Personal Care Compositions and Methods
A surfactant system with amphoteric and ethoxylated anionic surfactants, along with triglyceride oil and aliphatic fatty acid, enhances piroctone olamine deposition on the scalp and hair, improving anti-dandruff activity and hair feel in hair treatment compositions.
Patent Information
- Application Number
- JP2022552918
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-06
- Filing Date
- 2021-01-06
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2041-01-06
AI Technical Summary
Existing hair treatment compositions face challenges in achieving effective deposition of piroctone compounds, such as piroctone olamine, on the scalp and hair surfaces during the washing process, leading to low anti-dandruff activity while causing formulation instability and adverse effects on hair feel.
A cleansing surfactant system comprising an amphoteric surfactant and an ethoxylated anionic surfactant with a specific ratio, combined with a liquid hydrocarbon triglyceride oil and C4-C10 aliphatic fatty acid, maintains a pH of 6 or less, forming a composition that enhances piroctone compound deposition without affecting formulation rheology or conditioning performance.
The solution improves piroctone compound deposition on the scalp and hair, enhancing anti-dandruff efficacy while maintaining formulation stability and hair conditioning benefits.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to hair treatment compositions, and in particular to anti-dandruff shampoo compositions. [Background technology]
[0002] Dandruff is a problem affecting many people worldwide. The condition is manifested by the shedding of clumps of dead skin cells from the scalp, which are pale in color and result in an aesthetically unpleasing appearance. Certain members of the Malassezia yeast family are a contributing factor to dandruff. To combat these yeasts, hair treatment compositions containing various actives for anti-dandruff effects have been developed. Piroctone compounds, such as piroctone olamine, are one such active.
[0003] A common problem associated with piroctone compounds is minimal deposition of the active substance on the desired surface during the washing process. The desired surface is typically the scalp and / or hair. For example, piroctone compounds such as piroctone olamine are usually soluble in the surfactants of the cleansing phase contained in hair treatment compositions. During excessive rinsing, most of the piroctone may be washed away together with the surfactant. Low deposition correlates with low anti-dandruff activity, and therefore the harmful effects of dandruff are hardly alleviated. To date, attempts have been made to offset this drawback by increasing the level of piroctone olamine in hair treatment compositions. Such an approach causes various problems, such as increased cost, potential instability of the formulation, and potential adverse effects on hair feel. Therefore, it is not a desirable approach for the industry.
[0004] US2002 / 0035161A1 describes a cosmetic / pharmaceutical oil-in-water emulsion comprising a discontinuous fatty phase dispersed in a continuous aqueous phase and comprising an effective amount of at least one biologically active agent (A) and an effective amount of an emulsifying system (B), wherein the at least one biologically active agent (A) is non-solubilized therein in the form of finely divided particles, numerically at least 80% of the finely divided particles having a diameter in the range of 1 to 10 μm, and numerically at least 50% having a diameter less than 5 μm.
[0005] Co-pending European Application No. discloses enhanced deposition of octopirox in hair care compositions containing a cleansing surfactant comprising an amphoteric surfactant and an ethoxylated anionic surfactant in a ratio of 2:1 to 6:1.
[0006] Improved deposition of octopirox in compositions containing polyquaternium 6 is disclosed in co-pending European application 11988726.4.
[0007] Despite all the prior art, there remains a need to improve the deposition of piroctone compounds (particularly piroctonic acid or piroctone olamine) onto the scalp and / or hair surface during the cleansing process, and furthermore, to improve deposition onto said surfaces without adversely affecting feel, formulation rheology, and conditioning performance. [Prior art documents] [Patent documents]
[0008] [Patent Document 1] US2002 / 0035161A1 Summary of the Invention
[0009] The present invention provides (i) a cleansing surfactant comprising an amphoteric surfactant and an anionic surfactant, wherein the anionic surfactant, if ethoxylated, has a degree of ethoxylation of less than 3, wherein the ratio of anionic surfactant to amphoteric surfactant is less than 5:1; (ii) an oil phase containing at least one liquid hydrocarbon triglyceride oil; (iii) C4~C 10 an aliphatic fatty acid or a salt thereof having a carbon chain length of (iv) piroctone compounds; wherein the composition has a pH of 6 or less at 20°C, and the weight ratio of aliphatic fatty acid to triglyceride oil is 1:2 to 5:1.
