Zirconium phosphate particles, basic gas deodorizer using the same, and manufacturing method thereof

Treated zirconium phosphate particles with a basic and acidic treatment achieve high-speed deodorizing performance against basic gases, addressing the inefficiencies of existing technologies and enabling effective deodorizing fibers and fabrics.

JP7722356B2Active Publication Date: 2025-08-13TOAGOSEI CO LTD
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Patent Information

Application Number
JP2022506003
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-13
Filing Date
2021-03-04
Publication Date
2025-08-13
Estimated Expiration
2041-03-04

AI Technical Summary

Technical Problem

Existing deodorizing technologies, such as those using zirconium phosphate, require large amounts of the material to achieve high-speed deodorizing performance and are not practical for deodorizing fibers or clothing, and there is a lack of focus on improving deodorizing speed and properties.

Method used

Zirconium phosphate particles are treated with a basic liquid of pH 9 or higher followed by an acidic liquid of pH 6 or lower to enhance deodorizing performance, particularly against basic gases like ammonia, with a median particle diameter of 0.1 to 10 μm and a drying loss of 5.0% or less, suitable for use in deodorizing fibers and fabrics.

Benefits of technology

The treated zirconium phosphate particles exhibit high deodorizing performance against basic gases, especially ammonia, with a 50% or more ammonia gas reduction rate within 10 minutes, suitable for use in deodorizing fibers and fabrics.

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Abstract

Zirconium phosphate particles produced by bringing α-zirconium phosphate particles into contact with a basic liquid having a pH value of 9 or more and then bringing the α-zirconium phosphate particles into contact with an acidic liquid having a pH value of 6 or less, or zirconium phosphate particles having such a property that, when 10 mg of the zirconium phosphate particles and 3 L of air containing 1000 ppm of an ammonia gas are charged in a test bag under ambient-temperature ambient-pressure conditions and then the bag is allowed to leave for 10 minutes, the ammonia gas reduction rate in the test bag containing the zirconium phosphate particles is 50% or more.
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Description

[Technical Field]

[0001] The present invention relates to zirconium phosphate particles, and a particulate basic gas deodorizer, a fiber deodorizer, a deodorizing composition, a deodorizing resin composition, and a deodorizing fiber, which use the same, and belongs to the technical fields of adsorbents, deodorizers, and resins and fibers. [Background technology]

[0002] In recent years, amid demand for safer and more comfortable living environments, deodorizing products such as deodorizing sheets, deodorizing curtains, deodorizing filters, and clothing and bedding that have the ability to deodorize sweat odors, aging odors, fatigue odors, etc., have come onto the market, with the aim of absorbing and eliminating harmful gases and foul-smelling gases. Typical gases to be adsorbed and deodorized include acidic gases such as acetic acid, basic gases such as ammonia, sulfur-based gases such as methyl mercaptan, aldehyde-based gases such as formaldehyde, and ketone-based gases such as acetone, and deodorants and deodorizing products suitable for each gas are being developed. In recent years, attention has been focused on basic gas adsorbents and basic gas deodorizing products that can adsorb basic gases such as ammonia, which are the cause of sweat odor and fatigue odor, and deodorizing products have been developed in which inorganic solid acids such as zirconium phosphate are used as basic gas adsorbents and are supported on or kneaded into fibers, etc. For example, the development of clothing and the like using deodorizing fibers has been considered in order to eliminate sweat odors and fatigue odors, but for such purposes, it has become necessary to deodorize basic gases such as ammonia, which are the causative substances of these odors, as quickly as possible.

[0003] Japanese Patent No. 3896327 discloses an ammonia gas adsorption filter that supports 0.5 to 4 parts by weight of α-type zirconium phosphate per 1 part by weight of fibrillated fibers and has a propylene glycol monomethyl ether acetate decomposition rate of less than 4%.

[0004] In JP 2018-178313 A, the particle diameter is a median diameter of 0.2 to 0.7 μm and a maximum particle diameter of 5.0 μm or less, and D 10 A fabric deodorizer containing α-zirconium phosphate having a diameter of 0.1 μm or more is disclosed. Summary of the Invention [Problem to be solved by the invention]

[0005] However, in the ammonia gas adsorption filter disclosed in Japanese Patent No. 3896327, a flat adsorption filter was manufactured by blending 2.34 parts by weight of α-type zirconium phosphate having an average particle size of 0.9 μm with 1.0 part by weight of an aramid fiber fibril compound, and in order to achieve sufficiently high-speed deodorizing performance, a large amount of α-type zirconium phosphate relative to the fiber had to be used. Furthermore, it was not practical to apply this technology to deodorizing fibers or deodorizing clothing. Furthermore, the deodorizing fiber described in JP 2018-178313 A has improved spinnability and deodorizing properties by controlling the particle size of the deodorizing agent kneaded into the fiber to a certain value or less, but there is no description or suggestion whatsoever about the issues related to high-speed deodorizing properties and how to solve them.

[0006] According to one embodiment of the present invention, it is an object to provide zirconium phosphate particles that have high deodorizing performance against basic gases such as ammonia and trimethylamine, and that are particularly excellent in the deodorizing speed of ammonia, a deodorizer, a deodorizing composition, a deodorizing resin composition, and a deodorizing fiber that use the same, as well as methods for producing them. [Means for solving the problem]

[0007] The present invention includes the following aspects [1] to

[21] . [1] Zirconium phosphate particles obtained by contacting α-zirconium phosphate particles with a basic liquid of pH 9 or higher and then with an acidic liquid of pH 6 or lower. [2] The zirconium phosphate particles according to [1], wherein the basic liquid contains an alkali metal and / or an alkaline earth metal. [3] Zirconium phosphate particles, wherein 10 mg of zirconium phosphate particles and 3 L of air containing 1000 ppm of ammonia gas are placed in a test bag at room temperature and normal pressure, and the test bag is left to stand for 10 minutes, after which the ammonia gas reduction rate (X; unit: %) represented by the following formula (1) in the test bag containing the zirconium phosphate particles is 50% or more. X = {(A0-A1) / A0)} × 100 (1) [In formula (1), A0 means the ammonia gas concentration in the test bag containing no zirconium phosphate particles, and A1 means the ammonia gas concentration in the test bag containing zirconium phosphate particles.] [4] Zirconium phosphate particles according to any one of [1] to [3], wherein the median diameter of the primary particles is 0.1 to 10 μm. [5] Zirconium phosphate particles according to any one of [1] to [4], which have a drying loss (Y; unit weight %) expressed by the following formula (2) after heating at 150°C for 2 hours of 5.0 weight % or less. Y = {(B0-B1) / B0} × 100 (2) [In formula (2), B0 means the weight of the zirconium phosphate particles before heating, and B1 means the weight of the zirconium phosphate particles after heating.] [6] A basic gas deodorizer containing the zirconium phosphate particles according to any one of [1] to [5]. [7] A basic gas deodorizer for fabrics, comprising the zirconium phosphate particles according to any one of [1] to [5]. [8] A basic gas deodorizer for incorporation into fibers, comprising the zirconium phosphate particles according to any one of [1] to [5]. [9] A composition for basic gas deodorization, comprising the zirconium phosphate particles according to any one of [1] to [5].

[10] A basic gas deodorizing resin composition containing the zirconium phosphate particles according to any one of [1] to [5].

[11] A basic gas deodorizing fiber comprising the zirconium phosphate particles according to any one of [1] to [5].

[12] The basic gas deodorizing fiber according to

[11] , which contains at least one fiber selected from the group consisting of polyester, polyurethane, nylon, rayon, cotton, acrylic, aramid, vinylon, polyethylene, and polypropylene.

[13] A method for producing zirconium phosphate particles according to any one of [1] to [5], comprising contacting α-zirconium phosphate particles with a basic liquid having a pH of 9 or higher, and then further contacting the particles with an acidic liquid having a pH of 6 or lower.

[14] The method for producing zirconium phosphate particles according to

[13] , wherein the basic liquid contains an alkali metal and / or an alkaline earth metal.

