Reversible thermochromic ink composition for writing implements and writing implement containing the same

The reversible thermochromic ink composition with specific microcapsule dimensions addresses durability and stability issues, ensuring high-quality handwriting and ink discharge in writing instruments.

JP7760269B2Active Publication Date: 2025-10-27PILOT PEN CO LTD +1
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Patent Information

Application Number
JP2021109509
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-06-30
Publication Date
2025-10-27
Estimated Expiration
2041-06-30

AI Technical Summary

Technical Problem

Existing reversible thermochromic ink compositions for writing instruments face challenges with microencapsulated pigments that lack durability, dispersion stability, and ink discharge stability, leading to poor handwriting quality.

Method used

A reversible thermochromic ink composition with microcapsules having a specific volume-based average particle diameter and cross-sectional film thickness, ensuring excellent durability and dispersion stability, and maintaining practical handwriting density and ink dischargeability.

Benefits of technology

The ink composition achieves durable and stable handwriting with consistent ink discharge, enhancing the quality of writing instruments.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a reversible thermochromic ink composition excellent in durability and dispersion stability in an ink composition and capable of forming an excellent hand writing by highly combining a practical hand writing density and ink dischargeability, and a writing instrument housing the same.SOLUTION: An ink composition comprises a reversible thermochromic microcapsule pigment and a vehicle characterized in that microcapsules are obtained by enclosing a reversible thermochromic composition with a coating, wherein a volume-based average particle diameter (X) of the microcapsules is 0.1 to 3.0 μm, and an average cut sectional film thickness (Y) obtained from the following formula: cut sectional film thickness=(sectional outer periphery diameter-sectional inner periphery diameter) / 2 (in the formula, the sectional outer periphery diameter and the sectional inner periphery diameter are calculated, about one microcapsule, from a circle converted diameter of an area of a region surrounded by the outer periphery of the film cross-section and an area of the region surrounded by an inner periphery of the film cross-section) is 0.02 to 1.0 μm.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a reversible thermochromic ink composition for a writing instrument, and also to a writing instrument containing the composition. [Background technology]

[0002] Conventionally, writing instruments containing reversible thermochromic ink compositions for writing instruments, whose color tone changes with temperature, have been known. Handwriting made using these writing instruments can be discolored by heating or rubbing, and therefore these writing instruments are widely used in a variety of applications.

[0003] As a reversible thermochromic ink composition for a writing instrument, there has been disclosed the use of an ink composition containing a reversible thermochromic microcapsule pigment encapsulating a reversible thermochromic composition consisting of (a) an electron-donating color-forming organic compound, (b) an electron-accepting compound, and (c) a reaction medium that determines the temperature at which the color-forming reaction of components (a) and (b) occurs (see, for example, Patent Document 1).

[0004] The above-mentioned reversible thermochromic microencapsulated pigments have a thermochromic function of becoming decolorized in a temperature range above the high-temperature discoloration point (complete discoloration temperature) and becoming colored in a temperature range below the low-temperature discoloration point (complete discoloration temperature), and reversibly changing from a colored state to a decolorized state in response to temperature changes. Furthermore, since the particle size is within a specific range, they can produce handwriting with excellent storage stability. However, in order to produce good handwriting using a thermochromic writing instrument, the microencapsulated pigment must be durable and must not lose its thermochromic function when the handwriting is rubbed, nor must the contents inside be degraded when exposed to light.

[0005] Increasing the thickness of the microcapsule membrane (film thickness) is one way to improve the durability of microcapsule pigments, but if the membrane thickness is increased while keeping the particle diameter the same, the volume ratio of the encapsulated material to the total particle volume decreases, which tends to reduce the density of the writing. Furthermore, if the blending ratio of the microcapsule pigment is increased to prevent the reduction in the density of the writing, the dispersion stability of the microcapsule pigment in the ink tends to decrease, and the ink tends to dry out at the writing tip (pen tip) of the writing instrument, resulting in poor writing. On the other hand, by increasing the film thickness while maintaining the volume ratio of the inclusions, the writing density is maintained, but the particle size increases, which tends to reduce the dispersion stability of the microcapsule pigment in the ink and the ink ejection performance from the pen tip of the writing instrument. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-335848 Summary of the Invention [Problem to be solved by the invention]

[0007] The present invention aims to provide a reversible thermochromic ink composition for a writing instrument, in which a reversible thermochromic microencapsulated pigment has excellent durability and dispersion stability in the ink composition, and further exhibits practical handwriting density and ink discharge stability for a writing instrument, thereby enabling the formation of good handwriting, and a writing instrument containing the same. [Means for solving the problem]

[0008] The reversible thermochromic ink composition for a writing instrument according to the present invention comprises: (a) electron-donating color-forming organic compound; (b) an electron-accepting compound, and (c) A reaction medium that reversibly induces an electron transfer reaction between components (a) and (b) in a specific temperature range. a reversible thermochromic microcapsule pigment comprising microcapsules in which a reversible thermochromic composition comprising the compound is encapsulated in a coating; Vehicle and A reversible thermochromic ink composition for a writing instrument comprising: The volume-based average particle diameter (X) of the microcapsules is 0.1 to 3.0 μm, and The cross section of the frozen microcapsule pigment was observed under a transmission electron microscope, and all capsules within the observation field were found to have the following formula: Cut cross-section film thickness = (cross-section outer diameter - cross-section inner diameter) / 2 (In the formula, the outer diameter and inner diameter of the cross section are calculated from the equivalent circle diameters of the area of ​​the region surrounded by the outer periphery of the cross section of the coating and the area of ​​the region surrounded by the inner periphery of the cross section of one microcapsule.) When the average value of the cross-sectional thicknesses is taken as the average cross-sectional thickness, the average cross-sectional thickness (Y) of the microcapsules is 0.02 to 0.7 μm.

[0009] The writing implement according to the present invention contains the reversible thermochromic ink composition for writing implements. [Effects of the Invention]

[0010] The ink composition according to the present invention uses a reversible thermochromic microencapsulated pigment containing microcapsules each having a volume-based average particle size and an average cross-sectional film thickness within a specific range, and the reversible thermochromic microencapsulated pigment has excellent durability against external forces and stimuli, and excellent dispersion stability in the ink composition. Furthermore, a writing instrument containing the ink composition according to the present invention exhibits the excellent property of being able to form good handwriting by achieving both practical handwriting density and high ink dischargeability. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a graph illustrating the hysteresis characteristics in the color density-temperature curve of a reversibly thermochromic composition that is heat-discolorable. [Figure 2] 1 is a graph illustrating the hysteresis characteristics in the color density-temperature curve of a heat-discolorable, reversible thermochromic composition having color memory properties. [Figure 3] 1 is a graph illustrating the hysteresis characteristics in the color density-temperature curve of a reversibly thermochromic composition that develops color over time. DETAILED DESCRIPTION OF THE INVENTION

[0012] The reversible thermochromic ink composition for a writing instrument according to the present invention (hereinafter sometimes referred to as the "ink composition") comprises a reversible thermochromic microencapsulated pigment and a vehicle. Each component constituting the ink composition according to the present invention will be described below.

[0013] The ink composition according to the present invention contains a reversible thermochromic microencapsulated pigment (hereinafter sometimes referred to as "microencapsulated pigment") as a colorant.

[0014] The microcapsule pigment used in the ink composition of the present invention comprises microcapsules encapsulating a reversible thermochromic composition, and is typically an aggregate of microcapsules. This reversible thermochromic composition can be a thermally decolorizable (decolorizes upon heating and develops color upon cooling) reversible thermochromic composition containing at least three essential components: (i) an electron-donating color-forming organic compound, (ii) an electron-accepting compound, and (iii) a reaction medium that determines the temperature at which the color-forming reaction between components (i) and (ii) occurs.

[0015] An example of a reversible thermochromic composition to which such a microcapsule pigment can be applied is a composition described in Japanese Patent Publication Nos. 51-44706, 51-44707, and 1-29398, which changes color around a predetermined temperature (color change point), exhibiting a decolorized state in a temperature range above the high-temperature color change point and a colored state in a temperature range below the low-temperature color change point, with only one specific state existing at room temperature, and the other state being maintained while the heat or cold required to manifest that state is applied, but returning to the state it exhibits at room temperature when the heat or cold is removed; this composition has a relatively small hysteresis width (ΔH) (ΔH=1 to 7°C) (see Figure 1).

[0016] Other examples of reversible thermochromic compositions to which such microcapsule pigments can be applied include those described in JP-B-4-17154, JP-A-7-179777, JP-A-7-33997, JP-A-8-39936, and JP-A-2005-1369, which exhibit a large hysteresis width (ΔH=8-70°C), and in which the shape of the curve plotting the change in color density with temperature follows a significantly different path when the temperature is increased from below the color-change temperature range than when the temperature is decreased from above the color-change temperature range, and which exhibit color memory in a specific temperature range (the temperature range between the color-development onset temperature t2 and the color-discoloration onset temperature t3 (a temperature range in which two phases are essentially maintained)) that exhibits a colored state at temperatures below the complete color-development temperature t1 or a color-discolored state at temperatures above the complete color-discoloration temperature t4 (see Figure 2).

[0017] [Microcapsule pigment] Components (a), (b) and (c) will be specifically explained below. Component (A), that is, the electron-donating color-forming organic compound, is the component that determines the color, and is a compound that donates electrons to component (B), which is the color developer, to develop color.

[0018] Examples of the electron-donating color-forming organic compound include phthalide compounds, fluoran compounds, styrinoquinoline compounds, diazarhodamine lactone compounds, pyridine compounds, quinazoline compounds, and bisquinazoline compounds, and among these, phthalide compounds and fluoran compounds are preferred.

[0019] Examples of the phthalide compound include a diphenylmethane phthalide compound, a phenylindolyl phthalide compound, an indolyl phthalide compound, a diphenylmethane azaphthalide compound, a phenylindolyl azaphthalide compound, and derivatives thereof. Among these, the phenylindolyl azaphthalide compound and derivatives thereof are preferred. Examples of the fluoran compound include aminofluoran compounds, alkoxyfluoran compounds, and derivatives thereof.

[0020] Examples of compounds that can be used as component (a) are listed below. 3,3-bis(4-dimethylaminophenyl)-6-dimethylaminophthalide, 3-(4-diethylaminophenyl)-3-(1-ethyl-2-methylindol-3-yl)phthalide, 3,3-bis(1-n-butyl-2-methylindol-3-yl)phthalide, 3,3-bis(2-ethoxy-4-diethylaminophenyl)-4-azaphthalide, 3-(2-ethoxy-4-diethylaminophenyl)-3-(1-ethyl-2-methylindol-3-yl)-4-azaphthalide, 3-(2-n-hexyloxy-4-diethylaminophenyl)-3-(1-ethyl-2-methylindol-3-yl)-4-azaphthalide, 3-[2-ethoxy-4-(N-ethylanilino)phenyl]-3-(1-ethyl-2-methylindol-3-yl)-4-azaphthalide, 3-(2-acetamido-4-diethylaminophenyl)-3-(1-propyl-2-methylindol-3-yl)-4-azaphthalide, 3,6-bis(diphenylamino)fluoran, 3,6-bis(N-phenyl-Np-tolylamino)fluoran, 3,6-dimethoxyfluoran, 3,6-di-n-butoxyfluorane, 2-methyl-6-(N-ethyl-Np-tolylamino)fluoran, 3-chloro-6-cyclohexylaminofluoran, 2-methyl-6-cyclohexylaminofluoran, 2-chloroamino-6-di-n-butylaminofluoran, 2-(2-chloroanilino)-6-di-n-butylaminofluoran, 2-(3-trifluoromethylanilino)-6-diethylaminofluoran, 2-(3-trifluoromethylanilino)-6-di-n-pentylaminofluoran, 2-dibenzylamino-6-diethylaminofluoran, 2-(N-methylanilino)-6-(N-ethyl-Np-tolylamino)fluoran, 1,3-dimethyl-6-diethylaminofluoran, 2-chloro-3-methyl-6-diethylaminofluoran, 2-anilino-3-methyl-6-diethylaminofluoran, 2-anilino-3-methoxy-6-diethylaminofluoran, 2-anilino-3-methyl-6-di-n-butylaminofluoran, 2-anilino-3-methoxy-6-di-n-butylaminofluoran, 2-xylidino-3-methyl-6-diethylaminofluoran, 2-anilino-3-methyl-6-(N-ethyl-Np-tolylamino)fluoran, 6-diethylamino-1,2-benzofluoran, 6-(N-ethyl-N-isobutylamino)-1,2-benzofluoran, 6-(N-ethyl-N-isopentylamino)-1,2-benzofluoran, 2-(3-methoxy-4-dodecoxystyryl)quinoline, 2-diethylamino-8-diethylamino-4-methylspiro[5H-[1]benzopyrano[2,3-d]pyrimidin-5,1′(3′H)-isobenzofuran]-3′-one, 2-di-n-butylamino-8-di-n-butylamino-4-methylspiro[5H-[1]benzopyrano[2,3-d]pyrimidin-5,1′(3′H)-isobenzofuran]-3′-one, 2-di-n-butylamino-8-diethylamino-4-methylspiro[5H-[1]benzopyrano[2,3-d]pyrimidin-5,1′(3′H)-isobenzofuran]-3′-one, 2-di-n-butylamino-8-(N-ethyl-N-isoamylamino)-4-methylspiro[5H-[1]benzopyrano[2,3-d]pyrimidin-5,1′(3′H)-isobenzofuran]-3′-one, 2-di-n-butylamino-8-di-n-pentylamino-4-methylspiro[5H-[1]benzopyrano[2,3-d]pyrimidin-5,1′(3′H)-isobenzofuran]-3′-one, 4,5,6,7-tetrachloro-3-(4-dimethylamino-2-methoxyphenyl)-3-(1-n-butyl-2-methylindol-3-yl)-1(3H)-isobenzofuranone, 4,5,6,7-tetrachloro-3-(4-diethylamino-2-ethoxyphenyl)-3-(1-ethyl-2-methylindol-3-yl)-1(3H)-isobenzofuranone, 4,5,6,7-tetrachloro-3-(4-diethylamino-2-ethoxyphenyl)-3-(1-n-pentyl-2-methylindol-3-yl)-1(3H)-isobenzofuranone, 4,5,6,7-tetrachloro-3-(4-diethylamino-2-methylphenyl)-3-(1-ethyl-2-methylindol-3-yl)-1(3H)-isobenzofuranone, 3',6'-bis[phenyl(2-methylphenyl)amino]spiro[isobenzofuran-1(3H),9'-[9H]xanthene]-3-one, 3',6'-bis[phenyl(3-methylphenyl)amino]spiro[isobenzofuran-1(3H),9'-[9H]xanthene]-3-one, 3',6'-bis[phenyl(3-ethylphenyl)amino]spiro[isobenzofuran-1(3H),9'-[9H]xanthene]-3-one, 2,6-bis(2′-ethyloxyphenyl)-4-(4′-dimethylaminophenyl)pyridine, 2,6-bis(2′,4′-diethyloxyphenyl)-4-(4′-dimethylaminophenyl)pyridine, 2-(4′-dimethylaminophenyl)-4-methoxyquinazoline, 4,4'-Ethylenedioxy-bis[2-(4-diethylaminophenyl)quinazoline]

[0021] In addition, fluorans may be compounds having a substituent on the phenyl group forming the xanthene ring, or may be compounds that have a substituent on the phenyl group forming the xanthene ring and also have a substituent (for example, an alkyl group such as a methyl group, or a halogen atom such as a chlorine atom) on the phenyl group forming the lactone ring, and that exhibit a blue or black color.

[0022] Component (b), ie, the electron accepting compound, is a compound that accepts electrons from component (a) and functions as a developer for component (a). Examples of the electron-accepting compound include compounds selected from the group of compounds having an active proton, the group of pseudo-acidic compounds (compounds that are not acids but act as acids in the reversible thermochromic composition to cause component (A) to develop color), and the group of compounds having an electron vacancy. Among the above-mentioned component (B), compounds selected from the group of compounds having an active proton are preferred.

[0023] Examples of compounds having an active proton include compounds having a phenolic hydroxyl group and derivatives thereof, carboxylic acids and derivatives thereof, acidic phosphate esters and derivatives thereof, azole compounds and derivatives thereof, 1,2,3-triazole and derivatives thereof, cyclic carbosulfimides, halohydrins having 2 to 5 carbon atoms, sulfonic acids and derivatives thereof, and inorganic acids. Preferred examples of carboxylic acids and derivatives thereof include aromatic carboxylic acids and derivatives thereof, and aliphatic carboxylic acids having 2 to 5 carbon atoms and derivatives thereof. Examples of the pseudo-acidic compounds include metal salts of compounds having a phenolic hydroxyl group, metal salts of carboxylic acids, metal salts of acidic phosphate esters, metal salts of sulfonic acids, aromatic carboxylic acid anhydrides, aliphatic carboxylic acid anhydrides, mixed anhydrides of aromatic carboxylic acids and sulfonic acids, cycloolefin dicarboxylic acid anhydrides, urea and its derivatives, thiourea and its derivatives, guanidine and its derivatives, and halogenated alcohols. Compounds having electron vacancies include borates, borate esters, and inorganic salts.

[0024] Among the above-mentioned components (ii), compounds having a phenolic hydroxyl group are preferred because they can more effectively exhibit thermochromic properties. Compounds having a phenolic hydroxyl group include a wide range of compounds, from monophenol compounds to polyphenol compounds, and further include bisphenol compounds, trisphenol compounds, phenol-aldehyde condensation resins, etc. Compounds having a phenolic hydroxyl group preferably have at least two benzene rings. In addition, compounds having a phenolic hydroxyl group may have a substituent such as an alkyl group, an aryl group, an acyl group, an alkoxycarbonyl group, a carboxyl group and its ester or amide group, or a halogen atom.

[0025] Examples of metals contained in metal salts of compounds having a phenolic hydroxyl group include sodium, potassium, calcium, zinc, zirconium, aluminum, magnesium, nickel, cobalt, tin, copper, iron, vanadium, titanium, lead, and molybdenum.

[0026] Examples of compounds of component (b) are given below. Examples of compounds having one phenolic hydroxyl group include: phenol, o-cresol, m-cresol, p-cresol, 4-ethylphenol, 4-n-propylphenol, 4-n-butylphenol, 2-tert-butylphenol, 3-tert-butylphenol, 4-tert-butylphenol, 4-n-pentylphenol, 4-tert-pentylphenol, 4-n-octylphenol, 4-tert-octylphenol, 4-n-nonylphenol, 4-n-dodecylphenol, 3-n-pentadecylphenol, 4-n-stearylphenol, 1-(4-hydroxyphenyl)decan-1-one, 4-chlorophenol, 4-bromophenol, 4-trifluoromethylphenol, 4-methylthiophenol, 4-nitrophenol, 2-phenylphenol, 4-phenylphenol, 2-benzylphenol, 2-benzyl-4-chlorophenol, 4-cumylphenol, 4-hydroxybenzophenone, 4-chloro-4′-hydroxybenzophenone, 4-fluoro-4′-hydroxybenzophenone, 4-cyclohexylphenol, 2-hydroxybenzyl alcohol, 3-hydroxybenzyl alcohol, 4-hydroxybenzyl alcohol, 4-(2-hydroxyethyl)phenol, 3-methoxyphenol, 4-ethoxyphenol, 4-n-propoxyphenol, 4-n-butoxyphenol, 4-n-heptyloxyphenol, 4-(2-methoxyethyl)phenol, α-naphthol, β-naphthol, 2,3-dimethylphenol, 2,4-dimethylphenol, 2,6-dimethylphenol, 2,6-di-tert-butylphenol, 2,4-dichlorophenol, 2,4-difluorophenol, thymol, 3-methyl-4-methylthiophenol, 2-tert-butyl-5-methylphenol, 2,6-bis(hydroxymethyl)-4-methylphenol, 2,3,5-trimethylphenol, 2,6-bis(hydroxymethyl)-4-tert-octylphenol, 6-hydroxy-1,3-benzoxathiol-2-one, 2,4-bis(phenylsulfonyl)phenol, 2,4-bis(phenylsulfonyl)-5-methylphenol, 2,4-bis(4-methylphenylsulfonyl)phenol, 2-phenylphenol, 4-phenylphenol, 2,6-diphenylphenol, 3-benzylbiphenyl-2-ol, 3,5-dibenzylbiphenyl-4-ol, 4-cyano-4′-hydroxybiphenyl, 1-hydroxybenzotriazole, 1-hydroxy-5-methylbenzotriazole, 1-hydroxy-5-chlorobenzotriazole, 1-hydroxy-5-methoxybenzotriazole, 1-hydroxy-4-benzoylaminobenzotriazole, 1-hydroxy-4,5,6,7-tetrachlorobenzotriazole, 1,4-hydroxybenzotriazole, 1-hydroxy-5-nitrobenzotriazole, 1-hydroxy-5-phenylbenzotriazole, 1-hydroxy-5-benzylbenzotriazole, 1-hydroxy-5-ethylbenzotriazole, 1-hydroxy-5-n-octylbenzotriazole, 1-hydroxy-5-n-butylbenzotriazole, n-Butyl 4-hydroxybenzoate, n-Octyl 4-hydroxybenzoate, 4-Hydroxybenzoic acid 2-heptadecafluorooctylethane, benzyl 4-hydroxybenzoate, 4-hydroxybenzoic acid benzyl ester, o-methylbenzyl 4-hydroxybenzoate, m-methylbenzyl 4-hydroxybenzoate, p-methylbenzyl 4-hydroxybenzoate, p-ethylbenzyl 4-hydroxybenzoate, p-propylbenzyl 4-hydroxybenzoate, p-tert-butylbenzyl 4-hydroxybenzoate, phenylethyl 4-hydroxybenzoate, 4-hydroxybenzoic acid-o-methylphenylethyl ester, m-Methylphenylethyl 4-hydroxybenzoate, p-methylphenylethyl 4-hydroxybenzoate, p-Ethylphenylethyl 4-hydroxybenzoate, p-propylphenylethyl 4-hydroxybenzoate, p-tert-butylphenylethyl 4-hydroxybenzoate Examples include:

