Dimming device and method for manufacturing the same, and smart window

The dimming device with a polymer-dispersed liquid crystal layer and vertical alignment agent addresses high power consumption and cost issues, offering a low-voltage solution for flexible substrates with efficient switching capabilities.

JP7841710B2Active Publication Date: 2026-04-07TOYO LTD +1
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-08
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Conventional liquid crystal dimming devices with vertical alignment agents face high power consumption due to high driving voltages and are costly, limiting their use with inexpensive electronic components and flexible substrates.

Method used

A dimming device configuration with a polymer-dispersed liquid crystal layer sandwiched between transparent substrates, utilizing a vertical alignment agent without an alignment film, and controlling impurity ion density, achieving a driving voltage of 25 V or less to reduce haze to 80% or more.

Benefits of technology

The solution provides an inexpensive dimming device with low driving voltage, suitable for flexible substrates, reducing manufacturing costs and power consumption, and enabling high-speed switching between transmission and scattering modes.

✦ Generated by Eureka AI based on patent content.

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Abstract

A dimming device including a pair of transparent substrates (10a, 10b) and a liquid crystal layer (20) sandwiched between the pair of transparent substrates. In this dimming device, the liquid crystal layer includes a vertical alignment agent, and a drive voltage for increasing the haze to 80% or more is 25 V or less.
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Description

[Technical Field]

[0001] This invention relates to a dimming device, a method for manufacturing the same, and a smart window. [Background technology]

[0002] Dimming devices are devices that can change the transmittance of light in response to various environmental and external stimuli such as light, heat, electricity, and gas, and are used in smart windows, among other applications. For example, typical light modulation methods for smart windows include electrochromic, thermochromic, and liquid crystal methods. Among these, the liquid crystal method, which uses polymer-dispersed liquid crystals, a composite material of liquid crystal compounds and polymers, can switch between transmitted and scattered states of incident light by controlling the orientation direction of the liquid crystal compounds with an electric field, thereby changing the refractive index difference between the liquid crystal compounds and between the liquid crystal compounds and polymers. Compared to other methods, this liquid crystal method has a faster response and can switch between transmitted and scattered states of incident light at high speed, so it is being increasingly used in a wide range of applications such as privacy windows that block the view and projection screens.

[0003] Liquid crystal dimming devices have two driving modes: normal mode and reverse mode. In normal mode, the device operates in transmit mode when voltage is applied and in scatter mode when no voltage is applied, while in reverse mode, the device operates in scatter mode when voltage is applied and in transmit mode when no voltage is applied. Because reverse mode operates in transmit mode when no voltage is applied, it has the advantage of lower power consumption and superior safety during power outages compared to normal mode.

[0004] In reverse-mode dimming devices, it is required to orient the liquid crystal compound perpendicularly to the transparent substrate. To achieve this perpendicular orientation, alignment films made of materials such as polyimide have traditionally been used. The alignment film is formed by applying a solution of the alignment film material dissolved in an organic solvent to the transparent substrate, followed by heat treatment of the substrate. However, this process of forming alignment films is complex and costly. Furthermore, the use of solvents and heat treatment limits the material of the transparent substrate, making it difficult to manufacture flexible dimming devices using inexpensive resin substrates.

[0005] Therefore, instead of an alignment film, a dimming device has been proposed that includes a liquid crystal layer (dimming layer) to which a vertical alignment agent is added to orient the liquid crystal compound perpendicularly to the transparent substrate (for example, Patent Documents 1 and 2). [Prior art documents] [Patent Documents]

[0006] [Patent Document 1] Special Publication No. 2019-527381 [Patent Document 2] International Publication No. 2018 / 105726 [Overview of the Initiative] [Problems that the invention aims to solve]

[0007] Conventional dimming devices equipped with a liquid crystal layer containing a vertical alignment agent have the problem of high power consumption due to the high driving voltage. In fact, the dimming devices described in Patent Documents 1 and 2 require a driving voltage of 30V or higher to reduce haze to 80% or more. Furthermore, conventional dimming devices also faced the problem of increased product costs because they could not use existing inexpensive electronic components with low voltage resistance.

[0008] The present invention has been made to solve the above problems, and an object thereof is to provide an inexpensive dimming device having a low driving voltage, a method for manufacturing the same, and a smart window.

Means for Solving the Problems

[0009] As a result of intensive studies on a dimming device in which a liquid crystal layer (dimming layer) is sandwiched between a pair of transparent substrates, the present inventors have found that the above problems can be solved by adopting the following specific configuration, and have completed the present invention.

[0010] That is, the present invention includes a pair of transparent substrates and a liquid crystal layer sandwiched between the pair of transparent substrates The drive system is in reverse mode. A dimming device, wherein the liquid crystal layer contains a vertical alignment agent, The pair of transparent substrates does not have an alignment film on the surface facing the liquid crystal layer, and the impurity ion density in the liquid crystal layer is 0.3 to 400 nC / cm². 2 And, Relates to a dimming device in which the driving voltage for achieving a haze of 80% or more is 25 V or less.

[0011] Further, the present invention relates to a method for manufacturing the dimming device, which includes a step of disposing a liquid crystal composition containing a liquid crystal compound and a vertical alignment agent between a pair of transparent substrates to form a liquid crystal cell.

[0012] Furthermore, the present invention relates to a smart window including the dimming device.

Advantages of the Invention

[0013] According to the present invention, it is possible to provide an inexpensive dimming device having a low driving voltage, a method for manufacturing the same, and a smart window.

Brief Description of the Drawings

[0014] [Figure 1] It is a cross-sectional schematic view of a dimming device according to Embodiment 1 of the present invention. [Figure 2] It is a cross-sectional schematic view of another dimming device according to Embodiment 1 of the present invention. [Figure 3] This is a schematic cross-sectional view of a dimming device according to Embodiment 2 of the present invention. [Figure 4] This graph shows the relationship between voltage and haze in the dimming devices fabricated in Example 1 and Comparative Example 1. [Figure 5] These are laser microscope images of the substrate surface of samples 1 and 2. [Figure 6] These are scanning electron microscope images of the substrate surface of samples 1 and 2. [Figure 7] This graph shows the relationship between voltage and haze in the dimming device fabricated in Example 2. [Figure 8] This graph shows the measurement of minute currents in response to the triangular wave applied voltage to liquid crystal cells A through D. [Figure 9] This shows the impurity ion density of liquid crystal cells A to D, calculated from the graph in Figure 8. [Modes for carrying out the invention]

[0015] The embodiments of the present invention will be described in detail below. The present invention is not limited to the embodiments described below, and it should be understood that modifications, improvements, etc., made to the embodiments described below, based on the ordinary knowledge of those skilled in the art, without departing from the spirit of the invention, also fall within the scope of the present invention.

[0016] (Embodiment 1) The dimming device according to Embodiment 1 of the present invention comprises a polymer-dispersed liquid crystal layer as the liquid crystal layer. Figure 1 is a schematic cross-sectional view of a dimming device according to Embodiment 1 of the present invention. As shown in Figure 1, the dimming device 100 according to Embodiment 1 of the present invention comprises a pair of transparent substrates 10a and 10b and a polymer-dispersed liquid crystal layer 20 sandwiched between the pair of transparent substrates 10a and 10b.

