Ion Complexes
An ionic complex composed of lignin sulfonic acid, cationic polymers, and polyanions is developed to overcome the limitations of previous materials, offering improved moldability, moisture resistance, and shape retention without the use of solvents.
Patent Information
- Application Number
- JP2021015202
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-02-02
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2041-02-02
AI Technical Summary
Existing ionic composite materials face issues with high humidity responsiveness, moisture absorption, and shape collapse, while ionic composite clay compositions lack flexibility and pose safety concerns due to the use of solvents like PEG400.
The development of an ionic complex formed from lignin sulfonic acid-based compounds, cationic polymers, and polyanions, which are mixed to create a solvent-free, moisture-resistant, and flexible material with improved shape retention.
The ionic complex exhibits excellent moldability, moisture resistance, and shape retention, even in high humidity conditions, while being free from solvents, thus addressing the industrial usability and safety concerns of previous materials.
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Abstract
Description
[Technical field]
[0001] The present invention relates to ionic complexes. [Background technology]
[0002] For the purpose of effective utilization of plant biomass, attempts have been made widely to utilize lignin or its derivatives, which are one of the main components constituting a plant body, as a moldable material. Lignosulfonic acid is a lignin-derived compound that can be obtained during pulp production by the sulfite method or by sulfuric acid treatment of lignin, and attempts have been made to utilize it as a moldable material like lignin. Lignosulfonic acid is an anionic polymer having many sulfo groups, which are anionic functional groups, in the molecule, and has high hydrophilicity. In general, as a method for utilizing such ionic polymers as materials, various anionic polymers and cationic polymers are combined to form ionic complexes, and various materials are prepared according to the properties of the obtained complexes.
[0003] Regarding the combination of lignin sulfonic acid and a cationic polymer, for example, Patent Document 1 describes an ion composite material that has moldability, flexibility, elasticity, and self-repairing ability by combining lignin sulfonic acid with a cationic polymer. Patent Document 2 describes an ion composite clay composition that consists of lignin sulfonic acid, which is a cation exchange type (i.e., anionic) polymer, and an anion exchange type (i.e., cationic) clay mineral. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] JP 2019-112526 A [Patent Document 2] JP 2006-133299 A Summary of the Invention [Problem to be solved by the invention]
[0005] The ion composite material described in Patent Document 1 can form a complex in an aqueous system, but the dried molded body has a high humidity response, absorbs moisture in the air, and loses its shape under high humidity, making it difficult to use it industrially as a molding material. The ion composite clay composition described in Patent Document 2 can form a molded body and has excellent shape retention in water, but the molded body has poor flexibility and contains solvents such as PEG400, which poses safety issues.
[0006] An object of the present invention is to provide an ion complex which has good moldability in a substantially solvent-free state, has good moisture resistance and shape retention after molding, and contains lignin sulfonic acid, which is a recyclable resource, as a constituent component. [Means for solving the problem]
[0007] That is, the present invention provides the following [1] to [6]. [1] (A) Lignosulfonic acid compounds, (B) a cationic polymer, and (C) Polyanion Ionic complexes formed from [2] The ionic complex according to [1], wherein the polyanion has a weight-average molecular weight of 3,000 to 1,000,000. [3] The ionic complex according to [1] or [2], wherein the content of component (C) is 1 to 80% by weight. [4] The ionic complex according to any one of [1] to [3], wherein the component (C) contains polyacrylic acid or polystyrene sulfonic acid. [5] The ionic complex according to any one of [1] to [4], wherein the component (A) contains at least one selected from the group consisting of lignosulfonic acid, polyethylene glycol-derivatized lignosulfonic acid, and salts thereof. [6] (A) Lignosulfonic acid compounds, (B) a cationic polymer, and (C) Polyanion A method for producing an ion complex, comprising a mixing step of mixing Effect of the Invention
[0008] According to the present invention, an ion complex having good moldability, such as being moldable into various shapes by removing the solvent by drying, can be provided. The ion complex, in a molded state, can exhibit good moisture resistance and shape retention, and can also exhibit good flexibility. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0009] [1. Ion complex] The ionic complex is formed from components (A) to (C), which allows it to exhibit solubility or suspendability in a solvent. Each component will be described below.