[0010] The present invention further relates to a non-therapeutic method of treating hair or scalp, wherein the method comprises applying the personal care composition described above.
[0011] The present invention further relates to the use of the above composition in a method for alleviating dandruff.
[0012] For the avoidance of doubt, any feature of one aspect of the present invention may also be utilized in any other aspect of the present invention. Any feature described as "preferred" is to be understood as being particularly preferred in combination with one or more additional preferred features. Any feature of a particular embodiment herein may also be utilized in any other embodiment of the present invention. All percentages are weight / weight percentages unless otherwise indicated. DETAILED DESCRIPTION OF THE INVENTION
[0013] Piroctone compounds for use in the present invention include piroctonic acid, primary, secondary, and tertiary olamine salts of piroctonic acid (e.g., diethanolamine and triethanolamine salts), and mixtures thereof, preferably piroctonic acid, primary olamine salt of piroctonic acid (i.e., piroctone olamine, also known as Octirox®).
[0014] Piroctone olamine is the olamine salt of the hydroxamic acid derivative piroctone. It is commonly known as piroctone ethanolamine, which has the trade name Octirox®.
[0015] Piroctone olamine according to the present invention is a 1:1 compound of 1-hydroxy-4-methyl-6-(2,4,4-trimethylpentyl)-2(1H)-pyridinone and 2-aminoethanol, and is also referred to as 1-hydroxy-4-methyl-6-(2,4,4-trimethylpentyl)-2(1H)pyridinone monoethanolamine salt. Its CAS number is 68890-66-4, and the compound is represented by the following general formula (I): [ka]
[0016] The piroctone compound, particularly piroctone olamine, is preferably present in an amount of 0.01 to 5% by weight of the total composition, more preferably 0.1 to 5% by weight, and most preferably 0.2 to 5% by weight of the total composition.
[0017] The compositions of the present invention comprise an oil phase comprising a triglyceride oil. Preferred triglycerides include almond oil, coconut oil, olive oil, palm kernel oil, peanut oil and sunflower oil. Coconut oil is particularly preferred.
[0018] The compositions according to the invention comprise an oil phase, preferably one that forms worm-like micelles in an aqueous continuous phase, preferably one that is a co-continuous phase and / or a true emulsion.
[0019] Preferably the total level of non-volatile hydrocarbon oils is from 0.02 to 2% by weight of the total composition, more preferably from 0.05 to 1.0%.
[0020] The composition of the present invention is 10 or a salt thereof, and preferably the fatty acid or salt thereof is caprylic acid or a salt thereof.
[0021] The weight ratio of aliphatic fatty acids to triglycerides is 1:2 to 5:1, and more preferably 2:3 to 3:1.
[0022] The composition according to the invention has a pH at 20° C. of not more than 6, preferably less than 6, more preferably less than 5.5, and most preferably not more than 5. Preferably, the pH at 20° C. is greater than 3.
[0023] The cosmetic composition contains one cleansing surfactant. Surfactants are compounds with hydrophilic and hydrophobic moieties that act to reduce the surface tension of the aqueous solution in which they are dissolved. The cleansing surfactant includes an amphoteric surfactant and an ethoxylated anionic surfactant, wherein the anionic surfactant preferably has an average ethoxylation degree of less than 2.5, more preferably less than 2, and most preferably less than 1.5.
