Zinc oxide particles, photostable UV filters and methods of use thereof

By introducing oxygen and zinc defects and adding surface treatment methods, light-stable and low-photocatalytic activity zinc oxygen particles are prepared, which solves the existing problems of zinc oxygen yellowing and photocatalytic activity, and improves the safety and aesthetics of beauty products.

JP7674752B2Active Publication Date: 2025-05-12NANOPHASE TECHNOLOGIES CORP
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Patent Information

Application Number
JP2022581353
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-02-26
Filing Date
2021-06-29
Publication Date
2025-05-12
Estimated Expiration
2041-06-29

AI Technical Summary

Technical Problem

Existing zinc oxygen tends to turn yellow under mechanical polishing or high doses of ultraviolet radiation, and it is difficult to keep white when used in UV filters and beauty products, and there is photocatalytic activity that leads to skin health problems.

Method used

By introducing defects of oxygen and zinc, zinc oxygen particles with an O:Zn ratio of 0.99 or higher were prepared, with a particle size between 10-300 nm, and silica gel or organic surface treatment was added to the surface of the particles to improve light stability and compatibility.

Benefits of technology

The photostability and low photocatalytic activity of zinc oxygen particles are achieved, avoiding color changes and potential harm to the skin, and improving the aesthetics and safety of beauty products.

✦ Generated by Eureka AI based on patent content.

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Abstract

The zinc oxide particles are prepared as a dry powder by introducing defects into stoichiometric zinc oxide particles in a liquid carrier through a gas phase formed by a plasma process or by mechanical stress. The zinc oxide has an O:Zn ratio of at least 0.99, an average particle size of 10-300 nm, and a sufficient concentration of oxygen and zinc vacancies to impart an orange to tan color to a dispersion of the particles in a C12-C15 alkyl benzoate, corresponding to a ΔE value of at least 15 in the dispersion color test. The particles are free of aggregates and have no detectable particles larger than 500 nm on a number-weighted basis.
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Description

[Background technology]

[0001] Zinc oxide is a wide bandgap semiconductor with a reported bandgap of 3.3-3.4 eV, and has been used as a primary white pigment (H. Rafla-Yuan and JF Cordaro, J. Applied Phys. 74, 4685 (1993); JC Simpson and JF Cordaro, J. Applied Phys. 63, 1781 (1988)), in various electronic, optoelectronic, and magneto-optical devices (MD McCluskey and SJ Jokela, J. Applied Phys. 106, 071101 (2009); L. Schmidt-Mende and JL Macmanus-Driscoll, Materials Today, 10 (5), 40 (2007)) as well as a broad spectrum UV filter for topical sunscreen applications (U.S. Pat. No. 5,223,250; U.S. Pat. No. 5,441,726; U.S. Pat. No. 5,536,492; Federal Register 63 FR 56584; 21CRF352.10 (Sunscreen Drug Products for Over-The-Counter Human Use); Federal Register 84 FR 6204). Zinc oxide's use in sunscreens has received particular attention recently as it is one of only two Generally Regarded as Safe and Effective (GRASE) sunscreen actives in the FDA's proposed rule (Federal Register 84 FR 6204). Pigment particles are usually larger in size (>300 nm to about 16 μm) to scatter visible light, whereas particles used in UV filters are typically smaller in size (<300 nm) to avoid light scattering.

[0002] As a primary pigment, zinc oxide has the undesirable property of yellowing when subjected to mechanical abrasion or high doses of UV radiation in vacuum. Deviations from pure white are commercially unacceptable for use as a pigment and have traditionally been unacceptable for use as a UV filter or in cosmetic applications. The origin of this feature has been extensively studied by Cordaro using reflectance spectroscopy on large pigment-sized particles (H. Rafla-Yuan and JF Cordaro, J. Applied Phys. 74, 4685 (1993)), who attributed the origin of the coloration to the formation of oxygen vacancies in zinc oxide, and who further extensively characterized the intrinsic defect levels of bulk single crystal zinc oxide (JC Simpson and JF Cordaro, J. Applied Phys. 63, 1781 (1988)). Studies of pigment particles revealed that oxygen vacancy defects could be created both by polishing (which caused mechanical damage and associated failure) and by the addition of excess zinc (by heat treatment in the presence of zinc vapor), but that rapid cooling had little effect on the observed reflectance spectrum of the powder. The study further discloses a method for preventing the formation of oxygen defects, and the associated coloration, by doping with selected dopants that have an oxygen-rich oxide compared to ZnO. This doping method results in the removal of oxygen defects and preserves the white color of the pigment. While this method is appropriate for large pigment-sized particles, it is impractical for UV filter particles that are classified as drug actives in some jurisdictions and required to be delivered at USP levels of purity, and severely limits the amount of dopant that can be added.

[0003] Characterization of the native defect level is continuing and a summary has been published (L. Schmidt-Mende and JL Macmanus-Driscoll, Materials Today, 10 (5), 40 (2007)). The native defect types in zinc oxide are shown in Figure 1. The defect types are described using the Kröger–Bink notation, where Zn=zinc, O=oxygen, i=interstitial site, V=vacancy, where a dot indicates a positive charge, a double dot indicates a double positive charge, a prime indicates a negative charge, a double prime indicates a double negative charge, and x indicates no charge. The native donor defects in zinc oxide are electron donor defects. JPEG0007674752000001.jpg18112 and electron acceptor defects JPEG0007674752000002.jpg22112 It is.

[0004] Zinc oxide particles both absorb and scatter UV radiation, with the former playing a larger role as the particle size decreases. When inorganic UV filters, including zinc oxide, absorb UV radiation, electron-hole pairs known as excitons are formed. The excitons are known to react with oxygen molecules via electron transfer reactions to generate superoxide anion radicals. Superoxide anion radicals are highly reactive and aggressive species responsible for the formation of various reactive oxygen species, including hydroxyl radicals (OH·), lipid alkoxy radicals, lipid peroxyl radicals, singlet oxygen, and nitric oxide. These species can initiate or participate in chain reactions, contributing to adverse effects on skin health. Such reactions can be inhibited by sequestering the charge carriers resulting from UV absorption by targeted surface treatments (U.S. Pat. No. 9,139,737; WO 20180291210A1) or by quenching the exciton species.

[0005] Defects can be introduced into zinc oxide to quench excitons. One method of introducing defects to quench excitons is described in U.S. Patent No. 6,869,596 to Knowland et al. Luminescent traps or killer sites were introduced into zinc oxide particles smaller than 200 nm by thermal reduction using hydrogen to remove oxygen. The introduction of traps serves the purpose of capturing electrons and holes that are generated when the zinc oxide particles are excited with UV radiation. The particles have an excess of Zn in the absorbing core. 2+ It is believed to contain ions and has been shown to result in some reduction in the photocatalytic effect. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] U.S. Patent No. 5,223,250 [Patent Document 2] U.S. Pat. No. 5,441,726 [Patent Document 3] U.S. Pat. No. 5,536,492 [Patent Document 4] U.S. Pat. No. 9,139,737 [Patent Document 5] International Publication 20180291210A1 [Patent Document 6] U.S. Patent No. 6,869,596 [Non-patent literature]

[0007] [Non-Patent Document 1] H. Rafla-Yuan and JF Cordaro, J. Applied Phys. 74, 4685 (1993) [Non-Patent Document 2] JC Simpson and JF Cordaro, J. Applied Phys. 63, 1781 (1988) [Non-Patent Document 3] MD McCluskey and SJ Jokela, J. Applied Phys. 106, 071101 (2009) [Non-Patent Document 4] L. Schmidt-Mende and JL Macmanus-Driscoll, Materials Today, 10 (5), 40 (2007) [Non-Patent Document 5] Federal Register 63 FR 56584 [Non-Patent Document 6] 21CRF352.10 (Sunscreen Drug Products for Over-The-Counter Human Use) [Non-Patent Document 7] Federal Register 84 FR 6204 Summary of the Invention [Means for solving the problem]

[0008] In a first aspect, the invention is zinc oxide particles. The particles have an O:Zn ratio of at least 0.99, an average particle size of 10-300 nm, and a sufficient concentration of oxygen and zinc vacancies to impart to a dispersion of the particles in a C12-C15 alkyl benzoate an orange to tan color corresponding to a ΔE value of at least 15 in the Dispersion Color Test. The particles are free of aggregates and have no detectable particles greater than 500 nm on a number-weighted basis.

[0009] In a second aspect, the present invention is zinc oxide particles having an average particle size of 10 to 300 nm, the particles being stoichiometric zinc oxide, the particles having a ΔE value of up to 10 in the DPPH Photocatalytic Stability Test, and the particles having a ΔE value of at least 15 in the Dispersion Color Test.

[0010] In a third aspect, the invention is a coated particle comprising: (a) zinc oxide particles and a silica coating on the zinc oxide particles. The zinc oxide has (i) an O:Zn ratio of at least 0.99, and (ii) a sufficient concentration of oxygen and zinc vacancies to impart an orange to tan color to a dispersion of the particles in a C12-C15 alkyl benzoate corresponding to a ΔE value of at least 15 in the Dispersion Color Test. The coated particles have an average particle size of 10-300 nm. The particles are free of aggregates and have no detectable particles greater than 500 nm on a number-weighted basis.

[0011] In a fourth aspect, the invention is a coated particle comprising: (a) zinc oxide particles; and (b) an organic moiety-containing coating on the zinc oxide particles. The zinc oxide particles have (i) an O:Zn ratio of at least 0.99, and (ii) a sufficient concentration of oxygen and zinc vacancies to impart an orange to tan color to a dispersion of the particles in a C12-C15 alkyl benzoate corresponding to a ΔE value of at least 15 in the Dispersion Color Test. The coated particles have an average particle size of 10-300 nm. The particles are free of aggregates and have no detectable particles greater than 500 nm on a number-weighted basis.

[0012] definition The term "particle size" refers to the average diameter of the image of a particle as seen by an electron microscope. The term "particle size" is used in this manner unless otherwise noted. The term "average particle size" refers to the average of the particle sizes of a collection of particles, or the mean diameter of the particle size determined using the Brunauer-Emmett-Teller (BET) method, which corresponds to a full density of particles. 2 The specific surface area of ​​the particles is measured in g / g and calculated using a spherical model. The terms "powder" and "particles" are used interchangeably.

[0013] The term "stoichiometric" refers to a zinc oxide composition having a ratio of O:Zn (referred to as "n") of ≧0.99. This may be determined by any mass gain characteristic that exhibits a distinct inflection point with an onset greater than 400° C. during thermogravimetric analysis under an oxygen atmosphere, and may be calculated assuming all mass gain is oxygen. Preferably, n≧0.999 is determined by the absence of a mass gain characteristic that exhibits a distinct inflection point with an onset greater than 400° C. during thermogravimetric analysis under an oxygen atmosphere.

[0014] The terms "surface treatment" and "surface coating" are used interchangeably. Furthermore, the term "zinc oxide UV filter" means zinc oxide having an average particle size of up to 300 nm.

[0015] The terms "photostable", "photocatalytically stable" and "ultraphotostable" all refer to the same property of zinc oxide: the reduction or elimination of the chemical reactivity of excitons caused by the absorption of light. Each term refers to a different degree of reduction in reactivity, with "ultraphotostable" being the least reactive and "photostable" being the most reactive, and each has a different test, one more sensitive than the next. A test to determine if a zinc oxide powder is photostable is described in U.S. Pat. No. 9,139,737, a test for photocatalytic stability is described below, and a test for ultraphotostability is described in U.S. Pat. Pub. No. 2018 / 0291210.

