UV optical film material and manufacturing method and application thereof

By employing a combined structure of substrate, frosted layer, inner protective film layer, optical ink layer and outer protective film layer in optical thin film, the problems of uneven curing and insufficient edge sharpness in UV curing coating technology are solved, realizing a UV optical film material with high hardness, uniformity and scratch resistance, improving the clarity and durability of display devices.

CN120908908AActive Publication Date: 2025-11-07NANNING HUARIDE NEW MATERIALS CO LTD

Patent Information

Application Number
CN202511414891.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-30
Publication Date
2025-11-07
Estimated Expiration
2045-09-30

AI Technical Summary

Technical Problem

Existing ultraviolet (UV) curing coating technology has problems such as uneven curing, difficulty in controlling microstructure, and insufficient edge sharpness when preparing optical thin films, making it difficult to meet the performance requirements of high-resolution display devices.

Method used

The method for manufacturing UV optical film materials includes a combination structure of a substrate, a frosted layer, an inner protective film layer, an optical ink layer, a transparent adhesive layer, and an outer protective film layer. Materials such as UV polyester acrylate, UV modified epoxy acrylate, and photoinitiators are used. The optical ink layer and the frosted layer are formed through precision coating and ultraviolet curing technology to ensure surface uniformity and high hardness.

Benefits of technology

It achieves high hardness, good adhesion, uniformity and high edge sharpness in UV optical films, prevents discoloration and scratches, and improves the clarity and fatigue resistance of optical films.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the field of electronic display film materials, and discloses a UV optical film material and a manufacturing method and application thereof.The UV optical film material comprises a base material, a frosted layer, an inner protective film layer, an optical ink layer, a transparent adhesive layer and an outer protective film layer, and the inner surface of the base material is sequentially coated with the frosted layer and the inner protective film layer outwards; the outer surface of the base material is sequentially coated with an optical ink layer, a transparent adhesive layer and an outer protective film layer outwards; the coating process comprises the steps that the viscosity of UV optical ink is controlled to be 16 ''-18'', the outer surface of the base material is coated with the UV optical ink through a precise micro-concave ceramic coating roller, and then UV curing is conducted to form an optical ink layer; coating a transparent adhesive layer on the surface of the optical ink layer, and after curing, coating UV optical transfer adhesive on the inner surface of the base material to form a frosted layer; finally, the surface of the frosted layer and the surface of the transparent adhesive layer are coated with an inner protective film layer and an outer protective film layer respectively. The coating has the characteristics of high hardness and high adhesive force, the surface can be kept uniform, the edge sharpness is high, and discoloration can be effectively prevented.
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Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of electronic display film processing, and particularly relates to a UV optical film and a manufacturing method and application thereof. BACKGROUND

[0002] In the field of manufacturing liquid crystal display screens and flexible photoelectric display screens, optical functional films (such as brightness enhancement films, quantum dot films and surface protection films) are attached to the surface of the screen for protection and to improve the display performance of the screen. The optical functional films usually use polyethylene terephthalate (PET), polycarbonate (PC) or triacetate cellulose (TAC) as a transparent substrate, and optical ink is coated on the surface of the transparent substrate to form a transparent optical functional protection film. At present, ultraviolet curing (UV) coating technology has become the mainstream in the industry due to its excellent performance. The use of ultraviolet curing (UV) optical coating technology is the core process for preparing functional optical films such as brightness enhancement films and quantum dot films. In comparison, the traditional micro-concave coating process has technical bottlenecks such as insufficient coating uniformity and microstructure transfer defects, and has been difficult to meet the stringent requirements of high-resolution display devices for the performance of optical films. Therefore, ultraviolet curing (UV) coating technology has gradually replaced the traditional micro-concave coating process due to its advantages such as efficient curing and low energy consumption. However, the current ultraviolet curing (UV) coating technology still has the problems of uneven curing, differences in curing degree caused by uneven distribution of ultraviolet light intensity, difficulty in controlling micro-morphology, and insufficient edge sharpness when transferring high-resolution patterns. SUMMARY

[0003] The purpose of the present application is to provide a UV optical film and a manufacturing method and application thereof. The UV optical film has good bending stress, high hardness and high adhesion, a uniform surface, high edge sharpness, and can effectively prevent discoloration. The coating process has good leveling and wetting properties. In order to achieve the above purpose, the present application adopts the following technical effects: According to one aspect of the present application, a UV optical film is provided. The UV optical film includes a substrate, a frosted layer, an inner protective film layer, an optical ink layer, a transparent adhesive layer and an outer protective film layer. The frosted layer and the inner protective film layer are coated on the inner surface of the substrate in sequence from inside to outside. The optical ink layer, the transparent adhesive layer and the outer protective film layer are coated on the outer surface of the substrate in sequence from inside to outside.

[0004] Preferably, the transparent adhesive layer is UVOCA glue with a thickness of 50-150 microns. The substrate is a PET film substrate with a thickness of 100-200 microns. The inner protective film layer and the outer protective film layer are made of PET material with a thickness of 0.2-1 mm.

[0005] Further preferably, the above-mentioned scheme, the sanding layer is made of UV optical transfer glue, and the thickness of the sanding layer is 8-20 μm.