[0024] The alkyl chain of the ethoxylated anionic surfactant preferably has 8 to 18 carbon atoms, more preferably 10 to 16 carbon atoms, and may be unsaturated. Preferred alkyl ether sulfates are represented by the formula (I): [ka]
[0025] where R is a linear or branched alkyl chain having 8 to 18 (preferably 12 to 18) carbon atoms; n is an average degree of ethoxylation of 3 or more, preferably 3; and M is a solubilizing cation such as sodium, potassium, ammonium, or substituted ammonium. An example is sodium lauryl ether sulfate (SLES). The most preferred example is SLES having an average degree of ethoxylation of 3 or more, preferably 3, and preferably the surfactant is sodium laureth sulfate (3EO).
[0026] Preferred amphoteric or zwitterionic cleansing surfactants include alkylamine oxides, alkylbetaines, alkylamidopropylbetaines, alkylsulfobetaines (sultaines), alkylglycinates, alkylcarboxyglycinates, alkylamphoacetates, alkylamphopropionates, alkylamphoglycinates, alkylamidopropylhydroxysultaines, acyltaurates, and acylglutamates, where the alkyl and acyl groups have 8 to 19 carbon atoms. Preferred amphoteric surfactants include cocodimethylsulfopropylbetaine, laurylbetaine, cocobetaine, cocamidopropylbetaine, and sodium cocoamphoacetate. A particularly preferred amphoteric surfactant is cocamidopropylbetaine.
[0027] The ratio of ethoxylated anionic surfactant to amphoteric surfactant is less than 5:1 (preferably 2:1 to 5:1, more preferably 3:1 to 4:1), and the ratio of anionic surfactant to amphoteric surfactant is less than 5:1 (preferably 2:1 to 5:1, more preferably 3:1 to 4:1).
[0028] The total amount of cleansing surfactant in a shampoo composition for use in the present invention will generally be from 3 to 35% by weight of the total composition, preferably from 5 to 25% by weight, most preferably from 7 to 15% by weight.
[0029] Non-limiting examples of additional cleansing anionic surfactants which may be present but are not preferred are alkyl sulfates, alkaryl sulfonates, N-alkyl sarcosinates, alkyl phosphates, alkyl ether phosphates, surfactants based on acylamino acids, alkyl ether carboxylic acids, acyl taurates, acyl glutamates, alkyl glycinates and their salts, in particular their sodium, magnesium, ammonium and mono-, di- and triethanolamine salts. The alkyl and acyl groups in the foregoing list generally contain from 8 to 18, preferably from 10 to 16, carbon atoms and may be unsaturated.
[0030] Further non-limiting examples of cleansing surfactants include nonionic cleansing surfactants, including: aliphatic (C8-C9) cleansing surfactants with alkylene oxide (which is usually ethylene oxide and generally has 6 to 30 ethylene oxide groups); 18 ) primary or secondary straight or branched chain alcohols. However, it is preferred that no nonionic cleansing surfactants are present. Other representative cleansing surfactants include mono- or di-alkyl alkanolamides (which include, for example, coco monoethanolamide and coco monoisopropanolamide) and alkyl polyglycosides (APGs). Alkyl polyglycosides suitable for use in the present invention are commercially available and include, for example, materials identified as Plantapon 1200 and Plantapon 2000 manufactured by BASF. Other sugar-derived surfactants that can be included in compositions for use in the present invention include C 10 -C 18 N-Alkyl (C1-C6) polyhydroxy fatty acid amides (e.g., C 12 -C 18 N-methylglucamides, which are described, for example, in WO 9206154 and US 5194639, and N-alkoxypolyhydroxyfatty acid amides (e.g., C 10 -C 18N-(3-methoxypropyl)glucamide).
[0031] The personal care composition can include at least one cationic deposition polymer. Suitable cationic polymers can be cationically substituted homopolymers or can be formed from two or more types of monomers. The weight average (M w The molecular weight of the polymer is generally 100,000 to 2,000,000 daltons. The polymer has cationic nitrogen-containing groups such as quaternary ammonium or protonated amino groups, or mixtures thereof. If the molecular weight of the polymer is too low, the conditioning effect will be poor. If it is too high, there may be problems with high extensional viscosity, which will cause the composition to string when poured.
