EP1231888A1 - Verwendung von detergensgemischen als emulgatoren zur herstellung von abschminkmitteln - Google Patents
Verwendung von detergensgemischen als emulgatoren zur herstellung von abschminkmittelnInfo
- Publication number
- EP1231888A1 EP1231888A1 EP00976030A EP00976030A EP1231888A1 EP 1231888 A1 EP1231888 A1 EP 1231888A1 EP 00976030 A EP00976030 A EP 00976030A EP 00976030 A EP00976030 A EP 00976030A EP 1231888 A1 EP1231888 A1 EP 1231888A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- acid
- fatty
- carbon atoms
- oil
- alcohol
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
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- 229940100518 polyglyceryl-4 isostearate Drugs 0.000 description 1
- 229920001282 polysaccharide Polymers 0.000 description 1
- 239000005017 polysaccharide Substances 0.000 description 1
- 229920000136 polysorbate Polymers 0.000 description 1
- 229940068965 polysorbates Drugs 0.000 description 1
- 229920002451 polyvinyl alcohol Polymers 0.000 description 1
- 239000000843 powder Substances 0.000 description 1
- 125000002924 primary amino group Chemical group [H]N([H])* 0.000 description 1
- QMYSMMPDTAOQQO-UHFFFAOYSA-N prop-2-enamide;trimethylazanium;chloride Chemical compound [Cl-].C[NH+](C)C.NC(=O)C=C QMYSMMPDTAOQQO-UHFFFAOYSA-N 0.000 description 1
- 239000001294 propane Substances 0.000 description 1
- WZXKPNYMUZGZIA-UHFFFAOYSA-N propyl 3-(4-methoxyphenyl)prop-2-enoate Chemical compound CCCOC(=O)C=CC1=CC=C(OC)C=C1 WZXKPNYMUZGZIA-UHFFFAOYSA-N 0.000 description 1
- 125000001436 propyl group Chemical group [H]C([*])([H])C([H])([H])C([H])([H])[H] 0.000 description 1
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- 235000013772 propylene glycol Nutrition 0.000 description 1
- 125000004805 propylene group Chemical group [H]C([H])([H])C([H])([*:1])C([H])([H])[*:2] 0.000 description 1
- 229960002662 propylthiouracil Drugs 0.000 description 1
- 125000001453 quaternary ammonium group Chemical group 0.000 description 1
- 229960003471 retinol Drugs 0.000 description 1
- 235000020944 retinol Nutrition 0.000 description 1
- 239000011607 retinol Substances 0.000 description 1
- 229940108325 retinyl palmitate Drugs 0.000 description 1
- 235000019172 retinyl palmitate Nutrition 0.000 description 1
- 239000011769 retinyl palmitate Substances 0.000 description 1
- 235000009566 rice Nutrition 0.000 description 1
- WBHHMMIMDMUBKC-XLNAKTSKSA-N ricinelaidic acid Chemical compound CCCCCC[C@@H](O)C\C=C\CCCCCCCC(O)=O WBHHMMIMDMUBKC-XLNAKTSKSA-N 0.000 description 1
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- IKGXIBQEEMLURG-BKUODXTLSA-N rutin Chemical compound O[C@H]1[C@H](O)[C@@H](O)[C@H](C)O[C@@H]1OC[C@H]1[C@H](O)[C@@H](O)[C@H](O)[C@@H](OC=2C(C3=C(O)C=C(O)C=C3OC=2C=2C=C(O)C(O)=CC=2)=O)O1 IKGXIBQEEMLURG-BKUODXTLSA-N 0.000 description 1
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- 235000002020 sage Nutrition 0.000 description 1
- 229910052711 selenium Inorganic materials 0.000 description 1
- 239000011669 selenium Substances 0.000 description 1
- 239000012176 shellac wax Substances 0.000 description 1
- 229910052710 silicon Inorganic materials 0.000 description 1
- 239000010703 silicon Substances 0.000 description 1
- 150000003377 silicon compounds Chemical class 0.000 description 1
- 229920005573 silicon-containing polymer Polymers 0.000 description 1
- 229920002545 silicone oil Polymers 0.000 description 1
- 244000005714 skin microbiome Species 0.000 description 1
- 239000003009 skin protective agent Substances 0.000 description 1
- 239000000344 soap Substances 0.000 description 1
- 239000011780 sodium chloride Substances 0.000 description 1
- 239000002904 solvent Substances 0.000 description 1
- 235000010199 sorbic acid Nutrition 0.000 description 1
- 239000004334 sorbic acid Substances 0.000 description 1
- 229940075582 sorbic acid Drugs 0.000 description 1
- 239000001593 sorbitan monooleate Substances 0.000 description 1
- 229940035049 sorbitan monooleate Drugs 0.000 description 1
- 235000011069 sorbitan monooleate Nutrition 0.000 description 1
- 150000003408 sphingolipids Chemical class 0.000 description 1
- 150000003410 sphingosines Chemical class 0.000 description 1
- 229940032094 squalane Drugs 0.000 description 1
- 229940031439 squalene Drugs 0.000 description 1
- TUHBEKDERLKLEC-UHFFFAOYSA-N squalene Natural products CC(=CCCC(=CCCC(=CCCC=C(/C)CCC=C(/C)CC=C(C)C)C)C)C TUHBEKDERLKLEC-UHFFFAOYSA-N 0.000 description 1
- 239000003381 stabilizer Substances 0.000 description 1
- 239000008107 starch Substances 0.000 description 1
- 235000019698 starch Nutrition 0.000 description 1
- 229960004274 stearic acid Drugs 0.000 description 1
- 235000003702 sterols Nutrition 0.000 description 1
- 229940032091 stigmasterol Drugs 0.000 description 1
- HCXVJBMSMIARIN-PHZDYDNGSA-N stigmasterol Chemical compound C1C=C2C[C@@H](O)CC[C@]2(C)[C@@H]2[C@@H]1[C@@H]1CC[C@H]([C@H](C)/C=C/[C@@H](CC)C(C)C)[C@@]1(C)CC2 HCXVJBMSMIARIN-PHZDYDNGSA-N 0.000 description 1
- 235000016831 stigmasterol Nutrition 0.000 description 1
- BFDNMXAIBMJLBB-UHFFFAOYSA-N stigmasterol Natural products CCC(C=CC(C)C1CCCC2C3CC=C4CC(O)CCC4(C)C3CCC12C)C(C)C BFDNMXAIBMJLBB-UHFFFAOYSA-N 0.000 description 1
- ARCJQKUWGAZPFX-UHFFFAOYSA-N stilbene oxide Chemical compound O1C(C=2C=CC=CC=2)C1C1=CC=CC=C1 ARCJQKUWGAZPFX-UHFFFAOYSA-N 0.000 description 1
- 235000021286 stilbenes Nutrition 0.000 description 1
- 150000001629 stilbenes Chemical class 0.000 description 1
- 239000000758 substrate Substances 0.000 description 1
- 239000005720 sucrose Substances 0.000 description 1
- 150000008163 sugars Chemical class 0.000 description 1
- 125000001273 sulfonato group Chemical group [O-]S(*)(=O)=O 0.000 description 1
- 125000005555 sulfoximide group Chemical group 0.000 description 1
- CXVGEDCSTKKODG-UHFFFAOYSA-N sulisobenzone Chemical compound C1=C(S(O)(=O)=O)C(OC)=CC(O)=C1C(=O)C1=CC=CC=C1 CXVGEDCSTKKODG-UHFFFAOYSA-N 0.000 description 1
- 230000000475 sunscreen effect Effects 0.000 description 1
- 239000000516 sunscreening agent Substances 0.000 description 1
- 210000000106 sweat gland Anatomy 0.000 description 1
- 238000003786 synthesis reaction Methods 0.000 description 1
- 229920001059 synthetic polymer Polymers 0.000 description 1
- 229940095064 tartrate Drugs 0.000 description 1
- 125000000999 tert-butyl group Chemical group [H]C([H])([H])C(*)(C([H])([H])[H])C([H])([H])[H] 0.000 description 1
- TUNFSRHWOTWDNC-HKGQFRNVSA-N tetradecanoic acid Chemical compound CCCCCCCCCCCCC[14C](O)=O TUNFSRHWOTWDNC-HKGQFRNVSA-N 0.000 description 1
- WXNSGPDUGJZHHI-ZCXUNETKSA-N tetradecyl (z)-docos-13-enoate Chemical compound CCCCCCCCCCCCCCOC(=O)CCCCCCCCCCC\C=C/CCCCCCCC WXNSGPDUGJZHHI-ZCXUNETKSA-N 0.000 description 1
- HBPNTDBLHQHPLH-UHFFFAOYSA-N tetradecyl 16-methylheptadecanoate Chemical compound CCCCCCCCCCCCCCOC(=O)CCCCCCCCCCCCCCC(C)C HBPNTDBLHQHPLH-UHFFFAOYSA-N 0.000 description 1
- AVKVDDQTHIQFSC-UHFFFAOYSA-N tetradecyl docosanoate Chemical compound CCCCCCCCCCCCCCCCCCCCCC(=O)OCCCCCCCCCCCCCC AVKVDDQTHIQFSC-UHFFFAOYSA-N 0.000 description 1
- DZKXJUASMGQEMA-UHFFFAOYSA-N tetradecyl tetradecanoate Chemical compound CCCCCCCCCCCCCCOC(=O)CCCCCCCCCCCCC DZKXJUASMGQEMA-UHFFFAOYSA-N 0.000 description 1
- 229960002663 thioctic acid Drugs 0.000 description 1
- 150000003573 thiols Chemical class 0.000 description 1
- 229940094937 thioredoxin Drugs 0.000 description 1
- 108060008226 thioredoxin Proteins 0.000 description 1
- 239000010678 thyme oil Substances 0.000 description 1
- 229960000790 thymol Drugs 0.000 description 1
- 239000001585 thymus vulgaris Substances 0.000 description 1
- 125000002640 tocopherol group Chemical class 0.000 description 1
- 235000019149 tocopherols Nutrition 0.000 description 1
- CRDAMVZIKSXKFV-UHFFFAOYSA-N trans-Farnesol Natural products CC(C)=CCCC(C)=CCCC(C)=CCO CRDAMVZIKSXKFV-UHFFFAOYSA-N 0.000 description 1
- AQWHMKSIVLSRNY-UHFFFAOYSA-N trans-Octadec-5-ensaeure Natural products CCCCCCCCCCCCC=CCCCC(O)=O AQWHMKSIVLSRNY-UHFFFAOYSA-N 0.000 description 1
- LDHQCZJRKDOVOX-UHFFFAOYSA-N trans-crotonic acid Natural products CC=CC(O)=O LDHQCZJRKDOVOX-UHFFFAOYSA-N 0.000 description 1
- QURCVMIEKCOAJU-UHFFFAOYSA-N trans-isoferulic acid Natural products COC1=CC=C(C=CC(O)=O)C=C1O QURCVMIEKCOAJU-UHFFFAOYSA-N 0.000 description 1
- ZCIHMQAPACOQHT-ZGMPDRQDSA-N trans-isorenieratene Natural products CC(=C/C=C/C=C(C)/C=C/C=C(C)/C=C/c1c(C)ccc(C)c1C)C=CC=C(/C)C=Cc2c(C)ccc(C)c2C ZCIHMQAPACOQHT-ZGMPDRQDSA-N 0.000 description 1
- LOIYMIARKYCTBW-OWOJBTEDSA-N trans-urocanic acid Chemical compound OC(=O)\C=C\C1=CNC=N1 LOIYMIARKYCTBW-OWOJBTEDSA-N 0.000 description 1
- LOIYMIARKYCTBW-UHFFFAOYSA-N trans-urocanic acid Natural products OC(=O)C=CC1=CNC=N1 LOIYMIARKYCTBW-UHFFFAOYSA-N 0.000 description 1
- 150000003918 triazines Chemical class 0.000 description 1
- 229960003500 triclosan Drugs 0.000 description 1
- 150000005691 triesters Chemical class 0.000 description 1
- 239000001069 triethyl citrate Substances 0.000 description 1
- VMYFZRTXGLUXMZ-UHFFFAOYSA-N triethyl citrate Natural products CCOC(=O)C(O)(C(=O)OCC)C(=O)OCC VMYFZRTXGLUXMZ-UHFFFAOYSA-N 0.000 description 1
- 235000013769 triethyl citrate Nutrition 0.000 description 1
- 230000001960 triggered effect Effects 0.000 description 1
- 239000013638 trimer Substances 0.000 description 1
- QXJQHYBHAIHNGG-UHFFFAOYSA-N trimethylolethane Chemical compound OCC(C)(CO)CO QXJQHYBHAIHNGG-UHFFFAOYSA-N 0.000 description 1
- FQAZRHVERGEKOS-UHFFFAOYSA-N tripropan-2-yl 2-hydroxypropane-1,2,3-tricarboxylate Chemical compound CC(C)OC(=O)CC(O)(C(=O)OC(C)C)CC(=O)OC(C)C FQAZRHVERGEKOS-UHFFFAOYSA-N 0.000 description 1
- ODHUFJLMXDXVRC-UHFFFAOYSA-N tripropyl 2-hydroxypropane-1,2,3-tricarboxylate Chemical compound CCCOC(=O)CC(O)(C(=O)OCCC)CC(=O)OCCC ODHUFJLMXDXVRC-UHFFFAOYSA-N 0.000 description 1
- OUYCCCASQSFEME-UHFFFAOYSA-N tyrosine Natural products OC(=O)C(N)CC1=CC=C(O)C=C1 OUYCCCASQSFEME-UHFFFAOYSA-N 0.000 description 1
- 229940040064 ubiquinol Drugs 0.000 description 1
- QNTNKSLOFHEFPK-UPTCCGCDSA-N ubiquinol-10 Chemical compound COC1=C(O)C(C)=C(C\C=C(/C)CC\C=C(/C)CC\C=C(/C)CC\C=C(/C)CC\C=C(/C)CC\C=C(/C)CC\C=C(/C)CC\C=C(/C)CC\C=C(/C)CCC=C(C)C)C(O)=C1OC QNTNKSLOFHEFPK-UPTCCGCDSA-N 0.000 description 1
- 229940035936 ubiquinone Drugs 0.000 description 1
- 235000021122 unsaturated fatty acids Nutrition 0.000 description 1
- 150000004670 unsaturated fatty acids Chemical class 0.000 description 1
- 229940116269 uric acid Drugs 0.000 description 1
- 229940088594 vitamin Drugs 0.000 description 1
- 229930003231 vitamin Natural products 0.000 description 1
- 235000013343 vitamin Nutrition 0.000 description 1
- 239000011782 vitamin Substances 0.000 description 1
- 235000019155 vitamin A Nutrition 0.000 description 1
- 239000011719 vitamin A Substances 0.000 description 1
- 235000019154 vitamin C Nutrition 0.000 description 1
- 239000011718 vitamin C Substances 0.000 description 1
- 229940045997 vitamin a Drugs 0.000 description 1
- 235000020234 walnut Nutrition 0.000 description 1
- 229920003169 water-soluble polymer Polymers 0.000 description 1
- 239000002023 wood Substances 0.000 description 1
- 150000003751 zinc Chemical class 0.000 description 1
- 229940071566 zinc glycinate Drugs 0.000 description 1
- UOXSXMSTSYWNMH-UHFFFAOYSA-L zinc;2-aminoacetate Chemical compound [Zn+2].NCC([O-])=O.NCC([O-])=O UOXSXMSTSYWNMH-UHFFFAOYSA-L 0.000 description 1
- OENHQHLEOONYIE-JLTXGRSLSA-N β-Carotene Chemical compound CC=1CCCC(C)(C)C=1\C=C\C(\C)=C\C=C\C(\C)=C\C=C\C=C(/C)\C=C\C=C(/C)\C=C\C1=C(C)CCCC1(C)C OENHQHLEOONYIE-JLTXGRSLSA-N 0.000 description 1
Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K8/00—Cosmetics or similar toiletry preparations
- A61K8/18—Cosmetics or similar toiletry preparations characterised by the composition
- A61K8/30—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds
- A61K8/33—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds containing oxygen
- A61K8/34—Alcohols
- A61K8/342—Alcohols having more than seven atoms in an unbroken chain
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K8/00—Cosmetics or similar toiletry preparations
- A61K8/18—Cosmetics or similar toiletry preparations characterised by the composition
- A61K8/30—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds
- A61K8/33—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds containing oxygen
- A61K8/37—Esters of carboxylic acids
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K8/00—Cosmetics or similar toiletry preparations
- A61K8/18—Cosmetics or similar toiletry preparations characterised by the composition
- A61K8/30—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds
- A61K8/33—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds containing oxygen
- A61K8/37—Esters of carboxylic acids
- A61K8/375—Esters of carboxylic acids the alcohol moiety containing more than one hydroxy group
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K8/00—Cosmetics or similar toiletry preparations
- A61K8/18—Cosmetics or similar toiletry preparations characterised by the composition
- A61K8/30—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds
- A61K8/33—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds containing oxygen
- A61K8/39—Derivatives containing from 2 to 10 oxyalkylene groups
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61Q—SPECIFIC USE OF COSMETICS OR SIMILAR TOILETRY PREPARATIONS
- A61Q1/00—Make-up preparations; Body powders; Preparations for removing make-up
- A61Q1/14—Preparations for removing make-up
-
- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K23/00—Use of substances as emulsifying, wetting, dispersing, or foam-producing agents
- C09K23/017—Mixtures of compounds
- C09K23/018—Mixtures of two or more different organic oxygen-containing compounds
Definitions
- the invention is in the field of cosmetics and relates to the use of a quaternary mixture of surface-active fatty substances for the production of make-up removers.