[0016] The phrase "organic moiety-containing coating" refers to a coating that is 3 and / or -CH 2 - refers to a surface coating that contains - moieties. Examples include particles surface treated with silanizing agents, particles coated with propylsilsesquioxane / dimethiconol / silicate crosspolymers, particles surface treated with vegetable derived phosphatides, and particles surface treated by esterifying fatty alcohols or polyglyceryl (polyol) compounds. These surface coatings and treatments can be used to render particles hydrophobic. [Brief description of the drawings]

[0017] [Figure 1] FIG. 1 is a band diagram showing the energy levels of defects in ZnO. [Diagram 2] 1 is a graph showing thermogravimetric analysis (TGA) of zinc oxide powders of Examples 1 to 4. [Diagram 3] 1 is a graph showing the results of a DPPH photocatalytic stability test (horizontal axis) versus the results of a dispersion color test (vertical axis) for the zinc oxide powders of Examples 1 to 15. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0018] The compositions of Knowland et al. are formed by thermal reduction in hydrogen at high temperatures resulting in the removal of oxygen, and therefore contain excess zinc and are non-stoichiometric. Such zinc oxide compositions can be identified using thermogravimetric analysis and show weight gain in air starting above 400°C, caused by reoxidation of the particles. Particles of similar overall composition (described as Zn / ZnO core-shell particles) have been reported to generate free radicals and other reactive oxygen species in the dark (G. Yi, G. Agarwal, and Y. Zhang, J. Phys. Chem. C 123, 19230 (2019)). Free radical testing performed in the dark confirmed that the particles of Knowland et al. share this behavior of generating free radicals in a dark environment. The generation of free radicals makes these particles less favorable for use on the skin.

[0019] The present invention utilizes zinc oxide particles that are stoichiometric, contain no significant aluminum or transition metal dopants, have an average particle size of 10-300 nm, and contain a sufficient concentration of defects to quench excitons, making the particles photostable and photocatalytically stable. Additionally, the optional addition of one or more coatings improves photostability and photocatalytic stability and allows for improved compatibility with cosmetic formulations. The concentration of defects results in a characteristic orange to tan color when dispersed in a liquid carrier, a color that has become commercially acceptable in cosmetic formulations in recent years due to changing consumer preferences. Without wishing to be bound by theory, it is believed that the photocatalytic stability and color are due to a threshold concentration of defect states that are responsible for both color due to defect state absorption and low photocatalytic activity due to exciton trapping. The yellow aspect of such coloration has been attributed to oxygen vacancy defects. Since the particles are stoichiometric ZnO, it can be inferred that the electron donating oxygen vacancy defects present in the particles are not due to the presence of excess zinc atoms, but rather due to atomic disorder, with the balance of electron acceptor zinc vacancy defects.In addition, the particles of the present invention are non-pigmentary in particle size (i.e., average particle size is less than 300 nm), so they do not substantially scatter visible light.This allows them to be used without imparting significant color when applied to the skin, and in fact can improve the aesthetic properties of formulations containing the particles somewhat compared to those containing conventional white zinc oxide.

[0020] Preferably, the particles have an average particle size of up to 100, 200 and 300 nm, more preferably an average particle size of 10 nm to 200 nm, most preferably an average particle size of 15 nm to 200 nm, such as an average particle size of 20, 30, 40, 50, 60, 70, 80, 90, 100, 110, 120, 130, 140, 150, 160, 170, 180, 190 and 200 nm, including an average particle size of up to 300 nm. Pigment-sized UV-absorbing particles (zinc oxide average particle size greater than 300 nm) are generally characterized by a sufficiently low absorption coefficient in the wavelength range 290-400 nm that they do not provide sufficient SPF at normal concentration levels, thus precluding their practical use in UV protection compositions. Moreover, when the particle size is less than 10 nm, the effective exciton radius in zinc oxide is large enough to extend outside the particle, so that the particle cannot efficiently quench excitons, regardless of the concentration of vacancies. Such small particles are not photocatalytically stable.

[0021] Agglomerates are defined as a collection of weakly bound particles held together by electrostatic interactions. Aggregates are defined as particles held together by strong interactions such as covalent or ionic bonds. The two can be distinguished by dispersing the particles using low intensity mixing combined with sonication, followed by detection and particle size analysis using laser light scattering as described in ISO13320:2009 (Particle size analysis - Laser diffraction methods). Agglomerates are broken down to reveal the constituent particles, whereas aggregates remain at their nominal aggregate size and are detected as such. Suitable analytical instruments for dispersing powders for measurement and determining particle size distribution by this method are Horiba LA910, Horiba 960, or equivalent. Preferably, the zinc oxide particles of the present invention are free of aggregates and have no detectable particles above 500 nm on a number-weighted basis. The presence of such aggregates scatters both visible and UV light, resulting in both poor aesthetics and reduced absorption of UV light in the product. If the particles to be analyzed are dispersed in a fluid other than isopropanol, the particles must first be diluted with isopropanol. Dry powders must first be dispersed in isopropanol and then analyzed.

[0022] Preferably, the particles are stoichiometric, i.e., the zinc oxide particles have a ratio of O:Zn (referred to as "n") of ≧0.99. This is determined by any mass gain feature that exhibits a clear inflection point with an onset above 400° C. during thermogravimetric analysis under oxygen atmosphere, and can be calculated assuming all mass gain is oxygen. Preferably, n≧0.999 is determined by the absence of a mass gain feature greater than 0.02% that exhibits a clear inflection point with an onset above 400° C. during thermogravimetric analysis under oxygen atmosphere. Thermogravimetric analysis of Knowland et al.'s particles in an oxygen environment results in a clear and characteristic mass gain due to reoxidation of the particles once sufficient temperature is reached. Zinc oxide containing excess oxygen is not stable to mild heating.

[0023] Particle stoichiometry is determined using thermogravimetric analysis performed in a platinum pan at a scan rate of 10°C / min to 20°C / min in the range of 25°C to 800°C under a pure oxygen atmosphere. Suitable instruments have an accuracy of 0.01%. Suitable instruments include a TA Instruments Q Series 50 TGA Analyzer or equivalent. For the analysis to determine stoichiometry, a baseline sample mass is taken at a temperature above the mass loss temperature due to gas desorption for dry uncoated powders, or above the ignition temperature for the coating chemistry (for dry coated powders), or above the ignition temperature for the solvent and / or carrier fluid (for coated powders or dispersions). This baseline point is taken to reflect the composition of the base zinc oxide.

[0024] The combination of stoichiometry and an orange to tan color when dispersed in a liquid carrier to sufficient depth as described below indicates that the ZnO particles are composed of oxygen vacancy defects. JPEG0007674752000003.jpg2478 and zinc vacancy defects JPEG0007674752000004.jpg1795 and in substantially equal numbers, resulting in substantial exciton quenching, meaning that the particles are photocatalytically stable. Stoichiometric zinc oxide is a non-pigmentary particle that has low photocatalytic activity that is stoichiometric, where the low photocatalytic activity is due to a sufficient concentration of charge-balanced intrinsic defects (i.e., balanced oxygen and zinc vacancies) that can act as exciton traps and are in a sufficient concentration to be identified by having a color above a darkening threshold level.

[0025] The photocatalytic stability of zinc oxide (ZnO) is measured using the following test. This test is referred to as the "DPPH Photocatalytic Stability Test." First, 0.025 g ± 0.001 g of ZnO powder, based on active substance, is added to six 50 mL disposable plastic beakers. A 0.0125% solution of DPPH (di(phenyl)-(2,4,6-trinitrophenyl)iminoazanium, also known as diphenylpicrylhydrazyl; CAS number 1898-66-4) is prepared in ethylene glycol butyl ether (BCS). To each beaker containing zinc oxide powder, 19.975 g ± 0.001 of a 0.0125% solution of DPPH in BCS is added. If zinc oxide active is being tested from a dispersion, 0.025 g ± 0.001 of zinc oxide active is added from a dispersion of known zinc oxide content to six 50 mL disposable plastic beakers. A nominal 0.0125% DPPH solution is prepared in BCS (ethylene glycol butyl ether), with the concentration of BCS adjusted in an amount sufficient to compensate for the liquid dispersion carrier and any other excipient components in the zinc oxide-containing dispersion. 19.975 g ± 0.001 of the adjusted nominal 0.0125% DPPH solution in BCS is added to each beaker containing a zinc oxide dispersion. The samples are mixed thoroughly with a glass stir bar and each beaker is sonicated for 60 seconds to ensure that the particles are well dispersed throughout the solution. After sonication, the samples are transferred to labeled scintillation vials.

[0026] The samples are measured before exposure using a Konica Minolta CM-600D Colorimeter, or a suitable equivalent, calibrated using a NIST traceable white tile. After the measurements are taken, the samples are exposed to light. The test mixtures are measured using a Q-Labs QUV Weatherometer with a UVB bulb at 1.28 Watts. -2 s -1 The samples are exposed to UV light for exactly 5.5 minutes using a constant temperature of 50 °C at 25 °C. Finally, the samples after irradiation are measured with a colorimeter. The photocatalytic stability after UV exposure is indicated by the persistence of the purple color due to the absorption band of the dye at 520 nm. The photocatalytic stability is measured by the total change in color (L* a * b * It can be expressed as ΔE in color space. ΔE is calculated according to the CIE76 definition from the following formula:

[0027]

number

[0028] During the ceremony, JPEG0007674752000006.jpg29103 are the color coordinates of the test mixture after irradiation, JPEG0007674752000007.jpg25103 are the initial color coordinates of the test mixture before irradiation. Data are reported as the average ΔE value of six samples. Particles are photocatalytically stable if ΔE≦10 in the photocatalytic stability test described above. In the DPPH photocatalytic stability test, it is preferred that the particles have ΔE≦9, 8, 7, 6, 5 or 3, e.g., ΔE=1-10.

[0029] The color of zinc oxide (ZnO) is measured using the test described below. A zinc oxide powder has a sufficient concentration of vacancy defects to substantially quench excitons (i.e., the powder is photocatalytically stable) if the ΔE value in the following test is at least 15. This test is referred to as the "Dispersion Color Test." First, a carrier solution is prepared in Finsolv TN (INCI name: C12-15 alkyl benzoate) at 4.30±0.1% Hostaphat KW 340D (INCI name: Triceteareth-4 Phosphate). For powder samples, 3.00±0.01 g of zinc oxide powder, based on active substance, is added to a scintillation vial and diluted to a total of 10.00±0.01 g with carrier solution. For dispersion-based samples where the liquid carrier is known to have a Gardner number of 2 or less, 3.00±0.01 g of zinc oxide, on an active substance basis, from a dispersion of known zinc oxide content is added to a scintillation vial and diluted to 10.00±0.01 g with pure Finsolv TN. The color is measured by the total color difference (L * a * b* It can be expressed as ΔE in color space. ΔE is calculated according to the CIE76 definition from the following formula:

[0030]

number

[0031] The dispersion color test preferably has a ΔE value of at least 16, 17, 19, 20 or 25, for example ΔE=15-26. Preferably, the particles do not contain chromium or manganese, which can be determined by elemental analysis. Preferably, the zinc oxide is not doped with silicon or aluminum, which can be confirmed by the zinc not being pure white in color.

[0032] Stoichiometric zinc oxide particles can be prepared as dry powders by vapor phase formed by plasma process using very high cooling rate in an environment containing enough oxygen to ensure stoichiometric product. When present as dry powder, in the form of dispersion, zinc oxide particles appear white due to light scattering, even though the actual color of the particles becomes apparent when wetted with liquid carrier. Alternatively, stoichiometric zinc oxide particles and powders containing defects may be prepared by introducing defects into stoichiometric zinc oxide particles in liquid carrier by mechanical stress.