[0032] The cationic nitrogen-containing group is generally present as a substituent on a portion of all the monomer units of the cationic polymer. Therefore, if the polymer is not a homopolymer, it may contain spacer non-cationic monomer units. Such polymers are described in the CTFA Cosmetic Ingredient Directory, 3rd Edition. The ratio of cationic to non-cationic monomer units is selected to provide a polymer with a cationic charge density in the required range, which is generally 0.2 to 3.0 meq / gm. The cationic charge density of the polymer is suitably determined by the Kjeldahl method under the chemical test for nitrogen determination, as described in the United States Pharmacopeia.
[0033] Suitable cationic polymers include, for example, copolymers of vinyl monomers having cationic amine or quaternary ammonium functional groups and water-soluble spacer monomers (e.g., (meth)acrylamides, alkyl and dialkyl (meth)acrylamides, alkyl (meth)acrylates, vinyl caprolactone, and vinyl pyrrolidine). The alkyl and dialkyl substituted monomers preferably have C1-C7 alkyl groups, more preferably C 1-3Other suitable spacers include vinyl esters, vinyl alcohol, maleic anhydride, propylene glycol, and ethylene glycol.
[0034] The cationic amines can be primary, secondary, or tertiary amines, depending on the particular species and the pH of the composition. Generally, secondary and tertiary amines are preferred, with tertiary amines being particularly preferred.
[0035] Amine-substituted vinyl monomers and amines can be polymerized in the amine form and then converted to ammonium by quaternization.
[0036] The cationic polymer may comprise a mixture of monomer units derived from amine-substituted monomers and / or quaternary ammonium-substituted monomers and / or compatible spacer monomers.
[0037] Non-limiting examples of suitable cationic polymers include: cationic diallyl quaternary ammonium-containing polymers, such as dimethyldiallylammonium chloride homopolymer and copolymer of acrylamide and dimethyldiallylammonium chloride, which are referred to in the industry (CTFA) as Polyquaternium 6 and Polyquaternium 7, respectively; Mineral acid salts of amino-alkyl esters of homopolymers and copolymers of unsaturated carboxylic acids having 3 to 5 carbon atoms (as described in US Pat. No. 4,009,256); Cationic polyacrylamides (which are described in WO 95 / 22311).
[0038] Other cationic polymers that can be used include cationic polysaccharide polymers, such as cationic cellulose derivatives, cationic starch derivatives, and cationic guar gum derivatives.
[0039] Cationic polysaccharide polymers suitable for use in the compositions for use in the present invention have the formula: [ka]
[0040] where A is an anhydroglucose residue, e.g., a starch or cellulose anhydroglucose residue, and R is an alkylene, oxyalkylene, polyoxyalkylene, or hydroxyalkylene group, or a combination thereof. 1 , R 2 and R 3 independently represent an alkyl, aryl, alkylaryl, arylalkyl, alkoxyalkyl, or alkoxyaryl group, where each group contains up to about 18 carbon atoms. The total number of carbon atoms in each cationic moiety (i.e., R 1 , R 2 and R 3 The total number of carbon atoms in (the total number of carbon atoms in) is preferably about 20 or less, and X is an anionic counterion.
[0041] Another type of cationic cellulose includes polymeric quaternary ammonium salts of hydroxyethyl cellulose reacted with lauryldimethylammonium-substituted epoxides, which are referred to in the industry (CTFA) as Polyquaternium 24. These materials are available, for example, from Amerchol Corporation under the trade name Polymer LM-200.
[0042] Other suitable cationic polysaccharide polymers include quaternary nitrogen-containing cellulose ethers (e.g., as described in U.S. Pat. No. 3,962,418) and etherified cellulose and starch copolymers (e.g., as described in U.S. Pat. No. 3,958,581). Examples of such materials include the Dow Polymer LR and JR series, commonly referred to in the industry (CTFA) as Polyquaternium 10.