- a typical make-up composition contains, for example, glycerol monostearate, cetyl alcohol, stearic acid, paraffin oil, cetyl stearyl octanoate, octyl palmitate, talc, titanium dioxide, iron oxides, propylene glycol, polysorbates, xanthan, magnesium aluminum silicate, glycerin, perfume oils, preservatives and water , Mascara or mascara contain waxes, dyes, emulsifiers and thickeners. In addition to colorants, waxes and oil bodies, lipsticks also contain mica titanium dioxide and, more recently, silicon compounds.
- Eyeshadows are usually mixtures of dyes with mica or titanium dioxide, which can contain talc, paraffin oil, kaolin, metal soaps, wax alcohols and emulsifiers as further ingredients.
- Kajal pencils contain, for example, iron oxides, vegetable oils, waxes, fatty acids, talc and emulsifiers.
- Corresponding cosmetic cleaning agents must therefore remove a large number of completely different substances as completely as possible from the skin, i.e. dissolve typical waxes, oils and silicone compounds and at the same time also solubilize pigments such as mica or titanium dioxide. Furthermore, they have to be as mild as possible in order not to cause reddening of the skin or even irritation to the eyes of the consumers.
- Preparations of this type are usually offered either in the form of lotions, optionally on cotton wads, or as creams.
- the consumer also wishes that the products, which are always emulsions, have sufficient storage stability and, in particular, do not irreversibly separate in the heat.
- the complex object of the present invention has been to develop emulsifiers which allow the production of make-up remover, which at the same time have a high cleaning ability against waxes, oils, silicone compounds and also against pigments, are extremely compatible with the skin and mucous membranes, and moreover also have a particularly high storage stability.
- the mixtures should also be low-viscosity, cold-producible and miscible with water.
- the invention relates to the use of detergent mixtures containing
- the detergent mixtures to be used according to the invention excellently fulfill the desired profile of properties and are therefore particularly suitable as emulsifiers for the production of make-up removers.
- Fatty alcohols which are suitable as component (a) preferably follow the formula (I),
- R 1 represents a linear or branched alkyl radical having 12 to 22 carbon atoms.
- suitable fatty alcohols are lauryl alcohol, isotridecyl alcohol, myristyl alcohol, cetyl alcohol, palmoleyl alcohol, stearyl alcohol, isostearyl alcohol and behenyl alcohol and their technical mixtures, which are used, for example, in the high-pressure hydrogenation of technical methyl esters based on fats and oils or aldehydes from the Roesen synthesis and as oxides Monomer fraction in the dimerization of unsaturated fatty alcohols.
- Technical fatty alcohols with 12 to 18 carbon atoms such as coconut, palm, palm kernel or tallow fatty alcohol, are preferred.
- fatty alcohol polyglycol ethers are preferred.
- Fatty alcohol polyglycol ethers which can be used as component (b) preferably follow the formula (II),
- R 2 is a linear or branched alkyl and / or alkenyl radical having 6 to 22 carbon atoms and n is a number from 1 to 50.
- Typical examples of these are the analgesic products of an average of 1 to 50, preferably 10 to 25 and in particular 12 to 20 moles of ethylene oxide are caprone alcohol, caprylic alcohol, 2-ethylhexyl alcohol, capric alcohol, lauryl alcohol, isotridecyl alcohol, myristyl alcohol, cetyl alcohol, palmoleyl alcohol, stearyl alcohol , Isostearyl alcohol, oleyl alcohol, elaidyl alcohol, petroselinyl alcohol, linolyl alcohol, linolenyl alcohol, elausestearyl alcohol, arachyl alcohol, gadoleyl alcohol, behenyl alcohol, erucyl alcohol and brassidyl alcohol as well as their technical mixtures based, for example, on the high pressure hydrogenation of
- the polyglycol ethers can have a conventionally broad or narrow homolog distribution.
- a particularly preferred combination is the mixture of a cetearyl alcohol + 12EO and a cetearyl alcohol + 20EO
- Partial glycerides ie monoglycerides, diglycerides and their technical mixtures, which form component (c), can still contain small amounts of triglycerides due to the production process.
- the partial glycerides preferably follow the formula (III)
- R 3 CO is a linear or branched, saturated and / or unsaturated acyl radical having 6 to 22, preferably 12 to 18 carbon atoms
- R 4 and R 5 independently of one another for R 3 CO or OH and the sum (x1 + x2 + x3 ) stands for 0 or numbers from 1 to 100, preferably 5 to 25, with the proviso that at least one of the two radicals R 4 and R 5 is OH.
- Typical examples are mono- and / or diglycerides based on caproic acid, caprylic acid, 2-ethylhexanoic acid, capric acid, lauric acid, isotridecanoic acid, myristic acid, palmitic acid, palmoleic acid, stearic acid, isostearic acid, oleic acid, elaidic acid, petroselinic acid, linoleic acid Linolenic acid, elaeostearic acid, arachic acid, gadoleic acid, behenic acid and erucic acid and their technical mixtures.
- Suitable fatty acid alkyl esters which are suitable as component (d) are preferably substances which follow the formula (IV)
- R 6 CO represents a linear or branched acyl radical having 6 to 22 carbon atoms and 0 and / or 1 to 3 double bonds
- R 7 represents a linear or branched alkyl radical having 6 to 22 carbon atoms and 0 and / or 1 to 3 double bonds, with the proviso that the total number of carbon atoms is at least 18.
- Typical examples are myristyl myristate, myristyl palmitate, myristyl stearate, Myristylisostearat, myristyl, Myristylbehenat, Myristylerucat, cetyl myristate, cetyl palmitate, cetyl stearate, Cetylisostearat, cetyl oleate, cetyl behenate, Cetylerucat, Stearylmyristat, stearyl palmitate, stearyl stearate, Stearylisostearat, stearyl oleate, stearyl behenate, Stearylerucat, isostearyl, isostearyl palmitate, Isostearylstearat , isostearyl isostearate, Isostearyloleat, isostearyl behenate, Isostearyloleat, oleyl myristate, oleyl palmitate, oleyl
- detergent mixtures which, based on the mixtures, have the following composition:
- the detergent mixtures are usually used in amounts of 1 to 10, preferably 3 to 8,% by weight, based on the detergent.
- the make-up removal agents obtainable with the use according to the invention can be in the form of lotions or creams or wet wipes or cotton pads soaked with them, and furthermore, as further auxiliaries and additives, mild surfactants, oil bodies, co-emulsifiers, superfatting agents, pearlescent waxes, consistency agents, thickeners, polymers, silicone compounds, Fats, waxes, lecithins, phospholipids, stabilizers, biogenic agents, swelling agents, UV light protection factors, antioxidants, hydrotropes, preservatives, solubilizers, perfume oils, dyes and the like.
- Suitable mild, i.e. particularly skin-compatible surfactants are fatty alcohol polyglycolethersulfate, monoglyceride sulfates, mono- and / or dialkyl sulfosuccinates, FettLiteieri- thionate acid taurides, fatty acid glutamates, ⁇ -olefinsulfonates, ether carboxylic acids, alkyl oligoglucosides, fatty acid glucamides, alkylamidobetaines and / or protein fatty acid condensates, the latter preferably based on wheat proteins.
- dioctyl malates esters of linear and / or branched fatty acids with polyhydric alcohols (such as propylene glycol, dimer diol or trimer triol) and / or Guerbet alcohols, triglycerides based on C6-C ⁇ o fatty acids, liquid mono- / di- / triglyceride mixtures based of C ⁇ -Ci ⁇ fatty acids, esters of C6-C22 fatty alcohols and / or Guerbet alcohols with aromatic carboxylic acids, especially benzoic acid, esters of C2-C12 dicarboxylic acids with linear or branched alcohols with 1 to 22 carbon atoms or polyols with 2 to 10 carbon atoms and 2 to 6 hydroxyl groups, vegetable oils, branched primary alcohols, substituted cyclohexanes, linear and branched C ⁇ -C ⁇ ⁇ fatty alcohol carbonates, Guerbet carbonates, esters of benzoic acid with linear and / branche
- Finsolv® TN linear or branched, symmetrical or asymmetrical dialkyl ethers with 6 to 22 carbon atoms per alkyl group , Ring opening products of epoxidized fatty acid esters with polyols, silicone oils and / or aliphatic or naphthenic hydrocarbons, such as, for example, squalane, squalene or dialkylcyclohexanes.
- suitable co-emulsifiers are nonionic surfactants from at least one of the following groups:
- Partial esters of polyglycerol (average degree of self-condensation 2 to 8), polyethylene glycol (molecular weight 400 to 5000), trimethylolpropane, pentaerythritol, sugar alcohols (eg sorbitol), alkyl glucosides (eg methyl glucoside, butyl glucoside, lauryl glucoside) and poly cellulose (for example) saturated and / or unsaturated, linear or branched fatty acids with 12 to 22 carbon atoms and / or hydroxycarboxylic acids with 3 to 18 carbon atoms and their adducts with 1 to 30 mol ethylene oxide;
- the addition products of ethylene oxide and / or of propylene oxide with fatty acids, alkylphenols or with castor oil are known, commercially available products. These are mixtures of homologs, the average degree of alkoxylation of which is the ratio of the amounts of ethylene oxide and / or propylene oxide and substrate, with which the addition reaction is carried out.
- Ci2 / i8 fatty acid monoesters and diesters of adducts of ethylene oxide with glycerol are known from DE 2024051 PS as refatting agents for cosmetic preparations.
- Alkyl and / or alkenyl oligoglycosides their preparation and their use are known from the prior art. They are produced in particular by reacting glucose or oligosaccharides with primary alcohols with 8 to 18 carbon atoms.
- glycoside residue both monoglycosides in which a cyclic sugar residue is glycosidically bonded to the fatty alcohol and oligomeric glycosides with a degree of oligomerization of up to about 8 are suitable.
- the degree of oligomerization is a statistical mean value which is based on a homolog distribution customary for such technical products.
- Typical examples of suitable partial glycerides are ethoxylated Analgerungs consist of on average 1 to 30 and preferably 5 to 10 moles of ethylene oxide Hydroxystearinklamo- noglycerid, hydroxystearic acid diglyceride, isostearic acid, Isostearinklarediglycerid, oleic acid monoglyceride, oleic acid diglyceride, Ricinolklaremoglycerid, Ricinolklarediglycerid, Linolkla- monoglyceride, Linolklarediglycerid, Linolenklaremonoglycerid, Linolenklarediglycerid, Erucaklaremonoglycerid , Erucic acid diglyceride, tartaric acid monoglyceride, tartaric acid diglyceride, citric acid monoglyceride, citric diglyceride, malic acid monoglyceride, malic acid diglyceride and their technical mixtures, which may still
- sorbitan sorbitan As sorbitan sorbitan, sorbitan sesquiisostearate, Sorbitandiisostea- get advice, sorbitan triisostearate, sorbitan monooleate, sorbitan, sorbitan, Sorbitanmonoerucat, Sorbitansesquierucat, Sorbitandierucat, Sorbitantrierucat, sorbitan ricinoleate, Sorbitansesquiricinoleat, Sorbitandiricinoleat, Sorbitantriricinoleat, Sorbitanmonohy- droxystearate, sorbitan sesquihydroxystearate, sorbitan dihydroxydearate, sorbitan trihydroxystearate, sorbitan monotartrate, sorbitan sesquitartrate, sorbitan ditartrate, sorbitan tritartrimalate, sorbitan monocitrate, sorbitan sesquicit
- polyglycerol esters are polyglyceryl-2 dipolyhydroxystearate (Dehymuls® PGPH), polyglycerol-3 diisostearate (Lameform® TGI), polyglyceryl-4 isostearate (Isolan® Gl 34), polyglyceryl-3 oleate, diisostearoyl polyglyceryl-3 diisostearate ® PDI), Polyglyceryl-3 Methylglucose Distearate (Tego Care® 450), Polyglyceryl-3 Beeswax (Cera Bellina®), Polyglyceryl-4 Caprate (Polyglycerol Caprate T2010 / 90), Polyglyceryl-3 Cetyl Ether (Chimexane® NL), Polyglyceryl -3 Distearate (Cremophor® GS 32) and Polyglyceryl Polyricino-leate (Admul® WOL 1403) Polyglyceryl Dimerate Isostear
- polystyrene resin examples include the mono-, di- and triesters of trimethylolpropane or pentaerythritol with lauric acid, coconut fatty acid, taig fatty acid, palmitic acid, stearic acid, oleic acid, behenic acid and the like which are optionally reacted with 1 to 30 mol of ethylene oxide.