[15] A method for producing a basic gas deodorizing resin composition, comprising mixing zirconium phosphate particles obtained by the method according to

[13] or

[14] with a resin.

[16] A method for producing a basic gas deodorizing resin composition, comprising: contacting zirconium phosphate particles with a basic liquid having a pH of 9 or more, and then contacting the particles with an acidic liquid having a pH of 6 or less to obtain liquid-treated zirconium phosphate particles; and mixing the liquid-treated zirconium phosphate particles with a resin.

[17] A method for producing a basic gas deodorizing fiber, comprising spinning the basic gas deodorizing resin composition obtained by the method according to

[15] or

[16] .

[18] A method for producing a basic gas deodorizing resin composition, comprising contacting a resin containing zirconium phosphate particles with a basic liquid having a pH of 9 or more, and then contacting the resin with an acidic liquid having a pH of 6 or less.

[19] The method for producing a basic gas deodorizing resin composition according to

[18] , wherein the zirconium phosphate particles are those according to any one of [1] to [5].

[20] A method for producing a basic gas deodorizing fiber, comprising contacting a fiber containing zirconium phosphate particles with a basic liquid having a pH of 9 or more, and then contacting the fiber with an acidic liquid having a pH of 6 or less.

[21] The method for producing a basic gas deodorizing fiber according to

[20] , wherein the zirconium phosphate particles are those according to any one of [1] to [5]. [Effects of the Invention]

[0008] According to one embodiment of the present invention, there are provided zirconium phosphate particles that have high deodorizing performance against basic gases such as ammonia and trimethylamine, and are particularly excellent in the deodorizing speed of ammonia; a deodorizer, a composition for deodorizing processing, a deodorizing resin composition, and a deodorizing fiber that use the same; and methods for producing the same. DETAILED DESCRIPTION OF THE INVENTION

[0009] The present disclosure will be described in detail below. In this specification, unless otherwise specified, "%" means "% by weight," "parts" means "parts by weight," and "ppm" means "ppm by volume." In addition, in this specification, the expression "lower limit to upper limit" expressing a numerical range means "not less than the lower limit, not more than the upper limit," and the expression "upper limit to lower limit" means "not more than the upper limit, not less than the lower limit." In other words, it expresses a numerical range including the upper limit and the lower limit. In this specification, "room temperature" means 25±5°C. Furthermore, in the present disclosure, combinations of two or more of the preferred embodiments described below are also preferred embodiments.

[0010] The zirconium phosphate particles in the present disclosure refer to particles containing zirconium phosphate as a main component, and may contain impurities, moisture, etc. that are mixed in due to raw materials, the manufacturing process, etc. The main component means that the zirconium phosphate component contained in the particles is 50% by weight or more, preferably 80% by weight or more, more preferably 90% by weight or more, and even more preferably 95% by weight or more.

[0011] 1. Zirconium phosphate particles The zirconium phosphate particles according to the first embodiment of the present disclosure are obtained by contacting α-zirconium phosphate particles with a basic liquid having a pH of 9 or higher (hereinafter also simply referred to as "basic liquid"), and then further contacting the particles with an acidic liquid having a pH of 6 or lower (hereinafter also simply referred to as "acidic liquid"). The zirconium phosphate particles according to a second aspect of the present disclosure are zirconium phosphate particles, in which 10 mg of zirconium phosphate particles and 3 L of air containing 1000 ppm of ammonia gas are placed in a test bag at room temperature and normal pressure, and the test bag is left to stand for 10 minutes, after which the ammonia gas reduction rate (X; unit: %), expressed by the following formula (1), inside the test bag containing the zirconium phosphate particles is 50% or more. X = {(A0-A1) / A0)} × 100 (1) [In formula (1), A0 means the ammonia gas concentration in the test bag containing no zirconium phosphate particles, and A1 means the ammonia gas concentration in the test bag containing zirconium phosphate particles.] In this specification, the term "zirconium phosphate particles of the present disclosure" encompasses the zirconium phosphate particles according to the first embodiment and the zirconium phosphate particles according to the second embodiment.

[0012] 1-1. Zirconium phosphate particles according to the first embodiment The zirconium phosphate particles according to the first embodiment are obtained by contacting α-zirconium phosphate particles with a basic liquid and then with an acidic liquid. The basic liquid, the acidic liquid, the raw material α-zirconium phosphate particles, and the method for producing zirconium phosphate will be described below.

[0013] 1-1-1. Basic liquid The base contained in the basic liquid is not particularly limited, and well-known bases including, for example, alkali metals, alkaline earth metals, ammonia, amines, and ammonium salts can be used. Examples of alkali metals include lithium, sodium, and potassium. Examples of alkaline earth metals include magnesium and calcium. Examples of amines include alkylamines such as methylamine, dimethylamine, and trimethylamine, arylamines such as aniline and phenylmethylamine, and heterocyclic aromatic amines such as pyridine. Examples of ammonium salts include tetramethylammonium hydroxide. These may be used alone or in combination of two or more.

[0014] Among these, it is preferable to use a base containing an alkali metal and / or alkaline earth metal because it has a strong basicity, allows efficient contact treatment with a basic liquid, is almost odorless, and provides a good working environment, etc. Examples of bases containing alkali metals include lithium hydroxide, sodium hydroxide, and potassium hydroxide, and examples of bases containing alkaline earth metals include magnesium hydroxide and calcium hydroxide.

[0015] The solvent used for the basic liquid having a pH of 9 or higher is not particularly limited, but is preferably water or a lower alcohol such as methanol, and more preferably water. The method for preparing the basic liquid having a pH of 9 or higher is not particularly limited, and well-known methods can be applied. For example, the basic liquid can be prepared by dissolving a base containing an alkali metal and / or alkaline earth metal, specifically, lithium hydroxide, sodium hydroxide, potassium hydroxide, magnesium hydroxide, calcium hydroxide, or tetramethylammonium hydroxide, in a solvent such as water.

[0016] The pH of the basic liquid is not particularly limited as long as it is 9 or higher, but from the viewpoint of efficient production process and resource conservation, the pH is preferably 12 or higher, and more preferably 13 or higher. Furthermore, when the α-zirconium phosphate particles are brought into contact with a basic liquid, the total amount of bases such as alkali metals and / or alkaline earth metals relative to the hydroxy groups (hereinafter also referred to as "P-OH groups") bonded to phosphorus atoms of the α-zirconium phosphate is preferably 1 / 20 or more by molar ratio, more preferably 1 / 10 or more by molar ratio, and even more preferably 1 / 5 or more by molar ratio. A molar ratio of 1 / 20 or more can sufficiently achieve the effect of imparting high-speed deodorizing properties to the α-zirconium phosphate.

[0017] 1-1-2. Acidic liquid The acid used in the acidic liquid is not particularly limited, but examples include well-known acids such as hydrochloric acid, nitric acid, sulfuric acid, and phosphoric acid, and an acid with a smaller acid dissociation index (i.e., pKa) than the phosphate group of α-zirconium phosphate is preferred.

[0018] The solvent used for the acidic liquid is not particularly limited, but is preferably water and lower alcohols such as methanol, and more preferably water.

[0019] The pH of the acidic liquid is not particularly limited as long as it satisfies 6 or less, but from the viewpoints of improving the efficiency of the production process and resource conservation, etc., it is preferably pH 2 or less, and more preferably pH 1 or less. Further, the total amount of acid when the zirconium phosphate particles are brought into contact with the acidic liquid is preferably 100 mol% or more, more preferably 300 mol% or more, and still more preferably 1000 mol% or more with respect to the amount of P-OH groups of α-zirconium phosphate before contact with the basic liquid having a pH of 9 or more. When it is 100 mol% or more, the effect of imparting high-speed deodorizing properties to α-zirconium phosphate can be sufficiently obtained.

[0020] 1-1-3.α-zirconium phosphate particles As the α-zirconium phosphate of the raw material used in the production of zirconium phosphate according to the first aspect, various compounds can be used, and conventionally well-known α-zirconium phosphate can be used. As the α-zirconium phosphate, various compounds can be used, but a compound represented by the following formula (3) and having a cation exchange capacity per unit weight of 6.7 meq / g is preferable. Zr 1―x Hf x H a (PO4) b ·nH2O (3) In formula (3), a and b are positive numbers that satisfy 3b - a = 4, b satisfies 2.0 < b ≤ 2.1, x is a positive number that satisfies 0 ≤ x ≤ 0.2, and n is a positive number that satisfies 0 ≤ n ≤ 2.0.

