereof. Even more preferably, the automatic dishwashing compositions of the present invention further comprise an additive, the additive comprising a bleaching agent (e.g., sodium percarbonate, sodium perborate), a bleach activator (e.g., tetraacetylethylenediamine (TAED)), and an enzyme (e.g., protease, amylase, lipase, or cellulase). Most preferably, the automatic dishwashing compositions of the present invention further comprise an additive, the additive comprising a bleaching agent, the bleach comprising sodium percarbonate, a bleach activator, the bleach activator comprising tetraacetylethylenediamine (TAED), and an enzyme, the enzyme comprising a protease and an amylase.

[0042] Fillers included in tablets or powders are inert, water-soluble substances, typically sodium or potassium salts (e.g., sodium sulfate, potassium sulfate, sodium chloride, potassium chloride). In tablets and powders, fillers are typically present in amounts ranging from 0% to 75% by weight. Fillers included in gel formulations typically include those mentioned for use in tablets and powders, as well as in water. Fragrances, dyes, suds suppressors, enzymes, and antimicrobial agents usually total no more than 10% by weight, or alternatively no more than 5% by weight, of the automatic dishwashing composition.

[0043] The automatic dishwashing compositions of the present invention optionally further comprise an alkaline source. Suitable alkaline sources include, but are not limited to, alkali metal carbonates and alkali metal hydroxides, such as sodium or potassium carbonate, bicarbonates, sesquicarbonates, sodium, lithium or potassium hydroxide, or mixtures thereof. Sodium hydroxide is preferred. The amount of alkaline source (if present) in the automatic dishwashing compositions of the present invention is at least 1% by weight (preferably at least 20% by weight) and up to 80% by weight (preferably up to 60% by weight), based on the dry weight of the automatic dishwashing composition.

[0044] The automatic dishwashing compositions of the present invention optionally further comprise a bleaching agent (e.g., sodium percarbonate). The amount of bleaching agent (if present) in the automatic dishwashing compositions of the present invention is preferably at a concentration of 1 to 25% by weight (more preferably 5 to 20% by weight), based on the dry weight of the automatic dishwashing composition.

[0045] The automatic dishwashing compositions of the present invention optionally further comprise a bleach activator (e.g., tetraacetylethylenediamine (TAED)). The amount of bleach activator (if present) in the automatic dishwashing compositions of the present invention is preferably at a concentration of 1 to 10 wt. % (more preferably, 2.5 to 7.5 wt. %), based on the dry weight of the automatic dishwashing composition.

[0046] Preferably, the automatic dishwashing compositions of the present invention comprise ≦1 wt. % (preferably ≦0.5 wt. %, more preferably ≦0.2 wt. %, even more preferably ≦0.1 wt. %, even more preferably ≦0.01 wt. %, most preferably <detection limit) phosphate (measured as elemental phosphorus), based on the dry weight of the automatic dishwashing composition. Preferably, the automatic dishwashing compositions of the present invention are phosphate-free.

[0047] Preferably, the automatic dishwashing composition of the present invention comprises ≦1 wt. % (preferably ≦0.5 wt. %, more preferably ≦0.2 wt. %, even more preferably ≦0.1 wt. %, even more preferably ≦0.01 wt. %, and most preferably <detection limit) of a builder selected from the group consisting of nitrilotriacetic acid, ethylenediaminetetraacetic acid, diethylenetriaminepentaacetic acid, glycine-N,N-diacetic acid, methylglycine-N,N-diacetic acid, 2-hydroxyethyliminodiacetic acid, glutamic acid-N,N-diacetic acid, 3-hydroxy-2,2′-iminodisuccinate, S,S-ethylenediaminedisuccinic acid aspartic acid-diacetic acid, N,N′-ethylenediaminedisuccinic acid, iminodisuccinic acid, aspartic acid, aspartic acid-N,N-diacetic acid, beta-alaninediacetic acid, polyaspartic acid, salts thereof, and mixtures thereof, based on the dry weight of the automatic dishwashing composition. Most preferably, the automatic dishwashing compositions of the present invention contain 0% by weight of a builder selected from the group consisting of nitrilotriacetic acid, ethylenediaminetetraacetic acid, diethylenetriaminepentaacetic acid, glycine-N,N-diacetic acid, methylglycine-N,N-diacetic acid, 2-hydroxyethyliminodiacetic acid, glutamic acid-N,N-diacetic acid, 3-hydroxy-2,2'-iminodisuccinate, S,S-ethylenediaminedisuccinic acid aspartic acid-diacetic acid, N,N'-ethylenediaminedisuccinic acid, iminodisuccinic acid, aspartic acid, aspartic acid-N,N-diacetic acid, beta-alaninediacetic acid, polyaspartic acid, salts thereof, and mixtures thereof.