[0006] Further preferably, the above-mentioned scheme, the UV optical transfer glue is made of the following materials with the mass fraction: UV polyester acrylate 1-25%, UV modified epoxy acrylate 30-45%, photoinitiator 4-8%, polyurethane acrylate 1-45%, and UV monomer 6-25%. The photoinitiator is TPO initiator or 1-hydroxycyclohexyl phenyl ketone. The UV monomer is one or more of HHDA 1,6-hexanediol diacrylate with two functional groups, ACMO acryloyl morpholine with a single functional group, and THFA tetrahydrofuran acrylate with a single functional group. The UV monomer, also known as active diluent, is a key component of the UV curing system (such as ink, paint, and adhesive). The functions of the UV monomer include adjusting the system performance, promoting the curing reaction, and optimizing the film forming properties. The UV monomer can dilute the UV resin, promote the curing reaction, reduce the shrinkage, and increase the adhesion. The preparation process of the UV optical transfer glue includes the following steps: Step 10: After stirring the UV polyester acrylate and the UV modified epoxy acrylate in a reaction kettle for 10-30 min and standing for 5-10 min, the photoinitiator is added and heated to 50-70℃. Then, the mixture is stirred at a speed of 1500-2500 rpm for 10-20 min, and then the polyurethane acrylate is added in three times and mixed at a speed of 400-600 rpm to obtain a mixed glue solution. Step 11: The UV monomer is added to the mixed glue solution in step 10 under nitrogen protection, and stirred at a speed of 800-1000 rpm for 20-30 min. Then, the mixture is transferred to a vacuum filter tank for defoaming and filtering. After that, the mixture is taken out and aged at 35-45℃ for 5-10 hours to obtain the UV optical transfer glue.

[0007] Further preferably, in step 11, the filtering is performed in two stages in a polypropylene filter with a size of 5-15 μm.

[0008] Further preferably, the optical ink layer is made of the following mass fractions of optical ink materials: UV polyester acrylate 15-30%, UV modified epoxy acrylate 25-40%, spiropyran-based compound 10-23%, mixed solvent 11-22%, photoinitiator 3-7%, active amine 4-8%, leveling agent 0.4-1%, pigment 2-7%, dispersant 0.6-2.5%; in the present application, the acrylate hydroxyl value of the UV polyester acrylate is 60±5 mg KOH / g; the epoxy equivalent weight of the UV modified epoxy acrylate is 450-500 g / mol; the mixed solvent is a mixture of ethyl acetate, butyl acetate and PMA propylene glycol monomethyl ether acetate in a mass ratio of 1:4-8:10-15; the mixed solvent can dilute the UV polyester acrylate and the UV modified epoxy acrylate, not only adjusting the viscosity, but also quickly drying and leveling after being coated on the surface of the PET film substrate; in the present application, the leveling agent is a polyether-modified siloxane polymer or a perfluorobutyl ethyl acrylate; it can adjust the ink flowability and surface tension; the polyether-modified siloxane (such as polydimethylsiloxane) can improve the ink flowability, direct the ink flow, and improve the slipperiness and scratch resistance; the perfluorobutyl ethyl acrylate can reduce the ink viscosity, make the bubbles escape quickly, and achieve the functions of defoaming and leveling. In the present application, the active amine is N-methyldiethanolamine or triethanolamine; the amine group of N-methyldiethanolamine can capture the peroxide radicals generated by ultraviolet photolysis, block the oxidation chain reaction; the amine group of triethanolamine can form a donor-acceptor complex with the spiropyran open ring body, inhibit the degradation of the chromophore; the active amine not only promotes the initiation efficiency of the photoinitiator and improves the ink curing hardness, but also inhibits oxygen inhibition when participating in the reaction of the UV polyester acrylate, the spiropyran group compound, etc., blocks the oxidation path of the spiropyran, prevents the ink from yellowing, and thus improves the stability of the ink dispersion system.

[0009] Further preferably, the photoinitiator is 1-hydroxycyclohexyl phenyl ketone or TPO initiator, also known as photoinitiator 184 and UV-184, and the TPO chemical name is 2,4,6-trimethylbenzyl-diphenyl phosphine; the photolysis product of TPO is trimethylbenzoyl radical and diphenyl phosphine radical, and the absorption wavelength of the photolysis product moves to the short wave, has the effect of photobleaching, and is beneficial to the transmission of ultraviolet light; in the present application, the photoinitiator can absorb light waveband radiant energy, excite chemical reaction, initiate free radical polymerization ability, and produce intermediate substances, which can initiate polymerization of the ultraviolet light curing system under ultraviolet light irradiation, and can inhibit the long-term non-yellowing effect of the ink; the TPO as the photoinitiator cooperates with the active amine to improve the deep curing efficiency and avoid yellowing caused by migration of unreacted monomers; the spiropyran group-containing compound is one or more of undecylenoyloxy spiropyran, N-hydroxyethyl spiropyran ester of acrylate, polyurethane containing dihydroxy spiropyran, and polyurethane containing spiropyran; the spiropyran group-containing compound exhibits the effect of ultraviolet photochromism, the open ring structure of the spiropyran emits orange-red fluorescence under ultraviolet light irradiation, and is easy to observe; when strong light is irradiated on the surface of the spiropyran compound, the spiropyran can absorb ultraviolet in the strong light, thereby improving the antioxidant property and significantly enhancing the fatigue resistance; the spiropyran in the closed ring state absorbs yellow light of 480-600 nm, which has a significant effect of offsetting the yellowing caused by amine oxidation; the spiropyran can absorb bending stress and reduce the generation of cracks; the UV modified epoxy acrylate can improve the surface hardness as a rigid skeleton.