[0021] In the formula (3) of α-zirconium phosphate, hafnium (Hf) is derived from the raw zirconium compound. In formula (3), x is a positive number satisfying 0≦x≦0.2. In the present disclosure, 0≦x≦0.2 is preferred, 0.005≦x≦0.1 is more preferred, and 0.005≦x<0.03 is even more preferred. In formula (3), n is preferably 2.0 or less, and more preferably 1.0 or less. By setting the value of n to 2.0 or less, it is possible to prevent foaming or fiber breakage due to the release of adhering water or crystal water when the resin is melted during spinning.

[0022] The method for adjusting the particle size of the zirconium phosphate particles according to the first embodiment is not particularly limited. For example, the particle size can be adjusted at any stage, before or after contact with a basic liquid of pH 9 or higher, or after contact with an acidic liquid of pH 6 or lower. However, it is preferable to control the particle size before contact with a basic liquid of pH 9 or higher, i.e., at the stage of producing the α-zirconium phosphate particles as the raw material.

[0023] Although the method for adjusting the particle size of the α-zirconium phosphate particles used in the present disclosure is not limited, it is preferable to adjust the particle size by synthesizing the α-zirconium phosphate particles in an aqueous solution in order to obtain the desired particle size distribution. Synthesizing the particles in an aqueous solution facilitates uniform particle size during synthesis, making it easier to obtain a sharp particle size distribution. On the other hand, adjusting the particle size by pulverization results in the inclusion of fine powders and large particles, resulting in a broad particle size distribution. When the particles are kneaded into fibers to be used as deodorizing fibers, this can easily cause yarn breakage during spinning.

[0024] The α-zirconium phosphate particles used in the present disclosure can be produced by known methods. Conventional techniques can be applied to the production method of α-zirconium phosphate, and there are no restrictions on raw materials, equipment, etc. Examples include the methods described in Japanese Patent Nos. 5,545,328 and 5,821,258. As a method for producing α-zirconium phosphate particles, a method in which raw material compounds are reacted in an aqueous solution is preferred because it is easy to obtain particles with a uniform particle size. For example, an aqueous solution of a zirconium compound is mixed with an aqueous solution containing phosphoric acid and / or a salt thereof (hereinafter also referred to as "phosphoric acid (salt)") to form a precipitate, which is then aged and crystallized.

[0025] Examples of zirconium compounds used as raw materials for producing α-zirconium phosphate particles include zirconium nitrate, zirconium acetate, zirconium sulfate, zirconium carbonate, basic zirconium sulfate, zirconium oxysulfate, and zirconium oxychloride. Zirconium nitrate, zirconium acetate, zirconium sulfate, zirconium carbonate, basic zirconium sulfate, zirconium oxysulfate, and zirconium oxychloride are preferred, and in consideration of reactivity, economy, and the like, zirconium oxychloride is more preferred.

[0026] Examples of the phosphoric acid (salt) used as the raw material for production include phosphoric acid, sodium phosphate, potassium phosphate, and ammonium phosphate, with phosphoric acid being preferred. The reaction ratio of phosphoric acid (salt) is, for example, 2 or more, preferably 2.05 or more, more preferably 2.1 or more, in terms of the molar ratio of the charged amount to the zirconium compound. The reaction ratio of phosphoric acid (salt) may be in large excess relative to the zirconium compound, but considering the conductivity of the supernatant during water washing after synthesis and from the viewpoint of improving the efficiency of the water washing step, the molar ratio is, for example, 3 or less, preferably 2.9 or less, and more preferably 2.6 or less.

[0027] In the production of α-zirconium phosphate particles, it is preferable to add a dicarboxylic acid (which may be in the form of a hydrate) or a salt thereof to the reaction system, such as oxalic acid, malonic acid, succinic acid, and salts thereof. Among these, the addition of oxalic acid or a salt thereof is preferable because it speeds up the production of α-zirconium phosphate and allows for efficient production with less waste of raw materials. In this case, examples of oxalic acid or a salt thereof include oxalic acid dihydrate, ammonium oxalate, and ammonium hydrogen oxalate, with oxalic acid dihydrate being preferred. The reaction ratio of oxalic acid or a salt thereof, in terms of molar ratio to the zirconium compound, is, for example, 1.0 to 3.5, more preferably 1.5 to 3.2, and even more preferably 2.0 to 3.0. In the present disclosure, a ratio within the above range is preferred because it facilitates the production of α-zirconium phosphate.

[0028] In the production of α-zirconium phosphate particles, an aqueous solution of a zirconium compound and an aqueous solution containing phosphoric acid (salt) are mixed and then aged. The aging may be carried out at room temperature, but is preferably carried out at 90°C or higher under wet atmospheric pressure to accelerate aging. Alternatively, synthesis may be carried out under conditions exceeding 100°C in a pressure atmosphere higher than atmospheric pressure, i.e., so-called hydrothermal conditions. When producing α-zirconium phosphate particles under hydrothermal conditions, synthesis at 130°C or lower is preferred from the viewpoint of production costs.

[0029] The production time of α-zirconium phosphate particles may be any time as long as it is long enough to synthesize α-zirconium phosphate particles. For example, α-zirconium phosphate particles can be obtained by mixing phosphoric acid (salt) with a zirconium compound to form a precipitate, followed by aging. The aging time varies depending on the aging temperature and is appropriately selected. For example, the aging time is preferably 4 hours or more when aging at 90° C. However, even if aging is carried out for 24 hours or more, the content of α-zirconium phosphate particles tends to plateau. The synthesized α-zirconium phosphate particles are further filtered, thoroughly washed with water, and then dried to obtain α-zirconium phosphate particles.

[0030] 1-1-4.Method for producing zirconium phosphate particles The method for producing zirconium phosphate particles according to the first embodiment comprises contacting α-zirconium phosphate particles with a basic liquid having a pH of 9 or higher, and then contacting the particles with an acidic liquid having a pH of 6 or lower. The basic liquid, the acidic liquid, and the raw material α-zirconium phosphate particles have the same compositions as described above, and the preferred ranges are also as described above.

[0031] The temperature at which the α-zirconium phosphate particles are brought into contact with the basic liquid and the temperature at which the α-zirconium phosphate particles are brought into contact with the acidic liquid are not particularly limited, and are usually, for example, in the range of 0 to 100°C, preferably 10 to 90°C, and more preferably 15 to 85°C. Depending on the purpose, the temperature for contact with the basic liquid and the temperature for contact with the acidic liquid may be different.

[0032] There are no particular limitations on the method for contacting the α-zirconium phosphate particles with a basic liquid, and the method for contacting the particles with a basic liquid and then with an acidic liquid, and any known method can be used. Examples of such methods include immersing α-zirconium phosphate particles in each of these liquids, immersing α-zirconium phosphate particles in each of these liquids and stirring them, spraying, dropping or applying each of these liquids to the α-zirconium phosphate particles, etc. These methods can be carried out alone or in combination, but the method of immersing in each of these liquids and stirring them is preferred because it allows sufficient contact treatment.