[0017] The pair of transparent substrates 10a and 10b are not particularly limited, and known substrates in the art, such as resin substrates and glass substrates, can be used. Among these, it is preferable that the transparent substrates 10a and 10b are resin substrates. By using resin substrates, a flexible dimming device 100 can be obtained. Resin substrates can be formed using, for example, polyester resins, (meth)acrylic resins, olefin resins, cyclic olefin resins, polycarbonate resins, polyurethane resins, cellulose resins, and styrene resins. Specific examples of polyester resins include polyethylene terephthalate (PET), polybutylene terephthalate (PBT), polyethylene naphthalate (PEN), copolymer PET (PET-G) containing isophthalic acid, alicyclic dicarboxylic acids or alicyclic diols including cyclohexane rings, other polyesters, and copolymers and blends thereof. These can be used individually or in combination of two or more. The materials of the pair of transparent substrates 10a and 10b may be the same or different.

[0018] The pair of transparent substrates 10a and 10b have a light transmittance (at a wavelength of 550 nm) of preferably 80% or more, more preferably 85% or more, and even more preferably 90% or more. Excellent transparency can be achieved in transmission mode when the light transmittance is within this range.

[0019] The thickness of the pair of transparent substrates 10a and 10b is not particularly limited, but may be, for example, 10 to 1200 μm, preferably 20 to 500 μm, and more preferably 50 to 300 μm.

[0020] The pair of transparent substrates 10a and 10b are equipped with transparent electrodes (not shown). The transparent electrodes should be provided so as to allow a voltage to be applied to the polymer-dispersed liquid crystal layer 20. For example, the transparent electrodes may be provided on the polymer-dispersed liquid crystal layer 20-side surface of both the pair of transparent substrates 10a and 10b, or on the polymer-dispersed liquid crystal layer 20-side surface of either one of the pair of transparent substrates 10a or 10b. When transparent electrodes are provided on both of the pair of transparent substrates 10a and 10b, the transparent electrodes can be planar electrodes capable of applying a voltage perpendicular to the polymer-dispersed liquid crystal layer 20. When transparent electrodes are provided on either one of the pair of transparent substrates 10a or 10b, the transparent electrodes can be comb-shaped electrodes capable of applying a voltage parallel to the polymer-dispersed liquid crystal layer 20.

[0021] Transparent electrodes can be formed using metal oxides such as indium tin oxide (ITO), zinc oxide (ZnO), and tin oxide (SnO2). Alternatively, transparent electrodes can be formed using silver nanowires. The transparent electrodes can also be formed using carbon layers such as (AgNW), carbon nanotubes (CNTs), organic conductive films, metal layers, or laminates thereof. Depending on the purpose, the transparent electrodes can be patterned into a desired shape. For example, by patterning the transparent electrodes in the form of vertical stripes, horizontal stripes, or a grid, a blind function can be suitably provided to the dimming device 100.

[0022] The pair of transparent substrates 10a and 10b may, if necessary, be provided with a functional layer (functional film) known in the art. For example, a pair of transparent substrates 10a and 10b may have an alignment film on the surface facing the polymer-dispersed liquid crystal layer 20. In the dimming device 100 according to Embodiment 1 of the present invention, the vertical alignment of the liquid crystal compound 22 can be controlled by the vertical alignment agent 21, so an alignment film does not need to be formed, but the vertical alignment of the liquid crystal compound 22 may be controlled in combination with an alignment film. However, forming an alignment film may increase the driving voltage of the dimming device 100, so it is preferable that the pair of transparent substrates 10a and 10b do not have an alignment film formed on them.

[0023] The polymer-dispersed liquid crystal layer 20 contains a vertical alignment agent 21. Herein, in this specification, "vertical alignment agent 21" means an agent that has the function of aligning the liquid crystal compound 22 vertically with respect to a pair of transparent substrates 10a and 10b. The vertical alignment agent 21 is not particularly limited, but it is preferably one that can be adsorbed onto a pair of transparent substrates 10a and 10b. By using such a vertical alignment agent 21, the vertical alignment agent 21 is more likely to be present at the interface between the pair of transparent substrates 10a and 10b and the polymer-dispersed liquid crystal layer 20, thereby allowing the driving voltage to be lowered.

[0024] Furthermore, it is preferable that the vertical alignment agent 21 is compatible with the polymer-dispersed liquid crystal layer 20. Herein, in this specification, "vertically aligned agent 21 compatible with polymer-dispersed liquid crystal layer 20" means that when the vertically aligned agent 21 is added to the polymer-dispersed liquid crystal layer 20 and the mixture is heated in an oven to a temperature above the phase transition temperature of the polymer-dispersed liquid crystal layer 20 to form an isotropic phase, the vertically aligned agent 21 is dissolved (i.e., the mixture of polymer-dispersed liquid crystal layer 20 and vertically aligned agent 21 is transparent), and no precipitate of the vertically aligned agent 21 is observed even when the mixture is returned to room temperature (e.g., 25°C). By using a vertical alignment agent 21 compatible with the polymer-dispersed liquid crystal layer 20, the transmittance in transmittance mode can be improved.

[0025] As the vertical orientation agent 21, for example, a polymer having a branched structure containing mesogenic groups in its side chains can be used. Preferably, this polymer contains one or more atoms that can be adsorbed onto a pair of transparent substrates 10a and 10b by intermolecular forces. Herein, in this specification, "polymer" means a polymer whose molecular weight, as measured by MALDI-TOF-MS, is 1000 or more, preferably 1500 or more, and more preferably 2000 or more. The mesogenic group is not particularly limited, and any known in the art can be used. Examples of mesogenic groups include phenyl benzoate, biphenyl, cyanobiphenyl, terphenyl, cyanoterphenyl, phenylbenzoate, azobenzene, diazobenzene, aniline benzylidene, azomethine, azoxybenzene, stilbene, phenylcyclohexyl, biphenylcyclohexyl, phenoxyphenyl, benzylideneaniline, benzylbenzoate, phenylpyrimidine, phenyldioxane, benzoylaniline, tran, and derivatives thereof. The atoms that can be adsorbed onto a pair of transparent substrates 10a and 10b by intermolecular forces are not particularly limited, but examples include N (nitrogen), O (oxygen), P (phosphorus), S (sulfur), and halogens. Among these, the atom is preferably N.

[0026] Specific examples of the vertical orientation agent 21 include dendrimers and dendrons. Hereinafter, "dendrimer" refers to a dendritic polymer having a structure that branches regularly from a center, and is composed of a central part called a core and side chain parts called dendrons.In addition, in this specification, "dendron" refers to a dendritic polymer having a structure that branches regularly from a center, similar to a dendrimer, but which extends (spreads) only in one direction from the center (focal point).

[0027] The structure of a dendrimer is not particularly limited, but it can be represented by formula (I).

[0028] [ka]

[0029] In the above equation (I), R 1 This is expressed by equation (II).

[0030] [ka]

[0031] In the above formula (II), A 1 teeth

[0032] [ka]

[0033] (In the formula, Y is an alkyl or alkoxy group having 1 to 12 carbon atoms, or fluorine), X is a direct bond, a -COO- group, or a -N=N- group, and A 2 teeth

[0034] [ka]

[0035] The expression is such that n is an integer between 3 and 12.

