Emulsion composition
A durable film is produced using an emulsion composition of hydrophobic modified cellulose fibers, organic compounds, and polymer compounds, addressing outdoor durability issues by enhancing film hardness and reducing contamination.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-01-31
- Publication Date
- 2026-04-08
AI Technical Summary
Existing films used outdoors are susceptible to damage from external factors such as dust, wind, rain, and floating objects, necessitating a film with enhanced durability and resistance to these stresses.
An emulsion composition containing hydrophobic modified cellulose fibers, organic compounds, and polymer compounds is applied and dried to form a film with improved durability, achieved by blending these components to enhance film hardness and reduce bleed rate.
The resulting film exhibits excellent durability, with reduced adherence of sand and dust, and maintains washability for extended use.
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Abstract
Description
Technical Field
[0001] The present invention relates to an emulsion composition and a method for producing the same. Further, the present invention relates to a film formed by drying such an emulsion composition.
Background Art
[0002] Conventionally, in the field of packaging containers for cosmetics, foods, etc., a surface film has been developed to prevent the adhesion of flowing substances such as objects that can come into contact with containers, trays, etc. (for example, the cosmetics or foods themselves, which are the objects to be filled in the container or wrapped with a film) and dirt. For example, Patent Document 1 discloses a film having a hydrophobic modified cellulose fiber in which a modifying group is bonded to one or more selected from anionic groups and hydroxyl groups of cellulose fibers and an oil having an SP value of 10 or less.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] Since the film of the present invention is excellent in slipperiness, when it is assumed to be used outdoors, by forming a film on an outdoor structure such as a traffic signal, etc., the adhesion of snow and dirt can be prevented, and a reduction in maintenance costs can be expected. However, outdoors, there are objects that can damage the film itself, such as dust, wind, rain, waves, floating objects, etc. when arranged at sea. Therefore, a highly durable film that is resistant to external factors such as dust is required.
[0005] Therefore, an object of the present invention is to provide a film excellent in durability against external stresses such as properties resistant to dust (dust resistance), and an emulsion composition for forming such a film.
Means for Solving the Problems
[0006] The present invention relates to the following [1] to [4]. [1] An emulsified composition containing the following components (A) to (D). (A) Hydrophobic modified cellulose fibers to which one or more modifying groups selected from the group consisting of anionic groups and hydroxyl groups are bonded. (B)Water (C) Organic compounds that are liquid at 25℃ and 1 atm (D) Polymer compounds (excluding compounds used to introduce the aforementioned modifying groups). [2] Component (A-1) Anionic modified cellulose fiber, Compound for introducing component (A-2) modifying group, Ingredients (B) Water, Components (C): Organic compounds that are liquid at 25°C and 1 atm. A step of mixing to prepare an emulsified mixture, and A method for producing an emulsion composition, comprising the step of mixing a prepared emulsion mixture with an emulsion or dispersion of component (D) a polymer compound (excluding the compound for introducing the modifying group) to prepare an emulsion composition. [3] A film obtained by drying the emulsified composition described in [1] above, or an emulsified composition produced by the method for producing the emulsified composition described in [2] above. [4] A method for producing a film, comprising the step of applying and drying an emulsified composition produced by the emulsified composition according to claim [1] or the method for producing an emulsified composition according to the method for producing an emulsified composition according to claim [2]. [Effects of the Invention]
[0007] By using the emulsified composition provided by the present invention, a film with excellent durability can be provided. [Modes for carrying out the invention]
[0008] As a result of diligent research by the present inventors to solve the above problems, they discovered that by coating an emulsion composition containing hydrophobic modified cellulose fibers, which have a specific structural modification group bonded to the cellulose fibers, water, an organic compound that is liquid at 25°C and 1 atm, and a polymer compound onto a substrate and drying it, a film with excellent synovial properties and excellent durability can be produced, thus completing the present invention.
[0009] This is thought to be because, during the preparation of the emulsified composition, by blending the emulsified mixture of components (A) to (C) with a specific polymer compound (D) in the form of an emulsion or dispersion, the emulsion or dispersion of component (D) can be dispersed in the continuous phase of the emulsified mixture of components (A) to (C), thereby increasing the hardness of the formed film and reducing the bleed rate of component (C).
[0010] Furthermore, durability in this specification can be evaluated by the amount of sand and dust adhering to the film as described in the examples. The less sand and dust adhering to the film, the better the durability of the film and the emulsifying composition. Moreover, since the film of the present invention has excellent washability, it can be used for a relatively long period of time.
[0011] 1. Emulsified composition The emulsified composition of the present invention contains the following components (A) to (D). <Ingredient (A)> Component (A) is a hydrophobic modified cellulose fiber in which a compound for introducing a modifying group is bonded to one or more groups selected from the group consisting of anionic groups and hydroxyl groups. That is, the hydrophobic modified cellulose fiber in this specification is a cellulose fiber to which a polymer compound is bonded (structure (a)), or a cellulose fiber to which a hydrocarbon compound is bonded (structure (b)). A preferred hydrophobic modified cellulose fiber of structure (a) is one in which a polymer compound is bonded to an anionic modified cellulose fiber, and more preferably, a polymer compound is bonded to the anionic group of the anionic modified cellulose fiber. A preferred hydrophobic modified cellulose fiber of structure (b) is one in which a hydrocarbon compound is bonded to an anionic modified cellulose fiber, and more preferably, a hydrocarbon compound is bonded to the anionic group of the anionic modified cellulose fiber. Here, the hydrocarbon compound preferably has a total carbon number of 16 to 40. Compounds used to introduce modifying groups, such as polymer compounds and hydrocarbon compounds (preferably hydrocarbon compounds having cationic groups), may be referred to as "modifying compounds" in this specification.
[0012] [Cellulose type I crystal structure and degree of crystallinity] Hydrophobic modified cellulose fibers preferably have a cellulose type I crystalline structure due to the use of natural cellulose as their raw material. From the viewpoint of strength development during film formation, the degree of crystallinity of the hydrophobic modified cellulose fibers is preferably 10% or more, more preferably 15% or more, and even more preferably 20% or more. Furthermore, from the viewpoint of raw material availability, it is preferably 90% or less, more preferably 85% or less, even more preferably 80% or less, and even more preferably 75% or less. The degree of crystallinity of cellulose type I is measured by the method described in the examples below.
[0013] [Average fiber diameter of hydrophobic modified cellulose fibers] The average fiber diameter of the hydrophobic modified cellulose fiber is preferably 0.1 nm or more, more preferably 1.0 nm or more, still more preferably 2.0 nm or more from the viewpoint of handleability, and preferably 200 nm or less, more preferably 100 nm or less, still more preferably 50 nm or less from the viewpoint of the strength when forming a film. The average fiber diameter of the hydrophobic modified cellulose fiber is measured by the method described in the examples below.
[0014] [Modifier group] [Hydrophobic modified cellulose fiber of structure (a)] One preferred embodiment of the hydrophobic modified cellulose fiber of structure (a) has a structure represented by the following general formula (T-Ce). Note that structure (a) may be a hydrophobic modified cellulose fiber in which a modifier group is bonded to the hydroxy group of a cellulose fiber having no anionic group.
[0015] [Chemical formula]
[0016] (In the formula, X is -CH2OH, -CH2O-R 1 , -C(=O)OH, -C(=O)O-R 1 , -C(=O)-O - H3N + -R 1 and -C(=O)-NH-R 1 is one or more groups selected from the group consisting of, R 1 is a modifier group, R is each independently a hydrogen atom or a modifier group, R 1 and R may be the same or different, and at least one of the plurality of R 1 and R is a modifier group. m is an integer of 20 or more and 3,000 or less.)
[0017] The modifier group in structure (a) is a group derived from a polymer compound, and the modifier group (that is, R in the above formula (T-Ce)) 1The structure of (and R) depends on the structure of the polymer compound used. The bonding mode of the modifying group to the cellulose fiber is preferably covalent or ionic. From the viewpoint of ease of manufacture, ionic bonding is preferred, and from the viewpoint of the stability of the formed film, covalent bonding is preferred.
[0018] The bonding sites for modifying groups in cellulose fibers include hydroxyl groups and aldehyde groups present in the cellulose fibers, or functional groups introduced by chemical modification of the cellulose fibers. The functional groups introduced by chemical modification are anionic groups, and in this case, the cellulose fibers become anionically modified cellulose fibers. The preferred anionic group in anionically modified cellulose fibers is the carboxyl group. From the viewpoint of ease of preparation and mild reaction conditions, carboxyl group-containing cellulose fibers are more preferred as anionically modified cellulose fibers.
[0019] When the bonding site is a hydroxyl group of an anionically modified cellulose fiber, the bonding mode is a covalent bond, and examples include ether bonds, ester bonds, carbonate bonds, etc.
[0020] When the bonded site is an anionic group of anion-modified cellulose fiber, the bonded mode is either ionic or covalent. When the bonded mode is ionic, it refers to a state in which a modifying compound having a cationic group is bonded via electrostatic interaction. When the bonded mode is covalent, it refers to a state in which the bond is formed via ester bonds, amide bonds, etc. In particular, with respect to the carboxyl group of carboxyl group-containing cellulose fiber, the bond is formed via ester bonds, amide bonds, carbonate bonds, urethane bonds, etc.
[0021] For example, the modifying compound is an amino-modified silicone (referred to as "H2N-[alkylsilicone skeleton]") which is a polymer compound, and the cellulose fiber is a carboxyl group-containing cellulose fiber (referred to as "[cellulose skeleton]-C *Let (=O)-OH. In the case where the bonding mode is an ionic bond, the hydrophobic modified cellulose fiber is "[cellulose backbone]-C * (=O)-O - H3N + The structure becomes like "-[alkylsilicone skeleton]", and the modifying group is "-[alkylsilicone skeleton]". On the other hand, if the bonding mode is an amide bond, the hydrophobic modified cellulose fiber becomes "[cellulose skeleton]-C * The structure becomes like "(=O)-NH-[alkylsilicone skeleton]", and the modifying group becomes "-[alkylsilicone skeleton]". Thus, the structure of the modifying group depends on the structure of the modifying compound used. Note that "C * " refers to the carbon atom at position 6 of the cellulose constituent unit.
[0022] [Hydrophobic modified cellulose fibers of structure (b)] The modifying groups in the hydrophobic modified cellulose fiber of structure (b) are derived from hydrocarbon compounds. Hydrocarbon compounds having cationic groups are preferred. In this case, the mode of attachment of the modifying groups to the anionic groups of the anionic modified cellulose fiber is ionic bonding. In the hydrophobic modified cellulose fiber of structure (b), the cationic groups of the modifying groups are adsorbed to the anionic groups on the surface of the cellulose fiber via electrostatic interactions.
[0023] [Amount of modifying groups attached and rate of introduction] The amount of modifying groups (mmol / g) and the introduction rate (mol%) in hydrophobic modified cellulose fibers refer to the amount and proportion of modifying groups introduced into the hydrophobic modified cellulose fibers. Specifically, these are measured by the method described in the examples below. The amount of modifying groups and the introduction rate can be adjusted by the amount and type of modifying compound added, the reaction temperature, the reaction time, the solvent, etc.