[0033] The time for which the α-zirconium phosphate particles are contacted with the basic liquid may be appropriately set depending on the type, pH, and contact temperature of the basic liquid used, as well as the intended use of the resulting zirconium phosphate particles. The time for which the α-zirconium phosphate particles are contacted with the basic liquid is preferably 3 minutes to 10 hours, more preferably 15 minutes to 5 hours, and even more preferably 30 minutes to 3 hours. Although the contact time may exceed 10 hours depending on the type, pH, and contact temperature of the basic liquid used, as well as the intended use of the resulting zirconium phosphate particles, a time of 10 hours or less is economically preferable because it improves production efficiency. Furthermore, a contact treatment time of 3 minutes or more is preferred because it tends to ensure uniform contact of the α-zirconium phosphate particles with the basic liquid. The time for contact with the acidic liquid after contact with the basic liquid may be appropriately set depending on the type and pH of the acidic liquid used, the contact temperature, and the intended use of the zirconium phosphate particles. The time for contact with the acidic liquid after contact with the basic liquid is preferably 3 minutes to 10 hours, more preferably 15 minutes to 5 hours, and even more preferably 30 minutes to 3 hours. Contact for more than 10 hours may be allowed depending on the type and pH of the acidic liquid used, the contact temperature, and the intended use of the zirconium phosphate particles. However, contact for 10 hours or less is economically preferable because it improves production efficiency. A contact treatment for 3 minutes or more is preferred because it tends to allow the α-zirconium phosphate particles to be uniformly contacted with the acidic liquid.

[0034] 1-2. Zirconium phosphate particles according to the second embodiment The zirconium phosphate particles according to the second embodiment are zirconium phosphate particles, in which 10 mg of zirconium phosphate particles and 3 L of air containing 1000 ppm of ammonia gas are placed in a test bag at room temperature and normal pressure, and the test bag is left to stand for 10 minutes, after which the ammonia gas reduction rate (X; unit: %) represented by the following formula (1) in the test bag containing the zirconium phosphate particles is 50% or more. X = {(A0-A1) / A0)} × 100 (1) [In formula (1), A0 means the ammonia gas concentration in the test bag containing no zirconium phosphate particles, and A1 means the ammonia gas concentration in the test bag containing zirconium phosphate particles.]

[0035] The zirconium phosphate particles according to the second embodiment preferably have an ammonia gas reduction rate, expressed by the above formula (1), of 55% or more, more preferably 60% or more, after being left for 10 minutes.

[0036] In the zirconium phosphate particles according to the second embodiment, 10 mg of the zirconium phosphate particles and 3 L of air containing 1000 ppm of ammonia gas are placed in a test bag at room temperature and normal pressure, and left for 5 minutes. After this, the ammonia gas reduction rate (X; unit: %) represented by the above formula (1) is preferably 40% or more, more preferably 50% or more, and even more preferably 55% or more.

[0037] The material of the test bag used to determine the ammonia gas reduction rate in the present disclosure is not particularly limited, and well-known materials can be used, such as polyvinyl alcohol, polyvinylidene fluoride, polyvinyl fluoride, tetrafluoroethylene-hexafluoropropylene copolymer, and polyester.

[0038] The method for detecting the concentration of a basic gas such as ammonia in the present disclosure can be any known method and is not particularly limited. For example, the concentration of ammonia gas can be measured using a gas sampler and a detector tube. Specifically, a detector tube for detecting ammonia gas with a syringe needle attached is attached to the gas sampler, inserted into a test bag, and the ammonia gas is sucked in by the suction force of the gas sampler and adsorbed into the detector tube. The concentration value can be read from the color change of the detector tube.

[0039] 1-2-1.Method for producing zirconium phosphate particles The method for producing the zirconium phosphate particles according to the second embodiment is not particularly limited, and may be, for example, produced by the method for producing the zirconium phosphate particles according to the first embodiment described above.

[0040] 1-3.Median diameter The median diameter of the primary particles of the zirconium phosphate particles of the present disclosure (hereinafter also simply referred to as "particle diameter") is preferably 0.1 to 10.0 μm, more preferably 0.2 to 3.0 μm, and even more preferably 0.2 to 1.5 μm. The median diameter of the primary particles is preferably 0.2 to 1.5 μm, because when kneaded into fibers, a larger number of particles are produced and the deodorizing effect is more easily achieved. Furthermore, if the median diameter of the primary particles is 0.1 μm or more, aggregation is less likely to occur, which is less likely to cause thread breakage during spinning, and this is therefore preferred.

[0041] The particle size in the present disclosure refers to a value measured using a laser diffraction particle size distribution analyzer and analyzed on a volume basis.

[0042] The method for adjusting the particle size of the zirconium phosphate particles of the present disclosure is not particularly limited, and can be adjusted, for example, by the above-described method for producing zirconium phosphate particles.

[0043] 1-4.Drying loss amount The rapid deodorizing zirconium phosphate particles of the present disclosure preferably have a drying loss (Y; unit weight %) expressed by the following formula (2) after heating at 150°C under normal pressure for 2 hours of 5.0 weight % or less, more preferably 3.0 weight % or less, and even more preferably 1.0 weight % or less. By setting the loss on drying to 5.0% by weight or less, foaming and hydrolysis of the resin can be reduced when preparing a masterbatch of a deodorizing resin composition or deodorizing fiber containing high-speed deodorizing zirconium phosphate particles, which is preferable.

[0044] Y = {(B0-B1) / B0} × 100 (2) [In formula (2), B0 means the weight of the zirconium phosphate particles before heating, and B1 means the weight of the zirconium phosphate particles after heating.]

[0045] 2.Applications The zirconium phosphate particles of the present disclosure can be used in a variety of applications. In particular, the zirconium phosphate particles of the present disclosure have a high basic gas adsorption rate and can therefore be preferably used as a basic gas adsorbent. Furthermore, the zirconium phosphate particles of the present disclosure can be preferably used as a deodorizer, and more preferably as a basic gas deodorizer.

[0046] Examples of basic gases that cause bad odors include ammonia, alkylamines such as trimethylamine and dimethylamine, nitrogen-containing heteroaromatic compounds such as pyridine, heterocyclic amines such as piperidine, aromatic amines such as aniline, and hydrazines.

[0047] Furthermore, as the basic gas deodorizer, it can be preferably used as a basic gas deodorizer for fibers and a basic gas deodorizer for kneading into fibers. The specific method of use will be described in detail below.

[0048] 3. Composition for deodorizing basic gases The high-speed deodorizing zirconium phosphate particles of the present disclosure can be mixed with known binders, dispersants, oils, solvents, etc. to form a basic gas deodorizing composition. By using these, the basic gas deodorizer can be spread on fibers, filters, fabrics, sheets, etc., and deodorizing properties can be imparted.

[0049] The binder is not particularly limited, and well-known binders can be used. For example, the binder is a component that adheres a deodorizing agent containing the zirconium phosphate particles of the present disclosure to a substrate such as a fiber when producing a deodorizing product, and is preferably a polymer compound, which may be any of a synthetic polymer compound, a semi-synthetic polymer compound, and a natural polymer compound. Examples of the polymer compound include resins and polysaccharides, and resins are preferred. The binder that can be contained in the basic gas deodorizing composition of the present disclosure can be one type or two or more types. The resin may be either a water-soluble resin or a water-insoluble resin, and examples thereof include ethylene-vinyl acetate copolymers or modified products thereof (e.g., acid-modified products), ethylene-vinyl chloride copolymers, vinyl chloride-vinyl acetate copolymers, polyvinyl acetate, polyvinyl chloride, modified olefin resins (e.g., chlorinated polyolefins), polyvinyl alcohol, alkyl celluloses, carboxyalkyl celluloses, carboxyalkylhydroxyalkyl celluloses, polyacrylic acids, polyacrylates, acrylic resins, polyester resins, urethane resins, styrene-butadiene copolymers, styrene-isoprene copolymers, styrene-butadiene-styrene block copolymers, styrene-ethylene-butylene-styrene block copolymers, styrene-ethylene-propylene-styrene block copolymers, hydrogenated styrene-butadiene-styrene block copolymers, hydrogenated styrene-ethylene-butylene-styrene block copolymers, hydrogenated styrene-ethylene-propylene-styrene block copolymers, and styrene-maleic anhydride copolymers.

[0050] The dispersant is not particularly limited, and well-known dispersants can be used. For example, any one of anionic surfactants, cationic surfactants, amphoteric surfactants, and nonionic surfactants may be used alone or in combination. Among these, anionic surfactants and nonionic surfactants are particularly preferred from the viewpoint of dispersibility of zirconium phosphate particles. Preferred surfactants that can be contained in the basic gas deodorizing composition of the present disclosure may be either anionic surfactants or nonionic surfactants, or both.