[0033] Plasma-based particle production methods, especially according to the methods described in US Pat. Nos. 5,460,701 and 5,874,684, are well suited for the production of stoichiometric zinc oxide particles (US Pat. Nos. 2,616,842, 3,900,762, 4,642,207, 4,732,369, 5,460,701, 5,874,684, 7,517,513). The methods described therein are called "transferred arc physical vapor synthesis". In these processes, zinc vapor is generated by a transferred arc in a geometry in which the magnetic fields of the cathode and anode plasma jets generate a high-velocity injected converging plasma jet containing saturated vapor of the product precursor. The velocity of this plasma jet results in rapid cooling in a non-equilibrium process. The vapor becomes supersaturated and is formed into particles by a condensation nucleation process, and the condensed particles are exposed to an oxygen-containing gas to complete the oxidation reaction. An oxidizer may be used to simultaneously dilute the emerging zinc oxide particle stream with micromixing to control particle size. This dilution process to generate zinc oxide aerosol may be used to quench the emerging particle stream and to control annealing, oxidation, primary particle growth, and particle coalescence. This zinc oxide aerosol is finally mixed with a dilution / transport gas, which transports the aerosol to a collector, and the product is collected as an electrostatically bound powder consisting of weak agglomerates.

[0034] The process factors that affect particle size, described in U.S. Patents 5,460,701 and 5,874,684, also affect the degree of oxidation and defect concentration. Arc power, through the precursor vaporization rate, affects both the plasma jet temperature and the zinc atomic concentration in the plasma. The introduction rate of the oxidant quench gas, and its relative position along the emerging arc jet relative to its origination location, affect the zinc / oxygen atomic ratio, oxidation rate, average particle size, and defect formation. Finally, the introduction rate of the transport gas further influences the oxidation rate and defect formation.

[0035] In these types of plasma processes, only the hexagonal zincite crystal structure (also called the wurtzite crystal structure) is formed. This structure is relatively open and can support a variety of intrinsic defect states (L. Schmidt-Mende and JL Macmanus-Driscoll, Materials Today, 10 (5), 40 (2007)). Rapid cooling "freezes" various levels of atomic disorder into the zincite crystal structure and may be used to control the concentration of defect states as the particles are produced. Certain combinations of process factors produce powders that exhibit coloration that can be attributed to the presence of crystal defects. In certain combinations of process conditions, this coloration can be associated with the presence of excess zinc atoms, indicating undesirable incomplete oxidation. Such undesirable materials are substoichiometric zinc oxides that necessarily exhibit a mass gain that exhibits a clear inflection point with an onset above 400°C when measured by thermogravimetric analysis under oxygen atmosphere. Various individual selected combinations of process conditions, which can be identified by empirical process mapping (i.e., by testing different process conditions and testing the resulting product), result in the formation of stoichiometric zinc oxide that exhibits a deep orange to tan coloration when dispersed in a non-aqueous liquid. Example 1 below provides one such set of conditions. A desirable zinc oxide product simultaneously meets the following criteria: (1) ΔE≧15 in the dispersion color test, (2) ΔE≦10 in the DPPH photocatalytic stability test, (3) average particle size of 10-300 nm, and (4) is stoichiometric with respect to the zinc to oxygen ratio.

[0036] Stoichiometric zinc oxide particles may also be prepared in a dispersion, preferably in a non-aqueous liquid medium, by applying sufficient mechanical stress to induce balanced donor and acceptor defects in stoichiometric zinc oxide.Stoichiometric composition in such cases is verified by the absence of oxidation-related mass gain as defined above, relative to the baseline mass established after ignition and surface treatment of all liquid carriers.Mechanical stress can be applied using various methods, preferably using a stirred media mill.Mechanical stress can be applied to any stoichiometric zinc oxide, used to create atomic disorder that results in a sufficient concentration of defects, to increase the concentration of defects that trap radicals. The effects of fluid type, hydrodynamic parameters and impingement characteristics related to media size, shape and composition, as well as the effect of specific energy input, have been extensively taught with respect to media milling in general (R. Gers, E. Climent, D. Legendre, D. Anne-Archard, and C. Frances, Chemical Engineering Science, 65, 2052 (2010); RJ Tamblyn, Ph.D. Dissertation, University of Birmingham (2009)). The process can proceed with or without mechanical disruption to reduce particle size by controlling the size of the grinding media. In the latter case (without mechanical disruption), selecting a media size large enough so that the practical final particle size that can be achieved by grinding exceeds that of the starting average particle size of the powder being processed avoids particle size reduction. Milling is performed until the particles contain a sufficient concentration of defects to quench excitons and render the particles photocatalytically stable, as determined by testing zinc oxide in a dispersion color test to determine ΔE≧15. The stoichiometric zinc oxide thus produced also simultaneously meets the following criteria: (1) ΔE≧15 in the dispersion color test, (2) ΔE≦10 in the DPPH photocatalytic stability test, (3) average particle size of 10-300 nm, and (4) stoichiometric with respect to the zinc to oxygen ratio. Even though the stoichiometric zinc oxide is prepared in a dispersion, the liquid medium can be removed by evaporation to obtain a dry powder.

[0037] Zinc oxide may be surface treated or coated with inorganic oxides to further reduce the photocatalytic activity of the particles. Such surface coatings also prevent dissolution of zinc into the formulation (leaking of Zn(II) ions) which may cause emulsion destabilization or formation of precipitates. Methods for applying surface treatments are well known. Preferred oxides for surface treatment are silica (U.S. Pat. Nos. 2,885,366, 3,437,502, 4,845,054) and alumina (U.S. Pat. No. 3,437,502). Such silica and alumina coatings do not affect color in the dispersion color test. Inorganic surface treatments can be applied at 0.5% to 40% of the mass of the zinc oxide particles, with a preferred range being 2.0% to 20% of the mass of the particles, adjusted based on the specific surface area of ​​the particles, with higher values ​​of specific surface area generally requiring higher levels of surface treatment. Preferably, stoichiometric zinc oxide is first surface treated with inorganic oxides before further surface treatment or coating below.

[0038] The zinc oxide particles may be coated with one or more organic moiety-containing coatings to enhance the hydrophobicity of the powder. Such coatings and surface treatments generally do not affect color in a dispersion color test. Such coatings and surface treatments may be applied to uncoated particles or to particles coated with inorganic oxides.

[0039] Zinc oxide may be surface treated with a silanizing agent. The silanizing agent may be applied to the surface of the particle either in the raw state or after first being surface treated with an inorganic oxide. The silanizing agent may be any material that results in a functionalized polysiloxane on the surface of the particle. Examples of suitable silanizing agents are well known (U.S. Pat. No. 2,938,009; U.S. Pat. No. 6,214,106; U.S. Pat. No. 3,849,152; U.S. Pat. No. 3,920,865; U.S. Pat. No. 5,486,631; U.S. Pat. No. 5,565,591; U.S. Pat. No. 5,756,788; U.S. Pat. No. 5,993,967; U.S. Pat. No. 6,033,781; U.S. Pat. No. 9,139,737; WO 2013 / 023631). 80291210A1, U.S. Pat. No. 10,555,892), reactive silicone and silane hydrophobizing surface treatments (e.g., triethoxycaprylylsilane, octadecyltriethoxysilane, hydrogen dimethicone (CAS No. 68037-59-2 / 69013-23-6 / 70900-21-9) and CAS No. 69430-47-3 (siloxane and silicone, reaction product with di-Me, Me hydrogen siloxane and 1,1,3,3-tetramethyldisiloxane)). The silanizing surface treatment serves to retain the particles in the oil phase of UV-protecting topical preparations and to hydrophobize them to impart water resistance.

[0040] Preferably, the zinc oxide particles are coated with crosslinked polymers, such as propylsilsesquioxane / dimethiconol / silicate crosslinked polymers, as described in US Patent Publication No. 2018 / 0291210, which have been shown to further inhibit UV-induced free radical generation of zinc oxide particles, thereby enabling enhanced antioxidant activity and inhibition of free radicals generated in skin upon UV exposure, as compared to typical zinc oxide powders. The zinc oxide particles with this coating are ultra-photostable. US Patent Publication No. 2018 / 0291210 describes photostability testing and criteria for determining whether a zinc oxide powder is ultra-photostable.

[0041] Zinc oxide may be surface treated with plant-derived phosphatides. Methods for this surface treatment are taught in the art (U.S. Pat. Nos. 4,056,494, 4,126,591, 4,305,853). For example, a suitable phosphatide can be dissolved in a USP grade solvent such as USP heptane, sprayed onto the powder surface, dried, and then heated at 100-150°C to obtain a permanently hydrophobic powder. The preferred range of phosphatide is 0.5-25% by weight, with a more preferred level of phosphatide being 1.0-10% by weight. A preferred phosphatide is lecithin.

[0042] Zinc oxide may be surface treated by esterifying a fatty alcohol or polyglyceryl (polyol) compound to the particle surface. Methods for this surface treatment have been taught (U.S. Pat. No. 2,657,149). For example, a suitable fatty alcohol or polyglyceryl compound can be dissolved in a USP grade solvent such as USP isopropanol, sprayed onto the powder surface, dried, and then heated at 130-200°C to obtain a permanently hydrophobic powder. A preferred range of fatty alcohol or polyglyceryl compound is 0.5-25% by weight, with a more preferred level of fatty alcohol or polyglyceryl compound being 1.0-10% by weight. Suitable examples of fatty alcohols are stearyl alcohol, behenyl alcohol, octyldodecanol, and cetearyl alcohol. Suitable examples of polyglyceryl (polyol) compounds are polyglyceryl esters (e.g., polyglyceryl-3 ricinoleate, polyglyceryl-6 ricinoleate, polyglyceryl-10 pentastearate and polyglyceryl-4 oleate), polyglyceryl polyesters (e.g., polyglyceryl-4 diisostearate / polyhydroxystearate / sebacate, polyglyceryl-2 dipolyhydroxystearate and polyglyceryl-3 stearate / isostearate / dimer dilinoleate crosspolymer).

[0043] Preferably, the powder is hydrophobic. Hydrophobicity is measured using the following hydrophobicity test (this test is a visible water floatation test commonly used in the cosmetics industry and described in US Patent No. 4,454,288): Approximately 30 mL of deionized water is placed in a glass bottle. Approximately 3.0 g ± 0.30 g of the powder to be tested is added to the glass bottle. The glass bottle is sealed and the sample is swirled about 4-5 times and shaken vigorously 4-5 times so that intimate contact between the water and the powder is achieved. If the powder is buoyant (floating on the water surface) and the water is clear after 15 minutes, the powder is considered hydrophobic. If the powder is not buoyant but the water is clear after 15 minutes, or if the powder is buoyant but the water is not clear after 15 minutes, the sample is slightly hydrophobic.

[0044] Dispersions of zinc oxide powder in liquid carriers can be prepared from stoichiometric zinc oxide particles as prepared or following one or more surface treatments. Dispersions can be prepared by conventional compounding techniques. For example, zinc oxide particles, optional surfactants / dispersants, and liquid carriers can be combined in a container and stirred until homogeneous. The dispersion can then be transferred to a mill, such as a media mill, and milled to achieve a desired average particle size.