[0043] A particularly suitable type of cationic polysaccharide polymer that can be used is a cationic guar gum derivative, such as guar hydroxypropyltrimethylammonium chloride (commercially available from Rhodia under the JAGUAR trademark series). Examples of such materials are JAGUAR C13S, JAGUAR C14, and JAGUAR C17.
[0044] Mixtures of any of the above cationic polymers can be used.
[0045] The cationic polymers are generally present in shampoo compositions for use in the present invention at a level of from 0.01 to 5%, preferably from 0.02 to 1%, more preferably from 0.05 to 0.8%, by total weight of cationic polymer, based on the total weight of the composition.
[0046] Preferably, the compositions of the present invention, particularly aqueous shampoo compositions for use in the present invention, further comprise a suspending agent. Suitable suspending agents are selected from polyacrylic acid, crosslinked polymers of acrylic acid, copolymers of acrylic acid and hydrophobic monomers, copolymers of carboxylic acid-containing monomers and acrylic esters, crosslinked copolymers of acrylic acid and acrylic esters, heteropolysaccharide gums, and crystalline long-chain acyl derivatives. The long-chain acyl derivatives are preferably selected from ethylene glycol stearate, alkanolamides of fatty acids having 16 to 22 carbon atoms, and mixtures thereof. Ethylene glycol distearate and polyethylene glycol 3 distearate are preferred long-chain acyl derivatives because they impart a pearlescent appearance to the composition. Polyacrylic acid is commercially available as Carbopol 420, Carbopol 488, or Carbopol 493. Polymers of acrylic acid crosslinked with polyfunctional agents can also be used. They are commercially available as Carbopol 910, Carbopol 934, Carbopol 941, and Carbopol 980. An example of a suitable copolymer of a carboxylic acid-containing monomer and an acrylic acid ester is Carbopol 1342. All Carbopol™ materials are available from Goodrich.
[0047] Suitable cross-linked polymers of acrylic acid and acrylic acid esters are Pemulen TR1 or Pemulen TR2.A suitable heteropolysaccharide gum is xanthan gum, for example that available as Kelzan mu.
[0048] Mixtures of any of the above suspending agents may be used, with a preferred mixture being a crosslinked polymer of acrylic acid and a crystalline long chain acyl derivative.
[0049] Suspending agents are generally present in shampoo compositions for use in the present invention at a level of from 0.1 to 10%, preferably from 0.15 to 6%, more preferably from 0.2 to 4%, by total weight of suspending agent, based on the total weight of the composition.
[0050] The cosmetic composition may optionally contain one or more ingredients, provided that the optional ingredients are physically and chemically compatible with the essential ingredients described above and do not otherwise unduly impair the feel, formulation rheology, and conditioning performance. The individual concentration of such optional ingredients may range from 0.001% to 10% by weight of the total composition, preferably from 0.01% to 5% by weight. Such ingredients may include conditioning agents, fragrances, dyes, pigments, pH adjusters, pearlescent or opacifying agents, viscosity adjusters, preservatives, and natural hair nutrients, such as plant and fruit extracts, sugar derivatives, and amino acids.
[0051] One preferred optional ingredient is a suspending agent. Suitable suspending agents are selected from polyacrylic acid, crosslinked polymers of acrylic acid, copolymers of acrylic acid and hydrophobic monomers, copolymers of carboxylic acid-containing monomers and acrylic esters, crosslinked copolymers of acrylic acid and acrylic esters, heteropolysaccharide gums, and crystalline long-chain acyl derivatives. The long-chain acyl derivatives are preferably selected from ethylene glycol stearate, alkanolamides of fatty acids having 16 to 22 carbon atoms, and mixtures thereof. Ethylene glycol distearate and polyethylene glycol 3 distearate are preferred long-chain acyl derivatives because they impart a pearlescent appearance to the composition. Polyacrylic acid is commercially available as Carbopol 420, Carbopol 488, or Carbopol 493. Polymers of acrylic acid crosslinked with polyfunctional agents can also be used. They are commercially available as Carbopol 910, Carbopol 934, Carbopol 941, and Carbopol 980. An example of a suitable copolymer of a carboxylic acid-containing monomer and an acrylic acid ester is Carbopol 1342. All Carbopol™ materials are available from Goodrich. A suitable crosslinked polymer of acrylic acid and an acrylic acid ester is Pemulen TR1 or Pemulen TR2.