[0051] The basic gas deodorizing composition of the present disclosure may contain a medium. The medium is not particularly limited, but examples thereof include water alone or a mixture of water and a water-soluble organic solvent, with water being preferred. Examples of water-soluble organic solvents include lower alcohols such as methanol, ethanol, and 2-propanol.

[0052] 4. Basic gas deodorizing resin composition The high-speed deodorizing zirconium phosphate particles of the present disclosure can be mixed with a resin to form a basic gas deodorizing resin composition, such as, but not limited to, polypropylene, polyethylene, acrylonitrile butadiene styrene (ABS), polyester, polyurethane, nylon, polystyrene, polycarbonate, acrylic resin, and vinyl chloride resin.

[0053] The method for producing the basic gas deodorizing resin composition is not particularly limited. For example, the zirconium phosphate particles may be produced by a method including mixing the zirconium phosphate particles obtained by the method for producing zirconium phosphate particles described above with a resin. Alternatively, the zirconium phosphate particles may be produced by a method including contacting zirconium phosphate particles with a basic liquid having a pH of 9 or higher, and then contacting the particles with an acidic liquid having a pH of 6 or lower to obtain liquid-treated zirconium phosphate particles, and mixing the liquid-treated zirconium phosphate particles with a resin. The method for mixing the zirconium phosphate particles and the resin is not particularly limited, but from the viewpoint of imparting durability and abrasion resistance so that the zirconium phosphate does not fall off from the resin and maintaining deodorizing performance, it is preferable to knead the zirconium phosphate particles into the resin.

[0054] 5. Basic gas deodorizing fiber The basic gas deodorizing fiber of the present disclosure is not particularly limited as long as it contains the zirconium phosphate particles of the present disclosure or a basic gas deodorizer containing the same. The basic gas deodorizing fiber of the present disclosure may be produced by a conventional method. For example, there may be mentioned a method in which the basic gas deodorizer of the present disclosure is kneaded into fibers and then spun, or a method in which a basic gas deodorizing composition containing the basic gas deodorizer of the present disclosure is applied to the spun fibers.

[0055] There are no limitations on the fiber resins that can be used to process the basic gas deodorizer of the present disclosure, and any known chemical fiber can be used. Preferred examples include polyester, polyurethane, nylon, rayon, acrylic resin, aramid, vinylon, polyethylene, and polypropylene. Among these, polyurethane, polyester, nylon, acrylic resin, and polyethylene are preferred. These resins may be homopolymers or copolymers. In the case of copolymers, there are no particular limitations on the polymerization ratio of each copolymerization component.

[0056] The polyurethane is not particularly limited as long as it is made from a polymer diol and a diisocyanate as starting materials, and the synthesis method is also not particularly limited.

[0057] The polyester is not particularly limited, but examples thereof include polyethylene terephthalate, polyethylene naphthalate, polytrimethylene terephthalate, and polybutylene terephthalate.

[0058] The basic gas deodorizer of the present disclosure can be preferably used as a deodorizer for fabric kneading. Specific methods for producing basic gas deodorizing fibers in this case include a method in which the deodorizer of the present disclosure is kneaded into a molten liquid fiber resin or a fiber resin solution dissolved in a solvent, and then spun; a method in which the basic gas deodorizer is processed into a masterbatch resin containing a high concentration of the basic gas deodorizer, and then mixed and melted with a fiber resin, and then spun; and the like.

[0059] The proportion of the basic gas deodorizer of the present disclosure to be contained in a fiber resin is not particularly limited. Generally, increasing the content will enhance the deodorizing effect and allow it to last for a long period of time, but even if the content exceeds a certain level, there will be no significant difference in the deodorizing effect or the strength of the resin will decrease, and from the viewpoint of economy, the content is preferably 0.1 to 5.0 parts by weight, more preferably 0.5 to 2.0 parts by weight per 100 parts by weight of the resin.

[0060] The method for producing a basic gas deodorizing resin composition containing zirconium phosphate particles according to the present disclosure involves contacting a resin containing zirconium phosphate particles with a basic liquid having a pH of 9 or higher, and then contacting the resin with an acidic liquid having a pH of 6 or lower. The method for producing a basic gas deodorizing fiber containing zirconium phosphate particles according to the present disclosure involves contacting a fiber containing zirconium phosphate particles with a basic liquid having a pH of 9 or higher, and then contacting the fiber with an acidic liquid having a pH of 6 or lower. In the present invention, after zirconium phosphate has been brought into contact with a basic liquid having a pH of 9 or higher, it may be further brought into contact with an acidic liquid having a pH of 6 or lower by directly contacting the zirconium phosphate, or by contacting something that has been kneaded into a resin, fiber, or the like, so that the liquid penetrates into the resin or fiber, and the basic liquid and acidic liquid come into contact with the zirconium phosphate in the resin, fiber, or the like. These methods fall within the same conceptual category and produce similar effects. Examples of the zirconium phosphate particles include zirconium phosphate particles capable of adsorbing basic gases, such as α-zirconium phosphate particles, zirconium phosphate particles obtained by contacting α-zirconium phosphate particles with a basic liquid of pH 9 or higher and then with an acidic liquid of pH 6 or lower, β-zirconium phosphate particles, γ-zirconium phosphate particles, and amorphous zirconium phosphate particles. Preferred examples include α-zirconium phosphate particles, and zirconium phosphate particles obtained by contacting α-zirconium phosphate particles with a basic liquid of pH 9 or higher and then with an acidic liquid of pH 6 or lower. More preferred examples include zirconium phosphate particles obtained by contacting α-zirconium phosphate particles with a basic liquid of pH 9 or higher and then with an acidic liquid of pH 6 or lower. In other words, when using zirconium phosphate particles that are liquid-treated versions of the α-zirconium phosphate particles, a second liquid treatment is performed on a resin or fiber containing the zirconium phosphate particles. The second liquid treatment may essentially include a dyeing treatment or the like. A basic gas deodorizing resin composition and a basic gas deodorizing fiber containing zirconium phosphate particles may experience a deterioration in basic gas adsorption performance, resulting in a decrease in deodorizing properties, or even no deodorizing properties, after contact treatment with a basic liquid in a fiber manufacturing process such as a dyeing process. In contrast, as disclosed herein, by further conducting a contact treatment with an acidic liquid after the aforementioned contact treatment with a basic liquid, a basic gas deodorizing resin composition and a basic gas deodorizing fiber are obtained that not only exhibit deodorizing properties but also have an improved basic gas deodorizing rate compared to the basic gas deodorizing resin composition and basic gas deodorizing fiber of the present disclosure that have been contacted with a basic liquid and not yet been contacted with an acidic liquid.

[0061] 6. Additives The basic gas deodorizer, basic gas deodorizer for fibers, basic gas deodorizing processing composition, basic gas deodorizing resin composition, and basic gas deodorizing fiber containing the high-speed deodorizing zirconium phosphate particles of the present disclosure may contain additives as appropriate. The additives are not particularly limited, and examples thereof include thickeners, other well-known deodorizers, for example, acidic gas deodorizers, basic gas deodorizers, sulfur-based gas deodorizers, aldehyde-based gas deodorizers, ketone-based gas deodorizers, antibacterial agents, antifungal agents, antiviral processing agents, antiallergen agents, defoaming agents, colorants, preservatives, viscosity adjusters, and fragrances. It should be noted that other well-known deodorizers do not include the basic gas deodorizer of the present disclosure.

[0062] There are no particular limitations on the thickener, and known thickeners can be used, such as polysaccharides, and specific examples include xanthan gum, alginate, gum arabic, starch, tamarind seed gum, guar gum, and carboxymethyl cellulose.

