US20110165107A1 - Volume up shampoos - Google Patents

Volume up shampoos Download PDF

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Publication number
US20110165107A1
US20110165107A1 US12/999,740 US99974009A US2011165107A1 US 20110165107 A1 US20110165107 A1 US 20110165107A1 US 99974009 A US99974009 A US 99974009A US 2011165107 A1 US2011165107 A1 US 2011165107A1
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composition according
sodium
groups
amine end
composition
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Franciscus Derks
Stephen Foster
Robert Lochhead
Adarsh Maini
Dirk Weber
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DSM IP Assets BV
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DSM IP Assets BV
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Assigned to DSM IP ASSETS B.V. reassignment DSM IP ASSETS B.V. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MAINI, ADARSH, FOSTER, STEPHEN, LOCHHEAD, ROBERT, DERKS, FRANCISCUS, WEBER, DIRK
Publication of US20110165107A1 publication Critical patent/US20110165107A1/en
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K8/00Cosmetics or similar toiletry preparations
    • A61K8/18Cosmetics or similar toiletry preparations characterised by the composition
    • A61K8/72Cosmetics or similar toiletry preparations characterised by the composition containing organic macromolecular compounds
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K8/00Cosmetics or similar toiletry preparations
    • A61K8/18Cosmetics or similar toiletry preparations characterised by the composition
    • A61K8/72Cosmetics or similar toiletry preparations characterised by the composition containing organic macromolecular compounds
    • A61K8/84Cosmetics or similar toiletry preparations characterised by the composition containing organic macromolecular compounds obtained by reactions otherwise than those involving only carbon-carbon unsaturated bonds
    • A61K8/85Polyesters
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61QSPECIFIC USE OF COSMETICS OR SIMILAR TOILETRY PREPARATIONS
    • A61Q5/00Preparations for care of the hair
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61QSPECIFIC USE OF COSMETICS OR SIMILAR TOILETRY PREPARATIONS
    • A61Q5/00Preparations for care of the hair
    • A61Q5/02Preparations for cleaning the hair
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08GMACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
    • C08G69/00Macromolecular compounds obtained by reactions forming a carboxylic amide link in the main chain of the macromolecule
    • C08G69/44Polyester-amides
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08GMACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
    • C08G83/00Macromolecular compounds not provided for in groups C08G2/00 - C08G81/00
    • C08G83/002Dendritic macromolecules
    • C08G83/005Hyperbranched macromolecules
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08LCOMPOSITIONS OF MACROMOLECULAR COMPOUNDS
    • C08L101/00Compositions of unspecified macromolecular compounds
    • C08L101/005Dendritic macromolecules
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61QSPECIFIC USE OF COSMETICS OR SIMILAR TOILETRY PREPARATIONS
    • A61Q5/00Preparations for care of the hair
    • A61Q5/06Preparations for styling the hair, e.g. by temporary shaping or colouring
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61QSPECIFIC USE OF COSMETICS OR SIMILAR TOILETRY PREPARATIONS
    • A61Q5/00Preparations for care of the hair
    • A61Q5/12Preparations containing hair conditioners

Definitions

  • the invention relates to aqueous compositions comprising an anionic surfactant and a hyperbranched polyesteramide having at least one quarternized amine end-group.
  • the compositions in particular in the form of shampoo preparations are suited for increasing the volume of hair treated therewith. Furthermore, such compositions provide styling attributes and increase the wet-combability of hair.
  • volumizing shampoos People with fine or thin hair often use “volumizing” shampoos in order to add volume and body to their hair.
  • Conventional volumizing shampoos possess certain drawbacks such as, for example, a failure to provide real volume benefits as the effective ingredients are too heavy on the hair, thereby weighing it down.
  • Another drawback associated with volumizing shampoos is their inability to provide appreciable styling attributes and wet-conditioning onto hair treated therewith.
  • aqueous compositions comprising a hyperbranched polyesteramide having at least one quarternized amine end-group in combination with an anionic surfactant overcome the above addressed problems.
  • the invention relates to an aqueous composition
  • an aqueous composition comprising an anionic surfactant and an effective amount of a hyperbranched polyesteramide having at least one quarternized amine end-group.
  • the aqueous composition is a shampoo preparation in particular a volumizing shampoo preparation.
  • the term “effective amount” means generally at least a concentration of at least 0.01% by weight based on the weight of the total composition. Preferably, a concentration of 0.01-20 wt. %, most preferred of 0.05-10 wt. %, in particular in the range of 0.5 to 2 wt.-% is used.
