TiO2-free pigments

The layered pigment system with diatomaceous earth and hydroxyapatite addresses cosmetic migration and soft-focus issues, enhancing oil absorption and reducing reapplication frequency with safe materials.

JP7850708B2Active Publication Date: 2026-04-23SUN CHEMICAL CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
SUN CHEMICAL CORP
Filing Date
2021-09-15
Publication Date
2026-04-23

AI Technical Summary

Technical Problem

Cosmetic formulations interact with facial oils and sweat, leading to migration and color changes, resulting in an unnatural appearance and frequent reapplication, while traditional ingredients like titanium dioxide and microplastics are considered harmful.

Method used

A layered pigment system comprising a porous mineral substrate coated with a porous mineral shell, such as diatomaceous earth and hydroxyapatite, enhances oil absorption and provides soft-focus properties, addressing both issues simultaneously.

Benefits of technology

The layered pigment system improves the longevity of cosmetic formulations by absorbing oils and blurring fine lines, reducing the need for frequent reapplication and utilizing safe, environmentally friendly materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

Layered pigment compositions are described that include a porous mineral matrix and a porous mineral shell. Such compositions may be useful in cosmetics, personal care products, printing inks and coatings, and plastics.
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Description

[Background technology]

[0001] The interaction of cosmetic formulations with skin and facial oils or sweat significantly affects their wearability. Facial oils (e.g., sebum) can wet pigments in cosmetic formulations, causing them to transfer to the skin. Furthermore, when pigments are wetted by sebum, they can undergo color changes, resulting in an unnatural appearance. These pitfalls manifest as a "cakey" appearance that more easily reveals fine lines and wrinkles. Regardless of how it manifests, cosmetics must be reapplied, and consumers of cosmetics view regular reapplication as a negative aspect.

[0002] One way to mitigate the effects of migration is to use high-surface-area, colorless filler particles that sacrificially absorb oil before the cosmetic is completely wet. These high-surface-area fillers act as scavengers for facial oils, absorbing them before they can interact with the rest of the formulation, increasing the time the cosmetic can be applied before migration begins.

[0003] Another way to mitigate the effects of migration is to include particles that blur or obscure fine lines and wrinkles. This phenomenon is called soft focus. When cosmetics migrate into facial wrinkles, the pigments create a soft focus that obscures and reduces the appearance of wrinkles, thus reducing the need to reapply the cosmetics.

[0004] Until now, cosmetic materials have addressed either oil absorption or soft focus, and no material has addressed both issues simultaneously. Traditionally, these cosmetic materials have included (but are not limited to) substances such as talc, titanium dioxide, zinc oxide, and / or microplastics, but these ingredients have recently been recognized as harmful by consumers and / or regulatory authorities. More recently, due to public concerns about these ingredients, new regulations on the use and labeling of these ingredients in cosmetics have been implemented worldwide. For this reason, it is considered beneficial to develop products using materials that are generally recognized as safe (GRAS materials).

[0005] Traditional strategies for improving the application of cosmetic formulations have focused on binders, utilizing highly hydrophobic polymers, silicones, and pigment surface treatments to create a smudge-proof film on the cosmetic. This approach protects against external environmental factors such as sweat and tears originating from areas separate from where the cosmetic is applied.

[0006] While soft-focus pigments are available, they contain ingredients that society considers harmful to human health or the environment. Such ingredients include titanium dioxide, talc, boron, and microplastics. Prior-technical soft-focus pigments with low oil absorption may or may not yield the desired results, but our pigments serve two functions in one: an absorbent filler that prevents staining resulting from interaction with other parts of the cosmetic, and a soft-focus effect. These oils can cause migration of the cosmetic formulation, potentially requiring reapplication of the formulation in a short period of time.

[0007] The compositions of the present invention address these problems by forming layered pigment systems comprising a porous or non-porous substrate together with a porous shell. In one commercial embodiment, a diatomaceous earth substrate may be included together with a hydroxyapatite shell to form a functional pigment system having desirable properties.

[0008] It was found that combining these two minerals into a single particle increases the particle's surface area, thereby improving oil absorption when applied to the skin and enhancing the desirable soft-focus properties due to the powder's high porosity. [Brief explanation of the drawing]

[0009] [Figure 1] This is an SEM image of comparative example 7. [Figure 2] This is an SEM image of Example 1. [Overview of the Initiative]

[0010] The present invention relates to a layered pigment system in which an outer layer of porous mineral shells coats internal substrate particles (which may or may not be porous) to form the layered pigment system. Generally, both the internal substrate and the outer layer have a natural porous microstructure, which, when applied to a surface, can provide soft-focus properties and increase oil absorption. This can reduce migration and saturation of pigments in cosmetic formulations applied to the skin.

