Antibacterial paper and its manufacturing method
By applying a clear coating of cationic antibacterial agents and starch to base paper, the method addresses antibacterial agent aggregation issues, producing high-quality antibacterial paper with improved strength and antibacterial properties for diverse applications.
Patent Information
- Application Number
- JP2021121738
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-07-26
- Publication Date
- 2025-09-25
- Estimated Expiration
- 2041-07-26
AI Technical Summary
Existing methods for producing antibacterial paper face issues with antibacterial agent aggregation and thickening when combined with sizing agents, leading to difficulties in coating and resulting in poor paper quality.
A method involving the application of a clear coating solution containing a cationic antibacterial agent and starch to base paper, which can include a surfactant, to create an antibacterial layer that improves surface strength and antibacterial properties while avoiding aggregation.
The method produces high-quality antibacterial paper with enhanced antibacterial activity, surface strength, and interlayer strength, suitable for various applications without pigment coating, maintaining excellent printing properties and air permeability.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to antibacterial paper and a method for producing the same. [Background technology]
[0002] Antibacterial paper that has been imparted with antibacterial properties is known. For example, Patent Document 1 describes paper to which an inorganic antibacterial agent such as antibacterial zeolite is externally added, and Patent Document 2 describes paper to which an antibacterial agent is internally added. Furthermore, Patent Document 3 proposes producing antibacterial paper using an aqueous solution of chlorhexidine gluconate. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 09-003799 [Patent Document 2] Japanese Patent Application Publication No. 09-003800 [Patent Document 3] Japanese Patent Application Laid-Open No. 2009-242299 Summary of the Invention [Problem to be solved by the invention]
[0004] Generally, a binder such as starch is applied to the surface of paper to improve the sizing ability, printing properties, surface strength, etc. The present inventors have investigated externally coating an antibacterial agent onto paper to impart antibacterial properties to the paper, and have found that when an antibacterial agent is blended into a coating solution containing additives such as a sizing agent, thickening or aggregation occurs depending on the combination of the antibacterial agent and the sizing agent contained in the coating solution, making it difficult to produce antibacterial paper by externally coating.
[0005] In view of the above circumstances, an object of the present invention is to provide a technology for producing excellent antibacterial paper by coating with an antibacterial agent. [Means for solving the problem]
[0006] The present invention includes, but is not limited to, the following inventions. [1] A method for producing antibacterial paper, comprising applying a clear coating solution containing a cationic antibacterial agent and starch to base paper. [2] The method according to [1], wherein the starch contains oxidized starch. [3] The method according to [1] or [2], wherein the antibacterial agent comprises a surfactant. [4] Antibacterial paper having a clear coating layer containing a cationic antibacterial agent and starch on a base paper. [5] The antibacterial paper according to [4], which is a high-quality paper that does not have a pigment coating layer. [6] The antibacterial paper according to [4] or [5], wherein the starch contains oxidized starch. [7] The antibacterial paper according to any one of [4] to [6], wherein the antibacterial agent contains a surfactant. [Effects of the Invention]
[0007] According to the present invention, an excellent antibacterial paper and a method for producing the same are provided. DETAILED DESCRIPTION OF THE INVENTION
[0008] The present invention relates to antibacterial paper having an antibacterial layer provided on a base paper. The antibacterial paper according to the present invention has a clear coating layer containing a cationic antibacterial agent and starch on the base paper, and is obtained by applying a surface treatment liquid (coating liquid) onto the base paper.
[0009] The antibacterial paper of the present invention has antibacterial properties, and has an antibacterial activity value of about 3.0 or more as measured based on the antibacterial test method of JIS L 1902. However, since the antibacterial test measures the extent to which bacterial growth can be inhibited, if the sample originally has bacteriostatic (bactericidal) properties, the inoculated bacteria may not grow and the antibacterial activity value may be low. Therefore, in the present invention, antibacterial properties are considered to be present even if the number of viable bacteria immediately after inoculation in the antibacterial test is less than 20.