[0048] Preferably, the automatic dishwashing compositions of the present invention have a pH value (at 1% by weight in water) of at least 7 (preferably ≧9, more preferably ≧9.5). Preferably, the automatic dishwashing compositions of the present invention have a pH value (at 1% by weight in water) of 13 or less.

[0049] Preferably, the automatic dishwashing compositions of the present invention can be formulated in any typical form, such as a tablet, powder, loaf, single dose, sachet, paste, liquid, or gel. The automatic dishwashing compositions of the present invention are useful for cleaning items such as dishes and utensils, plates, and the like in automatic dishwashing machines.

[0050] Preferably, the automatic dishwashing compositions of the present invention are suitable for use under typical operating conditions. For example, when used in an automatic dishwashing machine, the typical water temperature during the wash cycle is preferably 20°C to 85°C, preferably 30°C to 70°C. Typical concentrations of the automatic dishwashing compositions, as a percentage of the total liquid in the dishwashing machine, are preferably 0.1 to 1% by weight, preferably 0.2 to 0.7% by weight. By selecting the appropriate product form and addition time, the automatic dishwashing compositions of the present invention can be present in the pre-wash, main wash, penultimate rinse, final rinse, or any combination of these cycles.

[0051] Preferably, the method of cleaning items in an automatic dishwasher of the present invention comprises providing at least one item (e.g., cookware, heat-resistant ware, tableware, cutlery, flatware, and / or glassware; preferably, at least one item comprises a plastic item, more preferably, at least one item comprises a polyethylene item), providing an automatic dishwashing composition of the present invention, and applying the automatic dishwashing composition to the at least one item (preferably, in an automatic dishwasher).

[0052] Preferably, the method of cleaning articles in an automatic dishwasher of the present invention comprises: (i) providing at least one article (e.g., cookware, heat-resistant ware, tableware, cutlery, flatware, and / or glassware; preferably, at least one article comprises a plastic article, more preferably, at least one article comprises a polyethylene article); and (ii) providing an automatic dishwashing composition of the present invention, wherein the provided automatic dishwashing composition comprises: 50 to 85 wt. % of a builder, wherein the builder is selected from the group consisting of carbonates, bicarbonates, citrates, silicates, and mixtures thereof, and wherein the builder comprises a mixture of at least one carbonate and at least one citrate; 0.75 to 7 wt. % of a phosphonate; 1.5 to 7.5 wt. % of a nonionic surfactant; and 2 to 6 wt. % of a dispersant polymer, wherein the dispersant polymer comprises: (a) 75 to 82.5 wt. % of structural units of formula I, where R 1 is hydrogen at 98-100 mol % of the structural units of formula I), and (b) 17.5-25 wt % of structural units of formula II, 2 is a hydroxypropyl group in 98-100 mol % of the structural units of formula II, and R 3 is 98-100 mol % of the structural units of formula II are hydrogen), and the dispersant polymer has a weight average molecular weight M of 1,750-17,500 Daltons. W and (iii) applying the automatic dishwashing composition to at least one item (preferably in an automatic dishwasher), whereby blue scale formation is inhibited.

[0053] Some embodiments of the present invention are described in detail in the following examples.

[0054] The weight average molecular weight, M, reported in the examples W and number average molecular weight, M NThe chromatographic and polydispersity index (PDI) values ​​were measured by gel permeation chromatography (GPC) on an Agilent 1100 Series LC system equipped with an Agilent 1100 Series refractive index analyzer. Samples were dissolved in HPLC-grade THF / FA mixture (100:5 v / v) at a concentration of approximately 9 mg / mL and filtered through a 0.45 μm syringe filter before injection onto a 4.6 x 10 mm Shodex KF guard column, an 8.0 x 300 mm Shodex KF 803 column, an 8.0 x 300 mm Shodex KF 802 column, and an 8.0 x 100 mm Shodex KF-D column. A flow rate of 1 mL / min and a temperature of 40 °C were maintained. The columns were calibrated with narrow molecular weight PS standards (EasiCal PS-2, Polymer Laboratories, Inc.).