- Zwitterionic surfactants can also be used as emulsifiers.
- Zwitterionic surfactants are surface-active compounds that contain at least one quaternary ammonium group and at least one carboxylate and one sulfonate group in the molecule.
- Particularly suitable zwitterionic surfactants are the so-called betaines such as the N-alkyl-N, N-dimethylammonium glycinate, for example the coconut alkyldimethylammonium glycinate, N-acylaminopropyl-N, N-dimethylammonium glycinate, for example the coconut acylaminopropyldimethylammonium glycinate, and 2-alkyl-3-carboxylate -hydroxyethylimidazolines each having 8 to 18 carbon atoms in the alkyl or acyl group and the coconut acylaminoethyl hydroxyethyl carboxymethyl glycinate.
- betaines such as the N-alkyl-N, N-dimethylammonium glycinate, for example the coconut alkyldimethylammonium glycinate, N-acylaminopropyl-N, N-dimethylammonium glyc
- Suitable emulsifiers are ampholytic surfactants.
- Ampholytic surfactants are surface-active compounds which, in addition to a C ⁇ / i ⁇ alkyl or acyl group, contain at least one free amino group and at least one -COOH or -S ⁇ 3H group in the molecule and are capable of forming internal salts.
- ampholytic surfactants are N-alkylglycines, N-alkylpropionic acids, N-alkylaminobutyric acids, N-alkyliminodipropionic acids, N-hydroxyethyl-N-alkylamidopropylglycines, N-alkyltaurines, N-alkylsarcosines, 2-alkylaminopropionic acids and alkylaminoacetic acids each with about 8 to 18 carbon atoms in the alkyl group.
- Especially preferred ampholytic surfactants are N-cocoalkylaminopropionate, cocoacylaminoethylaminopropionate and Ci2 / i8-acylsarcosine.
- cationic surfactants are also suitable as emulsifiers, those of the esterquat type, preferably methylquaternized difatty acid triethanolamine ester salts, being particularly preferred.
- Substances such as, for example, lanolin and lecithin and polyethoxylated or acylated lanolin and lecithin derivatives, polyol fatty acid esters, monoglycerides and fatty acid alkanolamides can be used as superfatting agents, the latter simultaneously serving as foam stabilizers.
- Pearlescent waxes are: alkylene glycol esters, especially ethylene glycol distearate; Fatty acid alkanolamides, especially coconut fatty acid diethanolamide; Partial glycerides, especially stearic acid monoglyceride; Esters of polyvalent, optionally hydroxy-substituted carboxylic acids with fatty alcohols having 6 to 22 carbon atoms, especially long-chain esters of tartaric acid; Fatty substances, such as, for example, fatty alcohols, fatty ketones, fatty aldehydes, fatty ethers and fatty carbonates, which have a total of at least 24 carbon atoms, especially lauron and distearyl ether; Fatty acids such as stearic acid, hydroxystearic acid or behenic acid, ring opening products of olefin epoxides with 12 to 22 carbon atoms with fatty alcohols with 12 to 22 carbon atoms and / or polyols with 2 to 15 carbon atoms
- Suitable consistency agents are primarily fatty alcohols or hydroxy fatty alcohols with 12 to 22 and preferably 16 to 18 carbon atoms and, in addition, partial glycerides, fatty acids or hydroxy fatty acids.
- a combination of these substances with alkyl oligoglucosides and / or fatty acid N-methyl glucamides of the same chain length and / or polyglycerol poly-12-hydroxystearates is preferred.
- Suitable thickeners are, for example, Aerosil types (hydrophilic silicas), polysaccharides, in particular xanthan gum, guar guar, agar agar, alginates and tyloses, carboxymethyl cellulose and hydroxyethyl cellulose, and also higher molecular weight polyethylene glycol mono- and diesters of fatty acids, polyacrylates , (eg Carbopole® from Goodrich or Synthalene® from Sigma), polyacrylamides, polyvinyl alcohol and polyvinylpyrrolidone, surfactants such as ethoxylated fatty acid glycerides, esters of fatty acids with polyols such as pentaerythritol or trimethyl lolpropane, fatty alcohol ethoxylates with a narrow homolog distribution or alkyl oligoglucosides as well as electrolytes such as table salt and ammonium chloride.
- Aerosil types hydrophilic silicas
- Suitable cationic polymers are, for example, cationic cellulose derivatives, e.g. a quaternized hydroxyethyl cellulose available under the name Polymer JR 400® from Amerchol, cationic starch, copolymers of diallylammonium salts and acrylamides, quaternized vinylpyrrolidone / vinylimidazole polymers such as e.g.
- Luviquat® condensation products of polyglycols and amines, quaternized collagen polypeptides, such as, for example, lauryl-dimonium hydroxypropyl hydrolyzed collagen (Lamequat®L / Grünau), quaternized wheat polypeptides, polyethylene imine, cationic silicone polymers, e.g. Amodimethicones, copolymers of adipic acid and dimethylaminohydroxypropyldiethylenetriamine (Cartaretine® / Sandoz), copolymers of acrylic acid with dimethyldiallylammonium chloride (Merquat® 550 / Chemviron), polyaminopoiyamides, e.g.
- cationic chitin derivatives such as quaternized chitosan, optionally microcrystalline, condensation products of dihaloalkylene, such as e.g. Dibromobutane with bisdialkylamines, e.g. Bis-dimethylamino-1, 3-propane, cationic guar gum, e.g. Jaguar® CBS, Jaguar® C-17, Jaguar® C-16 from Celanese, quaternized ammonium salt polymers such as e.g. Mirapol® A-15, Mirapol® AD-1, Mirapol® AZ-1 from Miranol.
- dihaloalkylene such as e.g. Dibromobutane with bisdialkylamines, e.g. Bis-dimethylamino-1, 3-propane
- cationic guar gum e.g. Jaguar® CBS, Jaguar® C-17, Jaguar® C-16 from Celanese
- quaternized ammonium salt polymers such as e.g. Mira
- Anionic, zwitterionic, amphoteric and nonionic polymers include, for example, vinyl acetate / crotonic acid copolymers, vinylpyrrolidone / vinyl acrylate copolymers, vinyl acetate butyl maleate / isobornyl acrylate copolymers, methyl vinyl ether / maleic anhydride copolymers and their esters, non-crosslinked acrylate and with polyesters, uncross-linked acrylamide trimethylammonium chloride / acrylate copolymers, octylacrylamide / methyl methacrylate / tert.butylaminoethyl methacrylate / 2-hydroxyproyimethacrylate copolymers, polyvinylpyrrolidone, vinyl pyrrolidone / vinyl acetate copolymers, vinyl pyrrolidone / dimethylaminoethyl methacrylate and vinylated acrylate / vinylated acrylate /
- Suitable silicone compounds are, for example, dimethylpolysiloxanes, methylphenylpolysiloxanes, cyclic silicones and amino, fatty acid, alcohol, polyether, epoxy, fluorine, glycoside and / or alkyl-modified silicone compounds, which can be both liquid and resinous at room temperature.
- Simethicones which are mixtures of dimethicones with an average chain length of 200 to 300 dimethylsiloxane units and hydrogenated silicates, are also suitable.
- a detailed overview of suitable volatile silicones can also be found by Todd et al. in Cosm.Toil. 91, 27 (1976).
- fats are glycerides
- waxes include natural waxes, such as candelilla wax, carnauba wax, Japanese wax, esparto grass wax, cork wax, guaruma wax, rice germ oil wax, sugar cane wax, ouricury wax, montan wax, beeswax, shellac wax, walnut, lanolin (wool wax), fur fat , Ceresin, ozokerite (earth wax), petrolatum, paraffin waxes, micro waxes; chemically modified waxes (hard waxes), such as montan ester waxes, Sasol waxes, hydrogenated jojoba waxes and synthetic waxes, such as polyalkylene waxes and polyethylene glycol waxes.
- natural waxes such as candelilla wax, carnauba wax, Japanese wax, esparto grass wax, cork wax, guaruma wax, rice germ oil wax, sugar cane wax, ouricury wax, montan wax, be
- lecithins In addition to fats, fat-like substances such as lecithins and phospholipids can also be used as additives.
- lecithins as those glycerophospholipids which are formed from fatty acids, glycerol, phosphoric acid and choline by esterification.
- Lecithins are therefore often referred to in the art as phosphatidylcholines (PC) and follow the general formula
- R typically represents linear aliphatic hydrocarbon radicals with 15 to 17 carbon atoms and up to 4 cis double bonds.
- lecithins are the cephalins, which are also referred to as phosphatidic acids and are derivatives of 1,2-diacyl-sn-glycerol-3-phosphoric acids.
- phospholipids are usually understood to be mono- and preferably diesters of phosphoric acid with glycerol (glycerol phosphates), which are generally classed as fats.
- sphingosines or sphingolipids are also suitable.
- Metal salts of fatty acids such as e.g. Magnesium, aluminum and / or zinc stearate or ricinoleate are used.
- Biogenic active substances are, for example, tocopherol, tocopherol acetate, tocopherol palmitate, ascorbic acid, deoxyribonucleic acid, retinol, bisabolol, allantoin, phytantriol, panthenol, AHA acids, amino acids, ceramides, pseudoceramides, essential oils, plant extracts and vitamin complexes.
- Cosmetic deodorants counteract, mask or eliminate body odors.
- Body odors arise from the action of skin bacteria on apocrine sweat, whereby unpleasant smelling breakdown products are formed. Accordingly deodorants hold active ingredients that act as germ inhibitors, enzyme inhibitors, odor absorbers or odor maskers.
- germ-inhibiting agents such as.
- TTC 3,4,4 ' trichloro
- Esterase inhibitors are suitable as enzyme inhibitors. These are preferably trialkyl citrates such as trimethyl citrate, tripropyl citrate, triisopropyl citrate, tributyl citrate and in particular triethyl citrate (Hydagen® CAT, Henkel KGaA, Düsseldorf / FRG). The substances inhibit enzyme activity and thereby reduce odor.
- trialkyl citrates such as trimethyl citrate, tripropyl citrate, triisopropyl citrate, tributyl citrate and in particular triethyl citrate (Hydagen® CAT, Henkel KGaA, Düsseldorf / FRG).
- the substances inhibit enzyme activity and thereby reduce odor.
- esterase inhibitors include sterol sulfates or phosphates, such as, for example, lanosterol, cholesterol, campesteric, stigmasterol and sitosterol sulfate or phosphate, dicarboxylic acids and their esters, such as, for example, glutaric acid, monoethyl glutarate, gluto- aric acid diethyl ester, adipic acid, adipic acid monoethyl ester, adipic acid diethyl ester, malonic acid and malonic acid diethyl ester, hydroxycarboxylic acids and their esters such as citric acid, malic acid, tartaric acid or tartaric acid diethyl ester, and zinc glycinate.
- dicarboxylic acids and their esters such as, for example, glutaric acid, monoethyl glutarate, gluto- aric acid diethyl ester, adipic acid, adipic acid monoethyl ester
- Suitable odor absorbers are substances that absorb odor-forming compounds and can retain them to a large extent. They lower the partial pressure of the individual components and thus also reduce their speed of propagation. It is important that perfumes must remain unaffected. Odor absorbers are not effective against bacteria. They contain, for example, a complex zinc salt of ricinoleic acid or special, largely odorless fragrances, which are known to the person skilled in the art as "fixators", such as, for example, the main component. B. extracts of Labdanum or Styrax or certain abietic acid derivatives. Fragrance agents or perfume oils act as odor maskers, which, in addition to their function as odor maskers, give the deodorants their respective fragrance.
- Perfume oils are, for example, mixtures of natural and synthetic fragrances. Natural fragrances are extracts of flowers, stems and leaves, fruits, fruit peels, roots, woods, herbs and grasses, needles and branches as well as resins and balsams. Animal raw materials, such as civet and castoreum, are also suitable. Typical synthetic fragrance compounds are Products of the ester, ether, aldehyde, ketone, alcohol and hydrocarbon type.
- Fragrance compounds of the ester type are, for example, benzyl acetate, p-tert-butylcyclohexyl acetate, linalyl acetate, phenylethyl acetate, linalyl benzoate, benzyl formate, allyl cyclohexyl propionate, styrallyl propionate and benzyl salicylate.
- the ethers include, for example, benzyl ethyl ether, the aldehydes, for example, the linear alkanals having 8 to 18 carbon atoms, citral, citronellal, citronellyloxyacetal dehyde, cyclamenaldehyde, hydroxycitronellal, lilial and bourgeonal, the ketones, for example, the ionone and methyl cedryl ketone, and the alcohols Anethol, citronellol, eugenol, isoeugenol, geraniol, linalool, phenylethyl alcohol and terpineol, the hydrocarbons mainly include the terpenes and balsams.
- fragrance oils of lower volatility which are mostly used as aroma components, are also suitable as perfume oils, e.g. sage oil, chamomile oil, clove oil, lemon balm oil, mint oil, cinnamon leaf oil, linden blossom oil, juniper berry oil, vetiver oil, oliban oil, galbanum oil, labdanum oil and lavandin oil.
- Antiperspirants reduce sweat formation by influencing the activity of the eccrine sweat glands and thus counteract armpit wetness and body odor.
- Aqueous or anhydrous formulations of antiperspirants typically contain the following ingredients:
- non-aqueous solvents such as As ethanol, propylene glycol and / or glycerin.
- Salts of aluminum, zirconium or zinc are particularly suitable as astringent antiperspirant active ingredients.
- suitable antiperspirant active ingredients are, for example, aluminum chloride, aluminum chlorohydrate, aluminum dichlorohydrate, aluminum sesquichlorohydrate and their complex compounds, for. B. with propylene glycol-1, 2nd Aluminum hydroxyallantoinate, aluminum chloro rid tartrate, aluminum-zirconium trichlorohydrate, aluminum-zirconium tetrachlorohydrate, aluminum
- customary oil-soluble and water-soluble auxiliaries can be present in smaller amounts in antiperspirants.
- oil soluble aids can e.g. his:
- water-soluble additives are e.g. Preservatives, water-soluble fragrances, pH adjusters, e.g. Buffer mixtures, water soluble thickeners, e.g. water-soluble natural or synthetic polymers such as e.g. Xanthan gum, hydroxyethyl cellulose, polyvinyl pyrrolidone or high molecular weight polyethylene oxides.
- Common film formers are, for example, chitosan, microcrystalline chitosan, quaternized chitosan, polyvinylpyrrolidone, vinylpyrrolidone-vinyl acetate copolymers, polymers of the acrylic acid series, quaternary cellulose derivatives, collagen, hyaluronic acid or its salts and similar compounds.
- Montmorillonites, clay minerals, pemulene and alkyl-modified carbopol types can serve as swelling agents for aqueous phases. Further suitable polymers or swelling agents can be found in the overview by R. Lochhead in Cosm.Toil. 108, 95 (1993).
