Coating film comprising first coating layer and second coating layer, and display device comprising same

The coating film with an interlayer bonding polymer enhances the mechanical properties of light-transmitting films, addressing the limitations of existing films by providing excellent adhesion, hardness, and light transmittance for use in display devices.

WO2025127557A1PCT designated stage expired Publication Date: 2025-06-19KOLON INDUSTRIES INC
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Patent Information

Application Number
PCT/KR2024/019418
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-11-22
Filing Date
2024-12-02
Publication Date
2025-06-19

AI Technical Summary

Technical Problem

Light-transmitting films used in display devices have lower mechanical properties compared to glass, such as low surface hardness and wear resistance, which limits their application in display fields.

Method used

A coating film comprising a first coating layer and a second coating layer, with an interlayer bonding polymer made of an epoxy-based polymer, is used to enhance the mechanical properties of light-transmitting films. The interlayer bonding polymer is formed by polymerizing a thermally polymerizable monomer and is disposed across the interface between the first and second coating layers.

Benefits of technology

The coating film achieves excellent adhesion, hardness, and adhesiveness, enabling it to be effectively used as a cover window or protective film for display devices, while maintaining high light transmittance and wear resistance.

✦ Generated by Eureka AI based on patent content.

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Abstract

An embodiment of the present invention provides: a coating film comprising a base film, a first coating layer which is on the base film, a second coating layer which is on the first coating layer, and interlayer bonding polymers which are disposed across the first coating layer and the second coating layer; a method for manufacturing the coating film; and a display device comprising the coating film.
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Description

Coating film comprising a first coating layer and a second coating layer and a display device comprising the same

[0001] The present invention relates to a coating film including a first coating layer and a second coating layer, a method for manufacturing the coating film, and a display device including the coating film.

[0002] Light-transmitting films are a key material in the optical and flexible display fields, and their importance is growing. Light-transmitting films are being used as a replacement for glass in the display field, particularly due to their light weight, ease of processability, and flexibility. Conventional light-transmitting films are known to have lower mechanical properties than glass, such as low surface hardness and low abrasion resistance. Research is being conducted to improve the mechanical properties of light-transmitting films for their application in the display field.

[0003] One method for improving the mechanical or optical properties of a light-transmitting film is to place a coating layer on the surface of the light-transmitting film. A light-transmitting film with a coating layer placed thereon is also called a coated film.

[0004] One embodiment of the present invention is to provide a coating film including a coating layer having excellent adhesive properties.

[0005] One embodiment of the present invention provides a coating film including a first coating layer and a second coating layer, and having excellent adhesion between the first coating layer and the second coating layer.

[0006] One embodiment of the present invention seeks to provide a coating film having excellent hardness and adhesiveness.

[0007] Another embodiment of the present invention provides a method for manufacturing a coating film.

[0008] Another embodiment of the present invention is to provide a display device including a coating film.

[0009] One embodiment of the present invention for solving the above problem provides a coating film comprising a base film, a first coating layer on the base film, a second coating layer on the first coating layer, and an interlayer bonding polymer disposed across the first coating layer and the second coating layer, wherein the interlayer bonding polymer comprises an epoxy-based polymer, and has a peelability of one or less grid patterns.

[0010] One end of the interlayer bonding polymer may be positioned in the first coating layer, and the other end of the interlayer bonding polymer may be positioned in the second coating layer.

[0011] Additionally, the interlayer bonding polymer may be disposed across the interface between the first coating layer and the second coating layer, in the first coating layer and the second coating layer.

[0012] The above interlayer bonding polymer can be formed by polymerization of a thermally polymerizable monomer.

[0013] The second coating layer includes an epoxy-based polymer resin.

[0014] The first coating layer includes a siloxane resin.

[0015] Another embodiment of the present invention provides a method for manufacturing a coating film, comprising the steps of applying a first coating composition on a base film, irradiating the first coating composition with light to form a first coating layer, applying a second coating composition on the first coating layer, and applying heat to the second coating composition to form a second coating layer, wherein the first coating composition includes an epoxy-based siloxane monomer and an acrylic siloxane monomer, and the second coating composition includes an epoxy-based monomer.

[0016] Another embodiment of the present invention provides a display device including a display panel and the above-described coating film disposed on the display panel.

[0017] A coating film according to one embodiment of the present invention can have excellent adhesive properties because it includes an interlayer bonding polymer disposed across the first coating layer and the second coating layer.

[0018] A coating film according to one embodiment of the present invention can have excellent hardness because the second coating layer has excellent adhesive stability.

[0019] According to one embodiment of the present invention, by controlling the composition and curing conditions of the first coating layer and the second coating layer during the manufacturing process of the coating film, an interlayer bonding polymer disposed across the first coating layer and the second coating layer can be formed.

[0020] A coating film according to one embodiment of the present invention can be used by being attached to a display surface of a display device. A display device including the coating film can have excellent surface hardness.

[0021] FIG. 1 is a schematic cross-sectional view of a coating film according to one embodiment of the present invention.

[0022] Figure 2 is a schematic diagram illustrating a process for producing an interlayer bonding polymer according to one embodiment of the present invention.

[0023] Figure 3 is a schematic diagram of the structure of an interlayer bonding polymer according to one embodiment of the present invention.

[0024] Figures 4a to 4c are schematic cross-sectional views of a manufacturing process of a coating film according to one embodiment of the present invention.

[0025] FIG. 5 is a cross-sectional view of a portion of a display device according to one embodiment of the present invention.

[0026] Figure 6 is an enlarged cross-sectional view of portion “P” of Figure 5.

[0027] Figure 7 is a schematic cross-sectional diagram illustrating the grid pattern formation process for measuring grid pattern peelability.

[0028] The present invention will be described in detail below, focusing on examples. The examples described below are provided for illustrative purposes only to facilitate a clear understanding of the present invention and do not limit its scope.

[0029] In this specification, where "includes," "has," and "consists of" are used, other parts may be added, unless the expression "only" is used. When a component is expressed in the singular, the plural is included unless otherwise explicitly stated. Furthermore, when interpreting a component, it is interpreted to include a margin of error, even if there is no explicit indication otherwise.

[0030] When describing a positional relationship, for example, when the positional relationship between two parts is described as 'on top of', 'upper part of', 'lower part of', 'next to', etc., one or more other parts may be located between the two parts, unless the expression 'right' or 'directly' is used.

[0031] When describing a temporal relationship, for example, when the temporal relationship is described as 'after', 'following', 'next to', 'before', etc., it can also include cases where it is not continuous, as long as the expression 'immediately' or 'directly' is not used.

[0032] While terms like "first" and "second" are used to describe various components, these components are not limited by these terms. These terms are used merely to distinguish one component from another. Therefore, a "first" component referred to below may also be a "second" component within the technical scope of the present invention.

[0033] The term "at least one" should be understood to include all possible combinations of one or more associated items. For example, "at least one of the first, second, and third items" can mean any combination of items that can be represented by two or more of the first, second, and third items, as well as each of the first, second, and third items.

[0034] The features of each of the various embodiments of the present invention can be partially or wholly combined or combined with each other, and various technical connections and operations are possible, and each embodiment can be implemented independently of each other or implemented together in a related relationship.

