Kraft lignin and its manufacturing method

Kraft lignin with specific infrared absorption and particle size characteristics addresses water resistance and safety issues in UV-blocking agents, providing effective UV protection and anti-aging benefits in cosmetics and coatings.

JP7722598B2Active Publication Date: 2025-08-13DIC CORP
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Patent Information

Application Number
JP2024555174
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-04-18
Filing Date
2024-04-04
Publication Date
2025-08-13
Estimated Expiration
2044-04-04

AI Technical Summary

Technical Problem

Existing UV-blocking agents in sunscreens and cosmetics face issues with water resistance, insufficient UV protection, and safety concerns, while lignin has been unsuitable for cosmetic use due to its strong color and low productivity in microparticulation.

Method used

Kraft lignin with specific infrared absorption spectrum characteristics and particle size, produced through controlled precipitation, offering high UV absorption and scattering capabilities, and a whitish hue, suitable for cosmetics and other applications.

Benefits of technology

Kraft lignin provides superior UV protection, anti-aging benefits, and can be used as a colorant in a wide range of products including sunscreens, foundations, and various coatings and paints, while being safe and effective.

✦ Generated by Eureka AI based on patent content.

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Abstract

The purpose is to provide a cosmetic, an ink, printed matter, a coating material, an automobile paint, a coating, a plastic, fibers, a film, a black matrix resist, a photospacer resist, cured products thereof, etc., that contain Kraft lignin having absorption ability in the ultraviolet region which cuts absorption in the ultraviolet region. It was discovered that Kraft lignin having a specific peak in an infrared absorption spectrum measured by a Fourier transform infrared spectrophotometer equipped with an ATR unit has high ultraviolet cutting capacity and can be used especially suitably for cosmetic applications due to the high L* value in color measurement by spectrophotometer, making it possible to solve the above problem.
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Description

[Technical Field]

[0001] The present invention relates to kraft lignin and a method for producing the same. [Background technology]

[0002] Ultraviolet rays are generally said to accelerate skin aging, cause wrinkles and sagging, as well as cause age spots and skin cancer. Ultraviolet rays in the 280-320 nm range known as the UV-B range affect the surface of the skin, so excessive exposure tends to cause age spots and skin cancer, while ultraviolet rays in the 320-380 nm range known as the UV-A range penetrate deep into the skin, so excessive exposure tends to cause wrinkles and sagging.

[0003] Sunscreens containing UV-blocking agents such as UV absorbers and UV scattering agents are widely used in daily life to protect the skin from UV rays. However, in recent years, there has been a growing movement to ban, restrict, or treat the use of these UV protection agents as a cause for concern from the perspectives of environmental protection and reducing harmful effects on human health.

[0004] For example, the state of Hawaii in the United States has passed a bill banning the sale of sunscreens containing certain synthetic organic chemicals that are known to be harmful to coral reefs. Furthermore, in Europe, the REACH regulation has raised the health hazard of titanium oxide to Category 2 in the GHS classification. Furthermore, UV scattering agents commonly used in sunscreen compositions, such as zinc oxide and cerium oxide, are classified as Category 1 or Category 2 for specific target organ toxicity, and therefore cannot necessarily be said to be safe for the human body.

[0005] Given this background, attention has been focused on UV absorbers derived from natural products. Naturally-derived UV absorbers have traditionally been used in cosmetics, including sunscreens, from a safety perspective. However, because many of them are water-soluble, they disperse poorly in oily ingredients and are washed away by sweat during use. For example, UV absorbers extracted from seaweed are sufficiently safe because they are derived from natural products, but they are water-soluble and have issues with water resistance. Furthermore, because their absorption edge is approximately 350 nm, they provide insufficient UV protection against UV-A compared to UV-B (Patent Documents 1 and 2). UV absorbers derived from plant-dwelling microorganisms are also sufficiently safe because they are derived from natural products, but while they have UV-A absorption capabilities, they have the issue of insufficient UV-B absorption capabilities. Furthermore, they also have issues with water resistance (Patent Document 3).

[0006] On the other hand, UV-blocking agents made from naturally occurring ingredients coated on the surface of pigments to improve dispersibility in oily components did indeed improve dispersibility, but only achieved the original UV-absorbing ability (Reference 4).

[0007] Furthermore, although there is prior art in which naturally occurring lignin is used as an additive for lead-acid batteries, lignin itself has a strong brown to black appearance, and therefore has not been used in paints, let alone in cosmetics intended to beautify the appearance (Reference 5).

[0008] For use in cosmetics, paints, and the like, it is preferable that lignin be microparticulated. However, the particle formation concentration is very low, and the lignin yield relative to the volume of the production equipment is low, resulting in very low productivity (Non-Patent Documents 1 and 2). [Prior art documents] [Patent documents]

[0009] [Patent Document 1] Japanese Patent Application Publication No. 8-188521 [Patent Document 2] Japanese Patent Application Laid-Open No. 2004-238519 [Patent Document 3] Japanese Patent Application Laid-Open No. 2013-127027 [Patent Document 4] JP 2018-162400 A [Patent Document 5] JP 2003-331908 Public Relations

[0010] [Non-Patent Document 1] Green synthesis of lignin nano- and micro-particles: Physicochemical characterization, bioactive properties and cytotoxicity assessment, International Journal of Biological Macromolecules 163 (2020) 1798-1809 [Non-patent document 2] Understanding Lignin Aggregation Processes. A Case Study: Budesonide Entrapment and Stimuli Controlled Release from Lignin Nanoparticles, ACS Sustainable Chem. Eng. 2018, 6, 9342-9351 Summary of the Invention [Problem to be solved by the invention]

[0011] The problem to be solved by the present invention is to provide kraft lignin that blocks light in the ultraviolet region, and to provide cosmetics, inks, printed materials, paints, automotive paints, coatings, plastics, fibers, films, resists for black matrices, resists for photospacers, and cured products thereof, which contain kraft lignin that has the ability to absorb light in the ultraviolet region. [Means for solving the problem]

[0012] As a result of intensive research to solve the above-mentioned problems, the inventors have found that kraft lignin having a specific peak in the infrared absorption spectrum measured by the attenuated total reflection (ATR) method, which is one of the infrared spectroscopy methods, i.e., a Fourier transform infrared spectrophotometer (hereinafter referred to as ATR-FT-IR) equipped with an ATR unit, can be measured by a spectrophotometer to measure L * The inventors have found that the above-mentioned problems can be solved by using the compound in cosmetics because it has a high UV absorption capacity and a high luminance.

[0013] That is, the present invention includes the following.