[0045] The liquid carrier may be any fluid or wax that is lipophilic, preferably a cosmetically acceptable fluid or wax, including mixtures thereof. Examples of suitable liquid carriers include triglycerides (e.g., caprylic / capric triglyceride), esters (e.g., C12-C15 alkyl benzoate, isopentyl laurate, isopropyl isostearate, coco-caprylate, coco-caprylate caprate, ethylhexyl isononanoate, tridecyl salicylate, ethylhexyl isononanoate, isodecyl salicylate, octyldodecyl neopentanoate, butyloctyl salicylate, jojoba esters, and shea butter ethyl esters), natural oils and butters (e.g., Simmondsia chinensis seed oil, shea butter, Argania spinosa (argan) oil, watercress (karanja) oil, and meadowfoam (Limnanthes alba) oil). alba) (white meadowfoam) seed oil), alkanes (e.g., squalane, hemisqualane, isododecane, and isohexadecane), silicones (e.g., dimethicone, behenyl dimethicone, cetyl dimethicone, cetearyl methicone, and phenyl dimethicone), waxes (e.g., natural waxes, synthetic waxes, and silicone waxes), and combinations thereof.

[0046] The surfactant / dispersant may be any surfactant or dispersant that has a strong acid-base interaction with the raw or surface treated zinc oxide particles. Examples of suitable surfactants / dispersants include fatty alcohols and polyols (e.g., stearyl alcohol, behenyl alcohol and cetearyl alcohol), fatty acids (e.g., stearic acid and oleic acid), amino acids (e.g., lauroyl lysine and myristoyl glutamic acid), polyglyceryl esters (e.g., Polyglyceryl-3 ricinoleate, Polyglyceryl-6 ricinoleate, Polyglyceryl-10 pentastearate and Polyglyceryl-4 oleate), polyglyceryl polyesters (e.g., Diisostearate / Polyhydroxystearic acid / Polyglyceryl-4 Sebacate, Polyglyceryl-2 Dipolyhydroxystearate and Stearic acid / Isostearate / Polyglyceryl-3 Dimer Dilinoleate Crosspolymers), polyesters with hydroxyl, amine or amide groups (e.g., polyhydroxystearic acid), polyurethanes with hydroxyl, amine or amide groups, polyglyceryl ester ... Polyacrylates with amido, hydroxyl, amine or amide groups, phosphate esters (e.g., trilaureth-4 phosphate and triceteareth-4 phosphate), polymeric phosphates (e.g., compounds containing 1,2-ethanediamine, polymers with aziridine, N-[3-[(2-ethylhexyl)oxy]-3-oxypropyl] derivatives and polyethylene-polypropylene glycols), phospholipids, ceramides, sphingosides (e.g., lecithin, lysolecithin and ceramide 3), groups (e.g., cetyl diglyceryl tris(trimethylsiloxy)silylethyl dimethicone, CAS number 104780-66-7 (siloxane and silicone, di-Me, 3-hydroxypropyl terminated), CAS number 102782-61-6 (siloxane and silicone, di-Me, 3-hydroxypropyl Me), and CAS number 106214-84-0 (siloxane and silicone, dimethyl, 3-aminopropyl)) and combinations thereof.

[0047] The zinc oxide particles may be present in the dispersion in an amount of 0.1 to 85.0% by weight, including 0.2%, 0.3%, 0.4%, 0.5%, 0.6%, 0.7%, 0.8%, 0.9%, 1.0%, 2.0%, 3.0%, 4.0%, 5.0%, 6.0%, 7.0%, 8.0%, 9.0%, 10.0%, 15.0%, 20.0%, 25.0%, 30.0%, 35.0%, 40.0%, 45.0%, 50.0%, 55.0%, 60.0%, 65.0%, 70.0%, 75%, 80%, and 85% by weight.

[0048] The surfactant / dispersant may be present in the dispersion in an amount of 1.0 to 100.0% of the weight of the zinc oxide particles, including but not limited to 1.1%, 1.2%, 1.3%, 1.4%, 1.5%, 1.6%, 1.7%, 1.8%, 1.9%, 2.0%, 2.5%, 3.0%, 3.5%, 4.0%, 4.5%, 5.0%, 5.5%, 6.0%, 6.5%. , 7.0%, 7.5%, 8.0%, 8.5%, 9.0%, 9.5%, 10.0%, 15.0%, 20.0%, 25.0%, 30.0%, 35.0%, 40.0%, 45.0%, 50.0%, 55.0%, 60.0%, 65.0%, 70.0%, 75.0%, 80.0%, 85.0%, 90.0% and 95.0%. Preferably, the surfactant is present in an amount of 2.0 to 60.0% of the weight of the zinc oxide particles.

[0049] The amount of liquid carrier in the dispersion will depend on the amount of zinc oxide particles and the amount of surfactant present in the dispersion. After combining the zinc oxide or surface treated zinc oxide particles with the surfactant, the carrier vehicle can be added in any suitable amount necessary to produce the desired dispersion.

[0050] The zinc oxide particles may be formed in the oil phase of the preparation or in a powder preparation. Preferably, the preparation is suitable for topical application. Examples of suitable preparations include emulsions (oil-in-water and water-in-oil emulsions), sprays, balms, sticks, powders, powder-to-cream preparations, lipophilic preparations and anhydrous preparations.

[0051] Preparations containing zinc oxide particles may be formulated for use in a variety of different applications. Examples of suitable formulations include cosmetics (e.g., blush, face powder, foundation, lipstick, makeup base and rouge), skin care products (e.g., skin cleansing creams, lotions, liquids and pads; face and neck creams, lotions, powders and sprays; body and hand creams, lotions, powders and sprays; foot powders and sprays; moisturizers; night creams, lotions, powders and sprays; paste masks / mud packs; and skin fresheners) and sunscreens. Sunscreens are particularly preferred formulations. The formulations may be provided in any form suitable for topical administration, such as topical suspensions, lotions, creams, ointments, gels, hydrogels, foams, pastes, tinctures, liniments, sprayable liquids, aerosols, sticks or powders. The formulations may contain inactive ingredients, adjuvants and / or additives such as co-emulsifiers, oils, waxes, stabilizers, thickeners, bioactive ingredients, film formers, fragrances, dyes, pearlescent agents, preservatives, pigments, electrolytes and pH adjusters.

[0052] The sunscreen may include zinc oxide particles and additional UV radiation protection agents. The UV radiation protection agent may be any material that absorbs, reflects and / or scatters UV radiation. The sunscreen may include sun protection factor (SPF) enhancers or stabilizers such as methoxycrylene and polyester-8. Examples of suitable additional UV radiation protection agents include titanium dioxide (TiO 2), p-aminobenzoic acid (PABA, p-aminobenzoic acid), padimate O (OD-PABA, octyldimethyl-PABA, σ-PABA), phenylbenzimidazole sulfonic acid (ensulizole, EUSOLEX® 232, PBSA, PARSOL® HS), cinoxate (2-ethoxyethyl p-methoxycinnamate), dioxybenzone (benzophenone-8), oxybenzone (benzophenone-3, EUSOLEX® 4360, ESCALOL® 567), homosalate (homomethyl salicylate, HMS), menthyl anthranilate (melazimate), octocrylene (EUSOLEX® OCR, 2-cyano-3,3-diphenylacrylic acid, 2-ethylhexyl ester), octyl methoxycinnamate (octinoxate, EMC, OMC, ethylhexyl methoxycinnamate, ESCALOL® 557) , 2-ethylhexyl paramethoxycinnamate, PARSOL® MCX), octyl salicylate (Octisalate, 2-ethylhexyl salicylate, ESCALOL® 587), Sulisobenzone (2-hydroxy-4-methoxybenzophenone-5-sulfonic acid, 3-benzoyl-4-hydroxy-6-methoxybenzosulfonic acid, Benzophenone-4, ESCALOL® 577), Trolamine Salicylate (Triethanolamine Salicylate), Avobenzone (1-(4-Methoxyphenyl)-3-(4-tert-butylphenyl)propane-1,3-dione, Butyl Methoxydibenzoylmethane, BMDBM, PARSOL® 1789, EUSOLEX® 9020), Ecamsul (MEXORYL® SX, Terephthalylidene Dicamphorsulfonic Acid), Cerium Oxide (CeO 2), drometrizole trisiloxane (MEXORYL® XL), bis-ethylhexyloxyphenol methoxyphenyl triazine (TINOSORB® S), bisoxotrizole (TINOSORB® M, MILESTAB™ 360), and combinations thereof. Preferably, the additional UV radiation protection agent is approved by at least one of the regulatory agencies of the United States (US Food and Drug Administration or FDA), Canada, the European Union, Australia, Japan, Korea, China, Mercosur, the Association of Southeast Asian Nations (ASEAN), the Commonwealth of Independent States (CIS), and the Gulf Cooperation Council (GCC).

[0053] Zinc oxide suitable for use in sunscreen applications must also meet the criteria of having a critical wavelength of at least 370 nm (see 76 FR 35660, June 17, 2011, as amended from 76 FR 38975, July 5, 2011) when in a fully dispersed state as described in the Color Test. If this criterion is not met, products formulated with zinc oxide will not meet the criteria of providing broad spectrum protection in the selected jurisdiction (see US 21CFR201.327 and Health Canada Sunburn Protectants Monograph of October 12, 2006). The critical wavelength is identified as the wavelength at which the integral of the spectral absorbance curve reaches 90% of the integral of the UV spectrum from 290 nm to 400 nm. The critical wavelength is defined by the following formula:

[0054]

number

[0055] where λ c = critical wavelength, A(λ) = average absorbance at each wavelength, dλ = wavelength interval between measurements, where if the average critical wavelength is 370 nm or greater it is classified as broad spectrum protection. All zinc oxides in the non-comparative examples below have a critical wavelength value in the range of 376 nm to 380 nm. Preferably, the stoichiometric zinc oxide has a critical wavelength value of at least 370 nm, inclusive, more preferably at least 375 nm. Preferably, the coated particles, multi-coated particles, dispersions or cosmetic / dermatological compositions have a critical wavelength value of at least 370 nm, inclusive, more preferably at least 375 nm.

[0056] Formulations containing zinc oxide particles provide various health benefits due to their reduced tendency to generate photoradicals upon UV exposure, as evidenced by their performance in the DPPH photocatalytic stability test. Zinc oxide particles, characterized by reduced UV-induced photoradical generation and therefore photocatalytic stability according to the aforementioned test, have previously been shown (U.S. Pat. No. 10,555,892; HW Sarkas, K. Cureton, and K. Jung, Eurocosmetics, 5, 20 (2018); EF Bernstein, WW Sarkas, and P. Boland, J. Cosmet. Dermatol., 00, 1-9 (2019)) to be able to (1) enhance the antioxidant performance of topical preparations exposed to UV radiation, (2) inhibit free radical generation in the dermal and epidermal layers of the skin as well as in the skin following UV exposure, based on the results of electron spin resonance testing, and (3) protect against the combined effects of UV radiation and environmental pollutants.

[0057] Due to these properties, zinc oxide particles can treat or prevent oxidative stress or damage to skin, hair and nails through the direct attenuation of UV radiation as well as the inhibition of free radicals and reactive oxygen species, thus protecting keratinous materials (such as hair, fingernails, toenails and the outer layer of skin), protecting human skin, inhibiting lipid peroxidation, preventing or reducing lines and wrinkles in the skin, preventing loss of skin elasticity, preventing skin thinning and preventing skin pigment darkening. These health benefits can be obtained by applying formulations containing zinc oxide particles to areas of the skin, hair and / or nails.

[0058] One of the preferred aspects of the present invention is the addition of antioxidants to the dispersion containing the coated powder. When exposed to UV radiation, the antioxidants are oxidized, resulting in a loss of antioxidant power (AP). In addition, zinc oxide and other metal oxides are photoreactive and generate free radicals upon exposure to UV radiation. Combining metal oxides with antioxidants results in a greater loss of AP than the antioxidant alone. However, by combining the coated powder with the antioxidant, the relative AP value of the dispersion remains higher than that of the antioxidant alone. The coated powder and the antioxidant composition together exhibit a synergistic effect, since the coated powder is ultra-photostable. The antioxidants are able to exert their effect because the UV radiation is blocked or absorbed by the particles and the AP value is preserved.