- UV light protection factors are understood to mean, for example, organic substances (light protection filters) which are liquid or crystalline at room temperature and which are able to absorb ultraviolet rays and absorb the energy absorbed in the form of longer-wave radiation, e.g. To give off heat again.
- UVB filters can be oil-soluble or water-soluble. As oil-soluble substances e.g. to call:
- 4-aminobenzoic acid derivatives preferably 2-ethylhexyl 4- (dimethylamino) benzoate, 2-octyl 4- (dimethylamino) benzoate and amyl 4- (dimethylamino) benzoate;
- esters of cinnamic acid preferably 4-methoxycinnamic acid 2-ethylhexyl ester, 4-methoxycinnamic acid propyl ester, 4-methoxycinnamic acid isoamyl ester 2-cyano-3,3-phenylcinnamic acid 2-ethylhexyl ester (octo-crylene); > Esters of salicylic acid, preferably salicylic acid 2-ethylhexyl ester, salicylic acid 4-isopropylbenzyl ester, salicylic acid homomethyl ester;
- benzophenone preferably 2-hydroxy-4-methoxybenzophenone, 2-hydroxy-4-methoxy-4'-methylbenzophenone, 2,2'-dihydroxy-4-methoxybenzophenone;
- esters of benzalmalonic acid preferably di-2-ethylhexyl 4-methoxybenzmalonate
- Triazine derivatives e.g. 2,4,6-trianilino- (p-carbo-2'-ethyl-1'-hexyloxy) -1, 3,5-triazine and octyl triazone, as described in EP 0818450 A1 or dioctyl butamido triazone (Uvasorb® HEB );
- UV-A filters -4'- methoxydibenzoylmethane (Parsol 1789), 1-phenyl-3- (4'-isopropylphenyl) propane-1, 3-dione and enamine compounds as described in DE 19712033 A1 (BASF).
- the UV-A and UV-B filters can of course also be used in mixtures.
- insoluble light protection pigments namely finely dispersed metal oxides or salts, are also suitable for this purpose.
- suitable metal oxides are, in particular, zinc oxide and titanium dioxide and, in addition, oxides of iron, zirconium, silicon, manganese, aluminum and cerium and mixtures thereof.
- Silicates (talc), barium sulfate or zinc stearate can be used as salts.
- the oxides and salts are used in the form of the pigments for skin-care and skin-protecting emulsions and decorative cosmetics.
- the particles should have an average diameter of less than 100 nm, preferably between 5 and 50 nm and in particular between 15 and 30 nm. They can have a spherical shape, but it is also possible to use particles which have an ellipsoidal shape or a shape which differs from the spherical shape in some other way.
- the pigments can also be surface-treated, ie hydrophilized or hydrophobicized.
- Typical examples are coated titanium dioxides such as titanium dioxide T 805 (Degussa) or Eusolex® T2000 (Merck).
- Silicones are particularly suitable, especially trialkoxyoctylsilanes or simethicones. So-called micro- or nanopigments are preferably used in sunscreens. Micronized zinc oxide is preferably used. Further suitable UV light protection filters can be found in the overview by P.Finkel in S ⁇ FW-Journal 122, 543 (1996).
- secondary light stabilizers of the antioxidant type can also be used, which interrupt the photochemical reaction chain which is triggered when UV radiation penetrates the skin.
- Typical examples are amino acids (e.g. glycine, histidine, tyrosine, tryptophan) and their derivatives, imidazoles (e.g. urocanic acid) and their derivatives, peptides such as D, L-carnosine, D-carnosine, L-camosine and their derivatives (e.g. anserine) , Carotenoids, carotenes (e.g.
- ⁇ -carotene, ⁇ -carotene, lycopene and their derivatives, chlorogenic acid and their derivatives, lipoic acid and their derivatives (e.g. dihydroliponic acid), aurothioglucose, propylthiouracil and other thiols (e.g.
- thioredoxin glutathione, cysteine, Cystine, cystamine and their glycosyl, N-acetyl, methyl, ethyl, propyl, amyl, butyl and lauryl, palmitoyl, oleyl, ⁇ -linoleyl, cholesteryl and glyceryl esters) and their salts , Dilaurylthiodipropionat, Distearylthiodipropionat, Thiodipropionate and their derivatives (esters, ethers, peptides, lipids, nucleotides, nucleosides and salts) as well as sulfoximine compounds (eg Buthioninsulfoximine, Homocysteinsulfoximin, Butioninsulfone, Penta-, Hexa-, Heptathionin- sulfoximin tolerable dosages (e.g.
- Hydrotropes such as ethanol, isopropyl alcohol or polyols can also be used to improve the flow behavior.
- Polyols that come into consideration here preferably have 2 to 15 carbon atoms and at least two hydroxyl groups.
- the polyols can NEN still contain other functional groups, especially amino groups, or be modified with nitrogen. Typical examples are
- Alkylene glycols such as ethylene glycol, diethylene glycol, propylene glycol, butylene glycol, hexylene glycol and polyethylene glycols with an average molecular weight of 100 to 1,000 daltons; technical oligoglycerol mixtures with a degree of self-condensation of 1.5 to 10 such as technical diglycerol mixtures with a diglycerol content of 40 to 50% by weight;
- Methyl compounds such as in particular trimethylolethane, trimethylolpropane, trimethylolbutane, pentaerythritol and dipentaerythritol;
- Lower alkyl glucosides especially those with 1 to 8 carbons in the alkyl radical, such as methyl and butyl glucoside; Sugar alcohols with 5 to 12 carbon atoms, such as sorbitol or mannitol,
- Aminosugars such as glucamine; Dialcohol amines, such as diethanolamine or 2-amino-1,3-propanediol.
- Suitable preservatives are, for example, phenoxyethanol, formaldehyde solution, parabens, pentanediol or sorbic acid and the other classes of substances listed in Appendix 6, Parts A and B of the Cosmetics Ordinance.
- Perfume oils include mixtures of natural and synthetic fragrances. Natural fragrances are extracts of flowers (lily, lavender, roses, jasmine, neroli, ylang-ylang), stems and leaves (geranium, patchouli, petitgrain), fruits (anise, coriander, caraway, juniper), fruit peel (bergamot, lemon, Oranges), roots (mace, angelica, celery, cardamom, costus, iris, calmus), wood (pine, sandal, guaiac, cedar, rosewood), herbs and grasses (tarragon, lemongrass, sage, thyme), Needles and twigs (spruce, fir, pine, mountain pine), resins and balms (galbanum, elemi, benzoin, myrrh, olibanum, opoponax).
- Typical synthetic fragrance compounds are products of the ester, ether, aldehyde, ketone, alcohol and hydrocarbon type. Fragrance compounds of the ester type are, for example, benzyl acetate, phenoxyethyl isobutyrate, p-tert-butylcyclohexyl acetate, linalyl acetate, dimethylbenzylcarbinylacetate, phenylethyl acetate, linalyl benzoate, benzyl formate, ethyl methylphenyl glycinate, allyl cyclohexyl benzylatepionate, allyl cyclohexylatepionate.
- the ethers include, for example, benzyl ethyl ether, the aldehydes, for example, the linear alkanals having 8 to 18 carbon atoms, citral, citronellal, citronellyloxyacetaldehyde, cyclamenaldehyde, hydroxycitronellal, lilial and bourgeonal, the ketones, for example the jonones, ⁇ -isomethylionone and methyl cedryl ketone, the alcohols anethole, citronellol, eugenol, isoeugenol, geraniol, linalool, phenylethyl alcohol and terpineol, the hydrocarbons mainly include the terpenes and balsams.
- the aldehydes for example, the linear alkanals having 8 to 18 carbon atoms, citral, citronellal, citronellyloxyacetaldehyde, cyclamenalde
- fragrance oils of low volatility which are mostly used as aroma components, are also suitable as perfume oils, for example sage oil, chamomile oil, clove oil, lemon balm oil, mint oil, cinnamon leaf oil, linden blossom oil, juniper berry oil, vetiver oil, oliban oil, galbanum oil, labola oil and lavandin oil.
- the dyes which can be used are those substances which are suitable and approved for cosmetic purposes, as compiled, for example, in the publication "Cosmetic Dyes” by the Dye Commission of the German Research Foundation, Verlag Chemie, Weinheim, 1984, pp. 81-106. These dyes are usually used in concentrations of 0.001 to 0.1% by weight, based on the mixture as a whole.
- the total proportion of auxiliaries and additives can be 1 to 50, preferably 5 to 40,% by weight, based on the composition.
- the agents can be produced by customary cold or hot processes; the phase inversion temperature method is preferably used.
- composition of the make-up remover and test results (quantities as% by weight)
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Abstract
Vorgeschlagen wird die Verwendung von Detergensgemischen, enthaltend (a) Fettalkohole, (b) Fettalkoholpolyglycolether, (c) Partialglyceride und (d) Fettsäurealkylester als Emulgatoren zur Herstellung von Abschminkmitteln.
Description
VERWENDUNG VON DETERGENSGEMISCHEN ALS EMULGATOREN ZUR HERSTELLUNG VON ABSCHMINKMΠTLEN
Gebiet der Erfindung
Die Erfindung befindet sich auf dem Gebiet der Kosmetik und betrifft den Einsatz einer quaternä- ren Mischung von oberflächenaktiven Fettstoffen zur Herstellung von Abschminkmitteln.
Stand der Technik
Im Bereich der dekorativen Kosmetik finden die unterschiedlichsten Einsatzstoffe Verwendung. Eine typische Make-up-Zusammensetzung enthält beispielsweise Glycerinmonostearat, Cetylalko- hol, Stea-rinsäure, Paraffinöl, Cetylstearyloctanoat, Octylpalmitat, Talkum, Titandioxid, Eisenoxide, Propylen-glycol, Polysorbate, Xanthan, Magnesium-Aluminiumsilicat, Glycerin, Parfümöle, Konservierungsmittel und Wasser. In Wimperntusche oder Mascara sind Wachse, Farbstoffe, Emulgato- ren und Verdickungs-mittel enthalten. Lippenstifte enthalten neben Farbstoffen, Wachsen und Ölkörpem vor allem auch Glimmer Titandioxid und neuerdings auch Siiiconverbindungen. Lidschatten stellen üblicherweise Mischungen von Farbstoffen mit Glimmer oder Titandioxid dar, die als weitere Bestandteile Talkum, Paraffinöl, Kaolin, Metallseifen, Wachsalkohole und Emulgatoren enthalten können. Kajalstifte enthalten beispielsweise Eisenoxide, Pflanzenöle, Wachse, Fettsäuren, Talkum und Emulgatoren. Entsprechende kosmetische Reinigungsmittel müssen somit eine Vielzahl völlig unterschiedlicher Stoffe möglichst vollständig von der Haut entfernen, also typische Wachse, Öle und Siliconverbindungen lösen und gleichzeitig auch Pigmente wie Glimmer oder Titandioxid solubilisieren. Des weiteren müssen sie so mild wie nur eben möglich sein, um bei den Verbraucherinnen keine Hautrötungen oder gar Augenschleimhautirritationen auszulösen. Üblicherweise werden derartige Zubereitungen, wie sie beispielsweise in der EP 0705592 B1 (L'Oreal) offenbart sind, entweder in Form von Lotionen, gegebenenfalls auf Watteträgern, oder als Cremes angeboten. Hier besteht seitens der Verbraucherin zusätzlich der Wunsch, daß die Produkte, bei denen es sich stets um Emulsionen handelt, eine ausreichende Lagerstabilität besitzen und sich insbesondere nicht in der Wärme irreversibel entmischen.
Demzufolge hat die komplexe Aufgabe der vorliegenden Erfindung darin bestanden, Emulgatoren zu entwickeln, die die Herstellung von Abschminkmittein gestatten, welche gleichzeitig über ein hohes Reinigungsvermögen sowohl gegenüber Wachsen, Ölen, Siliconverbindungen als auch gegenüber Pigmenten verfügen, außerordentlich haut- und schleimhautverträglich sind und zudem
auch eine besonders hohe Lagerstabilität besitzen. Die Mischungen sollten zudem niedrigviskos, auf kaltem Wege herstellbar und mit Wasser beliebig mischbar sein.
Beschreibung der Erfindung
Gegenstand der Erfindung ist die Verwendung von Detergensgemischen, enthaltend
(a) Fettalkohole,
(b) Fettalkoholpolyglycolether,
(c) Partialglyceride und
(d) Fettsäurealkylester
als Emulgatoren zur Herstellung von Abschminkmitteln.
Überraschenderweise wurde gefunden, daß die erfindungsgemäß zu verwendenden Detergensmi- schungen das gewünschte Eigenschaftsprofil in vorzüglicher Weise erfüllen und damit besonders als Emulgatoren zu Herstellung von Abschminkmitteln geeignet sind.
Fettalkohole
Fettalkohole, die als Komponente (a) in Betracht kommen, folgen vorzugsweise der Formel (I),
R1OH (I)
in der R1 für einen linearen oder verzweigten Alkylrest mit 12 bis 22 Kohlenstoffatomen steht. Typische Beispiele für geeignete Fettalkohole sind Laurylalkohol, Isotridecylalkohol, Myristylalkohol, Cetylalkohol, Palmoleylalkohol, Stearylalkohol, Isostearylalkohol und Behenylalkohol sowie deren technische Mischungen, die z.B. bei der Hochdruckhydrierung von technischen Methylestern auf Basis von Fetten und Ölen oder Aldehyden aus der Roelen'schen Oxosynthese sowie als Mono- merfraktion bei der Dimerisierung von ungesättigten Fettalkoholen anfallen. Bevorzugt sind technische Fettalkohole mit 12 bis 18 Kohlenstoffatomen, wie beispielsweise Kokos-, Palm-, Palmkernoder Taigfettalkohol.