[0036] Dendrimers having such a structure can be obtained by reacting a polyfunctional amine compound that provides the core portion with an acrylic acid ester derivative that provides the side chain portion in an organic solvent. Examples of polyfunctional amine compounds include polypropylene tetramine dendrimer, Generation 1.0 and polypropylene octamindene. Examples include the second generation dendrimer (Polypropylene octaamine Dendrimer, Generation 2.0). Commercially available products such as DAB-Am-4 and DAB-Am-8 from Sigma-Aldrich can also be used. Furthermore, this polyfunctional amine compound can be synthesized using ethylenediamine and acrylonitrile as starting materials. The acrylic acid ester derivative can be appropriately selected depending on the dendrimer to be synthesized. For example, when synthesizing the dendrimer represented by formula (I) above, the compound represented by formula (IV) below can be used as a starting material.

[0037] [ka]

[0038] In equation (IV) above, X, A 1 , A 2 And n are as defined above. The reaction ratio between the polyfunctional amine compound and the acrylic acid ester derivative is 1.0 to 3.0 moles, preferably 1.1 to 1.5 moles, of the acrylic acid ester derivative per mole of the polyfunctional amine compound.

[0039] As organic solvents, conventionally known ones can be used, and examples include halogenated hydrocarbon solvents such as 1,2-dichloroethane and chloroform; ketone solvents such as acetone, methyl ethyl ketone, methyl isobutyl ketone, and cyclohexanone; cyclic ether solvents such as tetrahydrofuran and dioxane; aromatic hydrocarbon solvents such as toluene and xylene; and aprotic polar solvents such as N-methyl-2-pyrrolidone, N,N-dimethylformamide, and N,N-dimethylacetamide. These organic solvents can be used individually or in mixtures of two or more. Furthermore, the amount of organic solvent can be adjusted as appropriate depending on the amount of polyfunctional amine compound or acrylic acid ester derivative, and is not particularly limited.

[0040] The reaction temperature is -50 to 150°C, preferably 25 to 80°C. If the reaction temperature is below -50°C, the reaction rate may decrease significantly. Also, if the reaction temperature exceeds 150°C, the stability of the polyfunctional amine compound and acrylic acid ester derivative may decrease. The reaction time is 2 to 200 hours, preferably 48 to 100 hours. If the reaction time is less than 2 hours, the reaction may not proceed sufficiently. If the reaction time exceeds 200 hours, it takes too long and is not practical. After the reaction is completed, the target dendrimer can be obtained by removing the solvent. Further, it may be purified by adding a poor solvent such as methanol, ethanol, isopropyl alcohol, hexane, toluene, etc. and heating to remove the supernatant.

[0041] The structure of the dendron is not particularly limited, but can be represented by formula (III).

[0042]

Chemical formula

[0043] In formula (III), R is hydrogen, an alicyclic group, an aromatic group, or a HO-(CH2) m - group (where m is an integer of 2 to 6). Here, the alicyclic group is not particularly limited, and examples include a cyclopropyl group, a cyclopentyl group, a cyclohexyl group, a cycloheptyl group, a cyclooctyl group, an adamantyl group, a norbornyl group, an isobornyl group, a camphanil group, a dicyclopentyl group, a tricyclodecanyl group, a tetracyclododecyl group, an androstanyl group, etc. Further, the aromatic group is not particularly limited, and examples include a phenyl group, a naphthyl group, a biphenyl group, a triphenyl group, a binaphthyl group, an anthracenyl group, a fluorenyl group, etc. Further, in formula (III), A 1 is

[0044]

Chemical formula

[0045] (where Y is an alkyl group or an alkoxy group having 1 to 12 carbon atoms, or fluorine), and A 2 is

[0046]

Chemical formula

[0047] Here, X is a direct bond, a -COO- group, or a -N=N- group, and n is an integer between 3 and 12.

[0048] The dendrons used in this invention can be synthesized using known methods described in various literatures. Generally, a compound having an amino group that provides a focal point can be reacted with a compound that combines with this compound to provide the dendron's branches. For example, an acrylic acid ester derivative that provides the dendron's branches can be reacted in an organic solvent with a compound having a terminal amino group that reacts with this acrylic acid ester derivative and an amino group that provides the focal point.

[0049] The compound having an amino group that provides the focal point is not particularly limited and can be appropriately selected depending on the dendron being synthesized. Furthermore, when adjusting the generation (order of branching) of the dendron, the compound having an amino group that provides the focal point can be reacted with acrylonitrile or the like to form a branched structure, and then the nitrile can be converted to an amine using a reducing agent such as lithium aluminum hydride. For example, when synthesizing a dendron having the above general formula (III), a compound having the following general formula (V) can be used. RN-((CH2)3-NH2)2(V) In the formula, R is as defined above. Here, compound (V) above can be synthesized by reacting R-NH2 with acrylonitrile and (CH2=CHCN), and then converting the nitrile to an amine using a reducing agent such as lithium aluminum hydride.

[0050] The acrylic acid ester derivative that provides the branch portion of the dendron is not particularly limited and can be appropriately selected depending on the dendron being synthesized. For example, when synthesizing a dendron having the above general formula (III), the following acrylic acid ester derivative having the general formula (VI) can be used as a starting material.

[0051] [ka]

[0052] In the formula, A 1 , A 2 X and n are as defined above.

[0053] The reaction ratio between the compound containing the amino group that provides the focal point (for example, the compound of general formula (V)) and the acrylic acid ester derivative (for example, the compound of general formula (VI)) needs to be adjusted appropriately depending on the type of raw materials used. Generally, however, 1 to 10 moles of the acrylic acid ester derivative should be used for every 1 mole of the compound containing the amino group that provides the focal point.

[0054] The organic solvent used in the above reaction is not particularly limited, and any solvent known in the art may be used. Examples of organic solvents include halogenated hydrocarbon solvents such as 1,2-dichloroethane and chloroform; ketone solvents such as acetone, methyl ethyl ketone, methyl isobutyl ketone, and cyclohexanone; cyclic ether solvents such as tetrahydrofuran and dioxane; aromatic hydrocarbon solvents such as toluene and xylene; and aprotic polar solvents such as N-methyl-2-pyrrolidone, N,N-dimethylformamide, and N,N-dimethylacetamide. These organic solvents can be used individually or in combination of two or more. Furthermore, the amount of organic solvent can be adjusted as appropriate depending on the type and amount of raw materials used, and is not particularly limited.

[0055] The reaction temperature is -50 to 150°C, preferably 25 to 80°C. If the reaction temperature is below -50°C, the reaction rate may decrease significantly. Also, if the reaction temperature exceeds 150°C, the stability of the raw materials may decrease. The reaction time is 2 to 200 hours, preferably 48 to 100 hours. If the reaction time is less than 2 hours, the reaction may not proceed sufficiently. If the reaction time exceeds 200 hours, it takes too long and is not practical. After the reaction is complete, the desired dendrons can be obtained by removing the solvent. Alternatively, the dendrons may be purified by adding a poor solvent such as methanol, ethanol, isopropyl alcohol, hexane, or toluene, heating the mixture, and removing the supernatant.