[0010] [1.1 Component (A): A structural unit derived from a lignosulfonic acid compound] -Lignosulfonic acid compounds- Lignosulfonic acid compounds are compounds that have a skeleton in which the carbon at the α-position of the side chain of the hydroxyphenylpropane structure of lignin is cleaved to introduce a sulfo group. The structure of the skeleton is shown in formula (1). [ka]
[0011] The lignosulfonic acid compound may be a modified product of a compound having the skeleton represented by the above formula (1) (hereinafter, also referred to as a "modified lignosulfonic acid compound"). The modification method is not particularly limited, and examples thereof include chemical modification methods such as hydrolysis, alkylation, alkoxylation, sulfonation, sulfonate esterification, sulfomethylation, aminomethylation, desulfonation, and polyethylene glycolation; and a method of molecular weight fractionation of the lignosulfonic acid compound by ultrafiltration. Among these, the chemical modification method is preferably one or more reactions selected from hydrolysis, alkoxylation, desulfonation, alkylation, and polyethylene glycolation.
[0012] In the case of lignosulfonic acid modified with polyethylene glycol (lignosulfonic acid derivatized with polyethylene glycol), the molecular weight of the polyethylene glycol used for modification is preferably 1000 to 5000, more preferably 1500 to 4000, and even more preferably 2000 to 3000. The ratio of polyethylene glycol in the polyethylene glycol modified lignosulfonic acid (polyethylene glycol ratio) is preferably 10% or more, more preferably 20% or more, and even more preferably 30% or more. The upper limit is usually 70% or less.
[0013] The lignosulfonic acid compound may be in the form of a salt. Examples of the salt include monovalent metal salts, divalent metal salts, ammonium salts, and organic ammonium salts. Among these, calcium salts, magnesium salts, sodium salts, and mixed calcium-sodium salts are preferred.
[0014] The method of producing the lignosulfonic acid compound and its origin are not particularly limited, and any natural or synthetic product can be used. Lignosulfonic acid compounds are one of the main components of the waste liquor of sulfite pulp obtained by cooking wood under acidic conditions. Therefore, lignosulfonic acid compounds derived from sulfite pulp waste liquor can also be used.
[0015] Lignin sulfonic acid compounds (modified lignin sulfonic acid compounds) are abundantly contained in commercially available products, and such commercially available products may be used in the present invention. Examples of commercially available products include Sanex P252 (manufactured by Nippon Paper Industries Co., Ltd.), Sanex M (manufactured by Nippon Paper Industries Co., Ltd.), Pearlex NP (manufactured by Nippon Paper Industries Co., Ltd.), Sunflow RH (manufactured by Nippon Paper Industries Co., Ltd.), sodium lignin sulfonate (manufactured by Tokyo Chemical Industry Co., Ltd.), sodium lignin sulfonate (manufactured by Merck), and calcium lignin sulfonate (manufactured by Merck).
[0016] It is difficult to uniformly specify the chemical structure of lignosulfonic acid by a general formula or the like, because lignin, which is the skeleton of lignosulfonic acid compounds, has a very complex molecular structure.
[0017] -Molecular weight of lignosulfonic acid compounds- The weight-average molecular weight of the lignin sulfonic acid compound is not particularly limited, but is preferably 5,000 to 300,000, and more preferably 10,000 to 100,000. If the weight-average molecular weight is less than 5,000, the complexability with the cationic polymer deteriorates, and the ion complex becomes non-uniform. If the weight-average molecular weight exceeds 300,000, the moldability of the ion complex deteriorates. The weight-average molecular weight in this specification can be measured by a known method using gel permeation chromatography (GPC) in terms of polyethylene glycol.