Fettalkoholpolyglycolether
Fettalkoholpolyglycolether, die als Komponente (b) eingesetzt werden können, folgen vorzugsweise der Formel (II),
R20(CH2CH20)nH (II)
in der R2 für einen linearen oder verzweigten Alkyl- und/oder Alkenylrest mit 6 bis 22 Kohlenstoffatomen und n für Zahlen von 1 bis 50 steht. Typische Beispiele hierfür sind die Analgerungspro- dukte von durchschnittlich 1 bis 50, vorzugsweise 10 bis 25 und insbesondere 12 bis 20 Mol Ethy- lenoxid an sind Capronalkohol, Caprylalkohol, 2-Ethylhexylalkohol, Caprinalkohol, Laurylalkohol, Isotridecylalkohol, Myristylalkohol, Cetylalkohol, Palmoleylalkohol, Stearylalkohol, Isostearylalkohol, Oleylalkohol, Elaidylalkohol, Petroselinylalkohol, Linolylalkohol, Linolenylalkohol, Elaeo- stearylalkohol, Arachylalkohol, Gadoleylalkohol, Behenylalkohol, Erucylalkohol und Brassidylalko- hol sowie deren technische Mischungen, die z.B. bei der Hochdruckhydrierung von technischen Methylestern auf Basis von Fetten und Ölen oder Aldehyden aus der Roelen'schen Oxosynthese sowie als Monomerfraktion bei der Dimerisierung von ungesättigten Fettalkoholen anfallen. Die Polyglycolether können dabei sowohl eine konventionell breite oder auch eingeengte Homologenverteilung aufweisen. Bevorzugt sind Ethylenoxidaddukte an technische Fettalkohole mit 12 bis 18 Kohlenstoffatomen, wie beispielsweise Kokos-, Palm-, Palmkern- oder Taigfettalkohol. Aus anwendungstechnischer Sicht hat es sich weiterhin als besonders vorteilhaft erwiesen, wenn man mindestens einen Fettalkoholpolyglycolether mit einem HLB unterhalb von 14 und mindestens einen Fettalkoholpolyglycolether mit einem HLB oberhalb von 14 einsetzt. Eine besonders bevorzugte Kombination ist dabei die Mischung aus einem CetearyJalkohol+12EO und einem Cetearylal- kohol+20EO
Partialglyceride
Partialglyceride, also Monoglyceride, Diglyceride und deren technische Gemische, die die Komponente (c) bilden, können herstellungsbedingt noch geringe Mengen Triglyceride enthalten. Die Partialglyceride folgen vorzugsweise der Formel (III),
CH20(CH2CH20)χiCOR3
I CHO(CH2CH20)x2R4 (III)
in der R3CO für einen linearen oder verzweigten, gesättigten und/oder ungesättigten Acylrest mit 6 bis 22, vorzugsweise 12 bis 18 Kohlenstoffatomen, R4 und R5 unabhängig voneinander für R3CO oder OH und die Summe (x1+x2+x3) für 0 oder Zahlen von 1 bis 100, vorzugsweise 5 bis 25 steht, mit der Maß-gabe, daß mindestens einer der beiden Reste R4 und R5 OH bedeutet. Typische Beispiele sind Mono- und/oder Diglyceride auf Basis von Capronsäure, Caprylsäure, 2-Ethyl- hexansäure, Caprinsäure, Lau-rinsäure, Isotridecansäure, Myristinsäure, Palmitinsäure, Palmoleinsäure, Stearinsäure, Isostearinsäu-re, Ölsäure, Elaidinsäure, Petroselinsäure, Linolsäure, Linolen- säure, Elaeostearinsäure, Arachinsäure, Gadoleinsäure, Behensäure und Erucasäure sowie deren technische Mischungen. Vorzugsweise wer-den technische Laurinsäureglyceride, Palmitinsäu- reglyceride, Stearinsäureglyceride, Isostearinsäure-glyceride, Ölsäureglyceride, Behensäureglyce- ride und/oder Erucasäureglyceride eingesetzt, welche ei-nen Monoglyceridanteil im Bereich von 50 bis 95, vorzugsweise 60 bis 90 Gew.-% aufweisen.
Fettsäurealkylester
Als Fettsäurealkylester, die als Komponente (d) in Frage kommen, eignen sich vorzugsweise Stoffe, die der Formel (IV) folgen,
R6CO-OR7 (IV)
in der R6CO für einen linearen doer verzweigten Acylrest mit 6 bis 22 Kohlenstoffatomen und 0 und/oder 1 bis 3 Doppelbindungen und R7 für einen linearen oder verzweigten Alkylrest mit 6 bis 22 Kohlenstoffatomen und 0 und/oder 1 bis 3 Doppelbindungen steht, mit der Maßgabe, daß die Gesamtzahl der Kohlenstoffatome mindestens 18 beträgt. Typische Beispiele sind Myristylmyristat, Myristylpalmitat, Myristylstearat, Myristylisostearat, Myristyloleat, Myristylbehenat, Myristylerucat, Cetylmyristat, Cetylpalmitat, Cetylstearat, Cetylisostearat, Cetyloleat, Cetylbehenat, Cetylerucat, Stearylmyristat, Stearylpalmitat, Stearylstearat, Stearylisostearat, Stearyloleat, Stearylbehenat, Stearylerucat, Isostearylmyristat, Isostearylpalmitat, Isostearylstearat, Isostearylisostearat, Isostea- ryloleat, Isostearylbehenat, Isostearyloleat, Oleylmyristat, Oleylpalmitat, Oleylstearat, Oley- lisostearat, Oleyloleat, Oleylbehenat, Oleylerucat, Behenylmyristat, Behenylpalmitat, Behenylstea- rat, Behenylisostearat, Behenyloleat, Behenylbehenat, Behenylerucat, Erucylmyristat, Erucylpal- mitat, Erucylstearat, Erucylisostearat, Erucyloleat, Erucylbehenat und Erucylerucat.
Deterqensqemische
In einer bevorzugten Ausführungsform der Erfindung werden Detergensgemische eingesetzt, die - bezogen auf die Gemische - folgende Zusammensetzung aufweisen:
(a) 10 bis 25, vorzugsweise 12 bis 15 Gew.-% Fettalkohole,
(b) 10 bis 60, vorzugsweise 25 bis 50 Gew.-% Fettalkoholpolyglycolether,
(c) 10 bis 25, vorzugsweise 12 bis 15 Gew.-% Partialglyceride und
(d) 10 bis 35, vorzugsweise 15 bis 20 Gew.-% Fettsäurealkylester
mit der Maßgabe, daß sich die Mengenangaben zu 100 Gew.-% addieren. Üblicherweise werden die Detergensgemische in Mengen von 1 bis 10, vorzugsweise 3 bis 8 Gew.-% - bezogen auf die Mittel - eingesetzt.
Gewerbliche Anwendbarkeit
Die unter der erfindungsgemäßen Verwendung erhältlichen Abschminkmittel können als Lotionen oder Cremes bzw. damit getränkte Feuchttücher oder Wattepads vorliegen und dabei ferner als weitere Hilfs- und Zusatzstoffe milde Tenside, Ölkörper, Co-Emulgatoren, Überfettungsmittel, Perlglanzwachse, Konsistenzgeber, Verdickungsmittel, Polymere, Siliconverbindungen, Fette, Wachse, Lecithine, Phospholipide, Stabilisatoren, biogene Wirkstoffe, Quellmittel, UV-Lichtschutzfaktoren, Antioxidantien, Hydrotrope, Konservierungsmittel, Solubilisatoren, Parfümöle, Farbstoffe und dergleichen enthalten.
Typische Beispiele für geeignete milde, d.h. besonders hautverträgliche Tenside sind Fettalkohol- polyglycolethersulfate, Monoglyceridsulfate, Mono- und/oder Dialkylsulfosuccinate, Fettsäureise- thionate, Fettsäuresarcosinate, Fettsäuretauride, Fettsäureglutamate, α-Olefinsulfonate, Ethercar- bonsäuren, Alkyloligoglucoside, Fettsäureglucamide, Alkylamidobetaine und/oder Proteinfettsäurekondensate, letztere vorzugsweise auf Basis von Weizenproteinen.
Als Ölkörper kommen beispielsweise Guerbetalkohole auf Basis von Fettalkoholen mit 6 bis 18, vorzugsweise 8 bis 10 Kohlenstoffatomen, Ester von linearen C6-C22-Fettsäuren mit verzweigten Alkoholen, insbesondere 2-Ethylhexanol, Ester von Hydroxycarbonsäuren mit linearen oder verzweigten C6-C22-Fettalkoholen, insbesondere Dioctyl Malate, Ester von linearen und/oder verzweigten Fettsäuren mit mehrwertigen Alkoholen (wie z.B. Propylenglycol, Dimerdiol oder Trimer- triol) und/oder Guerbetalkoholen, Triglyceride auf Basis C6-Cιo-Fettsäuren, flüssige Mono-/Di- /Triglyceridmischungen auf Basis von Cδ-Ciβ-Fettsäuren, Ester von C6-C22-Fettalkoholen und/oder
Guerbetalkoholen mit aromatischen Carbonsäuren, insbesondere Benzoesäure, Ester von C2-C12- Dicarbonsäuren mit linearen oder verzweigten Alkoholen mit 1 bis 22 Kohlenstoffatomen oder Po- lyolen mit 2 bis 10 Kohlenstoffatomen und 2 bis 6 Hydroxylgruppen, pflanzliche Öle, verzweigte primäre Alkohole, substituierte Cyclohexane, lineare und verzweigte Cδ-C∑∑-Fettalkoholcarbonate, Guerbetcarbonate, Ester der Benzoesäure mit linearen und/oder verzweigten C6-C22-Alkoholen (z.B. Finsolv® TN), lineare oder verzweigte, symmetrische oder unsymmetrische Dialkylether mit 6 bis 22 Kohlenstoffatomen pro Alkylgruppe, Ringöffnungsprodukte von epoxidierten Fettsäureestern mit Polyolen, Siliconöle und/oder aliphatische bzw. naphthenische Kohlenwasserstoffe, wie z.B. wie Squalan, Squalen oder Dialkylcyclohexane in Betracht.
Als Co-Emulgatoren kommen beispielsweise nichtionogene Tenside aus mindestens einer der folgenden Gruppen in Frage:
> Anlagerungsprodukte von 2 bis 30 Mol Ethylenoxid und/ oder 0 bis 5 Mol Propylenoxid an Al- kylphenole mit 8 bis 15 C-Atomen in der Alkylgruppe sowie Alkylamine mit 8 bis 22 Kohlenstoffatomen im Alkylrest; Alkyl- und/oder Alkenyloligoglykos.de mit 8 bis 22 Kohlenstoffatomen im Alk(en)ylrest und deren ethoxylierte Analoga;
> Anlagerungsprodukte von 1 bis 15 Mol Ethylenoxid an Ricinusöl und/oder gehärtetes Ricinus- öl; Anlagerungsprodukte von 15 bis 60 Mol Ethylenoxid an Ricinusöl und/oder gehärtetes Ricinusöl;
> Addukte von 1 bis 30 Mol Ethylenoxid an Partialester von Glycerin mit ungesättigten, linearen oder gesättigten, verzweigten Fettsäuren mit 12 bis 22 Kohlenstoffatomen und/oder Hydroxy- carbonsäuren mit 3 bis 18 Kohlenstoffatomen;
> Partialester des Sorbitans mit ungesättigten, linearen oder gesättigten, verzweigten Fettsäuren mit 12 bis 22 Kohlenstoffatomen und/oder Hydroxycarbonsäuren mit 3 bis 18 Kohlenstoffatomen sowie deren Addukte mit 1 bis 30 Mol Ethylenoxid;
> Partialester von Polyglycerin (durchschnittlicher Eigenkondensationsgrad 2 bis 8), Polyethy- lenglycol (Molekulargewicht 400 bis 5000), Trimethylolpropan, Pentaerythrit, Zuckeralkoholen (z.B. Sorbit), Alkylglucosiden (z.B. Methylglucosid, Butylglucosid, Laurylglucosid) sowie Poly- glucosiden (z.B. Cellulose) mit gesättigten und/oder ungesättigten, linearen oder verzweigten Fettsäuren mit 12 bis 22 Kohlenstoffatomen und/oder Hydroxycarbonsäuren mit 3 bis 18 Kohlenstoffatomen sowie deren Addukte mit 1 bis 30 Mol Ethylenoxid;
> Mischester aus Pentaerythrit, Fettsäuren, Citronensäure und Fettalkohol gemäß DE 1165574 PS und/oder Mischester von Fettsäuren mit 6 bis 22 Kohlenstoffatomen, Methylglucose und Polyolen, vorzugsweise Glycerin oder Polyglycerin.
> Mono-, Di- und Trialkylphosphate sowie Mono-, Di- und/oder Tri-PEG-alkylphosphate und deren Salze;
> Wollwachsalkohole;
> Polysiloxan-Polyalkyl-Polyether-Copolymere bzw. entsprechende Derivate;
> Polyalkylenglycole sowie
> Glycerincarbonat.
Die Anlagerungsprodukte von Ethylenoxid und/oder von Propylenoxid an Fettsäuren, Al- kylphenole oder an Ricinusöl stellen bekannte, im Handel erhältliche Produkte dar. Es handelt sich dabei um Homologengemische, deren mittlerer Alkoxylierungsgrad dem Verhältnis der Stoffmengen von Ethylenoxid und/ oder Propylenoxid und Substrat, mit denen die Anlagerungsreaktion durchgeführt wird, entspricht. Ci2/i8-Fettsäuremono- und -diester von Anlagerungsprodukten von Ethylenoxid an Glycerin sind aus DE 2024051 PS als Rückfettungsmittel für kosmetische Zubereitungen bekannt.
Alkyl- und/oder Alkenyloligoglycoside, ihre Herstellung und ihre Verwendung sind aus dem Stand der Technik bekannt. Ihre Herstellung erfolgt insbesondere durch Umsetzung von Glucose oder Oligosacchariden mit primären Alkoholen mit 8 bis 18 Kohlenstoffatomen. Bezüglich des Gly- cosidrestes gilt, daß sowohl Monoglycoside, bei denen ein cyclischer Zuckerrest glycosidisch an den Fettalkohol gebunden ist, als auch oligomere Glycoside mit einem Oligomerisationsgrad bis vorzugsweise etwa 8 geeignet sind. Der Oligomerisierungsgrad ist dabei ein statistischer Mittelwert, dem eine für solche technischen Produkte übliche Homologenverteilung zugrunde liegt.
Typische Beispiele für geeignete ethoxylierte Partialglyceride sind Analgerungsprodukte von durchschnittlich 1 bis 30 und vorzugsweise 5 bis 10 Mol Ethylenoxid an Hydroxystearinsäuremo- noglycerid, Hydroxystearinsäurediglycerid, Isostearinsäuremonoglycerid, Isostearinsäurediglycerid, Ölsäuremonoglycerid, Ölsäurediglycerid, Ricinolsäuremoglycerid, Ricinolsäurediglycerid, Linolsäu- remonoglycerid, Linolsäurediglycerid, Linolensäuremonoglycerid, Linolensäurediglycerid, Erucasäuremonoglycerid, Erucasäurediglycerid, Weinsäuremonoglycerid, Weinsäurediglycerid, Citronensäuremonoglycerid, Citronendiglycerid, Äpfelsäuremonoglycerid, Äpfelsäurediglycerid sowie deren technische Gemische, die untergeordnet aus dem Herstellungsprozeß noch geringe Mengen an Triglycerid enthalten können.
Als Sorbitanester kommen Sorbitanmonoisostearat, Sorbitansesquiisostearat, Sorbitandiisostea- rat, Sorbitantriisostearat, Sorbitanmonooleat, Sorbitansesquioleat, Sorbitandioleat, Sorbitantrioleat, Sorbitanmonoerucat, Sorbitansesquierucat, Sorbitandierucat, Sorbitantrierucat, Sorbitanmono- ricinoleat, Sorbitansesquiricinoleat, Sorbitandiricinoleat, Sorbitantriricinoleat, Sorbitanmonohy-
droxystearat, Sorbitansesquihydroxystearat, Sorbitandihydroxystearat, Sorbitantrihydroxystearat, Sorbitanmonotartrat, Sorbitansesquitartrat, Sorbitanditartrat, Sorbitantritartrat, Sorbitanmonocitrat, Sorbitansesquicitrat, Sorbitandicitrat, Sorbitantricitrat, Sorbitanmonomaleat, Sorbitansesquimaleat, Sorbitandimaleat, Sorbitantrimaleat sowie deren technische Gemische. Ebenfalls geeignet sind Anlagerungsprodukte von 1 bis 30, vorzugsweise 5 bis 10 Mol Ethylenoxid an die genannten Sorbitanester.