[0027] Examples of compounds having two phenolic hydroxyl groups include: Resorcinol, 2-methylresorcinol, 4-n-hexylresorcinol, 4-n-octylresorcinol, 4-tert-octylresorcinol, 4-benzoylresorcinol, 4-nitroresorcinol, β-methyl resorcylate, β-benzyl resorcylate, 2-chloro-4-pentanoylresorcinol, 6-chloro-4-pentanoylresorcinol, 2-chloro-4-hexanoylresorcinol, 6-chloro-4-hexanoylresorcinol, 2-chloro-4-propanoylresorcinol, 6-chloro-4-propanoylresorcinol, 2,6-dichloro-4-propanoylresorcinol, 6-fluoro-4-propanoylresorcinol, 2-chloro-4-phenylacetylresorcinol, 6-chloro-4-phenylacetylresorcinol, 2-chloro-4-β-phenylpropanoylresorcinol, 6-chloro-4-β-phenylpropanoylresorcinol, 2-chloro-4-phenoxyacetylresorcinol, 6-chloro-4-phenoxyacetylresorcinol, 4-benzoyl-2-chlororesorcinol, 6-chloro-4-m-methylbenzoylresorcinol, 4-[1',3',4',9'a-tetrahydro-6'-hydroxyspiro(cyclohexane-1,9'-[9H]-xanthene)-4'a-[2H]-yl]-1,3-benzenediol, hydroquinone, methylhydroquinone, trimethylhydroquinone, Catechol, 4-tert-butylcatechol, 1,6-dihydroxynaphthalene, 2,7-dihydroxynaphthalene, 1,5-dihydroxynaphthalene, 2,6-dihydroxynaphthalene, 2,4-dihydroxybenzophenone, 4,4′-dihydroxybenzophenone, 2,4-dihydroxy-2′-methylbenzophenone, 2,4-dihydroxy-3′-methylbenzophenone, 2,4-dihydroxy-4′-methylbenzophenone, 2,4-dihydroxy-4′-ethylbenzophenone, 2,4-dihydroxy-4′-n-propylbenzophenone, 2,4-dihydroxy-4′-isopropylbenzophenone, 2,4-dihydroxy-4′-n-butylbenzophenone, 2,4-dihydroxy-4′-isobutylbenzophenone, 2,4-dihydroxy-4′-tert-butylbenzophenone, 2,4-dihydroxy-4′-n-pentylbenzophenone, 2,4-dihydroxy-4′-n-hexylbenzophenone, 2,4-dihydroxy-4′-n-heptylbenzophenone, 2,4-dihydroxy-4′-n-octylbenzophenone, 2,4-dihydroxy-4′-n-decylbenzophenone, 2,4-dihydroxy-2′,3′-dimethylbenzophenone, 2,4-dihydroxy-2′,4′-dimethylbenzophenone, 2,4-dihydroxy-2′,5′-dimethylbenzophenone, 2,4-dihydroxy-2′,6′-dimethylbenzophenone, 2,4-dihydroxy-3′,4′-dimethylbenzophenone, 2,4-dihydroxy-3′,5′-dimethylbenzophenone, 2,4-dihydroxy-2′,4′,6′-trimethylbenzophenone, 2,4-dihydroxy-2′-methoxybenzophenone, 2,4-dihydroxy-3′-methoxybenzophenone, 2,4-dihydroxy-4′-methoxybenzophenone, 2,4-dihydroxy-2′-ethoxybenzophenone, 2,4-dihydroxy-4′-ethoxybenzophenone, 2,4-dihydroxy-4′-n-propoxybenzophenone, 2,4-dihydroxy-4′-isopropoxybenzophenone, 2,4-dihydroxy-4′-n-butoxybenzophenone, 2,4-dihydroxy-4′-isobutoxybenzophenone, 2,4-dihydroxy-4′-n-pentyloxybenzophenone, 2,4-dihydroxy-4′-n-hexyloxybenzophenone, 2,4-dihydroxy-4′-n-heptyloxybenzophenone, 2,4-dihydroxy-4′-n-octyloxybenzophenone, 2,4-dihydroxy-4′-n-nonyloxybenzophenone, 2,4-dihydroxy-2′,3′-dimethoxybenzophenone, 2,4-dihydroxy-2′,4′-dimethoxybenzophenone, 2,4-dihydroxy-2′,5′-dimethoxybenzophenone, 2,4-dihydroxy-2′,6′-dimethoxybenzophenone, 2,4-dihydroxy-3′,4′-dimethoxybenzophenone, 2,4-dihydroxy-3′,5′-dimethoxybenzophenone, 2,4-dihydroxy-3′,4′-diethoxybenzophenone, 2,4-dihydroxy-2′,3′,4′-trimethoxybenzophenone, 2,4-dihydroxy-2′,3′,6′-trimethoxybenzophenone, 2,4-dihydroxy-3′,4′,5′-trimethoxybenzophenone, 2,4-Dihydroxy-3',4',5'-triethoxybenzophenone Examples include:

[0028] Further, examples of bisphenol compounds include: 1,1-bis(4-hydroxyphenyl)ethane, 1,1-bis(4-hydroxyphenyl)propane, 1,1-bis(4-hydroxyphenyl) n-butane, 1,1-bis(4-hydroxyphenyl) n-pentane, 1,1-bis(4-hydroxyphenyl) n-hexane, 1,1-bis(4-hydroxyphenyl) n-heptane, 1,1-bis(4-hydroxyphenyl) n-octane, 1,1-bis(4-hydroxyphenyl)n-nonane, 1,1-bis(4-hydroxyphenyl) n-decane, 1,1-bis(4-hydroxy-3-methylphenyl)decane, 1,1-bis(4-hydroxyphenyl) n-dodecane, 1,1-bis(4-hydroxyphenyl)-2-methylpropane, 1,1-bis(4-hydroxyphenyl)-3-methylbutane, 1,1-bis(4-hydroxyphenyl)-3-methylpentane, 1,1-bis(4-hydroxyphenyl)-2,3-dimethylpentane, 1,1-bis(4-hydroxyphenyl)-2-ethylbutane, 1,1-bis(4-hydroxyphenyl)-2-ethylhexane, 1,1-bis(4-hydroxyphenyl)-3,7-dimethyloctane, 1,1-bis(4-hydroxyphenyl)cyclohexane, 1,1-bis(4-hydroxyphenyl)-3,3,5-trimethylcyclohexane, 1,1-bis(4-hydroxy-3-methyl)cyclohexane, diphenolic acid, 1-phenyl-1,1-bis(4-hydroxyphenyl)methane, 2,2-bis(4-hydroxyphenyl)propane, 2,2-bis(4-hydroxyphenyl)n-butane, 2,2-bis(4-hydroxyphenyl) n-pentane, 2,2-bis(4-hydroxyphenyl)n-hexane, 2,2-bis(4-hydroxyphenyl) n-heptane, 2,2-bis(4-hydroxyphenyl) n-octane, 2,2-bis(4-hydroxyphenyl)n-nonane, 2,2-bis(4-hydroxyphenyl) n-decane, 2,2-bis(4-hydroxyphenyl) n-dodecane, 2,2-bis(4-hydroxyphenyl)-6,10,14-trimethylpentadecane, 1-phenyl-1,1-bis(4-hydroxyphenyl)ethane, 2,2-bis(4-hydroxyphenyl)methylpropionate, 2,2-bis(4-hydroxyphenyl)butylpropionate, 2,2-bis(4-hydroxy-3-methylphenyl)methylpropionate, 2,2-bis(4-hydroxyphenyl)ethyl propionate, 2,2-bis(4-hydroxyphenyl)-4-methylpentane, 2,2-bis(4-hydroxyphenyl)-4-methylhexane, 2,2-bis(4-hydroxyphenyl)hexafluoropropane, 2,2-bis(3,5-dihydroxymethyl-4-hydroxyphenyl)hexafluoropropane, 2,2-bis(4-hydroxy-3-methylphenyl)propane, 2,2-bis(4-hydroxy-3-methylphenyl)butane, 2,2-bis(4-hydroxy-3-isopropylphenyl)propane, 2,2-bis(3-sec-butylphenyl-4-hydroxy)propane, 2,2-bis(4-hydroxy-3-phenylphenyl)propane, 2,2-bis(3-tert-butyl-4-hydroxyphenyl)propane, 2,2-bis(3-fluoro-4-hydroxyphenyl)propane, 2,2-bis(3,5-dihydroxymethyl-4-hydroxyphenyl)propane, 9,9-bis(4-hydroxy-3-methylphenyl)fluorene, 1,3-bis[2-(4-hydroxyphenyl)-2-propyl]benzene, 1,4-bis[2-(4-hydroxyphenyl)-2-propyl]benzene, 3,3-bis(4-hydroxyphenyl)oxindole, 3,3-bis(4-hydroxy-3-methylphenyl)oxindole, bis(2-hydroxyphenyl)methane, bis(2-hydroxy-5-methylphenyl)methane, bis(2-hydroxy-3-hydroxymethyl-5-methyl)methane, 4,4'-[1,4-phenylenebis(1-methylethylidene)]bis(2-methylphenol), 1,1-bis(4-hydroxy-3-phenylphenyl)cyclohexane, 3,3-ethyleneoxydiphenol, 1,4-bis(4-hydroxybenzoate)-3-methylbenzene, 4,4"-dihydroxy-3"-methyl-p-terphenyl, 4,4″-dihydroxy-3″-isopropyl-p-terphenyl, 2,2-dimethyl-1,3-bis(4-hydroxybenzoyloxy)propane, 2,2′-biphenol, 4,4′″-dihydroxy-p-quaterphenyl, 4,4-dihydroxydiphenyl ether, Bis(4-hydroxyphenylthioethyl) ether bis(4-hydroxyphenyl) sulfone, 4-benzyloxy-4′-hydroxydiphenyl sulfone, 4-(4-methylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(4-ethylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(4-n-propylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(4-isopropylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(4-n-butylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(4-isobutylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(4-sec-butylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(4-tert-butylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(3-methylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(3-ethylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(3-n-propylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(3-isopropylbenzyloxy)-4′-dihydroxyphenyl sulfone, 4-(3-n-butylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(3-isobutylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(3-sec-butylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(3-tert-butylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(2-methylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(2-ethylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(2-n-propylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(2-isopropylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(2-n-butylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(2-isobutylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(2-sec-butylbenzyloxy)-4′-hydroxydiphenyl sulfone, 4-(2-tert-butylbenzyloxy)-4′-hydroxydiphenyl sulfone, 2,4′-dihydroxydiphenyl sulfone, 3,4′-dihydroxydiphenyl sulfone, 4-hydroxydiphenyl sulfone, 4-methyl-4'-hydroxyphenyl sulfone, 4-ethyl-4′-hydroxydiphenyl sulfone, 4-n-propyl-4′-hydroxydiphenyl sulfone, 4-isopropyl-4′-hydroxydiphenyl sulfone, 4-chloro-4′-hydroxydiphenyl sulfone, 4-fluoro-4′-hydroxydiphenyl sulfone, 4-chloro-2-methyl-4′-hydroxydiphenyl sulfone, 4-methoxy-4′-hydroxydiphenyl sulfone, 4-ethoxy-4′-hydroxydiphenyl sulfone, 4-n-propoxy-4′-hydroxydiphenyl sulfone, 4-isopropoxy-4′-hydroxydiphenyl sulfone, 4-n-butoxy-4′-hydroxydiphenyl sulfone, 4-isobutoxy-4′-hydroxydiphenyl sulfone, 4-sec-butoxy-4′-hydroxydiphenyl sulfone, 4-tert-butoxy-4′-hydroxydiphenyl sulfone, 4-n-pentyloxy-4′-hydroxydiphenyl sulfone, 4-isopentyloxy-4′-hydroxydiphenyl sulfone, 4-(1-propenyloxy)-4′-hydroxydiphenyl sulfone, 4-(2-propenyloxy)-4′-hydroxydiphenyl sulfone, 4-benzyloxy-4′-hydroxydiphenyl sulfone, 4-(β-phenoxyethoxy)-4′-hydroxydiphenyl sulfone, 4-(β-phenoxypropoxyl)-4′-hydroxydiphenyl sulfone, bis(2-allyl-4-hydroxydiphenyl) sulfone, bis[4-hydroxy-3-(2-propenyl)phenyl]sulfone, bis(3,5-dibromo-4-hydroxyphenyl) sulfone, bis(3,5-dichloro-4-hydroxyphenyl) sulfone, bis(3-phenyl-4-hydroxyphenyl) sulfone, bis(4-hydroxy-3-n-propylphenyl) sulfone, bis(4-hydroxy-3-methylphenyl) sulfone, 3,4-dihydroxydiphenyl sulfone, 3',4'-dihydroxy-4-methyldiphenyl sulfone, 3,4,4′-trihydroxydiphenyl sulfone, bis(3,4-dihydroxyphenyl) sulfone, 2,3,4-trihydroxydiphenyl sulfone, 4-isopropoxy-4′-hydroxydiphenyl sulfone, 4-n-propoxy-4′-hydroxydiphenyl sulfone, 4-allyloxy-4′-hydroxydiphenyl sulfone, 4-benzyloxy-4′-hydroxydiphenyl sulfone, 4-(2-propenyloxy)-4′-hydroxydiphenyl sulfone, 3-benzyl-4-benzyloxy-4′-hydroxydiphenyl sulfone, 3-phenethyl-4-phenethyloxy-4′-hydroxydiphenyl sulfone, 3-methylbenzyl-4-methylbenzyloxy-4′-hydroxydiphenyl sulfone, 4-benzyloxy-3′-benzyl-4′-hydroxydiphenyl sulfone, 4-phenethyloxy-3′-phenethyl-4′-hydroxydiphenyl sulfone, 4-methylbenzyloxy-3′-methylbenzyl-4′-hydroxydiphenyl sulfone, α,α′-bis{4-(p-hydroxyphenylsulfone)phenoxy}-p-xylene, 4,4′-{oxybis(ethylene oxide-p-phenylene sulfonyl)}diphenol, Bis(4-hydroxyphenyl) sulfide, bis(4-hydroxy-3-methylphenyl) sulfide, bis(3,5-dimethyl-4-hydroxyphenyl) sulfide, bis(3-ethyl-4-hydroxyphenyl) sulfide, bis(3,5-diethyl-4-hydroxyphenyl) sulfide, bis(4-hydroxy-3-n-propylphenyl) sulfide, bis(3,5-di-n-propyl-4-hydroxyphenyl) sulfide, bis(3-tert-butyl-4-hydroxyphenyl) sulfide, bis(3,5-di-tert-butyl-4-hydroxyphenyl) sulfide, bis(4-hydroxy-3-n-pentylphenyl) sulfide, bis(3-n-hexyl-4-hydroxyphenyl) sulfide, bis(3-n-heptyl-4-hydroxyphenyl) sulfide, bis(5-tert-octyl-2-hydroxyphenyl) sulfide, bis(2-hydroxy-3-tert-octylphenyl) sulfide, bis(2-hydroxy-5-n-octyl-phenyl) sulfide, bis(5-chloro-2-hydroxyphenyl) sulfide, bis(3-cyclohexyl-4-hydroxyphenyl) sulfide, bis(4-hydroxyphenylthioethoxy)methane, 1,5-(4-hydroxyphenylthio)-3-oxypentane, 1,8-bis(4-hydroxyphenylthio)-3,6-dioxaoctane Examples include:

[0029] Examples of compounds having three phenolic hydroxyl groups include pyrogallol, phloroglucinol, phloroglucinolcarboxylic acid, gallic acid, octyl gallate, and dodecyl gallate.