[0010] In the present invention, a layer containing an antibacterial agent and starch is provided on the base paper, and the amount of coating can be adjusted, for example, by adjusting the viscosity of the surface treatment solution or the coating speed. That is, by lowering the viscosity using a surfactant or the like, it is possible to make the coating solution penetrate more easily into the paper, or by applying it at a high speed, it is possible to make the coating solution remain on the paper surface. Furthermore, in one embodiment of the present invention, by applying a polysaccharide such as starch to the surface of the paper, not only the surface strength of the paper but also its stiffness is improved, and further, the polysaccharide can penetrate appropriately into the paper layers, thereby improving interlayer strength.
[0011] The antibacterial paper obtained by the present invention can be used as a product without any restrictions for various applications, such as printing paper, writing paper, book paper, newsprint, packaging paper, tissue paper, base paper for pigment-coated paper, various information recording papers such as inkjet recording, thermal recording, and carbonless copying, and the base paper for these. Considering its use as printing paper, the post-print gloss of the antibacterial paper of the present invention is preferably 40% or more, more preferably 50% or more, and even more preferably 60% or more. On a 10-point scale, 4 or more is good, and 7 or more is particularly good. Furthermore, from the viewpoint of suppressing printing problems, the MD interlaminar strength is preferably 90 gf / 15 mm or more, more preferably 100 gf / 15 mm or more, and even more preferably 110 gf / 15 mm or more.
[0012] The basis weight of the antibacterial paper according to the present invention is not particularly limited, but may be, for example, 25 to 500 g / m 2 , 35~300g / m 2 In another embodiment, the basis weight of the antibacterial paper can be, for example, 45 to 100 g / m 2 It can be 50 to 90 g / m 2 or 55-80g / m 2 It may also be possible to use the following.
[0013] The antibacterial paper of the present invention preferably has a relative air permeability of 1.4 or more, more preferably 3.0 or more or 5.0 or more. The antibacterial paper of the present invention also preferably has a CD breaking length of 3.0 km or more, more preferably 4.0 km or more or 4.5 km or more. If the relative air permeability or breaking length is too low, the antibacterial paper may tear during production.
[0014] The ash content of the antibacterial paper of the present invention can be set as appropriate, for example, between 0.1% and 40% by weight, and preferably between 5% and 30% by weight. If the ash content is higher than 30% by weight, the filler in the paper may inhibit the bonding between fibers, resulting in a lack of stiffness and strength of the paper. The ash content in paper is measured in accordance with JIS-P8252.
[0015] In one embodiment, the antibacterial paper according to the present invention is uncoated paper that does not have a pigment coating layer, and may be uncoated wood-free paper. Base paper The base paper used in the present invention comprises a pulp material. There are no particular limitations on the pulp material used, and in addition to wood pulp, non-wood pulps such as bamboo pulp, linter pulp, hemp, bagasse, kenaf, esparto grass, and straw, semi-synthetic fibers such as rayon and acetate, and synthetic fibers such as polyolefin, polyamide, and polyester can be used. Specifically, materials commonly used as papermaking materials, such as mechanical pulp (MP), deinked pulp (DIP, also known as recycled paper pulp), hardwood kraft pulp (LKP), and softwood kraft pulp (NKP), can be suitably used. One or more of these materials can be used in combination as appropriate. These pulps can be unbleached pulp, which is not bleached, or bleached pulp, which has been bleached by one or several methods. Examples of mechanical pulp include groundwood pulp (GP), refined groundwood pulp (RGP), thermomechanical pulp (TMP), chemi-thermomechanical pulp (CTMP), chemi-ground pulp (CGP), and semi-chemical pulp (SCP). Deinked pulp is not particularly limited, and may be made from sorted waste paper such as fine paper, medium-grade paper, low-grade paper, newspaper, flyers, and magazines, or unsorted waste paper containing these, or office waste paper including copy paper, thermal paper, and carbonless paper, confidential waste paper, and paper cups. Cellulose nanofibers, cellulose nanofibrils, microfibril cellulose, microcrystalline cellulose, and cellulose powder can also be used. The base paper used in the present invention is not particularly limited, and examples include copy paper, newsprint, medium-grade paper, liner, and medium-strength paper. In one embodiment, the base paper used in the present invention is fine paper, and only chemical pulp is used as the pulp for the base paper.