[0018] The measurement conditions for GPC are not particularly limited, but the following conditions can be exemplified. Measuring device: Tosoh Columns used: Shodex Column OH-pak SB-806HQ, SB-804HQ, SB-802.5HQ Eluent: 0.05 mM sodium nitrate / acetonitrile 8 / 2 (v / v) Standard material: Polyethylene glycol (Tosoh or GL Science) Detector: Differential refractometer (manufactured by Tosoh)
[0019] The component (A) may be one type of lignin sulfonic acid compound, or a combination of two or more types that differ in molecular weight, production method, origin, etc.
[0020] -(A) Component Content- The content of the (A) component is not particularly limited, and may be appropriately adjusted depending on the composition, type, and amount of the ionic complex. For example, the content is preferably 5% by weight or more, more preferably 10% by weight or more, and even more preferably 15% by weight or more, based on 100% by weight of the ionic complex. The upper limit is preferably 70% by weight or less, more preferably 60% by weight or less, and even more preferably 50% by weight or less. This makes it possible to suppress a decrease in the moldability of the ionic complex. Therefore, the content of the (A) component is preferably 5 to 70% by weight, more preferably 10 to 60% by weight, and even more preferably 15 to 50% by weight.
[0021] [1.2 Component (B): Cationic polymer] -Cationic polymer- The cationic polymer used in the present invention may be, for example, a polymer having at least one functional group selected from the group consisting of primary, secondary, and tertiary amino groups, quaternary ammonium groups, and imino groups, and is preferably a polymer consisting of a structural unit derived from a single monomer having at least one functional group selected from the group consisting of primary, secondary, and tertiary amino groups, quaternary ammonium groups, and imino groups. Examples of cationic polymers include poly(ethyleneimine), poly(allylamine), poly(diallyldimethylammonium chloride), chitosan, cationic cellulose, cationic carboxymethylcellulose, cationic starch, cationic hyaluronic acid, cationic guar gum, α-polylysine, ε-polylysine, α-polyornithine, δ-polyornithine, lysine-containing protein, poly(vinylpyridine), poly(vinyl N-methylpyridine), poly{[3-(methacryloylamino)propyl]trimethylcellulose, poly(vinyl N-methylpyridine), ... ammonium}, poly[(3-acrylamidopropyl)trimethylammonium], poly{[2-(methacryloyloxy)ethyl]trimethylammonium}, poly{[2-(acryloyloxy)ethyl]trimethylammonium}; cationic polymers in which the primary, secondary, and tertiary amino groups of these polymers are converted to quaternary ammonium; cationic polymers having imino groups such as polyarginine, poly(hexamethylene biguanide), polyhexamethylene guanidine, cyanophycin, and arginine-containing proteins. From the viewpoint of water solubility, the cationic polymer may be an inorganic acid salt such as hydrochloride, or an organic acid salt such as acetate, of the above-mentioned polymers.
[0022] -Molecular weight of cationic polymer- The weight average molecular weight of the cationic polymer is not particularly limited, but is preferably 50,000 to 500,000, more preferably 100,000 to 450,000, and even more preferably 150,000 to 400,000.
[0023] The component (B) may be one type of cationic polymer, or a combination of two or more types differing in molecular weight, structure, etc.
[0024] -(B) Component Content- The content of the (B) component is not particularly limited, and may be appropriately adjusted depending on the composition, type, and amount of the ionic complex. For example, it is preferably 5% by weight or more, more preferably 15% by weight or more, and even more preferably 20% by weight or more, based on 100% by weight of the ionic complex. The upper limit is preferably 70% by weight or less, more preferably 65% by weight or less, and even more preferably 60% by weight or less. This makes it possible to suppress a decrease in the moldability of the ionic complex. Therefore, the content of the (B) component is preferably 5 to 70% by weight, more preferably 15 to 65% by weight, and even more preferably 20 to 60% by weight.
