Heavy metal adsorbent

A hydrous oxide or hydroxide of Si, Ti, Zr, Ce, or La combined with zeolite addresses the issue of aluminum elution in zeolite-based adsorbents, enhancing their effectiveness and safety by reducing aluminum elution to 5 ppm or less, suitable for water purifiers.

JP7813160B2Active Publication Date: 2026-02-12SINANEN ZEOMIC CO LTD
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Patent Information

Application Number
JP2022027587
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-25
Publication Date
2026-02-12
Estimated Expiration
2042-02-25

AI Technical Summary

Technical Problem

Zeolite-based adsorbents used for heavy metal removal in water suffer from aluminum elution when immersed in water for extended periods, which compromises their effectiveness and safety.

Method used

Combining a hydrous oxide or hydroxide of Si, Ti, Zr, Ce, or La with zeolite to form a heavy metal adsorbent, ensuring a specific surface area of 50 m²/g or more, pH of 10 or less, and a compound A content of 3% or more by mass, along with a median zeolite diameter of 10 μm or more, significantly reduces aluminum elution.

Benefits of technology

The combined adsorbent effectively suppresses aluminum elution to 5 ppm or less, maintaining the adsorbent's performance and safety for prolonged use, particularly in water purifiers.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a heavy metal adsorbent in which elution of aluminum from a zeolite is suppressed.SOLUTION: A compound, which is a hydrous oxide or a hydroxide of Si, Ti, Zr, Ce or La, is mixed with zeolite.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a heavy metal adsorbent. [Background technology]

[0002] The lead concentration in tap water is one of the water quality standards in Japan due to concerns about the health effects of lead. The lead contained in tap water is believed to come from the lead pipes that were used as water pipes until the early 1900s. Zeolite (an aluminosilicate inorganic ion exchanger) capable of adsorbing heavy metals such as lead contained in water is used as an adsorbent for water purifiers (Patent Document 1). On the other hand, zeolite has a problem in that aluminum, a constituent element of zeolite, elutes into purified water when immersed in water for a long period of time. As a means to solve this problem, a technique for controlling the volume particle size distribution of zeolite-containing particles in an adsorbent is known (Patent Documents 2 and 3). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 9-99284 [Patent Document 2] Japanese Patent Application Publication No. 2020-163269 [Patent Document 3] Japanese Patent Publication No. 2020-163270 Summary of the Invention [Problem to be solved by the invention]

[0004] The objective of this study was to provide a new method for suppressing the elution of aluminum when zeolite is used as a heavy metal adsorbent. [Means for solving the problem]

[0005] As a result of intensive research into the above-mentioned problems, the present inventors have found that the elution of aluminum from zeolite can be suppressed by combining a hydrous oxide or hydroxide of a specific metal species with zeolite. The present invention was made based on this finding.

[0006] That is, the present invention relates to the following [1] to

[11] . [1] A heavy metal adsorbent comprising a compound A which is a hydrous oxide or hydroxide of Si, Ti, Zr, Ce, or La, and a zeolite. [2] Compound A has a BET specific surface area of ​​50m 2 / g or more. [3] The adsorbent according to [1] or [2] above, wherein a 1% by mass aqueous dispersion of compound A has a pH of 10 or less. [4] The adsorbent according to any one of the above [1] to [3], which contains 3 mass % or more of compound A relative to the total mass of compound A and zeolite. [5] The adsorbent according to any one of the above [1] to [4], wherein the median diameter of the zeolite is 10 μm or more. [6] The adsorbent according to any one of the above [1] to [5], wherein the zeolite is an A-type, X-type, Y-type, or P-type zeolite. [7] The adsorbent according to any one of [1] to [6] above, wherein the amount of aluminum eluted is 5 ppm or less. [8] The adsorbent according to any one of [1] to [7] above, which is a lead adsorbent. [9] The adsorbent according to any one of [1] to [8] above, which is an adsorbent for a water purifier.

[10] A water purifier comprising the adsorbent according to any one of [1] to [9] above.