[0014] [1] Kraft lignin characterized in that in an infrared absorption spectrum measured by ATR-FT-IR, the ratio of the area of the absorption peak at 3000 to 3600 cm-1 to the area of the absorption peak at 1480 to 1540 cm-1 (1480 to 1540 cm-1 / 3000 to 3600 cm-1) is in the range of 3.0 to 6.0, and in color measurement measured by a spectrophotometer, the L* value is in the range of 61 to 80. [2] Kraft lignin according to 1, having a median diameter D50 of 0.1 to 0.8 μm. [3] According to the ISO 24443 measurement method, the applied amount of kraft lignin is 1.0 mg / cm 2 3. The kraft lignin according to 1 or 2, wherein the SPF (Sun Protection Factor) value measured using an SPF (Sun Protection Factor) analyzer is in the range of 10 to 50. [4] Kraft lignin according to any one of 1 to 3, wherein the PA (Protection Grade of UVA) value measured using an SPF (Sun Protection Factor) analyzer is in the range of 10 to 50 when the amount of kraft lignin applied per unit area is 1.0 mg / cm2, according to the ISO 24443 measurement method. [5] Kraft lignin according to any one of 1 to 4, having an active radical scavenging ability of 2,2-diphenyl-1-picrylhydrazyl (DPPH) per unit weight of the kraft lignin of 1.0 to 3.0 mg DPPH / mg. [6] A step of dissolving kraft lignin in an organic solvent to obtain a kraft lignin solution; Next, adding ice or ice water to the kraft lignin solution, or adding the kraft lignin solution to ice or ice water to precipitate kraft lignin, thereby obtaining precipitated lignin; Next, a step of filtering, washing, and drying the precipitated kraft lignin to obtain kraft lignin; 6. The method for producing kraft lignin according to any one of 1 to 5, characterized in that: [7] A step of dissolving kraft lignin in an organic solvent to obtain a kraft lignin solution; Next, adding a water-soluble metal salt aqueous solution to the kraft lignin solution, or adding the kraft lignin solution to a water-soluble metal salt aqueous solution to precipitate kraft lignin; Next, a step of filtering, washing, and drying the precipitated kraft lignin to obtain kraft lignin; 6. The method for producing kraft lignin according to any one of 1 to 5, characterized in that: [8] The present invention provides cosmetics, inks, printed matter, paints, automotive paints, coatings, plastics, fibers, films, resists for black matrices, resists for photospacers, and cured products thereof, each containing the kraft lignin according to any one of 1 to 5. [Effects of the Invention]

[0015] The kraft lignin of the present invention has a high SPF (Sun Protection Factor) value and a high UVA (Protection Grade of UVA) value, and has a high ultraviolet scattering and reflection ability. *Because of its high UV absorption, 2,2-diphenyl-1-picrylhydrazyl (DPPH) is suitable for use in white cosmetics, particularly sunscreens, foundations, face packs, and skin care creams. Furthermore, because of its high radical scavenging ability, when used in cosmetics, it is effective for anti-aging, anti-wrinkle, and anti-blemish. Furthermore, because of its high UV absorption, it can be used as a colorant and additive in a wide range of applications, including inks, printed materials, paints, automotive paints, coatings, plastics, fibers, films, black matrix resists, photospacer resists, and their cured products. [Brief explanation of the drawings]

[0016] [Figure 1] FIG. 1 shows an infrared absorption spectrum of the kraft lignin of the present invention measured by ATR-FT-IR. DETAILED DESCRIPTION OF THE INVENTION

[0017] The following embodiments of the present invention merely represent some of the embodiments of the present invention, and the present invention is not limited to the described contents as long as the gist of the invention is not significantly deviated from.

[0018] [Lignin] Lignin is one of the main components of plants, and is a phenolic polymer compound found in large amounts in conifers, broad-leaved trees, and grasses. It functions to bond fibers together in the plant cell walls. In the papermaking process, lignin is obtained from black liquor, a by-product of cooking wood chips to produce pulp.

[0019] [Kraft lignin] Kraft lignin is a type of lignin. Lignin has different chemical structures depending on the cooking method. As a result, its solubility in solvents, including water, also varies greatly. The present invention relates to kraft lignin. Kraft lignin is obtained from black liquor, a by-product of the kraft cooking process when pulp is obtained from wood chips. Unlike lignin sulfonates, which are lignins obtained by the existing sulfite cooking process, kraft lignin differs in that it is less soluble in water, has a low molecular weight, contains many thiol groups, and has few sulfonic acid groups.

[0020] The kraft lignin of the present invention is characterized by an infrared absorption spectrum measured by ATR-FT-IR, in which the ratio of the area of the absorption peak at 3000-3600 cm-1 to the area of the absorption peak at 1480-1540 cm-1 (1480-1540 cm-1 / 3000-3600 cm-1) is in the range of 3.0 to 6.0.Unlike known kraft lignins, the kraft lignin exhibits the above-mentioned characteristic infrared absorption spectrum due to the presence of many hydroxyl groups on the surface.The measurement conditions for ATR-FT-IR are described below.

[0021] FT-IR spectroscopy was performed using a Fourier transform infrared spectrophotometer FT / IR-6100 manufactured by JASCO Corporation equipped with an ATR unit.

[0022] The kraft lignin of the present invention is characterized by a large amount of hydroxyl groups involved in antioxidant activity, and the amount of hydroxyl groups is measured by ATR-FT-IR at a wavelength of 3000 to 3600 cm, which indicates the hydroxyl group. -1 The area of the peak and the area of the peak at 1480-1540 cm, which indicates hydrocarbon groups -1 The peak area ratio was calculated.

[0023] The amount of hydroxyl groups is in the range of 2.0 to 5.0 in terms of the area ratio, and the higher the amount of hydroxyl groups, the higher the antioxidant capacity, because the antioxidant capacity depends on the amount of phenolic hydroxyl groups that capture free radicals.

[0024] In ATR-FT-IR, only the part that comes into contact with the prism is reflected in the measurement results, so the 3000-3600 cm wavelength range, which indicates hydroxyl groups, is observed in the finely divided kraft lignin. -1 The area of the peak and the area of the peak at 1480-1540 cm, which indicates hydrocarbon groups -1 The area ratio of the peaks increases.

[0025] The kraft lignin of the present invention is characterized by a median diameter D50 of 0.1 to 0.8 μm. While general kraft lignins have a brownish hue when the median diameter D50 is in the range of 0.1 to 0.8 μm, the kraft lignin of the present invention has a whitish hue, and in color measurement, * The kraft lignin of the present invention is characterized by a color having a D50 value in the range of 61 to 80. The kraft lignin of the present invention preferably has a D50 of 0.15 to 0.6 μm. The L* value is preferably 65 to 80.

[0026] Furthermore, when the amount of kraft lignin applied was 1 mg / cm2 per unit area, the SPF value measured using an SPF analyzer was in the range of 10 to 50, according to the ISO 24443 measurement method, demonstrating that the UV blocking ability is far superior to that of known kraft lignins.

[0027] Furthermore, it was also found that the kraft lignin of the present invention has a high active radical scavenging ability of 2,2-diphenyl-1-picrylhydrazyl (DPPH) per unit weight of kraft lignin of 1.0 to 3.0 mgDPPH / mg.