[0035] Figure 1 is a schematic cross-sectional view of a coating film (100) according to one embodiment of the present invention.

[0036] Referring to FIG. 1, a coating film (100) according to one embodiment of the present invention includes a base film (110), a first coating layer (120) on the base film (110), and a second coating layer (130) on the first coating layer (120).

[0037] A light-transmitting film can be used as the substrate film (110). A polyimide-based (PI) film can be used as the light-transmitting film. Examples of the polyimide-based (PI) film include a polyimide film and a polyamide-imide film.

[0038] A polyimide-based film according to one embodiment of the present invention can be manufactured from monomer components including dianhydride and diamine. More specifically, a polyimide-based film according to another embodiment of the present invention can have imide repeating units formed by dianhydride and diamine.

[0039] Additionally, polyimide-based films can also be manufactured from monomer components that further include a dicarbonyl compound in addition to dianhydride and diamine. Accordingly, a polyimide-based film according to one embodiment of the present invention may have imide repeating units and amide repeating units. An example of a polyimide-based film having imide repeating units and amide repeating units is a polyamide-imide film.

[0040] However, one embodiment of the present invention is not limited thereto, and a polycarbonate film (PC), a polyacrylic film, a polyethylene terephthalate film, a cellulose film, or the like may be used as the base film (110).

[0041] According to one embodiment of the present invention, there is no particular limitation on the thickness of the substrate film (110). The substrate film (110) may have a thickness sufficient to allow the coating film (100) to protect the display panel. For example, the substrate film (110) may have a thickness of 10 to 100 μm.

[0042] According to one embodiment of the present invention, a first coating layer (120) is disposed on a substrate film (110).

[0043] The first coating layer (120) acts as an interface layer between the two layers. The first coating layer (120) has excellent adhesion to the base film (110) and also has excellent adhesion to the second coating layer (130). The first coating layer (120) can act as an interface layer between the base film (110) and the second coating layer (130). Therefore, the first coating layer (120) can be referred to as an interface layer or an adhesion promoting layer, or can also be referred to as a primer layer.

[0044] The first coating layer (120) can serve to improve the adhesive strength between the base film (110) and the second coating layer (130). The second coating layer (130) can be stably attached to the base film (110) through the first coating layer (120).

[0045] In order to ensure that the second coating layer (130) can be stably attached to the substrate film (110), the first coating layer (120) may have a thickness of 0.05 to 1.0 μm.

[0046] If the thickness of the first coating layer (120) is less than 0.05 µm, it may be difficult to stably attach the second coating layer (130) to the substrate film (110). As a result, the adhesive strength and adhesion between the substrate film (110) and the second coating layer (130) may be reduced.

[0047] On the other hand, if the thickness of the first coating layer (120) exceeds 1.0 ㎛, the thickness of the coating film (100) may become thicker than necessary, and the flexibility, foldability, and flexible properties of the coating film (100) may deteriorate, and the optical properties may also deteriorate.

[0048] According to one embodiment of the present invention, the first coating layer (120) may include a siloxane resin. More specifically, the first coating layer (120) may be formed using a first coating composition including a siloxane binder.

[0049] For example, the first coating layer (120) may be formed by a first coating composition including an epoxy-based siloxane binder and an acrylic-based siloxane binder. The epoxy-based siloxane binder may include an epoxy-based siloxane monomer, and the acrylic-based siloxane binder may include an acrylic-based siloxane monomer.

[0050] According to one embodiment of the present invention, the first coating composition including an acrylic siloxane binder can be polymerized or cured by photopolymerization. Therefore, according to one embodiment of the present invention, the first coating layer (120) can be formed by photopolymerization of the first coating composition.

[0051] As an epoxy siloxane monomer, for example, 3-glycidoxypropyl trimethoxysilane can be used. An example of 3-glycidoxypropyl trimethoxysilane is KBM-403 from ShinEtsu.

[0052] However, one embodiment of the present invention is not limited thereto, and other known epoxy siloxane monomers may be used. Examples of the epoxy siloxane monomer include 2-(3,4 epoxycyclohexyl)ethyltrimethoxysilane, 3-glycidoxypropylmethyldimethoxysilane, and the like.

[0053] As an acrylic siloxane monomer, for example, 3-methacryloxypropyl trimethoxysilane can be used. According to one embodiment of the present invention, 3-methacryloxypropyl trimethoxysilane can be used. As 3-methacryloxypropyl trimethoxysilane, for example, there is KBM-503 from ShinEtsu.

[0054] However, one embodiment of the present invention is not limited thereto, and other known acrylic siloxane monomers may also be used. Examples of acrylic siloxane monomers include 3-acryloxypropyl trimethoxysilane, 3-methacryloxypropyl methyldimethoxysilane, and the like.

[0055] According to one embodiment of the present invention, in the first coating composition for forming the first coating layer (120), the content of the acrylic siloxane monomer may be greater or less than the content of the epoxy siloxane monomer.

[0056] For example, with respect to the total weight of the monomers included in the first coating composition, the content of the epoxy-based siloxane monomer may be 30 to 70 wt%, and the content of the acrylic siloxane monomer may be 30 to 70 wt%. Specifically, with respect to the total weight of the monomers included in the composition, the content of the epoxy-based siloxane monomer may be 33 to 67 wt%, and the content of the acrylic siloxane monomer may be 33 to 67 wt%, and more specifically, the content of the epoxy-based siloxane monomer may be 40 to 60 wt%, and the content of the acrylic siloxane monomer may be 40 to 60 wt%, and the content of the epoxy-based siloxane monomer may be 45 to 55 wt%, and the content of the acrylic siloxane monomer may be 45 to 55 wt%.

[0057] However, one embodiment of the present invention is not limited thereto, and with respect to the total mole number of monomers included in the first coating composition, the content of the acrylic siloxane monomer may be 30 to 70 mol%, the content of the epoxy siloxane monomer may be 30 to 70 mol%, the content of the epoxy siloxane monomer may be 40 to 60 mol%, and the content of the acrylic siloxane monomer may be 40 to 60 mol%.

[0058] According to one embodiment of the present invention, the epoxy siloxane monomer can be polymerized by heat treatment, and the acrylic siloxane monomer can be polymerized by light irradiation.

[0059] Additionally, according to one embodiment of the present invention, the siloxane resin of the first coating layer (120) may include an epoxy-based siloxane resin and an acrylic-based siloxane resin. The epoxy-based siloxane resin may include an epoxy-based siloxane repeating unit, and the acrylic-based siloxane resin may include an acrylic-based siloxane repeating unit.

[0060] The first coating layer (120) may include an epoxy-based siloxane monomer. The epoxy-based siloxane monomer included in the first coating layer (120) corresponds to an unreacted epoxy-based monomer.

[0061] According to one embodiment of the present invention, a second coating layer (130) is disposed on the first coating layer (120). According to one embodiment of the present invention, the second coating layer (130) may include an epoxy-based polymer resin.

[0062] The second coating layer (130) can be formed by a second coating composition. The second coating composition can include a polymerizable monomer.

[0063] According to one embodiment of the present invention, the second coating composition may include an epoxy monomer. The epoxy monomer is a polymerizable monomer. A second coating composition including an epoxy monomer may be referred to as an epoxy composition.

