Polymer-dispersed liquid crystal film
The polymer dispersed liquid crystal film with flat liquid crystal droplets and optimized light transmittance properties addresses light leakage issues in PDLC films, enhancing light-blocking capabilities and switching efficiency.
Patent Information
- Application Number
- JP2024055255
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-29
- Publication Date
- 2025-10-10
AI Technical Summary
Conventional PDLC films using dichroic dyes have insufficient light-blocking properties in the colored state, leading to light leakage, and there is a need for improved light-blocking properties while maintaining the ability to switch between colored and non-colored states.
A polymer dispersed liquid crystal film with a specific configuration comprising a first transparent conductive film, a polymer dispersed liquid crystal layer containing flat liquid crystal droplets with a dichroic dye, and a second transparent conductive film, where the droplets have an average flatness of 0.3 or more, and the film is designed to have a total light transmittance of 20% or less in the colored state and 20% or more in the non-colored state.
The film effectively reduces light leakage and improves light-blocking properties in the colored state by ensuring sufficient dichroic dye presence in the thickness direction, allowing it to switch between colored and non-colored states at appropriate operating voltages.
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Figure 2025153007000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a polymer dispersed liquid crystal film. [Background technology]
[0002] A PDLC film, which has a polymer dispersed liquid crystal (PDLC) layer containing a polymer matrix and liquid crystal droplets between a pair of transparent electrode layers, can change the degree of scattering of transmitted light in the PDLC layer depending on the amount of applied voltage. For example, a PDLC film can be switched between a light-transmitting state (transparent state) and a light-scattering state (scattering state) by switching between an applied voltage state and an unapplied voltage state (Patent Document 1).
[0003] In the above-mentioned PDLC film, when a dichroic dye is contained in the liquid crystal component droplets, by switching between an applied voltage state and an unapplied voltage state, it is possible to switch between a state in which light absorption by the dichroic dye is suppressed (non-colored state) and a state in which light absorption by the dichroic dye occurs (colored state) (Patent Document 2). Such PDLC films are being applied as light-control films useful for privacy protection, information security, energy conservation, etc. to windows, walls, partitions, etc. in vehicles such as cars and trains, offices, commercial facilities, residences, etc. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2002-189123 [Patent Document 2] International Publication No. 2022 / 186062 Summary of the Invention [Problem to be solved by the invention]
[0005] Conventional PDLC films using dichroic dyes may have insufficient light-blocking properties in applications where light-blocking properties are required. Therefore, there is a demand for improving the light-blocking properties of PDLC films in a colored state (in other words, reducing light leakage).
[0006] The present invention has been made to solve the above problems, and its main object is to provide a PDLC film that can be switched between a colored state and a non-colored state and has improved light-blocking properties in the colored state. In addition, it is generally preferable that the operating voltage of a PDLC film is low. [Means for solving the problem]
[0007] [1] According to one aspect of the present invention, there is provided a polymer dispersed liquid crystal film comprising, in this order, a first transparent conductive film, a polymer dispersed liquid crystal layer, and a second transparent conductive film, wherein the polymer dispersed liquid crystal layer comprises a polymer matrix and droplets dispersed in the polymer matrix, the droplets containing a liquid crystal component and a dichroic dye, and the average flatness of the droplets is 0.3 or more. [2] In the polymer dispersed liquid crystal film according to the above [1], the droplets may have an average particle size of 0.1 μm or more and 10 μm or less in a cross section perpendicular to the main surface. [3] In the polymer dispersed liquid crystal film according to the above [1] or [2], the content of the dichroic dye in the polymer dispersed liquid crystal layer may be 0.5% by weight or more. [4] In the polymer dispersed liquid crystal film according to any one of the above [1] to [3], the thickness of the polymer dispersed liquid crystal layer may be 30 μm or less. [5] The polymer dispersed liquid crystal film according to any one of [1] to [4] above may have a total light transmittance of 20% or less when no voltage is applied. [6] The polymer dispersed liquid crystal film according to any one of [1] to [5] above may have a total light transmittance of 20% or more when a voltage is applied. [7] The polymer dispersed liquid crystal film according to any one of [1] to [6] above may have a haze of 20% or less when a voltage is applied. [Effects of the Invention]
[0008] According to an embodiment of the present invention, the droplets of the liquid crystal component containing the dichroic dye are flat in the thickness direction, which reduces light leakage even when the PDLC layer is thin. As a result, a PDLC film can be obtained that can switch between a colored state and a non-colored state at an appropriate operating voltage and has improved light-blocking properties in the colored state. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1 is a schematic diagram illustrating a method for reducing light leakage in a PDLC film using a dichroic dye. [Figure 2] FIG. 1 is a schematic diagram illustrating the configuration of a PDLC film in a voltage-applied state according to one embodiment of the present invention. [Figure 3] FIG. 1 is a schematic diagram illustrating the structure of a PDLC film in the absence of applied voltage according to one embodiment of the present invention. [Figure 4] FIG. 10 is a schematic diagram illustrating a method for measuring the oblateness of a liquid crystal droplet. DETAILED DESCRIPTION OF THE INVENTION
[0010] Preferred embodiments of the present invention will be described below, but the present invention is not limited to these embodiments. Furthermore, in order to clarify the explanation, the drawings may show the width, thickness, shape, etc. of each part more schematically than in the embodiments, but these are merely examples and are not intended to limit the interpretation of the present invention. In this specification, the symbol "to" indicating a numerical range includes the upper and lower limit values.