[0056] Furthermore, as other vertical orientation agents 21, it is also useful to use copolymers of a monomer having a mesogenic group and a monomer containing one or more atoms that can be adsorbed onto the transparent substrates 10a and 10b by intermolecular forces. Specific examples of such copolymers are shown in 27. th Copolymers presented at the International Liquid Crystal Conference (ILCC2018) in "Homeotropic Orientation of Nematic Liquid Crystals Induced by Side-Chain Liquid Crystalline Copolymers Having Tertiary Amino Groups," and copolymers presented at IPOMY (The Second International Conference of Polymeric and Organic Materials in Yamagata University, 2019) in "Homeotropic Orientation of Nematic Liquid Crystals Induced by a copolymer of (Meth)acrylate Having a Mesogen with 2-(Dimethylamino)ethyl(meth)acrylate" It can be listed.

[0057] The vertical alignment agent 21 in the polymer-dispersed liquid crystal layer 20 is mainly present at the interface between the pair of transparent substrates 10a and 10b and the polymer-dispersed liquid crystal layer 20, and aligns the liquid crystal compound 22 perpendicular to the pair of transparent substrates 10a and 10b. Therefore, the amount of vertical alignment agent 21 in the polymer-dispersed liquid crystal layer 20 should be such that the vertical alignment agent 21 is present at the interface. In other words, the amount of vertical alignment agent 21 in the polymer-dispersed liquid crystal layer 20 cannot be uniquely defined because it depends on the area of ​​the pair of transparent substrates 10a and 10b that are in contact with the polymer-dispersed liquid crystal layer 20, but it is generally between 0.01 and 50% by mass.

[0058] The polymer-dispersed liquid crystal layer 20 is a layer formed from a composite material of a liquid crystal compound 22 and a polymer. The liquid crystal compound 22 exists in a phase-separated or dispersed state within the network structure formed by the polymer (hereinafter referred to as the polymer network). The polymer-dispersed liquid crystal layer 20 is not particularly limited, but can be formed from PDLC (Polymer Dispersed Liquid Crystal) having a structure in which the liquid crystal compound 22 is dispersed in the polymer, or PNLC (Polymer Network Liquid Crystal) having a structure in which the liquid crystal compound 22 is filled in the gaps of a network polymer.

[0059] The thickness of the polymer-dispersed liquid crystal layer 20 is not particularly limited, but may be, for example, 3 to 30 μm, preferably 10 to 25 μm. By controlling the thickness to this extent, it becomes easier to control the haze to 80% or more with a low drive voltage when switching to the scattering mode.

[0060] The liquid crystal compound 22 constituting the polymer-dispersed liquid crystal layer 20 is not particularly limited, and any non-polymerized liquid crystal compound 22 known in the art may be used. The liquid crystal compound 22 may be nematic, smectic, or cholesteric, but it is preferably nematic. By using a nematic liquid crystal compound 22, excellent transparency can be achieved in transmission mode. Furthermore, the anisotropy of the dielectric constant of the liquid crystal compound 22 may be positive or negative.

[0061] Examples of liquid crystal compounds 22 include low-molecular-weight liquid crystal compounds that exhibit a nematic or smectic phase at room temperature or high temperature, such as cyanobiphenyl, cyanophenylcyclohexane, cyanophenyl ester, benzoate phenyl ester, phenylpyrimidine compounds, and mixtures thereof, as described in Japanese Patent Publication No. 11-174211. Examples of such low-molecular-weight liquid crystal compounds include biphenyl, phenylbenzoate, cyclohexylbenzene, azoxybenzene, azobenzene, azomethine, terphenyl, biphenylbenzoate, cyclohexylbiphenyl, phenylpyrimidine, cyclohexylpyrimidine, and cholesterol-based low-molecular-weight liquid crystal compounds, as described in Japanese Patent Publication No. 11-153787. These low-molecular-weight liquid crystal compounds can be used individually or in combination of two or more.

[0062] The polymer constituting the polymer-dispersed liquid crystal layer 20 is a polymer or crosslinked monomer of monomer components. The monomer components can be appropriately selected according to the light transmittance, the refractive index of the liquid crystal compound 22, and other factors. Typical monomer components include polymer-type liquid crystal monomers (which may include bifunctional or crosslinked monomers) and monomers of active energy ray-curable resins. Examples of active energy ray-curable resins include (meth)acrylic resins, silicone resins, epoxy resins, fluororesins, polyester resins, and polyimide resins. Monomer components can be used alone or in combination of two or more, but it is preferable to use them in combination of two or more. By using two or more monomer components in combination, both a polymer network and the partition wall 23 described later can be formed. Furthermore, from the viewpoint of facilitating refractive index matching with the liquid crystal compound 22, it is preferable that the monomer components include at least one liquid crystal monomer.

[0063] The liquid crystal monomer is not particularly limited, and liquid crystal monomers known in the art may be used. For example, polymer-type compounds (monomers) described in Japanese Patent Publication No. 2002-533742 (WO00 / 37585), EP358208 (US5211877), EP66137 (US4388453), WO93 / 22397, EP0261712, DE19504224, DE4408171, and GB2280445 can be used. Such polymer-type compounds are commercially available (for example, BASF's trade name LC242, Merck's trade name E7, Wacker-Chemie's trade name LC-Silicon-CC3767, and Tokyo Chemical Industry Co., Ltd.'s RSM257 (1,4-bis[4-(3-acryloyloxypropoxy)benzoyloxy]-2-methylbenzene)), so it is possible to use these commercially available products.

[0064] The polymer-dispersed liquid crystal layer 20 may further contain components known in the art, depending on the purpose. For example, the polymer-dispersed liquid crystal layer 20 may further contain a chiral agent. By using a chiral agent, the liquid crystal compound 22 can be made cholesterically oriented. The type and amount of chiral agent can be appropriately determined according to desired settings such as the helical pitch. Furthermore, the polymer-dispersed liquid crystal layer 20 may contain antioxidants, dyes, etc. In particular, while dimming devices 100 generally switch between transparent (incident light transmission state) and opaque (incident light scattering state), by using a dichroic dye as the dye, it becomes possible to switch between transparent (incident light transmission state) and black (incident light absorption state). The inventors have experimentally confirmed that the addition of a dichroic dye has almost no effect on the effects of the present invention (especially the effect of reducing the driving voltage of the dimming device 100). The content of known components in the polymer-dispersed liquid crystal layer 20 is not particularly limited, but may be, for example, 10% by mass or less.

[0065] A polymer-dispersed liquid crystal layer 20 containing a vertical alignment agent 21 can be formed by reacting a liquid crystal composition containing a liquid crystal compound 22, a monomer component, and a vertical alignment agent 21 with active energy rays. The mass ratio of monomer components to liquid crystal compound 22 in the liquid crystal composition is not particularly limited, but is, for example, 5:95 to 30:70, preferably 10:90 to 20:80. By controlling the mass ratio of monomer components to liquid crystal compound 22 within this range, it becomes easier to control the haze to 80% or more at a low drive voltage when switching to the scattering mode. The content of the vertical alignment agent 21 in the liquid crystal composition is not particularly limited, but is, for example, 0.01 to 50% by mass, preferably 0.05 to 30% by mass, and more preferably 0.1 to 10% by mass.