[0064] The second coating composition containing an epoxy monomer can be cured by thermal polymerization. Therefore, according to one embodiment of the present invention, the second coating layer (130) can be formed by thermal polymerization of the epoxy composition.

[0065] According to one embodiment of the present invention, 2-(3,4 epoxycyclohexyl) ethyltrimethoxysilane can be used as an epoxy monomer for forming the second coating layer (130).

[0066] However, one embodiment of the present invention is not limited thereto, and other known epoxy monomers may be used as monomers for forming the second coating layer (130). Examples of epoxy monomers include 3-glycidoxypropyl trimethoxysilane, 3,4-epoxycyclohexylmethyl 3,4-epoxycyclohexanecarboxylate, and the like.

[0067] According to one embodiment of the present invention, the second coating composition may further include, in addition to the epoxy monomer, a silane compound and a polymerization curing aid. The polymerization curing aid may include a diol and water (H2O).

[0068] According to one embodiment of the present invention, a siloxane may be formed by a silane compound. Specifically, a second coating layer (130) may be formed by polymerizing and curing the second coating composition through polymerization and curing of the silane compound.

[0069] The second coating composition according to one embodiment of the present invention may further include one or more additives selected from the group consisting of a polymerization initiator, an antioxidant, a leveling agent, and a coating agent.

[0070] According to one embodiment of the present invention, a thermal polymerization initiator such as an amine or imidazole may be used as the polymerization initiator. The polymerization initiator may be used in an amount of about 0.01 to 2 parts by weight based on 100 parts by weight of the polymerizable monomer.

[0071] According to one embodiment of the present invention, a photopolymerization initiator and a thermal polymerization initiator may be used together in the first coating composition for forming the first coating layer (120), and a thermal polymerization initiator may be used in the second coating composition for forming the second coating layer (130).

[0072] According to one embodiment, an organic solvent may be used to form the second coating layer (130). The viscosity of the second coating composition may be controlled by the organic solvent, and accordingly, the processability of the second coating composition may be controlled, so that the thickness of the second coating layer (130) may be easily adjusted.

[0073] As an organic solvent, at least one selected from the group consisting of ketones such as acetone, methyl ethyl ketone, methyl butyl ketone, and cyclohexanone; cellosolves such as methyl cellosolve and butyl cellosolve; ethers such as ethyl ether and dioxane; alcohols such as isobutyl alcohol, isopropyl alcohol, butanol, and methanol; halogenated hydrocarbons such as dichloromethane, chloroform, and trichloroethylene; and hydrocarbons such as normal hexane, benzene, and toluene may be used.

[0074] According to one embodiment of the present invention, a second coating layer (130) can be formed by polymerization and curing of the second coating composition.

[0075] For example, a second coating composition may be pre-polymerized to form a paste-like pre-polymer, an organic solvent may be added to the pre-polymer to produce a paste-like second coating composition with adjusted viscosity, and then the second coating composition may be coated on a first coating layer (120) on a base film (110), followed by curing and polymerization to form a second coating layer (130).

[0076] More specifically, when the second coating composition is coated on the first coating layer (120), the first coating layer (120) includes a polymer polymerized by an acrylic siloxane monomer and may include an epoxy siloxane monomer.

[0077] According to one embodiment of the present invention, the second coating composition may be coated and molded on the first coating layer (120) on the base film (110) by a method such as coating, casting, or molding, and then thermally polymerized to form the second coating layer (130).

[0078] When the second coating composition is polymerized, a temperature suitable for thermal polymerization is 40°C or higher and 200°C or lower, but the temperature is not limited thereto. More specifically, thermal polymerization can be performed at a temperature of 80°C to 120°C.

[0079] For example, a second coating composition may be coated on a first coating layer (120) on a base film (110), dried at 80°C for 5 minutes, and then the second coating composition may be heat-treated at a temperature of 120°C for 5 minutes to perform thermal polymerization and thermal curing.

[0080] A coating film (100) according to one embodiment of the present invention includes an interlayer bonding polymer (140) disposed across a first coating layer (120) and a second coating layer (130).

[0081] One end of the interlayer bonding polymer (140) may be positioned on the first coating layer (120), and the other end of the interlayer bonding polymer (140) may be positioned on the second coating layer (130). For example, the interlayer bonding polymer (140) may be positioned on the first coating layer (120) and the second coating layer (130) across the interface between the first coating layer (120) and the second coating layer (130).

[0082] In FIG. 1, an interlayer bonding polymer (140) disposed across the interface between the first coating layer (120) and the second coating layer (130) is exemplarily illustrated.

[0083] FIG. 2 is a schematic diagram illustrating a process for producing an interlayer bonding polymer (140) according to one embodiment of the present invention.

[0084] Referring to FIG. 2, the interlayer bonding polymer (140) can be formed by polymerization of a thermally polymerizable monomer. Specifically, the interlayer bonding polymer (140) can be formed by thermal polymerization through heat (HEAT) treatment. According to one embodiment of the present invention, when the second coating composition is coated on the first coating layer (120), the first coating layer (120) includes a polymer formed by polymerization of an acrylic siloxane monomer and may include an epoxy siloxane monomer.

[0085] According to one embodiment of the present invention, the epoxy-based siloxane monomer included in the first coating composition for forming the first coating layer (120) corresponds to a thermally polymerizable monomer. In addition, the epoxy-based monomer for forming the second coating layer (130) corresponds to a thermally polymerizable monomer.

[0086] Specifically, the monomer included in the first coating layer (120) in FIG. 2 represents an epoxy-based siloxane monomer. In FIG. 2, at least one of R1 and R2 may be a hydrocarbon group containing a siloxane group. Additionally, either one of R1 and R2 may be hydrogen.

[0087] Additionally, the monomer included in the second coating layer (130) in FIG. 2 may be an epoxy monomer. In FIG. 2, at least one of R3 and R4 may be a substituted or unsubstituted hydrocarbon group. Either of R3 and R4 may be hydrogen.

[0088] According to one embodiment of the present invention, an interlayer bonding polymer (140) can be formed by photopolymerization of an epoxy-based siloxane monomer included in a first coating composition for forming a first coating layer (120) and an epoxy-based monomer for forming a second coating layer (130).

[0089] The interlayer bonding polymer (140) may include, for example, an epoxy-based polymer. The interlayer bonding polymer (140) may include an epoxy-based repeating unit formed by an epoxy-based siloxane monomer in the first coating layer (120) and a repeating unit formed by an epoxy-based monomer in the second coating layer (130).

[0090] According to one embodiment of the present invention, an epoxy repeating unit formed by an epoxy siloxane monomer in the first coating layer (120) and a repeating unit formed by an epoxy monomer in the second coating layer (130) can be connected to form an interlayer bonding polymer (140) (see FIG. 2).

[0091] More specifically, the interlayer bonding polymer (140) can be formed by thermal polymerization of an epoxy-based siloxane binder included in a first coating composition for forming a first coating layer (120) and an epoxy-based composition for forming a second coating layer (130).