[0011] A. Polymer dispersed liquid crystal (PDLC) film A PDLC film according to an embodiment of the present invention includes, in this order, a first transparent conductive film, a PDLC layer, and a second transparent conductive film, the PDLC layer including a polymer matrix and droplets (hereinafter sometimes referred to as "liquid crystal droplets") dispersed in the polymer matrix and containing a liquid crystal component and a dichroic dye. The liquid crystal droplets in the PDLC layer have an average flatness of, for example, 0.3 or more.
[0012] In PDLC films using dichroic dyes, a small PDLC layer thickness is preferable from the viewpoint of reducing operating voltage. However, reducing the thickness of the PDLC layer tends to increase light leakage. Here, as shown in FIG. 1(a), reducing the thickness of the PDLC layer 20 and increasing the concentration of dichroic dye in the liquid crystal droplets 25 can be considered to reduce light leakage. However, when the thickness of the PDLC layer 20 is small, light leakage may occur in areas where the amount of liquid crystal droplets 25 present in the thickness direction (more specifically, the amount of dichroic dye present) is insufficient. To address this issue, as shown in FIG. 1(b), reducing the particle size of the liquid crystal droplets 25 and improving the uniformity of their dispersion can be considered to reduce light leakage. However, this method has the problem of increasing the operating voltage. In contrast, in a PDLC film according to an embodiment of the present invention, as shown in FIG. 1(c), the liquid crystal droplets 25 are flat, allowing a sufficient amount of liquid crystal droplets 25 (more specifically, dichroic dye) to be present in the thickness direction even when the PDLC layer 20 is thin. This effectively suppresses light leakage in a thin PDLC layer, resulting in a PDLC film that can be switched between a colored state and a non-colored state at an appropriate operating voltage and has improved light-blocking properties in the colored state.
[0013] As described above, the appearance of the PDLC film changes depending on the applied voltage. In one embodiment, the PDLC film is in a non-colored state when a voltage is applied and in a colored state when no voltage is applied (normal mode). In another embodiment, the PDLC film is in a colored state when a voltage is applied and in a non-colored state when no voltage is applied (reverse mode). Here, the "non-colored state" does not mean that the PDLC film is completely colorless, as long as the dichroic dye absorbs less light than in the "colored state."
[0014] 2 and 3 are schematic cross-sectional views illustrating the configuration of an example of a normal-mode PDLC film according to an embodiment of the present invention. FIG. 2 illustrates a state in which a voltage is applied to the PDLC layer (non-colored state), and FIG. 3 illustrates a state in which a voltage is not applied to the PDLC layer (colored state). The PDLC film 100 includes, in order, a first transparent conductive film 10, a PDLC layer 20 including a polymer matrix 22 and liquid crystal droplets 25 dispersed in the polymer matrix 22, and a second transparent conductive film 30. The liquid crystal droplets 25 are so-called guest-host liquid crystal droplets including a liquid crystal component 23 and a dichroic dye 24. As shown in FIG. 2, when a voltage is applied, the liquid crystal component 23 is oriented along the electric field direction (thickness direction in the illustrated example), and the dichroic dye 24 is also oriented along the liquid crystal component 23. This suppresses light absorption by the dichroic dye 24, resulting in the PDLC film 100 being in a non-colored state. Furthermore, as a result of the decrease in the difference between the refractive index of the liquid crystal droplets 25 and that of the polymer matrix 22, the PDLC film 100 exhibits a low haze. On the other hand, as shown in Figure 3, when no voltage is applied, the degree of orientation in the thickness direction of the liquid crystal component 23 and dichroic dye 24 in the liquid crystal droplets 25 decreases (in the illustrated example, the directors of the liquid crystal component and dichroic dye are distributed in-plane), and therefore at least some wavelengths of light are absorbed by the dichroic dye 24, causing the PDLC film 100 to become colored. Furthermore, as a result of the increase in the difference between the refractive index of the liquid crystal droplets 25 and that of the polymer matrix 22, the PDLC film 100 exhibits a high haze.
[0015] Although not shown, in a reverse mode PDLC film, an alignment film is provided on the PDLC layer side surface of the transparent conductive film, so that when no voltage is applied, the liquid crystal component 23 and dichroic dye 24 in the liquid crystal droplets 25 are aligned in the thickness direction, resulting in a non-colored state, and when a voltage is applied, the alignment state of the liquid crystal component 23 and dichroic dye 24 is changed, resulting in a colored state.