  • the invention is concerned with a method of treating hair by applying a composition according to the invention.
  • the invention relates to a method for increasing the volume of hair by applying a composition according to the invention to hair.
  • the invention also relates to the use of a composition according to the invention for increasing the volume of hair.
  • Suitable anionic surfactants are the alkyl sulfates, alkyl ether sulfates, alkylaryl sulphonates, alkanoyl isethionates, alkyl succinates, alkyl sulphosuccinates, alkyl ether sulphosuccinates, N-alkyl sarcosinates, alkyl phosphates, alkyl ether phosphates, and alkyl ether carboxylic acids and salts thereof, especially their sodium, magnesium, ammonium and mono-, di- and triethanolamine salts.
  • the alkyl and acyl groups generally contain from 8 to 18, preferably from 10 to 16 carbon atoms and may be unsaturated.
  • alkyl ether sulfates, alkyl ether sulphosuccinates, alkyl ether phosphates and alkyl ether carboxylic acids and salts thereof may contain from 1 to 20 ethylene oxide or propylene oxide units per molecule.
  • the anionic surfactants are selected from sodium oleyl succinate, ammonium lauryl sulphosuccinate, sodium lauryl sulfate, sodium lauryl ether sulfate (sodium laureth sulfate), sodium lauryl ether sulphosuccinate, ammonium lauryl sulfate, ammonium lauryl ether sulfate (ammonium laureth sulfate), sodium dodecylbenzene sulphonate, triethanolamine dodecylbenzene sulphonate, sodium cocoyl isethionate, sodium lauryl isethionate, lauryl ether carboxylic acid and sodium N-lauryl sarcosinate or mixtures thereof.
  • Preferred anionic surfactants are sodium lauryl sulfate, sodium lauryl ether sulfate (n) EO, (where n is from 1 to 4, in particular n is 3), sodium lauryl ether sulphosuccinate (n) EO, (where n is from 1 to 4, in particular n is 3), ammonium lauryl sulfate, ammonium lauryl ether sulfate (n) EO, (where n is from 1 to 4, in particular n is 3) or mixtures thereof.
  • the anionic surfactant is preferably selected from sodium lauryl sulfate, ammonium lauryl sulfate, sodium lauryl ether sulfate, ammonium lauryl ether sulfate, sodium lauroyl sarconisate, sodium oleylsuccinate, ammonium lauryl sulfosuccinate, sodium dodecylbenzol sulfonate and/or triethanolamine dodecylbenzol sulfonate or mixtures thereof, in particular the anionic surfactant is selected from sodium lauryl sulfate, ammonium lauryl sulfate, sodium lauryl ether sulfate and/or ammonium lauryl ether sulfate.
  • the total amount of the anionic surfactant in the compositions according to the invention ranges from 0.5 to 45 wt.-%, preferably from 1.5 to 35 wt.-%, more preferably from 7 to 25 wt.-%, in particular from 7 to 15 wt.-% based on the total weight of the composition.
  • Hyperbranched polyesteramides having quaternized amine end groups suitable for the purpose of the present invention are disclosed in WO2007098888, in particular on page 3, line 9 to page 11, line 10 which is included herein by reference.
  • Particular interesting hyperbranched polyesteramide having at least one quarternized amine end-group for the purpose of the present invention are obtainable by condensation of a dialkylamine of the general formula HN(R 1 R 2 ) and/or an alcohol functional amine of the general formula HO—R 3 —N(R 1 R 2 ), wherein R 1 and R 2 are di-(C 1-20 -alkyl)amino-C 1-20 -alkyl groups or R 1 and R 2 together form a N-heterocyclic ring (preferably a 5 or 6 membered ring) and R 3 is C 1-20 -alkyl which might also contain oxygen groups, a dicarboxylic acid or a cyclic anhydride thereof and diisopropanolamine followed by quaternization of the amino groups according to the processes as disclosed in WO2007098888 respectively in the examples of the present invention.
  • cyclic anhydrides are used in the condensation reaction, most preferably, the cyclic anhydrides are selected from succinic anhydride and derivatives thereof and/or phthalic anhydride and derivatives thereof such as in particular from succinic anhydride, phthalic anhydride, hexahydrophthalic anhydride and/or dodecenyl succinic anhydride and the dialkylamine is selected from bis(di(m)ethylamino)ethylamine, bis(di(m)ethylaminopropyl) amine, bis(di(m)ethylaminohexyl)amine and/or N-methylpiperazine, in particular from bis(di(m)ethylaminopropyl) amine and/or N-methylpiperazine.