[0059] The dispersion may contain one or more antioxidants. Antioxidants may include vitamins, antioxidant minerals, antioxidant proteins, antioxidant enzymes and coenzymes, phytonutrients, antioxidant hormones, mycosporine-like amino acids (MAA), antioxidants derived from seaweed, and other types of antioxidants. Antioxidants may be water-soluble, fat-soluble, or fat-soluble and water-soluble. Suitable vitamins include vitamin A (including retinoids and carotenoids), vitamin C (ascorbic acid), vitamin E (tocopherol), and vitamin K. Suitable retinoids include retinol, retinoic acid (tretinoin), retinal, and retinyl palmitate. Suitable minerals include copper, manganese, iodide, and zinc. Suitable enzymes and coenzymes include melatonin, superoxide dismutase, catalase, and glutathione peroxidase. Suitable phytonutrients include carotenoids, flavonoids, phenolic acids and non-flavonoid phenols.Suitable carotenoids include alpha-carotene, retinol, astaxanthin, beta-carotene, canthaxanthin, lutein, lycopene and zeaxanthin.Suitable flavonoids include hindered phenols, apigenin, luteolin, tangerin, isorhamnetin, kaempferol, myricetin, proanthocyanidin, quercetin, eriodictyol, hesperetin, naringenin, catechin, gallocatechin, epicatechin, epigallocatechin, thearubigin, daidzein, genistein, glycitein, resveratrol, pterostilbene, cyanidin, delphinidin, malvidin, pelargonidin and petunidin. Suitable phenolic acids include phenol, polyphenols, alkylated phenols, and hindered phenols. Suitable phenols include butylated hydroxyanisole, butylated hydroxytoluene, cannabinoids, capsaicin, carvacrol, cresol, estradiol, eugenol, gallic acid, guaiacol, thymol, tyrosine, and sesamol.Gallic acid includes salts and esters of gallic acid, also known as gallates. Suitable non-flavonoid phenols include curcumin, flavonolignans, xanthones and eugenol. Suitable mycosporine-like amino acids (MAAs) include mono-substituted MAAs such as mycosporine-glycine and mycosporine-taurine, di-substituted MAAs such as parithenic acid and shinorine, and derivatized MAAs such as pari-sine-threonine sulfate and pari-sine-threonine glycoside. Examples of suitable MAAs can be found in Wada et al. (2015). Antioxidants derived from seaweed include ascorbate, glutathione, phlorotannin, equol, extronol, prenyltoluquinone, tetraprenyltoluquinol, sargosanbergol A, fucodiphloretol, terpenoids, phycocyanin, phycocyanobilin, fucoxanthin, phlorotannin and lutein. Other possible organic antioxidants include bilirubin, citric acid, oxalic acid, phytic acid, n-acetylcysteine, uric acid, green tea, hydroxy-tryrosol, dihydro-quercetin, ubiquinone, glutathione, alpha-lipoic acid, folic acid, ellagic acid, caffeic acid, and phytoestrogens. The above antioxidants also include any salt, ester, or acid form of the antioxidant.

[0060] The dispersion may contain one or more phyto-extracts. A "phyto-extract" is a substance obtained from a plant. Preferably, the phyto-extract imparts color. The phyto-extract must be compatible with the non-aqueous composition, stable in air, non-staining to the skin, non-irritating to the skin in the amounts used, and non-toxic in the amounts used. The phyto-extract has a purity level of at least 95%. Examples of suitable phyto-extracts include curcumin, lycopene, beta-carotene, lutein, zeaxanthin, meso-zeaxanthin, and anthocyanins. Sources of curcumin include turmeric. Sources of lycopene include beets, cherries, goji berries, pink grapefruit, pomegranates, raspberries, red cabbage, red onions, strawberries, tomatoes, and watermelons. Sources of beta-carotene include apricots, cantaloupe, carrots, oranges, papayas, peaches, persimmons, pumpkins, cucumbers, sweet potatoes, winter squash, and yams. Sources of lutein, zeaxanthin, and meso-zeaxanthin include avocados, broccoli, Brussels sprouts, cabbage, green beans, leafy greens, orange peppers, peas, spinach, yellow corn, and zucchini. Sources of anthocyanins include beets, blackcurrants, blueberries, cherries, eggplants, figs, grapes, plums, prunes, red cabbage, and red currants. Phyto-extracts may be chemically modified by hydrolysis, hydrogenation, esterification, or saponification. If a phyto-extract that normally imparts color is chemically modified, it may no longer impart color. For example, curcumin imparts a yellow color, while hydrogenated tetra-hydrocurcumin is colorless.

[0061] The dispersion may contain one or more plant bioextracts. A "plant bioextract" is a natural extract of a plant that imparts fragrance and may also impart color. The plant bioextract must be compatible with the non-aqueous composition, stable in air, non-staining to the skin, non-irritating to the skin in the amounts used, and non-toxic in the amounts used. Synthetic versions of plant bioextracts are outside the scope of the term "plant bioextract."Examples of suitable plant bio-extracts include arnica extract (Arnica montana), basil extract (sweet basil (Ocimum basilicum)), boswellia extract (Boswellia sacra), calendula extract (Calendula officinalis), chamomile extract (Anthemis nobilis), cinnamon oil (Cinnamomum verum), clove oil (Syzygium aromaticum), coptis extract (Coptis aspleniifolia), echinacea extract (Echinacea purpurea), eucalyptus oil (Eucalyptus occidentalis), ginger root extract (Zingiber officinale), and ginger extract (Zingiber officinale). officinale), grape seed extract (Vitis vinefera), green tea extract (Camilia sinensis), guggul resin extract (Commiphora wightii), horse chestnut extract (Aesculus hippocastanum), Japanese knotweed extract (Polygonum cuspidatum), licorice extract (Glycyrrhiza glabra), neem leaf extract (Azadirachta indica), olive fruit and leaf extract (Olea europaea), papaya extract (Carica papaya), balsam of Peru (Myroxylon balsamum), pineapple extract (Ananas comosus), pomegranate extract (Punica granatum L.), rosemary extract (Rosmarinus officinalis), sage extract (Salvia officinalis), sandalwood extract (Santalum album), turmeric extract (Curcuma longa) and witch hazel extract (Hamamelis japonica). All the above examples may include different species of the same genus of plant.For example, witch hazel extract can be obtained from Hamamelis ovalis, Hamamelis mollis, or Hamamelis virginiana.

[0062] The composition may include a phyto-extract. The phyto-extract may be selected to impart color. Phyto-extracts that do not impart color may also be included in the composition. The phyto-extract must be compatible with the non-aqueous composition, stable in air, non-staining to the skin, non-irritating to the skin in the amounts used, and non-toxic in the amounts used. The phyto-extract has a purity level of at least 95%. Examples of suitable phyto-extracts include curcumin, lycopene, beta-carotene, lutein, zeaxanthin, meso-zeaxanthin, and anthocyanins. Sources of curcumin include turmeric. Sources of lycopene include beets, cherries, goji berries, pink grapefruit, pomegranates, raspberries, red cabbage, red onions, strawberries, tomatoes, and watermelons. Sources of beta-carotene include apricots, cantaloupe, carrots, oranges, papayas, peaches, persimmons, pumpkins, cucumbers, sweet potatoes, winter squash, and yams. Sources of lutein, zeaxanthin, and meso-zeaxanthin include avocados, broccoli, Brussels sprouts, cabbage, green beans, leafy greens, orange peppers, peas, spinach, yellow corn, and zucchini. Sources of anthocyanins include beets, blackcurrants, blueberries, cherries, eggplants, figs, grapes, plums, prunes, red cabbage, and red currants. Phyto-extracts may be chemically modified by hydrolysis, hydrogenation, esterification, or saponification. Phyto-extracts that normally impart color, such as curcumin, may no longer impart color if chemically modified, such as tetra-hydrocurcumin. The composition may contain 0.01% to 5.0% phyto-extract, preferably 0.01% to 1.0% phyto-extract, including 0.02%, 0.03%, 0.04%, 0.05%, 0.06%, 0.07%, 0.08%, 0.09%, 0.10%, 0.11%, 0.12%, 0.13%, 0.14%, 0.15%, 0.16%, 0.17%, 0.18%, 0.19% and 0.20% phyto-extract.

[0063] The composition may include a plant bio-extract. The plant bio-extract may provide fragrance and may also provide color. The plant bio-extract must be compatible with the non-aqueous composition, such as lipophilic or hydrophobic, stable in air, non-staining to the skin, non-irritating to the skin in the amounts used, and non-toxic in the amounts used. Examples of suitable plant bio-extracts include arnica extract (Arnica montana), basil extract (Basil), boswellia extract (Boswellia sacra), calendula extract (Calendula officinalis), chamomile extract (Anthemis nobilis), cinnamon oil (Cinnamon bark), clove oil (Clove), coptis asplenifolia extract (Coptis asplenifolia), echinacea extract (Echinacea purpurea), eucalyptus oil (Eucalyptus occidentalis), and cinnamon extract (Citrus oleracea). These include ginger root extract, grape seed extract (Vitis vulgare), green tea extract (Camellia sinensis), guggul resin extract, horse chestnut extract, Japanese knotweed extract, licorice extract (Glycyrrhiza glabra), neem leaf extract (Abies indica), olive fruit and leaf extract, papaya extract, balsam of Peru, pineapple extract, pomegranate extract, rosemary extract, sage extract, sandalwood extract, turmeric extract and witch hazel extract. The dispersion may also include an extract from an algae species.These species include Hijikia fusiformis, Spirulina platensis, Aphanizomenon spp., Spirulina maxima, Sargassum kjellamanianum, S. siliquastrum, Rhodomela confervoides, Symphjocladia latiuscula, Kappaphycus alvarezzi, Botryococcus braunii, Dunaliella salina, Cystoseira crinite, Ecklonia stolonifera, Sargassum thunbergii, S. thunbergii and Ecklonia cava. The composition may contain 0.10% to 10.0% of the plant bio-extract, preferably 2.0% to 6.0% of the plant bio-extract, including 2.1%, 2.2%, 2.3%, 2.4%, 2.5%, 2.6%, 2.7%, 2.8%, 2.9%, 3.0%, 3.1%, 3.2%, 3.3%, 3.4%, 3.5%, 3.6%, 3.7%, 3.8%, 3.9% and 4.0% of the plant bio-extract.

[0064] The composition may include an oil-soluble antioxidant. If an antioxidant is present, the antioxidant is different from the phyto-extract. Examples of suitable antioxidants include carotene, catechin, lycopene, resveratrol, vitamin E or vitamin A, where "vitamin E" may refer to any of the tocopherol or tocotrienol compounds that make up the vitamin E family of compounds, such as alpha-tocopherol and gamma-tocotrienol. The composition may contain 0.01% to 5.0% antioxidant, preferably 0.1% to 3.0% antioxidant, including 0.1%, 0.2%, 0.3%, 0.4%, 0.5%, 0.6%, 0.7%, 0.8%, 0.9%, 1.0%, 1.1%, 1.2%, 1.3%, 1.4%, 1.5%, 1.6%, 1.7%, 1.8%, 1.9% and 2.0% antioxidant.

[0065] The dispersion may contain one or more protist extracts. A "protist extract" is a material obtained from a protist. Protists include eukaryotic organisms that are not animals, plants or fungi. The protist extract is preferably a material that is rich in astaxanthin. Examples of suitable protist extracts include plankton extracts and algae extracts, especially red algae extracts.