[0011] The porous mineral shell can contain calcium phosphate minerals (e.g., hydroxyapatite (HA)), and the internal particles can be diatomaceous earth. Both diatomaceous earth (DE) and hydroxyapatite (HA) are porous, and the combination of these two materials yields a functional layered pigment system with a high surface area. The high surface area results in superior oil absorption compared to other commonly used fillers. Furthermore, the low refractive index of HA and the substrate, along with the porous two-layer structure, creates many different material interfaces (e.g., air-HA, air-substrate, HA-substrate), resulting in strong forward scattering and diffusion of light, and consequently, excellent soft focus. The combination of both high oil absorption and soft focus has not been demonstrated before, and this technology allows formulationists to fully utilize both properties using a single component.

[0012] Hydroxyapatite (HA) has the following chemical formula: Ca 10 Hydroxyapatite is a hydrated calcium phosphate mineral containing (PO4)6(OH)2. It is a major mineral that makes up tooth enamel and constitutes 70% of bone mass in mammals. Hydroxyapatite can readily precipitate from solution, resulting in porous mineral coatings. Such coatings are highly biocompatible and promote the growth of cell material, and are therefore used in fertilizers and organ transplants.

[0013] Diatomaceous earth (DE) is a porous mineral made from fossilized algae and is used in multiple applications, including cosmetics, agriculture, and food. At the molecular level, DE is composed of silicon dioxide, but Ca 2+ and Mg 2+ Other minerals like these may also exist. The porosity of minerals is due to the original structure of the algae before fossilization.

[0014] Incorporating materials such as diatomaceous earth (DE) and hydroxyapatite (HA) into layered pigment systems offers advantages over prior art, particularly in that both substances are generally considered safe. Combining generally safe ingredients with technological advantages presents a compelling value proposition for cosmetic manufacturers, providing a strong incentive for commercialization. [Modes for carrying out the invention]

[0015] The layered pigment system described in this application comprises layered pigment particles having a porous or non-porous mineral substrate and a mineral shell. Note that "porous mineral substrate core," "porous mineral substrate," and "porous substrate" may be used interchangeably. The high porosity and multilayer structure of the pigment enhance its oil absorption, thereby extending the lifespan of cosmetic formulations. Furthermore, the use of this pigment structure in cosmetic formulations provides excellent soft-focus properties. This layered pigment system may further contain other additives discussed below.

[0016] While not bound by theory, it is believed that a two-layer structure of porous materials allows for more efficient oil absorption than either a blend of materials or equal volumes of individual materials. Furthermore, this layered combination of porous materials creates a structure with a high surface area and multiple interfaces, resulting in efficient blurring and soft focus.

[0017] In one embodiment, the layered pigment system includes an internal porous matrix and an external shell, and the term "porous matrix" includes the meaning of having a high surface area compared to a non-porous matrix of the same size. The pore morphology is not important, and without reducing the scope of the present invention, the pores may be spherical, cylindrical, amorphous, or plate-like.

[0018] In one embodiment, the porous matrix is a mineral selected from silica, mica, perlite, diatomaceous earth, kaolin, kaolinite, sericite, clay, talc, diatomite, kieselguhr, zeolite, and mixtures thereof.

[0019] In one embodiment, the porous matrix is high-surface area particles. When the matrix is particles, the matrix can have a shape that defines its boundary. The shape of the matrix does not limit the scope of the present invention, and the matrix can be of any shape known to those skilled in the art. Exemplary matrix shapes include irregular, spherical, platelet-shaped, needle-shaped, wire-shaped, and mixtures thereof. The matrix has a particle size distribution defined by the median particle size d50 in measurements by light scattering methods. The d50 of the matrix is preferably in the range of 2 to 100 μm. In one embodiment, the d50 of the matrix can be in the range of 0.5 to 35 μm.

[0020] In one embodiment, the matrix may be coated with one or more layers of a porous mineral shell. The porous mineral shell is defined as a mineral shell having a high surface area and pores of any morphology. In the case of the porous mineral shell, it may be present on the surface of the porous mineral matrix or may penetrate into the pores of the porous mineral matrix. The porous mineral shell generally exists on the surface of the porous matrix in the range of 1 to 100% by weight relative to the porous matrix. The porous mineral shell can completely or partially enclose the porous matrix without limiting the scope of the present invention.

[0021] In one embodiment, the porous mineral shell can be crystalline or amorphous without limiting the scope of the present invention. The porous mineral shell can include, without limitation, one or more minerals from the following group: calcium phosphate, monocalcium phosphate, monocalcium phosphate monohydrate, dicalcium phosphate, dicalcium phosphate dihydrate, dicalcium phosphate monohydrate, tricalcium phosphate, tetracalcium phosphate, octacalcium phosphate, dicalcium diphosphate, tricalcium phosphate, calcium hydroxyphosphate, monetite, brucite, apatite, hydroxyapatite, silica, titanium dioxide, anatase, rutile, and mixtures thereof.