[0092] FIG. 3 is a schematic diagram of the structure of an interlayer bonding polymer according to one embodiment of the present invention. Specifically, FIG. 3 illustrates an interlayer bonding polymer (140) formed by polymerization of the monomers illustrated in FIG. 2. In FIG. 3, at least one of R1 and R2 may be a hydrocarbon group including a siloxane group. In addition, at least one of R3 and R4 may be a substituted or unsubstituted hydrocarbon group. However, one embodiment of the present invention is not limited thereto, and either one of R1 and R2 may be hydrogen, and either one of R3 and R4 may be hydrogen. In FIG. 3, “n” is a natural number.

[0093] Referring to FIGS. 2 and 3, it can be seen that one end of the interlayer bonding polymer (140) is positioned on the first coating layer (120), and the other end of the interlayer bonding polymer (140) is positioned on the second coating layer (130). The interlayer bonding polymer (140) allows the first coating layer (120) and the second coating layer (130) to have excellent adhesion, adhesiveness, and adhesive stability. In addition, since the first coating layer (120) and the second coating layer (130) have excellent adhesion, adhesiveness, and adhesive stability, the optical film (100) can have excellent hardness.

[0094] According to one embodiment of the present invention, the second coating layer (130) can have excellent hardness, light transmittance, and wear resistance. As a result, the coating film (100) including the second coating layer (130) can have excellent hardness, light transmittance, and wear resistance.

[0095] According to one embodiment of the present invention, the second coating layer (130) may have a thickness of 2 to 10 μm. When the thickness of the second coating layer (130) is less than 2 μm, the hardness and wear resistance of the coating film (100) by the second coating layer (130) may not be sufficiently exhibited. When the thickness of the second coating layer (130) exceeds 10 μm, the thickness of the coating film (100) may become thicker, and the flexibility of the coating film (100) may be reduced.

[0096] According to one embodiment of the present invention, the base film (110) and the first coating layer (120) may have a refractive index difference in the range of 0.1 to 0.3. In addition, the first coating layer (120) and the second coating layer (130) may have a refractive index difference of less than 0.1. The first coating layer (120) may have a refractive index similar to that of the second coating layer (130). In addition, according to one embodiment of the present invention, the base film (110) and the second coating layer (130) may have a refractive index difference in the range of 0.1 to 0.3.

[0097] As the refractive index difference between the substrate film (110) and the second coating layer (130) is adjusted to a range of 0.1 to 0.3, the coating film (100) can have excellent light transmittance.

[0098] According to one embodiment of the present invention, it is not easy to adjust the refractive index of the base film (110) and the second coating layer (130) to 0.1 or less due to the difference between the material constituting the base film (110) and the material constituting the second coating layer (130). Meanwhile, since the difference in refractive index between the base film (110) and the second coating layer (130) is adjusted to 0.3 or less, excessive reflection does not occur between the base film (110) and the second coating layer (130). As a result, the coating film (100) can have excellent light transmittance.

[0099] The substrate film (110) may have a refractive index of, for example, 1.6 to 1.7, and the second coating layer (130) may have a refractive index of 1.4 to 1.55. Additionally, the first coating layer (120) may have a refractive index of 1.4 to 1.53.

[0100] According to one embodiment of the present invention, the coating film (100) can have a light transmittance of 90% or more.

[0101] Light transmittance can be measured in the wavelength range of 360 to 740 nm by a spectrophotometer according to the standard specification JIS K 7361. As a spectrophotometer, for example, Hazemeter HM-150 / MURAKAMI COLOR RESEARCH LABORATORY can be used.

[0102] According to one embodiment of the present invention, the second coating layer (130) has a pencil hardness of 4H or more. As a result, it can be said that the coating film (100) has a pencil hardness of 4H or more.

[0103] Pencil hardness can be measured using a pencil hardness tester from IMOTO, Japan, at a speed of 180 mm / min and a load of 750 gf according to the measurement conditions of ASTM D3363.

[0104] According to one embodiment of the present invention, a coating film (100) has a grid pattern peelability of one or less. The grid pattern peelability is a value obtained by measuring the number of grid patterns of the second coating layer (130) that are separated from the coating film (100) and attached to the tape when 100 grid patterns (10 x 10) of 1 mm x 1 mm are formed on the second coating layer (130) of the coating film (100) using a cutter knife, 3M Scotch Box Tape 48 mm, transparent) (#3650) is attached to the surface of the second coating layer, and the tape is detached within 0.1 second.

[0105] When forming a grid pattern on the second coating layer (130) using a cutter knife, only the second coating layer (130) is cut, and the substrate film (110) is not cut. The first coating layer (120) may be partially cut or may not be cut.

[0106] The grid pattern can be formed, for example, by the method illustrated in FIG. 7.

[0107] Figure 7 is a schematic cross-sectional view illustrating the process of forming a grid pattern (130p) for measuring grid pattern peelability.

[0108] Referring to Fig. 7, a grid pattern (130p) can be formed by cutting or cutting from the surface of the second coating layer (130) to the first coating layer (120) based on the thickness direction of the coating film (100). In the process of forming the grid pattern (130p), the second coating layer (130) can be cut or cut by a cutter knife (K).

[0109] A cutting groove (130s) is formed by cutting with a cutter knife (K). The cutting groove (130s) penetrates the second coating layer (130) and may partially penetrate the first coating layer (120). Each grid pattern (130p) may be defined by the cutting groove (130s).

[0110] In the coating film (100) according to one embodiment of the present invention, since the second coating layer (130) has excellent adhesion to the first coating layer (120), the second coating layer (130) is not easily separated from the first coating layer (120). Therefore, the coating film (100) according to one embodiment of the present invention can have one or less grid pattern peelability.

[0111] In addition, the coating film (100) according to one embodiment of the present invention may have a grid pattern peelability of one or less after heat treatment at 230°C for one hour. Specifically, even if the grid pattern peelability of the coating film (100) according to one embodiment of the present invention is measured after heat treatment at 230°C for one hour, the coating film (100) according to one embodiment of the present invention may have a grid pattern peelability of one or less.

[0112] The coating film (100) according to one embodiment of the present invention may have a yellowness index of 3.0 or less. More specifically, the coating film (100) according to one embodiment of the present invention may have a yellowness index of 2.5 or less. In addition, the coating film (100) according to one embodiment of the present invention may have a yellowness index of 3.0 or less after heat treatment at 230°C for 1 hour, and more specifically, may have a yellowness index of 2.5 or less.

[0113] Another embodiment of the present invention provides a method for manufacturing a coating film (100).

[0114] Figures 4a to 4c are schematic cross-sectional views of a manufacturing process of a coating film (100) according to one embodiment of the present invention. Hereinafter, with reference to Figures 4a to 4c, another embodiment of the present invention will be described in detail with respect to a method for manufacturing a coating film (100).

[0115] Another embodiment of the present invention is a method for manufacturing a coating film (100), which includes a step of applying a first coating composition (121) on a base film (110), a step of irradiating the first coating composition (121) with light to form a first coating layer (120), a step of applying a second coating composition (131) on the first coating layer (120), and a step of applying heat (HEAT) to the second coating composition (131) to form a second coating layer (130).

[0116] Referring to FIG. 4a, a first coating composition (121) is applied on a substrate film (110).