[0030] Further examples of trisphenol compounds include: 4,4′,4″-methylidynetrisphenol, 4,4′,4″-methylidynetris(2-methylphenol), 4,4'-[(2-hydroxyphenyl)methylene]bis(2,3,5-trimethylphenol), 4,4'-[(4-hydroxyphenyl)methylene]bis(2-methylphenol), 4,4'-[(4-hydroxyphenyl)methylene]bis(2,6-dimethylphenol), 4,4'-[(4-hydroxy-3-methoxyphenyl)methylene]bisphenol, 4,4'-[(4-hydroxyphenyl)methylene]bis(2-cyclohexyl-5-methylphenol), 4,4′,4″-ethylidynetrisphenol, 4,4′,4″-ethylidinetris(2-methylphenol), 4,4'-[(2-hydroxyphenyl)methylene]bis(2-cyclohexyl-5-methylphenol), 2,6-bis[(2-hydroxy-5-methylphenyl)methyl]-4-methylphenol, 2,4-bis[(2-hydroxy-5-methylphenyl)methyl]-6-cyclohexylphenol, 4,4'-[1-{4-[1-(4-hydroxyphenyl)-1-methylethyl]phenyl}methylidene]bisphenol, 4,4'-[1-{4-[1-(4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bisphenol, 4,4'-[1-{4-[1-(4-hydroxyphenyl)-1-methylethyl]phenyl}propylidene]bisphenol, 4,4'-[1-{4-[1-(4-hydroxyphenyl)-1-methylethyl]phenyl}butylidene]bisphenol, 4,4'-[1-{4-[1-(4-hydroxyphenyl)-1-methylethyl]phenyl}pentylidene]bisphenol, 4,4'-[1-{4-[1-(4-hydroxyphenyl)-1-methylethyl]phenyl}hexylidene]bisphenol, 4,4'-[1-{4-[1-(4-hydroxyphenyl)-1-methylethyl]phenyl}heptylidene]bisphenol, 4,4'-[1-{4-[1-(4-hydroxyphenyl)-1-methylethyl]phenyl}isobutylidene]bisphenol, 4,4'-[1-{4-[1-(4-hydroxyphenyl)-1-methylethyl]phenyl}neopentylidene]bisphenol, 2,2'-[1-{4-[1-(2-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bisphenol, 3,3′-[1-{4-[1-(3-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bisphenol, 4,4'-[1-{4-[1-(3-fluoro-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-fluorophenol), 4,4'-[1-{4-[1-(3-chloro-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-chlorophenol), 4,4'-[1-{4-[1-(3-bromo-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-bromophenol), 4,4'-[1-{4-[1-(4-hydroxy-3-methylphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-methylphenol), 4,4'-[1-{4-[1-(3-ethyl-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-ethylphenol), 4,4'-[1-{4-[1-(3-tert-butyl-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-tert-butylphenol), 4,4'-[1-{4-[1-(4-hydroxy-3-trifluoromethylphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-trifluoromethylphenol), 1,1-bis(4-hydroxyphenyl)-4-(4-hydroxy-α-ethyl)benzylcyclohexane, 4,4'-[(3-ethoxy-4-hydroxyphenyl)methylene]bisphenol, 4,4'-[(3-hydroxyphenyl)methylene]bis(2,6-dimethylphenol), 2,2'-[(4-hydroxyphenyl)methylene]bis(3,5-dimethylphenol), 4,4'-[(4-hydroxy-3-methoxyphenyl)methylene]bis(2,6-dimethylphenol), 2,2'-[(2-hydroxyphenyl)methylene]bis(3,5,6-trimethylphenol), 4,4'-[(3-hydroxyphenyl)methylene]bis(2,3,6-trimethylphenol), 4,4'-[(4-hydroxyphenyl)methylene]bis(2,3,6-trimethylphenol), 4,4'-[(3-hydroxyphenyl)methylene]bis(2-cyclohexyl-5-methylphenol), 4,4'-[(4-hydroxyphenyl-3-methoxy)methylene]bis(2-cyclohexyl-5-methylphenol), 1,1-bis(4-hydroxyphenyl)-4-hydroxyphenylcyclohexane, 4,4'-[3-(5-cyclohexyl-4-hydroxy-2-methylphenyl)-3-phenyl)propylidene]bis(2-cyclohexyl-5-methylphenol), 4,4'-[(2-hydroxyphenyl)methylene]bis(2-methylphenol), 2,4′,4″-methylidynetrisphenol, 4,4'-[(2-hydroxyphenyl)methylene]bis(3-methylphenol), 4,4'-[4-(4-hydroxyphenyl)-sec-butylidene]bis(4-hydroxyphenol), 2,2'-[(3-hydroxyphenyl)methylene]bis(3,5-dimethylphenol), 4,4'-[(2-hydroxy-3-methoxyphenyl)methylene]bis(2,5-dimethylphenol), 4,4'-[(2-hydroxy-3-methoxyphenyl)methylene]bis(2,6-dimethylphenol), 2,2'-[(2-hydroxy-3-methoxyphenyl)methylene]bis(3,5-dimethylphenol), 2,2'-[(3-hydroxy-4-methoxyphenyl)methylene]bis(3,5-dimethylphenol), 2,2'-[(4-hydroxy-3-methoxyphenyl)methylene]bis(3,5-dimethylphenol), 4,4'-[(2-hydroxyphenyl)methylene]bis(2-isopropylphenol), 4,4'-[(3-hydroxyphenyl)methylene]bis(2-isopropylphenol), 4,4'-[(4-hydroxyphenyl)methylene]bis(2-isopropylphenol), 2,2'-[(3-hydroxyphenyl)methylene]bis(3,5,6-trimethylphenol), 2,2'-[(4-hydroxyphenyl)methylene]bis(3,5,6-trimethylphenol), 2,2'-[(3-ethoxy-4-hydroxyphenyl)methylene]bis(3,5-dimethylphenol), 1,1-bis(4-hydroxy-3-methylphenyl)-4-(4-hydroxyphenyl)cyclohexane, 4,4'-[(2-hydroxy-3-methoxyphenyl)methylene]bis(2-isopropylphenol), 4,4'-[(3-hydroxy-4-methoxyphenyl)methylene]bis(2-isopropylphenol), 4,4'-[(4-hydroxy-3-methoxyphenyl)methylene]bis(2-isopropylphenol), 2,2'-[(2-hydroxy-3-methoxyphenyl)methylene]bis(3,5,6-trimethylphenol), 2,2'-[(3-hydroxy-4-methoxyphenyl)methylene]bis(3,5,6-trimethylphenol), 2,2'-[(4-hydroxy-3-methoxyphenyl)methylene]bis(3,5,6-trimethylphenol), 4,4'-[(3-ethoxy-4-hydroxyphenyl)methylene]bis(2-isopropylphenol), 2,2'-[(3-ethoxy-4-hydroxyphenyl)methylene]bis(3,5,6-trimethylphenol), 4,4'-[(3-ethoxy-4-hydroxyphenyl)methylene]bis(2,3,6-trimethylphenol), 1,1-bis(3,5-dimethyl-4-hydroxyphenyl)-4-(4-hydroxyphenyl)cyclohexane, 4,4'-[(4-hydroxy-3-methoxyphenyl)methylene]bis(2-tert-butyl-5-methylphenol), 4,4'-[(2-hydroxyphenyl)methylene]bis(2-cyclohexylphenol), 4,4'-[(3-hydroxyphenyl)methylene]bis(2-cyclohexylphenol), 4,4'-[(3-ethoxy-4-hydroxyphenyl)methylene]bis(2-tert-butyl-6-methylphenol), 4,4'-[(3-methoxy-2-hydroxyphenyl)methylene]bis(2-cyclohexylphenol), 4,4'-[(3-hydroxy-4-methoxyphenyl)methylene]bis(2-cyclohexylphenol), 4,4'-[1-{4-[1-(3-fluoro-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-tert-butylphenol), 4,4'-[1-{4-[1-(3,5-dimethyl-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2,6-dimethylphenol), 4,4'-[(3-ethoxy-4-hydroxyphenyl)methylene]bis(2-cyclohexyl-5-methylphenol), 4,4'-[(3-cyclohexyl-4-hydroxyphenyl)ethylidene]bis(2-cyclohexylphenol), 4,4'-[(5-cyclohexyl-4-hydroxy-2-methoxyphenyl)ethylidene]bis(2-cyclohexyl-5-methylphenol), 4,4'-[1-{4-[1-(3-cyclohexyl-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-cyclohexylphenol), 4,4'-[1-{4-[1-(3-fluoro-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bisphenol, 4,4'-[1-{4-[1-(3-fluoro-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2-methylphenol), 4,4'-[1-{4-[1-(3-fluoro-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis(2,6-dimethylphenol), 2,6-bis[(5-fluoro-2-hydroxyphenyl)methyl]-4-methylphenol, 2,6-bis[(3,5-dimethyl-4-hydroxyphenyl)methyl]-4-methylphenol, 2,6-bis[(4-hydroxyphenyl)methyl]-4-methylphenol, 2,6-bis[(4-hydroxyphenyl)methyl]-4-ethylphenol, 2,4-bis[(4-hydroxy-3-methylphenyl)methyl]-6-methylphenol, 2,6-bis[(4-hydroxy-3-methylphenyl)methyl]-4-methylphenol, 2,6-bis[(4-hydroxy-3-methylphenyl)methyl]-4-ethylphenol, 2,6-bis[(2-hydroxy-5-methylphenyl)methyl]-4-ethylphenol, 2,6-bis[(3,5-dimethyl-2-hydroxyphenyl)methyl]-4-methylphenol, 2,6-bis[(2,4-dimethyl-6-hydroxyphenyl)methyl]-4-methylphenol, 2,4-bis[(4-hydroxyphenyl)methyl]-6-cyclohexylphenol, 2,6-bis[(2,5-dimethyl-4-hydroxyphenyl)methyl]-3,4-dimethylphenol, 2,6-bis[(2,5-dimethyl-4-hydroxyphenyl)methyl]-4-ethylphenol, 2,6-bis[(4-hydroxy-2,3,6-trimethylphenyl)methyl]-4-methylphenol, 2,4-bis[(4-hydroxy-3-methylphenyl)methyl]-6-cyclohexylphenol, 2,6-bis[(4-hydroxy-3-methylphenyl)methyl]-4-cyclohexylphenol, 2,6-bis[(2-hydroxy-5-methylphenyl)methyl]-4-cyclohexylphenol, 2,6-bis[(4-hydroxy-2,3,5-trimethylphenyl)methyl]-4-ethylphenol, 2,4-bis[(2,5-dimethyl-4-hydroxyphenyl)methyl]-6-cyclohexylphenol, 4,4′,4″-methylidynetris(2,6-dimethylphenol), α-(4-hydroxy-3-methylphenyl)-α,α′-bis(4-hydroxyphenyl)-1-ethyl-4-isopropylbenzene, α′-(4-hydroxy-3-methylphenyl)-α,α-bis(4-hydroxyphenyl)-1-ethyl-4-isopropylbenzene, α,α-bis(4-hydroxy-3-methylphenyl)-α′-(4-hydroxyphenyl)-1-ethyl-4-isopropylbenzene, α,α′-bis(4-hydroxy-3-methylphenyl)-α-(4-hydroxyphenyl)-1-ethyl-4-isopropylbenzene, 1,1-bis(4-hydroxyphenyl)-4-[1-(4-hydroxyphenyl)-1-methylpropyl]cyclohexane, 2,6-bis[(3,5-dimethyl-4-hydroxyphenyl)methyl]-4-ethylphenol, 1,1′-bis(4-hydroxyphenyl)-4-[1-(4-hydroxyphenyl)propyl]cyclohexane, 1,1′-bis(4-hydroxy-3-methylphenyl)-4-[1-(4-hydroxyphenyl)propyl]cyclohexane, 1,1′-bis(3,5-dimethyl-4-hydroxyphenyl)-4-[1-(4-hydroxyphenyl)propyl]cyclohexane, 1-(4-hydroxyphenyl)-1-[4,4-bis(4-hydroxyphenyl)cyclohexyl]-4-isopropylcyclohexane, 4,4'-[3-(2,5-dimethyl-4-hydroxyphenyl)butylene]bis(2,5-dimethylphenol), 1,3,5-tri(4-hydroxy-3-phenylphenyl)adamantane, 1,3,5-tri(3-cyclohexyl-4-hydroxyphenyl)adamantane, 2,4-bis[(3,5-dimethyl-4-hydroxyphenyl)methyl]-6-cyclohexylphenol, 2,6-bis[(2,5-dimethyl-4-hydroxyphenyl)methyl]-4-cyclohexylphenol, 2,4-bis[(3-cyclohexyl-4-hydroxyphenyl)methyl]-6-methylphenol, 2,4-bis[(4-hydroxy-2,3,5-trimethylphenyl)methyl]-6-cyclohexylphenol, 2,6-bis[(5-fluoro-2-hydroxyphenyl)methyl]-4-fluorophenol, 2,6-bis[(3-fluoro-4-hydroxyphenyl)methyl]-4-fluorophenol, 2,4-bis[(3-fluoro-4-hydroxyphenyl)methyl]-6-methylphenol, 4,4'-[3-(5-cyclohexyl-4-hydroxy-2-methylphenyl)-3-biphenylpropylidene]bis(5-cyclohexyl-2-methylphenol), 4,4'-[3-(2,5-dimethyl-4-hydroxyphenyl)-3-phenylpropylidene]bis(2,5-dimethylphenol), 2,4-bis[(2,5-dimethyl-4-hydroxyphenyl)methyl]-6-methylphenol, 1,1,2-tris(4-hydroxyphenyl)ethane, 1,1,3-tris(4-hydroxyphenyl)propane, 1,1,4-tris(4-hydroxyphenyl)butane, 1,2,2-tris(4-hydroxyphenyl)propane, 1,2,2-tris(4-hydroxyphenyl)butane, 1,2,2-tris(4-hydroxyphenyl)pentane, 1,2,2-tris(4-hydroxyphenyl)hexane, 1,2,2-tris(4-hydroxyphenyl)heptane, 1,2,2-tris(4-hydroxyphenyl)octane, 1,2,2-tris(4-hydroxyphenyl)-3-methylbutane 1,2,2-tris(4-hydroxyphenyl)-3,3-dimethylbutane, 1,2,2-tris(4-hydroxyphenyl)-4,4-dimethylpentane, 1,3,3-tris(4-hydroxyphenyl)butane, 1,3,3-tris(4-hydroxyphenyl)pentane, 1,3,3-tris(4-hydroxyphenyl)hexane, 1,3,3-tris(4-hydroxyphenyl)heptane, 1,3,3-tris(4-hydroxyphenyl)octane, 1,3,3-tris(4-hydroxyphenyl)nonane, 1,4,4-tris(4-hydroxyphenyl)pentane, 1,4,4-tris(4-hydroxyphenyl)hexane, 1,4,4-tris(4-hydroxyphenyl)heptane, 1,4,4-tris(4-hydroxyphenyl)octane, 1,4,4-tris(4-hydroxyphenyl)nonane, 1,4,4-tris(4-hydroxyphenyl)decane, 1,2,2-tris(2-hydroxyphenyl)propane, 1,1,2-tris(3-hydroxyphenyl)propane, 1-(4-hydroxyphenyl)-2,2-bis(2-hydroxyphenyl)propane, 1,2,2-tris(3-fluoro-4-hydroxyphenyl)propane, 1,2,2-tris(3-chloro-4-hydroxyphenyl)propane, 1,2,2-tris(3-bromo-4-hydroxyphenyl)propane, 2,2-bis(3-ethyl-4-hydroxyphenyl)-1-(4-hydroxyphenyl)propane, 2,2-bis(3-tert-butyl-4-hydroxyphenyl)-1-(4-hydroxyphenyl)propane, 2,2-bis(2-hydroxy-3-biphenylyl)-1-(4-hydroxyphenyl)propane, 2,2-bis(3-trifluoromethyl-4-hydroxyphenyl)-1-(4-hydroxyphenyl)propane, 2-(3-methyl-4-hydroxyphenyl)-1,2-bis(4-hydroxyphenyl)propane, 1-(3-methyl-4-hydroxyphenyl)-2,2-bis(4-hydroxyphenyl)propane, 3-(3-methyl-4-hydroxyphenyl)-1,3-bis(4-hydroxyphenyl)butane, 1-(3-methyl-4-hydroxyphenyl)-3,3-bis(4-hydroxyphenyl)butane, 4-(3-methyl-4-hydroxyphenyl)-1,4-bis(4-hydroxyphenyl)pentane, 1-(3-methyl-4-hydroxyphenyl)-4,4-bis(4-hydroxyphenyl)pentane, 1,2-bis(3-methyl-4-hydroxyphenyl)-2-(4-hydroxyphenyl)propane, 3,3-bis(3-methyl-4-hydroxyphenyl)-1-(4-hydroxyphenyl)butane, 1,3-bis(3-methyl-4-hydroxyphenyl)-3-(4-hydroxyphenyl)butane, 4,4-bis(3-methyl-4-hydroxyphenyl)-1-(4-hydroxyphenyl)pentane, 1,4-bis(3-methyl-4-hydroxyphenyl)-4-(4-hydroxyphenyl)pentane, 1,1,2-tris(3-methyl-4-hydroxyphenyl)ethane, 1,2,2-tris(3-methyl-4-hydroxyphenyl)propane, 1,1,3-tris(3-methyl-4-hydroxyphenyl)propane, 1,3,3-tris(3-methyl-4-hydroxyphenyl)butane, 1,1,4-tris(3-methyl-4-hydroxyphenyl)butane, 1,4,4-tris(3-methyl-4-hydroxyphenyl)pentane, 4,4'-[4-(4-hydroxyphenyl)-sec-butylidene]bis(2-methylphenol) Examples include:

[0031] Examples of compounds having four or more phenolic hydroxyl groups include: Bis[2-hydroxy-3-(2-hydroxy-5-methylbenzyl)-5-methylphenyl]methane, 4,6-bis[(4-hydroxyphenyl)methyl]-1,3-benzenediol, 4,4'-[(3,4-dihydroxyphenyl)methylene]bis(2,6-dimethylphenol), 4,4'-[(3,4-dihydroxyphenyl)methylene]bis(2-cyclohexyl-5-methylphenol), 4,4'-[(3,4-dihydroxyphenyl)methylene]bis(2-methylphenol), 4,4'-[(3,4-dihydroxyphenyl)methylene]bis(2,3,6-trimethylphenol), 1,1,2,2-tetrakis(4-hydroxyphenyl)ethane, 4,4′,4″,4′″-(1,1,2,2-ethanetetrayl)tetrakis(2-methylphenol), 4,4′,4″,4′″-(1,1,2,2-ethanetetrayl)tetrakis(2,6-dimethylphenol), 4,4',4"4'"-(1,4-phenylene)bis(methylidyne)tetrakis(2,6-dimethylphenol), 2,2-bis[4,4-bis(4-hydroxy-3-methylphenyl)cyclohexyl]propane, 2,2'-[(3,4-dihydroxyphenyl)methylene]bis(3,5-dimethylphenol), 4,6-bis[(3,5-dimethyl-4-hydroxyphenyl)methyl]-1,3-benzenediol, 2,2'-[(3,4-dihydroxyphenyl)methylene]bis(3,5,6-trimethylphenol), 4,4'-[(3,4-dihydroxyphenyl)methylene]bis(2-cyclohexylphenol), Bis[4-hydroxy-3-(2-hydroxybenzyl)-5-methylphenyl]methane, Bis[4-hydroxy-3-(3-hydroxybenzyl)-5-methylphenyl]methane, Bis[4-hydroxy-3-(4-hydroxybenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(2-hydroxybenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(3-hydroxybenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(4-hydroxybenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(3-hydroxy-4-methylbenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(4-hydroxy-3-methylbenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(3-hydroxy-2-methylbenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(2-hydroxy-3-methylbenzyl)-5-methylphenyl]methane, α,α′,α″,α′″-tetrakis(4-hydroxyphenyl)-p-xylene, Bis[2-hydroxy-3-(4-hydroxy-2,3,5-trimethylbenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(2,5-dimethyl-3-hydroxybenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(2,5-dimethyl-4-hydroxybenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(2,5-dimethyl-5-hydroxybenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(3,5-dimethyl-4-hydroxybenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(2-hydroxy-3,4,6-trimethylbenzyl)-5-methylphenyl]methane, Bis[2-hydroxy-3-(4-hydroxy-2,3,6-trimethylbenzyl)-5-methylphenyl]methane, 4,4,4′,4′-tetrakis(4-hydroxyphenyl)bicyclohexyl, Bis[4-hydroxy-3-(5-cyclohexyl-4-hydroxy-2-methylbenzyl)-5-methylphenyl]methane, 4,4,4′,4′-tetrakis(4-hydroxy-3-methylphenyl)bicyclohexyl, 4,6-bis(3,5-dimethyl-4-hydroxyphenyl)-1,2-benzenediol, 4,4,4′,4′-tetrakis(3,5-dimethyl-4-hydroxyphenyl)bicyclohexyl, 1,1-bis[5-cyclohexyl-4-hydroxy-3-(2-hydroxy-5-methylbenzyl)phenyl]cyclohexane, 1,1-bis[5-cyclohexyl-4-hydroxy-3-(3,5-dimethyl-4-hydroxybenzyl)phenyl]cyclohexane, 1,1-bis[5-cyclohexyl-4-hydroxy-3-(5-cyclohexyl-4-hydroxy-2-methylbenzyl)phenyl]cyclohexane, 4,6-bis[1-(4-hydroxyphenyl)ethyl]-1,3-benzenediol, 2,2-bis[4-hydroxy-3-(4-hydroxy-3-methylbenzyl)-5-methylphenyl]propane, 2,6-bis[(3,5-dimethyl-4-hydroxyphenyl)benzyl]-4-[α-methyl-(3,5-dimethyl-4-hydroxyphenyl)benzyl]phenol, 4,4,4',4'-tetrakis(3-isopropyl-4-hydroxyphenyl)bicyclohexyl, 4,4'-bis[(3,4-dihydroxyphenyl)methylene]bis(2-isopropylphenol), 2,2'-bis[4,4-bis(4-hydroxyphenyl)cyclohexyl]propane, 2,4,6-tris(4-hydroxybenzyl)-1,3-benzenediol, 4,6-bis(3,5-dimethyl-4-hydroxybenzyl)-1,2,3-benzenetriol, 3,3'-[(2-hydroxyphenyl)methylene]bis(5-methyl-1,2-benzenediol), 2,6-bis(2,4-dihydroxybenzyl)-4-ethylphenol, 2,4-bis(2,4-dihydroxybenzyl)-6-cyclohexylphenol, 2,6-bis(5-tert-butyl-2,3-dihydroxybenzyl)-4-methylphenol, 2,4,6-tris(3,5-dimethyl-4-hydroxybenzyl)-1,2-benzenediol, 2,4,6-tris(3,5-dimethyl-2-hydroxybenzyl)-1,2-benzenediol, 2,6-bis(2,4-dihydroxybenzyl)-3,4-dimethylphenol, 2,6-bis[3-(2-hydroxy-5-methylbenzyl)-2,5-dimethyl-4-hydroxybenzyl]-3,4-dimethylphenol, 4,6-bis(α-methyl-4-hydroxybenzyl)-1,2,3-benzenetriol, 4,4'-[1-{4-[1-(3,5-bis(4-hydroxybenzyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(4-hydroxybenzyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(4-hydroxy-3-methylbenzyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(4-hydroxy-3-methylbenzyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(3,5-dimethyl-4-hydroxybenzyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(3,5-dimethyl-4-hydroxybenzyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(4-hydroxy-2,3,6-trimethylbenzyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(4-hydroxy-2,3,6-trimethylbenzyl)phenol], Bis[5-(2,4-dihydroxybenzyl)-4-hydroxy-3-methylphenyl]methane, Bis[3-(2,4-dihydroxybenzyl)-2,5-dimethyl-4-hydroxyphenyl]methane, Bis[3-(2,4-dihydroxy-3-methylbenzyl)-2,5-dimethyl-4-hydroxyphenyl]methane, Bis[5-(4-hydroxybenzyl)-2,3,4-trihydroxyphenyl]methane, 1,1-bis[5-(4-hydroxybenzoyl)-2,3,4-trihydroxyphenyl]ethane, 3,3′,5,5′-tetrakis(4-hydroxybenzyl)-4,4′-dihydroxybiphenyl, 3,3′,5,5′-tetrakis(4-hydroxy-3-methylbenzyl)-4,4′-dihydroxybiphenyl, 3,3′,5,5′-tetrakis(2-hydroxy-5-methylbenzyl)-4,4′-dihydroxybiphenyl, 3,3′,5,5′-tetrakis(3,5-dimethyl-4-hydroxybenzyl)-4,4′-dihydroxybiphenyl, Bis[3-(α,α-bis(4-hydroxy-3-methylphenyl)methyl-4-hydroxyphenyl]methane, Bis[3,5-bis(2-hydroxy-5-methylbenzyl)-4-hydroxyphenyl]methane, 4,4',4"-ethylidinetris{[2-(2-hydroxy-5-methyl)benzyl]-6-methylphenol}, 2,2-bis[3,5-bis(2-hydroxy-5-methylphenylmethyl)phenyl]propane, Bis[3-(α,α-bis(2,5-dimethyl-4-hydroxyphenyl)methyl-4-hydroxyphenyl]methane, Bis[5-(3,5-dimethyl-4-hydroxybenzyl)-2,3,4-trihydroxyphenyl]methane, Bis[3-(2,3,4-trihydroxybenzyl)-2,5-dimethyl-4-hydroxyphenyl]methane, 1,1-bis[3-(2,3,4-trihydroxybenzyl)-5-cyclohexyl-4-hydroxyphenyl]cyclohexane, 1,8,15,22-tetranonyl-3,5,10,12,17,19,24,26-octahydroxy[1,1,1,1]-metacyclophane, 4,4'-[1-{4-[1-(3,5-bis(4-hydroxy-2-methylbenzyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(4-hydroxy-2-methylbenzyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(2-hydroxy-5-methylbenzyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(2-hydroxy-5-methylbenzyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(3-ethyl-4-hydroxybenzyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(3-ethyl-4-hydroxybenzyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(3,5-dimethyl-2-hydroxyphenyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(3,5-dimethyl-2-hydroxyphenyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(4-hydroxy-3-isopropylphenyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(4-hydroxy-3-isopropylphenyl)phenol], Bis[3-(α,α-bis(3,5-dimethyl-4-hydroxyphenyl)methyl-4-hydroxyphenyl]methane, Bis[3-(α,α-bis(5-cyclohexyl-4-hydroxy-2-methylphenyl)methyl-4-hydroxyphenyl]methane, 4,4'-[4-hydroxy-3,5-bis(2-hydroxybenzyl)methylene]bis[2,6-bis(2-hydroxybenzyl)]phenol, 4,4'-[4-hydroxy-3,5-bis(4-hydroxybenzyl)methylene]bis[2,6-bis(4-hydroxybenzyl)]phenol, 4,4',4"-Ethylidinetris[2,6-bis(2-hydroxybenzyl)phenol], 4,4',4"-Ethylidinetris[2,6-bis(4-hydroxybenzyl)phenol], 2,2-bis[3,5-bis(4-hydroxy-3-methylbenzyl)-4-hydroxyphenyl]propane, 1,8,15,22-tetraethyl-3,5,10,12,17,19,24,26-octahydroxy[1,1,1,1]-metacyclophane, α,α′,α″,α′″-tetrakis(3,5-dimethyl-4-hydroxyphenyl)-1,4-dimethylbenzene, 4,4'-[1-{4-[1-(3,5-bis(2-hydroxy-5-isopropylphenyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(2-hydroxy-5-isopropylphenyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(4-hydroxy-2,3,5-trimethylphenyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(4-hydroxy-2,3,5-trimethylphenyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(3-sec-butyl-4-hydroxyphenyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(3-sec-butyl-4-hydroxyphenyl)phenol], 4,4'-[1-{4-[1-(3,5-bis(3-tert-butyl-4-hydroxyphenyl)-4-hydroxyphenyl)-1-methylethyl]phenyl}ethylidene]bis[2,6-bis(3-tert-butyl-4-hydroxyphenyl)phenol], 2,6-bis{[3-(2,4-dihydroxybenzyl)-2,5-dimethyl-4-hydroxy]benzyl}-4-methylphenol, 1,1-bis[5-(2,4-dihydroxybenzyl)-3-cyclohexyl-4-hydroxyphenyl]cyclohexane, 1,1-bis[5-(2,3,4-trihydroxybenzyl)-3-cyclohexyl-4-hydroxyphenyl]cyclohexane, 2,2-bis[4,4',4'',4'''-tetrakis(3,5-dihydroxymethyl-4-hydroxyphenyl)cyclohexyl]propane Examples include:

[0032] Examples of carboxylic acids and their derivatives include: 3,5-di(α-methylbenzyl)salicylic acid, 4-(2-p-methoxyphenyloxyethoxy)salicylic acid, 4-hydroxyphenylbenzoic acid, 4-chlorobenzoic acid, 4-[2-(p-methoxyphenoxy)ethyloxy]salicylic acid, 4-[3-(p-tolylsulfonyl)propyloxy]salicylic acid, 5-[p-(2-p-methoxyphenoxyethoxy)cumyl]salicylic acid, 4-octyloxycarbonylaminosalicylic acid, 3,5-distyrenated salicylic acid, N-(p-toluenesulfonyl)-glycine, N-(p-toluenesulfonyl)-alanine, N-(p-toluenesulfonyl)-β-alanine, N-phenylaminocarbonyl-glycine, N-phenylaminocarbonyl-valine, N-(m-tolylaminocarbonyl)-phenylalanine, N-(m-tolylaminocarbonyl)-cysteine-S-benzyl, N-(m-tolylaminocarbonyl)-methionine, N-(m-tolylaminocarbonyl)-tyrosine, N-(p-tolylaminocarbonyl)-phenylalanine, N-(p-tolylaminocarbonyl)-cysteine-S-benzyl, N-(p-tolylaminocarbonyl)-methionine, N-(phenylaminocarbonyl)-methionine, N-(p-tolylaminocarbonyl)-tyrosine, 2-O-(phenylaminocarbonyl)-mandelic acid, 2-O-(p-tolylaminocarbonyl)-mandelic acid, 2-O-(m-tolylaminocarbonyl)-mandelic acid, 2-O-(o-tolylaminocarbonyl)-mandelic acid, 2-O-(1-naphthylaminocarbonyl)-mandelic acid, 2-O-(3-isopropenyl-α,α-dimethylbenzylaminocarbonyl)-mandelic acid, 2-O-(benzylaminocarbonyl)-mandelic acid, 2-O-(phenethylaminocarbonyl)-mandelic acid, 2-O-(phenylaminocarbonyl)-lactic acid, 2-O-(p-tolylaminocarbonyl)-lactic acid, 2-O-(m-tolylaminocarbonyl)-lactic acid, 2-O-(o-tolylaminocarbonyl)-lactic acid, 2-O-(1-naphthylaminocarbonyl)-lactic acid, 2-O-(3-isopropenyl-α,α-dimethylbenzylaminocarbonyl)-lactic acid, 2-O-(benzylaminocarbonyl)-lactic acid, 2-O-(phenethylaminocarbonyl)-lactic acid Examples include:

[0033] Examples of acidic phosphate ester compounds include methyl acid phosphate, ethyl acid phosphate, butyl acid phosphate, butoxyethyl acid phosphate, 2-ethylhexyl acid phosphate, isodecyl acid phosphate, isotridecyl acid phosphate, oleyl acid phosphate, tetracosyl acid phosphate, monobutyl phosphate, dibutyl phosphate, monoisodecyl phosphate, and bis(2-ethylhexyl) phosphate.

[0034] As component (b), a compound having a phenolic hydroxyl group is preferred because it can more effectively exhibit thermochromic properties, but compounds selected from aromatic carboxylic acids, aliphatic carboxylic acids having 2 to 5 carbon atoms, carboxylic acid metal salts, acidic phosphate esters and metal salts thereof, and 1,2,3-triazole and derivatives thereof may also be used.

[0035] The component (c) of the reaction medium that reversibly induces an electron donor-acceptor reaction between the components (a) and (b) in a specific temperature range will now be described. Examples of the component (c) include alcohols, esters, ketones, ethers, and acid amides.

[0036] When a reversible thermochromic composition is encapsulated in microcapsules and used for secondary processing, low molecular weight compounds will evaporate out of the capsules when subjected to high heat treatment, so compounds with 10 or more carbon atoms are preferably used to stably retain the composition within the capsules.

[0037] As the alcohols, aliphatic monohydric saturated alcohols having 10 or more carbon atoms are effective, and examples thereof include decyl alcohol, undecyl alcohol, dodecyl alcohol, tridecyl alcohol, tetradecyl alcohol, pentadecyl alcohol, hexadecyl alcohol, heptadecyl alcohol, octadecyl alcohol, eicosyl alcohol, and docosyl alcohol.

[0038] As the esters, esters having 10 or more carbon atoms are effective, and examples thereof include esters obtained from any combination of a monocarboxylic acid having an aliphatic, alicyclic or aromatic ring and a monohydric alcohol having an aliphatic, alicyclic or aromatic ring, esters obtained from any combination of a polycarboxylic acid having an aliphatic, alicyclic or aromatic ring and a monohydric alcohol having an aliphatic, alicyclic or aromatic ring, esters obtained from any combination of a monocarboxylic acid having an aliphatic, alicyclic or aromatic ring and a polyhydric alcohol having an aliphatic, alicyclic or aromatic ring, and Examples of esters include esters obtained from any combination thereof, such as ethyl caprylate, octyl caprylate, stearyl caprylate, myristyl caprate, docosyl caprate, 2-ethylhexyl laurate, n-decyl laurate, 3-methylbutyl myristate, cetyl myristate, isopropyl palmitate, neopentyl palmitate, nonyl palmitate, cyclohexyl palmitate, n-butyl stearate, 2-methylbutyl stearate, 3,5,5-trimethylhexyl stearate, and stearate. n-Undecyl tearic acid, pentadecyl stearate, stearyl stearate, cyclohexylmethyl stearate, isopropyl behenate, hexyl behenate, lauryl behenate, behenyl behenate, cetyl benzoate, stearyl 4-tert-butylbenzoate, dimyristyl phthalate, distearyl phthalate, dimyristyl oxalate, dicetyl oxalate, dicetyl malonate, dilauryl succinate, dilauryl glutarate, diundecyl adipate, dilauryl azelate, di-(n-nonyl) sebacate ), dineopentyl 1,18-octadecylmethylenedicarboxylate, ethylene glycol dimyristate, propylene glycol dilaurate, propylene glycol distearate, hexylene glycol dipalmitate, 1,5-pentanediol distearate, 1,2,6-hexanetriol trimyristate, 1,4-cyclohexanediol didecyl, 1,4-cyclohexanedimethanol dimyristate, xylene glycol dicaprinate, xylene glycol distearate, and the like can be mentioned as examples.

[0039] Also effective are esters of saturated fatty acids and branched fatty alcohols, and ester compounds of unsaturated fatty acids or branched or substituted saturated fatty acids and branched aliphatic alcohols or aliphatic alcohols having 16 or more carbon atoms.

[0040] Examples of the ester compounds include 2-ethylhexyl butyrate, 2-ethylhexyl behenate, 2-ethylhexyl myristate, 2-ethylhexyl caprate, 3,5,5-trimethylhexyl laurate, 3,5,5-trimethylhexyl palmitate, 3,5,5-trimethylhexyl stearate, 2-methylbutyl caproate, 2-methylbutyl caprylate, 2-methylbutyl caprate, 1-ethylpropyl palmitate, 1-ethylpropyl stearate, 1-ethylpropyl behenate, and lauric acid. 1-Ethylhexyl Myristate, 1-Ethylhexyl Palmitate, 2-Methylpentyl Caproate, 2-Methylpentyl Caprylate, 2-Methylpentyl Caprate, 2-Methylpentyl Laurate, 2-Methylbutyl Stearate, 2-Methylbutyl Stearate, 3-Methylbutyl Stearate, 1-Methylheptyl Stearate, 2-Methylbutyl Behenate, 3-Methylbutyl Behenate, 1-Methylheptyl Stearate, 1-Methylheptyl Behenate, 1-Ethyl Caproate Pentyl, 1-ethylpentyl palmitate, 1-methylpropyl stearate, 1-methyloctyl stearate, 1-methylhexyl stearate, 1,1-dimethylpropyl laurate, 1-methylpentyl caprate, 2-methylhexyl palmitate, 2-methylhexyl stearate, 2-methylhexyl behenate, 3,7-dimethyloctyl laurate, 3,7-dimethyloctyl myristate, 3,7-dimethyloctyl palmitate, 3,7-dimethyloctyl stearate, 3,7 behenate Examples include 3,7-dimethyloctyl erucate, stearyl oleate, behenyl oleate, stearyl linoleate, behenyl linoleate, 3,7-dimethyloctyl erucate, stearyl erucate, isostearyl erucate, cetyl isostearate, stearyl isostearate, 2-methylpentyl 12-hydroxystearate, 2-ethylhexyl 18-bromostearate, isostearyl 2-ketomyristate, 2-ethylhexyl 2-fluoromyristate, cetyl butyrate, stearyl butyrate, and behenyl butyrate.

[0041] Furthermore, in order to cause a color change that exhibits large hysteresis characteristics in the color density-temperature curve and to impart color memory properties that depend on temperature changes, exemplified are carboxylic acid ester compounds that exhibit a ΔT value (melting point-cloud point) of 5°C or more and less than 50°C, as described in Japanese Patent Publication No. 4-17154, such as carboxylic acid esters containing a substituted aromatic ring in the molecule, esters of carboxylic acids containing an unsubstituted aromatic ring and aliphatic alcohols having 10 or more carbon atoms, carboxylic acid esters containing a cyclohexyl group in the molecule, esters of fatty acids having 6 or more carbon atoms and unsubstituted aromatic alcohols or phenols, esters of fatty acids having 8 or more carbon atoms and branched aliphatic alcohols, esters of dicarboxylic acids and aromatic alcohols or branched aliphatic alcohols, dibenzyl cinnamate, heptyl stearate, didecyl adipate, dilauryl adipate, dimyristyl adipate, dicetyl adipate, distearyl adipate, trilaurin, trimyristin, tristearin, dimyristin, and distearin.

[0042] Also effective are fatty acid ester compounds obtained from an odd-numbered aliphatic monohydric alcohol having 9 or more carbon atoms and an even-numbered aliphatic carboxylic acid, and fatty acid ester compounds having a total of 17 to 23 carbon atoms obtained from n-pentyl alcohol or n-heptyl alcohol and an even-numbered aliphatic carboxylic acid having 10 to 16 carbon atoms.

[0043] Examples of fatty acid ester compounds include n-pentadecyl acetate, n-tridecyl butyrate, n-pentadecyl butyrate, n-undecyl caproate, n-tridecyl caproate, n-pentadecyl caproate, n-nonyl caprylate, n-undecyl caprylate, n-tridecyl caprylate, n-pentadecyl caprylate, n-heptyl caprate, n-nonyl caprate, n-undecyl caprate, n-tridecyl caprate, n-pentadecyl caprate, n-pentyl laurate, n-heptyl laurate, n-nonyl laurate, n-undecyl laurate, n-tridecyl laurate, n-pentadecyl laurate, n-pentyl myristate, and n-heptyl myristate. , n-nonyl myristate, n-undecyl myristate, n-tridecyl myristate, n-pentadecyl myristate, n-pentyl palmitate, n-heptyl palmitate, n-nonyl palmitate, n-undecyl palmitate, n-tridecyl palmitate, n-pentadecyl palmitate, n-nonyl stearate, n-undecyl stearate, n-tridecyl stearate, n-pentadecyl stearate, n-nonyl eicosanoate, n-undelci eicosanoate, n-tridecyl eicosanoate, n-pentadecyl eicosanoate, n-nonyl behenate, n-undecyl behenate, n-tridecyl behenate, n-pentadecyl behenate, and the like.

[0044] As the ketones, aliphatic ketones having a total carbon number of 10 or more are effective, and examples thereof include 2-decanone, 3-decanone, 4-decanone, 2-undecanone, 3-undecanone, 4-undecanone, 5-undecanone, 2-dodecanone, 3-dodecanone, 4-dodecanone, 5-dodecanone, 2-tridecanone, 3-tridecanone, 2-tetradecanone, 2-pentadecanone, 8-pentadecanone, 2-hexadecanone, 3-hexadecanone, 9-heptadecanone, 2-pentadecanone, 2-octadecanone, 2-nonadecanone, 10-nonadecanone, 2-eicosanone, 11-eicosanone, 2-heneicosanone, 2-docosanone, laurone, stearone, and the like.

[0045] Further, aryl alkyl ketones having a total carbon number of 12 to 24, for example, n-octadecanophenone, n-heptadecanophenone, n-hexadecanophenone, n-pentadecanophenone, n-tetradecanophenone, 4-n-dodecaacetophenone, n-tridecanophenone, 4-n-undecanoacetophenone, n-laurophenone, 4-n-decanoacetophenone, n-undecanophenone, 4-n-nonylacetophenone, n-decanophenone, 4-n-octylacetophenone, n ... Examples of acetophenone include 4-n-heptylacetophenone, n-octanophenone, 4-n-hexylacetophenone, 4-n-cyclohexylacetophenone, 4-tert-butylpropiophenone, n-heptaphenone, 4-n-pentylacetophenone, cyclohexyl phenyl ketone, benzyl-n-butyl ketone, 4-n-butylacetophenone, n-hexanophenone, 4-isobutylacetophenone, 1-acetonaphthone, 2-acetonaphthone, and cyclopentyl phenyl ketone.

[0046] As the ethers, aliphatic ethers having a total of 10 or more carbon atoms are effective, and examples thereof include dipentyl ether, dihexyl ether, diheptyl ether, dioctyl ether, dinonyl ether, didecyl ether, diundecyl ether, didodecyl ether, ditridecyl ether, ditetradecyl ether, dipentadecyl ether, dihexadecyl ether, dioctadecyl ether, decanediol dimethyl ether, undecanediol dimethyl ether, dodecanediol dimethyl ether, tridecanediol dimethyl ether, decanediol diethyl ether, and undecanediol diethyl ether.

[0047] Examples of acid amides include acetamide, propionic acid amide, butyric acid amide, caproic acid amide, caprylic acid amide, capric acid amide, lauric acid amide, myristic acid amide, palmitic acid amide, stearic acid amide, behenic acid amide, oleic acid amide, erucic acid amide, benzamide, caproic acid anilide, caprylic acid anilide, capric acid anilide, lauric acid anilide, myristic acid anilide, palmitic acid anilide, stearic acid anilide, behenic acid anilide, oleic acid anilide, erucic acid anilide, and N-methyl caproate. amide, caprylic acid N-methylamide, capric acid N-methylamide, lauric acid N-methylamide, myristic acid N-methylamide, palmitic acid N-methylamide, stearic acid N-methylamide, behenic acid N-methylamide, oleic acid N-methylamide, erucic acid N-methylamide, lauric acid N-ethylamide, myristic acid N-ethylamide, palmitic acid N-ethylamide, stearic acid N-ethylamide, oleic acid N-ethylamide, lauric acid N-butylamide, myristic acid N-butylamide, palmitic acid N-butylamide, stearate Stearic acid N-butylamide, oleic acid N-butylamide, lauric acid N-octylamide, myristic acid N-octylamide, palmitic acid N-octylamide, stearic acid N-octylamide, oleic acid N-octylamide, lauric acid N-dodecylamide, myristic acid N-dodecylamide, palmitic acid N-dodecylamide, stearic acid N-dodecylamide, oleic acid N-dodecylamide, dilauric acid amide, dimyristic acid amide, dipalmitic acid amide, distearic acid amide, dioleic acid amide, trilauric acid amide, trilauric acid amide Rimyristic acid amide, tripalmitic acid amide, tristearic acid amide, trioleic acid amide, succinic acid amide, adipic acid amide, glutaric acid amide, malonic acid amide, azelaic acid amide, maleic acid amide, succinic acid N-methylamide, adipic acid N-methylamide, glutaric acid N-methylamide, malonic acid N-methylamide, azelaic acid N-methylamide, succinic acid N-ethylamide, adipic acid N-ethylamide, glutaric acid N-ethylamide, malonic acid N-ethylamide, azelaic acid N-ethylamide, succinic acid N-butylamide,Examples include adipic acid N-butylamide, glutaric acid N-butylamide, malonic acid N-butylamide, adipic acid N-octylamide, and adipic acid N-dodecylamide.

[0048] Furthermore, the component (iii) may be a compound represented by the following formula (1). [ka] [wherein R1 represents a hydrogen atom or a methyl group, m represents an integer of 0 to 2, and either X1 or X2 represents -(CH2) n OCOR2 or (CH2) n COOR2, and the other represents a hydrogen atom; n represents an integer of 0 to 2; R2 represents an alkyl or alkenyl group having 4 or more carbon atoms; Y1 and Y2 each independently represent a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, a methoxy group, or a halogen atom; and r and p each independently represent an integer of 1 to 3.

[0049] Of the compounds represented by formula (3), it is preferable that R1 is a hydrogen atom, since this results in a reversible thermochromic composition with a wider hysteresis width, and it is even more preferable that R1 is a hydrogen atom and m is 0.

[0050] Among the compounds represented by formula (1), the compound represented by the following formula (2) is more preferred. [ka] (In the formula, R represents an alkyl group or alkenyl group having 8 or more carbon atoms, preferably an alkyl group having 10 to 24 carbon atoms, and more preferably an alkyl group having 12 to 22 carbon atoms.)

[0051] Examples of the compound represented by formula (2) include 4-benzyloxyphenylethyl octanoate, 4-benzyloxyphenylethyl nonanoate, 4-benzyloxyphenylethyl decanoate, 4-benzyloxyphenylethyl undecanoate, 4-benzyloxyphenylethyl dodecanoate, 4-benzyloxyphenylethyl tridecanoate, 4-benzyloxyphenylethyl tetradecanoate, 4-benzyloxyphenylethyl pentadecanoate, 4-benzyloxyphenylethyl hexadecanoate, 4-benzyloxyphenylethyl heptadecanoate, and 4-benzyloxyphenylethyl octadecanoate.

[0052] Furthermore, the component (iii) may be a compound represented by the following formula (3). [ka] (In the formula, R represents an alkyl or alkenyl group having 8 or more carbon atoms, m and n each independently represent an integer of 1 to 3, and X and Y each independently represent a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, an alkoxy group having 1 to 4 carbon atoms, or a halogen atom.)

[0053] Examples of the compound represented by formula (3) include 1,1-diphenylmethyl octanoate, 1,1-diphenylmethyl nonanoate, 1,1-diphenylmethyl decanoate, 1,1-diphenylmethyl undecanoate, 1,1-diphenylmethyl dodecanoate, 1,1-diphenylmethyl tridecanoate, 1,1-diphenylmethyl tetradecanoate, 1,1-diphenylmethyl pentadecanoate, 1,1-diphenylmethyl hexadecanoate, 1,1-diphenylmethyl heptadecanoate, and 1,1-diphenylmethyl octadecanoate.

[0054] Furthermore, the component (iii) may be a compound represented by the following formula (4). [ka] (In the formula, X represents a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, a methoxy group, or a halogen atom; m represents an integer of 1 to 3; and n represents an integer of 1 to 20.)

[0055] Examples of the compound represented by formula (4) include a diester of malonic acid and 2-[4-(4-chlorobenzyloxy)phenyl]ethanol, a diester of succinic acid and 2-(4-benzyloxyphenyl)ethanol, a diester of succinic acid and 2-[4-(3-methylbenzyloxy)phenyl]ethanol, a diester of glutaric acid and 2-(4-benzyloxyphenyl)ethanol, a diester of glutaric acid and 2-[4-(4-chlorobenzyloxy)phenyl]ethanol, a diester of adipic acid and 2-(4-benzyloxyphenyl)ethanol, a diester of pimelic acid and 2-(4-benzyloxyphenyl)ethanol, a diester of suberic acid and 2-(4-benzyloxyphenyl)ethanol, a diester of suberic acid and 2-[4-(3-methylbenzyloxy)phenyl]ethanol, a diester of glutaric acid and 2-(4-benzyloxyphenyl)ethanol, a diester of adipic acid and 2-(4-benzyloxyphenyl)ethanol, a diester of pimelic acid and 2-(4-benzyloxyphenyl)ethanol, a diester of suberic acid and 2-[4-(3-methylbenzyloxy)phenyl]ethanol, a diester of adipic acid and 2-(4-benzyloxyphenyl) ... Examples include the diester of suberic acid and 2-[4-(4-chlorobenzyloxy)phenyl]ethanol, the diester of suberic acid and 2-[4-(2,4-dichlorobenzyloxy)phenyl]ethanol, the diester of suberic acid and 2-[4-(2,4-dichlorobenzyloxy)phenyl]ethanol, the diester of azelaic acid and 2-(4-benzyloxyphenyl)ethanol, the diester of sebacic acid and 2-(4-benzyloxyphenyl)ethanol, the diester of 1,10-decanedicarboxylic acid and 2-(4-benzyloxyphenyl)ethanol, the diester of 1,18-octadecanedicarboxylic acid and 2-(4-benzyloxyphenyl)ethanol, and the diester of 1,18-octadecanedicarboxylic acid and 2-[4-(2-methylbenzyloxy)phenyl]ethanol.