  • Preferred alcohol functional amines of the general formula HO—R 3 —N(R 1 R 2 ) are N, N-dimethylethanolamine, N,N,N′-trimethyl-N′-hydroxyethyl-bisaminoethylether, N,N-bis(3-dimethylaminopropyl)-N-isopropanolamine, N-(3-dimethylaminopropyl)-N,N-diisopropanolamine, 2-(2-dimethylaminoethoxy)ethanol and/or N,N,N′-trimethylaminoethyl-ethanolamine, in particular N,N-bis(3-dimethylaminopropyl)-N-isopropanolamine.
  • suitable quaternized amine end groups for the purpose of the present invention are quaternized di(m)ethylaminoethyl, di(m)ethylaminopropyl, di(m)ethylaminohexyl and/or N-methylpiperazinyl groups, in particular quaternized di(m)ethylaminopropyl and/or N-methylpiperazinyl groups.
  • the quaternized amine end groups of the hyperbranched polyesteramide may be prepared by reaction of the nitrogen atoms of the non-quaternized hyperbranched polyesteramide with customary quaternizing agents according to standard procedures as e.g. described in Jerry March, ‘Advanced organic chemistry, 4 th edition, Wiley-Interscience p. 411ff.
  • the amine end groups of the hyperbranched polyesteramides are quaternized using linear or branched (C 1 -C 8 ) alkyl groups, in particular linear saturated (C 1 -C 8 ) alkyl groups such as in particular with methyl and/or ethyl groups or they are quaternized using benzyl groups.
  • the counter ion normally results from the quaternization agent but can be exchanged if necessary.
  • the counter ion is chloride and/or MeSO 4 ⁇ and/or EtSO 4 ⁇ in particular the counter ion is MeSO 4 ⁇ and/or EtSO 4 ⁇ .
  • quaternization agents are epoxides like cyclohexene oxide and glycidyl ethers and esters like glycidol and glycidylmethacrylate. Suitable agents to obtain a betaine group are chloro acetic acid and (meth)acrylic acid.
  • the preferred amine end groups are quaternized di(m)ethylaminopropyl groups or N-methylpiperazinyl groups which are quaternized with methyl or ethyl groups, most in particular the quaternized amine end groups are tri(m)ethylammoniumpropyl groups.
  • the preferred amine end groups di(m)ethylaminopropyl or N-methylpiperazinyl are quaternized with 3-chloro-2-hydroxypropyltrimethylammonium chloride.
  • the preferred degree of quaternization of the amine end groups of the hyperbranched polyesteramide is between 20 and 100%, more preferred between 50 and 100%, most preferred between 80 and 100% such as in particular about 95% to 100%.
  • the molecular weight of the hyperbranched polyesteramides according to the invention can be adjusted via the ratio of the different building blocks used, in particular by the ratio of the branching unit (i.e. diisopropanolamine) to the dicarboxylic acid or a cyclic anhydride thereof which can be easily selected by a person skilled in the art.
  • the effect of the end blocking groups (i.e. dialkylamine/alcohol functional amine) on the molecular weight can also be calculated.
  • the ratio of the branching unit to the dicarboxylic acid or a cyclic anhydride thereof is selected in the range of 1.01:1.0 to 2.0:1.0, more preferably in the range of 1.05:1.0 to 1.5:1.0, most preferably in the range of 1.1:1.0 to 1.4:1.0.
  • 20 to 100% of the amount of OH end groups of the core of the molecule as determined by the branching unit to dicarboxylic acid or cyclic anhydride thereof ratio is modified with end blocking groups, preferably between 50 and 98% and most preferably between 80 and 95%.
  • the weight average molecular mass of the quaternized hyperbranched polyesteramides incorporated into the compositions according to the invention is between 600 g/mol and 50,000 g/mol, more preferably between 800 g/mol and 25,000 g/mol, in particular between 2000 g/mol and 25,000 g/mol, most in particular between 5000 and 20,000 g/mol.
  • the number average molecular mass is between 500 g/mol and 15,000 g/mol, more preferably between 700 g/mol and 4,000 g/mol and most preferred between 1000 and 3000 g/mol.