[0024] From the viewpoint of improving durability, the amount of modifying groups bound to hydrophobic modified cellulose fibers is preferably 0.1 mmol / g or more, more preferably 0.2 mmol / g or more, and even more preferably 0.5 mmol / g or more. From the viewpoint of reactivity, it is preferably 3 mmol / g or less, more preferably 2.5 mmol / g or less, and even more preferably 2 mmol / g or less.
[0025] Furthermore, from the viewpoint of improving durability, the rate of introduction of modifying groups in hydrophobic modified cellulose fibers is preferably 10 mol% or more, more preferably 20 mol% or more, even more preferably 40 mol% or more, and even more preferably 50 mol% or more. From the viewpoint of reactivity, it is preferably 99 mol% or less, more preferably 97 mol% or less, even more preferably 95 mol% or less, and even more preferably 90 mol% or less.
[0026] [Method for producing hydrophobic modified cellulose fibers] The hydrophobic modified cellulose fibers of component (A) can be obtained by a method comprising, for example, (1) introducing anionic groups into raw material cellulose fibers to obtain anionic modified cellulose fibers, and (2) bonding a polymer compound and / or a hydrocarbon compound to the anionic modified cellulose fibers to obtain hydrophobic modified cellulose fibers.
[0027] One embodiment of the process described in (2) above is: Ingredients (A-1) Anionic modified cellulose fiber, Compound for introducing component (A-2) modifying group, Ingredient (B) Water, and Components (C): Organic compounds that are liquid at 25°C and 1 atm. One example is the step of mixing the components. This embodiment is the same as the manufacturing process of the emulsified mixture described later, namely the step of mixing components (A-1), (A-2), (B), and (C). According to this embodiment, hydrophobic modified cellulose fibers and the emulsified mixture can be manufactured in the same process, and therefore it can be said to be a more preferable manufacturing method.
[0028] (1) Process for obtaining anionic modified cellulose fibers The anionically modified cellulose fibers used in the present invention can be obtained by subjecting raw material cellulose fibers to an oxidation treatment or an anionic group addition treatment to introduce at least one anionic group and thereby anionically modify them.
[0029] The cellulose fibers to be anionically modified, i.e., the cellulose fibers used as raw materials for hydrophobically modified cellulose fibers and anionically modified cellulose fibers, are preferably natural cellulose fibers from an environmental standpoint. Examples include wood pulp such as coniferous pulp and hardwood pulp; cotton pulp such as cotton linters and cotton lint; non-wood pulp such as straw pulp and bagasse pulp; and bacterial cellulose. One of these can be used alone or in combination of two or more.
[0030] The average fiber diameter of the cellulose fibers used as raw material is not particularly limited, but from the viewpoint of handling and cost, it is preferably 1 μm or more, and preferably 300 μm or less.
[0031] Furthermore, while the average fiber length of the raw material cellulose fibers is not particularly limited, from the viewpoint of availability and cost, it is preferably 100 μm or more, and preferably 5,000 μm or less. The average fiber diameter and average fiber length of the raw material cellulose fibers can be measured according to the method described in the examples below. From the viewpoint of reaction efficiency during manufacturing, it is preferable to use cellulose fibers in which the average fiber length is 1 μm or more and 1,000 μm or less, obtained by shortening the raw material cellulose fibers by alkaline hydrolysis treatment, acid hydrolysis treatment, etc.
[0032] Examples of anionic groups that can be introduced include carboxyl groups, sulfonic acid groups, or phosphate groups.
[0033] (i) When introducing a carboxyl group as an anionic group into cellulose fibers Methods for introducing carboxyl groups into cellulose fibers include, for example, oxidizing the hydroxyl groups of cellulose to convert them into carboxyl groups, or reacting the hydroxyl groups of cellulose with at least one compound selected from the group consisting of compounds having carboxyl groups, acid anhydrides of compounds having carboxyl groups, and derivatives thereof.
[0034] The method for oxidizing the hydroxyl groups of the cellulose is not particularly limited, but for example, a method in which 2,2,6,6-tetramethyl-1-piperidine-N-oxyl (TEMPO) is used as a catalyst to react with an oxidizing agent such as sodium hypochlorite and a bromide such as sodium bromide can be applied. More specifically, known methods, such as the method described in Japanese Patent Application Publication No. 2011-140632, can be referred to.
[0035] By oxidizing cellulose fibers using TEMPO as a catalyst, the hydroxymethyl group (-CH2OH) at the C6 position of the cellulose constituent unit is selectively converted to a carboxyl group. This method is particularly advantageous because it exhibits excellent selectivity for the hydroxyl group at the C6 position that is to be oxidized on the surface of the raw material cellulose fibers, and the reaction conditions are mild. Therefore, a preferred embodiment of the anionically modified cellulose fiber in the present invention is a cellulose fiber in which the C6 position of the cellulose constituent unit is a carboxyl group. In this specification, such cellulose fibers may be referred to as "oxidized cellulose fibers." Oxidized cellulose fibers are preferred because they are easier to prepare than other anionically modified cellulose fibers. Therefore, one preferred embodiment of the hydrophobically modified cellulose fiber in the present invention is a hydrophobicly modified cellulose fiber obtained by bonding an amino-modified silicone to a carboxyl group-containing cellulose fiber.
[0036] By further oxidation or reduction treatment of oxidized cellulose fibers, oxidized cellulose fibers from which the remaining aldehyde groups have been removed can be prepared.
[0037] (ii) When introducing a sulfonic acid group or a phosphate group as an anionic group into cellulose fibers Methods for introducing sulfonic acid groups as anionic groups into cellulose fibers include adding sulfuric acid to the cellulose fibers and heating them. Methods for introducing phosphate groups as anionic groups into cellulose fibers include mixing cellulose fibers in a dry or wet state with powder or aqueous solution of phosphate or a phosphate derivative, or adding an aqueous solution of phosphate or a phosphate derivative to a dispersion of cellulose fibers. When these methods are employed, generally, after mixing or adding powder or aqueous solution of phosphate or a phosphate derivative, dehydration and heat treatment are performed.
[0038] (iii) Anionic modified cellulose fibers (component (A-1)) The anionic groups contained in the anionically modified cellulose fibers obtained in this way include, for example, carboxyl groups, sulfonic acid groups, and phosphate groups. From the viewpoint of the efficiency of introducing modifying groups into cellulose fibers, the anionic group is preferably a carboxyl group. Examples of counterions that pair with the anionic groups in the anionically modified cellulose fibers include metal ions such as sodium ions, potassium ions, calcium ions, and aluminum ions that are generated in the presence of alkali during production, and protons that are generated by substituting these metal ions with acid.
[0039] The anionic group content in anionically modified cellulose fibers is preferably 0.1 mmol / g or more, more preferably 0.4 mmol / g or more, even more preferably 0.6 mmol / g or more, and even more preferably 0.8 mmol / g or more, from the viewpoint of introducing modifying groups. Furthermore, from the viewpoint of improving handling properties, it is preferably 3 mmol / g or less, more preferably 2 mmol / g or less, and even more preferably 1.8 mmol / g or less. Note that "anionic group content" refers to the total amount of anionic groups in the cellulose constituting the cellulose fiber, and is specifically measured by the method described in the examples below.
[0040] The average fiber diameter of the anion-modified cellulose fibers is preferably 0.1 nm or more, more preferably 1.0 nm or more, and even more preferably 2.0 nm or more, from the viewpoint of handling ease, and preferably 200 nm or less, more preferably 100 nm or less, and even more preferably 50 nm or less, from the viewpoint of film strength. The average fiber diameter of the anion-modified cellulose fibers is measured by the method described in the examples below.
[0041] (2) Process for obtaining hydrophobic modified cellulose fibers The hydrophobic modified cellulose fibers of component (A) can be produced by mixing component (A-1) and component (A-2) and bonding them together. As such a production method, a known method, for example, the method described in Japanese Patent Application Publication No. 2015-143336, can be used. The compound used to introduce the modifying group of component (A-2) is preferably a polymer compound and / or a hydrocarbon compound.
[0042] (i) Polymer compound (component A-2) Polymer compounds can be commercially available or prepared according to known methods. One polymer compound may be used, or two or more polymer compounds may be used.
[0043] Examples of polymer compounds include, from the viewpoint of ease of modification, polymer compounds having functional groups that can bind to cellulose fibers, more preferably silicones, polyoxyalkylene oxides, poly(meth)acrylates, polyvinyl, polyesters, polyamides, and polycarbonates having functional groups that can bind to cellulose fibers, and even more preferably amino-modified silicones, epoxy-modified silicones, carboxy-modified silicones, carbinol-modified silicones, and hydrogen-modified silicones, and the position of the reactive group may be either on the side chain or the terminal of the polymer compound. Among these, from the viewpoint of ease of modification, amino-modified silicones are preferred.
[0044] (ii) Amino-modified silicone Amino-modified silicone is a silicone containing amino groups. For example, an amino-modified silicone has a kinematic viscosity of 10 mmHg at 25°C. 2 / s or more 20,000mm 2 A concentration of less than or equal to / s is preferred. Furthermore, amino-modified silicones with an amino equivalent of 400 g / mol to 16,000 g / mol are preferred.
[0045] The kinematic viscosity at 25°C can be determined using an Ostwald viscometer, and more preferably 20 mm² from the viewpoint of improving durability. 2 / s or more, more preferably 50mm 2 It is 10,000 mm or more, and more preferably from the standpoint of handling performance. 2 / s or less, more preferably 5,000 mm 2 It is less than or equal to / s.
[0046] Furthermore, the amino equivalent is preferably 400 g / mol or more, more preferably 600 g / mol or more, and even more preferably 800 g / mol or more, from the viewpoint of improving durability, and preferably 16,000 g / mol or less, more preferably 14,000 g / mol or less, and even more preferably 12,000 g / mol or less, from the viewpoint of ease of bonding to anion-modified cellulose fibers. The amino equivalent is the molecular weight per nitrogen atom, and is calculated as amino equivalent (g / mol) = weight-average molecular weight / number of nitrogen atoms per molecule. Here, the weight-average molecular weight is the value obtained using polystyrene as a standard substance by gel permeation chromatography, and the number of nitrogen atoms can be determined by elemental analysis.
[0047] A specific example of an amino-modified silicone is the compound represented by general formula (a1).
[0048] [ka]
[0049] [In the formula, R 1aR represents a group selected from an alkyl group having 1 to 3 carbon atoms, a hydroxyl group, an alkoxy group having 1 to 3 carbon atoms, or a hydrogen atom, and from the viewpoint of improving durability, a methyl group or a hydroxyl group is preferred. 2a is a group selected from an alkyl group having 1 to 3 carbon atoms, a hydroxyl group, or a hydrogen atom, and from a similar viewpoint, a methyl group or a hydroxyl group is preferred. B represents a side chain having at least one amino group, and R 3a x represents an alkyl group or hydrogen atom having 1 to 3 carbon atoms. x and y represent the average degree of polymerization, and are selected so that the kinematic viscosity and amino equivalent of the compound at 25°C are within the above range. Note that R 1a , R 2a , R 3a These may be the same or different, and there may be multiple Rs. 2a They may be the same or different.