[0055] Example S1: Polymer synthesis Dipropylene glycol (747.4 g) was added to a 3-liter round-bottom flask equipped with a mechanical stirrer, temperature controller, heating mantle, thermocouple, condenser, nitrogen source, and an inlet for adding the cofeed. The mechanical stirrer was engaged, a nitrogen sweep was established, and the temperature controller was set to 96 °C. Glacial acetic acid (526 g) was added to a graduated cylinder for addition to the flask. 50% sodium hydroxide solution (8.83 g) was mixed with deionized water (80 g) and sodium persulfate (10.5 g) to form an initiator solution, which was then transferred to a syringe for addition to the flask.

[0056] When the contents of the flask reached 96°C, the addition of glacial acetic acid in a graduated cylinder and the initiator solution to the flask contents was started simultaneously through separate flask inlets. Glacial acetic acid was added at a rate of 4.38 g / min over 120 minutes, and the initiator feed was added at a rate of 0.79 g / min over 125 minutes. Upon completion of the glacial acetic acid and initiator feeds, the glacial acetic acid feed system was thoroughly rinsed with deionized water (4 g). The contents of the flask were held at 96°C for 15 minutes. A chase solution of sodium persulfate (2.6 g) dissolved in deionized water (5 g) was then added to the flask contents over 10 minutes. The contents of the flask were then held for 30 minutes. After the hold, the contents of the flask were cooled, and dipropylene glycol (208.7 g) was added to the flask contents, followed by a deionized water (10 g) rinse. The resulting polymer product was then measured at a solids content of 33.7 wt % and a residual acrylic acid content of 72 ppm by weight. The weight average molecular weight of the polymer product was 7,000 daltons as measured by gel permeation chromatography.

[0057] Example S2: Polymer synthesis Deionized water (333.0 g) was added to a 2-liter round-bottom flask equipped with a mechanical stirrer, temperature controller, heating mantle, thermocouple, condenser, nitrogen source, and an inlet for adding the cofeed. The mechanical stirrer was engaged, a nitrogen sweep was established, and the temperature controller was set to 72 °C. A monomer feed solution of glacial acetic acid (360 g) and hydroxypropyl acrylate (40 g) was added to a graduated cylinder for addition to the flask. Sodium persulfate (1.9 g) was mixed with deionized water (50 g) to form an initiator solution, which was then transferred to a syringe for addition to the flask. A chain regulator solution of sodium metabisulfite (20.6 g) dissolved in deionized water (90 g) was prepared. A chain regulator precharge of sodium metabisulfite (1.45 g) dissolved in deionized water (10 g) was prepared.

[0058] When the contents of the flask reached 72°C, 0.15% iron sulfate heptahydrate solution (3.2 g) was added to the contents of the flask. Immediately thereafter, the chain regulator precharge was added to the contents of the flask and the monomer feed solution, and the chain regulator solution and initiator solution were started simultaneously through separate flask inlets. The monomer feed solution was added at a rate of 4.28 mL / min over 90 minutes. The initiator solution was added at a rate of 0.52 mL / min over 95 minutes. The chain regulator solution was added at a rate of 1.21 mL / min. All feeds were started at 70°C. At the completion of the feeds, deionized water (5 g) was rinsed through the monomer feed line. The contents of the flask were held at 72°C for 20 minutes. A first chase solution of sodium persulfate (0.52 g) dissolved in deionized water (20 g) was then added to the contents of the flask over 10 minutes, and the contents of the flask were then held for 20 minutes. A second chase solution of sodium persulfate (0.52 g) dissolved in deionized water (20 g) was then added to the flask contents over 10 minutes, and the flask contents were then held for 20 minutes. After the final hold, the flask contents were cooled to 35°C and gradually neutralized with 50% sodium hydroxide (152.7 g), which was added to the flask contents over 48 minutes using an addition funnel. An ice bath was used to control the exotherm and maintain the flask contents below 40°C. After neutralization, residual bisulfite was scavenged at 28°C over 5 minutes, and 35% hydrogen peroxide solution (5.46 g) was added to the flask contents. Finally, deionized water (20 g) was rinsed into the flask contents through the addition funnel. The resulting polymer product was then measured at 42.47 wt% solids with a residual acrylic acid content of <25 ppm by weight. The weight-average molecular weight of the polymer product was 9,000 daltons, as measured by gel permeation chromatography.