[0016] The total light transmittance of a PDLC film in a colored state is typically lower than that of a PDLC film in an uncolored state. The total light transmittance of a PDLC film in a colored state is, for example, 20% or less, and may be 10% or less, 5% or less, or 3% or less, and may be, for example, 0.1% or more, or 0.3% or more. The total light transmittance of a PDLC film in an uncolored state is, for example, 20% or more, 25% or more, or 30% or more, and may be, for example, 70% or less, or 60% or less. The difference in total light transmittance between the colored and uncolored states of the PDLC film may be, for example, 10% or more, 20% or more, or 30% or more. The total light transmittance can be measured according to JIS K 7361. For example, the total light transmittance can be measured using a haze meter (manufactured by Nippon Denshoku Co., Ltd., product name "NDH4000").
[0017] The haze of a PDLC film in a colored state is typically higher than that of a PDLC film in an uncolored state. The haze of a PDLC film in a colored state may be, for example, 60% or more, 70% or more, or 80% or more, or, for example, 100% or less, 99.9% or less, or 99.8% or less. The haze of a PDLC film in an uncolored state may be, for example, 20% or less, 15% or less, or 10% or less, or, for example, 0.5% or more, 1% or more, or 2% or more. The difference in haze between the colored and uncolored states of a PDLC film may be, for example, 10% or more, 20% or more, 30% or more, or 40% or more. Haze can be measured according to JIS K 7136. For example, haze can be measured using a haze meter (manufactured by Nippon Denshoku Co., Ltd., product name "NDH4000").
[0018] The voltage applied to the PDLC film during voltage application is a voltage capable of operating the PDLC film (operating voltage), and may be, for example, 5 V to 200 V, and preferably 10 V to 150 V. In this specification, "when a voltage is applied" or "voltage applied state" refers to a state in which an operating voltage is applied to the PDLC film, and may be, for example, a state in which a voltage of 100 V is applied.
[0019] The total thickness of the PDLC film is, for example, 30 μm to 250 μm, and preferably 50 μm to 150 μm.
[0020] A-1. First transparent conductive film The first transparent conductive film 10 typically includes a first transparent substrate 12 and a first transparent electrode layer 14 provided on one side thereof (the PDLC layer 20 side). The first transparent conductive film 10 may optionally include a hard coat layer on one or both sides of the first transparent substrate 12, and may also include a refractive index adjusting layer between the first transparent substrate 12 and the first transparent electrode layer 14.
[0021] The surface resistance value of the first transparent conductive film is preferably 1 Ω / □ to 1000 Ω / □, more preferably 5 Ω / □ to 300 Ω / □, and even more preferably 10 Ω / □ to 200 Ω / □.
[0022] The haze value of the first transparent conductive film is preferably 20% or less, more preferably 10% or less, and even more preferably 0.1% to 10%.
[0023] The total light transmittance of the first transparent conductive film is preferably 40% or more, more preferably 60% or more, and even more preferably 80% or more.
[0024] The first transparent substrate may be formed using any appropriate material. Typically, the first transparent substrate is a polymer film containing a thermoplastic resin as a main component. Examples of thermoplastic resins include polyester-based resins; cycloolefin-based resins such as polynorbornene; acrylic resins; polycarbonate-based resins; and cellulose-based resins. Of these, polyester-based resins, cycloolefin-based resins, and acrylic resins are preferred. These resins are excellent in transparency, mechanical strength, thermal stability, moisture-blocking properties, and the like. The above thermoplastic resins may be used alone or in combination of two or more.
[0025] The thickness of the first transparent substrate is preferably 200 μm or less, more preferably 3 μm to 100 μm, and even more preferably 5 μm to 70 μm. By setting the thickness of the first transparent substrate to 200 μm or less, the function of the PDLC layer can be fully exhibited.
[0026] The total light transmittance of the first transparent substrate is preferably 40% or more, more preferably 60% or more, and even more preferably 80% or more.
[0027] The first transparent electrode layer can be formed using a metal oxide such as indium tin oxide (ITO), zinc oxide (ZnO), or tin oxide (SnO2). In this case, the metal oxide may be an amorphous metal oxide or a crystallized metal oxide. The first transparent electrode layer can also be formed from metal nanowires such as silver nanowires (AgNWs), carbon nanotubes (CNTs), an organic conductive film, a metal layer, or a laminate thereof. Preferably, a transparent electrode layer containing ITO is formed. A transparent electrode layer containing ITO has excellent transparency. The first transparent electrode layer can be patterned into a desired shape depending on the purpose.
[0028] The total light transmittance of the first transparent electrode layer is preferably 85% or more, more preferably 87% or more, and even more preferably 90% or more. By using a transparent electrode layer having a total light transmittance in this range, a PDLC film having a high total light transmittance in an uncolored state can be obtained. The higher the total light transmittance, the more preferable it is, and the upper limit is, for example, 99%.
[0029] The thickness of the first transparent electrode layer is, for example, 10 nm or more, preferably 15 nm or more, and for example, 50 nm or less, preferably 35 nm or less, more preferably 30 nm or less.