[0025] [1.3 (C) Component: Polyanion] -Polyanion- The polyanion used in the present invention is not particularly limited as long as it is other than the component (A). For example, a polymer containing an anionic functional group can be mentioned. Examples of the anionic functional group include a sulfo group, a carboxyl group, a phenolic hydroxy group, and a phospho group. The molecular weight of the polyanion is preferably 3,000 to 1,000,000, more preferably 5,000 to 500,000, but is not particularly limited. Examples of the polyanion include a compound having a carboxyl group (e.g., polyacrylic acid) and a compound having a sulfo group (e.g., polystyrene sulfonic acid). The polyanion used in the present invention may be a salt such as a sodium salt, a magnesium salt, a calcium salt, or an ammonium salt from the viewpoint of water solubility.
[0026] The component (C) may be one type of polyanion, or a mixture of two or more types differing in molecular weight, structure, etc.
[0027] -(C) Component Content- The content of the (C) component is not particularly limited, and may be appropriately adjusted according to the composition, type, and amount of the ionic complex. For example, the content is preferably 1% by weight or more, more preferably 5% by weight or more, based on 100% by weight of the ionic complex. This can suppress the decrease in moisture resistance of the ionic complex. The upper limit is preferably 80% by weight or more, more preferably 60% by weight or more, even more preferably 50% by weight or more, and even more preferably 40% by weight or more. This can suppress the decrease in moldability of the ionic complex, and can suppress the molded product from becoming brittle. Therefore, the content of the (C) component is preferably 1 to 80% by weight, more preferably 5 to 60% by weight, even more preferably 5 to 50% by weight, and even more preferably 5 to 40% by weight.
[0028] [1.4 Optional components] The ionic complex may contain optional components other than the components (A) to (C) as necessary, such as antioxidants, preservatives, stabilizers, and solvents.
[0029] As the solvent, for example, water; organic solvents miscible with water, such as methanol, ethanol, isopropyl alcohol, ethylene glycol, glycerin, polyethylene glycol, formic acid, acetic acid, propionic acid, acetone, acetonitrile, tetrahydrofuran, dimethyl sulfoxide, dimethylformamide, and dioxane, are preferred, and among these, water is preferred from the viewpoint of safety.
[0030] [1.5 Morphology of ionic complexes] The ionic complex may be formed from components (A) to (C) and may be in the form of a composition in which the components are bonded together by ionic bonds, hydrogen bonds, or the like, or in the form of a composition in which the components are not bonded together.
[0031] The ionic complex may be in a state where it is dissolved or suspended (dispersed) in a solvent (eg, water) (liquid state), or it may be in a state where it is substantially free of solvent (solid state).
[0032] 2. Preparation of ion complex The method for preparing the ionic complex may be any method that includes at least a mixing step of mixing the components (A) to (C).
[0033] [2.1 Mixing process] The components (A) to (C) in the mixing step may each be in any form of liquid, powder, or solid, but from the viewpoint of handling, a liquid form is preferred.
[0034] The order of mixing may be, for example, mixing components (A) and (B), then adding and mixing component (C) to the resulting mixture; mixing components (A) and (C), then adding and mixing component (B) to the resulting mixture; mixing components (B) and (C), then adding and mixing component (A) to the resulting mixture. The mixture may be in a solid or liquid state. It is preferable that components (A) and (B) are mixed with a solvent before mixing with other components. Addition and mixing into the system may be performed simultaneously (e.g., line mixing).