[0052] Mixtures of any of the above suspending agents may be used, with a preferred mixture being a crosslinked polymer of acrylic acid and a crystalline long chain acyl derivative.
[0053] The most preferred example is a cross-linked polyacrylate polymer.
[0054] When included, suspending agents will generally be present in the composition at a level of from 0.01 to 5% by weight, preferably from 0.1 to 2.5% by weight, more preferably from 0.25 to 1% by weight.
[0055] Another preferred optional component is a conditioning agent that provides conditioning benefits.Typically, the most well-known conditioning agent used in cosmetic compositions is water-insoluble oily substance, such as mineral oil, natural oil, such as triglyceride and silicone oil.Conditioning benefits are achieved by attaching oily substance to hair, thereby forming a film, and this film makes hair smoother and less prone to dryness.Preferably, the conditioning agent is non-volatile, which means that it has a vapor pressure of less than 1000 Pa at 25 ℃.
[0056] Preferably, the composition comprises discrete dispersed droplets of a water-insoluble conditioning agent, wherein the dispersed droplets have a mean droplet diameter (D) of less than 50 microns, preferably less than 30 microns, more preferably less than 15 microns, and most preferably less than 10 microns. 3,2 ) The average droplet diameter (D 3,2) can be measured using laser light scattering techniques, for example, using a Malvern Instruments 2600D Particle Sizer. The water-insoluble conditioning agent can include non-silicone conditioning agents containing non-silicone oily or fatty materials (e.g., hydrocarbon oils, fatty acid esters, and mixtures thereof). Preferably, the water-insoluble conditioning agent is an emulsified silicone oil.
[0057] Suitable silicones include polydiorganosiloxanes, in particular polydimethylsiloxanes with CTFA name dimethicone.Also suitable for use in the compositions of the present invention (especially shampoos and conditioners) is polydimethylsiloxanes with hydroxyl end groups, which have CTFA name dimethiconol.Also suitable for use in the compositions of the present invention is silicone gum with a low degree of crosslinking, which is described, for example, in WO96 / 31188.Preferably, the silicone oil comprises dimethicone, dimethiconol, or a mixture thereof.
[0058] The viscosity of the emulsified silicone itself (not the emulsion or the final hair care composition) is typically at least 10,000 cSt (centistokes = mm) at 25°C. 2 ·S -1 ), preferably at least 60,000 cSt, most preferably at least 500,000 cSt, and ideally at least 1,000,000 cSt. For ease of formulation, preferably the viscosity is less than 10 9 The kinematic viscosity of silicone oils is not more than 10 ...
[0059] The emulsified silicone suitable for use in the composition can be obtained from silicone suppliers (for example, Dow Corning and GE Silicone) as preformed silicone emulsion.The use of such preformed silicone emulsion is preferred for ease of processing and control of silicone particle size.Such preformed silicone emulsion typically additionally contains a suitable emulsifier, and can be prepared by chemical emulsification process such as emulsion polymerization, or by mechanical emulsification using a high-shear mixer.
[0060] Examples of suitable pre-formed silicone emulsions include DC1785, DC1788, and DC7128, all available from Dow Corning, which are dimethiconol / dimethicone emulsions.
[0061] Another type of silicone that can be used is a functionalized silicone, such as an amino-functionalized silicone, which means a silicone containing at least one primary, secondary, or tertiary amine group or a quaternary ammonium group. Examples of suitable amino-functionalized silicones include polysiloxanes with the CTFA name "amodimethicone."