  • the average number of quaternized amine end-groups per molecule is between 2 and 250, more preferably between 3 and 50, most preferably between 6 and 25.
  • the molecular weights can be determined according to standard procedures via GPC.
  • the hyperbranched polyesteramide comprising at least one quarternized amine end-group is obtainable by condensation of a cyclic anhydride selected from succinic anhydride, phthalic anhydride, hexahydrophthalic anhydride and/or dodecenyl succinic anhydride, in particular succinic anhydride, hexahydrophthalic anhydride and/or dodecenyl succinic anhydride, most in particular succinic anhydride and/or dodecenyl succinic anhydride, a dialkylamine selected from bis(di(m)ethylaminopropyl)amine and/or N-methylpiperazine and/or N,N-bis(3-dimethylaminopropyl)-N-isopropanolamine and diisopropanolamine followed by partial or complete quaternization the amino end groups in particular with methyl groups or by quaternization with sodium chloroacetate.
  • a cyclic anhydride
  • the hyperbranched polyesteramide according to the invention is obtainable by condensation of succinic anhydride and/or dodecenyl succinic anhydride, bis(dimethylaminopropyl)amine and diisopropanolamine followed complete (i.e. ⁇ 95%) quaternization of the amino end groups with methyl groups (e.g. with dimethylsulfate), with the proviso that the building blocks are selected in a ratio in order to obtain a weight average molecular mass between 5,000 g/mol and 20,000 g/mol.
  • the condensation reaction can be carried out in a one-step procedure at room temperature or at an elevated temperature, preferably between about 20° C. and about 120° C., to form an amide bond between the amino group of the amine and the carboxy group of the dicarboxylic acid or the anhydride thereof after which, at an elevated temperature, preferably between 120° C. and 250° C., a polyesteramide is obtained through polycondensation with water being removed, preferably through distillation.
  • the one-step procedure can take place with or without a solvent. Suitable solvents are organic solvents, such as methyl-isobutylketone, butylacetate, toluene or xylene.
  • the removal of water through distillation can take place at either reduced or elevated pressure, such as at a pressure higher than 1.10 5 Pa, in a vacuum ( ⁇ 1.10 5 Pa) or azeotropically.
  • compositions according to the invention preferably comprise from 50 to 98 wt.-%, preferably from 60 to 90 wt.-% of water based on the total weight of the composition.
  • the ratio of the anionic surfactant to the hyperbranched polyesteramide having at least one quarternized amine end-group is preferably in the range of 20 to 1 to 1 to 1, in particular 10 to 1 to 5 to 1, such as in particular 8 to 1.
  • compositions according to the present invention are shampoo preparations to be applied to the hair and then rinsed away.
  • the invention relates to a shampoo preparation wherein the anionic surfactant is selected from sodium lauryl sulfate, ammonium lauryl sulfate, sodium lauryl ether sulfate and/or ammonium lauryl ether sulfate and the ratio of the anionic surfactant to the hyperbranched polyesteramide having at least one quarternized amine end-group is in the range of 20 to 1 to 1 to 1, in particular 10 to 1 to 5 to 1, such as in particular 8 to 1.
  • the invention relates to a shampoo preparation wherein the anionic surfactant is selected from sodium lauryl sulfate, ammonium lauryl sulfate, sodium lauryl ether sulfate and/or ammonium lauryl ether sulfate, the average number of quaternized di(m)ethylaminopropyl and/or N-methylpiperazinyl end groups, in particular di(m)ethylaminopropyl end-groups per molecule of the hyberbranched polyesteramide is between 3 and 50 and the degree of quaternization is in the range of 80 and 100%.
  • the amine end-groups are preferably quaternized with dimethylsulfate or diethylsulfate.
  • compositions according to the invention can contain further ingredients to enhance the performance and/or consumer acceptability such as preservatives, antioxidants, fatty substances/oils, silicones, thickeners, softeners, emulsifiers, light-screening agents, antifoaming agents, moisturizers, fragrances, co-surfactants, fillers, sequestering agents, cationic-, nonionic- or amphoteric polymers or mixtures thereof, acidifying or basifying agents, dyes, colorants, pigments or nanopigments, pearlizers or opacifiers, organic or inorganic particles, viscosity modifiers, and natural hair nutrients such as botanicals, fruit extracts, sugar derivatives and/or amino acids or any other ingredients usually formulated into rinse off compositions.