[0059] Example S3: Polymer synthesis Deionized water (333.0 g) was added to a 2-liter round-bottom flask equipped with a mechanical stirrer, temperature controller, heating mantle, thermocouple, condenser, nitrogen source, and an inlet for adding the cofeed. The mechanical stirrer was engaged, a nitrogen sweep was established, and the temperature controller was set to 72 °C. A monomer feed solution of glacial acetic acid (320 g) and hydroxypropyl acrylate (80 g) was added to a graduated cylinder for addition to the flask. Sodium persulfate (1.9 g) was mixed with deionized water (50 g) to form an initiator solution, which was then transferred to a syringe for addition to the flask. A chain regulator solution of sodium metabisulfite (20.6 g) dissolved in deionized water (90 g) was prepared. A chain regulator precharge of sodium metabisulfite (1.45 g) dissolved in deionized water (10 g) was prepared.

[0060] When the contents of the flask reached 72°C, 0.15% iron sulfate heptahydrate solution (3.2 g) was added to the contents of the flask. Immediately thereafter, the chain regulator precharge was added to the contents of the flask and the monomer feed solution, and the chain regulator solution and initiator solution were started simultaneously through separate flask inlets. The monomer feed solution was added at a rate of 4.26 mL / min over 90 minutes. The initiator solution was added at a rate of 0.52 mL / min over 95 minutes. The chain regulator solution was added at a rate of 1.2 mL / min. All feeds were started at 70°C. At the completion of the feeds, deionized water (5 g) was rinsed through the monomer feed line. The contents of the flask were held at 72°C for 20 minutes. A first chase solution of sodium persulfate (0.52 g) dissolved in deionized water (20 g) was then added to the contents of the flask over 10 minutes, and the contents of the flask were then held for 20 minutes. A second chase solution of sodium persulfate (0.52 g) dissolved in deionized water (20 g) was then added to the flask contents over 10 minutes, and the flask contents were then held for 20 minutes. After the final hold, the flask contents were cooled to 30°C and gradually neutralized with 50% sodium hydroxide (136 g), which was added to the flask contents over 45 minutes using an addition funnel. An ice bath was used to control the exotherm and maintain the flask contents below 40°C. After neutralization, residual bisulfite was scavenged at 28°C over 5 minutes, and 35% hydrogen peroxide solution (4.38 g) was added to the flask contents. Finally, deionized water (20 g) was rinsed into the flask contents through the addition funnel. The resulting polymer product was then measured at 42.87 wt% solids with a residual acrylic acid content of <25 ppm by weight. The weight-average molecular weight of the polymer product was 8,000 daltons, as measured by gel permeation chromatography.

[0061] Example S4: Polymer synthesis Deionized water (342 g) was added to a 3-liter round-bottom flask equipped with a mechanical stirrer, temperature controller, heating mantle, thermocouple, condenser, nitrogen source, and an inlet for adding the cofeed. The mechanical stirrer was engaged, a nitrogen sweep was established, and the temperature controller was set to 75 °C. A monomer mixture of glacial acetic acid (487 g), hydroxypropyl acrylate (324.7 g), and deionized water (20 g) was thoroughly mixed to form the monomer feed solution. Sodium persulfate (7 g) was mixed with deionized water (68 g) to form the initiator solution. Sodium metabisulfite (77.3 g) was dissolved in deionized water (127 g) to form the chain regulator solution. Sodium metabisulfite (5.89 g) was dissolved in deionized water (19.6 g) to form the chain regulator precharge solution. Ferrous sulfate heptahydrate (0.004 g) was diluted in deionized water (0.7 g) to form a promoter solution.

[0062] When the contents of the flask reached 75°C, the chain regulator precharge was added to the contents of the flask, followed by a deionized water rinse (7.8 g). The promoter solution was then added to the contents of the flask, followed by a deionized water rinse (2 g). While the temperature control set point was maintained at 75°C, the monomer feed solution, initiator solution, and chain regulator solution were simultaneously and separately fed to the contents of the flask. The monomer feed solution was added to the contents of the flask at a rate of 4.62 g / min over 180 minutes. The initiator solution was added to the contents of the flask at a rate of 0.3 g / min over 190 minutes. The chain regulator solution was added to the contents of the flask at a rate of 1.28 g / min over 160 minutes. Upon completion of the co-feed, the monomer feed was rinsed into the contents of the flask with deionized water (19.5 g). The initiator solution was rinsed into the contents of the flask with deionized water (7.8 g), and the chain regulator solution was rinsed into the contents of the flask with deionized water (7.8 g). The contents of the flask were then held at 73°C for 10 minutes. Deionized water (25.5 g) was then added to the contents of the flask. The contents of the flask were then allowed to cool. While maintaining the temperature of the flask contents at >55°C, 30% activated aqueous ammonia (90.2 g) and a deionized water rinse (8 g) were added to the contents of the flask. When the temperature of the flask contents had decreased to <50°C, a 35% hydrogen peroxide (12.3 g) solution and a deionized water rinse (8 g) were added to the contents of the flask. When the temperature of the flask contents decreased to 50-55°C, a 70% reactor tracer catalyst solution of 1.7 g of tert-butyl hydroperoxide in 8 g of deionized water and a deionized water rinse of 2 g were added to the flask contents. Then, a tracer activator solution of 1.1 g of sodium formaldehyde sulfoxylate in 8 g of deionized water and a deionized water rinse of 2 g were added to the flask contents. When the temperature of the flask contents decreased to 45°C, 30% activated aqueous ammonia (293.4 g) and a deionized water rinse of 8 g were added to the flask contents. The flask contents were then further diluted with 25.7 g of deionized water. The resulting polymer product was then measured at 50 wt% solids and with a residual acrylic acid content of <25 ppm by weight.The weight average molecular weight of the polymer product was 3,000 daltons as determined by gel permeation chromatography.