[0117] A light-transmitting film can be used as the substrate film (110). A polyimide-based (PI) film can be used as the light-transmitting film. Examples of the polyimide-based (PI) film include a polyimide film and a polyamide-imide film.

[0118] The first coating composition (121) may include an epoxy-based siloxane binder and an acrylic siloxane binder.

[0119] According to one embodiment of the present invention, the epoxy-based siloxane binder may include an epoxy-based siloxane monomer. Additionally, the acrylic-based siloxane binder may include an acrylic-based siloxane monomer. On a molar basis, the content of the acrylic-based siloxane monomer may be greater than the content of the epoxy-based siloxane monomer.

[0120] Next, the first coating composition (121) is irradiated with (LIGHT). Irradiating the first coating composition (121) with light (LIGHT) is also called light irradiation.

[0121] A first coating composition (121) is irradiated with light (LIGHT) to form a first coating layer (120). Specifically, the light irradiated on the first coating composition (121) causes an acrylic siloxane monomer to polymerize, thereby forming a first coating layer (120). Accordingly, an acrylic siloxane polymer is formed in the first coating layer (120).

[0122] The first coating composition (121) contains an epoxy siloxane monomer in addition to an acrylic siloxane monomer. However, the epoxy siloxane monomer is not polymerized by light irradiated onto the first coating composition (121).

[0123] Even after undergoing light irradiation according to FIG. 4a, the epoxy siloxane monomer, which is an epoxy siloxane binder, remains in the first coating layer (120).

[0124] Referring to FIG. 4b, a second coating composition (131) is applied onto the first coating layer (120). The second coating composition (131) includes an epoxy monomer. When the second coating composition is applied onto the first coating layer (120), the acrylic siloxane monomer included in the first coating composition (121) may exist in a polymerized state, and at least a portion of the epoxy siloxane monomer may exist in an unpolymerized state.

[0125] Next, heat (HEAT) is applied to the second coating composition (131). As a result, a second coating layer (130) is formed as shown in Fig. 4c.

[0126] The epoxy monomer contained in the second coating composition (131) is polymerized by the heat (HEAT) applied to the second coating composition (131). As a result, an epoxy polymer is formed. The epoxy polymer is formed in the second coating layer (130).

[0127] In addition, the epoxy-based siloxane binder included in the first coating layer (120) is polymerized by the heat (HEAT) applied to the second coating composition (131). Specifically, the epoxy-based siloxane monomer included in the epoxy-based siloxane binder is polymerized by the heat (HEAT). As a result, an epoxy-based siloxane polymer can be formed in the first coating layer (120) (see FIG. 2).

[0128] According to one embodiment of the present invention, in the step of forming the second coating layer (130), the epoxy-based siloxane binder included in the first coating layer (120) and the epoxy-based monomer included in the second coating composition (131) are polymerized, thereby forming an interlayer bonding polymer (140) across the first coating layer (120) and the second coating layer (130).

[0129] The interlayer bonding polymer (140) is formed across the interface between the first coating layer (120) and the second coating layer (130) and in the first coating layer (120) and the second coating layer (130).

[0130] The interlayer bonding polymer (140) may include an epoxy-based repeating unit formed by an epoxy-based siloxane monomer included in the first coating composition (121) and a repeating unit formed by an epoxy-based monomer included in the second coating composition (131).

[0131] FIG. 5 is a cross-sectional view of a portion of a display device (200) according to another embodiment of the present invention, and FIG. 6 is an enlarged cross-sectional view of a portion “P” of FIG. 5.

[0132] Referring to FIG. 5, a display device (200) according to another embodiment of the present invention includes a display panel (501) and a coating film (100) on the display panel (501). FIG. 5 discloses a display device (200) including the coating film (100) of FIG. 1.

[0133] Referring to FIGS. 5 and 6, the display panel (501) includes a substrate (510), a thin film transistor (TFT) on the substrate (510), and an organic light-emitting element (570) connected to the thin film transistor (TFT). The organic light-emitting element (570) includes a first electrode (571), an organic light-emitting layer (572) on the first electrode (571), and a second electrode (573) on the organic light-emitting layer (572). The display device (200) disclosed in FIGS. 5 and 6 is an organic light-emitting display device.

[0134] The substrate (510) may be made of plastic. Specifically, the substrate (510) may be made of a polyimide-based resin or a polyimide-based film.

[0135] Although not shown, a buffer layer may be disposed on the substrate (510).

[0136] A thin film transistor (TFT) is disposed on a substrate (510). The thin film transistor (TFT) includes a semiconductor layer (520), a gate electrode (530) that is insulated from the semiconductor layer (520) and overlaps at least a portion of the semiconductor layer (520), a source electrode (541) connected to the semiconductor layer (520), and a drain electrode (542) that is spaced apart from the source electrode (541) and connected to the semiconductor layer (520).

[0137] Referring to FIG. 6, a gate insulating film (535) is disposed between a gate electrode (530) and a semiconductor layer (520). An interlayer insulating film (551) may be disposed on the gate electrode (530), and a source electrode (541) and a drain electrode (542) may be disposed on the interlayer insulating film (551).

[0138] A planarization film (552) is placed on a thin film transistor (TFT) to planarize the upper portion of the thin film transistor (TFT).

[0139] A first electrode (571) of an organic light-emitting element (570) is placed on a planarization film (552). The first electrode (571) is connected to a drain electrode (542) of a thin film transistor (TFT) through a contact hole provided in the planarization film (552). The first electrode (571) may also be connected to a source electrode (541).

[0140] The bank layer (580) is arranged on the first electrode (571) and the planarization film (552) to define a pixel area or a light-emitting area. For example, the bank layer (580) may be arranged in a matrix structure in a boundary area between a plurality of pixels, thereby defining a pixel area by the bank layer (580).

[0141] The organic light-emitting layer (572) is disposed on the first electrode (571). The organic light-emitting layer (572) may also be disposed on the bank layer (580). The organic light-emitting layer (572) may include one light-emitting layer, or may include two or more light-emitting layers stacked one above the other. The organic light-emitting layer (572) may emit light having any one of red, green, and blue colors, and may also emit white light.

[0142] The second electrode (573) is placed on the organic light-emitting layer (572).

[0143] A first electrode (571), an organic light-emitting layer (572), and a second electrode (573) can be laminated to form an organic light-emitting element (570).

[0144] Although not shown, when the organic light-emitting layer (572) emits white light, each pixel may include a color filter for filtering the white light emitted from the organic light-emitting layer (572) by wavelength. The color filter is formed on the path of light.

[0145] A thin film encapsulation layer (590) may be disposed on the second electrode (573). The thin film encapsulation layer (590) may include at least one organic film and at least one inorganic film, and at least one organic film and at least one inorganic film may be disposed alternately.

[0146] A coating film (100) is placed on a display panel (501) having the laminated structure described above. The coating film (100) can be used as a cover window that covers and protects the light-emitting surface of the display panel (501).

[0147] Hereinafter, the present invention will be described in more detail through specific examples and comparative examples. These examples and comparative examples are intended solely to illustrate the present invention more specifically and are not intended to limit the present invention.