  • the necessary amounts of the adjuvants and additives can, based on the desired product, easily be chosen by a skilled artisan in this field and will be illustrated in the examples, without being limited hereto.
  • the shampoo preparation preferably includes co-surfactants, to help impart aesthetic, physical or cleansing properties to the compositions.
  • co-surfactants are nonionic surfactants, which can be included in an amount ranging from 0.5 to 8 wt.-%, preferably from 2 to 5 wt.-% based on the total weight of the preparation.
  • nonionic surfactants that can be included into shampoo preparations according to the invention include condensation products of aliphatic (C 8 -C 18 ) primary or secondary linear or branched chain alcohols with alkylene oxides, usually ethylene oxide and generally having from 6 to 30 ethylene oxide groups.
  • Other representative nonionic surfactants include mono- or di-alkyl alkanolamides such as e.g. coco mono- or di-ethanolamide and coco mono-isopropanolamide.
  • nonionic surfactants which can be included in shampoo preparations of the invention are the alkyl polyglycosides (APGs).
  • APG alkyl polyglycosides
  • the APG is one which comprises an alkyl group connected (optionally via a bridging group) to a block of one or more glycosyl groups such as e.g. Oramix NS 1O ex Seppic; Plantacare 818UP, Plantacare 1200 and Plantacare 2000 ex Cognis.
  • co-surfactant is an amphoteric or zwitterionic surfactant, which can be included in an amount ranging from 0.5 to about 8 wt.-%, preferably from 1 to 4 wt.-% based on the total weight of the shampoo preparation.
  • amphoteric or zwitterionic surfactants include alkyl amine oxides, alkyl betaines, alkyl amidopropyl betaines, alkyl sulphobetaines (sultaines), alkyl glycinates, alkyl carboxyglycinates, alkyl amphoacetates, alkyl amphopropionates, alkylamphoglycinates, alkyl amidopropyl hydroxysultaines, acyl taurates and acyl glutamates, wherein the alkyl and acyl groups have from 8 to 19 carbon atoms.
  • Typical amphoteric and zwitterionic surfactants for use in shampoo preparations according to the invention include lauryl amine oxide, cocodimethyl sulphopropyl betaine, lauryl betaine, cocamidopropyl betaine (CAPB), sodium cocoamphoacetate and disodium cocoamphodiacetate.
  • a particularly preferred amphoteric or zwitterionic surfactant to be used in the shampoo preparations of the present invention is cocamidopropyl betaine.
  • amphoteric or zwitterionic surfactants may also be suitable.
  • Preferred mixtures are those of cocamidopropyl betaine with further amphoteric or zwitterionic surfactants as described above such as in particular with sodium cocoamphoacetate.
  • shampoo preparations comprising an additional amount of an amphoteric or zwitterionic surfactant are in particular suitable for increasing the volume of hair.
  • the invention relates to a shampoo preparation comprising an anionic surfactant, an amphoteric or zwitterionic surfactant and a hyperbranched polyesteramide having at least one quarternized amine end-group.
  • the anionic surfactant is selected from ammonium lauryl sulfate, sodium lauryl sulfate, ammonium laureth sulfate and/or sodium laureth sulfate
  • the amphoteric or zwitterionic surfactant is cocamidopropyl betaine
  • the quarternized amine end-groups are selected from quaternized di(m)ethylaminoethyl, di(m)ethylaminopropyl, di(m)ethylaminohexyl and/or N-methylpiperazinyl end groups.
  • the quaternized amine end groups are tri(m)ethylammoniumpropyl groups.
  • the anionic surfactant is selected from ammonium lauryl sulfate, sodium lauryl sulfate, ammonium laureth sulfate and/or sodium laureth sulfate
  • the amphoteric or zwitterionic surfactant is cocamidopropyl betaine and the average number of quaternized amine end-group selected from di(m)ethylaminopropyl and/or N-methylpiperazinyl groups, groups per molecule of the hyberbranched polyesteramide is between 3 and 50 and the degree of quaternization is in the range of 80 and 100%.
  • the amine end-groups are preferably quaternized with dimethylsulfate and/or diethylsulfate. Most preferably, the quaternized amine end groups are tri(m)ethylammoniumpropyl groups.
  • the total amount of surfactant (including any co-surfactant, and/or any emulsifier) in a shampoo preparation according to invention is generally from 1 to 50%, preferably from 2 to 40%, more preferably from 5 to 25%, in particular from 9 to 15 wt.-% based on the total weight of the composition.