[0063] Other deodorizing agents may be blended in a type and ratio that does not impair the deodorizing performance of the resulting deodorizing product against basic gases. Compounds that cause bad odors include basic gases such as ammonia gas and trimethylamine; acidic gases such as acetic acid and isovaleric acid; aldehyde gases such as formaldehyde, acetaldehyde and nonenal; and sulfur gases such as hydrogen sulfide and methyl mercaptan, and the composition may contain other deodorizers that have deodorizing properties against these compounds. Examples of deodorizers for basic gases include amorphous composite oxides such as zeolite, Al2O3, SiO2, MgO, CaO, SrO, BaO, ZrO2, TiO2, WO2, CeO2, Li2O, Na2O, and K2O. Examples of deodorizers for acidic gases include zirconium hydroxide, zirconium oxide, and hydrotalcite compounds such as magnesium-aluminum hydrotalcite. Examples of deodorizers for aldehyde gases include hydrazine compounds such as adipic acid dihydrazide, carbohydrazide, succinic acid dihydrazide, and oxalic acid dihydrazide, and aminoguanidine salts such as aminoguanidine hydrochloride, aminoguanidine sulfate, and aminoguanidine bicarbonate. Examples of deodorizers for sulfur-based gases include copper silicate, copper zirconium phosphate hydrate, zinc oxide, zinc aluminum oxide, zinc silicate, zinc aluminum silicate, and layered zinc aluminosilicate.

[0064] The deodorizing resin composition using the deodorizer of the present disclosure can be used in various fields requiring deodorizing properties, and can be used in many resin products, for example, daily necessities such as trash cans, corner sinks, plastic wrap, sponges, etc.; electrical appliances such as refrigerators, air purifier filters, air conditioner filters, etc.; building materials for homes such as wallpaper, toilet bowls, toilet seats, kitchen counters, ventilation fan filters, paints, etc.; textile products such as clothing, bedding, curtains, mats, shoes, stockings, socks, etc.; pet products; and nursing care products.

[0065] Deodorizing fibers using the deodorizer of the present disclosure can be used in a variety of fields requiring deodorizing properties, and can be used in many textile products, such as underwear, stockings, socks, futons, futon covers, cushions, blankets, carpets, curtains, sofas, car seats, air filters, and nursing care clothing. [Example]

[0066] Next, the present disclosure will be specifically described based on examples and comparative examples, but the present disclosure is not limited to the following examples.

[0067] <Production Example 1> (Production of α-zirconium phosphate) A 2-L round-bottom flask was charged with 1,345 mL of deionized water and 135 g of 35% hydrochloric acid. 225 g of a 20% aqueous solution of zirconium oxychloride octahydrate containing 0.18 wt% hafnium was added, followed by 93 g of oxalic acid dihydrate. While stirring vigorously, 101 g of 75% phosphoric acid was added. The mixture was heated to 98°C over 2 hours and then refluxed with stirring for 12 hours. After cooling the reaction system, the resulting precipitate was collected by filtration, thoroughly washed with water, and dried at 105°C under atmospheric pressure to obtain zirconium phosphate. This was then crushed in a rotor speed mill (16,000 rpm, 80 μm mesh). Powder X-ray diffraction and X-ray fluorescence analysis of the resulting zirconium phosphate confirmed it to be α-zirconium phosphate. X-ray fluorescence analysis and simultaneous thermogravimetry and differential thermal analysis (TG-DTA) of this α-zirconium phosphate revealed that the composition formula was Zr 0.99 Hf 0.01 H 2.03 (PO4) 2.01 The median diameter was 0.89 μm. The measurement conditions and methods for powder X-ray diffraction, X-ray fluorescence analysis, TG-DTA, and particle size (median size) are described below.

[0068] <Powder X-ray diffraction> The X-ray diffractometer used was a D8 ADVANCE manufactured by BRUKER. An X-ray diffraction pattern was obtained using a Cu-enclosed X-ray source and CuKα generated at an applied voltage of 40 kV and a current value of 40 mA. The detailed measurement conditions are as follows: X-ray source: sealed X-ray source (Cu source), 0.4 x 12 mm 2 Long Fine Focus Rating: 2.2kW Output power: 40kV-40mA (1.6kW) Goniometer radius: 280 mm Sample stage: FlipStick_Twin_Twin-XE Measurement range 2θ: 5°~55° Step width: 0.02° Step time: 0.05 seconds / step Soller slit on entrance side: 2.5° Anti-scatter slit: 10.5 mm Curvature: 1.00 Detector: LYNXEYE XE Detector slit width: 5.758 mm Detector window width: 2.9°

[0069] <X-ray fluorescence analysis> The X-ray fluorescence analysis was performed under the following conditions. Measuring equipment: Rigaku ZSX Primus II Measurement conditions Measurement elements: C to U (F, Cl, Br, I fixed angle measurement, BG 4 sec, peak 8 sec) Analysis diameter: 20mm Number of measurements: n2 Sample treatment: The sample was compressed into pellets using a tablet press and subjected to measurement. analysis Software: ZSX version 7.49 Model: Bulk

[0070] <tg-dta>< / tg-dta> The TG-DTA measurement was carried out under the following conditions. Measuring equipment: Hitachi High-Tech Science TG / DTA 6300 Measurement method: 7-8 mg of sample was placed in an Al pan and heated to 600°C at 20°C / min. The weight loss from room temperature to 100°C was estimated as water content (adherent water), and the weight loss from 100°C to 250°C was estimated as crystallized water.

[0071] <Particle size (median size) measurement> The particle size of the deodorant was measured using a Malvern Mastersizer 2000 laser diffraction particle size analyzer, and the results were analyzed on a volume basis. The deodorant dispersion liquid to which the deodorant was added was dispersed using ultrasound, and measurements were taken at a refractive index of 2.4.

[0072] Example 1 [Amount of sodium hydroxide used: 1 / 4 molar ratio relative to the P-OH groups of α-zirconium phosphate, bath ratio: α-zirconium phosphate / NaOH aqueous solution = 1 / 20 weight ratio] 3 g of the α-zirconium phosphate obtained in Production Example 1 and 3 g of pure water were placed in a 100 mL beaker and stirred with a stirrer, and then 57 g of an aqueous sodium hydroxide solution (1 / 4 molar ratio relative to the P-OH groups of the α-zirconium phosphate) adjusted to a pH of 12.9 was added, and the mixture was stirred at 80°C for 1 hour and then filtered. The filtrate was then filtered and washed until the electrical conductivity reached 100 μS / cm or less, and the resulting zirconium phosphate was dried at 120°C under normal pressure for 2 hours and pulverized in an agate mortar to obtain basic liquid-treated zirconium phosphate particles (A-1). Next, 200 g of 1 N aqueous nitric acid solution (pH 1) was placed in a 200 mL beaker, and 1.8 g of basic liquid-treated zirconium phosphate was added thereto and stirred at 80°C for 2 hours. After that, the filtrate was filtered and washed in the same manner as above until the electrical conductivity of the filtrate reached 100 μS / cm or less. The resulting zirconium phosphate was dried at 120°C under normal pressure for 2 hours and pulverized in an agate mortar to obtain acid liquid-treated zirconium phosphate particles (A-2). The pH was adjusted using a HORIBA SD-51 pH meter. The median diameter of A-2 was measured according to the above-mentioned method, and the drying loss rate was measured according to the method shown in (1) below. The results are shown in Table 1. The performance of A-2 as a deodorant was measured according to the method described below in (2), and the results are shown in Table 1.

[0073] (1) Measurement of drying loss rate (%) The loss on drying of the deodorant particles was measured according to JIS K 0067:1992 (Testing methods for weight loss and residue of chemical products), 4.1.1(1), Method 1. The deodorant particles were left to stand for 24 hours in a room at a temperature of 25°C and a humidity of 50%, and then heated at 150°C under normal pressure for 2 hours. The weights before and after heating were measured, and the loss on drying of the deodorant (Y; unit: wt%) was calculated according to the following formula (2): Y = {(B0-B1) / B0} × 100 (2) [In formula (2), B0 represents the weight of the zirconium phosphate particles (deodorant) before heating, and B1 represents the weight of the zirconium phosphate particles (deodorant) after heating.]