[0010] In the present application, the preparation process of the optical ink material comprises the following steps: The spiropyran group-containing compound is heated to 50-70℃, then the UV modified epoxy acrylate is added for pre-mixing for 30 min, and then cooled to 35-45℃, and the UV polyester acrylate is added for mixing until uniform, to obtain a pre-mixed material; The mixed solvent is mixed with the dispersant and the pigment to form a nano-powder fine material, which is then added to the pre-mixed material for mixing and stirring, and then heated to 80-85℃, and then the active amine and the leveling agent are added for mixing and stirring for 20 min, and then ultrasonic oscillation is used for dispersion for 10 min, and then cooled to 30-35℃, and then stored in the dark for 10-20 days to obtain the optical ink layer material.

[0011] Further preferably, the particle size of the nano-powder fine material is 200-400 nm, and the viscosity of the polyurethane acrylate is controlled to be 15000-20000 mPa·s.

[0012] Further preferably in the above scheme, the UV optical transfer adhesive is made of the following materials by mass fraction: UV polyester acrylate 15%, UV modified epoxy acrylate 35%, photoinitiator 5%, polyurethane acrylate 30%, and UV monomer 15%, and the thickness of the frosted layer is 12 μm.

[0013] According to another aspect of the present application, the present application provides a method for manufacturing a UV optical film, comprising the following steps: First, configure the UV optical ink, control the viscosity of the UV optical ink at 16"~18", put the UV optical ink into the nano coating machine, use the precise micro-concave ceramic coating roller to coat the UV optical ink on the outer surface of the substrate 1, and then send it into the 10kw power mercury lamp for UV curing to form an optical ink layer; Coat a transparent adhesive layer on the surface of the optical ink layer, and after curing, coat a UV optical transfer adhesive on the inner surface of the substrate to form a frosted layer; Coat an inner protective film layer and an outer protective film layer on the surface of the frosted layer and the surface of the transparent adhesive layer respectively, and dry to obtain a UV optical film.

[0014] Further preferably in the above scheme, the UV optical ink is coated on the outer surface of the substrate 1 using a micro-concave ceramic roller with 180~220 mesh and 45° diagonal stripes, and the jumping range of the micro-concave ceramic roller is ≤5 μm; the coating temperature is controlled at 70~100℃.

[0015] Further preferably in the above scheme, the coating temperature is controlled in three temperature zones: preheating zone 80±5℃, coating zone 85±3℃, and leveling zone 95±5℃, and the coating speed is between 15~25 m / min.

[0016] In the present application, the prepared UV optical transfer adhesive and optical ink are respectively coated on the surface of the PET film substrate, and then accelerated drying and curing are performed by ultraviolet irradiation to form a light diffusion film. The UV polyester acrylate serves as a flexible matrix of the light diffusion film and absorbs bending stress. Each branched structure molecule of the polyester acrylate contains 3-5 acrylate groups. The branched structure of the polyester acrylate and the UV modified epoxy acrylate form gradient crosslinking during light curing, the surface area has high crosslinking density to achieve 4H hardness, and the high-branched polyester near the substrate ensures the adhesion between each layer. In the present application, the UV optical film provided by the present application is applied in a light diffusion film, and the light diffusion film is applied in all electronic appliances with electronic display screens, such as display screens of televisions, vehicle displays, smart watches, mobile phones, household appliances, and AI glasses. The present application can reduce the damage of the light diffusion film when applied on the surface of the electronic display screen.

[0017] In summary, the present application has the following technical effects: (1) The ink of the present invention is coated on the surface of PET film substrate and forms an optical ink layer and a frosted layer after drying and curing. It can significantly increase the AG effect on the surface, and the light will not directly harm the eyes. Its surface is not easily scratched. The optical ink has excellent leveling and wetting properties and has the characteristics of high hardness and high adhesion. The optical ink coated on the PET film substrate has excellent bending stress and toughness, and can also effectively prevent discoloration, fingerprint resistance and scratch resistance. (2) The frosted layer material and optical ink layer material of the present invention are coated on the PET film substrate and then cured by ultraviolet light curing (UV) coating technology. The surface can remain uniform and the edge sharpness is high, which greatly improves the clarity. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of a UV optical film material according to the present invention; In the attached diagram, 1 is the substrate, 2 is the frosted layer, 3 is the inner protective film layer, 4 is the optical ink layer, 5 is the transparent adhesive layer, and 6 is the outer protective film layer. Detailed Implementation

[0019] To make the objectives, technical solutions, and advantages of the invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and preferred embodiments. However, it should be noted that many details listed in the specification are merely to provide the reader with a thorough understanding of one or more aspects of the invention, and these aspects of the invention can be achieved even without these specific details.