[0030] The first transparent electrode layer is provided on one surface of the first transparent substrate by, for example, sputtering. After forming the metal oxide layer by sputtering, it can be crystallized by annealing. Annealing is performed by heat treatment at, for example, 120°C to 300°C for 10 to 120 minutes.
[0031] The refractive index adjusting layer and the hard coat layer may have a structure well known in the art, and therefore detailed description of their structures will be omitted.
[0032] A-2. Polymer dispersed liquid crystal layer The PDLC layer 20 includes a polymer matrix 22 and liquid crystal droplets 25 dispersed in the polymer matrix 22. The liquid crystal droplets 25 include a liquid crystal component 23 and a dichroic dye 24. As described above, the average flatness of the liquid crystal droplets in the PDLC layer is, for example, 0.3 or more, preferably 0.4 or more, and more preferably 0.5 or more. The liquid crystal droplets being flat in the thickness direction can effectively suppress light leakage through the PDLC film in a colored state. The average flatness can be, for example, 0.9 or less, or, for example, 0.8 or less.
[0033] The average oblateness of the liquid crystal droplets can be determined by the following method. (1) A microscopic image of a cross section perpendicular to the main surface of the PDLC layer was obtained, and for each of 50 liquid crystal droplets randomly selected from the image, the oblateness ((ab) / a) was calculated, where a is the diameter in the in-plane direction (X direction) and b is the diameter in the thickness direction (Z direction). The average value Ave x Ask for. (2) Obtain microscopic images of the main surface of the PDLC layer and a cross section perpendicular to the cross section of (1) above. For each of 50 liquid crystal droplets randomly selected from the image, calculate the oblateness ((ab) / a) where a is the diameter in the in-plane direction (Y direction) and b is the diameter in the thickness direction (Z direction). Calculate the average value Ave y Ask for. (3) Average of the above two values x , Ave y The smaller value is adopted as the average oblateness of the liquid crystal droplets. In (1) and (2) above, the diameter a in the in-plane direction and the diameter b in the thickness direction of the liquid crystal droplet are the lengths of the sides parallel to the in-plane direction and the thickness direction, respectively, of the circumscribing rectangle of the liquid crystal droplet 25, the four sides of which are parallel to the in-plane direction (X or Y direction) or the thickness direction (Z direction) in the microscope observation image I (see FIG. 4). The X direction may be any direction in a plane parallel to the main surface of the PDLC layer, and may be, for example, a direction parallel to the stretching direction in the PDLC film production method described below.
[0034] In one embodiment, the ratio of the two average values (Ave x / Ave y ) is 1 / 2 to 2 / 1, and may be 2 / 3 to 3 / 2, or 3 / 4 to 4 / 3. x / Ave y ) is within the above range, the effects of the present invention can be more suitably obtained.
[0035] The average particle diameter of the liquid crystal droplets is, for example, 0.01 μm to 30 μm, preferably 0.05 μm to 20 μm, and more preferably 0.1 μm to 10 μm. The average particle diameter of the liquid crystal droplets is the volume average particle diameter of the liquid crystal droplets in a cross section perpendicular to the main surface of the PDLC film, and can be determined, for example, by the following method. <Method for measuring the average particle size of liquid crystal droplets> The PDLC film was sliced perpendicular to the main surface in a cooled environment, and the exposed vertical cross section of the PDLC layer was smoothed using a microtome. The vertical cross section of the PDLC layer was then observed using a scanning electron microscope (SEM) to obtain a cross-sectional SEM image. The Heywood diameter was calculated from the cross-sectional area of all liquid crystal droplets in a 30 μm x 20 μm region in the cross-sectional SEM image, and the volume-average particle diameter (median diameter) was calculated by taking statistics weighted by the volume estimated as a sphere for each equivalent diameter.
[0036] The polymer matrix may be composed of any appropriate resin. The resin for forming the polymer matrix may be appropriately selected depending on the light transmittance, the refractive index of the liquid crystal component, the adhesion to the transparent conductive film, the stretchability, etc. The resin for forming the polymer matrix preferably has a refractive index similar to that of the liquid crystal component.
[0037] Specific examples of the polymer matrix-forming resin include thermoplastic resins such as urethane resins, polyvinyl alcohol resins, polyethylene resins, polypropylene resins, and acrylic resins. These are preferably water-soluble or water-dispersible resins. Only one type of polymer matrix-forming resin may be used, or two or more types may be used in combination.
[0038] The liquid crystal component may be any suitable liquid crystal compound, either singly or in combination. The birefringence (Δn=refractive index of the liquid crystal component in the long axis direction, no=refractive index of the liquid crystal component in the short axis direction) of the liquid crystal component at a wavelength of 589 nm is preferably 0.05 to 0.50, more preferably 0.10 to 0.45.
[0039] The liquid crystal component may have a positive or negative dielectric anisotropy. The liquid crystal component may be, for example, a nematic liquid crystal, a smectic liquid crystal, or a cholesteric liquid crystal. Nematic liquid crystals are preferred because they have excellent transparency in the uncolored state.