[0056] Furthermore, the component (iii) may be a compound represented by the following formula (5). [ka] (In the formula, R represents an alkyl group or alkenyl group having 1 to 21 carbon atoms, and n represents an integer of 1 to 3.)

[0057] Examples of the compound represented by formula (5) include a diester of 1,3-bis(2-hydroxyethoxy)benzene and capric acid, a diester of 1,3-bis(2-hydroxyethoxy)benzene and undecanoic acid, a diester of 1,3-bis(2-hydroxyethoxy)benzene and lauric acid, a diester of 1,3-bis(2-hydroxyethoxy)benzene and myristic acid, a diester of 1,4-bis(hydroxymethoxy)benzene and butyric acid, a diester of 1,4-bis(hydroxymethoxy)benzene and isovaleric acid, and a diester of 1,4-bis(2-hydroxyethoxy)benzene and acetic acid. Examples of such esters include esters of 1,4-bis(2-hydroxyethoxy)benzene and propionic acid, diesters of 1,4-bis(2-hydroxyethoxy)benzene and valeric acid, diesters of 1,4-bis(2-hydroxyethoxy)benzene and caproic acid, diesters of 1,4-bis(2-hydroxyethoxy)benzene and caprylic acid, diesters of 1,4-bis(2-hydroxyethoxy)benzene and capric acid, diesters of 1,4-bis(2-hydroxyethoxy)benzene and lauric acid, and diesters of 1,4-bis(2-hydroxyethoxy)benzene and myristic acid.

[0058] Furthermore, the component (iii) may be a compound represented by the following formula (6). [ka] (In the formula, X represents a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, an alkoxy group having 1 to 4 carbon atoms, or a halogen atom; m represents an integer of 1 to 3; and n represents an integer of 1 to 20.)

[0059] Examples of the compound represented by formula (6) include a diester of succinic acid and 2-phenoxyethanol, a diester of suberic acid and 2-phenoxyethanol, a diester of sebacic acid and 2-phenoxyethanol, a diester of 1,10-decanedicarboxylic acid and 2-phenoxyethanol, and a diester of 1,18-octadecanedicarboxylic acid and 2-phenoxyethanol.

[0060] Furthermore, the component (iii) may be a compound represented by the following formula (7). [ka] (In the formula, R represents an alkyl group having 4 to 22 carbon atoms, a cycloalkylalkyl group, a cycloalkyl group, or an alkenyl group having 4 to 22 carbon atoms; X represents a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, an alkoxy group having 1 to 4 carbon atoms, or a halogen atom; and n represents 0 or 1.)

[0061] Examples of the compound represented by formula (7) include decyl 4-phenylbenzoate, lauryl 4-phenylbenzoate, myristyl 4-phenylbenzoate, cyclohexylethyl 4-phenylbenzoate, octyl 4-biphenylacetate, nonyl 4-biphenylacetate, decyl 4-biphenylacetate, lauryl 4-biphenylacetate, myristyl 4-biphenylacetate, tridecyl 4-biphenylacetate, pentadecyl 4-biphenylacetate, cetyl 4-biphenylacetate, cyclopentyl 4-biphenylacetate, cyclohexylmethyl 4-biphenylacetate, hexyl 4-biphenylacetate, and cyclohexylmethyl 4-biphenylacetate.

[0062] Furthermore, the component (iii) may be a compound represented by the following formula (8). [ka] (In the formula, R represents an alkyl group having 3 to 18 carbon atoms or an aliphatic acyl group having 3 to 18 carbon atoms; X represents a hydrogen atom, an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 or 2 carbon atoms, or a halogen atom; Y represents a hydrogen atom or a methyl group; and Z represents a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, an alkoxy group having 1 or 2 carbon atoms, or a halogen atom.) Examples of the compound represented by formula (8) include phenoxyethyl 4-butoxybenzoate, phenoxyethyl 4-pentyloxybenzoate, phenoxyethyl 4-tetradecyloxybenzoate, esters of phenoxyethyl 4-hydroxybenzoate and dodecanoic acid, and dodecyl ether of phenoxyethyl vanillate.

[0063] Furthermore, the component (iii) may be a compound represented by the following formula (9). [ka] (In the formula, R represents any one of an alkyl group having 4 to 22 carbon atoms, an alkenyl group having 4 to 22 carbon atoms, a cycloalkylalkyl group, and a cycloalkyl group; X represents any one of a hydrogen atom, an alkyl group, an alkoxy group, and a halogen atom; Y represents any one of a hydrogen atom, an alkyl group, an alkoxy group, and a halogen atom; and n represents 0 or 1.)

[0064] Examples of the compound represented by formula (9) include the benzoate ester of octyl 4-hydroxybenzoate, the benzoate ester of decyl 4-hydroxybenzoate, the 4-methoxybenzoate ester of heptyl 4-hydroxybenzoate, the 2-methoxybenzoate ester of dodecyl 4-hydroxybenzoate, and the benzoate ester of cyclohexylmethyl 4-hydroxybenzoate.

[0065] Furthermore, the component (iii) may be a compound represented by the following formula (10). [ka] (In the formula, R represents any one of an alkyl group having 3 to 18 carbon atoms, a cycloalkylalkyl group having 6 to 11 carbon atoms, a cycloalkyl group having 5 to 7 carbon atoms, and an alkenyl group having 3 to 18 carbon atoms; X represents any one of a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, and a halogen atom; and Y represents any one of a hydrogen atom, an alkyl group having 1 to 4 carbon atoms, a methoxy group, an ethoxy group, and a halogen atom.)

[0066] Examples of the compound represented by formula (10) include phenoxyethyl ether of nonyl 4-hydroxybenzoate, phenoxyethyl ether of decyl 4-hydroxybenzoate, phenoxyethyl ether of undecyl 4-hydroxybenzoate, and phenoxyethyl ether of dodecyl vanillate.

[0067] Furthermore, the component (iii) may be a compound represented by the following formula (11). [ka] (In the formula, R represents a cycloalkyl group having 3 to 8 carbon atoms or a cycloalkylalkyl group having 4 to 9 carbon atoms, and n represents an integer of 1 to 3.)

[0068] Examples of the compound represented by formula (11) include a diester of 1,3-bis(2-hydroxyethoxy)benzene and cyclohexanecarboxylic acid, a diester of 1,4-bis(2-hydroxyethoxy)benzene and cyclohexanepropionic acid, and a diester of 1,3-bis(2-hydroxyethoxy)benzene and cyclohexanepropionic acid.

[0069] Furthermore, the component (iii) may be a compound represented by the following formula (12). [ka] (In the formula, R represents any one of an alkyl group having 3 to 17 carbon atoms, a cycloalkyl group having 3 to 8 carbon atoms, and a cycloalkylalkyl group having 5 to 8 carbon atoms; X represents any one of a hydrogen atom, an alkyl group having 1 to 5 carbon atoms, a methoxy group, an ethoxy group, and a halogen atom; and n represents an integer of 1 to 3.)

[0070] Examples of the compound represented by formula (12) include a diester of 4-phenylphenol ethylene glycol ether and cyclohexanecarboxylic acid, a diester of 4-phenylphenol diethylene glycol ether and lauric acid, a diester of 4-phenylphenol triethylene glycol ether and cyclohexanecarboxylic acid, a diester of 4-phenylphenol ethylene glycol ether and octanoic acid, a diester of 4-phenylphenol ethylene glycol ether and nonanoic acid, a diester of 4-phenylphenol ethylene glycol ether and decanoic acid, and a diester of 4-phenylphenol ethylene glycol ether and myristic acid.

[0071] Furthermore, reversible thermochromic compositions of the heat-coloring type (which develops color upon heating and loses color upon cooling) can also be applied (see FIG. 3), using specific alkoxyphenol compounds having a linear or branched alkyl group with 3 to 18 carbon atoms as the electron-accepting compound (Japanese Patent Application Laid-Open Nos. 11-129623 and 11-5973), specific hydroxybenzoic acid esters (Japanese Patent Application Laid-Open No. 2001-105732), or gallic acid esters (Japanese Patent Application Laid-Open Nos. 51-44706 and 2003-253149).

[0072] The above-mentioned reversible thermochromic composition is a compatible solution containing the above-mentioned components (a), (b), and (c) as essential components, and the proportions of each component depend on the concentration, discoloration temperature, discoloration form, and type of each component. Generally, the component ratios that achieve the desired properties are in the range of 1 part of component (a) to 0.1 to 100, preferably 0.1 to 50, and more preferably 0.5 to 20, of component (b), and 5 to 200, preferably 5 to 100, and more preferably 10 to 100, of component (c) (all of the above proportions are in parts by mass).

[0073] Furthermore, the reversible thermochromic composition may contain various light stabilizers as required. The light stabilizer is included to prevent photodegradation of the reversible thermochromic composition consisting of components (A), (B), and (C), and is blended in a proportion of 0.3 to 24% by mass, preferably 0.3 to 16% by mass, per 1% by mass of component (A). Among the light stabilizers, ultraviolet absorbers effectively block ultraviolet rays contained in sunlight and the like, preventing photodegradation caused by the excited state resulting from the photoreaction of component (A). Furthermore, antioxidants, singlet oxygen quenchers, superoxide anion quenchers, ozone quenchers, etc., inhibit photooxidation reactions. The light stabilizers may be used alone or in combination of two or more.

[0074] In the present invention, the microcapsules have a specific structure, which is expressed by the average particle size (X) and average cross-sectional film thickness (Y) of the microcapsules contained in the microcapsule pigment or the ink composition.

[0075] In the present invention, the average particle size is a volume-based average particle size (median size). The optimal method for measuring the average particle size is to use a laser diffraction / scattering particle size distribution analyzer calibrated by a direct measurement method, such as the laser diffraction particle size distribution analyzer LA-300 (trade name, manufactured by Horiba, Ltd.).

[0076] Direct measurement methods used for calibration include: (i) Image analysis method to measure the area (2D) of individual particles from images taken with a microscope to determine their equivalent diameter; (ii) The Coulter method (electrical sensing zone method) uses a Coulter counter to pass a constant current through a tiny hole (aperture) in the detector, and measures the equivalent diameter from the change in impedance that occurs when a particle passes through the hole.Calibration of the laser measurement method is performed based on the values ​​obtained by these methods.

[0077] The average particle diameter can be measured by image analysis, for example, by determining the particle region using image analysis particle size distribution measurement software "MacView" (trade name, manufactured by Mountec Co., Ltd.), calculating the diameter equivalent to a circle with a projected area (Heywood diameter) from the area of ​​the particle region, and measuring the average particle diameter of particles equivalent to a sphere with an equal volume using this value. The measurement of average particle size by the Coulter method can be applied when the particle size of all or most of the particles exceeds 0.2 μm, and can be measured using, for example, a particle size distribution analyzer "Multisizer 4e" manufactured by Beckman Coulter, Inc.

[0078] Furthermore, the microcapsule pigment contained in the ink composition according to the present invention is specified by the average cross-sectional thickness (Y) of the microcapsules. The cross-sectional thickness can be obtained by image analysis of a cross-sectional image of the frozen microcapsule pigment. Specifically, (i) freezing a dispersion of the microencapsulated pigment, for example, a water dispersion; (ii) A thin section sample of 50 μm thickness was prepared using a microtome. (iii) The obtained thin film sample is observed using a transmission electron microscope, such as HT7700 (trade name, manufactured by Hitachi High-Technologies Corporation), in a field of view where the number of microcapsules within the field of view is approximately 100 to 200, (iv) For each microcapsule in the field of view, the area of ​​the region surrounded by the outer periphery of the cross section of the coating and the area of ​​the region surrounded by the inner periphery of the cross section of the coating are measured; (v) Calculating the outer diameter and inner diameter of the cross section from the two areas found, (vi) for all microcapsules in the field of view; Cut cross-section film thickness = (cross-section outer diameter - cross-section inner diameter) / 2 The cut cross-sectional thickness is calculated based on the above, and the average value is taken as the average cut cross-sectional thickness. The outer diameter and inner diameter of the cross section in (iv) and (v) can be determined using the image analysis software described above. The calculation of the average cross-sectional thickness in the present invention is for capsules whose cross-sectional thickness can be measured and calculated by the above (iv) and (v).

[0079] In this invention, the cross-sectional thickness does not simply correspond to the thickness of the microcapsule coating; it is a different parameter from the coating. Measuring the coating thickness of a microcapsule is generally very difficult. This is because, to directly observe the coating thickness, a cross-section passing through the center of the microcapsule must be observed. However, it is difficult to obtain such a cross-section for all microcapsules with a particle size distribution. Furthermore, although microcapsules often have a nearly spherical shape, they can become deformed due to the expansion and contraction of the inclusions, making it difficult to determine the center of the microcapsule. These combined factors make measuring the coating thickness difficult. In contrast, this invention focuses on the cross-sectional thickness instead of the coating thickness. This cross-sectional thickness does not coincide with the membrane thickness. This is because the cross-section formed when preparing a thin section sample often does not pass through the center of the microcapsule being cut. Furthermore, the fact that actual microcapsules have a particle size distribution further complicates measuring the particle size and coating thickness of microcapsules.

[0080] On the other hand, the present invention was completed based on the finding that when these parameters and the average particle size satisfy certain conditions, the ink composition exhibits excellent effects. First, the microcapsules contained in the ink composition according to the present invention have a volume-based average particle diameter (X) of 0.1 to 3.0 μm, preferably 0.3 to 2.0 μm, more preferably 0.3 to 1.5 μm, and even more preferably 0.3 to 1.0 μm. If the volume-based average particle diameter (X) of the microcapsules is excessively small, the color density generally tends to decrease, while if it is excessively large, it may cause the microcapsules to settle or reduce the ink jetting performance of the writing instrument, so care must be taken. Therefore, by ensuring that the volume-based average particle diameter (X) is within the above range, the dispersion stability of the ink composition and the ink jetting performance of the writing instrument can be improved while maintaining the color density.

[0081] In order to maintain the ink composition's dischargeability and discharge stability from the pen tip, it is preferable that the content of coarse microcapsules is low. Specifically, the content of microcapsules with a particle size of 8 μm or more (hereinafter sometimes referred to as "large particle content") is preferably 1% by volume or less based on the total volume of microcapsules in the microcapsule pigment.

[0082] The microcapsules contained in the ink composition according to the present invention have an average cross-sectional thickness (Y) of 0.02 to 0.7 μm, preferably 0.04 to 0.6 μm, and more preferably 0.05 to 0.5 μm. By keeping the average cross-sectional thickness (Y) within an appropriate range, it is possible to obtain a reversible thermochromic microcapsule pigment that has an excellent balance between durability and color density.

[0083] Furthermore, the ratio Y / X of the average particle diameter (X) to the average cross-sectional film thickness (Y) of the microcapsules contained in the ink composition according to the present invention preferably satisfies the following formula (1), more preferably satisfies (1a), and sometimes preferably satisfies (1b): Furthermore, the ratio Y / X preferably satisfies the following formula (2), more preferably satisfies (2a), and sometimes preferably satisfies (2b): By keeping the ratio Y / X within an appropriate range, it is possible to obtain a reversible thermochromic microcapsule pigment that maintains color density while exhibiting an excellent balance between durability and dispersion stability of the ink composition. Y / X<0.3 (1) Y / X<0.25 (1a) Y / X<0.2 (1b) 0.02 <Y / X (2) 0.03 <Y / X (2a) 0.04 <Y / X (2b)

[0084] [Method of manufacturing microcapsules] The microcapsule pigment used in the ink composition of the present invention comprises microcapsules having a coating that encapsulates a reversible thermochromic composition containing the above components (i), (ii), and (iii).

[0085] By encapsulating the reversible thermochromic composition in microcapsules, a chemically and physically stable pigment can be formed. Furthermore, the reversible thermochromic composition maintains the same composition under various conditions of use, allowing it to exhibit the same effects.

[0086] The microencapsulation method is appropriately selected depending on the application from conventionally known manufacturing methods such as an isocyanate-based interfacial polymerization method, an in situ polymerization method such as a melamine-formalin-based method, a liquid curing coating method, a phase separation method from an aqueous solution, a phase separation method from an organic solvent, a melt-dispersion cooling method, an air suspension coating method, a spray drying method, etc. Furthermore, a secondary resin coating can be further provided on the surface of the microcapsules depending on the purpose to impart durability or to modify the surface properties for practical use.

[0087] The microcapsule pigment used in the ink composition of the present invention must satisfy specific conditions for the average particle size (X) and average cross-sectional film thickness (Y) of the microcapsules contained in the microcapsule pigment. To satisfy the specific conditions, it is necessary to adjust the manufacturing conditions of the microcapsules. As mentioned above, there are various methods for producing microcapsules, and the appropriate conditions vary depending on each method. Furthermore, the appropriate conditions also vary depending on the components constituting the reversibly thermochromic composition used and the components forming the microcapsule coating. Therefore, in order to produce the microcapsules according to the present invention, it is common to create a calibration curve for different production conditions and search for the optimal conditions.

[0088] For example, when microcapsules are produced by interfacial polymerization, the average particle size (X) and average cross-sectional thickness (Y) of the microcapsules vary depending on factors such as the polymerization temperature, polymerization time, the blending ratio of the reversible thermochromic composition to the coating material, and the stirring speed of the reaction solution. Several types of microcapsules are produced by varying only one of these parameters, and the average particle size (X) and average cross-sectional thickness (Y) are measured to create a calibration curve. If the production conditions for the desired microcapsules cannot be determined using this calibration curve alone, another parameter is varied to create a calibration curve. In this way, microcapsules with the desired average particle size (X) and average cross-sectional thickness (Y) can be produced.

[0089] [Reversible thermochromic ink composition for writing implements and writing implements containing the same] The reversible thermochromic ink composition for a writing instrument according to the present invention comprises a microcapsulated pigment and a vehicle. The blending ratio of the microencapsulated pigment in the ink composition is not particularly limited, but is preferably 5 to 40 mass %, more preferably 10 to 40 mass %, and even more preferably 10 to 30 mass %, based on the total mass of the ink composition. By blending the microencapsulated pigment within the above range, the desired color density can be obtained and a decrease in ink jettability can be prevented.

[0090] The vehicle may be a vehicle commonly used for writing instruments. For example, a vehicle containing water and / or an organic solvent and, if necessary, various additives may be used. By dispersing the microcapsule pigment in a vehicle to prepare an ink composition, ink compositions for ballpoint pens, marking pens, fountain pens, brush pens, calligraphy pens, and the like can be prepared. The writing implement of the present invention contains this ink composition.

[0091] Examples of the vehicle include an oil-based vehicle containing an organic solvent, or an aqueous vehicle containing water and, if necessary, an organic solvent. The vehicle used in the present invention is preferably an aqueous vehicle. When the vehicle is an aqueous vehicle, a water-soluble organic solvent that is compatible with water can be blended into the ink composition. The water-soluble organic solvent suppresses water evaporation from the ink, prevents fluctuations in the specific gravity of the vehicle, and maintains good dispersion stability of the microencapsulated pigment, while stabilizing the structure of the polymer flocculant described below, or the loose aggregates formed by the polymer flocculant and the dispersant described below.

[0092] The organic solvent is not particularly limited, and examples thereof include: glycol ether solvents such as ethylene glycol monomethyl ether, ethylene glycol monoethyl ether, ethylene glycol monobutyl ether, ethylene glycol dimethyl ether, ethylene glycol monophenyl ether, propylene glycol monomethyl ether, propylene glycol monoethyl ether, diethylene glycol dimethyl ether, 3-methoxybutanol, and 3-methoxy-3-methylbutanol; glycol solvents such as diethylene glycol, triethylene glycol, polyethylene glycol, propylene glycol, dipropylene glycol, butylene glycol, ethylene glycol, and thioethylene glycol; alcohol solvents such as benzyl alcohol, methanol, ethanol, 1-propanol, 2-propanol, isopropanol, isobutanol, tert-butanol, propargyl alcohol, allyl alcohol, 3-methyl-1-butyn-3-ol, ethylene glycol monomethyl ether acetate, glycerin, sorbitol, and other higher alcohols; alcohol amines such as triethanolamine, diethanolamine, and monoethanolamine; Sulfolane, 2-pyrrolidone, N-methyl-2-pyrrolidone Examples include:

[0093] The organic solvents can be used alone or in combination of two or more. When the ink composition according to the present invention contains a water-soluble organic solvent, the blending ratio of the water-soluble organic solvent is not particularly limited, but is preferably 1 to 40 mass %, more preferably 5 to 30 mass %, and even more preferably 10 to 25 mass %, based on the total mass of the ink composition. If the blending ratio of the water-soluble organic solvent exceeds 40 mass %, the ink viscosity tends to increase. On the other hand, if the blending ratio is less than 1 mass %, the effect of suppressing water evaporation is poor.

[0094] The water is not particularly limited, and examples thereof include tap water, ion-exchanged water, ultrafiltered water, and distilled water. The blending ratio of the organic solvent or water is not particularly limited, but is preferably 10 to 90 mass %, and more preferably 30 to 80 mass %, based on the total mass of the ink composition.