[0020] Example 1, as Figure 1 As shown, according to the invention, a UV optical film material includes a substrate 1, a frosted layer 2, an inner protective film layer 3, an optical ink layer 4, a transparent adhesive layer 5, and an outer protective film layer 6. The frosted layer and the inner protective film layer are sequentially coated from the inner surface of the substrate 1 outwards, and the optical ink layer, the transparent adhesive layer, and the outer protective film layer are sequentially coated from the outer surface of the substrate 1 outwards. The transparent adhesive layer 5 is a UVOCA adhesive with a thickness of 50 μm. The substrate 1 is a PET film substrate with a thickness of 100 μm. The inner protective film layer 3 and the outer protective film layer 6 are made of PET material with a thickness of 0.2 mm.

[0021] In this embodiment, the frosted layer 2 is made of UV optical transfer adhesive with a thickness of 8 μm. The UV optical transfer adhesive is made of the following materials in the indicated mass fractions: 25% UV polyester acrylate, 45% UV modified epoxy acrylate, 4% photoinitiator, 1% polyurethane acrylate, and 25% UV monomer. The viscosity of the polyurethane acrylate is controlled at 15000 mPa·s. The preparation process of the UV optical transfer adhesive includes the following steps: Step 10: After stirring the UV polyester acrylate and the UV modified epoxy acrylate in the reaction kettle for 10 min, the mixture was left to stand for 10 min, then heated to 50℃, and a photoinitiator was added. After stirring at a speed of 2500 rpm for 10 min, the polyurethane acrylate was added in three portions, with 25% of the total mass added in the first portion, 45% of the total mass added in the second portion, and 30% of the total mass added in the third portion. A mixed glue solution was obtained; Step 11: The UV monomer was added to the mixed glue solution in step 10 under nitrogen protection, and stirred at a speed of 800 rpm for 30 min. The mixture was then transferred to a vacuum filter tank for degassing and filtration, and then aged at 35℃ for 10 hours to obtain a UV optical transfer glue. The filtration in the vacuum filter tank was performed using a 5μm polypropylene filter in two stages.

[0022] In the embodiment, the optical ink layer 4 is made of optical ink materials with the following mass fractions: UV polyester acrylate 15%, UV modified epoxy acrylate 30%, compound containing a spiropyran group 23%, mixed solvent 18%, photoinitiator 3%, active amine 5%, leveling agent 0.8%, pigment 4%, and dispersant 1.2%. The compound containing a spiropyran group is a dihydroxy spiropyran polyurethane or a spiropyran-containing polyurethane, and the leveling agent is a polyether-modified siloxane polymer. The preparation process of the optical ink materials includes the following steps: Step 20: After heating the compound containing a spiropyran group to 50℃, the UV modified epoxy acrylate was added for pre-mixing for 30 min. Then, the mixture was cooled to 35℃, and the UV polyester acrylate was added for mixing until uniform. A pre-mixed material was obtained. Step 21: The mixed solvent, dispersant, and pigment were mixed and ground into a nano-powder fine material, with a particle size of 200 nm. The nano-powder fine material was then added to the pre-mixed material for mixing and stirring at a speed of 500 rpm for 30 min. Then, the mixture was heated to 80℃, and the active amine and leveling agent were added in sequence for mixing and stirring for 20 min. After stirring, the mixture was dispersed using ultrasonic oscillation for 10 min, and then cooled to 30℃. The optical ink layer material was obtained after storing in the dark for 10 days.

[0023] According to another aspect of the present application, a method for manufacturing a UV optical film is provided, which includes the following steps: Step 30: First, prepare the UV optical ink. The viscosity of the UV optical ink is controlled at 16"~18". Place the UV optical ink into a nano-coating machine and use a precision micro-grooved ceramic coating roller to coat the UV optical ink on the outer surface of the substrate 1. The coating of the UV optical ink on the outer surface of the substrate 1 is carried out using a micro-grooved ceramic roller with 180 mesh and 45° diagonal grooves. The runout range of the micro-grooved ceramic roller is ≤5μm. Then, it is sent to a 10kW mercury lamp for UV curing to form the optical ink layer 4. The coating temperature of the UV optical ink coating on the outer surface of the substrate 1 is controlled in three temperature zones: preheating zone 80±5℃, coating zone 84±3℃, and leveling zone 95±5℃. The coating speed is 15m / min. Step 31: Apply a transparent adhesive layer 5 to the surface of the optical ink layer 4. After curing, apply a UV optical transfer adhesive to the inner surface of the substrate 1 to form a frosted layer. Step 32: Apply inner protective film layer 3 and outer protective film layer 6 to the surface of frosted layer and transparent adhesive layer 5 respectively, and dry to obtain UV optical film material.

[0024] Example 2, as Figure 1 As shown, according to the invention, a UV optical film material includes a substrate 1, a frosted layer 2, an inner protective film layer 3, an optical ink layer 4, a transparent adhesive layer 5, and an outer protective film layer 6. The frosted layer and the inner protective film layer are sequentially coated from the inner surface of the substrate 1 outwards, and the optical ink layer, the transparent adhesive layer, and the outer protective film layer are sequentially coated from the outer surface of the substrate 1 outwards. The transparent adhesive layer 5 is a UVOCA adhesive with a thickness of 150 μm. The substrate 1 is a PET film substrate with a thickness of 200 μm. The inner protective film layer 3 and the outer protective film layer 6 are made of PET material with a thickness of 1 mm.