Typische Beispiele für geeignete Polyglycerinester sind Polyglyceryl-2 Dipolyhydroxystearate (Dehymuls® PGPH), Polyglycerin-3-Diisostearate (Lameform® TGI), Polyglyceryl-4 Isostearate (Isolan® Gl 34), Polyglyceryl-3 Oleate, Diisostearoyl Polyglyceryl-3 Diisostearate (Isolan® PDI), Polyglyceryl-3 Methylglucose Distearate (Tego Care® 450), Polyglyceryl-3 Beeswax (Cera Bellina®), Polyglyceryl-4 Caprate (Polyglycerol Caprate T2010/90), Polyglyceryl-3 Cetyl Ether (Chimexane® NL), Polyglyceryl-3 Distearate (Cremophor® GS 32) und Polyglyceryl Polyricino- leate (Admul® WOL 1403) Polyglyceryl Dimerate Isostearate sowie deren Gemische.
Beispiele für weitere geeignete Polyolester sind die gegebenenfalls mit 1 bis 30 Mol Ethylenoxid umgesetzten Mono-, Di- und Triester von Trimethylolpropan oder Pentaerythrit mit Laurinsäure, Kokosfettsäure, Taigfettsäure, Palmitinsäure, Stearinsäure, Ölsäure, Behensäure und dergleichen.
Weiterhin können als Emulgatoren zwitterionische Tenside verwendet werden. Als zwitterionische Tenside werden solche oberflächenaktiven Verbindungen bezeichnet, die im Molekül mindestens eine quartäre Ammoniumgruppe und mindestens eine Carboxylat- und eine Sulfonatgruppe tragen. Besonders geeignete zwitterionische Tenside sind die sogenannten Betaine wie die N- Alkyl-N,N-dimethylammoniumglycinate, beispielsweise das Kokosalkyldimethylammoniumglycinat, N-Acylaminopropyl-N,N-dimethylammoniumglycinate, beispielsweise das Kokosacyl- aminopropyldimethylammoniumglycinat, und 2-Alkyl-3-carboxylmethyl-3-hydroxyethylimidazoline mit jeweils 8 bis 18 C-Atomen in der Alkyl- oder Acylgruppe sowie das Kokosacylaminoethyl- hydroxyethylcarboxymethylglycinat. Besonders bevorzugt ist das unter der CTFA-Bezeichnung Cocamidopropyl Betaine bekannte Fettsäureamid-Derivat. Ebenfalls geeignete Emulgatoren sind ampholytische Tenside. Unter ampholytischen Tensiden werden solche oberflächenaktiven Verbindungen verstanden, die außer einer Cβ/iβ-Alkyl- oder -Acylgruppe im Molekül mindestens eine freie Aminogruppe und mindestens eine -COOH- oder -Sθ3H-Gruppe enthalten und zur Ausbildung innerer Salze befähigt sind. Beispiele für geeignete ampholytische Tenside sind N- Alkylglycine, N-Alkylpropionsäuren, N-Alkylaminobuttersäuren, N-Alkyliminodipropionsäuren, N-Hy- droxyethyl-N-alkylamidopropylglycine, N-Alkyltaurine, N-Alkylsarcosine, 2-Alkylaminopropionsäuren und Alkylaminoessigsäuren mit jeweils etwa 8 bis 18 C-Atomen in der Alkylgruppe. Besonders
bevorzugte ampholytische Tenside sind das N-Kokosalkylaminopropionat, das Kokosacylaminoe- thylaminopropionat und das Ci2/i8-Acylsarcosin.
Schließlich kommen auch Kationtenside als Emulgatoren in Betracht, wobei solche vom Typ der Esterquats, vorzugsweise methylquaternierte Difettsäuretriethanolaminester-Salze, besonders bevorzugt sind.
Als Überfettungsmittel können Substanzen wie beispielsweise Lanolin und Lecithin sowie polye- thoxylierte oder acylierte Lanolin- und Lecithinderivate, Polyolfettsäureester, Monoglyceride und Fettsäurealkanolamide verwendet werden, wobei die letzteren gleichzeitig als Schaumstabilisatoren dienen.
Als Perlglanzwachse kommen beispielsweise in Frage: Alkylenglycolester, speziell Ethylenglycol- distearat; Fettsäurealkanolamide, speziell Kokosfettsäurediethanolamid; Partialglyceride, speziell Stearinsäuremonoglycerid; Ester von mehrwertigen, gegebenenfalls hydroxysubstituierte Carbonsäuren mit Fettalkoholen mit 6 bis 22 Kohlenstoffatomen, speziell langkettige Ester der Weinsäure; Fettstoffe, wie beispielsweise Fettalkohole, Fettketone, Fettaldehyde, Fettether und Fettcarbonate, die in Summe mindestens 24 Kohlenstoffatome aufweisen, speziell Lauron und Distearylether; Fettsäuren wie Stearinsäure, Hydroxystearinsäure oder Behensäure, Ringöffnungsprodukte von Olefinepoxiden mit 12 bis 22 Kohlenstoffatomen mit Fettalkoholen mit 12 bis 22 Kohlenstoff atomen und/oder Polyolen mit 2 bis 15 Kohlenstoffatomen und 2 bis 10 Hydroxylgruppen sowie deren Mischungen.
Als Konsistenzgeber kommen in erster Linie Fettalkohole oder Hydroxyfettalkohole mit 12 bis 22 und vorzugsweise 16 bis 18 Kohlenstoffatomen und daneben Partialglyceride, Fettsäuren oder Hydroxyfettsäuren in Betracht. Bevorzugt ist eine Kombination dieser Stoffe mit Alkyloligoglucosi- den und/oder Fettsäure-N-methylglucamiden gleicher Kettenlänge und/oder Polyglycerinpoly-12- hydroxystearaten.
Geeignete Verdickungsmittel sind beispielsweise Aerosil-Typen (hydrophile Kieselsäuren), Poly- saccharide, insbesondere Xanthan-Gum, Guar-Guar, Agar-Agar, Alginate und Tylosen, Carboxy- methylcellulose und Hydroxyethylcellulose, ferner höhermolekulare Polyethylenglycolmono- und - diester von Fettsäuren, Polyacrylate, (z.B. Carbopole® von Goodrich oder Synthalene® von Sig- ma), Poly- acrylamide, Polyvinylalkohol und Polyvinylpyrrolidon, Tenside wie beispielsweise ethoxylierte Fett- säureglyceride, Ester von Fettsäuren mit Polyolen wie beispielsweise Pentaerythrit oder Trimethy-
lolpropan, Fettalkoholethoxylate mit eingeengter Homologenverteilung oder Alkyloligoglucoside sowie Elektrolyte wie Kochsalz und Ammoniumchlorid.
Geeignete kationische Polymere sind beispielsweise kationische Cellulosederivate, wie z.B. eine quaternierte Hydroxyethylcellulose, die unter der Bezeichnung Polymer JR 400® von Amerchol erhältlich ist, kationische Stärke, Copolymere von Diallylammoniumsalzen und Acrylamiden, quaternierte Vinylpyrrolidon/Vinylimidazol-Polymere, wie z.B. Luviquat® (BASF), Kondensationsprodukte von Polyglycolen und Aminen, quaternierte Kollagenpolypeptide, wie beispielsweise Lauryl- dimonium Hydroxy- propyl Hydrolyzed Collagen (Lamequat®L/Grünau), quaternierte Weizenpolypeptide, Polyethy- lenimin, kationische Siliconpolymere, wie z.B. Amodimethicone, Copolymere der Adipinsäure und Dimethylaminohydroxypropyldiethylentriamin (Cartaretine®/Sandoz), Copolymere der Acrylsäure mit Dimethyl-diallylammoniumchlorid (Merquat® 550/Chemviron), Polyaminopoiyamide, wie z.B. beschrieben in der FR 2252840 A sowie deren vernetzte wasserlöslichen Polymere, kationische Chitinderivate wie beispielsweise quaterniertes Chitosan, gegebenenfalls mikrokristallin verteilt, Kondensationsprodukte aus Dihalogenalkylen, wie z.B. Dibrombutan mit Bisdialkylaminen, wie z.B. Bis-Dimethylamino-1 ,3-propan, kationischer Guar-Gum, wie z.B. Jaguar® CBS, Jaguar® C-17, Jaguar® C-16 der Firma Celanese, quaternierte Ammoniumsalz-Polymere, wie z.B. Mirapol® A- 15, Mirapol® AD-1 , Mirapol® AZ-1 der Firma Miranol.
Als anionische, zwitterionische, amphotere und nichtionische Polymere kommen beispielsweise Vinylacetat/Crotonsäure-Copolymere, Vinylpyrrolidon/Vinylacrylat-Copolymere, Vinylace- tat Butylmaleat/ Isobornylacrylat-Copolymere, Methylvinylether/Maleinsäureanhydrid-Copolymere und deren Ester, unvemetzte und mit Polyolen vernetzte Polyacrylsäuren, Acrylamidopropyl- trimethylammoniumchlorid/ Acrylat-Copolymere, Octylacrylamid/Methylmethacry- lat/tert.Butylaminoethylmethacrylat/2-Hydroxyproyimethacrylat-Copolymere, Polyvinylpyrrolidon, Vi- nylpyrrolidon/Vinylacetat-Copolymere, Vinylpyrrolidon/ Dimethylaminoethylmethacrylat/Vinylcapro- lactam-Terpolymere sowie gegebenenfalls derivatisierte Celluloseether und Silicone in Frage.
Geeignete Siliconverbindungen sind beispielsweise Dimethylpolysiloxane, Methylphenylpolysi- loxane, cyclische Silicone sowie amino-, fettsäure-, alkohol-, polyether-, epoxy-, fluor-, glykosid- und/oder alkylmodifizierte Siliconverbindungen, die bei Raumtemperatur sowohl flüssig als auch harzförmig vorliegen können. Weiterhin geeignet sind Simethicone, bei denen es sich um Mischungen aus Dimethiconen mit einer durchschnittlichen Ketteniänge von 200 bis 300 Dimethylsi- loxan-Einheiten und hydrierten Silicaten handelt. Eine detaillierte Übersicht über geeignete flüchtige Silicone findet sich zudem von Todd et al. in Cosm.Toil. 91, 27 (1976).
Typische Beispiele für Fette sind Glyceride, als Wachse kommen u.a. natürliche Wachse, wie z.B. Candelillawachs, Carnaubawachs, Japanwachs, Espartograswachs, Korkwachs, Guarumawachs, Reis-keimölwachs, Zuckerrohrwachs, Ouricurywachs, Montanwachs, Bienenwachs, Schellackwachs, Walrat, Lanolin (Wollwachs), Bürzelfett, Ceresin, Ozokerit (Erdwachs), Petrolatum, Paraffinwachse, Mikrowachse; chemisch modifizierte Wachse (Hartwachse), wie z.B. Montanesterwachse, Sasolwachse, hydrierte Jojobawachse sowie synthetische Wachse, wie z.B. Polyalkylenwachse und Polyethylenglycolwachse in Frage. Neben den Fetten kommen als Zusatzstoffe auch fettähnliche Substanzen, wie Lecithine und Phospholipide in Frage. Unter der Bezeichnung Lecithine versteht der Fachmann diejenigen Glycero-Phospholipide, die sich aus Fettsäuren, Glycerin, Phosphorsäure und Cholin durch Veresterung bilden. Lecithine werden in der Fachwelt daher auch häufig als Phosphatidylcholine (PC) bezeichnet und folgen der allgemeinen Formel
wobei R typischerweise für lineare aliphatische Kohlenwasserstoffreste mit 15 bis 17 Kohlenstoffatomen und bis zu 4 cis-Doppelbindungen steht. Als Beispiele für natürliche Lecithine seien die Kephaline genannt, die auch als Phosphatidsäuren bezeichnet werden und Derivate der 1 ,2- Diacyl-sn-glycerin-3-phosphorsäuren darstellen. Dem gegenüber versteht man unter Phospholipi- den gewöhnlich Mono- und vorzugsweise Diester der Phosphorsäure mit Glycerin (Glycerinphos- phate), die allgemein zu den Fetten gerechnet werden. Daneben kommen auch Sphingosine bzw. Sphingolipide in Frage.
Als Stabilisatoren können Metallsalze von Fettsäuren, wie z.B. Magnesium-, Aluminium- und/oder Zinkstearat bzw. -ricinoleat eingesetzt werden.
Unter biogenen Wirkstoffen sind beispielsweise Tocopherol, Tocopherolacetat, Tocopherolpal- mitat, Ascorbinsäure, Desoxyribonucleinsäure, Retinol, Bisabolol, Allantoin, Phytantriol, Panthenol, AHA-Säuren, Aminosäuren, Ceramide, Pseudoceramide, essentielle Öle, Pflanzenextrakte und Vitaminkomplexe zu verstehen.
Kosmetische Deodorantien (Desodorantien) wirken Körpergerüchen entgegen, überdecken oder beseitigen sie. Körpergerüche entstehen durch die Einwirkung von Hautbakterien auf apokrinen Schweiß, wobei unangenehm riechende Abbauprodukte gebildet werden. Dementsprechend ent-
halten Deodorantien Wirkstoffe, die als keimhemmende Mittel, Enzyminhibitoren, Geruchsabsorber oder Geruchsüberdecker fungieren.
Als keimhemmende Mittel sind grundsätzlich alle gegen grampositive Bakterien wirksamen Stoffe geeignet, wie z. B. 4-Hydroxybenzoesäure und ihre Salze und Ester, N-(4-Chlorphenyl)-N'-(3,4 dichlorphenyl)harnstoff, 2,4,4'-Trichlor-2'-hydroxydiphenylether (Triclosan), 4-Chlor-3,5- dimethylphenol, 2,2'-Methylen-bis(6-brom-4-chlorphenol), 3-Methyl-4-(1-methylethyl)phenol, 2- Benzyl-4-chlorphenol, 3-(4-Chlorphenoxy)-1 ,2-propandiol, 3-lod-2-propinylbutylcarbamat, Chlorhe- xidin, 3,4,4 '-Trichlorcarbanilid (TTC), antibakterielle Riechstoffe, Thymol, Thymianöl, Eugenol, Nelkenöl, Menthol, Minzöl, Farnesol, Phenoxyethanol, Glycerinmonolaurat (GML), Diglycerinmono- caprinat (DMC), Salicylsäure-N-alkylamide wie z. B. Salicylsäure-n-octylamid oder Salicylsäure-n- decylamid.