[0050] In the compound of general formula (a1), from the viewpoint of improving durability, x is preferably a number between 10 and 10,000, more preferably a number between 20 and 5,000, and even more preferably a number between 30 and 3,000. Y is preferably a number between 1 and 1,000, more preferably a number between 1 and 500, and even more preferably a number between 1 and 200. The weight-average molecular weight of the compound of general formula (a1) is preferably between 2,000 and 1,000,000, more preferably between 5,000 and 100,000, and even more preferably between 8,000 and 50,000.
[0051] In general formula (a1), the following can be considered as side chain B having an amino group. -C3H6-NH2 -C3H6-NH-C2H4-NH2 -C3H6-NH-[C2H4-NH] e -C2H4-NH2 -C3H6-NH(CH3) -C3H6-NH-C2H4-NH(CH3) -C3H6-NH-[C2H4-NH] f -C2H4-NH(CH3) -C3H6-N(CH3)2 -C3H6-N(CH3)-C2H4-N(CH3)2 -C3H6-N(CH3)-[C2H4-N(CH3)] g -C2H4-N(CH3)2 -C3H6-NH-cyclo-C5H 11 (Here, e, f, and g are numbers from 1 to 30.)
[0052] The amino-modified silicone used in the present invention can be produced, for example, by hydrolyzing an organoalkoxysilane represented by general formula (a2) with excess water to obtain a hydrolysate, and then heating the hydrolysate obtained from this hydrolysate with dimethylcyclopolysiloxane using a basic catalyst such as sodium hydroxide to 80-110°C to allow an equilibrium reaction to occur, and then neutralizing the basic catalyst with an acid when the reaction mixture reaches a desired viscosity (see Japanese Patent Publication No. 53-98499). H2N(CH2)2NH(CH2)3Si(CH3)(OCH3)2(a2)
[0053] Furthermore, the amino-modified silicone is preferably one or more selected from the group consisting of monoamino-modified silicone having one amino group in one of the side chains B and diamino-modified silicone having two amino groups in one of the side chains B, from the viewpoint of improving durability, and more preferably one or more selected from the group consisting of compounds in which the amino-group-containing side chain B is represented by -C3H6-NH2 [hereinafter referred to as component (a1-1)] and compounds in which the amino-group-containing side chain B is represented by -C3H6-NH-C2H4-NH2 [hereinafter referred to as component (a1-2)].
[0054] In this invention, the amino-modified silicones are, in terms of performance, TSF4703 (kinematic viscosity: 1000, amino equivalent: 1600) and TSF4708 (kinematic viscosity: 1000, amino equivalent: 2800) from Momentive Performance Materials, and SS-3551 (kinematic viscosity: 1000, amino equivalent: 1700), SF8457C (kinematic viscosity: 1200, amino equivalent: 1800), SF8417 (kinematic viscosity: 1200, amino equivalent: 1700), SF8452C (kinematic viscosity: 600, amino equivalent: 6400), BY16-209 (kinematic viscosity: 500, amino equivalent: 1800), and BY16-892 (kinematic viscosity: 1500, amino equivalent: 2800) from Dow Toray. (Mino equivalent: 2000), BY16-898 (kinematic viscosity: 2000, amino equivalent: 2900), FZ-3760 (kinematic viscosity: 220, amino equivalent: 1600), BY16-213 (kinematic viscosity: 55, amino equivalent: 2700), KF-8002 (kinematic viscosity: 1100, amino equivalent: 1700) manufactured by Shin-Etsu Chemical Co., Ltd., KF-80 Preferred are KF-8005 (kinematic viscosity: 800, amino equivalent: 1500), KF-8005 (kinematic viscosity: 1200, amino equivalent: 11000), KF-867 (kinematic viscosity: 1300, amino equivalent: 1700), KF-864 (kinematic viscosity: 1700, amino equivalent: 3800), and KF-859 (kinematic viscosity: 60, amino equivalent: 6000). In parentheses, kinematic viscosity is measured at 25°C (unit: mm). 2 The value is expressed as ( / s), and the unit of amino equivalent is g / mol.
[0055] (a1-1) BY16-213 (kinematic viscosity: 55, amino equivalent: 2700) and BY16-853U (kinematic viscosity: 14, amino equivalent: 450) are more preferred as component (a1-1).
[0056] (a1-2) Component SF8417 (kinematic viscosity: 1200, amino equivalent: 1700), BY16-209 (kinematic viscosity: 500, amino equivalent: 1800), FZ-3760 (kinematic viscosity: 220, amino equivalent: 1600), SF8452C (kinematic viscosity: 600, amino equivalent: 6400), KF-8002 (kinematic viscosity: 1100, amino equivalent: 1700), and SS-3551 (kinematic viscosity: 1000, amino equivalent: 1700) are more preferred.
[0057] The polymer compound may have substituents. Examples of substituents include alkoxy groups having 1 to 6 carbon atoms, such as methoxy, ethoxy, propoxy, isopropoxy, butoxy, isobutoxy, sec-butoxy, tert-butoxy, pentyloxy, isopentyloxy, and hexyloxy groups; methoxycarbonyl, ethoxycarbonyl, propoxycarbonyl, isopropoxycarbonyl, butoxycarbonyl, isobutoxycarbonyl, and sec-butoxycarbonyl groups. Examples include alkoxy-carbonyl groups with 1 to 6 carbon atoms, such as carbonyl, tert-butoxycarbonyl, pentyloxycarbonyl, and isopentyloxycarbonyl groups; halogen atoms such as fluorine, chlorine, bromine, and iodine atoms; acyl groups with 1 to 6 carbon atoms, such as acetyl and propionyl groups; aralkyl groups; aralkyloxy groups; alkylamino groups with 1 to 6 carbon atoms; and dialkylamino groups with 1 to 6 carbon atoms in the alkyl group.
[0058] (iii) Hydrocarbon compounds (component A-2) As for hydrocarbon compounds, hydrocarbon compounds having cationic groups are preferred. A hydrocarbon compound having cationic groups is one in which one or more hydrocarbon groups are bonded to one cationic group. From the viewpoint of improving durability, the total number of carbon atoms in the hydrocarbon compound having cationic groups is preferably 16 or more, more preferably 18 or more, and from the viewpoint of handling, preferably 40 or less, more preferably 30 or less, and even more preferably 26 or less.
[0059] Hydrocarbon compounds containing a cationic group are compounds in which the hydrocarbon group is directly bonded to a nitrogen atom or phosphorus atom via a covalent bond when the cationic group is a primary amine, secondary amine, tertiary amine, quaternary ammonium, phosphonium, etc. When the cationic group is an amidine, guanidine, etc., it is a compound in which the hydrocarbon group is covalently bonded to at least one of the nitrogen atoms or carbon atoms of the functional group. When the cationic group is an imidazolium, pyridinium, imidazoline, etc., it is a compound in which at least one hydrocarbon group is covalently bonded to any position in the ring structure. Hydrocarbon compounds having cationic groups are more preferably those that do not contain oxyalkylene groups.
[0060] (Hydrogen group) Examples of hydrocarbon groups in the hydrocarbon compounds include chain-type saturated hydrocarbon groups, chain-type unsaturated hydrocarbon groups, cyclic saturated hydrocarbon groups, and aromatic hydrocarbon groups. From the viewpoint of availability, the number of carbon atoms in the hydrocarbon group is preferably 1 or more, more preferably 2 or more, even more preferably 3 or more, even more preferably 12 or more, and even more preferably 16 or more. Similarly, from the same viewpoint, it is preferably 40 or less, more preferably 30 or less, and even more preferably 24 or less. Unless otherwise specified, the number of carbon atoms in a hydrocarbon group refers to the number of carbon atoms in a single hydrocarbon group.
[0061] Specific examples of chain-type saturated hydrocarbon groups include, for example, methyl group, ethyl group, propyl group, isopropyl group, butyl group, sec-butyl group, tert-butyl group, isobutyl group, pentyl group, tert-pentyl group, isopentyl group, hexyl group, isohexyl group, heptyl group, octyl group, 2-ethylhexyl group, nonyl group, decyl group, dodecyl group, tridecyl group, tetradecyl group, octadecyl group, docosyl group, octacosanyl group, and the like.
[0062] Specific examples of chain-type unsaturated hydrocarbon groups include, for example, ethenyl group, propenyl group, butenyl group, isobutenyl group, isoprenyl group, pentenyl group, hexenyl group, heptenyl group, octenyl group, nonenyl group, decenyl group, dodecenyl group, tridecenyl group, tetradecenyl group, and octadecenyl group.
[0063] Specific examples of cyclic saturated hydrocarbon groups include, for example, cyclopropyl group, cyclobutyl group, cyclopentyl group, cyclohexyl group, cycloheptyl group, cyclooctyl group, cyclononyl group, cyclodecyl group, cyclododecyl group, cyclotridecyl group, cyclotetradecyl group, and cyclooctadecyl group.
[0064] Aromatic hydrocarbon groups are selected from the group consisting of, for example, aryl groups and aralkyl groups. The aryl group and aralkyl group may be either substituted or unsubstituted aromatic rings.
[0065] Examples of aryl groups include phenyl, naphthyl, anthryl, phenanthryl, biphenyl, triphenyl, terphenyl groups, and groups in which these groups are substituted with substituents described later.
[0066] Examples of aralkyl groups include benzyl, phenethyl, phenylpropyl, phenylpentyl, phenylhexyl, phenylheptyl, and phenyloctyl groups, as well as groups in which the aromatic groups of these groups are further substituted with substituents.
[0067] The above hydrocarbon compounds may have some hydrogen atoms further substituted. Examples of substituents include fluorine atoms, chlorine atoms, bromine atoms, iodine atoms, hydroxyl groups, methoxy groups, ethoxy groups, carboxyl groups, aldehyde groups, ketone groups, and thiol groups.
[0068] The hydrocarbon compounds having the cationic group described above are preferably hydrocarbon compounds having an amino group, such as primary amines, secondary amines, tertiary amines, and quaternary ammonium compounds (hereinafter referred to as "hydrocarbon amines"). Specific examples of such hydrocarbon amines include hexadecylamine, stearylamine, oleylamine, dioctylamine, didecylamine, didodecylamine, trihexylamine, trioctylamine, tetrabutylammonium salt, tetrahexylammonium salt, dimethyldioctylammonium salt, dimethylddecylammonium salt, and trimethylhexadecylammonium salt.
[0069] (3) Miniaturization process By refining the cellulose at any stage of the method for producing hydrophobic modified cellulose fibers, micrometer-scale cellulose can be refined to a nanometer scale. Since reducing the average fiber diameter to nanometer size improves the strength during film formation, it is preferable to further perform the refinement process.
[0070] For the micronization process, known dispersers are preferably used. For example, disintegrators, beaters, low-pressure homogenizers, high-pressure homogenizers, grinders, cutter mills, ball mills, jet mills, short-screw extruders, twin-screw extruders, ultrasonic stirrers, household juicer mixers, etc., can be used. Furthermore, the solid content of the reactant fibers in the micronization process is preferably 50% by mass or less.