[0063] polymer composition The dispersant polymer compositions prepared according to Examples S1-S4 are summarized in Table 1.

[0064] [Table 1] Comparative Examples DC1-DC4 and Example D1: Dishwashing Performance

[0065] Dishwashing compositions were prepared for each of Comparative Examples DC1-DC4 and Example D1 having the ingredient formulations identified in Table 2. The protease used in each ingredient formulation was Savinase® 12T protease, available from Novozymes. The amylase used in each ingredient formulation was Stainzyme® 12T amylase, available from Novozymes.

[0066] [Table 2] Steps for preparing food stains

[0067] The STIWA food soils described in Table 3 were prepared by the following procedure. a) Boil water. b) Mix instant gravy, benzoic acid, and starch in a paper cup and then add the mixture to boiling water. c) Add milk and margarine to the product of (b). d) Cool the product of (c) to about 40°C and then add the mixture to a kitchen mixer (Polytron). e) In a separate paper cup, combine the egg yolks, ketchup, and mustard and mix with a spoon. f) Add the product of (e) to the mixture of (d) in the blender with continuous stirring. g) Blend the product of (f) in a blender for 5 minutes. h) Freeze the product food soil mixture from (g). i) Place 50g of this frozen slush into the dishwasher at the start of the main wash.

[0068] [Table 3] Dishwashing test conditions

[0069] Machine: Miele SS-ADW, Model G1222SC Labor. Wash - 30 minutes, prewash at 65°C. Water: Hardness 37°F, Ca:Mg = 3:1. Food soiling: 50 g of the composition described in Table 3 was introduced into the wash liquor in a frozen state in a cup. Each dishwashing composition from Comparative Examples DC1 to DC4 and Example D1 was tested, and 20 g was added per wash.

[0070] Evaluation of filming and spotting of polystyrene tumblers After 30 wash cycles under the dishwashing test conditions described above, the polystyrene tumblers were air-dried. After air-dried following the 30th wash, the polystyrene tumblers were assessed for filming and spotting by trained assessors by observing them in a light box with controlled lighting from below. The polystyrene tumblers were assessed for filming and spotting according to ASTM standards, ranging from 1 (no filming / spotting) to 5 (severe filming / spotting). Average scores of 1 to 5 were assessed for filming and spotting, as reported in Table 4.

[0071] [Table 4] Evaluation of Filming and Spotting of LIBBEY™ Glass Tumblers

[0072] After 30 wash cycles under the above dishwashing test conditions, the glass tumblers were air-dried. After air-dried following the 30th wash, the filming and spotting ratings were determined by trained evaluators by observing the glass tumblers in a light box with controlled lighting from below. The LIBBEY™ glass tumblers were rated for filming and spotting according to ASTM methods, ranging from 1 (no filming / spotting) to 5 (severe filming / spotting). Average scores of 1 to 5 for filming and spotting were determined, as reported in Table 5.

[0073] [Table 5] Evaluation of filming and spotting of SCHOTT glass

[0074] After 30 wash cycles under the above dishwashing test conditions, the SCHOTT™ glass was air-dried. After air-dried following the 30th wash, the filming and spotting ratings were determined by trained evaluators by observing the SCHOTT™ glass in a light box with controlled lighting from below. The SCHOTT™ glass was rated for filming and spotting according to ASTM methods, ranging from 1 (no filming / spotting) to 5 (severe filming / spotting). Average scores of 1 to 5 were determined for filming and spotting, as reported in Table 6.