[0028] Therefore, the kraft lignin of the present invention has a whitish hue and high UV-blocking ability, making it suitable for use in sunscreens, foundations, face packs, and skin care creams. Furthermore, due to the high active radical scavenging ability of 2,2-diphenyl-1-picrylhydrazyl (DPPH), when used in cosmetics, it is effective for anti-aging, anti-wrinkle, and anti-blemish. Furthermore, due to its high UV-absorbing ability, it can be used as a colorant or additive in a wide range of applications, including inks, printed materials, paints, automotive paints, coatings, plastics, fibers, films, black matrix resists, photospacer resists, and their cured products.

[0029] [Kraft lignin manufacturing method] The kraft lignin of the present invention can be obtained by dissolving kraft lignin in a good solvent such as an organic solvent, and then adding ice, ice water, or a water-soluble metal salt aqueous solution to the kraft lignin solution, or by adding the kraft lignin solution dropwise to ice, ice water, or a water-soluble metal salt aqueous solution.

[0030] The kraft lignin of the present invention is obtained by dissolving the raw material kraft lignin in an organic solvent and then reprecipitation. In a typical reprecipitation process in which a miscible poor solvent is added to a polymer solution to precipitate the polymer, the precipitated polymer has a size of 1 mm to several centimeters. The reason for the precipitation of such large sizes is that the polymer precipitates in the form of sticky fine particles during precipitation and self-aggregates.

[0031] In the present invention, ice, ice water, or a water-soluble metal salt solution is used to prevent the self-aggregation and obtain submicron-sized kraft lignin.

[0032] Specifically, ice, ice water, or a water-soluble metal salt aqueous solution is added as the poor solvent. When ice is added, the precipitation occurs in a cooled state by the ice, so the precipitated microparticles lose their adhesiveness, the precipitated microparticles do not aggregate, the good solvent is removed, and the kraft lignin of the present invention can be obtained in the size of precipitated microparticles. When ice water is added, the kraft lignin of the present invention can be obtained in the form of precipitated microparticles for the same reason as when ice is added. The ice water used in the present invention refers to 20 parts by weight or more of ice added to 100 parts by weight of water, and has a temperature of 4°C or below.

[0033] When a water-soluble metal salt aqueous solution is added as a poor solvent, the dissolved salt penetrates between the adhesive fine particles, preventing the precipitated fine particles from aggregating, and kraft lignin can be obtained in the form of precipitated fine particles.

[0034] Organic solvents that can be used in the production of kraft lignin of the present invention include methanol, ethanol, ethylene glycol, diethylene glycol, triethylene glycol, polyethylene glycol, propylene glycol, dipropylene glycol, tripropylene glycol, polypropylene glycol, glycerin, dimethylformamide (DMF), dimethyl sulfoxide (DMSO), and N-methyl-2-pyrrolidinone (NMP), with ethanol and ethylene glycol being particularly preferred. The organic solvent is used in a weight ratio of 2 to 20 times the raw material kraft lignin. If the kraft lignin dissolves, using a small amount of solvent is cost-effective. However, considering the cost and viscosity of the solution, it is preferable to use the organic solvent in a ratio of 3 to 10 times.

[0035] Examples of water-soluble metal salts that can be used in the water-soluble metal salt aqueous solution used to produce kraft lignin of the present invention include sodium chloride, potassium chloride, calcium chloride, magnesium chloride, sodium sulfate, potassium sulfate, calcium sulfate, magnesium sulfate, sodium acetate, potassium acetate, calcium acetate, magnesium acetate, sodium phosphate, potassium phosphate, calcium phosphate, magnesium phosphate, sodium nitrate, potassium nitrate, calcium nitrate, and magnesium nitrate, but a mixture of these salts may also be used. From the perspective of cost, sodium chloride is most preferred. The water-soluble metal salt aqueous solution can be used at a concentration up to a saturated aqueous solution by weight, but is preferably used at a concentration of 1 to 20%.

[0036] The dissolution temperature of the organic solvent used in producing the kraft lignin of the present invention significantly affects the active radical scavenging ability of the resulting kraft lignin, so dissolution is preferably carried out at 100°C or below. More preferably, room temperature is preferred to maintain the active radical scavenging ability. Similarly, the temperature during precipitation is preferably controlled at 10°C or below, as this significantly affects particle size. Therefore, the kraft lignin of the present invention is precipitated by adding ice to the kraft lignin solution, or vice versa, by dripping or pouring the kraft lignin solution into ice. The kraft lignin of the present invention exhibits a whitish hue because the particles are prepared without a heating step that would result in coloration. Furthermore, this production process is characterized by the fact that kraft lignin particles can be easily prepared batchwise without requiring a complex continuous process.

[0037] Furthermore, the substance dropped or added for particle precipitation needs only to be a poor solvent for precipitating kraft lignin. However, in a water-only system, the viscous material immediately after precipitation aggregates, forming large brown particles. Therefore, when using water as a poor solvent, adding a dispersant, additive, or a mixture of water and an organic solvent makes it possible to produce small particles. Regarding precipitation conditions, systems other than those mentioned above can also be used as long as the solubility of kraft lignin is reduced and a state in which precipitation is possible is achieved.

[0038] As the poor solvent, ice or cold water can be used, and ice is particularly suitable because it is easy to suppress the viscosity of the particles immediately after precipitation. When ice, ice water, or cold water is used, additional equipment such as an ice maker or a cooling machine is required, so in consideration of production costs, it is preferable to use a water-soluble metal salt aqueous solution described below.

[0039] Examples of the water-soluble metal salt aqueous solution that can be used include sodium chloride, potassium chloride, calcium chloride, magnesium chloride, sodium sulfate, potassium sulfate, calcium sulfate, magnesium sulfate, sodium acetate, potassium acetate, calcium acetate, magnesium acetate, sodium phosphate, potassium phosphate, calcium phosphate, magnesium phosphate, sodium nitrate, potassium nitrate, calcium nitrate, and magnesium nitrate. Of these water-soluble metal salt aqueous solutions, sodium chloride is most preferred in terms of cost. The water-soluble metal salt aqueous solution can be used at a concentration up to a saturated aqueous solution by weight, but is preferably used at a concentration of 1 to 20%.

[0040] In addition to cosmetics, the kraft lignin of the present invention can be used in a wide range of fields, including inks, printed materials, paints, automotive paints, coatings, plastics, fibers, films, resists for black matrices, resists for photospacers, and cured products thereof. The applications detailed below are examples, and the kraft lignin of the present invention can be used in any application as an additive for the purposes of providing effects such as UV protection, antioxidant properties, and coloring.