[0022] In one embodiment, the layered pigment system can optionally be blended or treated with one or more additives. These additives can have different functions, such as improving dispersibility, improving feel, improving hydrophobicity, and improving oil absorption. Furthermore, the surface charge characteristics of the layered pigment system can be changed to cationic, anionic, neutral, or non-charged using additives.

[0023] In one embodiment, the layered pigment system may also include components that can be passively released at a point after coating. This is possible due to the porous structure of the particles and the large amount of free volume created per particle. Typical examples of additives, but not limited to, include one or more of the following: methicone, dimethicone, trifluoropropyl dimethicone, lecithin, egg lecithin, vegetable lecithin, hydrogenated lecithin, galactose arabinan sugar, starch, alginic acid, sodium alginate, potassium alginate, chitosan, magnesium myristate, aluminum myristate, zinc myristate, sodium glycerophosphate, alanine, arginine, asparagine, aspartic acid, sodium aspartate, cysteine, glutamine, glutamic acid, sodium glutamate Rium, glycine, proline, histidine, isoleucine, leucine, lysine, methionine, phenylalanine, serine, threonine, tryptophan, tyrosine, valine, taurine, citrulline, ornithine, theanine, dipeptide, tripeptide, polypeptides of more than 3 amino acids, protein, enzyme, betaine, carnitine, carnosine, hydroxytryptophan, cysteine, hydroxyproline, N-acetylcystine, S-adenosylmethionine, tyramine, γ-aminobutyric acid, serotonin, dopamine, 2-aminohepanoic acid, 2-aminoisobutyric acid, 3-aminoisobutyric acid, 2-aminopimelic acid, 2,4-diaminobutyric acid, desmosine, 2,2'-diaminopimelic acid, 2,3-Diaminopropionic acid, N-ethylglycine, selenomethionine, allo-isoleucine, N-methylglycine, N-methylisoleucine, 6-N-methyllysine, N-methylvaline, norvaline, norleucine, pyrrolicin, formylmethionine, β-alanine, δ-aminolevulinic acid, 4-aminobenzoic acid, dehydroalanine, cystathionine, lanthionine, gencoric acid, diaminepimelic acid, isovaline, lauroyllysine, glutamate cysteine-arginine peptide, myristoyl sarcosinate sodium, stearoyl glutamate disodium, fatty acids, lipids, stearic acid, sodium stearate, oleic acid, sodium oleate, palmitic acid, sodium palmitate, myristic acid, elaidic acid, sodium elaidate, sodium myristate, lauric acid, sodium laurate, arachidic acid, arachidic acid sodium Lilium, erucic acid, sodium erucate, palmitoleic acid, sodium palmitoleate, linoleic acid, sodium linoleate, triethoxyoctylsilane, trimethoxyoctylsilane, triethoxydecylsilane, trimethoxydecylsilane, triethoxydodecylsilane, trimethoxydodecylsilane, triethoxytetradecylsilane, trimethoxytetradecylsilane, triethoxyhexadecylsilane, trimethoxyhexadecylsilane, triethoxyoctadecylsilane, trimethoxyoctadecylsilane, PEG-8 triethoxysilane, jojoba wax, polyethylene wax, carnauba wax, unreacted fluorinated compounds, isopropyl titanium triisostearate, perfluoroalkyl phosphate, triethoxycaprylsilane, stearoyl glutamic acid, perfluorooctyltriethoxysilane, silica, aloe, and mixtures and combinations thereof.

[0024] Layered pigment systems comprising a porous mineral substrate and a porous mineral shell can be used in cosmetic formulations to improve the long-lasting properties of the cosmetic. In one embodiment, the layered pigment system can be incorporated into any type of personal care or cosmetic formulation in an optimized load to improve the wear properties. In another embodiment, the layered pigment system can be incorporated into any type of personal care or cosmetic formulation in an optimized load that maximizes the soft-focus properties of the formulation. In one embodiment, the layered pigment system may be an ingredient that provides passive or active effects to the cosmetic. In another embodiment, the layered pigment system may act as a filler or binder in the cosmetic formulation. In one embodiment, the optimized load of the layered pigment system may range from 0.1% to 90.0% by weight of the total weight of the personal care or cosmetic formulation, depending on the type of cosmetic formulation.

[0025] In one embodiment, a layered pigment system can be incorporated into any type of personal care formulation, such as acne treatments, face creams, skin gels, hand creams, body lotions, moisturizers, water-in-oil formulations, oil-in-water formulations, cellulite treatments, body splashes, shampoos, conditioners, styling products, hairsprays, setting lotions, primers, mousses, gels, pomades, waxes, dry shampoos, serums, oils, hair color, root touch-up products, scalp treatments, deodorants, antiperspirants, sunscreens, sun lotions, whitening cosmetics, lip balms, anti-aging creams, eye serums, body oils, makeup removers, shaving creams, shaving gels, and eye creams. When a layered pigment is incorporated into a personal care formulation, the layered pigment can be loaded with one or more active or passive components for immediate or long-lasting release, without limiting the scope of the present invention.