[0040] Examples of nematic liquid crystal compounds include biphenyl-based compounds, phenylbenzoate-based compounds, cyclohexylbenzene-based compounds, azoxybenzene-based compounds, azobenzene-based compounds, azomethine-based compounds, terphenyl-based compounds, biphenylbenzoate-based compounds, cyclohexylbiphenyl-based compounds, phenylpyridine-based compounds, cyclohexylpyrimidine-based compounds, cholesterol-based compounds, and fluorine-based compounds.
[0041] As the dichroic dye, any appropriate dichroic dye that is compatible with the liquid crystal component can be used. The dichroic dye may have a positive or negative Δε. The dichroic dye itself may exhibit liquid crystallinity. The dichroic dye may be used alone or in combination of two or more.
[0042] Specific examples of dichroic dyes include azo dyes, anthraquinone dyes, naphthoquinone dyes, perylene dyes, quinophthalone dyes, tetrazine dyes, and benzothiadiazole dyes. Among these, from the viewpoints of absorption coefficient, solubility in liquid crystal components, lightfastness, and the like, it is preferable that the dichroic dye contains anthraquinone dyes or azo dyes. For example, the azo dyes, anthraquinone dyes, or mixtures thereof described in "Liquid Crystal Device Handbook," edited by the 142nd Committee of the Japan Society for the Promotion of Science, Japan Industrial Newspaper Co., Ltd. (1989), pages 192-196 and 724-730, can be used. Various dichroic dyes are commercially available, and these can be used as appropriate.
[0043] The content of the liquid crystal component in the PDLC layer is, for example, 30% to 90% by weight, preferably 35% to 85% by weight, and more preferably 40% to 80% by weight.
[0044] The content of the dichroic dye in the PDLC layer is, for example, 0.05 to 13% by weight, preferably 0.5 to 10% by weight, and may be 1% or more, or 3% or more, and may be 6% or less by weight. The content of the dichroic dye in the PDLC layer is, for example, 0.1 to 20 parts by weight, preferably 1 to 15 parts by weight, and more preferably 3 to 10 parts by weight, per 100 parts by weight of the liquid crystal component.
[0045] The weight ratio (former:latter) of the content of the polymer matrix to the total content of the liquid crystal component and the dichroic dye in the PDLC layer is, for example, 10:90 to 70:30, preferably 15:85 to 65:35, and more preferably 20:80 to 60:40.
[0046] The total content of the polymer matrix, liquid crystal component, and dichroic dye in the PDLC layer is, for example, 80% by weight or more, preferably 90% by weight or more, more preferably 95% by weight or more, and is, for example, 100% by weight or less, preferably 99% by weight or less.
[0047] The PDLC layer may further contain any appropriate component, if necessary, such as a dispersing agent, a leveling agent, a crosslinking agent, etc.
[0048] Examples of dispersants include anionic surfactants, cationic surfactants, amphoteric surfactants, nonionic surfactants, etc. The content of the dispersant in the PDLC layer is preferably 0.5 to 15% by weight, more preferably 1 to 10% by weight.
[0049] Examples of the leveling agent include acrylic leveling agents, fluorine-based leveling agents, silicone-based leveling agents, etc. The content of the leveling agent in the PDLC layer is preferably 0.1 to 10% by weight, more preferably 0.5 to 5% by weight.
[0050] Examples of the crosslinking agent include aziridine-based crosslinking agents, isocyanate-based crosslinking agents, etc. The content of the crosslinking agent in the PDLC layer is preferably 0.5% by weight to 20% by weight, and more preferably 1% by weight to 10% by weight.
[0051] The thickness of the PDLC layer is, for example, 50 μm or less, preferably 30 μm or less, more preferably 25 μm or less, and even more preferably 20 μm or less, and may be, for example, 1 μm or more, 3 μm or more, or 5 μm or more. When the thickness of the PDLC layer is within the above range, a PDLC film having a low operating voltage and excellent shielding properties can be suitably obtained.
[0052] A-3. Second transparent conductive film The second transparent conductive film 30 typically includes a second transparent substrate 32 and a second transparent electrode layer 34 provided on one side thereof (the PDLC layer 20 side). The second transparent conductive film 30 may optionally include a hard coat layer on one or both sides of the second transparent substrate 32, and may also include a refractive index adjusting layer between the second transparent substrate 32 and the second transparent electrode layer 34.
[0053] The surface resistance value of the second transparent conductive film is preferably 1 Ω / □ to 1000 Ω / □, more preferably 5 Ω / □ to 300 Ω / □, and even more preferably 10 Ω / □ to 200 Ω / □.
[0054] The haze value of the second transparent conductive film is preferably 20% or less, more preferably 10% or less, and even more preferably 0.1% to 10%.
[0055] The total light transmittance of the second transparent conductive film is preferably 40% or more, more preferably 60% or more, and even more preferably 80% or more.