[0071] <Ingredient (B)> In this invention, component (B) is water. Component (B) serves as a solvent in the production of hydrophobic modified cellulose fibers and as one of the constituent components of the emulsified composition of this invention.
[0072] <Component (C)> In this invention, component (C) is a liquid organic compound at 25°C and 1 atm. Component (C) may also be a solvent used in the production of hydrophobic modified cellulose fibers. At 25°C and 1 atm, the solubility of a liquid organic compound in water is preferably 10g or less, and more preferably 1g or less, per 100g of water at 25°C. From the viewpoint of improving durability, the molecular weight of component (C) is preferably 100,000 or less, more preferably 50,000 or less, and even more preferably 10,000 or less, and from the same viewpoint, preferably 100 or more, and more preferably 200 or more.
[0073] Component (C) in the present invention specifically includes oils, organic solvents, polymerizable monomers, prepolymers, and the like. Component (C) in the present invention is preferably an oil, and from the viewpoint of the synovial properties of the film, examples of oils include one or more selected from the group consisting of alcohols, ester oils, hydrocarbon oils, silicone oils, ether oils, fats and oils, fluorinated inert liquids, and fatty acids. One or more selected from the group consisting of ester oils, silicone oils, ether oils, fats and oils, and fluorinated inert liquids are preferred, one or more selected from the group consisting of silicone oils, ester oils, and ether oils are more preferred, and silicone oil and / or ester oil are even more preferred.
[0074] Examples of ester oils include monoester oils, diester oils, and triester oils. Specific examples include aliphatic or aromatic monocarboxylic or dicarboxylic acid esters having 2 to 18 carbon atoms, such as isopropyl myristate, octyldodecyl myristate, myristyl myristate, 2-hexyldecyl myristate, isopropyl palmitate, glyceryl tri-2-ethylhexanoate, and glyceryl triisostearate.
[0075] Examples of silicone oils include dimethylpolysiloxane, methylpolysiloxane, methylphenylpolysiloxane, octamethylcyclotetrasiloxane, and decamethylcyclopentasiloxane. Examples of oils and fats include vegetable oils such as soybean oil, coconut oil, linseed oil, cottonseed oil, rapeseed oil, and castor oil, as well as animal oils.
[0076] From the viewpoint of the synovial properties of the membrane, the compound of component (C) preferably has an SP value of 10 or less, more preferably 9.5 or less, even more preferably 9.0 or less, and even more preferably 8.5 or less, and from the same viewpoint, preferably 6.0 or more, more preferably 6.5 or more.
[0077] In this specification, SP value refers to the solubility parameter calculated by the Fedors method (unit: (cal / cm³) 3 ) 1 / 2 This is shown in references such as "SP Value Basics, Applications, and Calculation Methods" (Information Organization Co., Ltd., 2005) and "Polymer Handbook Third Edition" (A Wiley-Interscience publication, 1989).
[0078] Examples of oils with an SP value of 10 or less used in this invention include oleic acid (SP value: 9.2), D-limonene (SP value: 9.4), PEG400 (SP value: 9.4), dimethyl succinate (SP value: 9.9), neopentyl glycol dicaprate (SP value: 8.9), hexyl laurate (SP value: 8.6), isopropyl laurate (SP value: 8.5), isopropyl myristate (SP value: 8.5), isopropyl palmitate (SP value: 8.5), isopropyl oleate (SP value: 8.6), hexadecane (SP value: 8.0), olive oil (SP value: 9.3), jojoba oil (SP value: 8.6), squalane (SP value: 7.9), liquid paraffin (SP value: 7.9), and fluorine. Inert liquids (e.g., Fluorinert FC-40 (manufactured by 3M, SP value: 6.1), Fluorinert FC-43 (manufactured by 3M, SP value: 6.1), Fluorinert FC-72 (manufactured by 3M, SP value: 6.1), Fluorinert FC-770 (manufactured by 3M, SP value: 6.1)), silicone oils (e.g., KF96-1cs (manufactured by Shin-Etsu Chemical Co., Ltd., SP value: 7) Examples include KF-96-10cs (manufactured by Shin-Etsu Chemical Co., Ltd., SP value: 7.3), KF-96-50cs (manufactured by Shin-Etsu Chemical Co., Ltd., SP value: 7.3), KF-96-100cs (manufactured by Shin-Etsu Chemical Co., Ltd., SP value: 7.3), KF-96-1000cs (manufactured by Shin-Etsu Chemical Co., Ltd., SP value: 7.3), KF-96H-10,000cs (manufactured by Shin-Etsu Chemical Co., Ltd., SP value: 7.3), etc.
[0079] <Ingredient (D)> Component (D) is a polymer compound that does not fall under the category of a compound for introducing the modifying group (modifying compound). Specifically, from the viewpoint of improving durability, it is preferable that component (D) is one or more compounds selected from the group consisting of components (X) and (Y) below. The emulsified composition may contain both components (X) and (Y). (X) A polymer compound having one or more groups selected from the group consisting of ester groups, amide groups, urethane groups, amino groups, ether groups, and carbonate groups in its main chain. (Y) A methacrylic or acrylic polymer compound having an ester group or amide group in its side chain.
[0080] The weight-average molecular weight of component (D) is preferably 1,000 or more from the viewpoint of improving the durability of the film, and preferably 500,000 or less from the same viewpoint.
[0081] [Component (X)] Examples of components (X) having an ester group in the main chain include condensates of dicarboxylic acids such as adipic acid, sebacic acid, dodecanediic acid, phthalic acid, isophthalic acid, terephthalic acid, succinic acid, and alkenyl succinic acid with diols such as ethylene glycol, propylene glycol, and butanediol, or condensates of compounds such as glycolic acid and lactic acid that have both a hydroxyl group and a carboxyl group in one molecule.
[0082] Examples of components (X) having an amide group in the main chain include condensates of dicarboxylic acids such as adipic acid, sebacic acid, dodecanediic acid, phthalic acid, isophthalic acid, terephthalic acid, succinic acid, and alkenyl succinic acid with diamines such as aliphatic diamines such as ethylenediamine, hexamethylenediamine, and propylenediamine.
[0083] Examples of components (X) having a urethane group in the main chain include polymers of diisocyanates such as triresin diisocyanate, diphenyl isocyanate, xylylene diisocyanate, and hexamethylene diisocyanate with diols such as ethylene glycol, propylene glycol, and butanediol.
[0084] Examples of components (X) having an amino group in the main chain include polymers of alkylimines such as ethyleneimine, propyleneimine, butyleneimine, dimethylethyleneimine, pentyleneimine, and hexyleneimine.
[0085] Examples of components (X) having an ether group in the main chain include polymers of alkylene oxides such as ethylene oxide, propylene oxide, and butylene oxide, and polymers of formaldehyde.
[0086] Examples of components (X) having a carbonate group in the main chain include condensates of polyols such as 2,2-bis(4-hydroxyphenyl)propane, 2,2-bis(4-hydroxyphenyl)butane, and 1,1-bis(4-hydroxyphenyl)cyclohexane with phosgene.
[0087] [Component (Y)] Examples of methacrylic or acrylic polymers having ester or amide groups in their side chains (hereinafter also simply referred to as (meth)acrylic polymers) include polyalkyl (meth)acrylates such as polymethyl (meth)acrylate, polyethyl (meth)acrylate, and polybutyl (meth)acrylate; copolymers with acrylics such as styrene acrylic and urethane acrylic; and poly(meth)acrylamides such as poly(meth)acrylamide, polyN-methyl (meth)acrylamide, polyN,N-dimethyl (meth)acrylamide, and polyN-phenyl (meth)acrylamide.
[0088] In the present invention, from the viewpoint of improving the durability of the film, (X) a polymer compound having a urethane group in the main chain and / or (Y) a methacrylic or acrylic polymer compound having an ester group or amide group in the side chain are preferred. Other styrene polymers may also be used.
[0089] Component (D) is preferably formulated in the form of an emulsion or dispersion. When formulating component (D), it is preferable to first prepare an emulsified mixture containing components (A) to (C), and then mix the emulsified mixture with component (D). The emulsified composition of the present invention can be produced by mixing component (D) in the form of an emulsion or dispersion into an emulsified mixture. By incorporating component (D), it is possible to improve the adhesion between the dried film and the target substrate. In particular, when applied to metal surfaces such as stainless steel, aluminum, and copper, plastic surfaces such as polyethylene, polypropylene, polycarbonate, and acrylic, or to dried coatings of acrylic, epoxy, silyl, and urethane paints, such as architectural paints, antifouling paints, anticorrosive paints, marine paints, automotive paints, industrial paints, snow protection paints, and household paints, the adhesion is significantly improved after drying. It is also possible to improve the viscosity of the emulsion composition by incorporating a polymer emulsion. By increasing the viscosity of the emulsion composition, dripping can be suppressed even when it is applied thickly to a vertical surface.
[0090] When component (D) is an emulsion, the average particle size of the emulsion is preferably 10 nm or more, more preferably 50 nm or more, preferably 1 μm or less, and more preferably 500 nm or less, from the viewpoint of durability, as described in the examples below. The emulsion of component (D) is preferably an o / w type emulsion.
[0091] From the viewpoint of durability, the emulsion of component (D) is preferably 10 parts by mass or more, more preferably 50 parts by mass or more, and even more preferably 100 parts by mass or more, based on net component (D) per 100 parts by mass of cellulose fibers without modified groups. On the other hand, from the viewpoint of the synovial properties of the film, it is preferably 5000 parts by mass or less, more preferably 3000 parts by mass or less, and even more preferably 2000 parts by mass or less.
[0092] <Ingredient (E)> The emulsifying composition of the present invention may contain a polyether-modified silicone compound of component (E). By incorporating such component (E) into the emulsifying composition, a film with excellent durability can be obtained. An example of component (E) is a compound having a methyl silicone chain as the main chain and side chains consisting of polyoxyethylene groups, and specifically, a compound represented by the following general formula can be mentioned.
[0093] [ka]
[0094] (In the formula, R 1 R is a methylene group, an ethylene group, or a trimethylene group. 2 is an alkyl group having 1 to 4 carbon atoms, where m is an integer from 0 to 50, n is an integer from 1 to 10, p is an integer from 1 to 50, and q is an integer from 0 to 50. -R 1 (C2H4O) p (C3H6O) q R 2 In the group shown, (C2H4O) p and (C3H6O) q (It can be random or blocky.)
[0095] From the viewpoint of film durability, the HLB value of the polyether-modified silicone compound is preferably within a specific range, specifically preferably 1 or higher, more preferably 5 or higher, even more preferably 10 or higher, preferably 18 or lower, and more preferably 16 or lower.