[0074] (2) Deodorizing test As a deodorizing test, the deodorizing ability of odorous components was evaluated by an instrumental test as follows. First, 10 mg of zirconium phosphate particles were placed in a test bag (Tedlar bag), and ammonia gas and dry air were injected into the bag to set the ammonia gas concentration in the test bag to 1000 ppm and the gas volume to 3 L. After leaving the bag at room temperature and normal pressure for 10 minutes, the ammonia gas reduction rate (X; unit: %) in the test bag was calculated using the following formula (1). In order to calculate the ammonia gas reduction rate, a test bag without zirconium phosphate particles was also prepared, and the ammonia gas concentration after 10 minutes was measured. X = {(A0-A1) / A0)} × 100 (1) [In formula (1), A0 means the ammonia gas concentration in the test bag containing no zirconium phosphate particles, and A1 means the ammonia gas concentration in the test bag containing zirconium phosphate particles.]

[0075] <Example 2> [Amount of sodium hydroxide used: 1 / 3 molar ratio relative to the P-OH groups of α-zirconium phosphate, bath ratio: α-zirconium phosphate / NaOH aqueous solution = 1 / 20 weight ratio] Basic liquid-treated zirconium phosphate particles (B-1) and acidic liquid-treated zirconium phosphate particles (B-2) were obtained in the same manner as in Example 1, except that 57 g of an aqueous sodium hydroxide solution (1 / 3 molar ratio relative to the P-OH groups of α-zirconium phosphate) adjusted to a pH of 13.1 was used. The median diameter, drying loss rate, and deodorizing performance of B-2 were measured and evaluated in the same manner as in Example 1. The results are shown in Table 1.

[0076] Example 3 [Amount of sodium hydroxide used: 1 / 2 molar ratio relative to the P-OH groups of α-zirconium phosphate, bath ratio: α-zirconium phosphate / NaOH aqueous solution = 1 / 20 weight ratio] Basic liquid-treated zirconium phosphate particles (C-1) and acidic liquid-treated zirconium phosphate particles (C-2) were obtained in the same manner as in Example 1, except that 57 g of an aqueous sodium hydroxide solution (1 / 2 molar ratio relative to the P-OH groups of α-zirconium phosphate) adjusted to a pH of 13.3 was used. The median diameter and drying loss rate of C-2, as well as the deodorizing performance, were measured and evaluated in the same manner as in Example 1. The results are shown in Table 1.

[0077] Example 4 [Amount of sodium hydroxide used: 1 / 1.5 molar ratio relative to the P-OH groups of α-zirconium phosphate, bath ratio: α-zirconium phosphate / NaOH aqueous solution = 1 / 20 weight ratio] Basic liquid-treated zirconium phosphate particles (D-1) and acidic liquid-treated zirconium phosphate particles (D-2) were obtained in the same manner as in Example 1, except that 57 g of an aqueous sodium hydroxide solution adjusted to pH 13.4 (1 / 1.5 molar ratio relative to the P-OH groups of α-zirconium phosphate) was used. The median diameter and drying loss rate of D-2, as well as the deodorizing performance, were measured and evaluated in the same manner as in Example 1. The results are shown in Table 1.

[0078] <Example 5> [Amount of sodium hydroxide used: 1 / 1 molar ratio to the P-OH groups of α-zirconium phosphate, bath ratio: α-zirconium phosphate / NaOH aqueous solution = 1 / 20 weight ratio] Basic liquid-treated zirconium phosphate particles (E-1) and acidic liquid-treated zirconium phosphate particles (E-2) were obtained in the same manner as in Example 1, except that 57 g of an aqueous sodium hydroxide solution adjusted to pH 13.6 (1 / 1 molar ratio relative to the P-OH groups of α-zirconium phosphate) was used. The median diameter, drying loss rate, and deodorizing performance of E-2 were measured and evaluated in the same manner as in Example 1. The results are shown in Table 1.

[0079] Example 6 [Amount of sodium hydroxide used: 1 / 3 molar ratio relative to the P-OH groups of α-zirconium phosphate, bath ratio: α-zirconium phosphate / NaOH aqueous solution = 1 / 5 weight ratio] Basic liquid-treated zirconium phosphate particles (F-1) and acidic liquid-treated zirconium phosphate particles (F-2) were obtained in the same manner as in Example 1, except that 9 g of α-zirconium phosphate obtained in Production Example 1, 9 g of pure water, and 36 g of an aqueous sodium hydroxide solution adjusted to a pH of 13.8 (1 / 3 molar ratio relative to the P-OH groups of α-zirconium phosphate) were used. The median diameter and drying loss rate of F-2, as well as the deodorizing performance, were measured and evaluated in the same manner as in Example 1. The results are shown in Table 1.

[0080] Example 7 [Amount of sodium hydroxide used: 1 / 2 molar ratio relative to the P-OH groups of α-zirconium phosphate, bath ratio: α-zirconium phosphate / NaOH aqueous solution = 1 / 5 weight ratio] Basic liquid-treated zirconium phosphate particles (G-1) and acidic liquid-treated zirconium phosphate particles (G-2) were obtained in the same manner as in Example 6, except that 36 g of an aqueous sodium hydroxide solution (1 / 2 molar ratio relative to the P-OH groups of α-zirconium phosphate) adjusted to a pH of 13.9 was used. The median diameter and drying loss rate of G-2, as well as the deodorizing performance, were measured and evaluated in the same manner as in Example 1. The results are shown in Table 1.

[0081] Example 8 [Amount of sodium hydroxide used: 1 / 1.5 molar ratio relative to the P-OH groups of α-zirconium phosphate, bath ratio: α-zirconium phosphate / NaOH aqueous solution = 1 / 5 weight ratio] Basic liquid-treated zirconium phosphate particles (H-1) and acidic liquid-treated zirconium phosphate particles (H-2) were obtained in the same manner as in Example 6, except that 36 g of an aqueous sodium hydroxide solution adjusted to pH 14.0 (1 / 1.5 molar ratio relative to the P-OH groups of α-zirconium phosphate) was used. The median diameter and drying loss rate of H-2, as well as the deodorizing performance, were measured and evaluated in the same manner as in Example 1. The results are shown in Table 1.

[0082] <Comparative Example 1> [α-zirconium phosphate] The median diameter and drying loss rate of the α-zirconium phosphate particles obtained in Production Example 1, as well as the deodorizing performance, were measured and evaluated in the same manner as in Example 1. The results are shown in Table 1.

[0083] [Table 1]

[0084] Example 9 3% by weight of the acid-treated zirconium phosphate (G-2) obtained in Example 7 was mixed with 97% by weight of polyester resin (MA-2101M, manufactured by Unitika Ltd.) dried at 150°C for 12 hours. The mixture was then placed in a fully automatic injection molding machine (Meiki Seisakusho, model: M-50A II-DM) set at 270°C to produce an 11 cm x 11 cm x 1 mm injection-molded plate. This plate was then pulverized in a Wonder Blender (Osaka Chemical Co., Ltd., model: WB-1) to a median diameter of 200 μm ± 100 μm, yielding zirconium phosphate-incorporated resin composition A. Its deodorizing performance was evaluated according to the method described in (3) Deodorizing Property Test-2 below. The results are shown in Table 2.

[0085] <Comparative Example 2> 3% by weight of the α-zirconium phosphate used in Comparative Example 1 was mixed with 97% by weight of a polyester resin (MA-2101M, manufactured by Unitika Ltd.) dried at 150°C for 12 hours, to obtain a zirconium phosphate kneaded resin composition B in the same manner as in Example 9. The deodorizing performance of the composition was evaluated according to the method shown in (3) Deodorizing Property Test-2 described below. The results are shown in Table 2.

[0086] (3) Deodorizing test-2 2.4 g of the zirconium phosphate kneaded resin composition was placed in a test bag (Tedlar bag), and dry air and ammonia gas were injected into it to adjust the ammonia gas concentration in the test bag to 100 ppm and the gas volume to 3 L. The bag was then left to stand at room temperature and normal pressure for 1 hour. The ammonia gas reduction rate in the test bag after standing was calculated using the above-mentioned formula (1). Note that, in formula (1), A0 means the ammonia gas concentration in the test bag that did not contain the zirconium phosphate kneaded resin composition, and A1 means the ammonia gas concentration in the test bag that contained the zirconium phosphate kneaded resin composition.