[0095] Additives suitable for the purpose and type of writing implement can be added to the vehicle. Examples of additives contained in the vehicle include shear thinning agents, polymer flocculants, dispersants, water-soluble resins, specific gravity adjusters, surfactants, rust inhibitors, pH adjusters, bubble absorbers, wetting agents, antifoaming agents, crosslinking agents, hardeners, drying agents, plasticizers, viscosity adjusters, UV absorbers, antioxidants, light stabilizers, anti-settling agents, smoothing agents, gelling agents, matting agents, penetrating agents, foaming agents, coupling agents, moisturizing agents, antifungal agents, preservatives, and rust inhibitors.

[0096] The ink composition may be a shear thinning ink (gel ink) containing a shear thinning agent in a vehicle.

[0097] Shear thinning is a property in which a material has high viscosity when left to stand and decreases in viscosity when shear stress is applied. Shear thinning ink has high viscosity when left to stand without shear stress, so when it is contained in a ballpoint pen, it is stably held within the pen, and when writing, the high shear stress generated by the high-speed rotation of the ball reduces the viscosity of the ink composition near the ball, and as a result, the ink composition is ejected from the gap between the ball and the ball container and adheres to the non-writing surface.

[0098] Furthermore, the shear-thinning ink can suppress aggregation and sedimentation of the microencapsulated pigment and can also suppress bleeding of handwriting, thereby enabling the formation of good handwriting. Furthermore, a ballpoint pen containing the shear-thinning ink composition can prevent ink leakage from the gap between the ball and tip when not in use, and can prevent backflow of the ink composition when left with the writing tip facing upward (upright position).

[0099] Examples of shear thinning agents include water-soluble polysaccharides, polymers having a molecular weight of 100,000 to 150,000 and mainly composed of alkyl esters of methacrylic acid, crosslinked poly-N-vinylcarboxylic acid amides, benzylidene sorbitol and its derivatives, benzylidene xylitol and its derivatives, alkali-thickening acrylic resins, crosslinkable acrylic acid polymers, inorganic fine particles, nonionic surfactants with an HLB value of 8 to 12, and metal salts and amine salts of dialkyl sulfosuccinic acid.

[0100] The shear thinning agents can be used alone or in combination of two or more.

[0101] Examples of water-soluble polysaccharides include xanthan gum, welan gum, zeta sea gum, diutan gum, macrophomopsis gum, succinoglycan (average molecular weight of approximately 1 to 8 million), which is an organic acid-modified heteropolysaccharide whose constituent monosaccharides are glucose and galactose, guar gum, locust bean gum and its derivatives, hydroxyethyl cellulose, alkyl alginate esters, glucomannan, and carbohydrates with gelling ability extracted from seaweed such as agar and carrageenan.

[0102] When the vehicle according to the present invention contains a shear thinning agent, the blending ratio of the shear thinning agent is not particularly limited, but is preferably 0.1 to 20 mass % based on the total mass of the ink composition.

[0103] The ink composition may also be a flocculant ink containing a polymer flocculant in a vehicle. In an ink composition (agglomerating ink) containing a polymer flocculant, the microcapsule pigment forms loose aggregates via the polymer flocculant, preventing the microcapsule pigments from coming into contact with each other and agglomerating, thereby improving the dispersibility of the microcapsule pigment.

[0104] Examples of polymer flocculants include polyvinylpyrrolidone, polyethylene oxide, and water-soluble polysaccharides.

[0105] Examples of water-soluble polysaccharides include tragacanth gum, guar gum, pullulan, cyclodextrin, and water-soluble cellulose derivatives.

[0106] Furthermore, examples of water-soluble cellulose derivatives include methyl cellulose, hydroxyethyl cellulose, hydroxypropyl cellulose, hydroxyethyl methyl cellulose, and hydroxypropyl methyl cellulose.

[0107] Among the above polymer flocculants, hydroxyethyl cellulose is preferred because of its excellent dispersibility.

[0108] Specific examples of polymer flocculants include those manufactured by Sumitomo Seika Chemicals Co., Ltd. under the product names HEC A grade, S grade, and CF grade; those manufactured by Daicel FineChem Co., Ltd. under the product names HEC Daicel SP type, SE type, and EE type; those manufactured by Dow Chemical Japan under the product names CELLOSIZE WP type, QP type, and EP type; and those manufactured by Sansho Co., Ltd. under the product name SANHEC.

[0109] When the vehicle according to the present invention contains a polymer flocculant, the blending ratio of the polymer flocculant is not particularly limited, but is preferably 0.1 to 1 mass %, and more preferably 0.3 to 0.5 mass %, based on the total mass of the ink composition. By being within the above range, the microencapsulated pigment forms loose aggregates, and the effect of improving the dispersibility of the microencapsulated pigment can be fully exerted.

[0110] A dispersant can be blended into the ink composition of the present invention, which can improve the dispersibility of the microcapsulated pigment in the ink composition. Furthermore, a polymer flocculant and a dispersant can be used in combination. When both are used in combination, the dispersibility of the microcapsule pigment in the ink composition can be improved, and the dispersibility of the loose aggregates of the microcapsule pigment formed via the polymer flocculant can be further improved.

[0111] Examples of dispersants include synthetic resins such as polyvinylpyrrolidone, polyvinyl butyral, polyvinyl ether, styrene-maleic acid copolymer, ketone resin, hydroxyethyl cellulose and its derivatives, and styrene-acrylic acid copolymer, acrylic polymers, PO·EO adducts, and polyester amine oligomers.

[0112] Among the above dispersants, acrylic polymer dispersants are preferred because they have excellent dispersibility for microencapsulated pigments, acrylic polymer dispersants having carboxy groups are more preferred, and acrylic polymer dispersants having a comb structure and having carboxy groups in the side chains are even more preferred. A particularly preferred dispersant is an acrylic polymer dispersant with a comb structure having multiple carboxy groups in the side chains, and a specific example is Solsperse 43000, a product manufactured by Lubrizol Japan Co., Ltd.

[0113] When the ink composition according to the present invention contains a dispersant, the dispersant content is not particularly limited, but is preferably 0.01 to 2 mass% and more preferably 0.1 to 1.5 mass% based on the total mass of the ink composition. If the dispersant content exceeds 2 mass%, the microencapsulated pigment is likely to settle or float when subjected to external vibrations, etc. On the other hand, if the content is less than 0.01 mass%, the effect of improving dispersibility is less likely to be achieved.

[0114] The ink composition according to the present invention can be blended with water-soluble resins such as alkyd resins, acrylic resins, styrene-maleic acid copolymers, cellulose derivatives, polyvinylpyrrolidone, polyvinyl alcohol, and dextrin, which can impart adhesion to paper surfaces and viscosity to the ink composition. The water-soluble resins can be used alone or in combination of two or more.

[0115] When the ink composition according to the present invention contains an acrylic polymer dispersant, polyvinyl alcohol is preferred among the above-mentioned water-soluble resins because of its excellent stability as an acrylic polymer dispersant. Furthermore, partially saponified polyvinyl alcohol with a saponification degree of 70 to 89 mol % is more preferred because the ink composition is highly soluble even in the acidic range. When the ink composition according to the present invention contains a water-soluble resin, the blending ratio of the water-soluble resin is not particularly limited, but is preferably 0.3 to 3 mass %, and more preferably 0.5 to 1.5 mass %, based on the total mass of the ink composition.

[0116] The ink composition according to the present invention can be blended with a specific gravity adjuster, and when the viscosity of the vehicle is low, it is possible to prevent the microcapsule pigment from settling or floating up and becoming localized in the ink composition when the ink composition is subjected to an external stimulus such as vibration.

[0117] The specific gravity of a microencapsulated pigment depends on the particle size of the microcapsules contained in the microencapsulated pigment, the components and their contents encapsulated in the microcapsules, the components and film thickness of the capsule coating, the color development state of the microencapsulated pigment, and the temperature. However, when the microencapsulated pigment is in a fully colored state and water is used as the reference substance in an environment of 20°C, the specific gravity is preferably in the range of 1.05 to 1.20, more preferably 1.10 to 1.20, and even more preferably 1.12 to 1.15. Microencapsulated pigments with a large hysteresis width (ΔH) often use a component (c) having two or more aromatic rings in the molecule, and have the above-mentioned high specific gravity. However, when such microencapsulated pigments are incorporated into an ink composition containing a specific gravity adjuster, they are prevented from settling or floating in the ink composition when subjected to external influences such as vibration during transportation, even if the vehicle has a low viscosity. The specific gravity of the microcapsule pigment can be measured by the following method.

[0118] (Method for measuring specific gravity of microcapsule pigments) 1. 30 ml of glycerin aqueous solution and 1 g of fully colored microcapsule pigment are placed in a screw cap bottle and mixed to obtain a microcapsule pigment dispersion. 2. 30 ml of the microcapsule pigment dispersion is adjusted to 20°C and centrifuged at 1000 rpm for 30 seconds. The centrifuge can be a refrigerated tabletop centrifuge "H103N" (trade name, manufactured by Kokusan Co., Ltd.). 3. Observe the microcapsule pigment dispersion. If most of the microcapsule pigment has settled to the bottom of the beaker, repeat steps 1 and 2 using an aqueous solution with a higher glycerin concentration than the glycerin aqueous solution used at this time, and observe the state of the dispersion.

[0119] If it is confirmed that most of the microcapsule pigment is floating on the liquid surface, repeat steps 1 and 2 using an aqueous solution with a lower glycerin concentration than the glycerin aqueous solution used this time, and observe the state of the dispersion.

[0120] The above series of operations is repeated until it is visually confirmed that the majority of the microencapsulated pigment does not float to the surface or settle, but that the glycerin aqueous solution is uniformly colored except for the surface and the area near the bottom of the screw cap bottle. When this state is observed, the specific gravity of the glycerin aqueous solution is measured and used as the specific gravity of the microencapsulated pigment. The specific gravity of the glycerin aqueous solution can be measured by the hydrometer method described in JIS K0061, Section 7.1, using an aqueous solution adjusted to 20°C.

[0121] The settling and floating stability of the microencapsulated pigment is maximized when the difference in specific gravity between the vehicle and the microencapsulated pigment is minimal, and the specific gravity adjuster described above brings the specific gravity of the vehicle closer to that of the microencapsulated pigment. The specific gravity of the vehicle depends on the specific gravity of the water-soluble substance dissolved in the vehicle and the amount added, so adding and dissolving a larger amount of a specific gravity adjuster with a larger specific gravity in the vehicle makes it possible to increase the specific gravity of the vehicle.

[0122] Examples of specific gravity adjusters include those that dissolve in the vehicle and adjust the specific gravity of the vehicle to approach the specific gravity of the microcapsule pigment, such as oxyacids of Group 6 elements with atomic weights in the range of 90 to 185 and their salts.

[0123] The above-mentioned oxygen acids and salts thereof are selected from the group consisting of oxygen acids of transition metal elements and salts thereof, and the oxygen acid ions thereof are said to form tetrahedrons or octahedrons in which oxygen atoms are usually 4- or 6-coordinated to the metal atom or the like. The tetrahedral or octahedral units may be single units, or may be polyacids having a structure in which they are bonded via edges or vertices, and their salts, called polyacid salts. Polyacids are polyacids formed by the condensation of oxyacids of metal elements, but polyacids composed of only one type of metal and in which all the condensed anions are of the same type are called isopolyacids, and polyacids in which two or more types of anions are condensed are called heteropolyacids. The respective salts are called isopolyacid salts and heteropolyacid salts. The above polyacids include isopolyacids, heteropolyacids, etc., and the above polyacid salts include isopolyacids, heteropolyacids, etc.

[0124] Examples of the specific gravity adjuster include a single oxygen acid and its salt, an isopoly acid and its salt, and a heteropoly acid and its salt. Examples of the single oxygen acid include molybdic acid and tungstic acid, and examples of the salt of the single oxygen acid include sodium molybdate, potassium molybdate, ammonium molybdate, sodium tungstate, potassium tungstate, ammonium tungstate, lithium tungstate, and magnesium tungstate.

[0125] Examples of isopolyacids include metamolybdic acid, paramolybdic acid, metatungstic acid, paratungstic acid, and isotungstic acid. Furthermore, examples of isopolyacid salts include sodium metamolybdate, potassium metamolybdate, ammonium metamolybdate, sodium paramolybdate, potassium paramolybdate, ammonium paramolybdate, sodium metatungstate, potassium metatungstate, ammonium metatungstate, barium metatungstate, sodium paratungstate, and sodium isotungstate. Examples of heteropolyacids include molybdophosphoric acid, molybdosilicic acid, tungstophosphoric acid, and tungstosilicic acid, and examples of heteropolyacid salts include sodium molybdophosphate, sodium molybdosilicate, sodium tungstophosphate, and sodium tungstosilicate. The above oxygen acids and salts thereof can be used alone or in combination of two or more.

[0126] Among the above-mentioned specific gravity adjusters, metatungstic acid, paratungstic acid, sodium metatungstate, potassium metatungstate, ammonium metatungstate, barium metatungstate, sodium paratungstate, sodium isotungstate, tungstophosphoric acid, tungstosilicic acid, sodium tungstophosphate, and sodium tungstosilicate are preferred, and sodium isotungstate, sodium metatungstate, and sodium paratungstate are more preferred. The above-mentioned sodium isotungstate, sodium metatungstate, and sodium paratungstate are not only highly safe but also have a high specific gravity themselves, making it easy to adjust the liquid to a high specific gravity depending on the amount added, and are therefore preferable.

[0127] When the ink composition according to the present invention contains a gravity adjuster, the blending ratio of the gravity adjuster is not particularly limited, but is preferably 2 to 20 mass %, and more preferably 5 to 15 mass %, based on the total mass of the ink composition. If the blending ratio of the gravity adjuster exceeds 20 mass %, the microencapsulated pigment tends to aggregate. On the other hand, if the blending ratio of the gravity adjuster is less than 2 mass %, the effect of adjusting the specific gravity of the vehicle is poor. The mass ratio of the microcapsule pigment to the specific gravity adjuster is preferably 0.05 to 4.0, more preferably 0.075 to 2.0, and even more preferably 0.1 to 1.5.

[0128] The ink composition of the present invention may contain a surfactant, which allows the surface tension of the ink composition to be adjusted within an appropriate range. The surfactant may be a nonionic surfactant, anionic surfactant, cationic surfactant, amphoteric surfactant, or the like, and any of them may be suitably used.

[0129] Examples of surfactants include phosphate ester surfactants, silicone surfactants, surfactants having an acetylene bond in the structure, and fluorine-based surfactants, and these surfactants are appropriately selected depending on the components and application of the ink composition. When the ink composition according to the present invention contains a surfactant, the surfactant content is not particularly limited, but is preferably 0.01 to 2 mass %, and more preferably 0.05 to 1 mass %, based on the total mass of the ink composition.

[0130] When the hysteresis width (ΔH) of the microcapsule pigment incorporated into the ink composition is large, its specific gravity is greater than 1. When adjusting the specific gravity of the vehicle, using a water-soluble organic solvent with a specific gravity greater than that of water makes it easier to adjust the specific gravity. Therefore, it is preferable to use glycerin or the like with a specific gravity greater than 1.1 as the water-soluble organic solvent.

[0131] The ink composition of the present invention may also contain other additives as needed. Examples of such additives include: Rust inhibitors such as benzotriazole, tolyltriazole, dicyclohexylammonium nitrite, diisopropylammonium nitrite, and saponin; preservatives or antifungals such as carbolic acid, sodium salt of 1,2-benzothiazolin-3-one, sodium benzoate, sodium dehydroacetate, potassium sorbate, propyl parahydroxybenzoate, and 2,3,5,6-tetrachloro-4-(methylsulfonyl)pyridine; pH adjusters such as ammonia, sodium carbonate, sodium hydrogen phosphate, potassium hydrogen phosphate, sodium hydroxide, potassium hydroxide, sodium acetate, monoethanolamine, diethanolamine, and triethanolamine; Ascorbic acids, erythorbic acids, α-tocopherol, catechins, synthetic polyphenols, kojic acid, alkylhydroxylamines, oxime derivatives, α-glucosylrutin, α-lipoic acid, phosphonates, phosphinates, sulfites, sulfoxylates, dithionites, thiosulfates, and air-bubbling agents such as thiourea dioxide; reduced or non-reduced starch hydrolysates, disaccharides such as trehalose, oligosaccharides, sucrose, cyclodextrin, glucose, dextrin, sorbitol, mannitol, and humectants such as sodium pyrophosphate, Examples include antifoaming agents.

[0132] Furthermore, when the ink composition according to the present invention is contained in a ballpoint pen, it is preferable to blend a lubricant into the ink composition, which improves the lubricity between the ball seat provided inside the tip body and the ball provided at the front end of the tip body, thereby easily preventing wear of the ball seat and improving the writing feel.

[0133] Examples of lubricants include higher fatty acids such as oleic acid, nonionic surfactants having a long-chain alkyl group, polyether-modified silicone oil, thiophosphite triesters such as thiophosphite tri(alkoxycarbonylmethyl ester) and thiophosphite tri(alkoxycarbonylethyl ester), phosphate ester surfactants such as polyoxyethylene alkyl ether or polyoxyethylene alkylaryl ether phosphate monoesters, polyoxyethylene alkyl ether or polyoxyethylene alkylaryl ether phosphate diesters, and metal salts, ammonium salts, amine salts, and alkanolamine salts thereof.

[0134] When the ink composition according to the present invention is applied to a ballpoint pen having a ballpoint pen tip comprising a tip body provided with a metal ball receiving seat and a metal ball, it is preferable to use a phosphate ester surfactant as a lubricant. Because the phosphate group of a phosphate ester surfactant has the property of easily adsorbing to metals, when an ink composition containing a phosphate ester surfactant is applied to the above-mentioned ballpoint pen, the phosphate ester surfactant is adsorbed to the ball and ball seat, forming a lubricating layer made of the phosphate ester surfactant on the surface of the ball and the surface of the ball seat, improving the lubrication between the ball and the ball seat and allowing the ball to rotate smoothly. This also reduces wear on the ball seat and improves the writing feel, such as the smoothness of the writing experience.

[0135] The ink composition of the present invention can also be blended with a non-thermochromic colorant such as a general dye or pigment, and will exhibit a color change behavior from color (1) to color (2).

[0136] The method for producing the ink composition according to the present invention is not particularly limited, and any conventionally known method can be used. Specifically, the ink composition can be produced by stirring a mixture containing the above-mentioned components with a stirrer such as a propeller stirrer, a homodisper, or a homomixer, or by dispersing the mixture with a disperser such as a bead mill.

[0137] When the ink composition of the present invention is used in a ballpoint pen, its viscosity is measured at a rotation speed of 1 rpm (shear rate of 3.84 sec) in an environment of 20°C. -1 When measured under the conditions of 100 rpm (shear rate 384 sec), the viscosity is preferably in the range of 1 to 2000 mPa·s, more preferably 3 to 1500 mPa·s, and even more preferably 500 to 1000 mPa·s, because this can prevent the sedimentation or aggregation of the microencapsulated pigment. -1 When measured under the conditions of (1), the viscosity is preferably in the range of 1 to 200 mPa·s, more preferably 10 to 100 mPa·s, and even more preferably 20 to 50 mPa·s, because this allows for good ink discharge from the pen tip of the ballpoint pen. By having the viscosity within the above range, it is possible to maintain high levels of dispersion stability of the microencapsulated pigment and free flow of the ink composition within the mechanism of the ballpoint pen. The viscosity was measured using a rheometer "Discovery HR-2, cone plate (diameter 40 mm, angle 1°)" (trade name, manufactured by TA Instruments Japan Co., Ltd.) with the ink composition placed in an environment of 20°C and rotated at a speed of 1 rpm (shear rate 3.84 sec -1 ), or rotation speed 100 rpm (shear rate 384 sec -1 ) can be measured under the conditions.

[0138] When the ink composition according to the present invention is used in a ballpoint pen, the surface tension thereof is preferably in the range of 20 to 50 mN / m, more preferably 25 to 45 mN / m, in an environment of 20° C. When the surface tension is within the above range, bleeding of written lines and strike-through onto the paper surface can be easily suppressed, and the wettability of the ink composition to the paper surface can be improved. The surface tension can be measured using a surface tension measuring instrument "DY-300" (trade name, manufactured by Kyowa Interface Science Co., Ltd.) by placing the ink composition in an environment of 20°C and using a vertical plate method using a platinum plate.

[0139] When the ink composition according to the present invention is used in a ballpoint pen, its pH is preferably in the range of 3 to 10, more preferably 4 to 9. When the pH is within the above range, aggregation or sedimentation of the microencapsulated pigment contained in the ink composition can be suppressed at low temperatures. The pH can be measured by placing the ink composition in an environment of 20°C using a pH meter "IM-40S" (trade name, manufactured by DKK-Toa Corporation).

[0140] When the ink composition according to the present invention is used in a marking pen, its viscosity, measured at 30 rpm in an environment of 20° C., is preferably in the range of 1 to 20 mPa·s, more preferably 1 to 10 mPa·s, and even more preferably 1 to 5 mPa·s. Having a viscosity within the above range can improve the fluidity of the ink composition and the dispersion stability of the microencapsulated pigment. The viscosity can be measured by placing the ink composition in an environment of 20°C using a BL-type rotational viscometer "TVB-M type viscometer (L-type rotor)" (trade name, manufactured by Toki Sangyo Co., Ltd.).

[0141] When the ink composition according to the present invention is used in a marking pen, the surface tension thereof is preferably in the range of 25 to 50 mN / m, more preferably 25 to 45 mN, and even more preferably 35 to 45 mN / m in an environment of 20° C. When the surface tension is within the above range, bleeding of written lines and strike-through onto the paper surface can be easily suppressed, and the wettability of the ink composition to the paper surface can be improved.