[0148] <Example 1>

[0149] (1) Formation of the first coating layer (120)

[0150] 100 mmol (23.63 g) of 3-glycidoxypropyl trimethoxysilane (KBM-403, ShinEtsu), an epoxy siloxane monomer, 150 mmol (2.7 g) of distilled water, and 0.1 g of NaOH were mixed in a 50 mL flask and stirred at 60°C for 4 hours to prepare an epoxy siloxane binder. The mixing and stirring were performed in an open system.

[0151] 100 mmol (24.84 g) of 3-methacryloxypropyl trimethoxysilane (KBM-503, ShinEtsu), an acrylic siloxane monomer, 150 mmol (2.7 g) of distilled water, and 0.1 g of NaOH were mixed in a 50 mL flask and stirred at 60°C for 4 hours to prepare an acrylic siloxane binder. The mixing and stirring were performed in an open system.

[0152] 1.5 g of the above-prepared epoxy siloxane binder (3-glycidoxypropyl trimethoxysilane; 1.341 g), 1.5 g of the acrylic siloxane binder (3-methacryloxypropyl trimethoxysilane; 1.348 g), 97 g of MEK, and 0.03 g of 2,2-dimethoxy-2-phenylacetophenome were mixed and stirred in a flask to prepare a first coating composition.

[0153] A 50㎛ thick polyimide film (CPI®, KOLON) was prepared as a substrate film (110).

[0154] After applying the first coating composition manufactured above using Mayer Bar. No. 8 to the base film (110), drying at 80°C for 2 minutes, and then irradiating with UV_A at 120 mW / cm 2 , 2J / cm 2 By irradiating the first coating composition with conditions and performing photopolymerization and photocuring, a first coating layer (120) was formed. In the process of forming the first coating layer (120), 3-methacryloxypropyl trimethoxysilane, which is an acrylic siloxane monomer contained in the first coating composition, may be polymerized, and 3-glycidoxypropyl trimethoxysilane, which is an epoxy siloxane monomer, may exist in an unpolymerized state.

[0155] (2) Formation of the second coating layer (130)

[0156] 2-(3,4 epoxycyclohexyl) ethyltrimethoxysilane (KBM-303 from ShinEtsu) was used as an epoxy monomer for forming the second coating layer (130).

[0157] Specifically, 100 mmol (24.65 g) of 2-(3,4 epoxycyclohexyl)ethyltrimethoxysilane (KBM-303 from ShinEtsu), 100 mmol (1.8 g) of distilled water, 50 mmol (3.1 g) of ethylene glycol, and 0.1 g of NaOH were mixed in a 50 mL flask and stirred at 80° C. for 10 hours to prepare a second coating composition. The mixing and stirring were performed in an open system.

[0158] The second coating composition manufactured using Mayer Bar no. 16 was applied onto the first coating layer (120) formed above, dried at 80°C for 5 minutes, and then heat-treated at 120°C for 5 minutes to perform thermal polymerization and thermal curing, thereby forming a second coating layer (130).

[0159] As a result, a coating film (100) according to Example 1 was manufactured.

[0160] <Example 2>

[0161] A coating film was manufactured in the same manner as in Example 1, except that 2 g of the acrylic siloxane binder (3-methacryloxypropyl trimethoxysilane; 1.797 g) manufactured in Example 1 and 1 g of the epoxy siloxane binder (3-glycidoxypropyl trimethoxysilane; 0.894 g), 97 g of MEK, and 0.03 g of 2,2-dimethoxy-2-phenylacetophenone were mixed and stirred in a flask to manufacture a first coating composition.

[0162] <Example 3>

[0163] A coating film was manufactured in the same manner as in Example 1, except that 1 g of the acrylic siloxane binder (3-methacryloxypropyl trimethoxysilane; 0.899 g) manufactured in Example 1 and 2 g of the epoxy siloxane binder (3-glycidoxypropyl trimethoxysilane; 1.788 g), 97 g of MEK, and 0.03 g of 2-Ethyl-4-methylimidazole were mixed and stirred in a flask to manufacture a first coating composition.

[0164] <Example 4>

[0165] The first coating layer (120) was formed in the same manner as in Example 1.

[0166] 3,4-Epoxycyclohexylmethyl-3',4'-epoxycyclohexane carboxylate (EEC) was used as an epoxy monomer for forming the second coating layer (130).

[0167] Specifically, a second coating composition was prepared by dissolving 3 g of EEC and 0.03 g of 2-Ethyl-4-methylimidazole in 6 g of MEK.

[0168] The coating composition manufactured above using Mayer Bar no. 16 was applied onto the first coating layer (120) formed above, dried at 80°C for 5 minutes, and then the second coating composition was heat-treated at 120°C for 5 minutes to perform thermal polymerization and thermal curing, thereby forming a second coating layer (130).

[0169] <Example 5>

[0170] The first coating layer (120) was formed in the same manner as in Example 2, and the second coating layer (130) was formed in the same manner as in Example 4.

[0171] <Example 6>

[0172] The first coating layer (120) was formed in the same manner as in Example 3, and the second coating layer (130) was formed in the same manner as in Example 4.

[0173] <Comparative Example 1>

[0174] A coating film was manufactured in the same manner as in Example 1, except that the first coating layer (120) was not formed.

[0175] Specifically, first, 100 mmol of 2-(3,4 epoxycyclohexyl)ethyltrimethoxysilane (KBM-303 from ShinEtsu), 100 mmol of distilled water, 50 mmol of ethylene glycol, and 0.1 g of NaOH were mixed in a 50 mL flask and stirred at 80° C. for 10 hours to prepare a second coating composition.

[0176] The second coating composition manufactured using Mayer Bar no. 16 was applied to a 50 μm thick polyimide film (CPI®, KOLON) as a base film (110), dried at 80°C for 5 minutes, and then heat-treated at 60°C for 4 hours to perform thermal polymerization and thermal curing, thereby forming a second coating layer (130).

[0177] As a result, a coating film according to Comparative Example 1 was manufactured.

[0178] <Comparative Example 2>

[0179] A coating film was manufactured in the same manner as in Example 1, except that an acrylic siloxane binder was used alone to manufacture a composition for forming the first coating layer (120).

[0180] Specifically, 100 mmol of 3-methacryloxypropyl trimethoxysilane (KBM-503, ShinEtsu), an acrylic siloxane monomer, 150 mmol of distilled water, and 0.1 g of NaOH were mixed in a 50 mL flask and stirred at 60°C for 4 hours to prepare an acrylic siloxane binder. The mixing and stirring were performed in an open system.

[0181] 3 g of the above-mentioned epoxy-based siloxane binder, 97 g of MEK, and 0.03 g of 2,2-dimethoxy-2-phenylaceto phenome were mixed and stirred in a flask to prepare a first coating composition.

[0182] Next, the first coating composition manufactured above was applied to the base film (110) using Mayer Bar. No. 8, and then dried at 80°C for 2 minutes, followed by UV_A at 120 mW / cm 2 , 2J / cm 2 By irradiating the first coating composition with conditions and performing photopolymerization and photocuring, the first coating layer (120) was formed.

[0183] On the first coating layer (120), a second coating layer (130) was formed using the same method as in Example 1.