[0041] (Cosmetic use) When the kraft lignin of the present invention is used as an antioxidant or UV protection agent in foundations, creams, or sunscreen compositions, clay minerals such as talc, synthetic phlogopite, mica, and kaolin are used as extender pigments, and synthetic inorganic powders such as titanium oxide, boron nitride, zinc oxide, aluminum hydroxide, zinc chloride, lithium silicate, magnesium silicate, sodium silicate, tin oxide, iron oxide, barium sulfate, silica, and hydrated silica are used. Silicone polymers and polymer microparticles are used to provide slipperiness. Silicone polymers include dimethicone, (stearoxymethicone / dimethicone) copolymer, carboxydecyltrisiloxane, hydrogen dimethicone, tetrahydrotetramethylcyclotetrasiloxane, aminopropyltriethoxysilane, cyclomethicone, dimethiconol, trifluoroalkyldimethyltrimethylsiloxysilicate, hydrogen dimethicone, and methicone. Polymer microparticles include nylon-12, (methyl methacrylate / acrylonitrile) copolymer, methyl methacrylate, and (hydrogenated polybutadiene / glycol / HDI) copolymer.

[0042] Antioxidants and preservatives include BHT, phenoxyethanol, tocopherol, chlorphenexin, methylparaben, and ethylparaben. As moisturizing agents, sodium acetyl hyaluronate, sodium hyaluronate, water-soluble collagen, etc. are used.

[0043] Examples of organic substances that form the organic layer include tri(caprylic / capric)glyceryl, stearic acid, dextrin palmitate, ethylhexylglycerin, glycerin, isobutane, isopentane, tetracene, lauroyl lysine, ascorbic acid, olive fruit oil, hydroxyproline, isotridecyl isononanoate, cetyl ethylhexanoate, ethylhexylglycerin, diethylhexyl succinate, squalane, stearic acid, sorbitan sesquistearate, triethylhexanoin, hydrogenated polyisobutene, hydrogenated lecithin, PG dicaprylate, hydrogenated polyisobutene, hydrogenated castor oil isostearate, sorbitan isostearate, diisostearyl malate, tri(caprylic / capric)glyceryl, BG, sodium lauroyl aspartate, DPG, and isostearyl alcohol. As the ultraviolet protection agent, in addition to ethylhexyl methoxycinnamate, the above-mentioned titanium oxide, zinc oxide, etc., as synthetic inorganic powders, are used. When the above materials are used in an emulsified form, water is used as the medium. For example, when the kraft lignin of the present invention is used as a foundation, the above-mentioned raw materials are mixed, molded, and used as the foundation. The kraft lignin of the present invention can be used in cosmetics, particularly as a sunscreen. The sunscreen preferably contains the UV-blocking agent of the present invention, an oily component, and an aqueous component such as water or alcohol, and is in the form of a liquid, emulsion, gel, or cream. The sunscreen can also be used in packs, masks, nonwoven fabrics, and other products containing the sunscreen.

[0044] The oily component can be one or more of higher alcohols, hydrocarbon oils, ester oils, silicones, etc. Hydrocarbon waxes can also be included. When the sunscreen contains an oily component, the content of the oily component is preferably 1 to 99 wt % of the total weight of the sunscreen.

[0045] The aqueous component can be water used in cosmetics, quasi-drugs, etc., and can be purified water, ion-exchanged water, tap water, etc. The alcohol can be water-soluble alcohol, and can be one or more selected from lower alcohols, polyhydric alcohols, polyhydric alcohol polymers, glycerin monoalkyl ethers, sugar alcohols, monosaccharides, oligosaccharides, and derivatives thereof.

[0046] In addition to the above-mentioned components, the sunscreen may contain, as needed, powders other than the UV-blocking agent of the present invention, UV-absorbers other than the UV-blocking agent of the present invention, surfactants, water-soluble polymers, moisturizers, film-forming agents, sequestering agents, amino acids, organic amines, polymer emulsions, pH adjusters, skin nutrients, vitamins, antioxidants, fragrances, and the like. Powders other than the kraft lignin of the present invention can be any known and commonly used powder used in ordinary sunscreens, including inorganic powders such as magnesium oxide, calcium carbonate, talc, synthetic mica, mica, kaolin, montmorillonite, zeolite, ceramic powder, boron nitride, and alumina; inorganic pigments such as iron oxide, titanium oxide, zinc oxide, and ultramarine; organic pigments such as Red No. 202, Red No. 204, Yellow No. 4, Yellow No. 202, Blue No. 1, Blue No. 201, Green No. 3, Green No. 204, Orange No. 201, and Orange No. 207; natural pigments such as turmeric pigments, carotene pigments, cochineal pigments, monascus pigments, chlorophyll pigments, spirulina pigments, and squid ink pigments; lakes of natural pigments; and effect pigments such as titanium oxide-coated mica, titanium oxide-coated mica, and titanium oxide-coated glass.

[0047] As the ultraviolet absorber other than the ultraviolet blocking agent of the present invention, benzoic acid-based ultraviolet absorbers, salicylic acid-based ultraviolet absorbers, cinnamic acid-based ultraviolet absorbers, benzophenone-based ultraviolet absorbers, etc. can be used.

[0048] The surfactant may be anionic surfactant, cationic surfactant, amphoteric surfactant, lipophilic nonionic surfactant, hydrophilic nonionic surfactant, etc. The content of the surfactant is preferably 5 to 15% by mass relative to the total mass of the cosmetic composition of the present invention.

[0049] As the water-soluble polymer, natural and synthetic water-soluble polymers can be used, and natural polymers include plant-based polymers such as gum arabic, guar gum, and starch, microbial polymers, and animal-based polymers such as collagen and gelatin. Synthetic polymers include starch-based polymers, cellulose-based polymers, alginic acid-based polymers, vinyl-based polymers, and acrylic-based polymers.

[0050] As the moisturizing agent, proteins, mucopolysaccharides, collagen, elastin, and keratin can be used.

[0051] As the film-forming agent, anionic film-forming agents, cationic film-forming agents, and nonionic film-forming agents can be used. Examples of usable sequestering agents include tetrasodium edetate, sodium citrate, sodium polyphosphate, and ascorbic acid. Examples of usable amino acids include neutral amino acids, basic amino acids, and amino acid derivatives. Examples of usable organic amines include diethanolamine, triethanolamine, and triisopropanolamine. Examples of usable polymer emulsions include acrylic resin emulsions, natural rubber latex, and silicone emulsions. Examples of usable pH adjusters include buffers such as sodium lactate, sodium citrate, and sodium succinate. Examples of usable vitamins include vitamin A, vitamin B1, vitamin B2, vitamin C, and vitamin E. Examples of usable antioxidants include tocopherols, dibutylhydroxytoluene, and gallic acid esters. Examples of usable fragrances include those commonly used in sunscreens.

[0052] Further, other ingredients that can be used include antiseptics, anti-inflammatory agents, whitening agents, activators, blood circulation promoters, anti-inflammatory agents, bactericidal agents, and antiviral agents.

[0053] The sunscreen can be prepared by dissolving the components while stirring at room temperature or at 20 to 80°C. Known stirring methods can be used, including, for example, a blade stirrer, a disperser, or a homomixer. The sunscreen can be obtained by cooling the dissolved and homogenized mixture to room temperature. Depending on the formulation of the cosmetic composition, a liquid cosmetic in a liquid, paste, gel, or other form can be obtained upon cooling.