[0035] [2.2 Solvent removal process] After the mixing step, a solvent removal step may be carried out as necessary to remove the solvent from the system (from the obtained solution or suspension). The solvent can be removed, for example, by drying or precipitation. The drying temperature in the case of drying may be any temperature at which the solvent can be removed. In the case of water, the temperature is preferably 30 to 150°C. The humidity during drying can be appropriately set, for example, in the range of 30 to 70%. This allows humidity adjustment (for example, moisture content of 20% by weight or less, preferably 18% by weight or less, the lower limit being, for example, 1% by weight or more, preferably 3% by weight or more) along with drying. As a method for removing the solvent by precipitation, for example, when the solvent is water, a method in which the solution or suspension is put into an organic solvent and the precipitate is collected as an ion complex can be mentioned.
[0036] [3. Uses of ion complexes] The ion complex can exhibit good moisture resistance and shape retention even in a state substantially free of solvent, and also has good flexibility. Therefore, the ion complex can be used as a molded product for various applications. Such applications are suitable for applications where biodegradability is expected, such as agricultural mulch films, architectural cover sheets, planters, etc.
[0037] -Evaluation of physical properties- The shape retention of ion complexes can be evaluated by the following method. The prepared samples are punched out into the shape of dumbbell-shaped test pieces (No. 8, JIS K 6251), and tensile tests are conducted to measure the maximum stress, Young's modulus, and toughness, and it is confirmed that these measured values are higher than those of a control sample prepared in advance or the target value. Moisture resistance can be confirmed by holding the sample under high humidity conditions, measuring the moisture absorption, and confirming that the measured value is higher than those of a control sample prepared in advance or the target value. EXAMPLES
[0038] The present invention will be described in more detail below with reference to examples. However, the present invention is not limited to the following examples, and can be practiced with appropriate modifications within the scope of the spirit of the above and below descriptions, all of which are included in the technical scope of the present invention. In the examples, "%" means % by weight unless otherwise specified. Furthermore, the measurement methods for physical properties, etc. are the same as those described above, unless otherwise specified.
[0039] [Ingredients used in the examples] (1) Component (A): Lignosulfonic acid compound Lignin 1: TCI reagent sodium lignosulfonate (powder, lignosulfonic acid, weight average molecular weight 11,200, manufactured by Tokyo Chemical Industry Co., Ltd.) Lignin 2: Pearlex NP (powder, high-purity lignosulfonic acid, weight-average molecular weight 16,100, manufactured by Nippon Paper Industries Co., Ltd.) Lignin 3: Polyethylene glycol derivatized lignosulfonic acid 1 (36% aqueous solution, polyethylene glycol derivatized lignosulfonic acid, weight average molecular weight 38,000, molecular weight of polyethylene glycol 2200, polyethylene glycol ratio 60%, Nippon Paper Industries Co., Ltd.) Lignin 4: Polyethylene glycol derivatized lignosulfonic acid 2 (35% aqueous solution, polyethylene glycol derivatized lignosulfonic acid, weight average molecular weight 30,000, polyethylene glycol molecular weight 2200, polyethylene glycol ratio 50%, Nippon Paper Industries Co., Ltd.) Lignin 5: Polyethylene glycol derivatized lignosulfonic acid 3 (33% aqueous solution, polyethylene glycol derivatized lignosulfonic acid, weight average molecular weight 56,000, molecular weight of polyethylene glycol 2200, polyethylene glycol ratio 40%, Nippon Paper Industries Co., Ltd.)
[0040] (2) Component (B): Cationic polymer Cation 1: Poly(diallyldimethylammonium chloride) (20% aqueous solution, weight average molecular weight 200,000 to 350,000, Merck)
[0041] (3) Component (C): Polyanion Anion 1: Polyacrylic acid 25000 (solid, weight average molecular weight 25,000, free acid type, Fujifilm Wako Pure Chemical Industries, Ltd.) Anion 2: Sodium polystyrene sulfonate (powder, weight average molecular weight 70,000, Na salt type, Merck)
[0042] [Examples 1 to 9 and Comparative Examples 1 to 6] The lignin sulfonic acid compounds (lignins 1-5), cationic polymers (cations 1), and polyanions (anions 1-2) shown in Table 1 were each prepared into 20% by weight aqueous solutions, which were then uniformly mixed at the blending ratios shown in Table 1. The mixture was transferred to a fluororesin petri dish, dried at a temperature of 30°C and a relative humidity of 50%, and humidified to a moisture content of 20% by weight or less, to obtain an ion complex. The moisture contents after drying and humidification in Examples 6 and 7 and Comparative Example 6 were 8.1% by weight, 12.2% by weight, and 6.6% by weight, respectively.