[0026] In another embodiment, the layered pigment system can be incorporated into any cosmetic formulation, such as foundation, pressed powder, loose powder, bronzer, concealer, BB / CC cream, tinted moisturizer, liquid foundation, eyeshadow, eyeliner, lipstick, lip gloss, blush, rouge, facial powder, and nail polish.

[0027] In one embodiment, a layered pigment system can be incorporated into an ink or coating. The resulting ink or coating may have an aesthetically pleasing light-diffusing effect. The soft-focus effect of the coating or ink may be one or more of a variety of effects, including, but not limited to, opacity, mattification, haze, scratch concealment, and spreadability. Examples of inks and coatings include, but are not limited to, automotive coatings, protective transparent coatings, interior building coatings, exterior building coatings, powder coatings, industrial coatings, corrosion-resistant coatings, gravure printing inks, flexographic printing inks, paste inks, and energy-curing (UV or EB) inks. Furthermore, layered pigments can be used in any ratio with other effect pigments or organic pigments without limiting the scope of the present invention.

[0028] The content of the layered pigment system in the coating or ink composition can preferably be set in the range of 0.1% to 50% by weight relative to the other components of the coating system. Alternatively, the content of the layered pigment system can also be set in the range of 1% to 20% by weight relative to the other components of the coating system.

[0029] In one embodiment, the layered pigment system can be incorporated into a plastic component. In this embodiment, the plastic according to the present invention can be obtained by incorporating the layered pigment system and the plastic material by compounding the layered pigment system with the plastic at a temperature above the glass transition temperature of the plastic. Preferred methods for incorporating the layered pigment system include, but are not limited to, blow molding, extrusion molding, or other techniques known to those skilled in the art used in the manufacture of plastic films or articles. In one embodiment, the layered pigment system can be incorporated into the plastic at a loading rate ranging from 0.01% to 20% of the total weight of the formulation.

[0030] When incorporating a layered pigment system into a plastic, any suitable plastic can be used (but is not limited to, polypropylene, polyethylene, polyester, polyurethane, polyacrylate, polyolefin, epoxy, polyamide, poly(vinyl chloride), and poly(vinylidene fluoride), as well as any acrylic, alkyd, fluoropolymer, and blends thereof). When incorporating a layered pigment system into a plastic, it can be used in combination with one or more further light-diffusing pigments or colored pigments, without limiting the scope of the present invention.

[0031] The present invention has been described in detail. However, it will be understood that those skilled in the art may, upon consideration of this disclosure, make modifications and / or improvements to the present invention that fall within the scope and spirit of the invention. [Examples]

[0032] The present invention will be further illustrated by the following non-limiting embodiments, which are intended to be more illustrative and not intended to limit the scope of the invention, nor should they be construed as such.

[0033] Example 1:

[0034] 26.4 g of diatomaceous earth (Imerys Imercare 18D) was added to a 2 L oil-jacketed reactor along with 600 g of DI water. The substrate was stirred in water at 350 RPM and heated to 70°C. 83.2 g of calcium acetate hydrate, 102.6 g of ethylenediaminetetraacetic acid, and 65 g of water were added to the reactor and stirred for 30 minutes. 37 g of 87% phosphoric acid was added. 50% sodium hydroxide was weighed and added to the reactor until the pH reached 10.0. After all reagents had been added, the slurry was stirred for 30 minutes. The slurry was filtered and washed with water. The aqueous paste was then dried at 60°C to obtain a white powder containing approximately 51% hydroxyapatite.

[0035] Example 2:

[0036] 30 g of Imerys Imercare 18D was added to a 1 L oil-jacketed reactor along with 400 g of DI water. The substrate was stirred in water at 350 RPM and heated to 55°C. 47.3 g of calcium acetate hydrate and 58.3 g of ethylenediaminetetraacetic acid were added to the reactor and stirred for 30 minutes. 20.5 g of 87% phosphoric acid was added. 10% sodium hydroxide was weighed and added to the reactor until the pH reached 10.5. After all reagents had been added, the slurry was stirred for 30 minutes. The slurry was filtered and washed with water. The aqueous paste was then dried at 60°C to obtain a white powder containing approximately 23% hydroxyapatite.

[0037] Example 3:

[0038] 20 g of Imerys Imercare 18D was added to a 2 L oil-jacketed reactor along with 800 g of DI water. The substrate was stirred in water at 350 RPM and heated to 75°C. 220 g of calcium acetate hydrate and 270.9 g of ethylenediaminetetraacetic acid were added and stirred for 30 minutes. 95.4 g of 87% phosphoric acid was added. 50% sodium hydroxide was weighed and added to the reactor until the pH reached 9.5. After all reagents had been added, the slurry was stirred for 30 minutes. The reaction contents were removed from the reactor, filtered, and washed. The aqueous paste was then dried at 60°C to obtain a white powder containing approximately 77% hydroxyapatite.