[0054] (Paint application) When the kraft lignin of the present invention is used in paint as a colorant, UV protection agent, or antioxidant, various resins can be used as the paint, such as acrylic resin, melamine resin, epoxy resin, polyester resin, polyurethane resin, polyamide resin, and phenolic resin.

[0055] Solvents used in paints include aromatic solvents such as toluene, xylene, and methoxybenzene; acetate ester solvents such as ethyl acetate, butyl acetate, propylene glycol monomethyl ether acetate, and propylene glycol monoethyl ether acetate; propionate solvents such as ethoxyethyl propionate; alcohol solvents such as methanol, ethanol, propanol, n-butanol, and isobutanol; ether solvents such as butyl cellosolve, propylene glycol monomethyl ether, diethylene glycol ethyl ether, and diethylene glycol dimethyl ether; ketone solvents such as methyl ethyl ketone, methyl isobutyl ketone, and cyclohexanone; aliphatic hydrocarbon solvents such as hexane; nitrogen compound solvents such as N,N-dimethylformamide, γ-butyrolactam, n-methyl-2-pyrrolidone, aniline, and pyridine; lactone solvents such as γ-butyrolactone; carbamate esters such as a 48:52 mixture of methyl carbamate and ethyl carbamate; and water. Suitable solvents include polar solvents such as propionates, alcohols, ethers, ketones, nitrogen compounds, lactones, and water, which are soluble in water.

[0056] When kraft lignin is dispersed or mixed in a liquid resin to form a resin coating composition, conventional additives such as dispersants, fillers, coating aids, driers, plasticizers, and / or auxiliary compounds can be used. This can be achieved by dispersing or mixing each component alone or several together, by collecting all the components, or by adding them all at once.

[0057] Dispersing machines for dispersing the kraft lignin-containing composition of the present invention prepared for the intended use as described above include, but are not limited to, known dispersing machines such as a disperser, homomixer, paint conditioner, scandex, bead mill, attritor, ball mill, two-roll mill, three-roll mill, and pressure kneader. The compound is dispersed by adding resin and solvent to achieve a viscosity that allows dispersion using these dispersing machines. The resulting high-concentration paint base has a solids content of 5 to 20%, and is further mixed with resin and solvent for use as a paint.

[0058] (Automotive paint application) When the kraft lignin of the present invention is used as a colorant in an automobile paint, various resins can be used in the paint, such as acrylic resin, melamine resin, epoxy resin, polyester resin, polyurethane resin, polyamide resin, and phenolic resin.

[0059] In recent years, water-based paints or powder electrodeposition paints have become more suitable for automobile paints in light of VOC reduction.

[0060] When kraft lignin is dispersed or mixed in a liquid resin or dry blend to form a resin coating composition, conventional additives such as dispersants, fillers, coating aids, driers, plasticizers, and / or auxiliary compounds can be used. This can be achieved by dispersing or mixing each component alone or several together, by collecting all the components, or by adding them all at once.

[0061] (For inkjet ink use) The kraft lignin of the present invention can be suitably used in inkjet inks, and in particular, can be suitably used in aqueous inkjet inks as an aqueous compound dispersion obtained by dispersing the kraft lignin using a dispersant, etc. The aqueous compound dispersion can be prepared by preparing a high-concentration aqueous dispersion (compound paste) of the condensed polycyclic organic compound of the present invention, diluting it with a water-soluble solvent and / or water, and adding other additives as necessary.

[0062] The method for dispersing the kraft lignin of the present invention in the water-soluble solvent and / or water to obtain a compound paste is not particularly limited, and it is preferable to use a known dispersion method. The dispersant used may be a known compound dispersant for dispersing in water, or a surfactant may be used. The compound dispersant is preferably an aqueous resin, and preferred examples include polyvinyl alcohols, polyvinylpyrrolidones, urethane resins having anionic or cationic groups, and radical copolymer resins having anionic or cationic groups. Examples of radical copolymer resins having anionic or cationic groups include acrylic resins such as acrylic acid-acrylic acid ester copolymers, styrene-acrylic acid copolymers, styrene-methacrylic acid copolymers, styrene-methacrylic acid-acrylic acid ester copolymers, styrene-α-methylstyrene-acrylic acid copolymers, styrene-α-methylstyrene-acrylic acid-acrylic acid ester copolymers, and other styrene-acrylic resins, styrene-maleic acid copolymers, styrene-maleic anhydride copolymers, vinylnaphthalene-acrylic acid copolymers, and salts of these aqueous resins.

[0063] Examples of compounds for forming salts of the copolymer include alkali metal hydroxides such as sodium hydroxide, potassium hydroxide, and lithium hydroxide, as well as diethylamine, ammonia, ethylamine, triethylamine, propylamine, isopropylamine, dipropylamine, butylamine, isobutylamine, triethanolamine, diethanolamine, aminomethylpropanol, and morpholine. The amount of these salt-forming compounds used is preferably equal to or greater than the neutralization equivalent of the copolymer.

[0064] Of course, commercially available products can also be used, such as the Ajisper PB series from Ajinomoto Fine-Techno Co., Ltd., the Disperbyk series and BYK series from BYK Japan Co., Ltd., and the EFKA series from BASF Japan Ltd.

[0065] Moreover, examples of the dispersion method include the following (1) and (2). (1) A method for preparing a kraft lignin paste by adding kraft lignin to an aqueous medium containing a kraft lignin dispersant and water, and then dispersing the kraft lignin in the aqueous medium using a stirring and dispersing device. (2) A method in which kraft lignin and a kraft lignin dispersant are mixed using a kneading machine such as a two-roll mill or a mixer, and the resulting mixture is added to an aqueous medium containing water, followed by preparing a compound paste using a stirring and dispersing device. (Toner use) The kraft lignin of the present invention can also be used in toner coloring applications. When a toner for developing an electrostatic image is to be obtained, a film-forming thermoplastic resin that is solid at room temperature, such as polyester resin, polyamide resin, styrene resin or acrylic resin, is used as the dispersing resin.

[0066] The toner for developing electrostatic images produced using the kraft lignin of the present invention as a constituent component can be used as a one-component magnetic toner containing a magnetic material (color toner for magnetic one-component development), a non-magnetic one-component color toner not containing a magnetic material (color toner for non-magnetic one-component development), or a color toner for a two-component color developer mixed with a carrier (color toner for two-component development).

[0067] The one-component color magnetic toner can be composed of, for example, a colorant, a binder resin, a magnetic powder, and other additives such as a charge control agent (CCA) and a release agent, just like those commonly used.

[0068] The amount of the kraft lignin of the present invention used in the toner for developing electrostatic images is not particularly limited, but it is preferably used in a proportion of 0.5 to 25 parts by mass per 100 parts by mass of binder resin, and more preferably 4 to 10 parts by mass per 100 parts by mass of binder resin in order to further enhance the charging performance of the colorant itself.