[11] A method for suppressing aluminum elution from a heavy metal adsorbent containing zeolite, comprising: A method comprising the step of adding to said adsorbent a compound A which is a hydrous oxide or hydroxide of Si, Ti, Zr, Ce or La. [Effects of the Invention]

[0007] As will be shown in the examples below, the present invention can suppress the elution of aluminum from zeolite. Therefore, the present invention can provide a heavy metal adsorbent with commercial value not found in conventional products, and a water purifier using the same. DETAILED DESCRIPTION OF THE INVENTION

[0008] The heavy metal adsorbent (hereinafter also referred to as "adsorbent") of the present invention contains, as essential components, Compound A and zeolite, which will be described later.

[0009] [Compound A] Compound A is used to suppress the elution of aluminum from zeolite. Compound A is a hydrous oxide or hydroxide of Si, Ti, Zr, Ce, or La. Hydrous oxides are also called hydrated oxides, but will be referred to as hydrous oxides in this specification. Compound A may contain two or more of Si, Ti, Zr, Ce and La.

[0010] Specific examples of the compound A include the following A1 to A14.

[0011] TIFF0007813160000001.tif171153

[0012] Among these, hydrous oxides or hydroxides of Ti, Zr or Ce are preferred, and metatitanic acid is more preferred.

[0013] The BET specific surface area of ​​compound A is preferably 50 m 2 / g or more, more preferably 100m 2 / g or more, particularly preferably 200m 2 / g or more. BET specific surface area is 50m 2 When the zeolite content is 1 / g or more, the elution of aluminum from the zeolite can be further suppressed. The BET specific surface area can be measured according to the following method.

[0014] [Method for measuring the BET specific surface area of ​​compound A] Measurements are performed using a fully automated gas adsorption analyzer (Quantachrome Instruments AutosorbiQ). Specifically, measurements are performed using the argon adsorption method (87.45 K), and the specific surface area is determined using BET multipoint analysis. The sample is also pretreated by vacuum degassing at 200°C for 6 hours.

[0015] The pH of a 1% by mass aqueous dispersion of compound A is preferably 10 or less. Among the above (A1) to (A13), examples of those having a pH of 10 or less in a 1 mass % aqueous dispersion include the above-mentioned A5 (pH: 3.3), A7 (pH: 4.5), and A3 (pH: 7.5). The pH of Compound A can be measured according to the following method.

[0016] [Method for measuring the pH of compound A] 1 g of Compound A is added to 99 g of ion-exchanged water (25°C) and stirred for 5 minutes to prepare an aqueous dispersion (slurry). The pH of the aqueous dispersion is measured using a glass electrode pH meter (e.g., Horiba F-52).

[0017] Compound A is a known substance and is readily available on the market or can be prepared. An example of a commercially available product of metatitanic acid is "ST-C" manufactured by Sakai Chemical Industry Co., Ltd. An example of a commercially available product of zirconium hydroxide is "R Zirconium Hydroxide" manufactured by Daiichi Kigenso Kogyo Co., Ltd. An example of a commercially available product of hydrous silicon oxide is "Sylysia" manufactured by Fuji Silysia Chemical Ltd.

[0018] The compound A containing Ti element can be prepared, for example, according to the following method. A water-soluble metal salt of Ti (e.g., titanyl sulfate) is dissolved in water to obtain an aqueous solution. An alkali (e.g., sodium hydroxide) is added dropwise with stirring to increase the pH of the aqueous solution, resulting in a precipitate. The precipitate is aged (e.g., at 5 to 100°C for 1 to 24 hours), followed by solid-liquid separation, washing with water, and drying (e.g., at 50 to 200°C for 1 to 100 hours) to obtain Compound A. The BET specific surface area of ​​compound A can be controlled by changing the type and pH of the alkali used to generate the precipitate, the aging temperature, and the drying temperature. A drying temperature of 200° C. or less is preferred because it can prevent compound A from undergoing dehydration condensation and converting into a metal oxide.

[0019] Compound A containing Si element can be prepared by adding an acid (for example, sulfuric acid) dropwise to a sodium silicate solution.

[0020] The compound A may be used alone or in combination of two or more kinds.

[0021] The content of compound A is preferably 3% by mass or more, more preferably 10 to 50% by mass, and particularly preferably 20 to 40% by mass, based on the total mass of compound A and zeolite. When the content is 3% by mass or more, a higher effect of inhibiting aluminum elution can be obtained.