[0066] The dispersion may include a protist extract. The protist extract is preferably a substance rich in astaxanthin. Examples of suitable protist extracts include plankton extracts and algae extracts, especially red algae extracts. The dispersion may contain 0.01% to 5.0% protist extract, preferably 0.1% to 3.0% protist extract, including 0.1%, 0.2%, 0.3%, 0.4%, 0.5%, 0.6%, 0.7%, 0.8%, 0.9%, 1.0%, 1.1%, 1.2%, 1.3%, 1.4%, 1.5%, 1.6%, 1.7%, 1.8%, 1.9% and 2.0% protist extract. Cosmetic and dermatological preparations may contain cosmetic ingredients, auxiliaries and / or additives, such as coemulsifiers, fats and waxes, stabilizers, thickeners, bioactive ingredients, film formers, fragrances, dyes, pearlescent agents, preservatives, pigments, electrolytes and pH adjusters. Suitable coemulsifiers are preferably known W / O and O / W emulsifiers, such as polyglycerol esters, sorbitan esters or partially esterified glycerides. Typical examples of fats and oils are glycerides; waxes such as beeswax, paraffin wax or microcrystalline wax, possibly in combination with hydrophilic waxes. Stabilizers include metal salts of fatty acids, such as magnesium, aluminum and / or zinc stearate. Examples of thickeners include crosslinked polyacrylic acid and its derivatives, polysaccharides such as xanthan gum, guar gum, agar, alginates and tylose, carboxymethylcellulose and hydroxyethylcellulose, as well as fatty alcohols, monoglycerides and fatty acids, polyacrylates, polyvinyl alcohols and polyvinylpyrrolidones. Bioactive ingredients include plant extracts, protein hydrolysates and vitamin complexes. Conventional film-forming agents include hydrocolloids such as chitosan, microcrystalline chitosan or quaternized chitosan, polyvinylpyrrolidone, vinylpyrrolidone / vinyl acetate copolymers, acrylic acid-based polymers and quaternary cellulose derivatives. Examples of preservatives include parabens, diazolidinyl urea, iodopropynyl butylcarbamate and sorbic acid. Examples of pearlescent agents include glycol distearate esters such as ethylene glycol distearate, fatty acids and fatty acid monoglycol esters.The pigments that can be used are those suitable and approved for cosmetic purposes. Antioxidants such as amino acids, retinol, flavonoids, polyphenols, vitamin C and tocopherols may also be included.

[0067] Cosmetic and dermatological preparations may be in the form of solutions, dispersions or emulsions, for example sunscreen preparations may be in liquid, paste or solid form, for example as water-in-oil creams, oil-in-water creams and lotions, aerosol foam creams, gels, oils, marking pencils, powders, sprays or alcohol-water lotions. Solvents for these compositions include water; oils such as capric or caprylic triglycerides, as well as castor oil; fats, waxes and other natural and synthetic fatty substances, esters of fatty acids with low carbon number alcohols, for example isopropanol, propylene glycol or glycerol, or esters of fatty alcohols with low carbon number alkanoic acids or fatty acids; low carbon number alcohols, diols or polyols and their ethers, preferably ethanol, isopropanol, propylene glycol, glycerol, ethylene glycol, ethylene glycol monoethyl or monobutyl ether, propylene glycol monomethyl, monoethyl or monobutyl ether, diethylene glycol monomethyl or monoethyl ether. Other examples include isopropyl myristate, isopropyl palmitate, isopropyl stearate, isopropyl oleate, n-butyl stearate, diisopropyl adipate, n-hexyl laurate, n-decyl oleate, glyceryl stearate, isooctyl stearate, isononyl stearate, isononyl isononanoate, 2-ethylhexyl palmitate, 2-ethylhexyl laurate, 2-hexyldecyl stearate, 2-octyldodecyl palmitate, oleyl oleate, oleyl erucate, erucyl oleate, and erucyl erucate.

[0068] Cosmetic and dermatological preparations may be in the form of solid sticks and may contain natural or synthetic waxes, fatty alcohols or fatty acid esters, liquid oils such as paraffin oil, castor oil, isopropyl myristate, semi-solid components such as petrolatum, lanolin, solid components such as beeswax, ceresin and fine crystalline waxes and odorifera waxes, as well as high melting waxes including carnauba wax and candelilla wax.

[0069] The cosmetic preparations may be in the form of a gel and preferably contain water, organic thickeners such as gum arabic, xanthan gum, sodium alginate, cellulose derivatives such as methylcellulose, hydroxymethylcellulose, hydroxyethylcellulose, hydroxypropylcellulose, hydroxypropylmethylcellulose and inorganic thickeners such as aluminum silicates, e.g. bentonite, or mixtures of polyethylene glycol with stearic acid or polyethylene glycol distearate.

[0070] Zinc oxide and zinc oxide containing compositions may be used in a method of protecting skin from light, comprising coating the skin with a composition containing zinc oxide particles. Zinc oxide and zinc oxide containing compositions may be used in a method of protecting keratinous materials, comprising coating the skin with a composition containing zinc oxide particles. Zinc oxide and zinc oxide containing compositions may be used in a method of protecting skin from light, comprising coating the skin with a composition containing zinc oxide particles. Zinc oxide and zinc oxide containing compositions may be used in a method of inhibiting lipid peroxidation, comprising coating the skin with a composition containing zinc oxide particles. Zinc oxide and zinc oxide containing compositions may be used in a method of preventing or reducing lines and wrinkles in the skin, comprising coating the skin with a composition containing zinc oxide particles. Zinc oxide and zinc oxide containing compositions may be used in a method of preventing loss of skin elasticity, comprising coating the skin with a composition containing zinc oxide particles. Zinc oxide and zinc oxide containing compositions may be used in a method of preventing thinning of the skin, comprising coating the skin with a composition containing zinc oxide particles. Zinc oxide and compositions containing zinc oxide may be used in methods of protecting the skin from environmental contamination, including coating the skin with a composition containing zinc oxide particles. [Example]

[0071] Example 1 USP grade zinc oxide particles with hexagonal zincite crystal structure were prepared by transferred arc physical vapor synthesis at a specific power input of 4.0 kW per kg of ZnO and 5.3 ft of air per kg of Zn vapor. 3 of quench gas input (quench air is introduced closest to the origin of the injected converging plasma jets that maintain a stable arc), and 1300 ft of air per kg of ZnO. 3The powder product obtained has an average particle size of 40 nm, a ΔE value of 17.69 ± 0.26 (95% CI) in the dispersion color test, a ΔE value of 7.22 ± 0.29 in the DPPH photocatalytic stability test, and a ΔE value of 0.17 ± 0.15 (95% CI) in the DPPH Dark Radical Test. The thermogravimetric analysis results shown in Figure 2 indicate that the product is stoichiometric ZnO.

[0072] Example 2 Comparative Example USP grade zinc oxide particles with hexagonal zincite crystal structure were synthesized by transferred arc physical vapor synthesis with a specific power input of 3.4 kW per kg of ZnO and no quench gas input, and 1,130 ft of air per kg of ZnO. 3 The resulting white powder product has an average particle size of 150 nm, a ΔE value of 9.51 ± 0.10 (95% CI) in the dispersion color test, and a ΔE value of 18.57 ± 0.17 in the DPPH photocatalytic stability test. The thermogravimetric analysis results shown in Figure 2 indicate that the product is stoichiometric ZnO.

[0073] Example 3 Comparative Example of Stoichiometric Zinc Oxide Standards The powder of Example 2 was calcined at 800°C for 1 hour in air. The resulting white powder product has an average particle size of 300 nm, a ΔE value of 9.69 in the dispersion color test, and a ΔE value of 34.80 in the DPPH photocatalytic stability test. The thermogravimetric analysis results shown in Figure 2 confirm that the product is stoichiometric ZnO.

[0074] Example 4 Comparative Example of U.S. Patent No. 6,869,956 The powder of Example 3 was reduced in a hydrogen / nitrogen atmosphere. The resulting powder product exhibits green luminescence when irradiated with UVA radiation, with a ΔE value of 16.50 in the dispersion color test and a ΔE value of 16.45 in the DPPH photocatalytic stability test. The results of the DPPH photocatalytic stability test are consistent with those of the comparative composition, as the ΔE values ​​are smaller and statistically significant than those of the parent zinc oxide. The results also clearly show that the material is not photocatalytically stable when compared to stoichiometric zinc oxide, and in fact is found to be less photocatalytically stable than some commercially available zinc oxides that do not exhibit discernible coloration (see Example 15). The composition of this example also produces a ΔE value of 10.21 in the DPPH dark radical test (see below), indicating that the composition generates free radicals in the dark, suggesting that this material is not ideal for topical UV protection formulation environments. This is in clear contrast to stoichiometric zinc oxide. Thermogravimetric analysis results, shown in FIG. 2, indicate that the product is substoichiometric ZnO based on a distinct mass increase characteristic with an onset at about 450° C. TGA analysis may be used to calculate the composition, which is approximately ZnO 0.96 and is therefore significantly deficient in oxygen, in clear contrast to stoichiometric zinc oxide.

[0075] The free radical generation of zinc oxide powder in the absence of exposure to radiation is measured using the following test, which is referred to as the "DPPH Dark Radical Test." First, 0.025 g ± 0.001 g of ZnO powder, based on active substance, is added to six 50 mL disposable plastic beakers. 0.0125% DPPH (di(phenyl)-(2,4,6-trinitrophenyl)iminoazanium; CAS number 1898-66-4), also known as diphenylpicrylhydrazyl, is prepared in BCS (ethylene glycol butyl ether). To each beaker containing zinc oxide powder, 19.950 g ± 0.001 of a solution of 0.0125% DPPH in BCS and 0.025 g ± 0.001 g of deionized water are added. If zinc oxide active is to be tested from a dispersion, 0.025 g ± 0.001 of zinc oxide active is added to six 50 mL disposable plastic beakers from a dispersion of known zinc oxide content. A nominal 0.0125% DPPH solution is prepared in BCS (ethylene glycol butyl ether), with the concentration of BCS adjusted by an amount sufficient to compensate for the liquid dispersion carrier and other excipient components in the dispersion containing zinc oxide. 19.975 g ± 0.001 of the adjusted nominal 0.0125% DPPH solution in BCS and 0.025 g ± 0.001 g of deionized water are added to each beaker containing zinc oxide dispersion. The samples are mixed thoroughly with a glass stir bar and each beaker is sonicated for 60 seconds to ensure that the particles are well dispersed throughout the solution. After sonication, the samples are transferred to labeled scintillation vials. The samples are then transferred to a dark room maintained at 40 ± 2°C for exactly 60 minutes. After a 1 hour dark holding period, each sample is transferred to a centrifuge tube and centrifuged at 5000 RCF for 15 minutes, then filtered using a 0.2 micron PVDF syringe filter to remove all particulate matter. For each sample, 10 ml of this filtrate is transferred to a new scintillation vial for color testing. A color reference is prepared by adding 19.950 g ± 0.001 of a 0.0125% solution of DPPH in BCS and 0.025 g ± 0.001 g of deionized water to the scintillation vial and then mixing thoroughly. 10 ml of this standard is transferred to a new scintillation vial, which serves as the color reference for the color test.