[0096] When using two or more polyether-modified silicones with different HLB values, the weighted average of these values should fall within the above range. The HLB value is an index representing the balance between hydrophilicity and lipophilicity, and in this invention, it refers to the value obtained by the following Griffin formula. HLB value = 20 × sum of molecular weights of hydrophilic bases / molecular weight
[0097] The kinematic viscosity of the polyether-modified silicone compound at 25°C is preferably within a specific range from the viewpoint of film durability, and specifically, preferably 1 mm². 2 / s or more, more preferably 5mm 2 The value is 1 / s or more, preferably 1000 mm 2 / s or less, more preferably 500mm 2 / s or less, more preferably 200 mm 2 It is less than or equal to / s.
[0098] Polyether-modified silicone compounds that can be preferably used as component (E) are commercially available, and examples of commercially available products include KF-615A, KF-640, KF-642, KF-643, KF-644, KF-351A, KF-354L, KF-355A, KF-6011, KF-6012, KF-6015, KF-6016, KF-6017, KF-6020, KF-6043, etc., manufactured by Shin-Etsu Chemical Co., Ltd., and from the viewpoint of film durability, KF-640, KF-642, KF-643, KF-351A, KF-354L, KF-355A, etc. can be preferably used. Commercially available products with structures that do not correspond to the above general formula (for example, KF-6028 and KF-6038 manufactured by Shin-Etsu Chemical Co., Ltd.) can also be used as component (E).
[0099] <Volatile organic solvent> It is also possible to incorporate volatile organic solvents into the emulsified composition to the extent that they do not impair the effects of the present invention. Incorporating volatile organic solvents has the effect of increasing the drying rate of the emulsified composition and improving its compatibility with the target substrate. Preferred types of organic solvents are those with high solubility in water, such as alcohols such as methanol, ethanol, 1-propanol, 2-propanol, 1-butanol, and 2-butanol; ketones such as acetone and methyl ethyl ketone; dimethyl sulfoxide, dimethylformamide, N-methylpyrrolidone, acetonitrile, tetrahydrofuran, and 1,4-dioxane. Among these, methanol, ethanol, 1-propanol, 2-propanol, and acetone are preferred from the viewpoint of increasing the drying rate of the emulsified composition, and 2-propanol, dimethyl sulfoxide, dimethylformamide, and N-methylpyrrolidone are preferred from the viewpoint of improving compatibility with the target substrate.
[0100] The amount of volatile organic solvent blended is preferably 5% by mass or more, more preferably 10% by mass or more, and even more preferably 20% by mass or more, based on 100% by mass of the emulsion composition, from the viewpoint of increasing the drying rate of the emulsion composition. From the viewpoint of emulsion stability, it is preferably 50% by mass or less, more preferably 40% by mass or less, and even more preferably 30% by mass or less.
[0101] <Other ingredients> In addition to the components mentioned above, the emulsifying composition of the present invention may contain, to the extent that it does not impair the effects of the present invention, thickeners, plasticizers, nucleating agents, fillers (inorganic fillers, organic fillers), hydrolysis inhibitors, flame retardants, antioxidants, hydrocarbon waxes and anionic surfactants as lubricants, ultraviolet absorbers, antistatic agents, antifogging agents, light stabilizers, pigments, antifungal agents, antibacterial agents, foaming agents, surfactants; starches, polysaccharides such as alginic acid; natural proteins such as gelatin, glue, and casein; inorganic compounds such as tannins, zeolites, ceramics, and metal powders; fragrances; flow regulators; leveling agents; conductive agents; ultraviolet dispersants; deodorants, etc. Similarly, other polymer materials and other compositions may be added to the extent that they do not impair the effects of the present invention.
[0102] <Properties of emulsified compositions> The emulsified composition of the present invention is a composition containing the above-mentioned components (A), (B), (C), and (D) as essential components, and is an emulsified composition. In the present invention, emulsification is achieved by applying mechanical force to a mixture of water and a liquid organic compound at 25°C and 1 atm, resulting in a state in which droplets of one liquid are finely dispersed in the other liquid. The emulsified composition of the present invention preferably comprises an emulsion or dispersion of component (D) blended with an emulsified mixture containing component (A), component (B), and component (C). The emulsifying composition and the emulsifying mixture of the present invention may be either an o / w type emulsion or a w / o type emulsion, but an o / w type emulsion is preferred.
[0103] In the emulsified mixture or emulsified composition, the content of component (A) is preferably 0.02% by mass or more, more preferably 0.05% by mass or more, and even more preferably 0.1% by mass or more, from the viewpoint of emulsifying power, while from the viewpoint of handling properties, it is preferably 15% by mass or less, more preferably 10% by mass or less, and even more preferably 5% by mass or less.
[0104] In the emulsified mixture or emulsified composition, the content of component (B) is preferably 10% by mass or more, more preferably 20% by mass or more, and even more preferably 30% by mass or more, from the viewpoint of maintaining the emulsified state, and preferably 98% by mass or less, from the viewpoint of effective content.
[0105] In the emulsified mixture or emulsified composition, the content of component (C) is preferably 0.1% by mass or more, more preferably 0.5% by mass or more, and even more preferably 1% by mass or more, from the viewpoint of maintaining the emulsified state, while from the viewpoint of solution viscosity and handling properties, it is preferably 70% by mass or less, more preferably 60% by mass or less, and even more preferably 50% by mass or less. In the emulsified composition, the content of component (D) is preferably 0.1% by mass or more, more preferably 0.5% by mass or more, and even more preferably 1% by mass or more, in terms of solid content, from the viewpoint of improving durability and bleed resistance, while from the viewpoint of synovial properties, it is preferably 40% by mass or less, more preferably 30% by mass or less, and even more preferably 20% by mass or less.
[0106] In the emulsion mixture or emulsion composition, the mass ratio (A / C) of component (A) to component (C) is preferably 0.0001 or higher, more preferably 0.001 or higher, even more preferably 0.004 or higher, even more preferably 0.01 or higher, and even more preferably 0.04 or higher from the viewpoint of improving durability, and preferably 20 or lower, more preferably 10 or lower, even more preferably 5 or lower, even more preferably 3 or lower, and even more preferably 2 or lower from the viewpoint of film formation. From these viewpoints, it is preferably 0.0001 to 20 or lower, more preferably 0.001 to 10 or lower, even more preferably 0.004 to 5 or lower, even more preferably 0.01 to 3 or even more preferably 0.04 to 2 or lower. In the emulsified composition, the mass ratio (D / C) of component (D) to component (C) is preferably 0.01 or higher, more preferably 0.05 or higher, and even more preferably 0.1 or higher, from the viewpoint of improving durability and bleed resistance, and preferably 20 or lower, more preferably 10 or lower, and even more preferably 5 or lower, from the viewpoint of synovial properties.
[0107] When component (E) is used, it may be added to the emulsified composition or to the emulsified mixture. From the viewpoint of improving durability, the content of component (E) in the emulsified mixture or emulsified composition is preferably 0.01% by mass or more, more preferably 0.05% by mass or more, and even more preferably 0.1% by mass or more. On the other hand, from the same viewpoint, it is preferably 5% by mass or less, more preferably 2% by mass or less, and even more preferably 1% by mass or less.
[0108] The viscosity of the emulsified mixture and emulsified composition is not particularly limited, but from the viewpoint of handling, the viscosity at 25°C is preferably 0.5 mPa·s or higher, more preferably 0.8 mPa·s or higher, and even more preferably 1 mPa·s or higher. Similarly, from the viewpoint of handling, it is preferably 30 Pa·s or lower, more preferably 20 Pa·s or lower, and even more preferably 10 Pa·s or lower. Here, viscosity was measured using a B-type viscometer with an appropriate rotor matched to the viscosity range of each sample, after stirring for 1 minute at 25°C and a rotation speed of 60 rpm.
[0109] The average particle size of emulsion droplets in emulsion mixtures and emulsion compositions, as measured by laser diffraction, is preferably 10 nm or more, more preferably 50 nm or more, and even more preferably 100 nm or more, from the viewpoint of improving durability. Similarly, it is preferably 2000 nm or less, more preferably 1000 nm or less, even more preferably 700 nm or less, and even more preferably 500 nm or less. It is preferably 10 nm to 2000 nm, more preferably 50 nm to 1000 nm, and even more preferably 100 nm to 500 nm.
[0110] 2. Method for producing an emulsified composition The method for producing the emulsified composition of the present invention comprises a step of mixing the aforementioned components (A), (B), (C), and (D), etc. Here, a liquid organic compound may be mixed with an aqueous dispersion of hydrophobic modified cellulose fibers at 25°C and 1 atm, or the dispersion of the organic compound with hydrophobic modified cellulose fibers may be mixed with water.
[0111] Alternatively, a method for producing the emulsified composition of the present invention may include a step of preparing an emulsified mixture by mixing components (A-1), (A-2), (B), and (C), and a step of preparing an emulsified composition by mixing an emulsion or dispersion of component (D) with the prepared emulsified mixture. This method is more preferable because the steps of obtaining hydrophobic modified cellulose fibers and obtaining the emulsified mixture can be achieved in a single step. There are no restrictions on the mixing order in this method. For example, components (A-1), (A-2), and (B) may be mixed first, followed by the mixing of component (C), or components (A-1), (A-2), and (C) may be mixed first, followed by the mixing of component (B). Preferably, the manufacturing method includes a step of mixing component (A-1) and component (A-2) in the presence of component (B) and component (C).
[0112] When component (E) is included, component (E) may be mixed together with these raw materials, or component (E) may be added to an emulsified composition obtained using these raw materials.
[0113] Emulsification occurs when each component is mixed, yielding an emulsified composition. For this mixing process, a magnetic stirrer, mechanical stirrer, homomixer, vacuum emulsifier, low-pressure homogenizer, high-pressure homogenizer, grinder, cutter mill, ball mill, jet mill, mascolloider, short-screw extruder, twin-screw extruder, ultrasonic stirrer, household juicer mixer, etc. The mixing process may also be carried out by combining two or more operations.
[0114] The temperature and time for mixing each component are not particularly limited, but for example, the temperature range is preferably 5 to 50°C, and the time range is preferably 1 minute to 3 hours.
[0115] The preferred range for the content of each component during mixing is the same as the preferred range for the content of each component in the emulsified composition of the present invention described above.
[0116] When using components (A-1) and (A-2) instead of component (A), it is preferable that the upper and lower limits of the preferred content of component (A) be set as the upper and lower limits of the total amount of both components. Here, the mixing ratio of component (A-1) and component (A-2) is such that, from the viewpoint of improving durability with respect to the anionic group of component (A-1), component (A-2) is preferably 0.1 equivalents or more, more preferably 0.3 equivalents or more, and even more preferably 0.5 equivalents or more, while from the viewpoint of the stability of the emulsified composition, it is preferably 3 equivalents or less, more preferably 2.5 equivalents or less, and even more preferably 2 equivalents or less.