[0025] In this embodiment, the frosted layer 2 is made of UV optical transfer adhesive with a thickness of 20 μm. The UV optical transfer adhesive is made of the following materials in the indicated mass fractions: 1% UV polyester acrylate, 40% UV modified epoxy acrylate, 8% photoinitiator, 45% polyurethane acrylate, and 6% UV monomer. The viscosity of the polyurethane acrylate is controlled at 20000 mPa·s. The preparation process of the UV optical transfer adhesive includes the following steps: Step 10: Add UV polyester acrylate and UV modified epoxy acrylate to the reactor and stir for 30 minutes. Let it stand for 5 minutes. Then heat to 70°C and add photoinitiator. Stir at 1500 rpm for 20 minutes. Then add polyurethane acrylate in three batches at 600 rpm. The first batch is 30% of the total mass of polyurethane acrylate, the second batch is 50% of the total mass, and the third batch is 20% of the total mass to obtain a mixed adhesive. Step 11: under the protection of nitrogen, the UV monomer is added to the mixed glue solution in step 10, after stirring at a speed of 1000 rpm for 20 min, it is transferred to a vacuum filter tank for degassing, filtration and removal, and then it is aged at 45℃ for 5 hours to obtain the UV optical transfer glue; wherein the filtration in the vacuum filter tank is carried out by using a 15μm polypropylene filter in the vacuum filter tank for two-stage filtration.

[0026] In the present application, the optical ink layer 4 is made of optical ink materials with the following mass fractions: UV polyester acrylate 30%, UV modified epoxy acrylate 35%, spiropyran group containing compound 10%, mixed solvent 11%, photoinitiator 7%, active amine 4%, leveling agent 0.4%, pigment 2%, dispersant 0.6%, the spiropyran group containing compound is undecylenoyloxy spiropyran or N-hydroxyethyl spiropyran ester, and the leveling agent is perfluorobutyl ethyl acrylate; the preparation process of the optical ink material includes the following steps: Step 20: after heating the spiropyran group containing compound to 70℃, the UV modified epoxy acrylate is added for pre-mixing for 30 min, and then the UV polyester acrylate is added for mixing uniformly after cooling to 45℃ to obtain a pre-mixed material; Step 21: the mixed solvent is mixed and ground with the dispersant and the pigment to form a nano-powder fine material, wherein the particle size of the nano-powder fine material is 400 nm, then the nano-powder fine material is added to the pre-mixed material for mixing and stirring at a speed of 800 rpm for 30 min, then heated to 85℃, and then the active amine and the leveling agent are added in sequence for mixing and stirring for 20 min, and then dispersed by ultrasonic oscillation for 10 min after stirring is completed, and then cooled to 35℃, and stored in the dark for 20 days to obtain the optical ink layer material.

[0027] According to another aspect of the present application, the present application provides a method for manufacturing a UV optical film material, which includes the following steps: Step 30: first configure the UV optical ink, the viscosity of the UV optical ink is controlled to be 16"~18", the UV optical ink is placed in a nano coating machine, and a precise micro-concave ceramic coating roller is used to coat the UV optical ink on the outer surface of the base material 1, wherein the micro-concave ceramic roller used for coating the UV optical ink on the outer surface of the base material 1 has 220 meshes and 45° diagonal lines, and the jumping range of the micro-concave ceramic roller is ≤5μm, then it is sent to a 10kw power mercury lamp for UV curing to form the optical ink layer 4; wherein the coating temperature of the UV optical ink on the outer surface of the base material 1 is controlled in three temperature zones, and the temperature zone distribution is: preheating zone 80±5℃, coating zone 85±3℃, and leveling zone 95±5℃, and the coating speed is 25m / min; Step 31: Apply a transparent adhesive layer 5 to the surface of the optical ink layer 4. After curing, apply a UV optical transfer adhesive to the inner surface of the substrate 1 to form a frosted layer. Step 32: Apply inner protective film layer 3 and outer protective film layer 6 to the surface of frosted layer and transparent adhesive layer 5 respectively, and dry to obtain UV optical film material.

[0028] Example 3, as Figure 1 As shown, according to the invention, a UV optical film material includes a substrate 1, a frosted layer 2, an inner protective film layer 3, an optical ink layer 4, a transparent adhesive layer 5, and an outer protective film layer 6. The frosted layer and the inner protective film layer are sequentially coated from the inner surface of the substrate 1 outwards, and the optical ink layer, the transparent adhesive layer, and the outer protective film layer are sequentially coated from the outer surface of the substrate 1 outwards. The transparent adhesive layer 5 is a UVOCA adhesive with a thickness of 100 μm. The substrate 1 is a PET film substrate with a thickness of 150 μm. The inner protective film layer 3 and the outer protective film layer 6 are made of PET material with a thickness of 0.8 mm.