Als Enzyminhibitoren sind beispielsweise Esteraseinhibitoren geeignet. Hierbei handelt es sich vorzugsweise um Trialkylcitrate wie Trimethylcitrat, Tripropylcitrat, Triisopropylcitrat, Tributylcitrat und insbesondere Triethylcitrat (Hydagen® CAT, Henkel KGaA, Düsseldorf/FRG). Die Stoffe inhibieren die Enzymaktivität und reduzieren dadurch die Geruchsbildung. Weitere Stoffe, die als Esteraseinhibitoren in Betracht kommen, sind Sterolsulfate oder -phosphate, wie beispielsweise Lanosterin-, Cholesterin-, Campesterin-, Stigmasterin- und Sitosterinsulfat bzw -phosphat, Di- carbonsäuren und deren Ester, wie beispielsweise Glutarsäure, Glutarsäuremonoethylester, Glut- arsäurediethylester, Adipinsäure, Adipinsäuremonoethylester, Adipinsäurediethylester, Malonsäure und Malonsäurediethylester, Hydroxycarbnonsäuren und deren Ester wie beispielsweise Citronensäure, Äpfelsäure, Weinsäure oder Weinsäurediethylester, sowie Zinkglycinat.
Als Geruchsabsorber eignen sich Stoffe, die geruchsbildende Verbindungen aufnehmen und weitgehend festhalten können. Sie senken den Partialdruck der einzelnen Komponenten und verringern so auch ihre Ausbreitungsgeschwindigkeit. Wichtig ist, daß dabei Parfüms unbeeinträchtigt bleiben müssen. Geruchsabsorber haben keine Wirksamkeit gegen Bakterien. Sie enthalten beispielsweise als Hauptbestandteil ein komplexes Zinksalz der Ricinolsäure oder spezielle, weitgehend geruchsneutrale Duftstoffe, die dem Fachmann als "Fixateure" bekannt sind, wie z. B. Extrakte von Labdanum bzw. Styrax oder bestimmte Abietinsäurederivate. Als Geruchsüberdecker fungieren Riechstoffe oder Parfümöle, die zusätzlich zu ihrer Funktion als Geruchsüberdecker den Deodorantien ihre jeweilige Duftnote verleihen. Als Parfümöle seien beispielsweise genannt Gemische aus natürlichen und synthetischen Riechstoffen. Natürliche Riechstoffe sind Extrakte von Blüten, Stengeln und Blättern, Früchten, Fruchtschalen, Wurzeln, Hölzern, Kräutern und Gräsern, Nadeln und Zweigen sowie Harzen und Baisamen. Weiterhin kommen tierische Rohstoffe in Frage, wie beispielsweise Zibet und Castoreum. Typische synthetische Riechstoffverbindungen sind
Produkte vom Typ der Ester, Ether, Aldehyde, Ketone, Alkohole und Kohlenwasserstoffe. Riechstoffverbindungen vom Typ der Ester sind z.B. Benzylacetat, p-tert.-Butylcyclohexylacetat, Linaly- lacetat, Phenylethylacetat, Linalylbenzoat, Benzylformiat, Allylcyclohexylpropionat, Styrallylpropio- nat und Benzylsalicylat. Zu den Ethern zählen beispielsweise Benzylethylether, zu den Aldehyden z.B. die linearen Alkanale mit 8 bis 18 Kohlenstoffatomen, Citral, Citronellal, Citronellyloxyacetal- dehyd, Cyclamenaldehyd, Hydroxycitronellal, Lilial und Bourgeonal, zu den Ketonen z.B. die Jono- ne und Methylcedrylketon, zu den Alkoholen Anethol, Citronellol, Eugenol, Isoeugenol, Geraniol, Linalool, Phenylethylalkohol und Terpineol, zu den Kohlenwasserstoffen gehören hauptsächlich die Terpene und Balsame. Bevorzugt werden jedoch Mischungen verschiedener Riechstoffe verwendet, die gemeinsam eine ansprechende Duftnote erzeugen. Auch ätherische Öle geringerer Flüchtigkeit, die meist als Aromakomponenten verwendet werden, eignen sich als Parfümöle, z.B. Sal- beiöl, Kamillenöl, Nelkenöl, Melissenöl, Minzenöl, Zimtblätteröl, Lindenblütenöl, Wacholderbeeren- öl, Vetiveröl, Olibanöl, Galbanumöl, Labdanumöl und Lavandinöl. Vorzugsweise werden Berga- motteöl, Dihydromyrcenol, Lilial, Lyral, Citronellol, Phenylethylalkohol, α-Hexylzimtaldehyd, Geraniol, Benzylaceton, Cyclamenaldehyd, Linalool, Boisambrene Forte, Ambroxan, Indol, Hedione, Sandelice, Citronenöl, Mandarinenöl, Orangenöl, Allylamylglycolat, Cyclovertal, Lavandinöl, Muskateller Salbeiöl, ß-Damascone, Geraniumöl Bourbon, Cyclohexylsalicylat, Vertofix Coeur, Iso-E- Super, Fixolide NP, Evemyl, Iraldein gamma, Phenylessigsäure, Geranylacetat, Benzylacetat, Rosenoxid, Romilat, Irotyl und Floramat allein oder in Mischungen, eingesetzt.
Antitranspirantien (Antiperspirantien) reduzieren durch Beeinflussung der Aktivität der ekkrinen Schweißdrüsen die Schweißbildung, und wirken somit Achselnässe und Körpergeruch entgegen. Wässrige oder wasserfreie Formulierungen von Antitranspirantien enthalten typischerweise folgende Inhaltsstoffe:
> adstringierende Wirkstoffe,
> Ölkomponenten, nichtionische Emulgatoren,
> Coemulgatoren,
> Konsistenzgeber,
> Hilfsstoffe wie z. B. Verdicker oder Komplexierungsmittel und/oder
> nichtwässrige Lösungsmittel wie z. B. Ethanol, Propylenglykol und/oder Glycerin.
Als adstringierende Antitranspirant-Wirkstoffe eignen sich vor allem Salze des Aluminiums, Zirkoniums oder des Zinks. Solche geeigneten antihydrotisch wirksamen Wirkstoffe sind z.B. Aluminiumchlorid, Aluminiumchlorhydrat, Aluminiumdichlorhydrat, Aluminiumsesquichlorhydrat und deren Komplexverbindungen z. B. mit Propylenglycol-1 ,2. Aluminiumhydroxyallantoinat, Aluminiumchlo-
ridtartrat, Aluminium-Zirkonium-Trichlorohydrat, Aluminium-Zirkonium-tetrachlorohydrat, Aluminium-
Zirkonium-pentachlorohydrat und deren Komplexverbindungen z. B. mit Aminosäuren wie Glycin. Daneben können in Antitranspirantien übliche öllösliche und wasserlösliche Hilfsmittel in geringeren Mengen enthalten sein. Solche öllöslichen Hilfsmittel können z.B. sein:
> entzündungshemmende, hautschützende oder wohlriechende ätherische Öle,
> synthetische hautschützende Wirkstoffe und/oder öllösliche Parfümöle.
Übliche wasserlösliche Zusätze sind z.B. Konservierungsmittel, wasserlösliche Duftstoffe, pH-Wert- Stellmittel, z.B. Puffergemische, wasserlösliche Verdickungsmittel, z.B. wasserlösliche natürliche oder synthetische Polymere wie z.B. Xanthan-Gum, Hydroxyethylcellulose, Polyvinylpyrrolidon oder hochmolekulare Polyethylenoxide.
Gebräuchliche Filmbildner sind beispielsweise Chitosan, mikrokristallines Chitosan, quaterniertes Chitosan, Polyvinylpyrrolidon, Vinylpyrrolidon-Vinylacetat-Copolymerisate, Polymere der Acrylsäu- rereihe, quaternäre Cellulose-Derivate, Kollagen, Hyaluronsäure bzw. deren Salze und ähnliche Verbindungen.
Als Quellmittel für wäßrige Phasen können Montmorillonite, Clay Mineralstoffe, Pemulen sowie alkylmodifizierte Carbopoltypen (Goodrich) dienen. Weitere geeignete Polymere bzw. Quellmittel können der Übersicht von R.Lochhead in Cosm.Toil. 108, 95 (1993) entnommen werden.
Unter UV-Lichtschutzfaktoren sind beispielsweise bei Raumtemperatur flüssig oder kristallin vorliegende organische Substanzen (Lichtschutzfilter) zu verstehen, die in der Lage sind, ultraviolette Strahlen zu absorbieren und die aufgenommene Energie in Form längerwelliger Strahlung, z.B. Wärme wieder abzugeben. UVB-Filter können öllöslich oder wasserlöslich sein. Als öllösliche Substanzen sind z.B. zu nennen:
> 3-Benzylidencampher bzw. 3-Benzylidennorcampher und dessen Derivate, z.B. 3-(4- Methylbenzyliden)campher wie in der EP 0693471 B1 beschrieben;
> 4-Aminobenzoesäurederivate, vorzugsweise 4-(Dimethylamino)benzoesäure-2-ethylhexylester, 4-(Dimethylamino)benzoesäure-2-octylester und 4-(Dimethylamino)benzoesäureamylester;
> Ester der Zimtsäure, vorzugsweise 4-Methoxyzimtsäure-2-ethylhexylester, 4- Methoxyzimtsäurepropylester, 4-Methoxyzimtsäureisoamylester 2-Cyano-3,3-phenylzimtsäure- 2-ethylhexylester (Octo-crylene);
> Ester der Salicylsäure, vorzugsweise Salicylsäure-2-ethylhexylester, Salicylsäure-4- isopropylbenzylester, Salicylsäurehomomenthylester;
> Derivate des Benzophenons, vorzugsweise 2-Hydroxy-4-methoxybenzophenon, 2-Hydroxy-4- methoxy-4'-methylbenzophenon, 2,2'-Dihydroxy-4-methoxybenzophenon;
> Ester der Benzalmalonsäure, vorzugsweise 4-Methoxybenzmalonsäuredi-2-ethylhexylester;
> Triazinderivate, wie z.B. 2,4,6-Trianilino-(p-carbo-2'-ethyl-1'-hexyloxy)-1 ,3,5-triazin und Octyl Triazon, wie in der EP 0818450 A1 beschrieben oder Dioctyl Butamido Triazone (Uvasorb® HEB);
> Propan-1 ,3-dione, wie z.B. 1-(4-tert.Butylphenyl)-3-(4'methoxyphenyl)propan-1 ,3-dion;
> Ketotricyclo(5.2.1.0)decan-Derivate, wie in der EP 0694521 B1 beschrieben.
Als wasserlösliche Substanzen kommen in Frage:
> 2-Phenylbenzimidazol-5-sulfonsäure und deren Alkali-, Erdalkali-, Ammonium-, Alkylammoni- um-, Alkanolammonium- und Glucammoniumsalze;
> Sulfonsäurederivate von Benzophenonen, vorzugsweise 2-Hydroxy-4-methoxybenzophenon- 5-sulfonsäure und ihre Salze;
> Sulfonsäurederivate des 3-Benzylidencamphers, wie z.B. 4-(2-Oxo-3-bomylidenmethyl)benzol- sulfonsäure und 2-Methyl-5-(2-oxo-3-bornyliden)sulfonsäure und deren Salze.
Als typische UV-A-Filter kommen insbesondere Derivate des Benzoylmethans in Frage, wie beispielsweise 1-(4'-tert.Butylphenyl)-3-(4'-methoxyphenyl)propan-1 ,3-dion, 4-tert.-Butyl-4'- methoxydibenzoylmethan (Parsol 1789), 1-Phenyl-3-(4'-isopropylphenyl)-propan-1 ,3-dion sowie Enaminverbindungen, wie beschrieben in der DE 19712033 A1 (BASF). Die UV-A und UV-B-Filter können selbstverständlich auch in Mischungen eingesetzt werden. Neben den genannten löslichen Stoffen kommen für diesen Zweck auch unlösliche Lichtschutzpigmente, nämlich feindisperse Metalloxide bzw. Salze in Frage. Beispiele für geeignete Metalloxide sind insbesondere Zinkoxid und Titandioxid und daneben Oxide des Eisens, Zirkoniums, Siliciums, Mangans, Aluminiums und Cers sowie deren Gemische. Als Salze können Silicate (Talk), Bariumsulfat oder Zinkstearat eingesetzt werden. Die Oxide und Salze werden in Form der Pigmente für hautpflegende und hautschützende Emulsionen und dekorative Kosmetik verwendet. Die Partikel sollten dabei einen mittleren Durchmesser von weniger als 100 nm, vorzugsweise zwischen 5 und 50 nm und insbesondere zwischen 15 und 30 nm aufweisen. Sie können eine sphärische Form aufweisen, es können jedoch auch solche Partikel zum Einsatz kommen, die eine ellipsoide oder in sonstiger Weise von der sphärischen Gestalt abweichende Form besitzen. Die Pigmente können auch oberflächenbehandelt, d.h. hydrophilisiert oder hydrophobiert vorliegen. Typische Beispiele sind gecoatete Titandioxide, wie z.B. Titandioxid T 805 (Degussa) oder Eusolex® T2000 (Merck). Als hydrophobe Coatingmittel
kommen dabei vor allem Silicone und dabei speziell Trialkoxyoctylsilane oder Simethicone in Frage. In Sonnenschutzmitteln werden bevorzugt sogenannte Mikro- oder Nanopigmente eingesetzt. Vorzugsweise wird mikronisiertes Zinkoxid verwendet. Weitere geeignete UV-Lichtschutzfilter sind der Übersicht von P.Finkel in SÖFW-Journal 122, 543 (1996) zu entnehmen.