[0075] [Table 6] Evaluation of filming and spotting on soda-lime glass sheets.

[0076] After 30 wash cycles under the dishwashing test conditions described above, the soda-lime glass panes were air-dried. After air-dried following the 30th wash, the soda-lime glass panes were assessed for filming and spotting by trained assessors by observing them in a light box with controlled lighting from below. The soda-lime glass panes were assessed for filming and spotting according to ASTM methods, ranging from 1 (no filming / spotting) to 5 (severe filming / spotting). Average scores of 1 to 5 were assessed for filming and spotting, as reported in Table 7.

[0077] [Table 7] Evaluation of filming and spotting on stainless steel.

[0078] After 30 wash cycles under the above dishwashing test conditions, the stainless steel butter dishes were air-dried. After air-dried, the filming and spotting ratings were determined by trained evaluators by observing the stainless steel butter dishes in a light box with controlled lighting. The stainless steel butter dishes were rated for filming color and spotting according to ASTM methods, ranging from 1 (no filming / spotting) to 5 (severe filming / spotting). Average values ​​of 1 to 5 for filming color and spotting were determined, as reported in Table 8. Average ΔE values ​​were obtained from the stainless steel butter dishes using a colorimeter. The results for the stainless steel butter dishes are reported in Table 8.

[0079] [Table 8]

Claims

1. 1. An automatic dishwashing detergent composition comprising: 50 to 85 weight percent of a builder, based on the dry weight of the automatic dishwashing detergent composition; 0.75 to 7 wt. % of a phosphonate, based on the dry weight of the automatic dishwashing detergent composition; 1.5 to 7.5 wt. % of a nonionic surfactant, based on the dry weight of the automatic dishwashing detergent composition; 2-6 wt. % of a dispersant polymer, based on the dry weight of the automatic dishwashing detergent composition; an additive comprising a mixture of bleach activators, enzymes, and bleaching agents; the builder comprises, by weight, based on the dry weight of the automatic dishwashing detergent composition, 25 to 50% carbonate, 20 to 40% citrate, and 0 to 3% silicate; the dispersant polymer (a) 78 to 82 weight percent of structural units of Formula I, based on the weight of the dispersant polymer. 【Chemistry 1】 (In the formula, each R 1 are independently hydrogen and —CH 3 groups, and in 98-100 mol % of the structural units of formula I, R 1 is hydrogen; and (b) 18 to 22 weight percent of structural units of formula II, based on the weight of the dispersant polymer. 【Chemistry 2】 (In the formula, each R 2 are independently 1-6 hydroxyalkyl groups, and each R 3 are independently selected from hydrogen and methyl groups, and in 98-100 mol % of the structural units of formula II, R 2 is a hydroxypropyl group, and in 98-100 mol % of the structural units of formula II, R 3 is hydrogen; An automatic dishwashing detergent composition wherein the dispersant polymer has a weight average molecular weight Mw of 1,750 to 17,500 Daltons.

2. An automatic dishwashing detergent composition as described in claim 1, wherein the amount of phosphate measured as elemental phosphorus is 0 to less than 0.1 wt. %, based on the dry weight of the automatic dishwashing detergent composition.

3. The dispersant polymer has a weight average molecular weight M of 1,900 to 14,250 Daltons W 3. The automatic dishwashing detergent composition of claim 2, comprising:

4. 4. The automatic dishwashing detergent composition of claim 3, wherein the automatic dishwashing detergent composition does not contain a compound selected from the group consisting of nitrilotriacetic acid, ethylenediaminetetraacetic acid, diethylenetriaminepentaacetic acid, glycine-N,N-diacetic acid, methylglycine-N,N-diacetic acid, 2-hydroxyethyliminodiacetic acid, glutamic acid-N,N-diacetic acid, 3-hydroxy-2,2'-iminodisuccinate, S,S-ethylenediaminedisuccinic acid aspartic acid-diacetic acid, N,N'-ethylenediaminedisuccinic acid, iminodisuccinic acid, aspartic acid, aspartic acid-N,N-diacetic acid, beta-alaninediacetic acid, polyaspartic acid, salts thereof, and mixtures thereof.

5. An automatic dishwashing detergent composition as described in claim 4, further comprising a filler.

6. 1. A method of cleaning items in an automatic dishwasher, comprising: Providing at least one item; Providing an automatic dishwashing detergent composition according to claim 1; applying said automatic dishwashing detergent composition to said at least one item.

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