[0142] The surface tension can be measured using a surface tension measuring instrument "DY-300" (trade name, manufactured by Kyowa Interface Science Co., Ltd.) by placing the ink composition in an environment of 20°C and using a vertical plate method using a glass plate.

[0143] When the ink composition according to the present invention is used in a marking pen, its pH is preferably in the range of 3 to 8, more preferably 4 to 7, and even more preferably 5 to 6. When the pH is within the above range, aggregation or sedimentation of the microencapsulated pigment contained in the ink composition can be suppressed at low temperatures. The pH can be measured by placing the ink composition in an environment of 20°C using a pH meter "IM-40S" (trade name, manufactured by DKK-Toa Corporation).

[0144] When the ink composition according to the present invention is used in a ballpoint pen, the structure and shape of the ballpoint pen itself are not particularly limited, and the ink composition may be used by being filled into, for example, a ballpoint pen refill or ballpoint pen equipped with a ballpoint pen tip and an ink filling mechanism.

[0145] A ballpoint pen tip consists of a tip body and a ball attached to the front end of the tip body, and examples include tips in which the ball is held in a ball-holding portion formed by deforming the tip body made of a metal pipe near its tip by pressing it inward from the outer surface; tips in which the ball is held in a ball-holding portion formed by cutting the tip body made of a metal material with a drill or the like; tips in which a resin ball receiving seat is provided inside a metal or plastic tip body; and tips in which the ball held in the tip is urged forward by a spring.

[0146] The material of the tip body and the ball is not particularly limited, and examples include cemented carbide (super hard), stainless steel, ruby, ceramic, resin, rubber, etc. Furthermore, the ball can be subjected to a surface treatment such as a DLC coating. The diameter of the balls is generally 0.2 to 3 mm, preferably 0.2 to 2 mm, more preferably 0.2 to 1.5 mm, still more preferably 0.2 to 1 mm, and particularly preferably 0.2 to 0.5 mm.

[0147] Generally, the microcapsules contained in microcapsule pigments have a larger average particle size than general-purpose pigment particles, and therefore, when an ink composition containing the microcapsule pigment is applied to a ballpoint pen equipped with a small-diameter ball, ink discharge from the pen tip is likely to be impaired, resulting in writing defects such as blurring and skipped lines, and impaired writing density. However, when the ink composition according to the present invention, in which the average particle size of the microcapsules contained in the microcapsule pigment is in the range of 0.3 to 2 μm, is contained in a ballpoint pen equipped with a small-diameter ball at the writing tip, particularly a ball with a diameter of 0.2 to 0.5 mm, ink discharge from the pen tip is further improved, thereby suppressing writing defects and enabling the ballpoint pen to produce clear handwriting with high handwriting density, which is preferable.

[0148] An example of the ink filling mechanism is an ink reservoir that can be directly filled with the ink composition. The ink reservoir may be, for example, a molded body made of a thermoplastic resin such as polyethylene, polypropylene, polyethylene terephthalate, or nylon, or a tubular body made of metal. A ballpoint pen refill (hereinafter sometimes referred to as "refill") can be formed by connecting a ballpoint pen tip to an ink reservoir directly or via a connecting member and directly filling the ink reservoir with an ink composition. A ballpoint pen can be formed by placing this refill in a barrel.

[0149] The ink reservoir is filled with an ink backflow preventer at the rear end of the ink composition. The ink backflow preventer may be a liquid stopper or a solid stopper.

[0150] The liquid plug is made of a non-volatile liquid and / or a hardly volatile liquid, such as petrolatum, spindle oil, castor oil, olive oil, refined mineral oil, liquid paraffin, polybutene, α-olefin, α-olefin oligomer or co-oligomer, dimethyl silicone oil, methylphenyl silicone oil, amino-modified silicone oil, polyether-modified silicone oil, and fatty acid-modified silicone oil.

[0151] The non-volatile liquid and / or the hardly-volatile liquid can be used alone or in combination of two or more kinds.

[0152] It is preferable to add a thickener to the non-volatile liquid and / or the hardly-volatile liquid to thicken it to a suitable viscosity.

[0153] Examples of thickeners include clay-based thickeners such as silica with a hydrophobic surface treatment, fine particle silica with a methylated surface, aluminum silicate, swellable mica, hydrophobically treated bentonite or montmorillonite, fatty acid metal soaps such as magnesium stearate, calcium stearate, aluminum stearate, and zinc stearate, dextrin-based compounds such as tribenzylidene sorbitol, fatty acid amides, amide-modified polyethylene wax, hydrogenated castor oil, fatty acid dextrins, and cellulose-based compounds.

[0154] Examples of solid stoppers include solid stoppers made of polyethylene, polypropylene, polymethylpentene, and the like. As the ink backflow preventer, the above-mentioned liquid stopper and solid stopper can be used in combination.

[0155] In addition, by using the barrel itself as the ink filling mechanism, filling the ink composition directly into the barrel, and attaching a ballpoint pen tip to the front end of the barrel, it is possible to form a ballpoint pen equipped with a ballpoint pen tip and an ink filling mechanism.

[0156] When the ink composition filled into the ink filling mechanism has a low viscosity, a ballpoint pen equipped with a ballpoint pen tip and an ink filling mechanism may further be equipped with an ink supply mechanism for supplying the ink composition filled into the ink filling mechanism to the pen tip.

[0157] The ink supply mechanism is not particularly limited, and examples include: (1) a mechanism that has an ink guide core made of a fiber bundle or the like as an ink flow regulator and supplies the ink composition to the pen tip through this; (2) a mechanism that has a comb-shaped ink flow regulator and supplies the ink composition to the pen tip through this; and (3) a mechanism that supplies the ink composition to the pen tip through a pen core consisting of a number of disks arranged in parallel with comb-shaped intervals, with slit-shaped ink guide grooves running vertically through the disks in the axial direction and wider ventilation grooves than the grooves, and an ink guide core arranged in the axial center to guide the ink composition from the ink filling mechanism to the pen tip.

[0158] The material for the pen core is not particularly limited as long as it is a synthetic resin that can be injection molded into a structure in which multiple discs are arranged in a comb-like groove pattern. Examples of synthetic resins include general-purpose polycarbonate, polypropylene, polyethylene, and acrylonitrile-butadiene-styrene copolymer resin (ABS resin). In particular, acrylonitrile-butadiene-styrene copolymer resin (ABS resin) is preferably used because it has high moldability and is easy to obtain pen core performance.

[0159] When a ballpoint pen is provided with the ink supply mechanism, the ink filling mechanism may be an ink reservoir that can be filled with an ink composition, in addition to the ink reservoir or barrel described above.

[0160] The ink occlusion body is a fiber bundle formed by bundling crimped fibers in the longitudinal direction, and is placed inside a covering such as a plastic cylinder or film, and is configured so that the porosity is adjusted to be in the range of approximately 40 to 90%.

[0161] A ballpoint pen refill comprising a ballpoint pen tip, an ink filling mechanism, and an ink supply mechanism can also be formed by accommodating an ink occluder impregnated with an ink composition in an ink reservoir, providing an ink supply mechanism at the front end of the ink reservoir so as to connect to the ink occluder, and connecting a ballpoint pen tip to the ink supply mechanism directly or via a connecting member. Alternatively, a ballpoint pen refill can also be formed by accommodating an ink occluder impregnated with an ink composition in an ink reservoir, providing an ink supply mechanism inside the ink reservoir so as to connect to the ink occluder, and connecting a ballpoint pen tip to the ink reservoir directly or via a connecting member.

[0162] Specific examples of the configuration of a ballpoint pen containing the ink composition according to the present invention include: (1) a ballpoint pen having an ink reservoir filled with the ink composition in a barrel, to which a ballpoint pen tip is connected either directly or via a connecting member, and in which an ink backflow preventer is filled at the end face of the ink composition; (2) a ballpoint pen in which the ink composition is directly filled in the barrel, and which is provided with a mechanism for supplying the ink composition to the pen tip by using a comb-shaped ink flow regulator or an ink guide core made of a fiber bundle or the like as an ink flow regulator; (3) a ballpoint pen in which the ink composition is directly filled in the barrel, and which is provided with a mechanism for supplying the ink composition to the pen tip via the above-mentioned pen core; and (4) a ballpoint pen in which an ink occlusion body made of a fiber bundle impregnated with the ink composition is contained in the barrel, and which is provided with a mechanism for supplying the ink composition to the pen tip by using an ink guide core made of a fiber bundle or the like as an ink flow regulator.

[0163] Furthermore, when the ink composition according to the present invention is used in a marking pen, the structure and shape of the marking pen itself are not particularly limited, and it may be used, for example, in the form of a marking pen refill equipped with a marking pen tip and an ink filling mechanism, or by being filled into a marking pen.

[0164] Examples of marking pen tips include conventional porous members with interconnected pores, such as resin-processed fibers, fused heat-fusible fibers, and felt, which have a porosity selected from a range of approximately 30 to 70%, or extrusion-molded synthetic resin bodies with multiple ink outlet holes extending in the axial direction, and one end of which can be processed into a shape appropriate for the purpose, such as a bullet shape, a rectangle, or a chisel shape, for practical use.

[0165] An example of the ink filling mechanism is an ink occlusion body that can be filled with an ink composition. The ink occlusion body is a fiber bundle formed by bundling crimped fibers in the longitudinal direction, and is contained within a covering such as a plastic cylinder or film, with the porosity adjusted to a range of approximately 40 to 90%.

[0166] A marking pen can be formed by housing an ink absorbing body impregnated with an ink composition inside the barrel and connecting the marking pen tip to the barrel directly or via a connecting member so as to be connected to the ink absorbing body.

[0167] Furthermore, a marking pen refill (hereinafter sometimes referred to as a "refill") can be formed by housing an ink occlusion body impregnated with an ink composition in an ink container and connecting a marking pen tip to the ink container directly or via a connecting member so as to be connected to the ink occlusion body. A marking pen can be formed by housing this refill in a barrel.

[0168] The ink reservoir may be, for example, a molded body made of a thermoplastic resin such as polyethylene, polypropylene, polyethylene terephthalate, or nylon, or a tubular body made of metal.

[0169] A marking pen equipped with a marking pen tip and an ink filling mechanism may further include an ink supply mechanism for supplying the ink composition filled in the ink filling mechanism to the pen tip.

[0170] The ink supply mechanism is not particularly limited, and examples include: (1) a mechanism that has an ink guide core made of a fiber bundle or the like as an ink flow regulator and supplies the ink composition to the pen tip through this; (2) a mechanism that has a comb-shaped ink flow regulator and supplies the ink composition to the pen tip through this; (3) a mechanism that supplies the ink composition to the pen tip through a pen core consisting of a number of disks arranged in parallel with comb-shaped intervals, with slit-shaped ink guide grooves that run vertically through the disks in the axial direction and wider ventilation grooves than the grooves, and an ink guide core that guides the ink composition from the ink filling mechanism to the pen tip is arranged at the axial center; and (4) a mechanism that has an ink flow regulator with a valve mechanism and supplies the ink composition to the pen tip by opening the valve.

[0171] The material for the pen core is not particularly limited as long as it is a synthetic resin that can be injection molded into a structure in which multiple discs are arranged in a comb-like groove pattern. Examples of synthetic resins include general-purpose polycarbonate, polypropylene, polyethylene, and acrylonitrile-butadiene-styrene copolymer resin (ABS resin). In particular, acrylonitrile-butadiene-styrene copolymer resin (ABS resin) is preferably used because it has high moldability and is easy to obtain pen core performance.

[0172] The valve mechanism can be a conventional, general-purpose pumping type that opens when the tip is pressed, and is preferably set to a spring pressure that can be pressed and released by the pressure of the writing pen.

[0173] When the marking pen is provided with an ink supply mechanism, the ink filling mechanism may be an ink reservoir that can be directly filled with the ink composition, in addition to the ink occlusion body described above. Alternatively, the barrel itself may serve as the ink filling mechanism, and the ink composition may be directly filled into the barrel.

[0174] Alternatively, a marking pen refill comprising a marking pen tip, an ink filling mechanism, and an ink supply mechanism can be formed by housing an ink occluder impregnated with an ink composition in an ink container, providing an ink supply mechanism at the front end of the ink container so as to connect to the ink occluder, and connecting a marking pen tip to the ink supply mechanism directly or via a connecting member. Alternatively, a marking pen refill can be formed by housing an ink occluder impregnated with ink in an ink container, providing an ink supply mechanism inside the ink container so as to connect to the ink occluder, and connecting a marking pen tip to the ink container so as to connect to the ink supply mechanism directly or via a connecting member.

[0175] Specific configurations of marking pens containing the ink composition according to the present invention include: (1) a marking pen in which an ink occlusion body made of a fiber bundle impregnated with the ink composition is contained in a barrel, and a marking pen tip made of a fiber processed body or a resin molded body having capillary gaps is connected to the barrel directly or via a connecting member so that the ink occlusion body and the tip are connected; (2) a marking pen in which the barrel is filled directly with the ink composition and is provided with a mechanism for supplying the ink composition to the pen tip by using an ink flow regulator such as a comb-shaped ink flow regulator or an ink guide core made of a fiber bundle; and (3) a marking pen in which the ink composition is directly filled with the ink flow regulator in the barrel, and a mechanism for supplying the ink composition to the pen tip by using an ink flow regulator such as a comb-shaped ink flow regulator or an ink guide core made of a fiber bundle. Examples include a marking pen that is filled with an ink composition and is equipped with a mechanism for supplying the ink composition to the pen tip via the pen core, (4) a marking pen that is equipped with a tip and an ink reservoir via a valve mechanism that opens when the tip is pressed, and in which the ink composition is directly filled into the ink reservoir, and (5) a marking pen that has an ink reservoir that contains an ink occlusion body made of a fiber bundle impregnated with the ink composition within its barrel, and in which a marking pen tip made of a fiber processed body or a resin molded body with a capillary gap formed therein is connected to the ink reservoir directly or via a connecting member so that the ink occlusion body and the tip are connected.

[0176] Furthermore, when a ballpoint pen or marking pen is directly filled with the ink composition, it is preferable to incorporate an agitator such as a stirring ball for stirring the ink composition into the ink reservoir or barrel filled with the ink composition in order to facilitate redispersion of the microcapsule pigment. Examples of the shape of the agitator include a spherical body and a rod-like body. The material of the agitator is not particularly limited, and examples thereof include metal, ceramic, resin, and glass.

[0177] Furthermore, the writing implement such as the ballpoint pen or marking pen may have a detachable ink cartridge structure. In this case, after the ink composition contained in the ink cartridge of the writing implement is used up, the ink cartridge can be replaced with a new ink cartridge and used again.

[0178] As ink cartridges, those that double as the barrel that constitutes the writing instrument when connected to the writing instrument body, and those that cover and protect the barrel (rear barrel) after being connected to the writing instrument body are used. Note that the latter may be used as an ink cartridge alone, or may be one in which the writing instrument body and ink cartridge are connected in the writing instrument before use, or one that is stored in the barrel in a disconnected state so that the user of the writing instrument can connect the ink cartridge in the barrel when using it to start use.

[0179] Furthermore, by providing a cap that is attached to cover the pen tip (writing tip) of the writing instrument having the above-described configuration to make it a cap-type writing instrument, it is possible to prevent the pen tip from drying out and becoming unable to write, and to prevent the writing tip from becoming contaminated or damaged.

[0180] In addition, a ballpoint pen or marking pen that contains a refill inside the barrel can be made into a retractable writing instrument by providing a retraction mechanism inside the barrel that allows the writing tip to protrude and retract from the barrel, thereby preventing the writing tip from being contaminated or damaged. Any retractable writing instrument can be used as long as the writing tip is stored inside the barrel and exposed to the outside air, and the writing tip protrudes from the barrel opening when the retractable mechanism is activated.

[0181] Examples of retraction mechanisms include: (1) a side-slide retraction mechanism in which an operating part (clip) that can move back and forth in the radial direction protrudes radially outward from the rear side wall of the barrel, and the writing tip is retracted from the front end opening of the barrel by sliding the operating part forward; (2) a rear-end knock retraction mechanism in which the operating part at the rear end of the barrel is pressed forward to cause the writing tip to retract from the front end opening of the barrel; (3) a side-knock retraction mechanism in which the operating part that protrudes from the outer surface of the barrel side wall is pressed radially inward to cause the writing tip to retract from the front end opening of the barrel; and (4) a rotary retraction mechanism in which the operating part at the rear of the barrel is rotated to cause the writing tip to retract from the front end opening of the barrel.

[0182] Furthermore, the shape of the ballpoint pen or marking pen is not limited to the above-mentioned configuration, and it may be equipped with tips of different shapes, or with tips that dispense ink compositions of different colors, or it may be a composite writing instrument (such as a double-headed or retractable pen tip) that is equipped with tips of different shapes and dispenses ink compositions of different colors. It may also be a composite type retractable writing instrument in which a plurality of refills are housed in the barrel, and the writing tip of one of the refills is caused to protrude and retract from the barrel opening by the operation of the retraction mechanism.

[0183] The average particle size of the microcapsules contained in the ink composition according to the present invention is 0.1 to 3.0 μm, but the range of the average particle size is preferably adjusted depending on the type of writing instrument to which the ink composition is applied. For example, in an ink composition contained in a writing instrument (direct ink writing instrument) having an ink filling mechanism configured to directly fill the ink composition, an ink supply mechanism comprising a number of disks arranged in parallel at comb-like intervals, slit-shaped ink guide grooves running axially through the disks and vent grooves wider than the grooves, and an ink guide core arranged at the axial center to guide the ink composition from the ink filling mechanism to the pen tip, the average particle size of the microcapsules is preferably in the range of 0.3 to 2.0 μm, more preferably in the range of 0.3 to 1.5 μm, and even more preferably in the range of 0.3 to 1.0 μm.

[0184] An ink composition containing microcapsules having an average particle size within the above range has excellent dispersion stability in the ink composition even when the ink composition has a low viscosity, and since aggregation or sedimentation of the microcapsule pigment is suppressed, ink discharge from the pen tip is less likely to be hindered and writing defects such as smearing and skipped lines are less likely to occur. Furthermore, in a writing instrument having the above configuration, since the low-viscosity ink composition is directly filled into the ink filling mechanism, a large amount of ink is discharged, making it possible to form clear handwriting, and furthermore, since the ink supply mechanism has the effect of appropriately adjusting the ink flow rate from the ink filling mechanism, the ink composition can be more stably discharged from the pen tip.

[0185] Therefore, by applying the ink composition of the present invention, in which the average particle size of the microcapsules is within the above-mentioned range, to a direct ink writing instrument, the ink composition can be stably ejected from the pen tip, and clear handwriting with high handwriting density can be formed, making it suitable for use.

[0186] Furthermore, the ink composition according to the present invention is more preferably contained in a ballpoint pen (direct ink ballpoint pen) in a direct ink writing instrument, the pen tip of which is a ballpoint pen tip equipped with a ball having a diameter of 0.2 to 0.5 mm.

[0187] Because the diameter of the ball attached to the pen tip of a direct ink ballpoint pen is small, ink discharge from the pen tip is easily impaired, particularly when an ink composition containing a microcapsule pigment with an average particle size larger than that of general-purpose pigments is used. However, by using an ink composition in which the average particle size of the microcapsules is 0.3 to 2.0 μm, ink discharge from the pen tip is improved and writing defects such as smearing and skipped lines can be suppressed, resulting in a ballpoint pen that can produce clear handwriting with high density, making it more suitable for use.

[0188] It is possible to form handwriting by writing on a surface using a writing instrument containing the ink composition of the present invention, and the handwriting can be discolored by rubbing it with a finger or by changing the temperature using a heating or cooling tool.

[0189] Examples of heating devices include friction members and friction bodies that can be heated by frictional heat, electrically heated color-changing devices equipped with a resistance heating element such as a PTC element, heat-changing devices filled with a medium such as hot water, heat-changing devices using steam or laser light, and the application of a hair dryer. However, friction members and friction bodies are preferred because they can change color in a simple manner.

[0190] Examples of cooling devices include electrically operated thermochromic devices using a Peltier element, thermochromic devices filled with a refrigerant such as cold water or ice chips, refrigerants, refrigerators, freezers, and the like.

[0191] As the friction member and friction body, an elastic body such as an elastomer or a plastic foam, which has a high elastic feel and can generate appropriate friction and frictional heat when rubbed, is preferred, but plastic molded bodies, stone, wood, metal, cloth, etc. can also be used.

[0192] Although a general eraser used for erasing pencil marks may be used to rub the marks, eraser dust will be generated during the rubbing, and therefore the above-mentioned friction member and friction body which hardly generate eraser dust are preferably used.

[0193] Examples of materials for the friction member and friction body include silicone resin, SEBS resin (styrene-ethylene-butadiene-styrene block copolymer), etc. Silicone resin tends to adhere to areas that have been erased by rubbing, and handwriting tends to be repelled when writing is repeated, so SEBS resin is more preferably used.

[0194] The friction member or friction body may be a separate component of any shape from the writing instrument, but by providing it in the writing instrument, the writing instrument can be made highly portable. Also, a writing instrument set can be obtained by combining a writing instrument with a friction member or friction body of any shape that is separate from the writing instrument.

[0195] When the writing instrument is a cap-type writing instrument, the location where the friction member or friction body is provided is not particularly limited. For example, the cap itself may be formed from a friction member, the barrel itself may be formed from a friction member, or if a clip is provided, the clip itself may be formed from a friction member, or the friction member or friction body may be provided at the tip (top) of the cap or the rear end of the barrel (the part where the writing tip is not provided), etc.