[0069] As the binder resin used in the toner for developing electrostatic images, any of the known and commonly used resins exemplified as the thermoplastic resins can be used, but any of synthetic resins, natural resins, natural rubbers, synthetic rubbers, synthetic waxes, etc. that exhibit adhesive properties under application of heat or pressure can also be used.

[0070] (Black matrix and photospacer applications) The kraft lignin of the present invention can be used to form a pattern for the black matrix portion of a color filter or for a photospacer for an LCD by a known method. Typically, a photosensitive composition for pattern formation containing the kraft lignin of the present invention and a photosensitive resin as essential components can be obtained.

[0071] To prepare the photosensitive composition for pattern formation, for example, the kraft lignin of the present invention, a photosensitive resin, a photopolymerization initiator, and an organic solvent for dissolving the resin are mixed as essential components. A common method for producing the composition is to prepare a dispersion using the kraft lignin of the present invention, an organic solvent, and, if necessary, a dispersant, and then add the photosensitive resin and other components thereto.

[0072] The kraft lignin of the present invention used in the photosensitive composition for pattern formation may optionally contain a yellow compound. Examples of dispersants that may be used include BYK-Chemie's DISPERBYK (registered trademark) 130, 161, 162, 163, 170, LPN-6919, and LPN-21116. Leveling agents, coupling agents, cationic surfactants, and the like may also be used.

[0073] Examples of organic solvents include aromatic solvents such as toluene, xylene, and methoxybenzene; acetate ester solvents such as ethyl acetate, butyl acetate, propylene glycol monomethyl ether acetate, and propylene glycol monoethyl ether acetate; propionate solvents such as ethoxyethyl propionate; alcohol solvents such as methanol and ethanol; ether solvents such as butyl cellosolve, propylene glycol monomethyl ether, diethylene glycol ethyl ether, and diethylene glycol dimethyl ether; ketone solvents such as methyl ethyl ketone, methyl isobutyl ketone, and cyclohexanone; aliphatic hydrocarbon solvents such as hexane; nitrogen compound solvents such as N,N-dimethylformamide, γ-butyrolactam n-methyl-2-pyrrolidone, aniline, and pyridine; lactone solvents such as γ-butyrolactone; carbamate esters such as a 48:52 mixture of methyl carbamate and ethyl carbamate; and water. Suitable organic solvents include polar solvents such as propionates, alcohols, ethers, ketones, nitrogen compounds, lactones, and water, which are soluble in water.

[0074] Examples of usable photosensitive resins include thermoplastic resins such as urethane resins, acrylic resins, polyamic acid resins, polyimide resins, styrene-maleic acid resins, and styrene-maleic anhydride resins; and photopolymerizable monomers such as bifunctional monomers such as 1,6-hexanediol diacrylate, ethylene glycol diacrylate, neopentyl glycol diacrylate, triethylene glycol diacrylate, bis(acryloxyethoxy)bisphenol A, and 3-methylpentanediol diacrylate; and polyfunctional monomers such as trimethylolpropane triacrylate, pentaerythritol triacrylate, tris(2-hydroxyethyl)isocyanate, dipentaerythritol hexaacrylate, and dipentaerythritol pentaacrylate. Examples of photopolymerization initiators include acetophenone, benzophenone, benzil dimethyl ketal, benzoyl peroxide, 2-chlorothioxanthone, 1,3-bis(4'-azidobenzal)-2-propane, 1,3-bis(4'-azidobenzal)-2-propane-2'-sulfonic acid, and 4,4'-diazidostilbene-2,2'-disulfonic acid. The photosensitive composition for black matrix thus prepared can be subjected to pattern exposure with ultraviolet light through a photomask, and then the unexposed portions can be washed with an organic solvent, alkaline water, or the like to form a black matrix or spacer. [Example]

[0075] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples. In the following examples, "%" in the compositions means "% by weight."

[0076] (Particle size distribution measurement method) The particle size distribution was measured using Microtrac Nanowave II manufactured by Microtrac-Bell Inc. The measurement medium was water, and the particle size distribution was measured by frequency analysis of dynamic light scattering from a semiconductor laser with a wavelength of 780 nm.

[0077] (Color measurement) An integrating sphere unit ISN-923 was attached to a JASCO V-770 spectrophotometer, and 0.1 g of the measurement sample was placed in a powder cell PSH-002. From the measured reflectance spectrum from 360 to 830 nm, color measurements were performed using the L*a*b* color system in accordance with JIS Z 8781-4: 2013, CIE No. 15: 2004, ISO 11664-4: 2008, and ASTM E308: 2008.

[0078] (SPF measurement method) SPF measurements were performed in accordance with ISO 24443 using a Labsphere UV-2000S SPF analyzer. The sample was applied to a HERIOPLATE HD6 at a rate of 1.0 mg / cm2 to create an SPF measurement sample. For each SPF measurement sample, transmittance measurements were performed at nine different measurement points, and the SPF was calculated from the transmittance values.

[0079] (hydroxyl group amount measurement) The amount of hydroxyl groups involved in the antioxidant activity of kraft lignin is 3000-3600 cm -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was measured using a Fourier transform infrared spectrophotometer FT / IR-6100 manufactured by JASCO Corporation. The measurement was performed using an ATR adapter attached to the kraft lignin powder as is. The amount of hydroxyl groups was expressed as the ratio of hydroxyl groups to hydrocarbon groups. The ratio of hydroxyl groups to hydrocarbon groups was calculated using the 3000-3600 cm -1 The area of the peak and the area of the peak at 1480-1540 cm, which indicates hydrocarbon groups -1 The peak area ratio was calculated.

[0080] (active radical scavenging ability measurement) The active radical scavenging activity of kraft lignin, which is involved in its antioxidant activity, was measured using 2,2-diphenyl-1-picrylhydrazyl (DPPH). The measurement method and results are shown below. Isopropanol was added to 20 mg of kraft lignin to prepare a 20 mg / L crude dispersion in isopropanol (IPA). This crude dispersion was ultrasonically dispersed for 30 seconds using a Hielscher UP400S to obtain a kraft lignin / IPA dispersion. Separately, a 0.20 mM 2,2-diphenyl-1-picrylhydrazyl (DPPH) IPA solution was prepared and mixed with the kraft lignin / IPA dispersion in equal amounts. The resulting solution was allowed to stand at room temperature for 2 hours. The absorbance at 518 nm of the solution after standing was measured, and the residual DPPH content was calculated from a calibration curve constructed from the absorbance at 518 nm of 0.20 mM, 0.10 mM, 0.05 mM, and 0.02 mM DPPH / IPA solutions. The DPPH active radical scavenging ability of kraft lignin was calculated by subtracting the residual DPPH content from the initial DPPH concentration of 0.1 mM. The DPPH radical scavenging capacity was expressed as the scavenging capacity of DPPH active radicals per 1 mg of kraft lignin, and its unit was DPPH / mg.