[0016] Various internal additives may be added to the base paper used in the present invention, provided that the effects of the present invention are not impaired. Internal additives include, but are not limited to, inorganic chemicals such as aluminum sulfate (aluminum sulfate), polyaluminum chloride, sulfuric acid, hydrochloric acid, sodium hydroxide, and sodium bicarbonate; organic chemicals such as polyacrylamide polymers, polyvinyl alcohol polymers, oxidized starch, esterified starch, cationized starch, various modified starches, styrene-butadiene copolymers, latex, and vinyl acetate adhesives; cellulose derivatives such as carboxymethyl cellulose and hydroxyethyl cellulose; internal paper strength enhancers such as urea-formalin resin and melamine-formalin resin; internal sizing agents such as rosin-based sizing agents, AKD-based sizing agents, ASA-based sizing agents, petroleum-based sizing agents, and neutral rosin sizing agents; aluminum sulfate, retention aids, retention aids, UV inhibitors, anti-fading agents, drainage aids, coagulants, bulking agents, pH adjusters, slime control agents, colorants (dyes and pigments), and fluorescent dyes. Furthermore, various cellulose nanofibers and fine cellulose fibers may be used as internal additives.
[0017] The base paper used in the present invention can be filled with commonly used fillers, for example, one or more inorganic or organic fillers. Examples of inorganic fillers include heavy calcium carbonate, light calcium carbonate, calcium sulfite, gypsum, talc, kaolin, engineered kaolin, calcined kaolin, white carbon, amorphous silica, delaminated kaolin, diatomaceous earth, magnesium carbonate, titanium dioxide, aluminum hydroxide, calcium hydroxide, magnesium hydroxide, zinc hydroxide, papermaking sludge, and recycled inorganic particles from deinking froth. Examples of organic fillers include urea-formalin resin, vinyl chloride resin, polystyrene resin, urea / formalin resin, melamine resin, styrene / butadiene copolymer resin, phenolic resin, and hollow plastic particles.
[0018] The base paper of the present invention can be made by known methods. For example, a stock mixture of the above-mentioned raw materials is appropriately diluted, and after removing foreign matter with a screen or cleaner as necessary, the diluted stock is sprayed onto a papermaking wire from the headbox of a papermaking machine to form a wet paper. The base paper of the present invention can be made using various papermaking machines, such as Fourdrinier, cylinder, multi-cylinder cylinder, short wire, and twin-wire papermaking machines. Examples of twin-wire papermaking machines include gap formers and on-top formers. Base paper may also be made using crescent former or Yankee dryer papermaking machines. The conditions for the pressing and drying processes after papermaking can be adjusted as appropriate.
[0019] The base paper may be made under neutral or acidic conditions. Specifically, in the present invention, the pH of the stock during papermaking is preferably 3.0 to 9.0, and more preferably 4.0 to 8.0.
[0020] Clear coating layer In the present invention, in order to impart antibacterial properties, a clear coating layer (antibacterial layer) containing at least a cationic antibacterial agent and starch is provided on the base paper. In the present invention, the coating amount (coating amount) of the antibacterial layer is not particularly limited, but for example, it is 0.1 to 10 g / m on both sides. 2 It can be in the range of 0.5 to 5.5 g / m 2 is preferred, and 1.0 to 3.0 g / m 2 If the coating amount is too large, the absolute amount of water increases, which increases the drying load and may make drying insufficient.
[0021] (Antibacterial agent) In the present invention, an antibacterial agent is applied to the base paper, and a cationic antibacterial agent is used as the antibacterial agent. The cationic antibacterial agent may be used alone or in combination with two or more antibacterial agents. In the present invention, the antibacterial agent refers to an agent that can impart antibacterial properties, and commercially available antibacterial agents, bactericides, disinfectants, etc. can be used. For example, an agent that has not only antibacterial properties but also antiviral properties can be used as the antibacterial agent.
[0022] Examples of cationic antibacterial agents include ethoxysilanes, alkyl quaternary ammonium salts, alkyldimethylbenzylammonium chloride, benzalkonium chloride, benzethonium chloride, etc., and among these, alkyl quaternary ammonium salts, alkyldimethylbenzylammonium chloride, benzalkonium chloride, etc. are preferred. Commercially available products include Sanizol B-50, Lipocard CB-50, and Corkinstar D-125.