[0066] The liquid crystal composition may further contain the known components described above, depending on the purpose. The liquid crystal composition may also further contain a polymerization initiator. The type and amount of polymerization initiator can be appropriately determined depending on the type and composition of the monomer components. The content of these components in the liquid crystal composition is not particularly limited, but may be, for example, 10% by mass or less.

[0067] As shown in Figure 2, the polymer-dispersed liquid crystal layer 20 may be provided with partitions 23 that divide the polymer-dispersed liquid crystal layer 20 into multiple regions. The structure of the partition wall 23 is not particularly limited, but it is preferable that it has a grid-like continuous structure when the polymer-dispersed liquid crystal layer 20 is viewed in plan view, and is provided to connect the pair of transparent substrates 10a and 10b. By providing the partition wall 23, the thickness of the polymer-dispersed liquid crystal layer 20 becomes less prone to change, and the liquid crystal compound 22 can be prevented from flowing or leaking out due to displacement of the pair of transparent substrates 10a and 10b caused by bending. Furthermore, the partition wall 23 can also function as a spacer to maintain the distance between the pair of transparent substrates 10a and 10b. Therefore, by providing the partition wall 23, it becomes easier to manufacture a flexible dimming device 200.

[0068] Here, in this specification, the partition wall 23 having a "lattice-like continuous structure" means a partition that extends in multiple directions and is arranged periodically when the polymer-dispersed liquid crystal layer 20 is viewed from above. The number of directions in which the partition wall 23 extends is not particularly limited, but is preferably two directions (in which case the shape of the lattice is a square) or three directions (in which case the shape of the lattice is a triangle or a hexagon), and more preferably two directions. The width of the partition wall 23 is not particularly limited, but is, for example, 3 to 50 μm, preferably 5 to 30 μm, and more preferably 8 to 20 μm.

[0069] The dimming devices 100, 200 according to Embodiment 1 of the present invention have a drive voltage of 25V or less, preferably 20V or less, and more preferably 15V or less, to reduce the haze to 80% or more. A drive voltage within this range can be considered low. On the other hand, the lower limit of the drive voltage is not particularly limited, but for example, it is 3V or 5V. Furthermore, the haze and drive voltage can be measured by the methods described in the following embodiments.

[0070] The dimming devices 100, 200 according to Embodiment 1 of the present invention may further include configurations known in the art, as needed. For example, a spacer can be provided between a pair of transparent substrates 10a and 10b to maintain a predetermined distance. A sealing portion can also be provided between the pair of transparent substrates 10a and 10b to seal the polymer-dispersed liquid crystal layer 20. Furthermore, various layers, such as a hard coat layer, a protective layer, and an adhesive layer, can be provided on the surfaces of the pair of transparent substrates 10a and 10b opposite to the polymer-dispersed liquid crystal layer 20.

[0071] A dimming device 100,200 according to Embodiment 1 of the present invention, having the structure described above, can be manufactured by a method that includes the steps of: preparing a liquid crystal cell by arranging a liquid crystal composition containing a liquid crystal compound 22, a monomer component and a vertical alignment agent 21 between a pair of transparent substrates 10a,10b; and irradiating the liquid crystal cell with active energy rays.

[0072] The method for producing a liquid crystal cell by arranging a liquid crystal composition between a pair of transparent substrates 10a and 10b is not particularly limited, and methods known in the art can be used. For example, the liquid crystal composition can be injected between a pair of transparent substrates 10a and 10b using capillary action. Alternatively, a liquid crystal composition may be applied to one transparent substrate 10a (or transparent substrate 10b) to form a coating layer, and then the other transparent substrate 10b (or transparent substrate 10a) may be laminated on top of the coating layer. As for the coating method, known methods such as roll coating, spin coating, wire barcode coating, dip coating, die coating, curtain coating, spray coating, and knife coating can be used.

[0073] By irradiating the liquid crystal cell prepared as described above with active energy rays, the monomer components in the liquid crystal composition polymerize or crosslink, forming a polymer-dispersed liquid crystal layer 20. While not particularly limited, ionizing radiation such as ultraviolet rays, electron beams, alpha rays, beta rays, and gamma rays can be used as the active energy ray. Among these, ultraviolet rays are preferred as the active energy ray. The active energy ray may be irradiated over the entire surface of the liquid crystal cell, or it may be irradiated only at a predetermined location on the liquid crystal cell.

[0074] The irradiation conditions for the active energy rays are not particularly limited and can be adjusted as appropriate depending on the type of active energy ray and liquid crystal composition (especially the monomer component) used. For example, when using ultraviolet light as the active energy ray, the irradiation conditions for ultraviolet light are preferably an illuminance of 1 to 300 mW / cm². 2 More preferably 10-150 mW / cm² 2 The irradiation time can preferably be 1 to 30 minutes, more preferably 1 to 15 minutes. As a light source, for example, a high-pressure mercury lamp, a low-pressure mercury lamp, a metal halide lamp, a UV-LED, etc., can be used.

[0075] Upon irradiation with active energy rays, monomer components polymerize or crosslink, and the resulting polymer-dispersed liquid crystal layer 20 contains a polymer (polymer or crosslinked monomer component), a liquid crystal compound 22, and a vertical alignment agent 21. The liquid crystal compound 22 exists in a phase-separated or dispersed state within the polymer network structure formed by the polymer.

[0076] When the monomer component includes a liquid crystal monomer, a liquid crystal polymer is obtained by the polymerization or crosslinking described above. It is preferable that the liquid crystal polymer is oriented in a predetermined direction and that its orientation is fixed. By fixing the orientation of the liquid crystal polymer, switching between transmission mode and scattering mode can be suitably performed through changes in the orientation of the liquid crystal compound 22. Such a liquid crystal polymer is obtained by oriented liquid crystal monomers (which may include bifunctional or crosslinked monomers) and then polymerizing or crosslinking the liquid crystal monomers together. Here, a polymer is formed by polymerization or crosslinking, and a polymer network structure is formed by crosslinking, but these are non-liquid crystal. Therefore, in the obtained liquid crystal polymer, for example, transitions to liquid crystal phase, glass phase, and crystalline phase due to temperature changes, which are characteristic of liquid crystal compounds, do not occur.

[0077] When manufacturing a dimming device 200 having a polymer-dispersed liquid crystal layer 20 with partition walls 23, irradiation with active energy rays (e.g., ultraviolet rays) is performed in two stages. Specifically, the active energy ray irradiation includes a first active energy ray irradiation that selectively irradiates a predetermined portion of the liquid crystal cell, and a second active energy ray irradiation that irradiates the entire surface of the liquid crystal cell.

[0078] By using this two-stage irradiation method, partition walls 23 can be formed in a predetermined area. The selective irradiation in the first active energy ray irradiation can be performed using a mask having a predetermined aperture pattern. For example, by irradiating a liquid crystal cell with active energy rays through a mask having a grid-like aperture pattern when viewed from above, and then removing the mask and irradiating the entire surface of the liquid crystal cell with active energy rays, a polymer-dispersed liquid crystal layer 20 and partition walls 23 that divide the polymer-dispersed liquid crystal layer 20 into multiple regions can be formed. With this configuration, a dimming device 200 with excellent impact resistance and mechanical strength can be obtained.