[0087] [Table 2]

[0088] The disclosure of Japanese Patent Application No. 2020-044208, filed on March 13, 2020, is incorporated herein by reference in its entirety. All publications, patent applications, and technical standards mentioned in this specification are herein incorporated by reference to the same extent as if each individual publication, patent application, or technical standard was specifically and individually indicated to be incorporated by reference. [Industrial Applicability]

[0089] The zirconium phosphate particles of the present disclosure can be preferably used in deodorizers, which have a high adsorption rate for basic gases such as ammonia and are particularly excellent in deodorizing performance for ammonia, and therefore can be further used in deodorizing compositions, deodorizing resin compositions, and deodorizing fibers. Furthermore, the method for producing zirconium phosphate particles of the present disclosure can provide a production method that can improve the deodorizing performance.

Claims

1. Zirconium phosphate particles obtained by contacting α-zirconium phosphate particles represented by the following formula (3) with a basic liquid having a pH of 9 or more, and then further contacting the particles with an acidic liquid having a pH of 6 or less, Zr 1-x Hf x Ha (PO 4 ) b ・nH 2 O (3) [In formula (3), a and b are positive numbers satisfying 3b-a=4, b is 2.0<b≦2.1, x is a positive number satisfying 0≦x≦0.2, and n is a positive number satisfying 0≦n≦2.0] the total amount of base in the basic liquid is 1 / 20 or more by molar ratio relative to the hydroxyl groups bonded to phosphorus atoms of α-zirconium phosphate; the total amount of acid in the acidic liquid is 100 mol % or more relative to the hydroxy groups bonded to phosphorus atoms of α-zirconium phosphate before contact with the basic liquid; Zirconium phosphate particles.

2. 2. The zirconium phosphate particles according to claim 1, wherein the basic liquid comprises an alkali metal and / or an alkaline earth metal.

3. 2. The zirconium phosphate particles according to claim 1, wherein 10 mg of zirconium phosphate particles and 3 L of air containing 1000 ppm of ammonia gas are placed in a test bag at room temperature and normal pressure, and the test bag is left to stand for 10 minutes, after which an ammonia gas reduction rate (X; unit: %) represented by the following formula (1) in the test bag containing the zirconium phosphate particles is 50% or more: X={(A 0 -A 1 ) / A 0 )}×100 (1) [In formula (1), A 0 means the ammonia gas concentration in the test bag without zirconium phosphate particles, and A 1 means the ammonia gas concentration in the test bag containing the zirconium phosphate particles.]

4. The zirconium phosphate particles according to any one of claims 1 to 3, wherein the median diameter of the primary particles is 0.1 to 10 µm.

5. 5. The zirconium phosphate particles according to claim 1, wherein the drying loss rate (Y; unit weight %) represented by the following formula (2) after heating at 150°C for 2 hours is 5.0 weight % or less. Y={(B 0 -B 1 ) / B 0 }×100 (2) [In formula (2), B 0 means the weight of zirconium phosphate particles before heating, B 1 means the weight of zirconium phosphate particles after heating.]

6. A basic gas deodorizer comprising the zirconium phosphate particles according to any one of claims 1 to 5.

7. A basic gas deodorizer for fibers, comprising the zirconium phosphate particles according to any one of claims 1 to 5.

8. A basic gas deodorizer for incorporation into fibers, comprising the zirconium phosphate particles according to any one of claims 1 to 5.

9. A composition for deodorizing basic gases, comprising the zirconium phosphate particles according to any one of claims 1 to 5.

10. A basic gas deodorizing resin composition comprising the zirconium phosphate particles according to any one of claims 1 to 5.

11. A basic gas deodorizing fiber comprising the zirconium phosphate particles according to any one of claims 1 to 5.

12. 12. The basic gas deodorizing fiber according to claim 11, comprising at least one fiber selected from the group consisting of polyester, polyurethane, nylon, rayon, cotton, acrylic, aramid, vinylon, polyethylene, and polypropylene.

13. A method for producing a crystalline zirconium phosphate particle having a pH of 9 or higher by contacting the α-zirconium phosphate particle represented by formula (3) with a basic liquid having a pH of 9 or higher, and then further contacting the particle with an acidic liquid having a pH of 6 or lower, the total amount of base in the basic liquid is 1 / 20 or more by molar ratio relative to the hydroxyl groups bonded to phosphorus atoms of α-zirconium phosphate; the total amount of acid in the acidic liquid is 100 mol % or more relative to the hydroxy groups bonded to phosphorus atoms of α-zirconium phosphate before contact with the basic liquid; The method for producing zirconium phosphate particles according to any one of claims 1 to 5.

14. The method for producing zirconium phosphate particles according to claim 13, wherein the basic liquid contains an alkali metal and / or an alkaline earth metal.

15. A method for producing a basic gas deodorizing resin composition, comprising mixing the zirconium phosphate particles obtained by the method according to claim 13 or 14 with a resin.

16. A method for producing liquid-treated zirconium phosphate particles by contacting α-zirconium phosphate particles represented by the following formula (3) with a basic liquid having a pH of 9 or more, and then contacting the particles with an acidic liquid having a pH of 6 or less; and mixing the liquid-treated zirconium phosphate particles and a resin, Zr 1-x Hf x Ha (PO 4 ) b ・nH 2 O (3) [In formula (3), a and b are positive numbers satisfying 3b-a=4, b is 2.0<b≦2.1, x is a positive number satisfying 0≦x≦0.2, and n is a positive number satisfying 0≦n≦2.0] the total amount of base in the basic liquid is 1 / 20 or more by molar ratio relative to the hydroxyl groups bonded to phosphorus atoms of α-zirconium phosphate; the total amount of acid in the acidic liquid is 100 mol % or more relative to the hydroxy groups bonded to phosphorus atoms of α-zirconium phosphate before contact with the basic liquid; A method for producing a basic gas deodorizing resin composition.

17. A method for producing a basic gas deodorizing fiber, comprising spinning the basic gas deodorizing resin composition obtained by the method according to claim 15 or 16.

18. A method for producing a basic gas deodorizing resin composition, comprising contacting a resin containing α-zirconium phosphate particles represented by the following formula (3) with a basic liquid having a pH of 9 or more, and then contacting the resin with an acidic liquid having a pH of 6 or less, Zr 1-x Hf x Ha (PO 4 ) b ・nH 2 O (3) [In formula (3), a and b are positive numbers satisfying 3b-a=4, b is 2.0<b≦2.1, x is a positive number satisfying 0≦x≦0.2, and n is a positive number satisfying 0≦n≦2.0] the total amount of base in the basic liquid is 1 / 20 or more by molar ratio relative to the hydroxyl groups bonded to phosphorus atoms of α-zirconium phosphate; the total amount of acid in the acidic liquid is 100 mol % or more relative to the hydroxy groups bonded to phosphorus atoms of α-zirconium phosphate before contact with the basic liquid; A method for producing a basic gas deodorizing resin composition.

19. The method for producing a basic gas deodorizing resin composition according to claim 18, wherein the zirconium phosphate particles are those according to any one of claims 1 to 5.

20. A method for producing a basic gas deodorizing fiber, comprising contacting a fiber containing α-zirconium phosphate particles represented by the following formula (3) with a basic liquid having a pH of 9 or more, and then contacting the fiber with an acidic liquid having a pH of 6 or less, Zr 1-x Hf x Ha (PO 4 ) b ・nH 2 O (3) [In formula (3), a and b are positive numbers satisfying 3b-a=4, b is 2.0<b≦2.1, x is a positive number satisfying 0≦x≦0.2, and n is a positive number satisfying 0≦n≦2.0] the total amount of base in the basic liquid is 1 / 20 or more by molar ratio relative to the hydroxyl groups bonded to phosphorus atoms of α-zirconium phosphate; the total amount of acid in the acidic liquid is 100 mol % or more relative to the hydroxy groups bonded to phosphorus atoms of α-zirconium phosphate before contact with the basic liquid; A method for manufacturing basic gas deodorizing fibers.

21. The method for producing a basic gas deodorizing fiber according to claim 20, wherein the zirconium phosphate particles are those according to any one of claims 1 to 5.

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