[0039] Example 4:

[0040] 10.3 g of kaolin (Imerys Imercare 02K) was added to a 1 L oil-jacketed reactor along with 270 g of DI water, 78.8 g of calcium acetate hydrate, and 48.6 g of ethylenediaminetetraacetic acid. The mixture was stirred at 350 RPM and heated to 75°C. Once this temperature was reached, 35 g of 86% phosphoric acid was added. 180 g of 40% sodium hydroxide solution was slowly weighed into the reactor. The reaction contents were removed from the reactor, filtered, and washed. The aqueous paste was then dried at 60°C to obtain a white powder containing approximately 60% hydroxyapatite.

[0041] Example 5:

[0042] 30 g of diatomaceous earth (Imerys Imercare 03D) was added to a 2 L oil-jacketed reactor along with 600 g of DI water. The substrate was stirred in water at 350 RPM and heated to 60°C. 94.6 g of calcium acetate hydrate and 116.6 g of ethylenediaminetetraacetic acid were added and stirred for 30 minutes. 42 g of 87% phosphoric acid was added. 50% sodium hydroxide was weighed and added to the reactor until the pH reached 10.0. After all reagents had been added, the slurry was stirred for 30 minutes. The reaction contents were removed from the reactor, filtered, and washed. The aqueous paste was then dried at 60°C to obtain a white powder containing approximately 77% hydroxyapatite.

[0043] Example 6:

[0044] 13.4 g of mica (C86-6105; Sun Chemical) was added to a 1 L oil-jacketed reactor along with 270 g of DI water, 78.8 g of calcium acetate hydrate, and 48.6 g of ethylenediaminetetraacetic acid. The mixture was stirred at 350 RPM and heated to 75°C. Once this temperature was reached, 35 g of 86% phosphoric acid was added. 180 g of 40% sodium hydroxide solution was slowly weighed into the reactor. The reaction contents were removed from the reactor, filtered, and washed. The aqueous paste was then dried at 60°C to obtain a white powder containing approximately 60% hydroxyapatite.

[0045] Note: All comparative examples lack calcium phosphate minerals, specifically hydroxyapatite.

[0046] Comparative Example 7: Imerys Imercare 18D (diatomaceous earth) (without hydroxyapatite)

[0047] Comparative Example 8: Barretts Minerals MP1538USP (Talc)

[0048] Comparative Example 9: Imerys Imercare 02K (Kaolin) (without hydroxyapatite)

[0049] Comparative Example 10: Sun Chemical C86-6105 (Mica) (without hydroxyapatite)

[0050] Comparative Example 11: Sun Chemical C47051 (TiO2) (White pigment used for soft focus)

[0051] Comparative Example 12: Sun Chemical SpectraFlex Illusion C88-0103 (25% TiO2 on talc) (White pigment used for soft focus)

[0052] Comparative Example 13: Saint-Gobain Ceramics & Plastics Tres BN PUHP3002 (Hexagonal Boron Nitride) (White pigment used for soft focus)

[0053] Comparative Example 14: 25% TiO2 (white pigment used for soft focus) on Imercare 18D diatomaceous earth

[0054] particle size

[0055] The particle size of Examples 1-14 was measured using Cilas 1064L. Samples were prepared in 5% water and sonicated for 5 minutes. The median particle size d50 is reported in Table 1.

[0056] Oil absorption

[0057] Castor oil was slowly added to 1 gram of pigment in Examples 1-13 until the pigment was wet. The oil was then mixed into the dried pigment using a spatula. The amount of oil required to wet 1 g of pigment was recorded and reported in Table 1. The reported value is the average of three measurements.

[0058] [Table 1]

[0059] From the data in Table 1, Invention Examples 1-6 use 1.0g 油 / g 顔料 It has an extremely high oil absorption value, and these examples show that when applied to the skin in a cosmetic film, 1.0g 油 / g 顔料 It is shown that it will last longer than comparative examples 7-12 and 14, which have oil absorption values ​​of less than 13. Although example 13 has a high oil absorption value, its composition is not considered environmentally friendly or safe in the perception of consumers.

[0060] Surface area:

[0061] The surface area was measured by N2 adsorption using Nova2000e. The results of the surface area measurements are reported in Table 1. This result shows that the surface area of the invention example is much higher than that of the comparative example.

[0062] SEM analysis

[0063] The SEM microscope images of Example 1 and Comparative Example 7 were measured using Vega3 Tescan. The SEM images are reported in FIGS. 1 and 2. FIG. 1 is the SEM image of Comparative Example 7 (diatomaceous earth without a hydroxyapatite layer). In FIG. 1, small particles having a geometric shape and a smooth surface can be seen. FIG. 1 can be compared with FIG. 2. FIG. 2 has a rougher appearance, indicating a larger surface area. The rough surface is due to the deposition of a porous hydroxyapatite layer.