[0079] The dimming devices 100 and 200 according to Embodiment 1 of the present invention can be suitably used in a reverse mode where the driving method is in a transmission mode when no voltage is applied and a scattering mode when a voltage is applied, because the vertical alignment agent 21 aligns the liquid crystal compound 22 vertically with respect to a pair of transparent substrates 10a and 10b. In the reverse-mode dimming devices 100 and 200, applying a voltage greater than the threshold at which a Frederick transition occurs increases the refractive index difference between the polymer and the liquid crystal compound 22 in the polymer-dispersed liquid crystal layer 20, resulting in a scattering mode. Conversely, stopping the voltage application reduces the refractive index difference between the polymer and the liquid crystal compound 22 in the polymer-dispersed liquid crystal layer 20, resulting in a transmission mode. This method has a faster response speed than other methods, allowing for high-speed switching between transmission and scattering modes.

[0080] The dimming devices 100 and 200 according to Embodiment 1 of the present invention use a polymer-dispersed liquid crystal layer 20 containing a vertical alignment agent 21 as the liquid crystal layer, and control the driving voltage to 25V or less to reduce the haze to 80% or more, resulting in a lower driving voltage compared to conventional dimming devices. Furthermore, the dimming devices 100 and 200 according to the embodiment of the present invention do not require an alignment film, and inexpensive resin substrates can be used as a pair of transparent substrates 10a and 10b, thus reducing manufacturing costs. For this reason, the dimming devices 100 and 200 according to Embodiment 1 of the present invention can be used in various applications such as electronic blinds, projection screens, dimmable windows, smart windows, liquid crystal shutters, and light guide plates. Among these, the dimming devices 100 and 200 according to Embodiment 1 of the present invention are particularly suitable for use in smart windows.

[0081] (Embodiment 2) The dimming device according to Embodiment 2 of the present invention comprises a nematic liquid crystal layer as the liquid crystal layer. Figure 3 is a schematic cross-sectional view of a dimming device according to Embodiment 2 of the present invention. As shown in Figure 3, the dimming device 300 according to Embodiment 2 of the present invention comprises a pair of transparent substrates 10a and 10b and a nematic liquid crystal layer 30 sandwiched between the pair of transparent substrates 10a and 10b. The dimming device 300 according to Embodiment 2 of the present invention has the same components as the dimming device 100 according to Embodiment 1 of the present invention, except that it uses a nematic liquid crystal layer 30 as the liquid crystal layer. Therefore, the explanation of components having the same reference numerals as those that appeared in the description of the dimming device 100 according to Embodiment 1 of the present invention will be omitted.

[0082] Furthermore, the dimming device 300 according to Embodiment 2 of the present invention has a drive voltage of 25V or less, preferably 20V or less, and more preferably 15V or less, for reducing the haze to 80% or more. A drive voltage within this range can be considered low. On the other hand, the lower limit of the drive voltage is not particularly limited, but for example, it is 3V or 5V. Furthermore, the haze and drive voltage can be measured by the methods described in the following embodiments.

[0083] The nematic liquid crystal layer 30 comprises a nematic liquid crystal compound 31 and a vertical alignment agent 21. The nematic liquid crystal compound 31 is not particularly limited, and any known compound in the art can be used. Furthermore, the dielectric anisotropy of the nematic liquid crystal compound 31 may be positive or negative.

[0084] In the dimming device 300 according to Embodiment 2 of the present invention, similar to the dimming devices 100 and 200 according to Embodiment 1 of the present invention, the vertical alignment agent 21 orients the nematic type liquid crystal compound 31 vertically with respect to a pair of transparent substrates 10a and 10b. Therefore, the driving method can be suitably used in reverse mode, where it is in transmission mode when no voltage is applied and in scattering mode when a voltage is applied.

[0085] In the reverse-mode dimming device 300, applying a voltage greater than the threshold at which a Frederick transition occurs causes the orientation of the nematic liquid crystal compound 31 in the nematic liquid crystal layer 30 to be spontaneously disrupted, resulting in a scattering mode. This is thought to be caused by the following phenomenon: The nematic liquid crystal layer 30, which contains a vertical alignment agent 21, contains impurity ions originating from the vertical alignment agent 21. When an AC voltage is applied to the nematic liquid crystal layer 30, negative impurity ions are attracted to the positive side, and positive impurity ions are attracted to the negative side. At this time, local flow occurs in the nematic liquid crystal layer 30, but when the direction of the electric field is reversed by the AC voltage, the direction in which each impurity ion is attracted is also reversed. When this phenomenon is repeated at a constant frequency, roll-shaped electrical convection occurs and spreads uniformly, forming a stripe pattern macroscopically. Since the nematic liquid crystal layer 30 is birefringent, a difference in refractive index appears within the stripe pattern, causing the scattering phenomenon. Furthermore, the macroscopic stripe pattern also depends on the frequency; a stripe pattern is formed at 100Hz drive, but at 1000Hz, the stripe pattern disappears regardless of the applied voltage. This supports the idea that at high frequencies, impurity ions cannot keep up and become immobile, thus preventing electrical convection, and is consistent with the explanation regarding impurity ions mentioned above.

[0086] On the other hand, by stopping the application of voltage, the orientation of the nematic liquid crystal compound 31 in the nematic liquid crystal layer 30 becomes aligned, resulting in a transmission mode. Furthermore, the above phenomenon is not observed in conventional dimming devices in which alignment films are formed on the surfaces of a pair of transparent substrates 10a and 10b. In addition, this method has a faster response speed than other methods, allowing for high-speed switching between transmission mode and scattering mode.

[0087] The impurity ion density in the liquid crystal layer (nematic liquid crystal layer 30) is not particularly limited, but is between 0.3 and 400 nC / cm². 2 Preferably, the temperature is 1 to 390 nC / cm². 2 It is more preferable that the temperature is 10-380 nC / cm². 2 It is even more preferable that the range be 30-380n C / cm 2 It is particularly preferable that the impurity ion density be controlled within such a range. This allows for stable generation of electrical convection when voltage is applied. Furthermore, the impurity ion density in the liquid crystal layer can be calculated using the following method with an ion density measurement system (manufactured by Toyo Technica Co., Ltd.).

[0088] The dimming devices 100 and 200 according to Embodiment 1 of the present invention use a polymer-dispersed liquid crystal layer 20 as the liquid crystal layer, and therefore require a process to form the polymer-dispersed liquid crystal layer 20. Specifically, monomer components necessary for forming the polymer-dispersed liquid crystal layer 20 are added to the liquid crystal composition, and active energy ray irradiation is required to polymerize or crosslink the monomer components. In contrast, the dimming device 300 according to Embodiment 2 of the present invention uses a nematic liquid crystal layer 30 as the liquid crystal layer, and therefore does not require the addition of monomer components or active energy ray irradiation to polymerize or crosslink the monomer components. Accordingly, the dimming device 300 according to Embodiment 2 of the present invention can reduce manufacturing costs compared to the dimming device 100 and 200 according to Embodiment 1 of the present invention.