[0022] [Zeolite (aluminosilicate)] In the present invention, any zeolite that adsorbs heavy metals can be used without particular limitation. The zeolite may be either synthetic or natural, but synthetic zeolite is preferred. Examples of synthetic zeolites include A-type zeolite, X-type zeolite, Y-type zeolite, P-type zeolite, T-type zeolite, L-type zeolite, and β-type zeolite, among which A-type, X-type, Y-type, and P-type zeolite are preferred. Examples of natural zeolites include sodalite, mordenite, analcime, clinoptilolite, chabazite, and erionite.

[0023] The median diameter of the zeolite is preferably 10 μm or more, more preferably 10 to 1000 μm, and particularly preferably 20 to 50 μm. When the median diameter is 10 μm or more, outflow of the adsorbent from the water purifier filter and clogging of the filter can be reduced. The median diameter can be measured according to a laser diffraction / scattering particle size distribution measurement method.

[0024] Zeolite is a known substance and is readily available on the market or can be prepared. Commercially available products include "Zeomic" manufactured by Sinanen Zeomic Co., Ltd. The zeolite may be used alone or in combination of two or more types.

[0025] [Optional ingredients] The adsorbent of the present invention can be used in combination with an optional component such as activated carbon, within the range that does not impair the effect of the adsorbent. [Activated carbon] Activated carbon is added to remove harmful organic compounds (such as trihalomethanes and formaldehyde) contained in water, as well as chlorine and mold odors. The activated carbon may be in the form of powder, particles, or fibers. Activated carbon is a known material and is readily available commercially or can be prepared. A single type of activated carbon may be used, or multiple types may be used in combination. The content of activated carbon is not particularly limited as long as it is an amount that can achieve the purpose of blending, but it is preferably 100 to 2000 mass %, more preferably 500 to 1500 mass %, based on the total mass of the heavy metal adsorbent.

[0026] [Amount of aluminum eluted] The elution of aluminum from zeolite is suppressed in an adsorbent containing compound A. The amount of eluted aluminum measured by the following measurement method is preferably 5 ppm or less, more preferably 2 ppm or less, and particularly preferably 1 ppm or less.

[0027] [Method for measuring the amount of aluminum elution] An adsorbent is added to simulated tap water (leachate specified in JIS S3200-7: pH 7.0±0.1, hardness 45±5 mg / L, alkalinity 35±5 mg / L, residual chlorine 0.3 mg±0.1 mg / L) to prepare a mixture (amount added: an amount such that the amount of zeolite contained in the adsorbent is 1 mass% of the mass of the simulated tap water). The mixture is agitated at 25°C and 170 rpm for 24 hours using a thermostatic shaking incubator (for example, Bioshaker (registered trademark) manufactured by Taitec Co., Ltd.). The mixture after stirring is subjected to solid-liquid separation using a membrane filter (pore size: 0.45 μm). The amount of aluminum in the separated liquid is measured using an atomic absorption spectrophotometer, and the measured value is taken as the amount of elution.

[0028] [Method of producing adsorbent] The adsorbent can be produced, for example, by putting predetermined amounts of zeolite and compound A in a powder state (e.g., powder with a particle size of 100 μm or less) into a mixer and mixing until homogeneous (e.g., for several minutes to several hours). The mixer is not particularly limited, but for industrial use, a rocking mixer, ribbon mixer, Henschel mixer, or the like can be used. In addition to the above-mentioned production method, the adsorbent can also be produced by adding zeolite and compound A to water, stirring the mixture with a propeller stirrer or the like to prepare a slurry in which both components are uniformly dispersed, and then subjecting the slurry to solid-liquid separation and drying.

[0029] An activated carbon filter (carbon block, etc.) for a water purifier, which is a combination of the adsorbent of the present invention and activated carbon, can be produced, for example, by mixing activated carbon and the adsorbent, or activated carbon, compound A, zeolite, and a binder (polyethylene powder, fibrillated fiber, etc.) in a predetermined amount, and then subjecting the mixture to a molding process.

[0030] [Heavy metals to be adsorbed] The type of heavy metal to be adsorbed is not particularly limited, but may be appropriately selected based on the type of zeolite. Examples of heavy metals include lead, cadmium, and zinc. A-type, X-type, Y-type, and P-type zeolite are preferred because they are suitable for removing lead, cadmium, and zinc. The present invention is particularly suitable for removing lead.