[0062] Preferably, the silicone emulsion droplets are mixed with a specific type of high molecular weight surface-active block polymer to form the silicone emulsion, as described, for example, in WO 03 / 094874. One preferred form of surface-active block polymer having polyoxypropylene and polyoxyethylene groups as the hydrophobic and hydrophilic portions, respectively, is represented by formula (V) and has the CTFA name poloxamer, which is commercially known from BASF under the trade name "Pluronic." [ka]
[0063] Suitably, the average value of x in formula (I) is 4 or greater, preferably 8 or greater, more preferably 25 or greater, even more preferably 50 or greater, and most preferably 80 or greater. The average value of x is typically 200 or less. Suitably, the average value of y is 25 or greater, preferably 35 or greater, more preferably 45 or greater, and most preferably 60 or greater. The average value of y is typically 100 or less.
[0064] Another preferred form of surface-active block polymer is represented by formula (VI) and has the CTFA name poloxamine. They are commercially available from BASF under the trade name "Tetronic." [ka]
[0065] Suitably, the average value of a is 2 or more, preferably 4 or more, more preferably 8 or more, even more preferably 25 or more, and most preferably 40 or more. The average value of a is typically 200 or less. The average value of b is suitably 6 or more, preferably 9 or more, more preferably 11 or more, and most preferably 15 or more. The average value of b is typically 50 or less.
[0066] Preferably, the surface-active block polymer is a poloxamer and / or a poloxamine, more preferably, the surface-active block polymer is a poloxamer.
[0067] Preferably, the surface-active block polymer is blended with dimethicone, and the weight ratio of dimethicone to surface-active block polymer in the blend is preferably in the range of 2:1 to 200:1, more preferably 5:1 to 50:1, even more preferably 10:1 to 40:1, and most preferably 15:1 to 30:1.
[0068] The water-insoluble conditioning agent is generally present in the composition in an amount of from 0.05 to 15%, preferably from 0.1 to 10%, more preferably from 0.5 to 8%, and most preferably from 1 to 5%, based on the total weight of the composition, and includes all ranges subsumed therein.
[0069] The composition may preferably contain a pearlescent agent. The preferred pearlescent agent is an ethylene glycol ester disclosed in U.S. Patent No. 4,885,107, which is incorporated herein by reference. Preferably, the ethylene glycol ester is a glycol monoester or diester, more preferably a glycol diester.
[0070] Preferably, the ethylene glycol monoester or diester is C 12―22 Ethylene glycol monoesters or diesters of fatty acids, more preferably saturated C 12―22 The pearlescent agent is an ethylene glycol monoester or diester of a fatty acid. Most preferred is a diester containing a mixture of palmitate and stearate. The amount of stearate should be within the range of about 10% to about 42% or within the range of about 55% to about 80%, with palmitate accounting for the remainder. The amount of stearate is preferably about 60% to about 75%, more preferably about 80 to 95%, and most preferably 100%. The most suitable example of a pearlescent agent is ethylene glycol distearate. The pearlescent agent can also function as a suspending agent.
[0071] The level of the ethylene glycol ester is suitably from about 0.5% to about 6%, preferably from about 1% to about 4% by weight of the total composition.
[0072] The viscosity of the composition, measured at 30°C using a Brookfield V2 viscometer (spindle RTV5, 1 minute, 20 rpm), is suitably in the range of 3,000 to 10,000 mPa·s, preferably in the range of 4,000 to 8,000 mPa·s, and more preferably in the range of 5,000 to 7,000 mPa·s.
[0073] The pH of the composition of the present invention is preferably within the range of 3 to 9, more preferably within the range of 4 to 8, and most preferably within the range of 4.5 to 6.5.