[0076] The color of each sample and color standard is measured with a Konica Minolta CM-600D Colorimeter or a suitable equivalent, calibrated using a NIST traceable white tile. This test is called the "Dispersion Color Test." The color difference is the total change in color (L * a * b * It can be expressed as ΔE in color space. ΔE is calculated according to the CIE76 definition from the following formula:

[0077]

number

[0078] Example 5 The powder of Example 1 was surface treated with 2% lecithin by powder mass and dispersed in a caprylic / capric triglyceride carrier with 72% zinc oxide by weight using 8% polyglyceryl-2 dipolyhydroxystearate by powder mass as dispersant. The powder was wetted into the dispersion using a propeller blade mixer and dispersed using low intensity sonication. The resulting dispersion was pourable and had a deep characteristic orange to tan color. The resulting dispersion product has a ΔE value of 17.98 in the Dispersion Color Test and a ΔE value of 7.12 in the DPPH Photocatalytic Stability Test.

[0079] Example 6 The powder from Example 1 was surface treated with 2% lecithin by powder mass and dispersed in a coco-caprylate caprate carrier with 75% zinc oxide by weight using 6% polyglyceryl-2 dipolyhydroxystearate by powder mass as dispersant. The powder was wetted into the dispersion using a propeller blade mixer and transferred to a horizontal media mill for grinding. The dispersion was milled using 0.3 mm yttria stabilized zirconia media until the dispersed product produced a ΔE value of 17.64 in the Dispersion Color Test (grinding time was 330 minutes). The resulting product is pourable and has a ΔE value of 7.04 in the DPPH photocatalytic stability test.

[0080] Example 7 The powder of Example 1 was surface treated with 2% lecithin based on powder mass and dispersed in a coco-caprylate caprate carrier with 75% zinc oxide by weight using 6% polyglyceryl-2 dipolyhydroxystearate based on powder mass as dispersant. The powder was wetted into the dispersion using a propeller blade mixer and transferred to a horizontal media mill for grinding. The dispersion was milled using 0.2 mm yttria stabilized zirconia media until the dispersed product produced a ΔE value of 19.74 in the Dispersion Color Test (grinding time was 450 minutes). The resulting product has a ΔE value of 6.53 in the DPPH photocatalytic stability test.

[0081] Example 8 The dispersion of Example 7 was returned to the horizontal media mill for milling. Using 0.2 mm yttria stabilized zirconia media, the dispersion was further milled until the dispersion product produced a ΔE value of 25.04 in the Dispersion Color Test (milling time was 870 minutes). The resulting product has a ΔE value of 4.70 in the DPPH Photocatalytic Stability Test.

[0082] Example 9 The powder of Example 3 was dispersed in a cocoyl caprylate caprate carrier at 30% by weight zinc oxide using 3% polyglyceryl-2 dipolyhydroxystearate and 1% lecithin by powder mass as dispersants. The dispersion was transferred to a horizontal media mill for milling. The dispersion was milled using 0.3 mm yttria stabilized zirconia media until the dispersed product produced a ΔE value of 20.51 in the Dispersion Color Test (milling time was 80 minutes). The resulting product has a ΔE value of 9.65 in the DPPH photocatalytic stability test.

[0083] Example 10 The dispersion of Example 9 was returned to the horizontal media mill for further grinding. Using 0.3 mm yttria stabilized zirconia media, the dispersion was milled until the dispersion product produced a ΔE value of 25.45 in the dispersion color test (grinding time was 120 minutes). The resulting product has a ΔE value of 6.92 in the DPPH photocatalytic stability test. Thermogravimetric analysis showed no mass gain characteristics above 400°C and a small mass loss of 0.36% between 400°C and 800°C, indicating that the product remained as stoichiometric ZnO.

[0084] Example 11 The powder of Example 2 was subjected to a silanization surface treatment using 2.5% by weight of octyltriethoxysilane based on the powder mass. The resulting powder was dispersed in a caprylic / capric triglyceride carrier at 70% by weight of zinc oxide using 2.5% by weight of polyhydroxystearic acid based on the powder mass. The powder was wetted into the dispersion using a propeller blade mixer. Initially, the dispersion was white in color. The dispersion was transferred to a horizontal media mill and milled using 0.3 mm yttria-stabilized zirconia media until the dispersion product produced a ΔE value of 17.15 in the dispersion color test (milling time was 120 minutes). The resulting product has a ΔE value of 9.02 in the DPPH photocatalytic stability test. This ΔE is only 49% of the ΔE value of the starting powder from Example 2.

[0085] Example 12 The powder of Example 2 was subjected to a surface treatment with a crosslinked polymer of propylsilsesquioxane / dimethiconol / silicate, and the resulting powder is 92% zinc oxide by weight. This powder was dispersed in squalane at 64% zinc oxide by weight using 10% lecithin by weight based on powder mass. Initially, the dispersion was white in color. The dispersion was transferred to a horizontal media mill and milled using 0.3 mm yttria-stabilized zirconia media until the dispersion product produced a ΔE value of 19.16 in the dispersion color test (milling time was 60 minutes). The resulting product has a ΔE value of 4.02 in the DPPH photocatalytic stability test.

[0086] Example 13 The powder of Example 1 was surface treated with silica to obtain a powder containing 92% zinc oxide by weight. The resulting powder was dispersed in a caprylic / capric triglyceride carrier at 60.3% zinc oxide by weight using 2% lecithin and 6% polyglyceryl-2 dipolyhydroxystearate by powder mass as dispersants. The powder was wetted into the dispersion using a propeller blade mixer, and the resulting dispersion had an initial tan color. The dispersion was transferred to a horizontal media mill for milling. The dispersion was milled using 0.2 mm yttria stabilized zirconia media until the dispersion product produced a ΔE value of 17.08 in the Dispersion Color Test (milling time was 180 minutes). The resulting product has a ΔE value of 1.68 in the DPPH photocatalytic stability test.

[0087] Example 14 The powder of Example 2 was surface treated with silica to obtain a powder containing 96 wt% zinc oxide. The resulting powder was dispersed in a squalane carrier at 60.5 wt% zinc oxide using 2.5% lecithin as a dispersant. Initially, the dispersion was white in color. The dispersion was transferred to a horizontal media mill and milled using 0.3 mm yttria stabilized zirconia media until the dispersion product produced a ΔE value of 19.44 in the Dispersion Color Test (milling time was 180 minutes). The resulting product has a ΔE value of 2.97 in the DPPH photocatalytic stability test.

[0088] Example 15 Comparative example of commercially available zinc oxide Ten commercially available zinc oxide UV filters were obtained from around the world for evaluation by the Dispersion Color Test and the DPPH Photocatalytic Stability Test. Materials were obtained from various regions of the world where zinc oxide UV filters are manufactured on a large scale. Both powder and dispersion product forms were evaluated. The materials are designated as "Example 15 Commercial Materials 1-10." The results of the tests are shown in Table 1 along with the results of the samples mentioned above. All commercial materials had ΔE values ​​of less than 12 in the Dispersion Color Test and ΔE values ​​of greater than 15 in the DPPH Photocatalytic Stability Test, indicating that they were not photocatalytically stable.

[0089] The ΔE values ​​of the dispersion color test were plotted against the ΔE values ​​of DPPH photocatalytic stability for all materials described in Examples 1-15 and are shown in Figure 3. It is clear from the data that the compositions of the present invention exhibit distinct characteristics compared to the comparative compositions. It should be noted that the data for stoichiometric zinc oxide that has been surface treated to further enhance its inherent photocatalytic stability (Examples 12-14) are labeled in the figure with different symbols for the ΔE values ​​of DPPH photocatalytic stability that reflect the properties of uncoated stoichiometric zinc oxide particles or that do not significantly affect the photocatalytic stability.

[0090] [Table 1]

[0091] Example 16 The powder of Example 1 was surface treated with 8% lecithin by weight relative to the zinc oxide powder. The lecithin was first dissolved in 40% USP heptane by weight, and the solution was sprayed onto the powder with mixing in an inert environment in an amount sufficient to obtain the final target composition. The resulting mixture was dried and heat treated at 110°C in air. The resulting powder product passes the hydrophobicity test.

[0092] Example 17 The powder of Example 1 was surface treated with 5% cetearyl alcohol by weight relative to the zinc oxide powder. The cetearyl alcohol was first dissolved in 20% USP isopropanol by weight, and the solution was sprayed onto the powder with mixing in an inert environment in an amount sufficient to obtain the final target composition. The resulting mixture was dried and heat treated at 130°C in air to provide an esterified surface treatment. The resulting powder product passes the hydrophobicity test.

[0093] Example 18 The powder of Example 1 was surface treated with 8% by weight of octyldodecanol relative to the zinc oxide powder. The octyldodecanol was first mixed with 40% by weight of USP isopropanol, and the solution was sprayed onto the powder with mixing in an inert environment in an amount sufficient to obtain the final target composition. The resulting mixture was dried and heat treated at 130°C in air to provide an esterified surface treatment. The resulting powder product passes the hydrophobicity test.

[0094] Example 19 The silica surface-treated powder of Example 13 was further surface-treated with lecithin at 8% by weight of powder. Lecithin was first dissolved in 40% by weight USP heptane, and the solution was sprayed onto the powder with mixing in an inert environment in an amount sufficient to obtain the final target composition. The resulting mixture was dried and heat-treated at 110°C in air. The resulting powder product passed the hydrophobicity test.

[0095] Example 20 The silica surface-treated powder of Example 13 was further surface-treated with 5% cetearyl alcohol by weight based on the powder. Cetearyl alcohol was first dissolved in 20% USP isopropanol by weight, and the solution was sprayed onto the powder with mixing in an inert environment in an amount sufficient to obtain the final target composition. The resulting mixture was dried and heat-treated at 130°C in air to produce an esterified surface treatment. The resulting powder product passed the hydrophobicity test.

[0096] Example 21 The silica surface-treated powder of Example 13 was further surface-treated with 8% octyldodecanol by weight based on the powder. Octyldodecanol was first mixed with 40% USP isopropanol by weight, and the solution was sprayed onto the powder with mixing in an inert environment in an amount sufficient to obtain the final target composition. The resulting mixture was dried and heat-treated at 130°C in air to provide an esterified surface treatment. The resulting powder product passed the hydrophobicity test.

[0097] Example 22 This example illustrates a water-in-oil emulsion cosmetic sunscreen formulation. The ingredients for each phase are listed below.

[0098] [Table 2]

[0099] The blend is first prepared by combining the ingredients of Phase A in a heated vessel and heating to 80°C while mixing until uniform. Next, the ingredients of Phase B are combined in a heated vessel and heated to 80°C while mixing until uniform. Phase A is then added to Phase B while homogenizing using a rotor-stator homogenizer at 5000 RPM for 5 minutes until uniform. The blend is then cooled to 25°C while continuing to mix at low speed.

[0100] Example 23 This example illustrates a water-in-oil emulsion cosmetic sunscreen formulation. The ingredients for each phase are listed below.

[0101] [Table 3]

[0102] The blend is first prepared by combining the ingredients of Phase A in a heated vessel and heating to 80°C while mixing until uniform. Next, the ingredients of Phase B are combined in a heated vessel and heated to 80°C while mixing until uniform. Phase A is then added to Phase B while homogenizing using a rotor-stator homogenizer at 5000 RPM for 5 minutes until uniform. The blend is then cooled to 25°C while continuing to mix at low speed.

[0103] Example 24 (Assumption) A concealer stick composition providing UV protection is prepared as an anhydrous formulation containing stoichiometric zinc oxide. The composition is shown in the table below.

[0104] [Table 4]

[0105] The formulation is processed as follows: Phase A is combined and mixed under high shear conditions. Phase B is added to Phase A and the mixture is heated to 85°C under high shear conditions. Phase C is dispersed into the mixture under high shear conditions while maintaining the temperature at 85°C. The batch is then cooled under high shear mixing. Once below 65°C, phases D and E are added stepwise to the mixture under high shear mixing conditions. The batch is allowed to continue cooling and is dispensed into final packaging once the temperature reaches 60°C.