[0184] <Comparative Example 3>

[0185] A coating film was prepared in the same manner as in Example 1, except that an acrylic monomer was used alone to prepare the first coating composition.

[0186] Specifically, 3 g of dipentaerythritol hexaacrylate (DPHA), an acrylic monomer, 97 g of MEK, and 0.03 g of 2,2-dimethoxy-2-phenylaceto phenome were mixed and stirred in a flask to prepare a first coating composition.

[0187] Next, the first coating composition manufactured above was applied to the base film (110) using Mayer Bar. No. 8, and then dried at 80°C for 2 minutes, followed by UV_A at 120 mW / cm 2 , 2J / cm 2 By irradiating the first coating composition with conditions and performing photopolymerization and photocuring, the first coating layer (120) was formed.

[0188] On the first coating layer (120), a second coating layer (130) was formed in the same manner as in Example 1.

[0189] <Comparative Example 4>

[0190] 1.5 g of 3,4-Epoxycyclohexylmethyl 3,4-epoxycyclohexanecarboxylate (EEC) (Sigma Aldrich), an epoxy monomer, 1.5 g of DPHA, 97 g of MEK, and 0.03 g of 2,2-dimethoxy-2-phenylacetophenone were added and stirred to prepare a first coating composition, which was then coated on a base film (110) to prepare a first coating layer (120). A second coating layer (130) was formed on the first coating layer (120) in the same manner as in Example 1.

[0191] Comparative Example 5

[0192] In Example 1, 3 g of the epoxy-based siloxane binder (3-glycidoxypropyl trimethoxysilane; 2.682 g), 97 g of MEK, and 0.03 g of 2,2-dimethoxy-2-phenylacetophenone were added and stirred to prepare a first coating composition, which was then coated on a base film (110) to prepare a first coating layer (120). A second coating layer (130) was formed on the first coating layer (120) in the same manner as in Example 1.

[0193] <Comparative Example 6>

[0194] In Example 1, 1.5 g of the epoxy-based siloxane binder (3-glycidoxypropyl trimethoxysilane; 1.341 g), 1.5 g of EEC, 97 g of MEK, and 0.03 g of 2,2-dimethoxy-2-phenylacetophenone were added and stirred to prepare a first coating composition, which was then coated on a base film (110) to prepare a first coating layer (120). A second coating layer (130) was formed on the first coating layer (120) in the same manner as in Example 1.

[0195] The types and contents of each component according to Examples 1 to 6 and Comparative Examples 1 to 6 can be summarized as in Table 1.

[0196] No. 1 Coating Composition (Weight, g) Second Coating Composition Acrylic Siloxane Binder Acrylic Monomer Epoxy Siloxane Binder Epoxy Monomer Epoxy Monomer Example 11.5-1.5-KBM-303 Example 22-1-KBM-303 Example 31-2-KBM-303 Example 41.5-1.5-EEC Example 52-1-EEC Example 61-2-EEC Comparative Example 1----KBM-303 Comparative Example 23---KBM-303 Comparative Example 3-3--KBM-303 Comparative Example 4-1.5-1.5KBM-303 Comparative Example 5--3-KBM-303 Comparative Example 6--1.51.5KBM-303

[0197] * Acrylic siloxane binder: 3-methacryloxypropyl trimethoxysilane + distilled water + NaOH

[0198] * Acrylic monomer: dipentaerythritol hexaacrylate (DPHA)

[0199] * Epoxy siloxane binder: 3-glycidoxypropyl trimethoxysilane + distilled water + NaOH

[0200] * Epoxy monomer: 3,4-Epoxycyclohexylmethyl 3,4-epoxycyclohexanecarboxylate (EEC)

[0201] <Measurement example>

[0202] The physical properties of the coating films manufactured in Examples 1 to 6 and Comparative Examples 1 to 6 were measured according to the following method.

[0203] (1) Measurement of light transmittance (%)

[0204] Measurements were made in the wavelength range of 360 to 740 nm using a spectrophotometer according to the standard specification JIS K 7361. The spectrophotometer used was Hazemeter HM-150 / MURAKAMI COLOR RESEARCH LABORATORY.

[0205] (2) Pencil hardness measurement

[0206] Pencil hardness was measured using a pencil hardness tester from IMOTO, Japan, under conditions of a speed of 180 mm / min and a load of 1 kgf according to ASTM D3363.

[0207] (3) Yellowness measurement

[0208] Measurements were made using a spectrophotometer at 8˚ with a D65 light source according to the standard ASTM E313-73. The spectrophotometer used was a KONICA MINOLTA CM-3600A.

[0209] The yellowness of the coating films manufactured in the examples and comparative examples was measured (measured before heat treatment), and the yellowness was measured again after the coating films were heat treated at 230°C for 1 hour.

[0210] (4) Grid pattern peelability

[0211] Using a cutter knife (K), 100 grid patterns (130p) of 1 mm x 1 mm in size (10 x 10) were formed on the second coating layer (130) of the coating film, and 3M Scotch Box Tape (48 mm, transparent) (#3650) was attached to the surface of the second coating layer. When the tape was removed within 0.1 second, the number of grid patterns of the second coating layer (130) separated from the coating film and attached to the tape was measured.

[0212] The grid pattern (130p) can be formed by the method illustrated in FIG. 7. By forming grid grooves (130s) in the second coating layer (130) using a cutter knife (K), the grid pattern (130p) can be created. When forming the grid pattern (130p) in the second coating layer (130) using the cutter knife (K), only the second coating layer (130) is cut, and the base film (110) and the first coating layer (120) are not cut. The first coating layer (120) may also be partially cut.

[0213] The grid pattern peelability was measured for the coating films manufactured in the examples and comparative examples (measured before heat treatment), and the grid pattern peelability was measured again after the coating films were heat treated at 230°C for 1 hour.

[0214] (5) Confirmation of interlayer bonding polymer (140)

[0215] Using IR Spectroscopy, it was confirmed whether an interlayer bonding polymer was present across the first coating layer (120) and the second coating layer (130). Specifically, through IR Spectroscopy, unreacted epoxy groups (1230 to 1280, 815 to 950, 750 to 880 cm) were detected in the first coating layer (120). -1 ) was confirmed to exist. The interlayer bonding polymer (140) was confirmed through the presence of surface reaction molecules.

[0216] More specifically, according to the embodiments and comparative examples of the present invention, after the formation of the first coating layer (120) and before the formation of the second coating layer (130), the monomer remaining in the first coating layer (120) is an epoxy monomer, and since unreacted epoxy monomer also exists on the surface of the first coating layer (120), the epoxy monomer corresponds to a surface-reactive molecule. In the embodiments of the present invention, an epoxy siloxane monomer may correspond to the unreacted epoxy monomer.

[0217] In IR Spectroscopy, unreacted epoxy groups, which are surface-reactive molecules, were observed at 1230–1280, 815–950, and 750–880 cm -1 ) means that when the second coating layer (130) is formed, unreacted epoxy monomers (epoxy-based siloxane monomers) that can participate in polymerization exist inside and on the surface of the first coating layer (120). When the unreacted epoxy monomers that existed inside and on the surface of the first coating layer (120) participate in polymerization, as shown in FIGS. 2 and 3, the unreacted epoxy monomers (epoxy-based siloxane monomers) of the first coating layer (120) and the epoxy monomers of the second coating composition (131) can react, and as a result, an interlayer bonding polymer (140) can be formed. Therefore, in IR Spectroscopy, unreacted epoxy groups (1230 to 1280, 815 to 950, 750 to 880 cm) which are surface-reactive molecules -1 ) exists, it means that an interlayer bonded polymer (140) has been formed.