[0074] Rinse-off compositions are intended to be rinsed off the user's scalp with water after use. Rinse-off compositions are preferred. Leave-on compositions are intended not to be rinsed off the user's scalp immediately after use (i.e., within at least the first two hours, preferably at least four hours, after application of the composition). In the context of the present invention, rinse-off compositions include shampoos and conditioners, as well as treatment compositions that may be left on the scalp for 0.5 to 15 minutes (preferably, 1 to 10 minutes, more preferably, 1 to 10 minutes) before being rinsed off.
[0075] The preferred use of the cosmetic composition is in shampoos, particularly rinse-off shampoos. Shampoo compositions for use in the present invention are generally aqueous, i.e., they have water or an aqueous solution or a lyotropic liquid crystal phase as their main component. Suitably, the shampoo composition contains 50 to 98 wt. %, preferably 60 to 92 wt. %, of water based on the total weight of the composition. Such compositions are said to have an aqueous base.
[0076] The invention will now be illustrated by the following non-limiting examples, in which examples of the invention are designated by numbers and comparative examples are designated by letters.
[0077] Example The examples were prepared according to Tables 1 and 3.
[0078] Piroctone olamine deposition was measured by thoroughly wetting ten clean, dark brown European hair switches (2.5 g / 6 in) with water. Five replicas were tested for each shampoo composition. 0.25 g of shampoo was applied to one switch, followed by a 30-second massage. The switch was then rinsed with water for 30 seconds. 0.25 g of shampoo was applied again, followed by a further 30-second massage. The shampoo was then rinsed off with water for 30 seconds. The switch was allowed to air dry. The dried switch was extracted with 50 mL of ethanol. Care was taken to avoid exposing the extract to UV light. The extract was analyzed by UPLC for piroctonic acid deposition.
[0079] [Table 1]
[0080] [Table 2]
[0081] [Table 3]
[0082] [Table 4]
Claims
1. 1. A personal cleansing composition comprising: (i) a cleansing surfactant comprising an amphoteric surfactant and an anionic surfactant, wherein the anionic surfactant, if ethoxylated, has a degree of ethoxylation of less than 3, wherein the weight ratio of anionic surfactant to amphoteric surfactant is less than 5:1; (ii) an oil phase comprising at least one triglyceride oil consisting of coconut oil; (iii) an aliphatic fatty acid or salt thereof, which is caprylic acid or a salt thereof; and (iv) piroctone compounds; wherein the composition has a pH of 6 or less at 20°C, and the weight ratio of aliphatic fatty acid to triglyceride oil is 2:3 to 3:
1.
2. 10. The personal cleansing composition of claim 1, wherein the pH of the composition is less than 6.
3. 3. The personal cleansing composition of claim 1 or 2, wherein the cleansing surfactant is an ethoxylated alkyl sulfate having a degree of ethoxylation of less than 2.
4. 4. The personal cleansing composition of claim 3, wherein the ethoxylated alkyl sulfate is sodium laureth sulfate (1 EO).
5. 5. The personal cleansing composition according to claim 1, wherein the piroctone compound is piroctone olamine.
6. The personal cleansing composition of any one of claims 1 to 5, further comprising a cationic polymer.
7. A personal cleansing composition according to any preceding claim, comprising a total cleansing surfactant level of from 3 to 35% by weight of the total composition.
8. 8. A personal cleansing composition according to any preceding claim, comprising a total level of piroctone compounds of from 0.1 to 5% by weight of the total composition.
9. A personal cleansing composition according to any preceding claim, wherein the total level of coconut oil is from 0.05 to 1.0% by weight of the total composition.
10. The personal cleansing composition according to any one of claims 1 to 9, which is a shampoo.
11. A non-therapeutic method of treating hair or scalp, comprising applying to the hair or scalp a personal cleansing composition according to any one of claims 1 to 9.
12. 12. The non-therapeutic method of claim 11, wherein the composition is washed off after use.
13. A personal cleansing composition according to any one of claims 1 to 9 for use in a method for alleviating dandruff.
Citation Information
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