[0056] The second transparent substrate and the second transparent electrode layer can be described in the same manner as the first transparent substrate and the first transparent electrode layer, respectively. The second transparent conductive film may have the same structure as the first transparent conductive film, or may have a different structure.
[0057] B. Manufacturing method of polymer dispersed liquid crystal film The PDLC film described in Section A can be produced by any suitable production method. The PDLC film described in Section A can be produced by, for example, (Step I) applying a coating liquid containing a polymer matrix-forming resin, a liquid crystal component, a dichroic dye, and a solvent onto the surface of a release liner to form a coating layer; (Step II) drying the coating layer to form a primary PDLC layer on the release liner, the primary PDLC layer comprising a polymer matrix and droplets dispersed in the polymer matrix, the droplets comprising a liquid crystal component and a dichroic dye; (Step III) stretching the primary PDLC layer to obtain a secondary PDLC layer; (Step IV) obtaining a laminate of the secondary PDLC layer and a first transparent conductive film; and (Step V) laminating a second transparent conductive film on the side of the secondary PDLC layer opposite to the side on which the first transparent conductive film is disposed; , in that order.
[0058] B-1. Process I In step I, a coating liquid containing a polymer matrix-forming resin, a liquid crystal component, a dichroic dye, and a solvent is applied to the surface of a release liner to form a coating layer.
[0059] The coating liquid is preferably an emulsion in which liquid crystal particles containing a liquid crystal component and a dichroic dye are dispersed in a solvent (hereinafter, this may be referred to as an "emulsion coating liquid"). In one embodiment, the coating liquid is an emulsion coating liquid in which polymer matrix-forming resin particles and liquid crystal particles containing a liquid crystal component and a dichroic dye are dispersed in a solvent. The emulsion coating liquid may further contain any appropriate additive depending on the purpose.
[0060] The solvent is preferably water or a mixture of water and a water-miscible organic solvent. Examples of the water-miscible organic solvent include C1-3 alcohol, acetone, and DMSO. The polymer matrix-forming resin, liquid crystal component, dichroic dye, and additives, as well as their blending ratios, are as described in Section A.
[0061] The average particle size of the liquid crystal particles is, for example, 0.01 μm to 40 μm, preferably 0.05 μm to 30 μm, more preferably 0.1 μm to 15 μm, and even more preferably 0.15 μm to 10 μm. The average particle size of the liquid crystal particles can correspond to the average particle size of the liquid crystal droplets in the primary PDLC layer. If the average particle size of the liquid crystal particles is within this range, the average particle size of the liquid crystal droplets in the secondary PDLC layer can be adjusted to a desired range. Note that the average particle size of the liquid crystal particles is the volume average particle size. The average particle size of the liquid crystal particles can be measured, for example, using a laser diffraction particle size distribution analyzer.
[0062] The liquid crystal particles preferably have a relatively narrow particle size distribution, and the coefficient of variation (CV value) of the liquid crystal particles may be, for example, less than 0.4, preferably 0.35 or less, and more preferably 0.3 or less.
[0063] The average particle diameter of the resin particles for forming a polymer matrix is preferably 10 nm to 500 nm, more preferably 30 nm to 300 nm, and even more preferably 50 nm to 200 nm. Two or more types of resin particles differing in type and / or average particle diameter may be used. The average particle diameter of the resin particles for forming a polymer matrix means the volume-average median diameter and can be measured using a dynamic light scattering particle size distribution analyzer.
[0064] The emulsion coating liquid can be prepared, for example, by mixing a resin emulsion containing polymer matrix-forming resin particles or a resin solution containing a polymer matrix-forming resin with a liquid crystal emulsion containing liquid crystal particles and optional additives (e.g., dispersant, leveling agent, crosslinking agent). If necessary, a solvent may be added during mixing. Alternatively, the emulsion coating liquid can be prepared by adding the liquid crystal component, dichroic dye, polymer matrix-forming resin, and optional additives to a solvent and mechanically dispersing them.
[0065] The resin emulsion and liquid crystal emulsion can be prepared by, for example, a mechanical emulsification method, a microchannel method, a membrane emulsification method, or the like. Among these, the liquid crystal emulsion is preferably prepared by the membrane emulsification method. The membrane emulsification method can suitably produce an emulsion with a uniform particle size distribution. For details of the membrane emulsification method, reference can be made to the disclosures of JP-A-4-355719 and JP-A-2015-40994 (which are incorporated herein by reference).
[0066] The solid content concentration of the emulsion coating liquid can be, for example, 20% to 60% by weight, and preferably 30% to 50% by weight.
[0067] The viscosity of the emulsion coating solution can be appropriately adjusted to ensure smooth application to the release liner. The viscosity of the emulsion coating solution during application is preferably 20 mPa·s to 400 mPa·s, more preferably 30 mPa·s to 300 mPa·s, and even more preferably 40 mPa·s to 200 mPa·s. If the viscosity is less than 20 mPa·s, solvent convection becomes significant during solvent drying, potentially resulting in an unstable thickness of the primary PDLC layer (and consequently, the secondary PDLC layer). Furthermore, if the viscosity exceeds 400 mPa·s, the emulsion coating solution bead may become unstable. The viscosity of the emulsion coating solution can be measured, for example, using an Anton Paar MCR302 rheometer. The viscosity used here is the shear viscosity measured at 20°C and a shear rate of 1000 (1 / s).