[0218] The above measurement results are disclosed in Table 2 below.

[0219] Number Light transmittance Yellowness Pencil hardness Lattice pattern Peelability Surface reaction Molecule presence Interlayer bonding Polymer presence 230℃, after 1 hour Lattice pattern Peelability Yellowness Example 1 90.5 2.44 H0 / 100 YY0 / 100 2.4 Example 2 90.5 2.44 H0 / 100 YY0 / 100 2.4 Example 3 90.5 2.44 H0 / 100 YY0 / 100 2.4 Example 4 90.3 2.44 H0 / 100 YY0 / 100 2.4 Example 5 90.3 2.44 H0 / 100 YY0 / 100 2.4 Example 6 90.3 2.44 H0 / 100 YY0 / 100 2.4 Comparative example 189.32.53H35 / 100NN33 / 1002.4Comparative example 290.12.53H36 / 100NN32 / 1002.4Comparative example 389.82.53H52 / 100NN48 / 1002.6Comparative example 489.92.54H12 / 100YY10 / 1002.7Comparative example 589.92.52H85 / 100YY83 / 1002.7Comparative example 689.92.52H88 / 100YY85 / 1002.7

[0220] In the “Presence of surface reactive molecules” entry in Table 2, “Y” means that an interlayer bonding polymer exists, and “N” means that an interlayer bonding polymer does not exist.

[0221] Referring to Table 2, it was confirmed that the coating films (100) according to Examples 1 to 6 had a light transmittance of 90% or more, a pencil hardness of 4H or more, and a grid pattern peelability of one or less.

[0222] In Comparative Example 1, which does not include the first coating layer (120) that acts as an interface layer or adhesion promoting layer, it was confirmed that no interlayer bonding polymer was formed, lattice pattern peeling occurred, and a corresponding decrease in pencil hardness was confirmed.

[0223] In Comparative Example 2, where no epoxy-based siloxane binder or epoxy-based monomer was used, no interlayer bonding polymer was formed, and lattice pattern delamination and a decrease in pencil hardness were observed.

[0224] In Comparative Example 3, where no acrylic siloxane binder or acrylic siloxane monomer was used, no interlayer bonding polymer was formed. In addition, Comparative Example 3, which does not include a siloxane monomer, showed a relative decrease in light transmittance, delamination of the grid pattern, and a decrease in pencil hardness. In addition, an increase in yellowness was observed after high-temperature treatment, indicating a decrease in heat resistance.

[0225] In Comparative Example 4, which did not use a siloxane binder containing a siloxane monomer, interlayer bonding polymers were formed, but a decrease in light transmittance and delamination of the lattice pattern were observed. In Comparative Example 4, there was no decrease in pencil hardness, but an increase in yellowness was observed after high-temperature treatment.

[0226] In Comparative Examples 5 and 6, in which a first coating composition was used that did not include an acrylic monomer and an acrylic siloxane binder, but included an epoxy siloxane binder (Comparative Example 5) or included an epoxy siloxane binder and an epoxy monomer (Comparative Example 6), it was confirmed that the lattice pattern peelability was significantly weakened compared to the examples, and a decrease in pencil hardness was confirmed.

[0227] In this way, it can be confirmed that the coating film according to the embodiments of the present invention (Examples 1-6) has excellent surface properties and excellent adhesiveness.

[0228] In this way, the coating film according to one embodiment of the present invention has excellent hardness and scratch resistance and excellent adhesiveness, and thus can be usefully used as a cover window or protective film of a display device.

[0229] [Explanation of symbols]

[0230] 100: Coating film

[0231] 110: Base film

[0232] 120: First coating layer

[0233] 130: Second coating layer

[0234] 200: Display device

[0235] 501: Display panel

[0236] 570: Organic light-emitting device

[0237] TFT: Thin Film Transistor

Claims

1. Base film; A first coating layer on the above-mentioned substrate film; a second coating layer on the first coating layer; and It comprises an interlayer bonding polymer disposed across the first coating layer and the second coating layer, The above interlayer bonding polymer comprises an epoxy polymer, Coating film having a grid pattern peelability of 1 or less: Here, the grid pattern peelability is a value obtained by measuring the number of grid patterns of the second coating layer that are separated from the coating film and attached to the tape when 100 grid patterns (10 x 10) of 1 mm x 1 mm size are formed on the second coating layer of the coating film using a cutter knife, 3M Scotch Box Tape (48 mm, transparent) (#3650) is attached to the surface of the second coating layer, and the tape is removed within 0.1 second.

2. In paragraph 1, A coating film, wherein one end of the interlayer bonding polymer is positioned in the first coating layer, and the other end of the interlayer bonding polymer is positioned in the second coating layer.

3. In paragraph 1, The above interlayer bonding polymer is a coating film formed by polymerization of a thermally polymerizable monomer.

4. In paragraph 1, A coating film, wherein the second coating layer comprises an epoxy-based polymer resin.

5. In paragraph 1, The first coating layer is a coating film formed by a first coating composition containing an epoxy-based siloxane monomer and an acrylic-based siloxane monomer.

6. In paragraph 5, The above epoxy siloxane monomer is polymerized by heat, A coating film wherein the above acrylic siloxane monomer is polymerized by light irradiation.

7. In paragraph 5, A coating film, wherein the first coating layer comprises an epoxy-based siloxane monomer.

8. In paragraph 5, The second coating layer is formed by thermal polymerization of a second coating composition containing an epoxy monomer, A coating film in which the interlayer bonding polymer is formed by thermal polymerization of the epoxy-based siloxane monomer included in the first coating composition and the second coating composition.

9. In paragraph 1, A coating film having a light transmittance of 90% or more.

10. In paragraph 1, A coating film, wherein the second coating layer has a pencil hardness of 4H or higher.

11. A step of applying a first coating composition on a substrate film; A step of forming a first coating layer by irradiating light onto the first coating composition; A step of applying a second coating composition on the first coating layer; and A step of forming a second coating layer by applying heat to the second coating composition; The first coating composition comprises an epoxy siloxane monomer and an acrylic siloxane monomer, A method for producing a coating film, wherein the second coating composition comprises an epoxy monomer.

12. In paragraph 11, A method for manufacturing a coating film, wherein, in the step of forming the second coating layer, the epoxy-based siloxane monomer included in the first coating layer and the epoxy-based monomer included in the second coating composition are polymerized to form an interlayer bonding polymer across the first coating layer and the second coating layer.

13. In paragraph 11, A method for manufacturing a coating film, wherein the acrylic siloxane monomer is polymerized by light irradiated onto the first coating composition, and the epoxy siloxane monomer is not polymerized.

14. Display panel; and A coating film according to any one of claims 1 to 13, disposed on the display panel; A display device including:

Citation Information

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