[0064] Soft focus measurement

[0065] The soft focus of a pigment is an optical phenomenon that blurs fine lines and wrinkles and makes them unclear. The soft focus can be quantified by a method that incorporates both the reflection characteristics and the transmission characteristics of the pigment film.

[0066] The reflective part of the soft focus is SFF R and is known as such and is defined by the following Equation 1. SFF R =L*75 / L*15(1) In the formula, L*15 and L*75 are L* luminance values measured with a multi-angle spectrophotometer using a 45° incident beam and measuring the reflected beam at non-specular reflection angles of 15° and 75°. A good soft focus effect is observed when SFF R is between 0.4 and 0.7.

[0067] The transmissive part of the soft focus (SFF T ) is defined by the following Equation 2. SFF [[ID=3​​​​​ In the formula, T TOT and T DIF These are the total transmittance and diffuse transmittance of the film measured using a spectrophotometer with a diffusion sphere configuration. T A good soft-focus effect is observed when the value exceeds 0.50.

[0068] To measure soft focus, the example was dispersed in a solvent-transporting cellulose acetate-butyrate coating base at a load of 10% (w / w). The coating was applied to a black and white test card (Byk Chart 2811) using a 1.5 mil Bird applicator. Multi-angle color data was measured for the black area of ​​the card using a BYK mac i multi-angle spectrophotometer. Further coating was performed on a transparent Mylar sheet using a 1.5 mil Bird applicator. Direct transmittance and total transmittance from 400 to 700 nm were measured using an X-Rite Color i7 spectrophotometer. SFF T and SFF R This is reported in Table 2.

[0069] [Table 2]

[0070] This data shows that comparative example 12, which includes TiO2 coated on talc, is SFF R and SFF T Both fall within the specified range, indicating a soft-focus effect. Comparative Example 13, a commercially available transport nitride powder for soft focus, appears opaque, and the soft-focus measurement at this load is outside the range. In contrast, Example 1 shows a strong soft-focus effect at this load, and SFF T This was the highest among all samples, and a haze effect indicating soft focus was visible.

[0071] [Table 3]

[0072] CC cream is prepared by separately combining components A and B and heating each to 85°C. The heated component A is added to component B and mixed for 10 minutes using a Dispermat. The mixture is cooled to below 40°C and component C is added. Alternatively, the D phase may be added to approximately 10 g of the preparation and mixed for 1 minute at 3,000 RPM using a centrifugal mixer.