[0029] In this embodiment, the frosted layer 2 is made of UV optical transfer adhesive with a thickness of 15 μm. The UV optical transfer adhesive is made of the following materials by mass fraction: 20% UV polyester acrylate, 30% UV modified epoxy acrylate, 6% photoinitiator, 26% polyurethane acrylate, and 18% UV monomer. The viscosity of the polyurethane acrylate is controlled at 18000 mPa·s. The preparation process of the UV optical transfer adhesive includes the following steps: Step 10: Add UV polyester acrylate and UV modified epoxy acrylate to the reactor and stir for 20 minutes. Let it stand for 8 minutes. Then heat to 65°C and add photoinitiator. Stir for 15 minutes at 2000 rpm. Then add polyurethane acrylate in three batches at 500 rpm. The first batch is 35% of the total mass of polyurethane acrylate, the second batch is 50% of the total mass, and the third batch is 15% of the total mass to obtain a mixed adhesive. Step 11: Under nitrogen protection, add the UV monomer to the mixed adhesive solution in step 10, stir at 900 rpm for 25 min, transfer to a vacuum filter tank for degassing and filtration, and then cure at 40°C for 8 hours to obtain the UV optical transfer adhesive; the filtration in the vacuum filter tank is a two-stage filtration using a 12μm polypropylene filter element.

[0030] In the embodiment, the optical ink layer 4 is made of optical ink materials with the following mass fractions: 20% of UV polyester acrylate, 25% of UV modified epoxy acrylate, 15% of spiropyran group-containing compounds, 22% of mixed solvents, 5% of photoinitiators, 6% of active amines, 0.5% of leveling agents, 5% of pigments, and 2.5% of dispersants. The spiropyran group-containing compounds are polyurethane containing dihydroxyspiropyran or undecylenoyloxy spiropyran, and the leveling agent is a polyether-modified siloxane polymer. The preparation process of the optical ink materials includes the following steps: Step 20, after the spiropyran group-containing compounds are heated to 60°C, the UV modified epoxy acrylate is added for premixing for 30 minutes, and then the UV polyester acrylate is added for mixing uniformly after being cooled to 40°C, to obtain a premixing material. Step 21, the mixed solvents are mixed and ground with the dispersants and pigments into nano-powder fine materials, wherein the particle size of the nano-powder fine materials is 300 nm, and then the nano-powder fine materials are added into the premixing material for mixing and stirring at a speed of 600 rpm for 30 minutes, and then heated to 82°C, and then the active amines and leveling agents are sequentially added for mixing and stirring for 20 minutes, and then dispersed by ultrasonic oscillation for 10 minutes after the stirring is completed, and then cooled to 32°C, to obtain the optical ink layer material after being stored in the dark for 15 days.

[0031] According to another aspect of the present application, the present application provides a production method of a UV optical film material, which includes the following steps: Step 30, first configure the UV optical ink, and control the viscosity of the UV optical ink to be 16" to 18". Put the UV optical ink into a nano coating machine, and use a precise micro-concave ceramic coating roller to coat the UV optical ink on the outer surface of the base material 1. In this process, the micro-concave ceramic roller with 200 meshes and 45° diagonal lines is used for coating, and the jumping range of the micro-concave ceramic roller is ≤5 μm. Then, send it into a 10 kw power mercury lamp for UV curing to form the optical ink layer 4. In this process, the coating temperature of the UV optical ink on the outer surface of the base material 1 is controlled in three temperature zones, and the temperature zone distribution is: a preheating zone of 80±5°C, a coating zone of 86±3°C, and a leveling zone of 95±3°C. The coating speed is 20 m / min. Step 31, coat the transparent adhesive layer 5 on the surface of the optical ink layer 4, and after curing, coat the UV optical transfer adhesive on the inner surface of the base material 1 to form a frosted layer. Step 32, coat the inner protective film layer 3 and the outer protective film layer 6 on the surface of the frosted layer and the surface of the transparent adhesive layer 5, respectively, and dry to obtain the UV optical film material.

[0032] In Example 4, as Figure 1As shown, according to the UV optical film material of the application, the UV optical film material comprises a substrate 1, a frosted layer 2, an inner protective film layer 3, an optical ink layer 4, a transparent adhesive layer 5 and an outer protective film layer 6, the frosted layer and the inner protective film layer are coated on the inner surface of the substrate 1 in turn, and the optical ink layer, the transparent adhesive layer and the outer protective film layer are coated on the outer surface of the substrate 1 in turn; the transparent adhesive layer 5 is UVOCA adhesive with a thickness of 80 μm, the substrate 1 is a PET film substrate with a thickness of 170 μm; the inner protective film layer 3 and the outer protective film layer 6 are made of PET material with a thickness of 0.6 mm.

[0033] In the embodiment, the frosted layer 2 is made of UV optical transfer adhesive with a thickness of 12 μm; the UV optical transfer adhesive is made of materials with the following mass fractions: UV polyester acrylate 15%, UV modified epoxy acrylate 35%, photoinitiator 5%, polyurethane acrylate 30%, UV monomer 15%, the viscosity of the polyurethane acrylate is controlled at 16000 Pa·s; the preparation process of the UV optical transfer adhesive comprises the following steps: Step 10: After stirring the UV polyester acrylate and the UV modified epoxy acrylate in the reaction kettle for 15 min and standing for 8 min, the photoinitiator is added after heating to 60℃, stirring is carried out at a rotation speed of 1800 rpm for 12 min, and then the polyurethane acrylate is added in three times under the condition of stirring speed of 480 rpm, wherein the first time adds 40% of the total mass of the polyurethane acrylate, the second time adds 40% of the total mass, and the third time adds 20% of the total mass of the total mass, to obtain a mixed adhesive solution; Step 11: Under the protection of nitrogen, the UV monomer is added to the mixed adhesive solution in step 10, stirring is carried out at a rotation speed of 850 rpm for 22 min, then it is transferred to a vacuum filter tank for defoaming and filtering, and then it is taken out, and then it is aged at 38℃ for 6 hours to obtain the UV optical transfer adhesive; wherein the filtering in the vacuum filter tank is carried out by using a polypropylene filter core with a size of 10 μm for two-stage filtering in the vacuum filter tank.