[0081] Example 1 10 parts by weight of kraft lignin (manufactured by Nippon Paper Industries Co., Ltd.) was dissolved in 40 parts by weight of ethanol (first-grade reagent, manufactured by Fujifilm Wako Pure Chemical Industries, Ltd.), and the insoluble matter was filtered and removed using filter paper. 200 parts by weight of ice was added to the resulting filtrate while stirring, causing the kraft lignin to precipitate. The resulting kraft lignin suspension was filtered, and the filter residue was washed with 200 parts by weight of ion-exchanged water. Filtration and washing with ion-exchanged water were repeated twice, and the kraft lignin wet cake was vacuum-dried at 40°C for 2 hours. The resulting dried product was pulverized in a mortar to obtain 3 parts by weight of kraft lignin.

[0082] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of kraft lignin were measured. The results were: median diameter 0.581 μm, color 0.581 μm, * =73.39, a * =3.14, b * =20.69, SPF value 21.6, PA value 20.8, 3000~3600cm -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm-1 / 3000~3600cm -1 ) was 3.30, and the active radical scavenging activity was 1.57 mg DPPH / mg.

[0083] Example 2 Four parts by weight of kraft lignin was obtained in the same manner as in Example 1, except that ethanol was replaced with methanol (first-grade reagent, manufactured by Fujifilm Wako Pure Chemical Industries, Ltd.).

[0084] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of kraft lignin were measured in the same manner as in Example 1. As a result, the median diameter was 0.672 μm, the hue was L*=70.71, a*=3.55, b*=20.53, the SPF value was 17.5, the PA value was 17.0, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 3.62, and the active radical scavenging activity was 1.27 mgDPPH / mg.

[0085] Example 3 8 parts by weight of the product was obtained in the same manner as in Example 1, except that ethanol was replaced with ethylene glycol.

[0086] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of kraft lignin were measured in the same manner as in Example 1. As a result, the median diameter was 0.629 μm, the color was L*=61.05, a*=4.83, b*=17.06, the SPF value was 41.1, the PA value was 38.9, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 4.07 and the active radical scavenging activity was 1.06 mg DPPH / mg.

[0087] Example 4 Seven parts by weight of kraft lignin was obtained in the same manner as in Example 1, except that ethanol was replaced with diethylene glycol.

[0088] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of kraft lignin were measured in the same manner as in Example 1. As a result, the median diameter was 0.308 μm, the color was L*=63.93, a*=4.26, b*=17.37, the SPF value was 22.2, the PA value was 21.1, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 5.00 and the active radical scavenging activity was 1.04 mg DPPH / mg.

[0089] Example 5 8 parts by weight of kraft lignin was obtained in the same manner as in Example 1, except that ethanol was replaced with dimethylformamide.

[0090] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of kraft lignin were measured in the same manner as in Example 1. As a result, the median diameter was 0.648 μm, the color was L*=67.98, a*=3.86, b*=18.29, the SPF value was 11.6, the PA value was 11.4, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 4.61, and the active radical scavenging activity was 0.96 mg DPPH / mg.

[0091] Example 6 8 parts by weight of kraft lignin was obtained in the same manner as in Example 1, except that ethanol was replaced with N,N-dimethylpyrrolidinone.

[0092] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of kraft lignin were measured in the same manner as in Example 1. As a result, the median diameter was 0.505 μm, the color was L*=68.69, a*=3.61, b*=18.21, the SPF value was 15.1, the PA value was 14.8, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 4.64 and the active radical scavenging activity was 1.03 mg DPPH / mg.

[0093] Example 7 10 parts by weight of kraft lignin was dissolved in 40 parts by weight of ethanol, and the insoluble matter was filtered and removed using filter paper. The resulting filtrate was added to 200 parts by weight of ice to precipitate kraft lignin. The kraft lignin suspension was filtered, and the filter residue was washed with 200 parts by weight of ion-exchanged water. Filtration and washing with ion-exchanged water were repeated twice, and the kraft lignin wet cake was vacuum-dried at 40°C for 2 hours. The resulting dried product was pulverized in a mortar to obtain 3 parts by weight of kraft lignin.

[0094] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of kraft lignin were measured in the same manner as in Example 1. As a result, the median diameter was 0.595 μm, the color was L*=72.34, a*=3.28, b*=20.64, the SPF value was 20.6, the PA value was 19.8, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 3.2, and the active radical scavenging activity was 1.50 mg DPPH / mg.

[0095] Example 8 10 parts by weight of kraft lignin was dissolved in 40 parts by weight of industrial alcohol (Solmix AP-7), and the insoluble matter was removed by filtration. 20 parts by weight of ethylene glycol was added to the obtained filtrate, and the mixture was subjected to vacuum distillation at 80°C to obtain 25 parts by weight of an ethylene glycol solution of kraft lignin. 25 parts by weight of 10% saline was added to the obtained ethylene glycol solution of kraft lignin to precipitate the kraft lignin. The kraft lignin suspension was filtered, and the filter residue was washed with 45 parts by weight of ion-exchanged water. Filtration and washing with ion-exchanged water were repeated five times, and the kraft lignin wet cake was dried at 40°C for two hours. The obtained dried product was pulverized in a mixer to obtain 5 parts by weight of kraft lignin.

[0096] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of kraft lignin were measured in the same manner as in Example 1. As a result, the median diameter was 0.595 μm, the color was L*=69.72, a*=3.56, b*=17.73, the SPF value was 23.6, the PA value was 21.8, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 3.4, and the active radical scavenging activity was 1.24 mg DPPH / mg.

[0097] (Comparative Example 1) The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of untreated kraft lignin (manufactured by Nippon Paper Industries Co., Ltd.) were measured in the same manner. The median diameter was 0.823 μm, the color was L*=51.19, a*=6.58, b*=16.41, the SPF value was 7.9, the PA value was 2.3, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 2.83, and the active radical scavenging activity was 0.28 mgDPPH / mg.

[0098] (Comparative Example 2) An attempt was made to prepare fine particles in the same manner as in Example 1, except that ice was replaced with water, but the kraft lignin precipitated in clumps, and it was not possible to prepare particles.

[0099] (Comparative Example 3) An attempt was made to prepare particles in the same manner as in Example 1, except that ethanol was replaced with isopropanol, but the kraft lignin did not dissolve, and fine particles could not be prepared.

[0100] Comparative Example 4 An attempt was made to prepare particles in the same manner as in Example 1, except that ethanol was replaced with normal butanol, but the kraft lignin did not dissolve, and fine particles could not be prepared.

[0101] (Comparative Example 5) Fine particles were prepared in the same manner as in Example 1, except that ethanol was replaced with acetone, to obtain 6 parts by weight of kraft lignin fine particles.

[0102] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of the kraft lignin particles were measured in the same manner as in Example 1. As a result, the median diameter was 2.11 μm, the color was L*=54.25, a*=6.05, b*=17.39, the SPF value was 25.5, the PA value was 23.3, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 3.66, and the active radical scavenging activity was 0.77 mgDPPH / mg.

[0103] (Comparative Example 6) An attempt was made to prepare fine particles in the same manner as in Example 1, except that ethanol was replaced with methyl ethyl ketone, but the kraft lignin precipitated in clumps, and it was not possible to prepare particles.