[0031] [Uses of adsorbents] Adsorbents can be used to remove heavy metals from water, especially tap water. In particular, it can be suitably used as an adsorbent for water purifiers that remove lead from tap water.

[0032] [Method for suppressing aluminum elution from a heavy metal adsorbent containing zeolite] Compound A inhibits the elution of aluminum from zeolite. Therefore, the invention relating to the adsorbent can also be understood as a method for inhibiting the elution of aluminum from a zeolite-containing heavy metal adsorbent, which is characterized by using compound A. The description of the compound A and zeolite is the same as that of the adsorbent. [Example]

[0033] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples.

[0034] [Compound A] The following compounds 1 to 10 were used. The BET specific surface area and pH of each compound were measured according to the above-mentioned measurement methods. The measured values ​​are shown in Tables 1 and 2.

[0035] [Compound 1] Titanyl sulfate (80 g) was dissolved in water (500 ml) to obtain an aqueous solution. Sodium hydroxide (concentration: 25%) was added dropwise to the stirred solution at 90°C to adjust the pH to 3.5, obtaining a precipitate. The precipitate was aged (90°C for 18 hours), then subjected to solid-liquid separation, washing with water, drying (100°C for 24 hours), and pulverization to obtain compound 1, which is metatitanic acid.

[0036] [Compound 2] Compound 2, which is orthotitanic acid, was obtained in the same manner as Compound 1, except that the pH was adjusted to 7.0 by dropwise addition of sodium hydroxide.

[0037] [Compound 2b] The same procedure as in the preparation of Compound 2 was carried out except that the pH was set to 11.0. 2 / g of orthotitanic acid, compound 2b, was obtained.

[0038] [Compound 3] "R Zirconium Hydroxide" sold by Daiichi Kigenso Kogyo Co., Ltd. was used as Compound 3 (zirconium hydroxide).

[0039] [Compound 4] "Silysia 350" available from Fuji Silysia Chemical Ltd. was used as compound 4 (hydrated silicon oxide).

[0040] [Compound 5] Cerium nitrate hexahydrate (10 g) was dissolved in water (500 ml), and then hydrogen peroxide in an amount equimolar to the cerium was added and stirred. After that, ammonia water was added to adjust the pH to 10, yielding a precipitate. The precipitate was aged (at room temperature for 6 hours), then subjected to solid-liquid separation, washing with water, drying (at 100°C for 24 hours), and pulverization to yield compound 5, a hydrous cerium oxide.

[0041] [Compound 6] Titanyl sulfate (19 g) and zirconium oxychloride octahydrate (32 g) were dissolved in water (500 ml) to obtain an aqueous solution. 2 M sodium hydroxide was added dropwise to the stirred solution at room temperature to adjust the pH to 11, yielding a precipitate. The precipitate was aged (at room temperature for 18 hours), then solid-liquid separated, washed with water, dried (at 100°C for 24 hours), and pulverized to obtain compound 6, a titanium-zirconium composite hydroxide.

[0042] [Compound 7] Lanthanum chloride heptahydrate (27 g) was dissolved in water (500 ml) to obtain an aqueous solution. Ammonia water (concentration: 5%) was added dropwise to the stirred solution at room temperature to adjust the pH to 10, obtaining a precipitate. The precipitate was aged (at room temperature for 24 hours), then subjected to solid-liquid separation, washing with water, drying (at 100°C for 24 hours), and pulverization to obtain Compound 7, which is hydrous lanthanum oxide.

[0043] [Compound 8] Titanium oxide, a special grade reagent sold by Kishida Chemical Co., Ltd., was designated as Compound 8. Compound 8 does not fall under the category of titanium hydrous oxide or hydroxide, and was therefore used in the comparative example.

[0044] [Compound 9] Lanthanum oxide, a special grade reagent sold by Kishida Chemical Co., Ltd., was used as compound 9. Compound 9 does not fall under the category of hydrous oxides or hydroxides of lanthanum, and was therefore used in the comparative example.