[0034] In the embodiment, the optical ink layer 4 is made of optical ink materials with the following mass fractions: UV polyester acrylate 15%, UV modified epoxy acrylate 32%, spiropyran group-containing compound 18%, mixed solvent 15%, photoinitiator 3%, active amine 8%, leveling agent 1%, pigment 7%, dispersing agent 1%, the spiropyran group-containing compound is spiropyran-containing polyurethane or N-hydroxyethyl spiropyran ester, and the leveling agent is perfluorobutyl ethyl acrylate; the preparation process of the optical ink material comprises the following steps: Step 20, after the spiro group containing the heating to 62℃, the UV modified epoxy acrylate is added to the premixing 30min, and then cooled to 38℃, the UV polyester acrylate is added to mix evenly, to get the premixing material; Step 21, the mixed solvent is mixed with dispersant and pigment to form nano powder fine material, wherein the particle size of the nano powder fine material is 320nm, the nano powder fine material is added to the premixing material to mix and stir, the stirring speed is 650rpm, the stirring time is 30min, then heated to 82℃, then active amine and leveling agent are added to mix and stir for 20min, after stirring, ultrasonic oscillation is used for 10min, then cooled to 32℃, and the optical ink layer material is obtained after 12 days of light storage.

[0035] According to another aspect of the present application, the present application provides a method for manufacturing a UV optical film material, comprising the following steps: Step 30, first configure the UV optical ink, the viscosity of the UV optical ink is controlled at 16"~18", the UV optical ink is put into the nano coating machine, and the UV optical ink is coated on the outer surface of the substrate 1 using a precise micro concave ceramic coating roller, wherein the UV optical ink is coated on the outer surface of the substrate 1 using a micro concave ceramic roller with 210 mesh and 45° diagonal stripes, the micro concave ceramic roller has a jumping range of ≤5μm, then it is sent to a 10kw power mercury lamp for UV curing to form an optical ink layer 4; the coating temperature of the UV optical ink coated on the outer surface of the substrate 1 is controlled in three temperature zones, and the temperature zone distribution is: preheating zone 75±5℃, coating zone 83±3℃, and leveling zone 92±5℃, the coating speed is 18m / min; Step 31, the transparent adhesive layer 5 is coated on the surface of the optical ink layer 4, and after curing, the UV optical transfer adhesive is coated on the inner surface of the substrate 1 to form a frosted layer; Step 32, the inner protective film layer 3 and the outer protective film layer 6 are respectively coated on the surface of the frosted layer and the surface of the transparent adhesive layer 5, and the UV optical film material is obtained after drying.

[0036] After the frosted layer 2 and the optical ink layer 4 are coated on the two side surfaces of the substrate 1, three ling pencil tests, THB test 500H verification, PCT aging test and QUV aging test are carried out in sequence, the UV optical film material has excellent transparency, and the adhesion of the two side surfaces of the UV optical film material reaches 5B requirement, and the test results are shown in Table 1: Table 1: test results table In addition, after the sanding layer 2 and the optical ink layer 4 are coated on both sides of the substrate 1, the optical transmittance measuring instrument is used for detection, the left, middle and right, front and back transmittance difference cannot be greater than 0.5%; and the color difference instrument is used for color detection by using the spectrophotometer, the values of the CIELAB color space coordinates L, A and B of each batch are consistent, and the color difference value ΔE is not more than 0.3; the test method for the adhesion test is that the 3M tape is used for testing when the 1mm*1mm size is tested by the cross-hatch knife, the surface color is not pulled off, and the whole test result meets the requirements. The test results in Table 1 show that the UV optical film material has high hardness, scratch resistance and good optical performance, the 2H adhesion does not change after the UV optical film material is boiled for 2 hours, and the surface does not become white.

[0037] The above only describes the preferred embodiments of the application, and it should be noted that those skilled in the art can make some improvements and refinements without departing from the principles of the application, and these improvements and refinements should also be considered as the protection scope of the application.

Claims

1. A UV optical film material, characterized by: The UV optical film material comprises a substrate, a frosted layer, an inner protective film layer, an optical ink layer, a transparent adhesive layer and an outer protective film layer, the frosted layer and the inner protective film layer are coated on the inner surface of the substrate in sequence from outside to inside, and the optical ink layer, the transparent adhesive layer and the outer protective film layer are coated on the outer surface of the substrate in sequence from outside to inside, and the frosted layer is made of UV optical transfer glue.

2. The UV optical film of claim 1, wherein: The transparent adhesive layer is UVOCA glue with a thickness of 50-150 μm, the substrate is a PET film substrate with a thickness of 100-200 μm, and the inner protective film layer and the outer protective film layer are made of PET material with thicknesses of 0.2-1 mm.