[0043] [Table 1]
[0044] The blending ratio (%) in Table 1 is the blending rate (%) of solid content relative to the total solid content of the ion complex.
[0045] -Evaluation of mechanical properties of composites- The mechanical properties of the samples obtained in each of the Examples and Comparative Examples were evaluated. The prepared samples were left to stand for 5 days in a thermohygrostat at 30°C and a relative humidity of 50%, and then punched out into the shape of a dumbbell-shaped test piece (No. 8, JIS K 6251) and subjected to a tensile test (in air, tensile speed 50 mm / min). In the tensile test, the maximum stress, Young's modulus, and toughness were measured. The results are shown in Table 2. The measurements were performed three times, and the average values and standard errors were recorded.
[0046] -Evaluation of morphology (hygroscopicity)- The morphology of the samples obtained in each of the Examples and Comparative Examples was evaluated. The prepared samples were homogenized under relative humidity conditions of 70% and 80%, respectively, and the hygroscopicity was evaluated by checking the morphology of the samples. The morphology was evaluated as follows: if the surface of the ion complex was not sticky and maintained its shape after peeling from the petri dish in which the complex sample was placed, it was marked "Good"; if only the surface was slightly liquefied and the shape collapsed after peeling from the petri dish, it was marked "Good"; and if the entire sample was liquefied and difficult to peel from the petri dish, it was marked "Poor". The results are shown in Table 2.
[0047] [Table 2]
[0048] It is found that the ionic complexes described in Examples 1 to 9 are at least improved in either tensile stiffness such as maximum stress or Young's modulus or resistance to breakage such as toughness, compared with the ionic complexes of the same composition ratio not containing polyanion described in Comparative Examples 1 to 6. Furthermore, it is found that the ionic complexes relatively maintain their shape even under conditions of relative humidity of 70% or 80%, and that the addition of polyanion provides excellent resistance to humidity. On the other hand, it is found that the ionic complexes described in Comparative Examples 1 and 3 to 6 do not contain polyanion, and therefore absorb moisture in an environment of relative humidity of 80%, causing stickiness, making it difficult to handle as an ionic complex. It is found that the ionic complexes of Comparative Example 2 can be handled as an ionic complex, but are inferior in shape retention and are not suitable for use under high humidity conditions.
Claims
1. (A) a lignosulfonic acid compound, (B) a cationic polymer, and (C) Polyanion Formed from (B) the cationic polymer comprises poly(diallyldimethylammonium chloride); (C) the polyanion comprises polyacrylic acid or polystyrene sulfonic acid; Ionic complexes.
2. 2. The ionic complex of claim 1, wherein the weight average molecular weight of the polyanion is from 3,000 to 1,000,000.
3. The ionic complex according to claim 1 or 2, wherein the content of component (C) is 1 to 80% by weight.
4. The ionic complex according to any one of claims 1 to 3, wherein the component (A) comprises at least one selected from the group consisting of lignosulfonic acid, polyethylene glycol-derivatized lignosulfonic acid, and salts thereof.
5. The ionic complex according to any one of claims 1 to 4, wherein component (B) comprises poly(diallyldimethylammonium chloride).
6. (A) a lignosulfonic acid compound, (B) a cationic polymer, and (C) Polyanion A mixing step of mixing (B) the cationic polymer comprises poly(diallyldimethylammonium chloride); (C) the polyanion comprises polyacrylic acid or polystyrene sulfonic acid; Method for producing ionic complexes.
Citation Information
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