[0045] [Compound 10] Magnesium hydroxide, a special grade reagent sold by Kishida Chemical Co., Ltd., was designated as Compound 10 (composition formula: Mg(OH)2). Compound 10 does not contain any of Si, Ti, Zr, Ce and La and was used as a comparative example.

[0046] [Compound 11] Strontium hydroxide, a special grade reagent sold by Kishida Chemical Co., Ltd., was used as Compound 11. Compound 11 does not contain any of Si, Ti, Zr, Ce, and La, and was therefore used as a comparative example.

[0047] [Zeolite] X-type zeolite, A-type zeolite, Y-type zeolite, and P-type zeolite (product name: Zeomic, all synthetic zeolites) manufactured by Sinanen Zeomic Co., Ltd. were used. The median diameter of the zeolite was measured according to a laser diffraction / scattering particle size distribution measurement method. <Measurement conditions> Measuring device: Microtrac Bell Co., Ltd. MT3300EXII Standard: Volume standard Solvent: Water Particle refractive index: 1.39 Sonication: 120 seconds (40W) The median diameter of each zeolite is shown in Table 1 (X type) and Table 2 (A type, P type, and Y type).

[0048] [Production of adsorbent] Predetermined masses of zeolite and compound A were dry-mixed in a rocking mixer so that the content (mass %) of compound A in the adsorbent would be the value shown in Tables 1 and 2, to prepare the adsorbent. In Tables 1 and 2, the "content (mass %)" of compound A indicates the content (mass %) of compound A relative to the total mass of compound A and zeolite.

[0049] [Evaluation of Adsorbents] [Amount of aluminum eluted] The "amount of aluminum eluted" from the adsorbent was measured according to the above-mentioned measurement method. The results are shown in Tables 1 and 2.

[0050] [Lead adsorption] The adsorption capacity of heavy metals was evaluated using the removal rate of lead from tap water as an index. The "lead removal rate" of the adsorbents of Comparative Example 3 and Examples 3 and 7 was measured according to the following procedure. 50 mg of the adsorbent was weighed into a PP container, and 500 ml of simulated tap water containing 10,000 ppb of lead ions was added thereto, followed by stirring for 24 hours using a propeller stirrer (rotation speed: 150 rpm). After 24 hours, solid-liquid separation was performed using a membrane filter (pore size: 0.45 μm), and the lead ion concentration in the separated liquid was measured using an atomic absorption spectrophotometer. The lead removal rate was calculated using the following formula. Lead removal rate (%)=((ab) / a)×100(%) a: Lead ion concentration before adding adsorbent (10,000 ppb) b: Lead ion concentration after adding adsorbent and stirring for 24 hours The results are shown in Table 3. [Industrial Applicability]

[0051] The present invention can be used in technical fields where removal of heavy metals is required, particularly in the field of water purifiers.

[0052] [Table 1]

[0053] [Table 2]

[0054] [Table 3]

Claims

1. A heavy metal adsorbent for a water purifier, comprising compound A, which is a hydrous oxide or hydroxide of Ti or La, and zeolite.

2. The BET specific surface area of ​​compound A is 50 m 2 The adsorbent according to claim 1, wherein the saturation energy of the adsorbent is 1 / g or more.

3. The adsorbent according to claim 1 or 2, wherein a 1 mass % aqueous dispersion of compound A has a pH of 10 or less.

4. The adsorbent according to any one of claims 1 to 3, comprising 3 mass% or more of compound A relative to the total mass of compound A and zeolite.

5. The adsorbent according to any one of claims 1 to 4, wherein the zeolite has a median diameter of 10 µm or more.

6. The adsorbent according to any one of claims 1 to 5, wherein the zeolite is an A-type, X-type, Y-type or P-type zeolite.

7. The adsorbent according to any one of claims 1 to 6, wherein the amount of aluminum eluted is 5 ppm or less.

8. The adsorbent according to any one of claims 1 to 7, which is a lead adsorbent.

9. A water purifier comprising the adsorbent according to any one of claims 1 to 8.

10. A method for suppressing aluminum elution from a heavy metal adsorbent for a water purifier containing zeolite, comprising: A method comprising the step of adding to said adsorbent a compound A which is a hydrous oxide or hydroxide of Ti or La.

Citation Information

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