[0023] In the present invention, organic antibacterial agents and inorganic antibacterial agents can be used within the scope that does not impair the effects of the present invention, and hybrid antibacterial agents of organic and inorganic antibacterial agents can also be used.
[0024] Examples of organic antibacterial agents include ethylene oxide, glutaraldehyde, orthophthalaldehyde, cresol, chitosan, hinokitiol, mustard extract, iodine-based agents such as povidone-iodine, biguanide-based agents such as chlorhexidine, pigment-based agents such as acrinol, polyphenol-based agents, benzimidazole-based agents, phthalimide-based agents, isothisolone-based agents, pyridine-based agents, and nitrile-based antibacterial agents.
[0025] Examples of inorganic antibacterial agents that can be used include silver-based antibacterial agents, copper-based antibacterial agents, and zinc-based antibacterial agents, with silver-based antibacterial agents being preferred from the standpoint of safety. Silver-based antibacterial agents are not particularly limited as long as they are inorganic compounds carrying silver ions. Specific examples include inorganic adsorbents such as activated carbon, activated alumina, and silica gel, and inorganic ion exchangers such as zeolite, hydroxyapatite, zirconium phosphate, titanium phosphate, and potassium titanate. Copper-based antibacterial agents are not particularly limited as long as they are inorganic compounds carrying copper ions. Specific examples include inorganic adsorbents such as activated carbon, activated alumina, and silica gel, and inorganic ion exchangers such as zeolite, hydroxyapatite, zirconium phosphate, titanium phosphate, and potassium titanate. Zinc-based antibacterial agents are not particularly limited as long as they are inorganic compounds carrying zinc ions. Specific examples include inorganic adsorbents such as activated carbon, activated alumina, and silica gel, and inorganic ion exchangers such as zeolite, hydroxyapatite, zirconium phosphate, titanium phosphate, and potassium titanate. When a zeolite-based antibacterial agent is used, an antibacterial zeolite obtained by substituting part of the ion-exchangeable metals of zeolite with at least one metal selected from silver, copper, and zinc is preferably used.
[0026] Commercially available inorganic antibacterial agents include, for example, Silver Bread, Cozy Pack Air, AG Alpha (registered trademark) CF-01, AG Alpha (registered trademark) CF-04, Novalon, Kesmon, Allerimub, MP-102SVC13, Silver Ace, Zeomic, Lock-3, and Ion Pure.
[0027] (starch) In the present invention, the above antibacterial agent and starch are used in combination. In the present invention, starch is applied to base paper as a surface strength agent together with the cationic antibacterial agent, which can impart surface strength, water resistance, printability, etc. to the paper.
[0028] When the antibacterial agent and starch are applied together, the solids weight ratio of the antibacterial agent to the starch can be, for example, 2:1 to 1:200, preferably 1:1 to 1:150, or may be 1:2 to 1:100 or 1:3 to 1:50.
[0029] Furthermore, in the present invention, starch that has been modified by various known methods may also be used. Modification methods include, for example, enzymatic modification using α-amylase, esterification, cationization, acetylation, aldehyde conversion, and hydroxyethylation. Esterification includes acetate esterification and phosphate esterification, and etherification includes carboxyetherification and hydroxyetherification. To maximize the retrogradation stability-improving effect of the present invention, it is preferable to use self-modified starch that has been modified in a paper mill using acetylated tapioca starch or the like as a raw material to reduce its viscosity. In particular, it is preferable to use APS-modified starch that has been thermochemically modified by adding ammonium persulfate (APS) as an oxidizing agent, or enzyme-modified starch that has been hydrolyzed using α-amylase. Self-modified starch that has been modified in a paper mill allows for easy viscosity adjustment at the manufacturing site and is also cost-effective.