Neben den beiden vorgenannten Gruppen primärer Lichtschutzstoffe können auch sekundäre Lichtschutzmittel vom Typ der Antioxidantien eingesetzt werden, die die photochemische Reaktionskette unterbrechen, welche ausgelöst wird, wenn UV-Strahlung in die Haut eindringt. Typische Beispiele hierfür sind Aminosäuren (z.B. Glycin, Histidin, Tyrosin, Tryptophan) und deren Derivate, Imidazole (z.B. Urocaninsäure) und deren Derivate, Peptide wie D,L-Carnosin, D-Carnosin, L- Camosin und deren Derivate (z.B. Anserin), Carotinoide, Carotine (z.B. α-Carotin, ß-Carotin, Ly- copin) und deren Derivate, Chlorogensäure und deren Derivate, Liponsäure und deren Derivate (z.B. Dihydroliponsäure), Aurothioglucose, Propylthiouracil und andere Thiole (z.B. Thioredoxin, Glutathion, Cystein, Cystin, Cystamin und deren Glycosyl-, N-Acetyl-, Methyl-, Ethyl-, Propyl-, Amyl-, Butyl- und Lauryl-, Palmitoyl-, Oleyl-, γ-Linoleyl-, Cholesteryl- und Glycerylester) sowie deren Salze, Dilaurylthiodipropionat, Distearylthiodipropionat, Thiodipropions ure und deren Derivate (Ester, Ether, Peptide, Lipide, Nukleotide, Nukleoside und Salze) sowie Sulfoximinverbindungen (z.B. Buthioninsulfoximine, Homocysteinsulfoximin, Butioninsulfone, Penta-, Hexa-, Heptathionin- sulfoximin) in sehr geringen verträglichen Dosierungen (z.B. pmol bis μmol/kg), ferner (Metall)- Chelatoren (z.B. α-Hydroxyfettsäuren, Palmitinsäure, Phytinsäure, Lactoferrin), α-Hydroxysäuren (z.B. Citronensäure, Milchsäure, Äpfelsäure), Huminsäure, Gallensäure, Gallenextrakte, Bilirubin, Biliverdin, EDTA, EGTA und deren Derivate, ungesättigte Fettsäuren und deren Derivate (z.B. γ- Linolensäure, Linolsäure, Ölsäure), Folsäure und deren Derivate, Ubichinon und Ubichinol und deren Derivate, Vitamin C und Derivate (z.B. Ascorbylpalmitat, Mg-Ascorbylphosphat, Ascorbyla- cetat), Tocopherole und Derivate (z.B. Vitamin-E-acetat), Vitamin A und Derivate (Vitamin-A- palmitat) sowie Koniferylbenzoat des Benzoeharzes, Rutinsäure und deren Derivate, α- Glycosylrutin, Ferulasäure, Furfurylidenglucitol, Carnosin, Butylhydroxytoluol, Butylhydroxyanisol, Nordihydroguajakharzsäure, Nordihydroguajaretsäure, Trihydroxybutyrophenon, Harnsäure und deren Derivate, Mannose und deren Derivate, Superoxid-Dismutase, Zink und dessen Derivate (z.B. ZnO, ZnS04) Selen und dessen Derivate (z.B. Selen-Methionin), Stilbene und deren Derivate (z.B. Stilbenoxid, trans-Stilbenoxid) und die erfindungsgemäß geeigneten Derivate (Salze, Ester, Ether, Zucker, Nukleotide, Nukleoside, Peptide und Lipide) dieser genannten Wirkstoffe.
Zur Verbesserung des Fiießverhaltens können ferner Hydrotrope, wie beispielsweise Ethanol, Isopropylalkohol, oder Polyole eingesetzt werden. Polyole, die hier in Betracht kommen, besitzen vorzugsweise 2 bis 15 Kohlenstoffatome und mindestens zwei Hydroxylgruppen. Die Polyole kön-
nen noch weitere funktioneile Gruppen, insbesondere Aminogruppen, enthalten bzw. mit Stickstoff modifiziert sein. Typische Beispiele sind
> Glycerin;
> Alkylenglycole, wie beispielsweise Ethylenglycol, Diethylenglycol, Propylenglycol, Butylengly- col, Hexylenglycol sowie Polyethylenglycole mit einem durchschnittlichen Molekulargewicht von 100 bis 1.000 Dalton; technische Oligoglyceringemische mit einem Eigenkondensationsgrad von 1 ,5 bis 10 wie etwa technische Diglyceringemische mit einem Diglyceringehalt von 40 bis 50 Gew.-%;
> Methyolverbindungen, wie insbesondere Trimethylolethan, Trimethylolpropan, Trimethylol- butan, Pentaerythrit und Dipentaerythrit;
> Niedrigalkylglucoside, insbesondere solche mit 1 bis 8 Kohlenstoffen im Alkylrest, wie beispielsweise Methyl- und Butylglucosid; Zuckeralkohole mit 5 bis 12 Kohlenstoffatomen, wie beispielsweise Sorbit oder Mannit,
> Zucker mit 5 bis 12 Kohlenstoffatomen, wie beispielsweise Glucose oder Saccharose;
> Aminozucker, wie beispielsweise Glucamin; Dialkoholamine, wie Diethanolamin oder 2-Amino-1 ,3-propandiol.
Als Konservierungsmittel eignen sich beispielsweise Phenoxyethanol, Formaldehydlösung, Para- bene, Pentandiol oder Sorbinsäure sowie die in Anlage 6, Teil A und B der Kosmetikverordnung aufgeführten weiteren Stoffklassen.
Als Parfümöle seien genannt Gemische aus natürlichen und synthetischen Riechstoffen. Natürliche Riechstoffe sind Extrakte von Blüten (Lilie, Lavendel, Rosen, Jasmin, Neroli, Ylang-Ylang), Stengeln und Blättern (Geranium, Patchouli, Petitgrain), Früchten (Anis, Koriander, Kümmel, Wacholder), Fruchtschalen (Bergamotte, Zitrone, Orangen), Wurzeln (Macis, Angelica, Sellerie, Kardamon, Costus, Iris, Calmus), Hölzern (Pinien-, Sandel-, Guajak-, Zedern-, Rosenholz), Kräutern und Gräsern (Estragon, Lemongras, Salbei, Thymian), Nadeln und Zweigen (Fichte, Tanne, Kiefer, Latschen), Harzen und Balsamen (Galbanum, Elemi, Benzoe, Myrrhe, Olibanum, Opoponax). Weiterhin kommen tierische Rohstoffe in Frage, wie beispielsweise Zibet und Castoreum. Typische synthetische Riechstoffverbindungen sind Produkte vom Typ der Ester, Ether, Aldehyde, Ketone, Alkohole und Kohlenwasserstoffe. Riechstoffverbindungen vom Typ der Ester sind z.B. Benzylacetat, Phenoxyethylisobutyrat, p-tert.-Butylcyclohexylacetat, Linalylacetat, Dimethylbenzylcarbiny- lacetat, Phenylethylacetat, Linalylbenzoat, Benzylformiat, Ethylmethylphenylglycinat, Allylcyclohe- xylpropionat, Styrallylpropionat und Benzylsalicylat. Zu den Ethern zählen beispielsweise Benzy- lethylether, zu den Aldehyden z.B. die linearen Alkanale mit 8 bis 18 Kohlenstoffatomen, Citral, Citronellal, Citronellyloxyacetaldehyd, Cyclamenaldehyd, Hydroxycitronellal, Lilial und Bourgeonal,
zu den Ketonen z.B. die Jonone, α-lsomethylionon und Methylcedrylketon, zu den Alkoholen Anethol, Citronellol, Eugenol, Isoeugenol, Geraniol, Linalool, Phenylethylalkohol und Terpineol, zu den Kohlenwasserstoffen gehören hauptsächlich die Terpene und Balsame. Bevorzugt werden jedoch Mischungen verschiedener Riechstoffe verwendet, die gemeinsam eine ansprechende Duftnote erzeugen. Auch ätherische Öle geringerer Flüchtigkeit, die meist als Aromakomponenten verwendet werden, eignen sich als Parfümöle, z.B. Salbeiöl, Kamillenöl, Nelkenöl, Melissenöl, Min- zenöl, Zimtblätteröl, Lindenblütenöl, Wacholderbeerenöl, Vetiveröl, Olibanöl, Galbanumöl, Labola- numöl und Lavandinöl. Vorzugsweise werden Bergamotteöl, Dihydromyrcenol, Lilial, Lyral, Citronellol, Phenylethylalkohol, α-Hexylzimtaldehyd, Geraniol, Benzylaceton, Cyclamenaldehyd, Linalool, Boisambrene Forte, Ambroxan, Indol, Hedione, Sandelice, Citronenöl, Mandarinenöl, Oran- genöl, Allylamylglycolat, Cyclovertal, Lavandinöl, Muskateller Salbeiöl, ß-Damascone, Geraniumöl Bourbon, Cyclohexylsalicylat, Vertofix Coeur, Iso-E-Super, Fixolide NP, Evernyl, Iraldein gamma, Phenylessigsäure, Geranylacetat, Benzylacetat, Rosenoxid, Romilllat, Irotyl und Floramat allein oder in Mischungen, eingesetzt.
Als Farbstoffe können die für kosmetische Zwecke geeigneten und zugelassenen Substanzen verwendet werden, wie sie beispielsweise in der Publikation "Kosmetische Färbemittel" der Farbstoffkommission der Deutschen Forschungsgemeinschaft, Verlag Chemie, Weinheim, 1984, S.81-106 zusammengestellt sind. Diese Farbstoffe werden üblicherweise in Konzentrationen von 0,001 bis 0,1 Gew.-%, bezogen auf die gesamte Mischung, eingesetzt.
Der Gesamtanteil der Hilfs- und Zusatzstoffe kann 1 bis 50, vorzugsweise 5 bis 40 Gew.-% - bezogen auf die Mittel - betragen. Die Herstellung der Mittel kann durch übliche Kalt - oder Heißprozesse erfolgen; vorzugsweise arbeitet man nach der Phaseninversionstemperatur-Methode.
Beispiele
Die anwendungstechnischen Eigenschaften verschiedener Abschminkemulsionen wurden von einem Panel von 5 Testerinnen gegenüber Make-up, Lippenstift, Puder-Lidschatten und Mascara subjektiv beurteilt. Hierzu wurde ein Wattepad mit 10 ml der Emulsionen befeuchtet, dreimal über die zu reinigende Hautpartie geführt und diese dann mit einem trockenen Papiertaschentuch abgetupft. Dabei bedeutet (1) = rückstandsfreie Entfernung, keine Farbspuren auf dem Taschentuch; (2) = praktisch rückstandsfreie Entfernung, nur geringe Farbspuren auf dem Taschentuch; (3) = Rückstände sichtbar, Taschentuch weist deutliche Farbspuren auf. Die Stabilität der Emulsionen wurde nach Lagerung über einen Zeitraum von 1 bis 4 Wochen bei 20 bis 40 °C beurteilt; dabei bedeutet (+) = stabil und (-) getrennt. Die Beispiele 1 bis 3 sind erfindungsgemäß, die Beispiele V1 und V2 dienen zum Vergleich. Die Zusammensetzung der Emulsionen und die Testergebnisse sind in Tabelle 1 zusammengefaßt.
Tabelle 1
Zusammensetzung der Abschminkmittel und Testergebnisse (Mengenangaben als Gew.-%)
Claims
1. Verwendung von Detergensgemischen, enthaltend
(a) Fettalkohole,
(b) Fettalkoholpolyglycolether,
(c) Partialglyceride und
(d) Fettsäurealkylester
als Emulgatoren zur Herstellung von Abschminkmitteln.
2. Verwendung nach Anspruch 1 , dadurch gekennzeichnet, daß man Fettalkohole der Formel (I) einsetzt,
in der R1 für einen linearen oder verzweigten Alkylrest mit 12 bis 22 Kohlenstoffatomen einsetzt.
3. Verwendung nach den Ansprüchen 1 und/oder 2, dadurch gekennzeichnet, daß man Fettalkoholpolyglycolether der Formel (II) einsetzt.
R20(CH2CH20)nH (II)
in der R2 für einen linearen oder verzweigten Alkyl- und/oder Alkenylrest mit 6 bis 22 Kohlenstoffatomen und n für Zahlen von 1 bis 50 steht.
4. Verwendung nach Anspruch 3, dadurch gekennzeichnet, daß man mindestens einen Fettalkoholpolyglycolether mit einem HLB unterhalb von 14 und mindestens einen Fettalkoholpolyglycolether mit einem HLB oberhalb von 14 einsetzt.
5. Verwendung nach mindestens einem der Ansprüche 1 bis 4, dadurch gekennzeichnet, daß man Partialglyceride der Formel (III) einsetzt, CH2θ(CH2CH20)χiCOR3
I
CHO(CH2CH2θ)χ2R4 (III)
in der R3CO für einen linearen oder verzweigten, gesättigten und/oder ungesättigten Acylrest mit 6 bis 22Kohlenstoffatomen, R4 und R5 unabhängig voneinander für R3CO oder OH und die
Summe (x1 +x2+x3) für 0 oder Zahlen von 1 bis 100 steht, mit der Maßgabe, daß mindestens einer der beiden Reste R4 und R5 OH bedeutet.
6. Verwendung nach mindestens einem der Ansprüche 1 bis 5, dadurch gekennzeichnet, daß man Fettsäurealkylester der Formel (IV) einsetzt,
in der R6CO für einen linearen doer verzweigten Acylrest mit 6 bis 22 Kohlenstoffatomen und 0 und/oder 1 bis 3 Doppelbindungen und R7 für einen linearen oder verzweigten Alkylrest mit 6 bis 22 Kohlenstoffatomen und 0 und/oder 1 bis 3 Doppelbindungen steht, mit der Maßgabe, daß die Gesamtzahl der Kohlenstoffatome mindestens 18 beträgt.
7. Verwendung nach mindestens einem der Ansprüche 1 bis 6, dadurch gekennzeichnet, daß man Detergensgemische einsetzt, bestehend - bezogen auf die Gemische - aus
(a) 10 bis 25 Gew.-% Fettalkoholen,
(b) 10 bis 60 Gew.-% Fettalkoholpolyglycolethern,
(c) 10 bis 25 Gew.-% Partialglyceriden und
(d) 10 bis 35 Gew.-% Fettsäurealkylestern
mit der Maßgabe, daß sich die Mengenangaben zu 100 Gew.-% addieren.
8. Verwendung nach mindestens einem der Ansprüche 1 bis 7, dadurch gekennzeichnet, daß man die Detergensgemische in Mengen von 1 bis 10 Gew.-% - bezogen auf die Mittel - einsetzt.
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| FR9914832A FR2801498B1 (fr) | 1999-11-25 | 1999-11-25 | Utilisation de melanges de detergents quaternaires de matieres grasses tensioactives pour la production d'agents de demaquillage |
| FR9914832 | 1999-11-25 | ||
| PCT/EP2000/011337 WO2001037794A1 (de) | 1999-11-25 | 2000-11-16 | Verwendung von detergensgemischen als emulgatoren zur herstellung von abschminkmittlen |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP1231888A1 true EP1231888A1 (de) | 2002-08-21 |
Family
ID=9552528
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP00976030A Withdrawn EP1231888A1 (de) | 1999-11-25 | 2000-11-16 | Verwendung von detergensgemischen als emulgatoren zur herstellung von abschminkmitteln |
Country Status (3)
| Country | Link |
|---|---|
| EP (1) | EP1231888A1 (de) |
| FR (1) | FR2801498B1 (de) |
| WO (1) | WO2001037794A1 (de) |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| LU78831A1 (fr) * | 1978-01-06 | 1979-09-06 | Oreal | Composition pour le nettoyage de la peau |
| GB9021417D0 (en) * | 1990-10-02 | 1990-11-14 | Unilever Plc | Cosmetic composition |
-
1999
- 1999-11-25 FR FR9914832A patent/FR2801498B1/fr not_active Expired - Fee Related
-
2000
- 2000-11-16 EP EP00976030A patent/EP1231888A1/de not_active Withdrawn
- 2000-11-16 WO PCT/EP2000/011337 patent/WO2001037794A1/de not_active Ceased
Non-Patent Citations (1)
| Title |
|---|
| See references of WO0137794A1 * |
Also Published As
| Publication number | Publication date |
|---|---|
| FR2801498B1 (fr) | 2002-01-04 |
| WO2001037794A1 (de) | 2001-05-31 |
| FR2801498A1 (fr) | 2001-06-01 |
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