[0104] (Comparative Example 7) An attempt was made to prepare fine particles in the same manner as in Example 1, except that ethanol was replaced with methyl isobutyl ketone, but the kraft lignin did not dissolve, and fine particles could not be prepared.

[0105] (Comparative Example 8) An attempt was made to prepare fine particles in the same manner as in Example 1, except that ethanol was replaced with butyl cellosolve, but the kraft lignin precipitated in clumps, and fine particles could not be prepared.

[0106] Comparative Example 9 9 parts by weight of kraft lignin fine particles were obtained in the same manner as in Example 1, except that ethanol was replaced with butyl carbitol.

[0107] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of the kraft lignin microparticles were measured in the same manner as in Example 1. As a result, the median diameter was 5.78 μm, the color was L*=60.00, a*=6.84, b*=23.69, the SPF value was 20.7, the PA value was 20.6, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 4.94, and the active radical scavenging activity was 0.61 mgDPPH / mg.

[0108] (Comparative Example 10) 8 parts by weight of kraft lignin fine particles were obtained in the same manner as in Example 1, except that ethanol was replaced with tetrahydrofuran.

[0109] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of the kraft lignin microparticles were measured in the same manner as in Example 1. As a result, the median diameter was 1.92 μm, the color was L*=54.24, a*=6.67, b*=18.57, the SPF value was 29.7, the PA value was 17.6, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 3.64, and the active radical scavenging activity was 0.14 mgDPPH / mg.

[0110] (Comparative Example 11) An attempt was made to prepare fine particles in the same manner as in Example 1, except that ethanol was replaced with hexyl carbitol, but the kraft lignin did not dissolve, and fine particles could not be prepared.

[0111] (Comparative Example 12) 8 parts by weight of kraft lignin fine particles were obtained in the same manner as in Example 1, except that 10 parts by weight of kraft lignin was dissolved in 40 parts by weight of N,N-dimethylpyrrolidinone and then heated at 180°C for 2 hours.

[0112] The median diameter, color, SPF value, PA value, ratio of hydroxyl groups to hydrocarbon groups, and active radical scavenging ability of the kraft lignin microparticles were measured in the same manner as in Example 1. As a result, the median diameter was 0.415 μm, the color was L*=59.57, a*=4.64, b*=16.15, the SPF value was 29.7, the PA value was 18.0, and the active radical scavenging ability was 3000-3600 cm. -1 absorption peak and 1480-1540cm -1 The ratio of the absorption peak area (1480-1540 cm -1 / 3000~3600cm -1 ) was 2.87, and the active radical scavenging activity was 0.904 mgDPPH / mg.

[0113] (Evaluation example 1) Foundation cosmetics using the kraft lignin of the present invention were evaluated. The foundation cosmetic for evaluation was formulated according to the composition shown in Table 1. A comparative evaluation was carried out with the kraft lignin described in Example 8 of the present invention, the untreated kraft lignin described in Comparative Example 1, four commercially available lignin materials, and a commercially available foundation cosmetic. The evaluation was carried out by SPF measurement.

[0114] Table 1 shows the formulation of the foundation used for evaluation.

[0115] [Table 1]

[0116] SPF measurements were performed in accordance with ISO 24443 using a Labsphere UV-2000S SPF analyzer. The sample was applied to a HERIOPLATE HD6 at a rate of 0.5 mg / cm2 to create an SPF measurement sample. For each SPF measurement sample, transmittance measurements were performed at nine different measurement points, and the SPF was calculated from the transmittance values. The evaluation results are shown in Table 2.

[0117] [Table 2]

[0118] (Evaluation example 2) A sunscreen cream using the kraft lignin of the present invention was evaluated. The sunscreen cream for evaluation was formulated according to the composition shown in Table 3. A comparative evaluation was carried out with the kraft lignin described in Example 8 of the present invention, the untreated kraft lignin described in Comparative Example 1, and four commercially available lignin materials. The evaluation was carried out by SPF measurement.

[0119] The evaluation formulations of the sunscreen creams are shown in Table 3.

[0120] [Table 3]

[0121] SPF measurements were performed in accordance with ISO 24443 using a Labsphere UV-2000S SPF analyzer. The sample was applied to a HERIOPLATE HD6 at a rate of 2.0 mg / cm2 to create an SPF measurement sample. For each SPF measurement sample, transmittance measurements were performed at nine different measurement points, and the SPF was calculated from the transmittance values. The evaluation results are shown in Table 4.

[0122] [Table 4]

Claims

1. Kraft lignin characterized in that in an infrared absorption spectrum measured with a Fourier transform infrared spectrophotometer (ATR-FT-IR) equipped with an ATR unit, the ratio of the area of the absorption peak at 3000 to 3600 cm-1 to the area of the absorption peak at 1480 to 1540 cm-1 (1480 to 1540 cm-1 / 3000 to 3600 cm-1) is in the range of 3.0 to 6.0, in color measurement measured with a spectrophotometer, the L* value is in the range of 61 to 80, the median diameter (D50) is 0.1 to 0.8 μm, and the active radical scavenging ability of 2,2-diphenyl-1-picrylhydrazyl (DPPH) per unit weight of kraft lignin is 0.96 to 3.0 mg DPPH / mg.

2. 2. The kraft lignin according to claim 1, wherein the SPF (Sun Protection Factor) measured using an SPF (Sun Protection Factor) analyzer in accordance with ISO 24443 is in the range of 10 to 50 when the application amount of the kraft lignin is 1 mg / cm2 per unit area.

3. 3. The kraft lignin according to claim 1 or 2, wherein the PA (Protection Grade of UVA) value measured using an SPF (Sun Protection Factor) analyzer in accordance with ISO 24443 is in the range of 10 to 50 when the application amount of the kraft lignin is 1 mg / cm2 per unit area.

4. a step of dissolving the kraft lignin in an organic solvent in an amount of 3 to 10 times by weight relative to the kraft lignin to obtain a kraft lignin solution; Next, adding ice or ice water to the kraft lignin solution to precipitate kraft lignin and obtain precipitated lignin; Next, a step of filtering, washing, and drying the precipitated kraft lignin to obtain kraft lignin; The method for producing kraft lignin according to claim 1 or 2, characterized in that it comprises:

5. A step of dissolving kraft lignin in an organic solvent to obtain a kraft lignin solution; Next, adding a water-soluble metal salt aqueous solution to the kraft lignin solution, or adding the kraft lignin solution to a water-soluble metal salt aqueous solution to precipitate kraft lignin; Next, a step of filtering, washing, and drying the precipitated kraft lignin to obtain kraft lignin; The method for producing kraft lignin according to claim 1 or 2, characterized in that it comprises:

6. 3. A foundation, sunscreen, cosmetic, ink, printed matter, paint, automotive paint, coating, plastic, fiber, film, black matrix resist, cured black matrix resist, photospacer resist, or cured photospacer resist, comprising the kraft lignin according to claim 1 or 2.

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