[0068] The release liner may have a configuration in which a release agent layer is provided on at least one side of a film substrate. The release liner may be in the form of a sheet or a long strip. The release liner is preferably in the form of a long strip. In this specification, "long strip" means a strip having a length that is sufficiently long relative to its width, and includes, for example, a strip having a length that is 10 times or more, preferably 20 times or more, relative to its width. A long film can be wound into a roll.
[0069] The film substrate is not limited as long as it is applicable to the stretching treatment described later, and a resin film is preferably used. Examples of resins that form the resin film include polyester resins such as polyethylene terephthalate (PET) and polyethylene naphthalate, acetate resins, polyethersulfone resins, polycarbonate resins, polyamide resins, polyimide resins, polyolefin resins, (meth)acrylic resins, polyvinyl chloride resins, polyvinylidene chloride resins, polystyrene resins, polyvinyl alcohol resins, polyarylate resins, and polyphenylene sulfide resins. Among these, polyester resins such as PET are particularly preferred.
[0070] Materials for forming the release agent layer include silicone-based release agents, fluorine-based release agents, long-chain alkyl-based release agents, fatty acid amide-based release agents, etc. Release agents can be used alone or in combination of two or more.
[0071] The thickness of the release liner is, for example, 10 μm to 200 μm, and preferably 25 μm to 150 μm.The thickness of the release agent layer is, for example, 0.001 μm to 10 μm, and preferably 0.03 μm to 7 μm.
[0072] The emulsion coating liquid is typically applied to the release agent layer surface of the release liner. Any appropriate coating method can be used. Examples include roll coating, spin coating, wire bar coating, dip coating, die coating, curtain coating, spray coating, and knife coating (such as comma coating). Of these, roll coating is preferred. For example, the description of JP 2019-5698 A can be referenced for coating by roll coating using a slot die.
[0073] The thickness of the coating layer is preferably 3 μm to 200 μm, more preferably 5 μm to 150 μm, and even more preferably 10 μm to 100 μm.
[0074] B-2. Process II In step II, the coating layer is dried to form a primary PDLC layer on the release liner, the primary PDLC layer comprising a polymer matrix and droplets of a liquid crystal component and a dichroic dye dispersed in the polymer matrix. The drying removes the solvent from the coating layer, leaving behind the polymer matrix-forming resin and liquid crystal particles containing the liquid crystal component and the dichroic dye. As a result, a primary PDLC layer is formed, having a structure in which liquid crystal droplets are dispersed in a polymer matrix.
[0075] The coating layer can be dried by any appropriate method. Specific examples of the drying method include natural drying, heat drying, hot air drying, etc. When the coating liquid contains a crosslinking agent, a crosslinked structure of the polymer matrix can be formed during drying.
[0076] The drying temperature is preferably 20° C. to 150° C., more preferably 25° C. to 80° C. The drying time is preferably 1 minute to 100 minutes, more preferably 2 minutes to 10 minutes.
[0077] The thickness of the primary PDLC layer is preferably 1 μm to 100 μm, more preferably 3 μm to 60 μm, and even more preferably 5 μm to 40 μm.
[0078] In this manner, a laminate having a [release liner / primary PDLC layer] structure is obtained. If necessary, a separate release liner (second release liner) may be laminated on the primary PDLC layer side of the laminate. By laminating the second release liner, the primary PDLC layer can be suitably protected. Furthermore, the laminate can be rolled up for storage. The second release liner can be the same as the release liner (first release liner) used in Step I.
[0079] B-3. Process III In step III, the primary PDLC layer is stretched to obtain a secondary PDLC layer. Stretching reduces the layer thickness and deforms the liquid crystal droplets, forming a secondary PDLC layer containing liquid crystal droplets flattened in the thickness direction. Stretching also aligns the liquid crystal components and dichroic dye in the liquid crystal droplets in-plane, potentially improving light absorption efficiency in the colored state. The secondary PDLC layer may correspond to the PDLC layer containing liquid crystal droplets flattened in the thickness direction in the PDLC film described in section A.
[0080] The primary PDLC layer may be stretched in a laminated state with a release liner, or may be stretched independently after being peeled off from the release liner. The laminate to be stretched may have a configuration of [first release liner / primary PDLC layer], [second release liner / primary PDLC layer], or [first release liner / primary PDLC layer / second release liner].
[0081] When stretching a laminate of a primary PDLC layer and a release liner, the laminate may have a configuration in which the edge of the release liner protrudes outward beyond the edge of the primary PDLC layer. A laminate having such a configuration can be stretched by holding the edge of the release liner, thereby preventing damage to the appearance of the secondary PDLC layer after stretching. A laminate having such a configuration can be obtained, for example, by applying a coating liquid to the edge of the release liner as an uncoated area in Step I, and then removing the edge of the primary PDLC layer formed on the release liner with adhesive tape in Step II.