  • compositions according to the invention also comprise a hydrotrope.
  • a hydrotrope is a substance that improves the solubility of surfactants in water.
  • hydrotropes are sodium xylene sulfonate, ammonium xylene sulphonate, sodium p-toluene sulfonate, sodium chlorobenzene sulfonate, sodium salicylate, proline, pyrogallol, resorcinol and urea.
  • sodium xylene sulfonate is used as hydrotrope.
  • the total amount of the hydrotrope in the compositions according to the invention ranges from 0.5 to 30 wt.-%, preferably from 1 to 20 wt.-%, in particular from 1 to 5 wt.-% based on the total weight of the composition.
  • Particular preferred shampoo preparations according to the invention comprise an anionic surfactant, a hyperbranched polyesteramide having at least one quarternized amine end-group, an amphoteric or zwitterionic surfactant and a hydrotrope.
  • the anionic surfactant is selected from ammonium lauryl sulfate, sodium lauryl sulfate, ammonium laureth sulfate and/or sodium laureth sulfate
  • the amphoteric or zwitterionic surfactant is cocamidopropyl betaine and the hydrotrope is sodium xylene sulfonate.
  • the quaternized amine end groups are tri(m)ethylammoniumpropyl groups.
  • the shampoo preparations according to the invention may also contain cationic polymers for further enhancing conditioning performance.
  • Suitable cationic polymers may be homopolymers which are cationically substituted or may be formed from two or more types of monomers.
  • the weight average molecular weight (Mw) of the polymers will generally be between 100 000 and 2 million Daltons.
  • Suitable cationic polymers include, for example, copolymers of vinyl monomers having cationic amine or quaternary ammonium functionalities with water soluble spacer monomers such as (meth) acrylamide, alkyl and dialkyl (meth) acrylamides, alkyl (meth) acrylate, vinyl caprolactone and vinyl pyrrolidine.
  • the alkyl and dialkyl substituted monomers preferably have C 1 -C 7 alkyl groups, more preferably C 1-3 alkyl groups.
  • Other suitable spacers include vinyl esters, vinyl alcohol, maleic anhydride, propylene glycol and ethylene glycol.
  • Cationic amines can be primary, secondary or tertiary amines, depending upon the particular species and the pH of the composition. In general secondary and tertiary amines, especially tertiary, are preferred.
  • Amine substituted vinyl monomers and amines can be polymerized in the amine form and then converted to ammonium by quaternization.
  • the cationic polymers can comprise mixtures of monomer units derived from amine- and/or quaternary ammonium-substituted monomer and/or compatible spacer monomers.
  • Suitable cationic polymers include, for example:
  • cationic diallyl quaternary ammonium-containing polymers including, for example, dimethyldiallylammonium chloride homopolymer and copolymers of acrylamide and dimethyldiallylammonium chloride, referred to in the industry (CTFA) as Polyquaternium 6 and Polyquaternium 7, respectively;
  • cationic polymers that can be used include cationic polysaccharide polymers, such as cationic cellulose derivatives, cationic starch derivatives, and cationic guar gum derivatives.
  • cationic cellulose includes the polymeric quaternary ammonium salts of hydroxyethyl cellulose reacted with trimethyl or lauryl dimethyl ammonium-substituted epoxide, referred to in the industry (CTFA) as Polyquaternium 10 and Polyquaternium 24 respectively. These materials are available from the Amerchol Corporation, for instance under the trade name Ucare Polymer JR or Ucare Polymer LM.
  • Suitable cationic polysaccharide polymers include quaternary nitrogen-containing cellulose ethers (e.g. as described in U.S. Pat. No. 3,962,418), and copolymers of etherified cellulose and starch (e.g. as described in U.S. Pat. No. 3,958,581).
  • a particularly suitable type of cationic polysaccharide polymer that can be used is a cationic guar gum derivative, such as guar hydroxypropyltrimethylammonium chloride or Hydroxypropyl guar hydroxypropyltrimethylammonium chloride (commercially available from Rhodia in their JAGUAR trademark series). Examples of such materials are JAGUAR C13S, JAGUAR C14S, JAGUAR C17; JAGUAR C162 and JAGUAR Excel.
  • Mixtures of any of the above cationic polymers may be used.