[0073] [Table 4] This disclosure includes the following embodiments of the invention: <Aspect 1> A layered pigment system comprising a mineral matrix and a porous mineral shell. <Aspect 2> The layered pigment system according to embodiment 1, wherein the mineral substrate is porous. <Aspect 3> The layered pigment system according to embodiment 1, wherein the mineral substrate consists of particles having a d50 of 2 to 100 μm. <Aspect 4> The layered pigment system according to embodiment 1, wherein the mineral substrate consists of particles having a d50 of 0.5 to 35 μm. <Aspect 5> The layered pigment system according to embodiment 2, wherein the porous mineral matrix is ​​crystalline, amorphous, or a combination thereof. <Aspect 6> The layered pigment system according to embodiment 5, wherein the porous mineral matrix is ​​selected from the group consisting of silica, perlite, diatomaceous earth, kaolin, mica, kaolinite, sericite, clay, talc, diatomaceous rock, diatomaceous earth, aluminum oxide, calcium carbonate, zeolite, and mixtures thereof. <Aspect 7> The layered pigment system according to embodiment 6, wherein the porous mineral matrix is ​​diatomaceous earth. <Aspect 8> The layered pigment system according to embodiment 7, wherein the porous mineral shell is a calcium phosphate mineral. <Pattern 9> The layered pigment system according to embodiment 7, wherein the calcium phosphate mineral is selected from the group consisting of calcium phosphate, monocalcium phosphate, monocalcium phosphate monohydrate, dicalcium phosphate, dicalcium phosphate dihydrate, dicalcium phosphate monohydrate, tricalcium phosphate, tetracalcium phosphate, octacalcium phosphate, dicalcium diphosphate, tricalcium phosphate, calcium hydroxide phosphate, monetite, bruscheite, apatite, hydroxyapatite, silica, titanium dioxide, anatase, rutile, and mixtures thereof. <Aspect 10> The layered pigment system according to embodiment 9, wherein the calcium phosphate mineral is hydroxyapatite. <Aspect 11> A layered pigment system according to embodiment 1, which is blended or treated with one or more additives. <Aspect 12> The aforementioned additives include methicone, dimethicone, trifluoropropyl dimethicone, lecithin, egg lecithin, plant lecithin, hydrogenated lecithin, galactose arabinan sugar, starch, alginic acid, sodium alginate, potassium alginate, chitosan, magnesium myristate, aluminum myristate, zinc myristate, sodium glycerophosphate, alanine, arginine, asparagine, aspartic acid, sodium aspartate, cysteine, glutamine, glutamic acid, sodium glutamate, glycine, proline, histidine Isoleucine, leucine, lysine, methionine, phenylalanine, serine, threonine, tryptophan, tyrosine, valine, taurine, citrulline, ornithine, theanine, dipeptide, tripeptide, polypeptides of more than 3 amino acids, protein, enzyme, betaine, carnitine, carnosine, hydroxytryptophan, cysteine, hydroxyproline, N-acetylcystine, S-adenosylmethionine, tyramine, γ-aminobutyric acid, serotonin, dopamine, 2-aminohepanoic acid, 2-aminoisobutyric acid, 3-aminoisobutyric acid, 2-aminopimelic acid, 2,4-diaminobutyric acid, desmosine, 2,2'-diaminopimelic acid, 2,3-Diaminopropionic acid, N-ethylglycine, selenomethionine, allo-isoleucine, N-methylglycine, N-methylisoleucine, 6-N-methyllysine, N-methylvaline, norvaline, norleucine, pyrrolicin, formylmethionine, β-alanine, δ-aminolevulinic acid, 4-aminobenzoic acid, dehydroalanine, cystathionine, lanthionine, gencoric acid, diaminepimelic acid, isovaline, lauroyllysine, glutamate cysteine-arginine peptide, myristoyl sarcosinate sodium, stearoyl glutamate disodium, fatty acids, lipids, stearic acid, sodium stearate, oleic acid, sodium oleate, palmitic acid, sodium palmitate, myristic acid, elaidic acid, sodium elaidate, sodium myristate, lauric acid, sodium laurate, arachidic acid, sodium arachidate, erucic acid, erucic acid A layered pigment system according to embodiment 11, selected from the group consisting of sodium, palmitoleic acid, sodium palmitoleate, linoleic acid, sodium linoleate, triethoxyoctylsilane, trimethoxyoctylsilane, triethoxydecylsilane, trimethoxydecylsilane, triethoxydodecylsilane, trimethoxydodecylsilane, triethoxytetradecylsilane, trimethoxytetradecylsilane, triethoxyhexadecylsilane, trimethoxyhexadecylsilane, triethoxyoctadecylsilane, trimethoxyoctadecylsilane, PEG-8 triethoxysilane, jojoba wax, polyethylene wax, carnauba wax, unreacted fluorinated compounds, isopropyl titanium triisostearate, perfluoroalkyl phosphate, triethoxycaprylsilane, stearoyl glutamic acid, perfluorooctyltriethoxysilane, silica, aloe, and mixtures and combinations thereof. <Aspect 13> A cosmetic formulation or personal care formulation comprising the layered pigment system described in Embodiment 1. <Aspect 14> The cosmetic formulation or personal care formulation according to embodiment 13, wherein the cosmetic formulation is selected from the group consisting of foundation, pressed powder, loose powder, bronzer, concealer, liquid facial cosmetics, BB / CC cream, tinted moisturizer, liquid foundation, eyeshadow, eyeliner, lipstick, lip gloss, blush, rouge, facial powder, and nail polish. <Aspect 15> An ink or coating composition comprising the layered pigment system described in Embodiment 1. <Aspect 16> The ink or coating composition according to embodiment 15, wherein the ink or coating composition is selected from the group consisting of automotive coatings, protective transparent coatings, interior building coatings, exterior building coatings, powder coatings, industrial coatings, corrosion-preventive coatings, gravure printing inks, flexographic printing inks, paste inks, and energy-curing (UV or EB) inks. <Aspect 17> A plastic material comprising the layered pigment system described in Embodiment 1. <Aspect 18> The plastic material according to embodiment 17, wherein the plastic material is selected from polypropylene, polyethylene, polyester, polyurethane, polyacrylate, polyolefin, epoxy, polyamide, poly(vinyl chloride), and poly(vinylidene fluoride), as well as any acrylic, alkyd, fluoropolymer, and blends thereof.

Claims

1. A layered pigment system comprising a mineral matrix and a porous mineral shell, The porous mineral shell contains calcium phosphate mineral, The mineral substrate is a porous mineral substrate, The porous mineral matrix is ​​crystalline, amorphous, or a combination thereof. The porous mineral matrix is ​​selected from the group consisting of silica, perlite, diatomaceous earth, clay, diatomaceous rock, aluminum oxide, zeolite, and mixtures thereof. The porous mineral shell is deposited on the mineral matrix, The mineral substrate and the porous mineral shell form a single particle. Layered pigment system.

2. The layered pigment system according to claim 1, wherein the mineral substrate is particles having a d50 of 2 to 100 μm.

3. The layered pigment system according to claim 1, wherein the mineral substrate is particles having a d50 of 0.5 to 35 μm.