[0082] The stretching direction is not limited. The stretching may be, for example, longitudinal uniaxial stretching, transverse uniaxial stretching, longitudinal and transverse biaxial stretching, or oblique stretching. It may also be free-end stretching, fixed-end stretching, or a combination thereof. The longitudinal and transverse biaxial stretching may be simultaneous biaxial stretching or sequential biaxial stretching. Biaxial stretching can suitably obtain liquid crystal droplets that have a small ratio of the major axis to the minor axis in a planar view (major axis / minor axis) and are flat in the thickness direction, and can improve the uniformity of in-plane haze, total light transmittance, etc.
[0083] The stretching ratio can be appropriately set depending on the purpose. The stretching ratio is, for example, 1.05 times or more, preferably 1.1 to 10 times, and more preferably 1.2 to 5 times. In the case of longitudinal and transverse biaxial stretching, the longitudinal stretching ratio and the transverse stretching ratio are preferably approximately the same. The ratio between the two (longitudinal stretching ratio / transverse stretching ratio) can be, for example, 0.9 to 1.1, and preferably 0.95 to 1.05.
[0084] The stretching temperature may be any temperature at which the primary PDLC layer or the laminate of the primary PDLC layer and release liner can be stretched, and is, for example, the glass transition temperature (Tg) of the polymer matrix-forming resin -50°C to Tg +200°C, preferably Tg -20°C to Tg +150°C.
[0085] B-4. Process IV In step IV, a laminate of the secondary PDLC layer and a first transparent conductive film is obtained. When the laminate of the primary PDLC layer and release liner is stretched in step III, the secondary PDLC layer is transferred from the release liner to the first transparent conductive film. This results in a laminate having a [first transparent conductive film / secondary PDLC layer] configuration. The first transparent conductive film is as described in section A.
[0086] The lamination (transfer) of the secondary PDLC layer onto the first transparent conductive film may be performed via an adhesive layer or without an adhesive layer. The adhesive layer is typically an adhesive layer or a pressure-sensitive adhesive layer. When an adhesive layer is not used, the lamination of the first transparent conductive film is preferably performed using a laminator while applying a lamination pressure of 0.006 MPa / m to 7 MPa / m, more preferably 0.06 MPa / m to 0.7 MPa / m, in order to obtain sufficient adhesion.
[0087] B-5.Process V In step V, a second transparent conductive film is laminated on the side of the secondary PDLC layer opposite to the side on which the first transparent conductive film is disposed. The second transparent conductive film is as described in section A. The PDLC film thus obtained, having a structure of [first transparent conductive film / secondary PDLC layer / second transparent conductive film], may correspond to the PDLC film described in section A.
[0088] The second transparent conductive film may be laminated onto the secondary PDLC layer via an adhesive layer or without an adhesive layer. The adhesive layer is typically an adhesive layer or a pressure-sensitive adhesive layer. When an adhesive layer is not used, the second transparent conductive film is preferably laminated using a laminator at a lamination pressure of 0.006 MPa / m to 7 MPa / m, more preferably 0.06 MPa / m to 0.7 MPa / m, in order to ensure sufficient adhesion. [Industrial Applicability]
[0089] The PDLC film of the present invention is suitable for use in various applications such as displays such as advertisements and guide boards, and smart windows. [Explanation of symbols]
[0090] 100 PDLC film 10 First transparent conductive film 20 PDLC layers 22 Polymer matrix 23 Liquid crystal components 24 Dichroic dyes 25 liquid crystal droplets 30 Second transparent conductive film
Claims
1. A polymer dispersed liquid crystal film comprising, in this order, a first transparent conductive film, a polymer dispersed liquid crystal layer, and a second transparent conductive film, the polymer dispersed liquid crystal layer includes a polymer matrix and droplets dispersed in the polymer matrix, the droplets including a liquid crystal component and a dichroic dye; A polymer dispersed liquid crystal film, wherein the droplets have an average flattening ratio of 0.3 or more.
2. 2. The polymer dispersed liquid crystal film according to claim 1, wherein the droplets have an average particle size of 0.1 μm or more and 10 μm or less in a cross section perpendicular to the main surface.
3. 2. The polymer dispersed liquid crystal film according to claim 1, wherein the content of said dichroic dye in said polymer dispersed liquid crystal layer is 0.5% by weight or more.
4. 2. The polymer dispersed liquid crystal film according to claim 1, wherein the thickness of the polymer dispersed liquid crystal layer is 30 [mu]m or less.
5. 2. The polymer dispersed liquid crystal film according to claim 1, wherein the total light transmittance when no voltage is applied is 20% or less.
6. 2. The polymer dispersed liquid crystal film according to claim 1, wherein the total light transmittance when a voltage is applied is 20% or more.
7. 2. The polymer dispersed liquid crystal film according to claim 1, wherein the haze when a voltage is applied is 20% or less.
Citation Information
Patent Citations
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