  • the cationic polymer(s) will generally be present in a shampoo preparation of the present invention at levels of from 0.01 to 5 wt.-%, preferably from 0.05 to 1 wt.-%, more preferably from 0.08 to 0.5 wt.-% by total weight of cationic polymer based on the total weight of the composition.
  • a shampoo preparation of the invention further comprises a suspending agent.
  • Suitable suspending agents are selected from polyacrylic acids, cross-linked polymers of acrylic acid, copolymers of acrylic acid with a hydrophobic monomer, copolymers of carboxylic acid-containing monomers and acrylic esters, cross-linked copolymers of acrylic acid and acrylate esters, heteropolysaccharide gums and crystalline long chain acyl derivatives.
  • the long chain acyl derivative is desirably selected from ethylene glycol stearate, alkanolamides of fatty acids having from 16 to 22 carbon atoms and mixtures thereof.
  • Ethylene glycol distearate and polyethylene glycol 3 distearate are preferred long chain acyl derivatives, since these impart pearlescence to the composition.
  • Polyacrylic acid is available commercially as Carbopol 420, Carbopol 488 or Carbopol 493.
  • Polymers of acrylic acid cross-linked with a polyfunctional agent may also be used; they are available commercially as Carbopol 910, Carbopol 934, Carbopol 941, Carbopol 980 and Carbopol Ultrez 10 Polymer.
  • suitable copolymers of a carboxylic acid containing monomer and acrylic acid esters are Carbopol 1342, Carbopol Ultrez 20 or Carbopol Ultrez 21, Pemulen TR1 or Pemulen TR2. All Carbopol or Pemulen (trademark) materials are available from Noveon Consumer Specialities.
  • a suitable heteropolysaccharide gum is xanthan gum, for example Keltrol-types or Kelzan-types from Kelco, Vanzan NF from RT Vanderbilt Inc. or Rhodicare-types from Rhodia.
  • suspending agents may be used.
  • Preferred is a mixture of cross-linked polymer of acrylic acid and crystalline long chain acyl derivative.
  • the suspending agent(s) will generally be present in a shampoo preparation of the invention at levels of from 0.1 to 10 wt.-%, preferably from 0.5 to 6 wt.-%, more preferably from 0.9 to 4 wt.-% by total weight of suspending agent based on the total weight of the composition.
  • the shampoo preparations of the invention may comprise further conditioning agents to further optimize wet and dry conditioning benefits.
  • Particularly preferred further conditioning agents are silicone emulsions.
  • Suitable silicone emulsions include those formed from silicones such as polydiorganosiloxanes, in particular polydimethylsiloxanes which have the CTFA designation dimethicone, polydimethyl siloxanes having hydroxyl end groups which have the CTFA designation dimethiconol, and amino-functional polydimethyl siloxanes which have the CTFA designation amodimethicone.
  • Suitable silicone emulsions for use in compositions of the invention are available from suppliers of silicones such as Dow Corning and GE Silicones. The use of such pre-formed silicone emulsions is preferred for ease of processing and control of silicone particle size.
  • Such pre-formed silicone emulsions will typically additionally comprise a suitable emulsifier such as an anionic or nonionic emulsifier, or mixture thereof, and may be prepared by a chemical emulsification process such as emulsion polymerisation, or by mechanical emulsification using a high shear mixer.
  • a suitable emulsifier such as an anionic or nonionic emulsifier, or mixture thereof
  • Preformed silicone emulsions having a Sauter mean droplet diameter (D 3,2 ) of less than 0.15 micrometers are generally termed microemulsions.
  • suitable pre-formed silicone emulsions include emulsions DC2-1766, DC2-1784, DC-1785, DC-1786, DC-1788 and microemulsions DC2-1865 and DC2-1870, all available from Dow Corning.
  • emulsions/microemulsions of dimethiconol are all emulsions/microemulsions of dimethiconol.
  • amodimethicone emulsions such as DC939 (from Dow Corning) and SME253 (from GE Silicones).
  • silicone emulsions in which certain types of surface active block copolymers of a high molecular weight have been blended with the silicone emulsion droplets, as described for example in WO03/094874.
  • Silicone will generally be present in a composition of the invention at levels of from 0.05 to 10 wt.-%, preferably 0.05 to 5 wt.-%, more preferably from 0.5 to 2 wt.-% by total weight of silicone based on the total weight of the composition.
  • the shampoo preparations according to the invention may further contain anti dandruff agents.
  • anti-dandruff agents which may be used are cimbazole, octopirox and zinc pyrithione.