[0117] Alternatively, the ratio of the total number of moles of [the number of amino groups of the amino-modified silicone] and [the number of cationic groups of the hydrocarbon compound having cationic groups] in component (A-2) to the number of moles of anionic groups in component (A-1) ([total number of moles of component (A-2)] / [number of moles of anionic groups in component (A-1)]) is preferably 0.1 or higher, more preferably 0.3 or higher, and even more preferably 0.5 or higher from the viewpoint of improving durability, and preferably 3 or lower, more preferably 2.5 or lower, and even more preferably 2 or lower from the viewpoint of film formation. The number of moles of anionic groups in anionic-modified cellulose fibers can be obtained by multiplying the amount of anionic-modified cellulose fibers used (g) by the anionic group content (mmol / g), and the number of moles of amino groups in amino-modified silicone can be obtained by dividing the amount of amino-modified silicone used (g) by the amino equivalent (g / mol).
[0118] Furthermore, the mass ratio (A-2 / C) of component (A-2) to component (C) is preferably 0.0001 or higher, more preferably 0.001 or higher, even more preferably 0.004 or higher, even more preferably 0.01 or higher, and even more preferably 0.04 or higher from the viewpoint of film formation, and preferably 20 or lower, more preferably 10 or lower, even more preferably 5 or lower, even more preferably 3 or lower, and even more preferably 2 or lower. From these viewpoints, it is preferably 0.0001 to 20 or lower, more preferably 0.001 to 10 or lower, even more preferably 0.004 to 5 or lower, even more preferably 0.01 to 3 or even more preferably 0.04 to 2 or lower.
[0119] 3. Method for producing a film obtained by drying the emulsified composition The present invention provides a method for producing a film obtained by drying an emulsified composition, which includes the step of applying and drying the emulsified composition of the present invention or an emulsified composition obtained by the method for producing the emulsified composition of the present invention.
[0120] Specifically, the emulsified composition is applied to a substrate, such as a hard surface made of glass, resin, metal, ceramics, concrete, wood, stone, etc., or to fibers, skin, hair, paper, etc. Preferably, it is used in fields such as coating various surfaces placed outdoors, such as road equipment such as signs, markers, and traffic lights, the bodies and glass surfaces and headlights of automobiles, airplanes, trains, and ships, the roofs, exterior walls, and windows of buildings, and solar panels.
[0121] The thickness of the emulsion composition coating film on the substrate is preferably 10 μm or more, more preferably 20 μm or more, and even more preferably 30 μm or more, from the viewpoint of film durability, and preferably 2000 μm or less, and more preferably 1500 μm or less, from the viewpoint of coatability.
[0122] Next, the emulsion composition coating can be dried to obtain a coating film. The drying conditions can be under reduced pressure or atmospheric pressure, and the temperature range is preferably between 15°C and 75°C. The drying time is preferably between 10 minutes and 24 hours.
[0123] 4. Drying film of the emulsified composition The thickness of the film of the present invention is not particularly limited. From the viewpoint of film durability, it is preferably 1 μm or more, more preferably 3 μm or more, and even more preferably 5 μm or more. From the viewpoint of economic efficiency, it is preferably 2000 μm or less, more preferably 1200 μm or less, even more preferably 500 μm or less, and even more preferably 200 μm or less. The film thickness can be set to a desired value by adjusting the film thickness using an applicator or other coating tool, or by adjusting the amount of coating and the ratio of the medium when using a spray or the like. The film thickness can be measured according to the method described in the examples below.
[0124] The amount of hydrophobic modified cellulose fibers in the membrane of the present invention is preferably 1% by mass or more, more preferably 10% by mass or more, from the viewpoint of membrane durability, and preferably 65% by mass or less, more preferably 36% by mass or less, and even more preferably 16% by mass or less, from the viewpoint of the synovial properties of the membrane. The amount of hydrophobic modified cellulose fibers in the membrane can be determined by considering the amount of volatile components (e.g., water and some oils) in the emulsified composition.
[0125] The film of the present invention, when prepared by the method described in the examples, preferably has a surface hardness of 1 N / mm² from the viewpoint of durability. 2 More preferably 2 N / mm 2 That's all. The film of the present invention, when prepared by the method described in the examples, preferably has a bleed rate of component (C) of 10% or less, more preferably 7% or less, from the viewpoint of durability.
[0126] The film of the present invention may contain optional components that do not impair the effects of the present invention. [Examples]
[0127] The present invention will be specifically described below with reference to examples. Note that the following examples are merely illustrative of the present invention and do not imply any limitation.
[0128] [Average fiber diameter, average fiber length, and average aspect ratio of anionically modified cellulose fibers and hydrophobically modified cellulose fibers] Water is added to the cellulose fibers to be measured to prepare a dispersion with a water content of 0.0001% by mass. This dispersion is dropped onto mica and dried to create an observation sample. An atomic force microscope (AFM) (Digital Instruments, Nanoscope II Tappingmode AFM; probe used: Nanosensors, Point Probe (NCH)) is used to measure the fiber height (difference in height between areas with and without fibers) of the cellulose fibers in the observation sample. At that time, more than 100 cellulose fibers are extracted from the microscope image in which the cellulose fibers can be confirmed, and the average fiber diameter is calculated from their fiber heights. The average fiber length is calculated from the distance in the direction of the fibers. The average aspect ratio is calculated from the average fiber length / average fiber diameter. The height analyzed in the AFM image can be considered as the fiber diameter.
[0129] [Average fiber diameter and average fiber length of the cellulose fibers used as raw material] A dispersion containing 0.01% by mass of deionized water is prepared by adding deionized water to the cellulose fibers to be measured. This dispersion is measured using a wet dispersion type image analysis particle size distribution analyzer (Jusco International, IF-3200) under the following conditions: front lens: 2x, telecentric zoom lens: 1x, image resolution: 0.835 μm / pixel, syringe inner diameter: 6515 μm, spacer thickness: 500 μm, image recognition mode: ghost, threshold: 8, analysis sample volume: 1 mL, sampling: 15%. More than 100 cellulose fibers are measured, and their average ISO fiber diameter is used as the average fiber diameter, and their average ISO fiber length is used as the average fiber length.
[0130] [Anionic group content of anionic-modified cellulose fibers and hydrophobic-modified cellulose fibers] Place 0.5 g of the cellulose fiber to be measured (dry mass) into a 100 mL beaker, add deionized water or a methanol / water = 1 / 2 mixture to make a total volume of 55 mL, and add 5 mL of 0.01 M sodium chloride aqueous solution to prepare a dispersion. Stir the dispersion until the cellulose fiber to be measured is sufficiently dispersed. Add 0.1 M hydrochloric acid to this dispersion to adjust the pH to 2.5-3, and using an automatic titrator (Toa DKK Co., Ltd., AUT-701), add 0.05 M sodium hydroxide aqueous solution dropwise to the dispersion with a waiting time of 60 seconds, and measure the conductivity and pH values every minute. Continue the measurement until the pH reaches approximately 11 to obtain a conductivity curve. From this conductivity curve, determine the amount of sodium hydroxide titration, and calculate the anionic group content of the cellulose fiber to be measured using the following formula. Anionic group content (mmol / g) = [Sodium hydroxide titration volume × Sodium hydroxide aqueous solution concentration (0.05M)] / [Mass of cellulose fiber to be measured (0.5g)]
[0131] [Aldehyde group content of oxidized cellulose fibers] The carboxyl group content of the oxidized cellulose fiber to be measured is determined by the method for measuring the anionic group content described above. Separately, 100 g of an aqueous dispersion of the oxidized cellulose fibers to be measured (solid content 1.0% by mass), 100 g of acetate buffer (pH 4.8), 0.33 g of 2-methyl-2-butene, and 0.45 g of sodium chlorite are added to a beaker and stirred at 25°C for 16 hours to oxidize the aldehyde groups remaining in the oxidized cellulose fibers. After the reaction is complete, the fibers are washed with deionized water to obtain cellulose fibers from which the aldehyde groups have been oxidized. The reaction solution is freeze-dried, and the carboxyl group content of the resulting dried product is measured using the method for measuring the anionic group content described above to calculate the "carboxyl group content of the oxidized cellulose fibers." Subsequently, the aldehyde group content of the oxidized cellulose fibers to be measured is calculated using Equation 1.
[0132] Aldehyde group content (mmol / g) = (Carboxyle group content of oxidized cellulose fiber) - (Carboxyle group content of oxidized cellulose fiber to be measured) ... Equation 1
[0133] [Solid content in the dispersion] Measurements are performed using a halogen moisture meter (Shimadzu Corporation, MOC-120H). Measurements are taken every 30 seconds at a constant temperature of 150°C for 1 g of sample, and the value at which the mass loss is 0.1% or less of the initial amount of sample is defined as the solid content.
[0134] [Confirmation of the crystal structure in hydrophobic modified cellulose fibers] The crystal structure of hydrophobic modified cellulose fibers is confirmed by measuring it using an X-ray diffractometer (MiniFlexII, Rigaku Corporation) under the following conditions. The measurement conditions are as follows: X-ray source: Cu / Kα-radiation, tube voltage: 30kV, tube current: 15mA, measurement range: diffraction angle 2θ = 5~45°, X-ray scan speed: 10° / min. The sample area for measurement is 320mm². 2 The material is prepared by compressing it into pellets with a thickness of 1 mm. Furthermore, the degree of crystallinity of the cellulose type I crystal structure is calculated from the obtained X-ray diffraction intensity based on the following formula A.
[0135] <Formula A> Cellulose type I crystallinity (%) = [(I 22.6 -I 18.5 ) / I 22.6 ]×100 [In the formula, I 22.6 This is the diffraction intensity of the lattice plane (002 plane) (diffraction angle 2θ = 22.6°) in X-ray diffraction, I 18.5 This shows the diffraction intensity of the amorphous region (diffraction angle 2θ = 18.5°).
[0136] On the other hand, if the degree of crystallinity obtained by formula A above is 35% or less, from the viewpoint of improving calculation accuracy, it is preferable to calculate it based on the following formula B, in accordance with the description on pages 199-200 of the "Manual for Experiments in Wood Science" (edited by the Japan Wood Research Society; published April 2000). Therefore, if the degree of crystallinity obtained by formula A above is 35% or less, the value calculated based on formula B below can be used as the degree of crystallinity.
[0137] <Formula B> Cellulose type I crystallinity (%) = [A c / ( A c +A a )] × 100 [In the ceremony, A c This is the sum of the peak areas of the lattice planes (002 plane) (diffraction angle 2θ = 22.6°), (011 plane) (diffraction angle 2θ = 15.1°), and (0-11 plane) (diffraction angle 2θ = 16.2°) in X-ray diffraction, A a The peak area of the amorphous region (diffraction angle 2θ = 18.5°) is shown, and each peak area is obtained by fitting the obtained X-ray diffraction chart with a Gaussian function.
[0138] [Cellulose fiber (equivalent amount) in hydrophobic modified cellulose fibers] The cellulose fiber (equivalent amount) in hydrophobic modified cellulose fibers is measured by the following method. (1) When only one type of "modifying compound" is added The amount of cellulose fiber (converted amount) is calculated using the following formula C. <Formula C> Cellulose fiber content (converted amount) (g) = Mass of hydrophobic modified cellulose fiber (g) / [1 + Molecular weight of modifying compound (g / mol) × Amount of modifying group bonded (mmol / g) × 0.001] (2) When there are two or more types of "modifying compounds" added The amount of cellulose fiber (converted amount) is calculated by considering the molar ratio of each compound (i.e., the molar ratio when the total molar amount of the added compounds is set to 1).