3. The UV optical film of claim 1, wherein: The thickness of the frosted layer is 8-20 μm, and the UV optical transfer glue is made of the following materials in mass fraction: UV polyester acrylate 1-25%, UV modified epoxy acrylate 30-45%, photoinitiator 4-8%, polyurethane acrylate 1-45% and UV monomer 6-25%; the photoinitiator is TPO initiator or 1-hydroxycyclohexyl phenyl ketone, and the UV monomer is one or more of HHDA 1,6-hexanediol diacrylate with two functional groups, ACMO acryloyl morpholine with a single functional group and THFA tetrahydrofurfuryl acrylate with a single functional group; the preparation process of the UV optical transfer glue comprises the following steps: Step 10: UV polyester acrylate and UV modified epoxy acrylate are added into a reaction kettle and stirred for 10-30 min, then left to stand for 5-10 min, then heated to 50-70 ℃, and then the photoinitiator is added, and then stirred at a rotation speed of 1500-2500 rpm for 10-20 min, and then the polyurethane acrylate is added in three times under the condition of a stirring speed of 400-600 rpm to obtain a mixed glue solution; Step 11: the UV monomer is added into the mixed glue solution in step 10 under nitrogen protection, and then stirred at a rotation speed of 800-1000 rpm for 20-30 min, and then transferred to a vacuum filter tank for defoaming and filtering, and then taken out, and then aged at 35-45 ℃ for 5-10 hours to obtain the UV optical transfer glue.

4. The UV optical film of claim 3, wherein: In step 11, the filtering is carried out in two stages in a polypropylene filter core with a size of 5-15 μm, and the viscosity of the polyurethane acrylate is controlled to be 15000-20000 mPa·s.

5. The UV optical film of claim 3, wherein: The UV optical transfer glue is made of the following materials in mass fraction: UV polyester acrylate 15%, UV modified epoxy acrylate 35%, photoinitiator 5%, polyurethane acrylate 30% and UV monomer 15%, and the thickness of the frosted layer is 12 μm.

6. The UV optical film of claim 1, wherein: The optical ink layer is made of optical ink materials with the following mass fractions: UV polyester acrylate 15-30%, UV modified epoxy acrylate 25-40%, compounds containing spiropyran groups 10-23%, mixed solvent 11-22%, photoinitiator 3-7%, active amine 4-8%, leveling agent 0.4-1%, pigment 2-7%, and dispersant 0.6-2.5%, wherein the compounds containing spiropyran groups are one or more of undecylenoyloxy spiropyran, N-hydroxyethyl spiropyran acrylate, polyurethane containing dihydroxyspiro pyran, and polyurethane containing spiro pyran, the mixed solvent is a mixture of ethyl acetate, butyl acetate, and PMA propylene glycol monomethyl ether acetate, the photoinitiator is TPO initiator or 1-hydroxy cyclohexyl phenyl ketone, the active amine is N-methyl diethanolamine or triethanolamine, and the leveling agent is polyether modified siloxane polymer or perfluorobutyl ethyl acrylate; the preparation process of the optical ink materials comprises the following steps: The compounds containing spiropyran groups are heated to 50-70°C, and then the UV modified epoxy acrylate is added for pre-mixing for 30 minutes, and then the mixture is cooled to 35-45°C and the UV polyester acrylate is added for mixing until uniform, to obtain a pre-mixed material; The mixed solvent is mixed with the dispersant and the pigment to be ground into nano-powder fine material, wherein the particle size of the nano-powder fine material is 200-400 nm, and then the nano-powder fine material is added to the pre-mixed material for mixing and stirring, and then heated to 80-85°C, and then the active amine and the leveling agent are added for mixing and stirring for 20 minutes, and then ultrasonic oscillation is used for dispersion for 10 minutes, and then cooled to 30-35°C, and then stored in the dark for 10-20 days to obtain the optical ink layer material.

7. A method of making a UV optical film as defined in any of claims 1 to 6, wherein The manufacturing method comprises the following steps: The viscosity of the UV optical ink is controlled to be 16-18 inches, the UV optical ink is placed in a nano coating machine, a precision micro-concave ceramic coating roller is used to coat the UV optical ink on the outer surface of the substrate, and then the substrate is sent to a 10-kw power mercury lamp for UV curing to form an optical ink layer; A transparent adhesive layer is coated on the surface of the optical ink layer, and after curing, a UV optical transfer adhesive is coated on the inner surface of the substrate to form a frosted layer; An inner protective film layer and an outer protective film layer are respectively coated on the surface of the frosted layer and the surface of the transparent adhesive layer, and then dried to obtain a UV optical film material.

8. The method of claim 7, wherein the UV optical film is made by the steps of: The UV optical ink is coated on the outer surface of the substrate using a micro-concave ceramic roller with 180-220 mesh and 45° diagonal lines, and the jumping range of the micro-concave ceramic roller is ≤5 μm; the coating temperature is controlled to be between 70-100°C.

9. The method of claim 8, wherein the UV optical film is made by a process comprising: The coating temperature is controlled in three temperature zones: preheating zone 80±5°C, coating zone 85±3°C, and leveling zone 95±5°C, and the coating speed is between 15-25 m / min.

10. The UV optical film material according to any one of claims 1-9 is applied in light diffusion film and electronic display screen.

Citation Information

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