  • Customary film formers include, for example, chitosan, microcrystalline chitosan, quaternized chitosan, polyvinylpyrrolidone, vinyl pyrrolidone/vinyl acetate copolymers, polymers of quaternary cellulose derivatives containing a high proportion of acrylic acid, collagen, hyaluronic acid and salts thereof and similar compounds.
  • the shampoo preparations according to the invention may further contain UV-filter substances.
  • UV-filter substances suitable for the incorporation into the compositions according to the invention include benzophenones such as e.g. benzophenones-4 or benzophenones-3, acrylates such as 2-ethylhexyl 2-cyano-3,3-diphenylacrylate (octocrylene, PARSOL® 340), cinnamate derivatives such as ethylhexyl methoxycinnamate (PARSOL® MCX), benzalmalonate derivatives bond to siloxanes such as e.g.
  • polysilicones-15 PARSOL® SLX
  • salicylate derivatives such as isopropylbenzyl salicylate, benzyl salicylate, butyl salicylate, ethylhexyl salicylate (PARSOL® EHS, Neo Heliopan OS), isooctyl salicylate or homomenthyl salicylate (homosalate, PARSOL® HMS, Neo Heliopan HMS), benzotriazole derivatives such as sodium benzotriazolyl butylphenol sulfonate, imidazole derivatives such as e.g. 2-phenyl benzimidazole sulfonic acid and its salts (PARSOL® HS), dibenzoylmethane derivatives such as (avobenzone, Parsol® 1789) without being limited thereto.
  • salicylate derivatives such as isopropylbenzyl salicylate, benzyl salicylate, butyl salicylate, ethyl
  • the invention relates to the use of a hyperbranched polyesteramide having at least one quarternized amine end-group with all the preferences and definitions as given above for increasing the volume of hair.
  • a formulation containing 8 wt.-% SLES-3, 1.3 wt.-% CAPB and 2.7 wt.-% sodium xylene sulfonate (SXS) and 1 wt.-% of the hyperbranched polyesteramide having at least one quarternized amine end-group of example 2 in water was prepared.
  • the control consists of 8 wt.-% SLES-3, 1.3 wt.-% CAPB and 2.7 wt.-% sodium xylene sulfonate (SXS) in water.
  • the cut hair was pre-washed twice using 1 ml of a 14/2 SLES/CAPB solution per 2 g hair. Afterwards 0.5 g of hair was placed into 50 mL Falcon centrifuge tubes with a hole cut out in the bottom. The samples were pre-rinsed with DI Water to allow hairs to settle uniformly. A nylon mesh filter was used to cover the hole in the centrifuge tubes. After pre-rinse the samples were allowed to dry for 45 minutes. Initial volumes were recorded using the volumetric notation of the tube. Then 2.5 mL of DI water were added to the samples, followed by 0.5 mL of the formulation respectively the control, followed by another 2.5 mL of DI water. The samples were agitated by hand for thirty seconds and then drained.
  • volumes were then again recorded using the volumetric notation of the tube.
  • the samples were then diluted further by adding 5 mL of DI water and agitating for thirty seconds and draining. This was performed 4 times for each sample. Volumes were recorded using the volumetric notation of the tube. Finally, the samples were placed into a dry oven and allowed to dry for 18 hours at 40° C. Afterwards the final volumes were recorded using the volumetric notation of the tube.
  • control shows a decrease of volumes while the formulation according to the invention formulation shows an increased hair volume.
  • test product is applied with a defined amount per switch, massaged-in for 1 minute, kept that way for two minutes and rinsed with water for one minute.
  • the wet switches are conditioned for 24 hours at room temperature (22° C. ⁇ 1° C. and 55% ⁇ 5% rel. humidity).
  • the hair switch is measured and calculated by digital image analysis to obtain the measuring value.

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CN102065833B (zh) 2013-06-19
US20130251659A1 (en) 2013-09-26
US9339449B2 (en) 2016-05-17
EP2296619B1 (en) 2015-10-07
MX2010013883A (es) 2011-01-20
WO2009153334A1 (en) 2009-12-23
KR101693877B1 (ko) 2017-01-06
BRPI0914155B1 (pt) 2016-12-13
EP2296619A1 (en) 2011-03-23
ES2558227T3 (es) 2016-02-02
KR20110020831A (ko) 2011-03-03
BRPI0914155A2 (pt) 2015-10-20
CN102065833A (zh) 2011-05-18

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