[0030] In addition to starch, adhesives used in surface treatment may include, for example, cellulose derivatives such as carboxymethyl cellulose, hydroxyethyl cellulose, methyl cellulose, and cellulose nanofibers; microfiber cellulose; guar gum; xanthan gum; gum arabic; dextrin; alginic acid; hyaluronic acid; xylan; glucomannan; carrageenan; polyacrylamide; polyvinyl alcohol; carboxyl-modified polyvinyl alcohol; modified alcohols such as acetoacetylated polyvinyl alcohol; latex; styrene-butadiene copolymers; polyvinyl acetate; vinyl chloride-vinyl acetate copolymers; polyvinyl chloride; polyvinylidene chloride; and polyacrylic esters. These may be used alone or in combination. In the present invention, polysaccharides such as starch preferably account for 50% or more of the adhesive in the antibacterial layer, and more preferably 80% or more. If the proportion is less than 50%, the viscosity of the surface treatment solution may decrease, potentially resulting in adverse effects such as reduced strength and stiffness, and also increasing costs.
[0031] In the present invention, various sizing agents can be used in the clear coating layer, and for example, surface sizing agents such as styrene-based sizing agents, olefin-based sizing agents, acrylate-based sizing agents, styrene-acrylic sizing agents, cationic sizing agents, alkyl ketene dimer (AKD), alkenyl succinic anhydride (ASA), etc. When a surface sizing agent is used, the solids concentration in the surface treatment liquid is preferably 0.05 to 5 wt %, more preferably 1 to 3 wt %.
[0032] The weight ratio of the antibacterial agent to the surface sizing agent can be, for example, 99:1 to 1:99, preferably 90:10 to 10:90, and may be 80:20 to 20:80 or 70:30 to 30:70.
[0033] Furthermore, the surface treatment liquid (coating liquid) of the present invention may contain various auxiliary agents, such as dispersants, thickeners, water-retaining agents, antifoaming agents, water-resistant agents, colorants, and conductive agents, as needed. The device (coater) for applying the surface treatment liquid is not particularly limited, and known devices can be used. Examples of coaters that can be used include pond-type size presses, film-transfer type gate roll coaters and lot metering size presses, as well as blade coaters, spray coaters, and curtain coaters. Also, so-called calendar sizing can be performed, in which application is performed using an applicator or spray in a calendar or super calendar. Furthermore, the coating liquid can be sprayed and applied in front of the Yankee dryer.
[0034] In the present invention, other layers may be provided in addition to the clear coating layer, i.e., for example, a pigment coating layer may be provided in addition to the layer containing the polysaccharide and the antibacterial agent. After the clear coating layer is provided on the base paper, the paper may be passed through a known finishing device, such as a super calender, gloss calender, soft calender, or high-temperature soft nip calender, to finish the product, or it may be left untreated or bypassed. [Example]
[0035] The present invention will be illustrated below by specific examples, but it is not intended that the present invention be limited to the following examples. In each example and comparative example, unless otherwise specified, "parts" and "%" are by weight, and numerical ranges are stated as including their endpoints.
[0036] Experiment 1. Preparation and evaluation of clear coating liquid In a 500 mL container, an antibacterial agent was added to a starch solution to prepare a coating solution. Specifically, the antibacterial agent shown in the table below was added to a mixture of 300 g of starch solution (Nihon Shokuhin Kako, Nisshoku MS3800, solids content: 4.0%) and 1.2 g of antifoaming agent (Kurita Water Industries, Kuresu 480, concentration: 1%), and the mixture was stirred with a spatula for 3 minutes to prepare the coating solution.
[0037] [Table 1-1]
[0038] The foaming property of the prepared coating liquid was evaluated. Specifically, 200 mL of the coating liquid was gently poured into a 2 L measuring cylinder, and then the coating liquid was poured into a Kinoshita Glass Bowl Filter G2 (Kinoshita Rika Kogyo) at a concentration of 0.1 kg / m 2 The tip of the ball filter was submerged under the surface of the sample liquid for 10 seconds. After 10 seconds, the ball filter was removed and the height of the foam (measured in ml on the measuring cylinder at the top of the foam, with a static liquid level of 200 ml as the reference) was recorded, and the time until the foam returned to the original liquid level was measured.
[0039] [Table 1-2]
[0040] When cationic and zwitterionic antibacterial agents were added to clear coating solutions containing starch, not much foam was generated, and any foam that did occur disappeared within a short time. On the other hand, when anionic or nonionic antibacterial agents were added to clear coating solutions, foam was more likely to occur, and the foam that did occur was more difficult to dissipate (foam volume after 10 minutes for Sample 1-4: 100 ml).