4. The layered pigment system according to claim 1, wherein the porous mineral matrix is ​​diatomaceous earth.

5. The layered pigment system according to claim 4, wherein the calcium phosphate mineral is selected from the group consisting of calcium phosphate, monocalcium phosphate, monocalcium phosphate monohydrate, dicalcium phosphate, dicalcium phosphate dihydrate, dicalcium phosphate monohydrate, tricalcium phosphate, tetracalcium phosphate, octakacium phosphate, dicalcium diphosphate, tricalcium phosphate, calcium hydroxide phosphate, monetite, bruscheite, apatite, hydroxyapatite, and mixtures thereof.

6. The layered pigment system according to claim 5, wherein the calcium phosphate mineral is hydroxyapatite.

7. The layered pigment system according to claim 1, which is blended with one or more additives or treated with one or more additives.

8. The aforementioned additives include methicone, dimethicone, trifluoropropyl dimethicone, lecithin, egg lecithin, plant lecithin, hydrogenated lecithin, galactose arabinan sugar, starch, alginic acid, sodium alginate, potassium alginate, chitosan, magnesium myristate, aluminum myristate, zinc myristate, sodium glycerophosphate, alanine, arginine, asparagine, aspartic acid, sodium aspartate, cysteine, glutamine, glutamic acid, sodium glutamate, glycine, proline, histidine N, isoleucine, leucine, lysine, methionine, phenylalanine, serine, threonine, tryptophan, tyrosine, valine, taurine, citrulline, ornithine, theanine, dipeptide, tripeptide, polypeptides of more than three amino acids, protein, enzyme, betaine, carnitine, carnosine, hydroxytryptophan, cysteine, hydroxyproline, N-acetylcystine, S-adenosylmethionine, tyramine, γ-aminobutyric acid, serotonin, dopamine, 2-aminoheptanoic acid, 2-aminoisobutyric acid, 3-aminoisobutyric acid, 2-aminopimeric acid, 2,4-diaminobutyric acid, desmosine, 2,2'-diaminopimeric acid, 2,3-Diaminopropionic acid, N-ethylglycine, selenomethionine, allo-isoleucine, N-methylglycine, N-methylisoleucine, 6-N-methyllysine, N-methylvaline, norvaline, norleucine, pyrrolicin, formylmethionine, β-alanine, δ-aminolevulinic acid, 4-aminobenzoic acid, dehydroalanine, cystathionine, lanthionine, gencoric acid, diaminepimelic acid, isovaline, lauroyllysine, glutamic acid Stain-arginine peptide, sodium myristoyl sarcosinate, disodium stearoyl glutamate, fatty acids, lipids, stearic acid, sodium stearate, oleic acid, sodium oleate, palmitic acid, sodium palmitate, myristic acid, elaidic acid, sodium elaidate, sodium myristate, lauric acid, sodium laurate, arachidic acid, sodium arachidic acid, erucic acid, erucic acid A layered pigment system according to claim 7, selected from the group consisting of sodium, palmitoleic acid, sodium palmitoleate, linoleic acid, sodium linoleate, triethoxyoctylsilane, trimethoxyoctylsilane, triethoxydecylsilane, trimethoxydecylsilane, triethoxidedodecylsilane, trimethoxydodecylsilane, triethoxytetradecylsilane, trimethoxytetradecylsilane, triethoxyhexadecylsilane, trimethoxyhexadecylsilane, triethoxyoctadecylsilane, trimethoxyoctadecylsilane, PEG-8 triethoxysilane, jojoba wax, polyethylene wax, carnauba wax, unreacted fluorinated compounds, isopropyl titanium triisostearate, perfluoroalkyl phosphate, triethoxycaprylsilane, stearoyl glutamic acid, perfluorooctyltriethoxysilane, silica, aloe, and mixtures and combinations thereof.

9. A cosmetic formulation or personal care formulation comprising the layered pigment system described in claim 1.

10. The cosmetic formulation or personal care formulation according to claim 9, wherein the cosmetic formulation is selected from the group consisting of foundation, pressed powder, loose powder, bronzer, concealer, liquid facial cosmetics, BB / CC cream, tinted moisturizer, liquid foundation, eyeshadow, eyeliner, lipstick, lip gloss, blush, rouge, facial powder, and nail polish.

11. An ink or coating composition comprising the layered pigment system described in claim 1.

12. The ink or coating composition according to claim 11, wherein the ink or coating composition is selected from the group consisting of automotive coatings, protective transparent coatings, interior building coatings, exterior building coatings, powder coatings, industrial coatings, corrosion-preventive coatings, gravure printing inks, flexographic printing inks, paste inks, and energy-curing (UV or EB) inks.

13. A plastic material comprising the layered pigment system described in claim 1.

14. The plastic material according to claim 13, wherein the plastic material is selected from polypropylene, polyethylene, polyester, polyurethane, polyacrylate, polyolefin, epoxy, polyamide, poly(vinyl chloride), and poly(vinylidene fluoride), as well as any acrylic, alkyd, fluoropolymer, and blends thereof.

Citation Information

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