[0139] [Measurement of viscosity of emulsified compositions] Using a Type B viscometer (Toki Sangyo TVB-10) with rotor No. 1, the viscosity was measured at 25°C, a rotation speed of 60 RPM, and after 1 minute.
[0140] [Observation of emulsified compositions using Cryo-SEM] Observation of the emulsified composition using Cryo-SEM is performed using a Scios DualBeam field emission scanning electron microscope manufactured by FEI. Observation is performed while gradually sublimating the water from the frozen emulsified composition. Observation is performed at an acceleration voltage of 2kV and a magnification of 25,000x.
[0141] [Measuring the particle size of emulsified droplets using laser diffraction] The particle size of emulsion droplets is measured using laser diffraction with a LA-960 laser meter manufactured by Horiba, Ltd. Measurement conditions: Add water to the measurement cell and measure the volume particle size distribution and the volume median particle size (D) at a concentration that allows the absorbance to be within the appropriate range. 50 The following conditions are met: relative refractive index 1.20, temperature 25°C, circulation pump ON, circulation speed 5, and stirring speed 5.
[0142] [Preparation of anionically modified cellulose fibers] Preparation Example 1 Bleached coniferous kraft pulp (Hinton, manufactured by West Fraser) was used as the raw material for the natural cellulose fiber. A commercially available product (Free radical, 98% by mass, manufactured by Aldrich) was used as the TEMPO. Commercially available products (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd.) were used for sodium hypochlorite, sodium bromide, and sodium hydroxide.
[0143] First, 10 g of bleached kraft pulp fiber and 990 g of deionized water were weighed into a 2 L PP beaker equipped with a mechanical stirrer and stirring blades. After stirring at 25°C and 100 rpm for 30 minutes, 0.13 g of TEMPO, 1.3 g of sodium bromide, and 35.5 g of 10.5% by mass sodium hypochlorite aqueous solution were added to 10 g of pulp fiber in that order. Using an automatic titrator (Toa DKK Co., Ltd., AUT-701), pH stat titration was performed, and 0.5 M sodium hydroxide aqueous solution was added dropwise to maintain the pH at 10.5. The reaction was carried out at 25°C for 120 minutes at a stirring speed of 100 rpm, after which the addition of sodium hydroxide aqueous solution was stopped, and a suspension of anionically modified cellulose fiber was obtained.
[0144] The suspension of the obtained anionically modified cellulose fibers was adjusted to pH=2 by adding 0.01 M hydrochloric acid. The filtrate was then thoroughly washed with deionized water until its conductivity, measured using a compact electrical conductivity meter (Horiba, Ltd., LAQUAtwin EC-33B), was 200 μs / cm or less. The fibers were then dehydrated to obtain anionically modified cellulose fibers. The carboxyl group content of these anionically modified cellulose fibers was 1.50 mmol / g, and the aldehyde group content was 0.23 mmol / g.
[0145] Preparation Example 2 (Production of finely textured anion-modified cellulose fibers) In Preparation Example 1, 100 g of a suspension (solid content 2.0% by mass) was prepared by adding deionized water to the anionically modified cellulose fibers finally obtained. A 0.5 M sodium hydroxide aqueous solution was added to adjust the pH to 8, and then deionized water was added to bring the total volume to 200 g. This suspension was subjected to three micronization treatments at 150 MPa using a high-pressure homogenizer (Yoshida Machinery Co., Ltd., NanoVeta L-ES) to obtain a dispersion of micronized anionically modified cellulose fibers (solid content 1.0% by mass). The counterions of the carboxyl groups in these micronized anionically modified cellulose fibers were sodium ions. These micronized anionically modified cellulose fibers are abbreviated as "TCNF (Na type)".
[0146] Preparation Example 3 (Production of finely textured anionic modified cellulose fibers with reduced aldehyde groups) 182 g of the finely pulverized anionic modified cellulose fiber dispersion (solid content 1.0% by mass) obtained in Preparation Example 2 was weighed out, and deionized water was added to make a total of 400 g. 1.2 mL of 0.1 M sodium hydroxide aqueous solution and 120 mg of sodium borohydride were added, and the mixture was stirred at 25°C for 4 hours. Next, 9 mL of 1 M hydrochloric acid was added to carry out protonation. After the reaction was complete, the mixture was filtered, and the resulting cake was washed six times with deionized water to remove the salt and hydrochloric acid, obtaining a finely pulverized anionic modified cellulose fiber dispersion (solid content 0.9% by mass) in which the aldehyde groups had been reduced. The carboxyl group content of the obtained cellulose fibers was 1.50 mmol / g, and the aldehyde group content was 0.02 mmol / g. The carboxyl groups in these finely pulverized anionic modified cellulose fibers are in the free acid form (COOH), and are abbreviated as "TCNF (H type)". The crystallinity of these finely textured anion-modified cellulose fibers was 30%, the average fiber diameter was 3.3 nm, and the average fiber length was 600 nm.
[0147] Preparation Example 4 (Preparation of hydrophobic modified cellulose fibers and emulsified mixture) In a beaker, 66.7 g of the finely milled anionic modified cellulose fiber dispersion obtained in Preparation Example 3 (solid content 0.9% by mass), 6.0 g of silicone oil 1, and 1.91 g of amino-modified silicone 1 as a modifying compound (corresponding to 1.25 equivalents relative to the carboxyl groups of the anionic modified cellulose fibers) were mixed, and deionized water was added to make a total of 100 g. This dispersion was stirred with a mechanical stirrer at room temperature for 5 minutes, and then subjected to 10 passes at 150 MPa using a high-pressure homogenizer (Yoshida Machinery Co., Ltd., NanoVeta L-ES) to obtain an emulsion mixture containing hydrophobic modified cellulose fibers in which amino-modified silicone was ionically bonded to the anionic modified cellulose fibers. The obtained mixture was a turbid liquid, and since oil droplets were observed dispersed in water using an optical microscope, it was determined to be an emulsion system. The average emulsion particle size measured by laser diffraction was 300 nm. The viscosity of the mixture at 25°C was 10 mPa·s.
[0148] Preparation Example 5 (Preparation of an emulsified mixture containing polyether-modified silicone) 100 g of the emulsified composition obtained in Preparation Example 4 was weighed into a beaker, 0.2 g of polyether-modified silicone was added thereto, and the mixture was stirred at 25°C for 30 minutes to obtain an emulsified mixture.
[0149] Preparation Example 6 An emulsion mixture was prepared in the same manner as in Preparation Example 4, except that the amount of amino-modified silicone 1 was changed to 2.67 g (corresponding to 1.75 equivalents relative to the carboxyl groups of the anionic-modified cellulose fibers). Then, 100 g of the obtained emulsion mixture was weighed out, 0.2 g of polyether-modified silicone 1 was added thereto, and the mixture was stirred at 25°C for 30 minutes to obtain an emulsion mixture.
[0150] Example 1 To 100.2 g of the emulsion mixture obtained in Preparation Example 5, 13.3 g of acrylic / microstyrene 1 emulsion (solid content 45.2%) was added and stirred at 25°C for 30 minutes to obtain an emulsion composition containing a polymer emulsion.
[0151] Examples 2-14 Similar to Example 1, polymer compounds in the form of emulsions and dispersions were blended in the proportions shown in Table 1, and the mixture was stirred at 25°C for 30 minutes to obtain an emulsified composition.
[0152] Example 15 Preparation Example 6: 100.2 g of the obtained emulsion mixture was mixed with 20.3 g of urethane 2 dispersion (solid content 29.5%) and stirred at 25°C for 30 minutes to obtain an emulsion composition containing polymer dispersion.
[0153] Example 16 100 g of the emulsion mixture obtained in Preparation Example 4 was mixed with 20.3 g of urethane 2 dispersion (solid content 29.5%) and stirred at 25°C for 30 minutes to obtain an emulsion composition containing polymer dispersion.
[0154] Example 17 An emulsion mixture was prepared in the same manner as in Preparation Example 4, except that isopropyl palmitate was used instead of silicone oil 1. To 100 g of the obtained emulsion mixture, 0.2 g of polyether-modified silicone 1 was added and stirred, then 20.3 g of urethane 2 dispersion (solid content 29.5%) was added and stirred at 25°C for 30 minutes to obtain an emulsion composition containing polymer dispersion.
[0155] Example 18 An emulsion mixture was prepared in the same manner as in Preparation Example 4, except that 0.30 g of oleylamine (corresponding to 1.25 equivalents relative to the carboxyl groups of the anionically modified cellulose fibers) was added instead of amino-modified silicone 1. 0.2 g of polyether-modified silicone 1 was added to 100 g of the resulting emulsion mixture and stirred, then 20.3 g of urethane 2 dispersion (solid content 29.5%) was added and stirred at 25°C for 30 minutes to obtain an emulsion composition containing polymer dispersion.
[0156] Comparative Example 1 A surface with a textured structure coated with lubricant was fabricated. Specifically, a water-repellent sheet with a textured structure (Toyal Ultra Lotus®, manufactured by Toyo Aluminum Co., Ltd.) was attached to a glass substrate (Micro Slide Glass S2112, manufactured by MATSUNAMI Co., Ltd.) using cellophane tape. The water-repellent sheet was 15.6 cm in diameter. 2 0.062 g of silicone oil 1, used as a lubricant, was applied to the surface to create a lubricant coating with a thickness of 40 μm.
[0157] Comparative Example 2 The emulsified mixture obtained in Preparation Example 4 was used as is.
[0158] Details of the representative components used in the examples are summarized below. [Modification compound] Amino-modified silicone 1: Manufactured by Dow Toray Corporation, DOWSIL TM SS-3551, kinematic viscosity: 1,000, amino equivalent: 1,700 Oleylamine: Manufactured by Fujifilm Wako Pure Chemical Industries, Ltd. [Component (C)] Silicone oil 1: Shin-Etsu Chemical Co., Ltd., KF-96-100cs, SP value: 7.3 Isopropyl palmitate: Manufactured by Fujifilm Wako Pure Chemical Industries, SP value: 8.5 [Component (D)] Acrylic / Microstyrene 1: Manufactured by Daicel Ornex, VIACRYL VSC 6286w / 45WA (Solid content 45.2%) Acrylic / Microstyrene 1: Manufactured by Daicel Ornex, VIACRYL SC 6828w / 45WA (Solid content 44.6%) Styrene-acrylic 1: Daicel Ornex Co., Ltd., VISCOPOL 6191 (solids content 48.0%) Styrene-acrylic 2: DSM-manufactured, NeoCryl XK-188 (solids content 44.5%) Acrylic 1: DSM-manufactured, NeoCryl A-1127 (solids content 45.2%) Urethane Acrylic 1: Daicel Ornex Co., Ltd., DAOTAN TW 6460w / 35WA (Solid content 35.0%) Urethane Acrylic 2: Daicel Ornex Co., Ltd., DAOTAN TW 6464 / 36WA (Solid content 36.0%) Urethane 1: Daicel Ornex Co., Ltd., DAOTAN TW 6493 / 35WA (solids content 36.0%) Urethane 2: Daicel Ornex Co., Ltd., DAOTAN TW 6450 / 30WA (Solid content 29.5%) [Component (E)] Polyether-modified silicone 1: Shin-Etsu Chemical Co., Ltd., KF-642, HLB: 14
[0159] The composition of each component is shown in Table 1, and the evaluation results are shown in Table 2. The amounts of each component in Table 1 are in mass percent. Note that because the amounts of each component have been rounded, the sum of each component may not equal 100 mass percent.