[0106] Example 25 (Assumption) A concealer stick composition providing UV protection is prepared as an anhydrous formulation containing stoichiometric zinc oxide. The composition is shown in the table below.

[0107] [Table 5]

[0108] The formulation is processed as follows: Phase A is combined and mixed under high shear conditions. Phase B is added to Phase A and the mixture is heated to 85°C under high shear conditions. Phase C is dispersed into the mixture under high shear conditions while maintaining the temperature at 85°C. The batch is then cooled under high shear mixing. Once below 65°C, Phases D and E are added stepwise to the mixture under high shear mixing conditions. The batch is allowed to continue cooling and is dispensed into final packaging once the temperature reaches 60°C.

[0109] Example 26 (Assumption) A cosmetic dry powder sunscreen formulation containing stoichiometric zinc oxide is prepared, the composition of which is shown in the table below.

[0110] [Table 6]

[0111] The dry powdered ingredients are blended and milled until uniform.

[0112] Example 27 (Assumption) A cosmetic dry powder sunscreen formulation containing stoichiometric zinc oxide is prepared, the composition of which is shown in the table below.

[0113] [Table 7]

[0114] The dry powdered ingredients are blended and milled until uniform.

[0115] (References) 1. H. Rafla-Yuan and JF Cordaro, J. Applied Phys. 74, 4685 (1993). 2. JC Simpson and JF Cordaro, J. Applied Phys. 63, 1781 (1988). 3. MD McCluskey and SJ Jokela, J. Applied Phys. 106, 071101 (2009). 4. L. Schmidt-Mende and JL Macmanus-Driscoll, Materials Today, 10 (5), 40 (2007). 5. U.S. Patent No. 5,223,250 6. U.S. Patent No. 5,441,726 7. U.S. Patent No. 5,536,492 8. U.S. Patent No. 6,869,596 9. G. Yi, G. Agarwal, and Y. Zhang, J. Phys. Chem. C 123, 19230 (2019). 10. U.S. Patent No. 2,616,842 11. U.S. Patent No. 3,900,762 12. U.S. Patent No. 4,642,207 13. U.S. Patent No. 4,732,369 14. U.S. Patent No. 5,460,701 15. U.S. Patent No. 5,874,684 16. U.S. Patent No. 7,517,513 17. CF Bohren, D. Huffman, Absorption and scattering of light by small particles (John Wiley, New York 1983). 18. U.S. Patent No. 2,885,366 19. U.S. Patent No. 3,437,502 20. U.S. Patent No. 4,845,054 21. U.S. Patent No. 2,938,009 22. U.S. Patent No. 6,214,106 23. U.S. Patent No. 3,849,152 24. U.S. Patent No. 3,920,865 25. U.S. Patent No. 5,486,631 26. U.S. Patent No. 5,565,591 27. U.S. Patent No. 5,756,788 28. U.S. Patent No. 5,993,967 29. U.S. Patent No. 6,033,781 30. U.S. Patent No. 9,139,737 31. International Publication No. 2018 / 0291210 A1 32. U.S. Patent No. 10,555,892 33. U.S. Patent No. 4,056,494 34. U.S. Patent No. 4,126,591 35. U.S. Patent No. 4,305,853 36. U.S. Patent No. 2,657,149 37. (Not used in this text) 38. A. J. Cox, Alan J. DeWeerd, and J. Linden, Am. J. Phys, 70, 620 (2002) 39. R. Gers, E. Climent, D. Legendre, D. Anne-Archard, and C. Frances, Chemical Engineering Science, 65, 2052 (2010). 40. R.J Tamblyn, Ph.D. Dissertation, University of Birmingham (2009). 41. H. W. Sarkas, K. Cureton, and K. Jung, Eurocosmetics, 5, 20 (2018). 42. E. F. Bernstein, W. W. Sarkas, and P. Boland, J. Cosmet. Dermatol., 00, 1-9 (2019). 43. Federal Register 63 FR 56584. 44. 21CRF352.10 (Sunscreen Drug Products for Over-The-Counter Human Use). 45. Federal Register 84 FR 6204. 46. ​​U.S. Patent No. 10,183,868

Claims

1. an O:Zn ratio of at least 0.99, Average particle size of 10 to 300 nm, 1. Zinc oxide particles having oxygen vacancies and zinc vacancies in a concentration that imparts to a dispersion of the particles in a C12-C15 alkyl benzoate an orange to tan color corresponding to a ΔE value of at least 15 in the Dispersion Color Test; the average particle size is calculated from the specific surface area of ​​the particles measured by electron microscopy or using the Brunauer-Emmett-Teller (BET) method, using a spherical model that fits a fully dense particle; The zinc oxide particles, wherein the particles do not contain agglomerates and have no detectable particles greater than 500 nm on a number-weighted basis.

2. is stoichiometric zinc oxide, It has a maximum ΔE value of 10 in the DPPH photocatalytic stability test; having a ΔE value of at least 15 in the Dispersion Color Test; Zinc oxide particles having an average particle size of 10 to 300 nm, The average particle size is calculated from the specific surface area of ​​the particles measured by electron microscopy or using the Brunauer-Emmett-Teller (BET) method, using a spherical model that fits a fully dense particle; The zinc oxide particles.

3. 3. Zinc oxide particles according to claim 1 or 2, which are photocatalytically stable.

4. 3. Zinc oxide particles according to claim 1 or 2, having an O:Zn ratio of at least 0.

999.

5. 3. The zinc oxide particles according to claim 1, having an average particle size of 15 to 200 nm.

6. 3. The zinc oxide particles according to claim 1 or 2, having a ΔE value of 1 to 10 in a DPPH photocatalytic stability test.

7. 3. Zinc oxide particles according to claim 1 or 2, wherein the particles have a ΔE value of 15 to 26 in the Dispersion Color Test.

8. (a) zinc oxide particles according to claim 1 or 2, and (b) an inorganic oxide coating on said zinc oxide particles; 4. A coated particle comprising:

9. (a) zinc oxide particles according to claim 1 or 2, and (b) an organic moiety-containing coating on said zinc oxide particles; 4. A coated particle comprising:

10. 10. The coated particle of claim 9, wherein the organic moiety-containing coating is prepared by reacting the particle with at least one selected from the group consisting of phosphatides, lecithin, fatty alcohols, and glycerol esters.

11. (a)(i) an O:Zn ratio of at least 0.99; and (ii) oxygen vacancies and zinc vacancies in concentrations that impart to a dispersion of the particles in a C12-C15 alkyl benzoate an orange to tan color corresponding to a ΔE value of at least 15 in the Dispersion Color Test; Zinc oxide particles having the formula: (b) a silica coating on said zinc oxide particles. wherein the coated particles have an average particle size of 10 to 300 nm; the average particle size is calculated from the specific surface area of ​​the particles measured by electron microscopy or using the Brunauer-Emmett-Teller (BET) method, using a spherical model that fits a fully dense particle; The coated particles, wherein the coated particles do not contain aggregates and have no detectable particles above 500 nm on a number-weighted basis.

12. (a) (i) an O:Zn ratio of at least 0.99, and (ii) oxygen vacancies and zinc vacancies in concentrations that impart to a dispersion of the particles in a C12-C15 alkyl benzoate an orange to tan color corresponding to a ΔE value of at least 15 in the Dispersion Color Test. Zinc oxide particles having the formula: (b) an organic moiety-containing coating on said zinc oxide particles; wherein the coated particles have an average particle size of 10 to 300 nm; the average particle size is calculated from the specific surface area of ​​the particles measured by electron microscopy or using the Brunauer-Emmett-Teller (BET) method, using a spherical model that fits a fully dense particle; The coated particles, wherein the coated particles do not contain aggregates and have no detectable particles above 500 nm on a number-weighted basis.

13. 12. The coated particle of claim 11, wherein the silica coating is present in an amount of 0.5 to 40% by weight of the coated particle.

14. (I) a coated particle according to claim 8, and (II) an organic moiety-containing coating on the coated particle; A multi-layer coated particle comprising:

15. 15. The multi-layer coated particle of claim 14, wherein the organic moiety-containing coating is prepared by reacting the particle with at least one selected from the group consisting of phosphatides, lecithin, fatty alcohols, and glycerol esters.

16. (1) Zinc oxide particles according to claim 1 or 2, (2) a liquid carrier, and (3) optionally, an antioxidant A dispersion comprising:

17. (1) A coated particle according to claim 11 or 12, (2) a liquid carrier, and (3) optionally, an antioxidant A dispersion comprising:

18. (1) The multi-coated particle according to claim 14, (2) a liquid carrier, and (3) optionally, an antioxidant A dispersion comprising:

19. 17. The dispersion of claim 16 comprising an antioxidant selected from the group consisting of vitamins, antioxidant minerals, antioxidant proteins, antioxidant enzymes and coenzymes, phytonutrients, and antioxidant hormones.

20. 17. The dispersion of any of claims 16, wherein the liquid carrier is cosmetically acceptable and / or the liquid carrier comprises one selected from the group consisting of alkyl benzoates, fatty acid esters, natural product oils, silicone oils and mixtures thereof and / or the liquid carrier comprises one selected from the group consisting of ethyl benzoate, linear alkyl benzoates, capric / caprylic triglycerides and mixtures thereof.

21. A cosmetic / dermatological composition comprising zinc oxide particles or coated particles according to any one of claims 1, 2 and 11 to 13.

22. 22. The cosmetic / dermatological composition according to claim 21, which is an oil-in-water or water-in-oil emulsion or an anhydrous preparation.

23. 22. The cosmetic / dermatological composition according to claim 21, which is an aerosol foam cream, lotion, paste, gel, spray, stick or powder.

24. A method for protecting skin from light comprising coating the skin with zinc oxide particles or coated particles according to any one of claims 1, 2 and 11 to 13.

25. A method for protecting keratinous materials comprising coating skin with zinc oxide particles or coated particles according to any one of claims 1, 2 and 11 to 13.

26. A method of protecting human skin comprising coating the skin with zinc oxide particles or coated particles according to any one of claims 1, 2 and 11 to 13.

27. A method for combating lipid peroxidation comprising coating skin with zinc oxide particles or coated particles according to any one of claims 1, 2 and 11 to 13.

28. 14. A method for preventing or reducing lines and wrinkles in the skin comprising coating the skin with zinc oxide particles or coated particles according to any one of claims 1, 2 and 11-13.

29. 14. A method of preventing loss of elasticity in the skin comprising coating the skin with zinc oxide particles or coated particles according to any one of claims 1, 2 and 11 to 13.

30. 14. A method for preventing skin thinning comprising coating the skin with zinc oxide particles or coated particles according to any one of claims 1, 2 and 11 to 13.

31. 14. A method for providing antioxidant protection comprising coating skin with zinc oxide particles or coated particles according to any one of claims 1, 2 and 11-13.

32. 27. The method of claim 26, wherein protecting the human skin comprises protecting antioxidants in the human skin.

33. 3. A method of making zinc oxide particles according to claim 1 or 2, comprising grinding stoichiometric zinc oxide to produce a zinc oxide powder having an average particle size of 10 to 300 nm and a concentration of oxygen and zinc vacancies which imparts to a dispersion of the particles in a C12-C15 alkyl benzoate a color corresponding to a ΔE value of at least 15 in the Dispersion Color Test.

34. 3. A method of making zinc oxide particles according to claim 1 or 2, comprising preparing the zinc oxide particles by a gas phase formed by a plasma process with cooling in an oxidizing environment.

35. 3. Zinc oxide particles according to claim 1 or 2, having a critical wavelength value of at least 370 nm.

36. Coated particles according to any one of claims 11 to 13, having a critical wavelength value of at least 370 nm.

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