[0196] When the writing instrument is a retractable writing instrument, the location where the friction member or friction body is provided is not particularly limited. For example, the barrel itself may be formed from a friction member, and if a clip is further provided, the clip itself may be formed from a friction member, or the friction member or friction body may be provided near the opening of the barrel, at the rear end of the barrel (the part where the writing tip is not provided), or at the knock portion. [Example]

[0197] Examples are shown below. Unless otherwise specified, "parts" in the examples refer to "parts by mass."

[0198] Example 1 (Preparation of reversible thermochromic microcapsule pigment) A reversible thermochromic composition was prepared by mixing 4.5 parts of 2-(2-chloroanilino)-6-di-n-butylaminofluoran as component (A), 8 parts of 2,2-bis(4-hydroxyphenyl)hexafluoropropane as component (B), and 50 parts of 4-benzyloxyphenylethyl caprate as component (C). This composition was added to a mixed solution consisting of 45 parts of aromatic isocyanate prepolymer as a coating material and 40 parts of a cosolvent. This mixed solution was emulsified and dispersed in a 10% aqueous polyvinyl alcohol solution. After stirring at 10,000 rpm with a homomixer while heating, 2.5 parts of a water-soluble aliphatic modified amine was added and further stirring was continued to prepare a microcapsule dispersion. The microcapsule dispersion was filtered using a filter press to obtain a reversible thermochromic microcapsule pigment.

[0199] The obtained reversible thermochromic microcapsule pigment had a complete color development temperature t1 of -20°C and a complete decolorization temperature t4 of 60°C, and reversibly changed from black to colorless when heated.

[0200] The average particle size (X) of the microcapsules contained in the reversible thermochromic microcapsule pigment was measured using a laser diffraction / scattering particle size distribution analyzer (LA-300 (trade name, manufactured by Horiba, Ltd.)) calibrated by image analysis. The volume-based average particle size (X) obtained was 0.75 μm. Furthermore, the content of microcapsules with particle sizes of 8 μm or more (large particle content) was 0% by volume based on the total volume of microcapsules in the microcapsule pigment.

[0201] The average cross-sectional thickness (Y) of the microcapsules contained in the reversible thermochromic microcapsule pigment was measured by freezing an aqueous dispersion of the microcapsule pigment in a color-developing state of the reversible thermochromic composition to eliminate deformation of the microcapsule pigment, preparing a 50 μm-thick thin section sample using a microtome, and analyzing the observed image using a transmission electron microscope (HT7700 (trade name, manufactured by Hitachi High-Tech Corporation)). There were 150 microcapsules within the field of view of the observed image. The cross-sectional thicknesses of all the microcapsules were calculated by image analysis, and the average cross-sectional thickness (Y) obtained from the average was 0.08 μm.

[0202] (Preparation of reversible thermochromic ballpoint pen) A reversible thermochromic ink composition for a writing instrument was prepared by mixing 25 parts of the microcapsule pigment of Example 1 (previously cooled to −20° C. or below to develop a black color), 0.2 parts of a shear-thinning agent (xanthan gum), 10 parts of urea, 10 parts of glycerin, 0.5 parts of a nonionic penetrant (manufactured by San Nopco Ltd., product name: Nopco SW-WET-366), 0.1 parts of a modified silicone antifoaming agent (manufactured by San Nopco Ltd., product name: Nopco 8034), 0.5 parts of a phosphate ester surfactant (manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd., product name: Plysurf AL), 0.5 parts of a pH adjuster (triethanolamine), 0.2 parts of an antifungal agent (manufactured by Lonza Japan Co., Ltd., product name: Proxel XL-2(S)), and 53 parts of water.

[0203] The ink composition thus obtained was sucked and filled into an ink reservoir made of a polypropylene pipe, and then connected to a ballpoint pen tip having a 0.5 mm diameter carbide ball at its tip via a resin holder. Next, a viscoelastic ink backflow preventive material (liquid stopper) mainly composed of polybutene was filled into the rear end of the ink reservoir, and a tail plug was fitted to the rear of the pipe. The ink was then degassed by centrifugation to obtain a ballpoint pen refill.

[0204] Next, the refill was incorporated into the barrel to prepare a retractable ballpoint pen. The ballpoint pen has a tip attached to a ballpoint pen refill housed in a barrel exposed to the outside air, and the tip protrudes from the front opening of the barrel by operating a clip-shaped slide mechanism attached to the rear side wall of the barrel. The rear end of the barrel is fitted with SEBS resin as a friction member.

[0205] Examples 2 to 28 and Comparative Examples 1 and 2 (Preparation of reversible thermochromic microcapsule pigment) The amount of coating material added and the stirring speed of Example 1 were changed as shown in Table 1 to obtain reversible thermochromic microcapsule pigments for use in the writing instruments of Examples 2 to 28 and Comparative Examples 1 and 2.

[0206] (Preparation of reversible thermochromic ballpoint pen) Using ink compositions prepared in the same manner as the ink composition of Example 1, reversible thermochromic ballpoint pens of Examples 2 to 28 and Comparative Examples 1 and 2, each having a structure similar to that of Example 1, were produced.

[0207] (Initial written exam) Using the ballpoint pens of Examples 1 to 28 and Comparative Examples 1 and 2, 12 oval-shaped circles (major axis 15 mm, minor axis 8 mm) were handwritten in three consecutive lines in a spiral pattern parallel to the short edge of an A4-size test paper (portrait orientation) at room temperature (20°C). Note that writing paper A conforming to the old JIS P3201 was used as the test paper.

[0208] (Evaluation of handwriting density) The handwriting obtained in the above initial writing test was visually inspected and the handwriting density was evaluated according to the following criteria. The evaluation results are shown in Table 1 below. A: The writing is very dense and clear. B: The writing is dense. C: The writing is slightly faint, but still legible. D: The writing density is somewhat weak, but this does not pose a problem in practical use. E: The writing density is low and visibility is low. There is a problem in practical use.

[0209] (Evaluation of ink ejection properties) The handwriting obtained in the above initial writing test was visually inspected and the ink dischargeability was evaluated according to the following criteria. The evaluation results are shown in Table 1 below. A: There are no smudges or broken lines in the handwriting. B: There are some smudges and skipped lines in the handwriting, but this does not cause any problems in practical use. C: There are many smudges and missing lines in the handwriting. This is problematic for practical use.

[0210] (Storage over time) Each ballpoint pen that had undergone the above-mentioned initial writing test was left standing in a thermostatic chamber set at 50°C for 60 days with the writing tip facing downwards, and then removed from the thermostatic chamber after 60 days.

[0211] (Evaluation of dispersion stability) The state of the ink contained in the refill of each ballpoint pen that had been stored over time as described above was visually inspected and the dispersion stability was evaluated according to the following criteria. The evaluation results are shown in Table 1 below. A: There is no sign of microcapsule pigment settling in the ink inside the refill, and the appearance is the same as the original. B: The ink in the refill showed slight separation due to aggregation and settling of the microcapsule pigment, but this does not pose a problem in practical use. C: Separation due to aggregation and sedimentation of the microcapsule pigment was observed in the ink inside the refill. This is problematic for practical use.

[0212] (Evaluation of durability of microcapsule coating) After the above-mentioned storage, each ballpoint pen was placed in a room temperature (20°C) environment and three consecutive lines were written on an A4 size test paper (portrait orientation) in a spiral pattern with 12 oval circles (approximately 15 mm long and 8 mm short) in each line, parallel to the short edge, so that the circles touched each other. Note that the test paper used was writing paper A conforming to the old JIS P3201.

[0213] The resulting handwriting was visually inspected, and the durability of the coating of the microcapsule pigment was evaluated based on the difference between the density of the handwriting in the initial writing test and the density of the handwriting of each ballpoint pen after storage, according to the following criteria. The evaluation results are shown in Table 1 below. A: The density of the handwriting remains completely unchanged compared to the handwriting obtained in the initial writing test. B: The density of the handwriting remains almost unchanged compared to the handwriting obtained in the initial writing test. C: The density of the writing is slightly lighter than that obtained in the initial writing test. D: The density of the handwriting is somewhat lighter than that obtained in the initial writing test, but this does not pose a problem in practical use. E: The density of the handwriting is significantly lighter than that obtained in the initial writing test. This is problematic for practical use.

[0214] The amounts of coating materials added and stirring speeds used in preparing the reversible thermochromic microcapsule pigments obtained in Examples 1 to 28 and Comparative Examples 1 and 2, the average particle diameter (X) of the microcapsules contained in the microcapsule pigments (ink compositions), the average cross-sectional film thickness (Y), Y / X, and large particle content, as well as the results of the handwriting density evaluation, ink dischargeability evaluation, dispersion stability evaluation, and coating durability evaluation are shown in Table 1 below.

[0215] [Table 1]

[0216] Application example 1 (Preparation of reversible thermochromic ballpoint pen) A reversible thermochromic ink composition for a writing instrument was prepared by mixing 25 parts of the reversible thermochromic microencapsulated pigment of Example 5 (previously cooled to −20° C. or below to develop a black color), 0.2 parts of a shear-thinning agent (xanthan gum), 10 parts of urea, 10 parts of glycerin, 0.5 parts of a nonionic penetrant (manufactured by San Nopco Ltd., product name: Nopco SW-WET-366), 0.1 parts of a modified silicone antifoaming agent (manufactured by San Nopco Ltd., product name: Nopco 8034), 0.5 parts of a phosphate ester surfactant (manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd., product name: Plysurf AL), 0.5 parts of a pH adjuster (triethanolamine), 0.2 parts of an antifungal agent (manufactured by Lonza Japan Co., Ltd., product name: Proxel XL-2(S)), and 53 parts of water.

[0217] The ink composition was sucked and filled into an ink reservoir tube made of polypropylene pipe, and then connected to a ballpoint pen tip having a 0.5 mm diameter stainless steel ball at its tip via a resin holder. Next, a viscoelastic ink backflow preventer (liquid plug) mainly composed of polybutene was filled into the rear end of the ink reservoir tube, and a tail plug was fitted to the rear of the pipe. The front and rear barrels were assembled, and a cap was attached. After that, the ballpoint pen was degassed by centrifugation to produce a ballpoint pen. An SEBS resin was attached to the rear end of the rear barrel as a friction member.

[0218] When the above ballpoint pen was used to write on a piece of paper to form black letters (handwriting), the handwriting was black at room temperature (25°C), and when the letters were rubbed with a friction member, the letters disappeared and became colorless, and this state could be maintained unless the paper was cooled to below -20°C. Furthermore, when the paper was placed in a freezer and cooled to below -20°C, the letters again turned black, and this color change behavior could be reproduced repeatedly.

[0219] Furthermore, the reversible thermochromic microcapsule pigment used in the ballpoint pen had excellent dispersion stability and coating durability, and the above ballpoint pen had good ink ejection properties, and the handwriting formed by the ballpoint pen was clear.

[0220] Application example 2 (Preparation of reversible thermochromic microcapsule pigment A) A reversible thermochromic microcapsule pigment A was prepared using the same formulation and method as in Example 2, except that 4.5 parts of 2-(2-chloroanilino)-6-di-n-butylaminofluoran was replaced with 1 part of 2-di-n-butylamino-8-di-n-pentylamino-4-methylspiro[5H-[1]benzopyrano[2,3-d]pyrimidin-5,1'(3'H)-isobenzofuran]-3'-one.

[0221] The above-mentioned reversible thermochromic microcapsule pigment A had a complete color development temperature t1 of -20°C and a complete decolorization temperature t4 of 60°C, and when heated, it reversibly changed from pink to colorless.

[0222] (Preparation of a reversible thermochromic marking pen) 20 parts of the above microcapsule pigment A (previously cooled to -20°C or below to develop a pink color) was mixed with a polymer flocculant (hydroxyethyl cellulose) (manufactured by Dow Chemical Japan, product name: CELLOSIZE A reversible thermochromic ink composition for a writing instrument was prepared by mixing 0.4 parts of a cellulose acetate copolymer (EP-09), 0.4 parts of an acrylic polymer dispersant (manufactured by Lubrizol Japan Corporation, product name: Solsperse 43000), 0.2 parts of a preservative (sodium 2-pyridinethiol 1-oxide) (manufactured by Lonza Japan Co., Ltd., product name: Sodium Omadine), 0.2 parts of a preservative (3-iodo-2-propynyl N-butylcarbamate) (manufactured by Lonza Japan Co., Ltd., product name: Glykasil 2000), 18 parts of glycerin, 0.2 parts of an antifoaming agent, 1 part of a pH adjuster (10% diluted phosphoric acid solution), 8 parts of a specific gravity adjuster (sodium polytungstate) (manufactured by Sometsu Co., Ltd., product name: SPT), and 46.6 parts of water in an aqueous vehicle.

[0223] The ink composition was impregnated into an ink reservoir made of polyester sliver covered with a synthetic resin film, and housed in a barrel made of polypropylene resin. A resin-processed pen body (bullet-shaped) made of an extrusion-molded polyacetal resin with multiple ink outlet holes extending in the axial direction was attached to the tip of the barrel via a holder, and a cap was attached to produce a marking pen. SEBS resin was attached to the top of the cap as a friction member.

[0224] When the marking pen was used to write on a piece of paper to form pink letters (handwriting), the handwriting was pink at room temperature (25°C), and when the letters were rubbed with a friction member, the letters disappeared and became colorless, and this state could be maintained unless the paper was cooled to below -20°C. Furthermore, when the paper was placed in a freezer and cooled to below -20°C, the letters again showed a color change behavior, turning pink, and this color change behavior could be reproduced repeatedly.

[0225] Furthermore, the reversible thermochromic microcapsule pigment used in the marking pen had excellent dispersion stability and coating durability, and the above-mentioned marking pen had good ink discharge properties, and the handwriting formed by the marking pen was clear.

[0226] Application example 3 (Preparation of reversible thermochromic microcapsule pigment B) A reversible thermochromic microcapsule pigment B was prepared using the same formulation and method as in Example 16, except that 4.5 parts of 2-(2-chloroanilino)-6-di-n-butylaminofluoran was replaced with 5 parts of 6-(N-ethyl-N-isopentylamino)-1,2-benzofluoran.

[0227] The above-mentioned reversible thermochromic microcapsule pigment B had a complete color development temperature t1 of -20°C and a complete decolorization temperature t4 of 59°C, and when heated, it reversibly changed from red to colorless.

[0228] (Preparation of reversible thermochromic ballpoint pen) A reversible thermochromic ink composition for a writing instrument was prepared by mixing 25 parts of the above-mentioned microencapsulated pigment B (previously cooled to -20°C or below to develop a red color), 0.2 parts of a shear-thinning agent (xanthan gum), 10 parts of urea, 10 parts of glycerin, 0.5 parts of a nonionic penetrant (manufactured by San Nopco Ltd., product name: Nopco SW-WET-366), 0.1 parts of a modified silicone antifoaming agent (manufactured by San Nopco Ltd., product name: Nopco 8034), 0.5 parts of a phosphate ester surfactant (manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd., product name: Plysurf AL), 0.5 parts of a pH adjuster (triethanolamine), 0.2 parts of an antifungal agent (manufactured by Lonza Japan Co., Ltd., product name: Proxel XL-2(S)), and 53 parts of water.

[0229] The ink composition was filled by suction into an ink reservoir made of polypropylene pipe, and then connected to a ballpoint pen tip having a 0.3 mm diameter carbide ball at its tip via a resin holder. Next, a viscoelastic ink backflow preventive (liquid stopper) mainly composed of polybutene was filled into the rear end of the ink reservoir, and a tail plug was fitted to the rear of the pipe. The ink was then degassed by centrifugation to obtain a ballpoint pen refill. Next, the refill was incorporated into the barrel to prepare a retractable ballpoint pen.

[0230] The ballpoint pen has a tip attached to a ballpoint pen refill housed in a barrel exposed to the outside air, and the tip protrudes from the front opening of the barrel by operating a clip-shaped slide mechanism attached to the rear side wall of the barrel. The rear end of the barrel is fitted with SEBS resin as a friction member.

[0231] When the above ballpoint pen was used to write on a piece of paper to form red letters (handwriting), the handwriting was red at room temperature (25°C), and when the letters were rubbed with a friction member, the letters disappeared and became colorless, and this state could be maintained unless the paper was cooled to below -20°C. Furthermore, when the paper was placed in a freezer and cooled to below -20°C, the letters again turned red, and this color change behavior could be reproduced repeatedly.

[0232] Furthermore, the reversible thermochromic microcapsule pigment used in the ballpoint pen had excellent dispersion stability and coating durability, and the above ballpoint pen had good ink ejection properties, and the handwriting formed by the ballpoint pen was clear.

[0233] Application example 4 (Preparation of reversible thermochromic microcapsule pigment C) A reversible thermochromic microcapsule pigment C was prepared using the same formulation and method as in Example 19, except that 4.5 parts of 2-(2-chloroanilino)-6-di-n-butylaminofluoran was replaced with 2 parts of 3',6'-bis[3-phenyl(3-methylphenyl)amino]-spiro[isobenzofuran-1(3H),9'-[9H]xanthene]-3-one.

[0234] The above-mentioned reversible thermochromic microcapsule pigment C had a complete color development temperature t1 of -20°C and a complete decolorization temperature t4 of 60°C, and when heated, it reversibly changed from blue to colorless.

[0235] (Preparation of a reversible thermochromic marking pen) 23 parts of the above microcapsule pigment C (previously cooled to -20°C or below to develop a blue color) was mixed with a polymer flocculant (hydroxyethyl cellulose) (manufactured by Dow Chemical Japan, product name: CELLOSIZE A reversible thermochromic ink composition for a writing instrument was prepared by mixing 0.4 parts of an acrylic polymer dispersant (manufactured by Lubrizol Japan Corporation, product name: Solsperse 43000), 0.4 parts of a preservative (sodium 2-pyridinethiol 1-oxide) (manufactured by Lonza Japan Co., Ltd., product name: Sodium Omadine), 0.2 parts of a preservative (sodium 3-iodo-2-propynyl N-butylcarbamate) (manufactured by Lonza Japan Co., Ltd., product name: Glykasil 2000), 30 parts of glycerin, 0.01 parts of an antifoaming agent, 0.03 parts of a pH adjuster (10% diluted phosphoric acid solution), and 45.76 parts of water in an aqueous vehicle.

[0236] The ink composition was impregnated into an ink reservoir made of polyester sliver covered with a synthetic resin film, and housed in a barrel made of polypropylene resin. A resin-processed pen body (chisel type) made of polyester fiber was attached to the tip of the barrel via a resin holder, and a cap was attached to produce a marking pen. SEBS resin was attached to the rear end of the barrel as a friction member.

[0237] When the marking pen was used to write on paper to form blue letters (handwriting), the handwriting was blue at room temperature (25°C), and when the letters were rubbed with a friction member, the letters disappeared and became colorless, and this state could be maintained unless the paper was cooled to below -20°C. Furthermore, when the paper was placed in a freezer and cooled to below -20°C, the letters again turned blue, and this color change behavior could be reproduced repeatedly.

[0238] Furthermore, the reversible thermochromic microcapsule pigment used in the marking pen had excellent dispersion stability and coating durability, and the above-mentioned marking pen had good ink discharge properties, and the handwriting formed by the marking pen was clear. [Explanation of symbols]

[0239] t1 full color temperature t2 color development start temperature t3 decolorization start temperature t4 complete color erasure temperature T1 complete discoloration temperature T2 decolorization start temperature T3 color development temperature T4 full color temperature ΔH Hysteresis width

Claims

1. (a) electron-donating color-forming organic compound; (b) an electron-accepting compound, and (c) A reaction medium that causes a reversible electron transfer reaction between the components (a) and (b) in a specific temperature range. a reversible thermochromic microcapsule pigment comprising microcapsules in which a reversible thermochromic composition comprising the compound is encapsulated in a coating; Vehicle and A reversible thermochromic ink composition for a writing instrument comprising: The volume-based average particle diameter (X) of the microcapsules is 0.1 to 3.0 μm, and The cross section of the frozen microcapsule pigment was observed under a transmission electron microscope, and all capsules within the observation field were found to have the following formula: Cut cross-section film thickness = (cross-section outer circumference diameter - cross-section inner circumference diameter) / 2 (In the formula, the outer diameter and inner diameter of the cross section are calculated from the equivalent circle diameters of the area of ​​the region surrounded by the outer periphery of the cross section of the coating and the area of ​​the region surrounded by the inner periphery of the cross section of one microcapsule.) and the average value is taken as the average cross-sectional thickness of the microcapsules, the average cross-sectional thickness of the microcapsules (Y) is 0.02 to 0.7 μm, The reversible thermochromic ink composition for a writing instrument has an average particle size (X) and an average cross-sectional film thickness (Y) that satisfy the following formula: 0.02<Y / X<0.3

2. 2. The ink composition according to claim 1, wherein the average particle size (X) is 0.3 to 2.0 μm.

3. 3. The ink composition according to claim 1, wherein the content of microcapsules having a particle size of 8 μm or more is 1% by volume or less based on the total volume of microcapsules in the microcapsule pigment.

4. The ink composition according to any one of claims 1 to 3, wherein the blending ratio of the reversible thermochromic microencapsulated pigment is 5 to 40 mass % based on the total mass of the ink composition.

5. The ink composition according to any one of claims 1 to 4, wherein the vehicle is an aqueous vehicle.

6. The ink composition according to any one of claims 1 to 5, wherein the vehicle comprises glycerin.

7. A writing instrument containing the reversible thermochromic ink composition for writing instruments according to any one of claims 1 to 6.

8. 8. The writing instrument of claim 7, which is a ballpoint pen.

9. 9. The ballpoint pen according to claim 8, wherein the writing tip is provided with a ball having a diameter of 0.2 to 0.5 mm.

10. 8. The writing instrument according to claim 7, which is a marking pen.

11. The writing implement according to any one of claims 7 to 10, further comprising a friction member that can discolor handwriting formed by the writing implement with frictional heat.

Citation Information

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