[0089] A dimming device 300 according to Embodiment 2 of the present invention, having the structure described above, can be manufactured by a method that includes the step of creating a liquid crystal cell by arranging a liquid crystal composition containing a nematic liquid crystal compound 31 and a vertical alignment agent 21 between a pair of transparent substrates 10a and 10b. The step of creating the liquid crystal cell can be carried out according to the method described above. Furthermore, since the dimming device 300 according to Embodiment 2 of the present invention uses a nematic liquid crystal layer 30 as the liquid crystal layer, the step of forming the polymer-dispersed liquid crystal layer 20 as described above is unnecessary, and manufacturing costs can be reduced.

[0090] Although this specification describes an embodiment in which the technology described herein is used in a dimming device, this technology can also be used in liquid crystal display devices. [Examples]

[0091] The present invention will be described in detail below with reference to examples, but the present invention is not limited to these examples.

[0092] (Example 1) In equation (I) above, R 1 The dendrimer represented by the following formula is synthesized as follows did.

[0093] [ka]

[0094] <Synthesis of 6-[4-(trans-4-pentylcyclohexyl)phenoxy]hexanol> In a 200 mL round-bottom flask, 4-(trans-4-pentylcyclohexyl)phenoxyphenol (10 g, 41 mmol), 6-bromohexanol (8.8 g, 49 mmol), potassium carbonate (11 g, 80 mmol), and 2-butanone (50 ml) were dissolved and heated under reflux for 60 hours. After heating under reflux, 2-butanone was removed under reduced pressure, and the resulting residue was dissolved in ethyl acetate. This solution was washed three times with water. Next, anhydrous sodium sulfate was added to this solution to remove water, and the ethyl acetate was removed under reduced pressure. The resulting residue was recrystallized with n-hexane to obtain white crystals in a yield of 6.2 g (44%). These white crystals were found to be 3340 cm⁻¹ by IR. -1 (OH), 2922cm -1 (CH), 1245cm -1 Characteristic absorption of (PhO-) was observed.

[0095] <Synthesis of 6-[4-(trans-4-pentylcyclohexyl)phenoxy]hexyl acrylate> In a 200 mL three-necked flask, 6-[4-(trans-4-pentylcyclohexyl)phenoxy]hexanol (6.0 g, 17 mmol), triethylamine (2.2 g, 22 mmol), and THF (50 ml) were dissolved and cooled to 0°C with ice. Acryloyl chloride (1.9 g, 21 mmol) was slowly added to this solution using a syringe and stirred at room temperature for 12 hours. The resulting white solid was filtered off, and the filtrate was concentrated under reduced pressure. The resulting residue was dissolved in ethyl acetate and washed three times with 100 mL of water. Next, anhydrous magnesium sulfate was added to the organic phase to remove water, and the mixture was concentrated under reduced pressure. The residue was then purified by column chromatography (stationary phase: silica gel, mobile phase: hexane / chloroform (volume ratio 50:1)) to obtain a colorless, transparent liquid in a yield of 6.4 g (93% yield). This liquid was analyzed by IR at 2920 cm⁻¹. -1 (CH), 1716cm -1 (C=O), 1245cm -1 Characteristic absorption of (PhO-) was observed.

[0096] <Dendrimer synthesis> In a 20 ml round-bottom flask, Sigma-Aldrich DAB-Am-8 (0.16 g, 0.21 mmol), 6-[4-(trans-4-pentylcyclohexyl)phenoxy]hexyl acrylate (4.0 g, 10 mmol), and THF (5 ml) were added and heated at 50°C for 72 hours. Next, this solution was concentrated under reduced pressure, and the residue was dissolved in a small amount of chloroform and added to 100 ml of methanol. The supernatant was removed by decantation, and the precipitate was collected. This procedure was repeated twice to purify the solution, yielding a paste-like pale yellow solid in a yield of 0.45 g (30%). This pale yellow solid was irradiated at 2921 cm³. -1 (CH), 1736cm -1 (C=O), 1247cm -1 The characteristic absorption of (PhO-) was observed. Furthermore, the elemental analysis of this pale yellow solid yielded C 456 H 736 N 14 O 48The calculated values ​​agreed within a 0.5% range. (Calculated values: C: 76.25%, H: 10.33%, N: 2.73%, Measured values: C: 76.09%, H: 10.52%, N: 2.80%) Furthermore, when the molecular weight of this pale yellow solid was measured by MALDI-TOF-MS, the measured value was m / Z = 7181.2 (M+H), compared to the theoretical value m / Z = 7183 (M+H). In addition, when DSC measurements were performed on this pale yellow solid, endothermic peaks were observed at -24°C and 14°C and 73°C during the heating process, and exothermic peaks were observed at 69°C and 15°C and a Tg at -26°C during the cooling process.

[0097] Next, using the dendrimer synthesized above, a dimming device was fabricated according to the following procedure. First, the dendrimer was heated to 75°C, and then a liquid crystal compound (Merck ZLI-4788-100) and a liquid crystal monomer (Tokyo Chemical Industries, Ltd. RM257) were added and mixed to obtain a liquid crystal composition. In this liquid crystal composition, the mass ratio of liquid crystal monomer to liquid crystal compound was set to 20:80, and the dendrimer content was set to 1% by mass. Next, a glass substrate (1.1 mm thick) with an ITO transparent electrode was prepared, and a spacer (Mylar film, 6 μm thick) was sandwiched between two glass substrates with the ITO transparent electrode on the inside to obtain a laminate. Then, a liquid crystal composition was injected between the two glass substrates using capillary action to obtain a liquid crystal cell. Next, the liquid crystal cell was irradiated with ultraviolet light. Specifically, at room temperature, a UV exposure machine equipped with a UV-LED light source was used at 10 mW / cm². 2 Ultraviolet light was continuously irradiated at this intensity for 10 minutes. As a result, the liquid crystal monomers polymerized or crosslinked to form a liquid crystal polymer, creating a polymer-dispersed liquid crystal layer.

[0098] (Comparative Example 1) A dimming device was fabricated in the same manner as in Example 1, except that instead of using a dendrimer, an alignment film was formed on a glass substrate with an ITO transparent electrode. Specifically, the dimming device was fabricated by the following procedure. First, a liquid crystal compound (Merck ZLI-4788-100) and a liquid crystal monomer (Tokyo Chemical Industries, Ltd. RM257) were mixed to obtain a liquid crystal composition. In this liquid crystal composition, the mass ratio of the liquid crystal monomer to the liquid crystal compound was set to 20:80. Next, a vertical alignment film material SE-4811 (manufactured by Nissan Chemical Corporation) was applied to the surface of a glass substrate (1.1 mm thick) with an ITO transparent electrode attached, on the side with the ITO transparent electrode. After firing at 200°C for 30 minutes, an alignment film was formed by rubbing. Next, a spacer (Mylar film, 6 μm thick) was sandwiched between two glass substrates with the alignment film side facing inward to form a laminate. Then, a liquid crystal composition was injected between the two glass substrates using capillary action to obtain a liquid crystal cell. Next, the liquid crystal cell was irradiated with ultraviolet light under the same conditions as in Example 1. As a result, the liquid crystal monomer polymerized or crosslinked to form a liquid crystal polymer, and a polymer-dispersed liquid crystal layer was formed.