[0160] [Table 1-1]
[0161] [Table 1-2]
[0162] [Preparation of a dried film] The emulsified compositions prepared in Examples 1-18 and Comparative Examples 1 and 2 were each applied to separate glass substrates (MATSUNAMI Micro Slide Glass S2112) and spread over the entire surface of the glass substrate. Then, the substrates were dried at 1 atmosphere, 25°C, and approximately 40% RH for 24 hours to form films. The thickness of each film was measured using the method described below, and all were found to be 40 μm.
[0163] [Measuring film thickness] The thickness of the film after drying was measured using a laser microscope (Keyence VK-9710) under the following conditions: objective lens: 10x, light intensity: 3%, brightness: 1548, Z pitch: 0.5 μm. A portion of the film was scraped off with a metal spatula to expose the glass substrate. The sample was then measured, and the height of the glass substrate and the height of the film-covered portion were measured using the built-in image processing software. The film thickness was determined by taking the difference between these two values.
[0164] [Slip angle measurement test] The dried films of Examples 1-18 and Comparative Examples 1 and 2, prepared as described above, were placed horizontally. A 20 μL drop of water (23°C) was dropped onto each film using a fully automatic contact angle meter (FAMAS, manufactured by Kyowa Interface Science Co., Ltd.) at 23°C, and allowed to stand for 1 second. Next, the film surface was tilted to 85° at a speed of 1° / s, and the angle at which the droplet began to slide was measured. The measurement results are shown in Table 2 below. However, if the droplet did not slide off even when tilted to 85°, the water droplet sliding angle was noted as "85 or greater". A smaller water droplet sliding angle indicates higher synovial properties of the film. This sliding angle measurement test was performed before and after the dust resistance test described below.
[0165] [Surface hardness measurement of films] Surface hardness (Martens hardness) was measured for each film using a hardness tester DUH-211 (manufactured by Shimadzu Science Corporation) under the following conditions. Test force: 0.1 mN Load holding time: 5(s) Unloading holding time: 5(s)
[0166] [Measurement of bleed amount of component (C)] A porous PP film (GATSBY oil-absorbing film, manufactured by Mandom Corporation) was pressed over the entire surface of each membrane, and the absorbed component (C) was quantified from the weight change of the porous PP film to determine the amount of bleed. Then, the following formula was used: <d>The bleed rate of component (C) was measured using this method. formula <d> (Weight of component (C) absorbed by the porous PP film) / (Weight of component (C) in the dry film) × 100 The weight of component (C) in the dried film was calculated from the total weight of the dried film based on the composition ratios listed in Table 1.
[0167] [Sand and dust resistance test] 1. Determination of the amount of sand and dust adhering to the surface. As dust, eight types of JIS Z 8901 Test Powder 1 (Kanto loam calcined product) were sprinkled over each film using a sieve with a mesh size of 160 μm, ensuring that the entire surface was covered. Then, each film was inverted to remove excess dust, and the amount of dust adhering to the film was quantified by the change in weight. 2. Evaluation of cleanability After sprinkling sand and dust onto the film, it was washed with a 3 L / min stream of tap water for 10 seconds. The film surface was then observed under an optical microscope, and the cleaning performance was evaluated by determining the percentage of the surface area where sand and dust adhered. The evaluation criteria are as follows; a higher value indicates better cleaning performance.
[0168] 5. After cleaning, the area of sand and dust adhering to the film in the observation field is less than 10% of the total surface area. 4. After cleaning, the area of sand and dust adhering to the film in the observation field is between 10% and 20%. 3. After cleaning, the area of sand and dust adhering to the film in the observation field is between 20% and 50%. 2: After cleaning, the area of sand and dust adhering to the film in the observation field is between 50% and 80%. 1: After cleaning, the area of dust and sand adhering to the film in the observation field exceeds 80%.
[0169] Table 2 shows the composition and evaluation results of each component in the film. The numerical values for each component in Table 2 are relative values when the mass of component (C), which is silicone oil 1 or isopropyl palmitate, is set to 100.
[0170] [Table 2-1]
[0171] [Table 2-2]
[0172] Tables 1 and 2 show that the film formed using the emulsifying composition of the present invention achieves both high hardness of the film surface and a low bleed rate of component (C), significantly suppressing the adhesion of sand and dust, and also exhibiting excellent washability. Examples 1-8 and 12 show that this effect is achieved by including a wide variety of polymer compounds of component (D). Examples 9-14 show that by incorporating a specific amount of polymer compound, it is possible to achieve both high synovial properties and excellent durability of the film. Furthermore, Examples 12 and 15 show that increasing the equivalent amount of the modifying compound further reduces the bleed rate of component (C), thereby further suppressing the adhesion of sand and dust. This clearly demonstrates that high synovial properties can be maintained even after sand and dust have fallen on the film. On the other hand, in Comparative Example 1 and Comparative Example 2, which did not contain the polymer compound of component (D), a large amount of sand and dust adhered, and the sand and dust cleaning performance was poor.
[0173] Example 19 2-propanol was added to the emulsified composition of Example 4 in a proportion of 20% by mass relative to the mass of water to obtain the emulsified composition of Example 19.
[0174] Example 20 2-propanol was added to the emulsified composition of Example 5 in a proportion of 20% by mass relative to the mass of water to obtain the emulsified composition of Example 20.
[0175] Comparative Example 3 2-propanol was added to the emulsified composition of Comparative Example 2 in a proportion of 20% by mass relative to the mass of water, to obtain the emulsified composition of Comparative Example 3.
[0176] [Adhesion evaluation] An acrylic resin-based coating (SEAFLO NEO CF Z, manufactured by Chugoku Marine Paints Co., Ltd.) was applied to a SUS329J4L substrate (100mm x 300mm x 3mm thick) using an applicator (manufactured by Tester Sangyo Co., Ltd.) to a thickness of 200 μm. The coating was dried at room temperature for 12 hours to evaporate the solvent and obtain a coating film. The film thickness was approximately 100 μm. Next, the emulsion compositions of Example 19, Example 20, and Comparative Example 3 were spread over the entire surface of the dried acrylic resin-based coating, and dried at room temperature for 24 hours to evaporate the 2-propanol solvent and obtain films of each emulsion composition. The film thickness of each was 40 μm.
[0177] The adhesion between the acrylic resin coating film and the films of Example 19, Example 20, and Comparative Example 3 was evaluated as follows. First, the surface component (C) was thoroughly absorbed with a PP porous film (GATSBY oil-absorbing film, manufactured by Mandom Corporation). Then, cuts were made in the film using a cutter (OLFA Corporation, 142BY) to create 25 squares, each measuring 2 mm x 2 mm. Tape (Lintec Corporation, PET50(A)MF 8LK2) was applied to these squares, and the tape was rubbed firmly with a finger so that the film could be seen through it. Within 5 minutes of application, the tape was peeled off at a 60° angle within 1 second. The number of remaining fragments of the emulsion composition film on the acrylic resin coating film was measured. A larger number of remaining fragments indicates stronger adhesion between the acrylic resin coating film and the emulsion composition film. The results are shown in Table 3.
[0178] [Table 3]
[0179] The following was found from Table 3: The emulsion compositions of Examples 19 and 20 remained completely intact on the acrylic resin-based paint after tape removal, indicating high adhesion. On the other hand, Comparative Example 3, which did not contain component (D), showed inferior adhesion. [Industrial applicability]
[0180] The emulsifying composition of the present invention can form a synovial film with excellent resistance to external stresses, such as resistance to sand and dust (sand and dust resistance), and can therefore be used in fields such as coatings for various surfaces placed outdoors, such as road equipment like signs, markers, and traffic lights, as well as the bodies and glass surfaces of automobiles, airplanes, trains, and ships, as well as headlights, roofs, exterior walls, and windows of buildings, and solar panels.< / d> < / d>
Claims
1. An emulsified composition containing the following components (A) to (D). (A) Hydrophobic modified cellulose fibers to which one or more modifying groups selected from the group consisting of anionic groups and hydroxyl groups are bonded. (B) Water (C) Organic compounds that are liquid at 25°C and 1 atm (excluding polymer compounds and polyether-modified silicone compounds that fall under component (D) below). (D) One or more polymer compounds selected from the group consisting of the following components (X) and (Y) (excluding compounds for introducing the modifying group and polyether-modified silicone compounds). (X) A polymer compound having one or more groups selected from the group consisting of ester groups, amide groups, urethane groups, amino groups, ether groups, and carbonate groups in its main chain. (Y) Methacrylic or acrylic polymer compounds having ester groups and / or amide groups in their side chains
2. The emulsified composition according to claim 1, comprising an emulsified mixture of components (A) to (C) and an emulsion or dispersion of component (D).
3. The emulsified composition according to claim 1 or 2, wherein component (A) is a hydrophobic modified cellulose fiber obtained by bonding an anionic modified cellulose fiber with one or more modifying compounds selected from the group consisting of amino-modified silicone, epoxy-modified silicone, carboxy-modified silicone, carbinol-modified silicone, and hydrogen-modified silicone.
4. The emulsified composition according to any one of claims 1 to 3, wherein component (C) contains an oil agent.
5. The emulsified composition according to any one of claims 1 to 4, further containing the following component (E). (E) Polyether-modified silicone compound
6. Ingredient (A-1) Anionic modified cellulose fiber, Component (A-2): One or more modifying compounds selected from the group consisting of amino-modified silicones, epoxy-modified silicones, carboxy-modified silicones, carbinol-modified silicones, and hydrogen-modified silicones. Ingredient (B) Water, Component (C): Organic compounds that are liquid at 25°C and 1 atm (excluding polymer compounds and polyether-modified silicone compounds that fall under component (D) below). A step of mixing to prepare an emulsified mixture, and A method for producing an emulsion composition, comprising the step of mixing a prepared emulsion mixture with an emulsion or dispersion of one or more polymer compounds selected from the group consisting of component (D) components (X) and component (Y) below (excluding the modifying compound and polyether-modified silicone compound), to prepare an emulsion composition. (X) A polymer compound having one or more groups selected from the group consisting of ester groups, amide groups, urethane groups, amino groups, ether groups, and carbonate groups in its main chain. (Y) Methacrylic or acrylic polymer compounds having ester groups and / or amide groups in their side chains
7. A film obtained by drying the emulsified composition according to any one of claims 1 to 5.
8. A method for producing a film, comprising the step of applying and drying an emulsified composition produced by any one of claims 1 to 5, or by a method for producing an emulsified composition according to claim 6.
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