[0041] Experiment 2: Production and evaluation of antibacterial paper 2-1. Antibacterial paper manufacturing The coating solution was prepared by mixing the raw materials in the following ratio: Specifically, in a 1 L container, the raw materials were mixed with water (ion-exchanged water) adjusted to a liquid temperature of 40°C, and the mixture was stirred with a spatula for 3 minutes to prepare the coating solution.
[0042] [Table 2-1]
[0043] Next, we used wood-free base paper (basis weight: approximately 60 g / m) that was neither pigment coated nor clear coated. 2 Each coating solution was applied to both sides of the paper using a Hishira copy machine (One Step Processor S-III model, Daitosha), and then the paper was air-dried for 24 hours to produce high-quality paper.
[0044] 2-2. Evaluation of antibacterial paper The produced fine paper was evaluated as follows: When the evaluation was carried out, the paper was left to stand overnight in a constant temperature and humidity room (25°C, relative humidity: 50%) to adjust the humidity before use. (1) Basis weight and coating amount The basis weight was measured before and after application, and the application amount (g / m 2 ) was calculated. (2) Interlaminar strength A 20 cm x 1.5 cm sample was prepared using a punching machine (Kumagaya Riki Kogyo Co., Ltd.), and the interlaminar strength was measured using a universal testing machine (RTG-1210, Orientec Co., Ltd.). (3) Smoothness, air permeability, specific air permeability The smoothness and air permeability (air resistance) of the produced fine paper were measured using an Oken type air permeability / smoothness tester (manufactured by Asahi Seiko Co., Ltd.) in accordance with JAPAN TAPPI No. 5. The air permeability value was also divided by the basis weight of each sample to determine the relative air permeability. (4) Tearing length A 20cm x 1.5cm sample was prepared using a punching machine (Kumagaya Riki Kogyo Co., Ltd.) and measured using a tensile strength tester (Horizontal Tensile Tester, Kumagaya Riki Kogyo Co., Ltd.) based on JIS P-8113. The breaking length was calculated by dividing the tensile strength value by the basis weight of each sample. (5) Antibacterial activity Based on the antibacterial test method of JIS L1902, a 2.8 cm x 2.8 cm sample of fine paper was used as the test piece. The test solution containing Staphylococcus aureus (test bacteria concentration: 1.0 x 10 5 ~3.0×10 5 After inoculating 0.2 mL of the bacteria (CFU / mL) onto the surface of the test specimen, the specimen was cultured at 37°C for 18 to 24 hours. Immediately after inoculation and after culture, 20 mL of washout solution was added to wash out the test bacteria from the specimen, the number of viable bacteria in the washout solution was measured, and the antibacterial activity value (A) was calculated using the following formula. Washed cotton cloth (Cotton No. 3-1) was used as a control sample (JIS L0803).
[0045]
number
[0046] [Table 2-2]
[0047] When a coating liquid containing a cationic antibacterial agent and starch was used based on the present invention, there was no problem of foaming in the coating liquid, and the coating liquid could be applied smoothly. Furthermore, when a cationic antibacterial agent and starch are used in combination according to the present invention, the interlaminar strength of fine paper is greatly improved, and according to the present invention, antibacterial paper with excellent strength can be obtained.
Claims
1. A method for producing antibacterial paper of fine quality paper without a pigment coating, comprising: The method includes applying a clear coating solution containing a cationic antimicrobial agent and oxidized starch to the base paper.
2. 2. The method of claim 1, wherein the oxidized starch is oxidized starch using ammonium persulfate as an oxidizing agent.
3. The method of claim 1 or 2, wherein the antimicrobial agent comprises a surfactant.
4. An antibacterial paper made of high-quality paper that does not have a pigment coating layer, and has a clear coating layer containing a cationic antibacterial agent and oxidized starch on the base paper.
5. The antibacterial paper according to claim 4, wherein the clear coating layer contains a sizing agent.
6. The antibacterial paper according to claim 4 or 5, wherein the antibacterial agent comprises a surfactant.
7. Basis weight: 45 to 100 g / m 2 and the specific air permeability is 1.4 or more.
Citation Information
Patent Citations
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