[0099] The dimming devices obtained in the above examples and comparative examples were placed in a haze meter so that the incident light was perpendicular to the glass substrate surface. Then, a voltage of 0 to 70V was applied to the dimming device, and the total light transmittance and diffuse light transmittance were measured to determine the relationship between the voltage and haze in the dimming device. The results are shown in Figure 4. Hayes was calculated using the following formula. Haze (%) = Diffuse light transmittance / Total light transmittance × 100 Furthermore, diffused transmitted light was defined as the transmittance of light that has been diffused at an angle of 2.5° or more from the incident light.

[0100] As shown in Figure 4, the dimming device of Example 1 was able to achieve a haze of 80% or more at a voltage of 15V or less, whereas the dimming device of Comparative Example 1 required a voltage of 30V or more to achieve a haze of 80% or more. Furthermore, the dimming device of Comparative Example 1 had a haze threshold voltage (the voltage at which the haze begins to change) of 16V, whereas the dimming device of Example 1 had a haze threshold voltage of 6V, demonstrating that the haze threshold voltage could be lowered.

[0101] To consider the above results, the following experiment was conducted. (contact angle) Contact angles were measured for the following three samples. A commercially available contact angle meter was used for the measurement. The glass substrate with ITO transparent electrodes, liquid crystal compound, dendrimer, and alignment film were the same as those used in the above examples and comparative examples. Sample 1: The contact angle of a liquid crystal compound with a glass substrate equipped with an ITO transparent electrode was measured. Sample 2: The contact angle of a mixture of liquid crystal compounds and dendrimers to a glass substrate with an ITO transparent electrode was measured. Sample 3: The contact angle of the liquid crystal compound with respect to a glass substrate with an ITO transparent electrode on which an alignment film was formed was measured. In Sample 2, the dendrimer content in the mixture was set to 1% by mass. The results of the contact angle measurement are shown in Table 1.

[0102] [Table 1]

[0103] As shown in Table 1, Sample 1 had a small contact angle and high wettability of the glass substrate with ITO transparent electrodes (hereinafter abbreviated as "substrate"). Sample 3 had a large contact angle, and the wettability of the substrate decreased due to the formation of an alignment film on the substrate. On the other hand, Sample 2 had a smaller contact angle than Sample 3, and the wettability of the substrate was higher than that of Sample 3. In polymer-dispersed liquid crystals, when the wettability of the substrate is low, the polymer network at the substrate interface becomes sparse, and a dense polymer network is formed in the bulk portion. Therefore, in the dimming device of Comparative Example 1, which has an alignment film formed, the polymer network in the bulk portion of the polymer-dispersed liquid crystal layer becomes dense, which is thought to result in higher voltages required to achieve a haze of 80% or more and higher haze threshold voltages. On the other hand, in the dimming device of Example 1, which does not have an alignment film formed, the polymer network at the substrate interface is denser than in the bulk portion, which is thought to have allowed for lower voltages required to achieve a haze of 80% or more and lower haze threshold voltages.

[0104] (Observation of the substrate surface using a laser microscope and a scanning electron microscope (SEM)) The substrate surfaces of the following two samples were observed using a laser microscope (VK-9710, manufactured by Keyence Corporation) and a scanning electron microscope. Sample 1: The liquid crystal composition used in Example 1 was injected between a glass substrate and a polycarbonate substrate (SS80, manufactured by Teijin Limited), and then irradiated with ultraviolet light under the same conditions as in Example 1. After that, the polycarbonate substrate was peeled off, the liquid crystal compound and dendrimers were removed, and the surface of the glass substrate was observed with a laser microscope and a scanning electron microscope. Sample 2: The liquid crystal composition used in Comparative Example 1 was injected between a glass substrate with the same alignment film as in Comparative Example 1 and a polycarbonate substrate (SS80, manufactured by Teijin Limited). The sample was then irradiated with ultraviolet light under the same conditions as in Comparative Example 1. After that, the polycarbonate substrate was peeled off and the liquid crystal compound was removed, and the surface of the glass substrate was observed with a laser microscope and a scanning electron microscope. Figure 5 shows an image of the substrate surface observed using a laser microscope, and Figure 6 shows an image of the substrate surface observed using a scanning electron microscope.

[0105] As shown in Figures 5 and 6, Sample 1 had a denser formation of polymer clumps on the substrate surface compared to Sample 2. These observations of the substrate surface indicate that the dimming device of Example 1, which does not have an alignment film formed, has a denser polymer network at the substrate interface and a sparser polymer network in the bulk portion compared to the dimming device of Comparative Example 1, which has an alignment film formed. As a result, it is thought that the dimming device of Example 1 has a smaller alignment restricting force due to the polymer network in the bulk portion, allowing for a lower voltage and haze threshold voltage required to achieve a haze of 80% or more.

[0106] (Example 2) Using the dendrimer synthesized in Example 1, a dimming device was fabricated according to the following procedure. First, a dendrimer and a nematic-type liquid crystal compound (Merck ZLI-4788-100) were mixed to obtain a liquid crystal composition. In this liquid crystal composition, the dendrimer content was set to 1% by mass. Next, a glass substrate (20 mm × 25 mm × 1.1 mm thick) with an ITO transparent electrode was prepared, and a spacer (Mylar film, 5 μm thick) was sandwiched between two glass substrates with the ITO transparent electrode on the inside to obtain a laminate. Then, the liquid crystal composition was heated to 140°C to form an isotropic phase, and then injected between the two glass substrates using capillary action, and cooled to room temperature to obtain a liquid crystal cell (dimming device).

[0107] The dimming device obtained in Example 2 was placed in a haze meter so that the incident light was perpendicular to the glass substrate surface. Then, the total light transmittance and diffuse light transmittance were measured in the same manner as in Example 1, and the relationship between voltage and haze in the dimming device was determined. The results are shown in Figure 7. As shown in Figure 7, the dimming device of Example 2 was able to achieve a haze of 80% or more at a voltage of 15V or less.

[0108] To consider the above results, the following experiment was conducted. (Impure ion density in the nematic liquid crystal layer) A triangular wave voltage with a frequency of 10 Hz and an amplitude of 10 V was applied to the following four liquid crystal cells using an ion density measurement system (manufactured by Toyo Technica Co., Ltd.). The results (graph of current waveform against applied voltage) are shown in Figure 8. Furthermore, the impurity ion density was calculated from the current peak in the graph in Figure 8. The calculation method is described in Katsumi Inoue, "Fundamentals and Applications of Electrical Characteristic Measurement of Liquid Crystal Cells (1) [Fundamentals]", Liquid Crystal, Vol. 13, No. 1, pp. 68-74, 2009. The results are shown in Figure 9. Liquid crystal cell A: A liquid crystal cell prepared in the same manner as in Example 2, except that a dendrimer was not added. Liquid crystal cell B: Liquid crystal cell prepared in Example 2 Liquid crystal cell C: A liquid crystal cell prepared in the same manner as in Example 2, except that the dendrimer content was changed to 3% by mass. Liquid crystal cell D: A liquid crystal cell prepared in the same manner as in Example 2, except that the dendrimer content was changed to 5% by mass.

[0109] As shown in Figure 8, current waveforms indicating the presence of impurity ions were observed in liquid crystal layers B to D, which have nematic liquid crystal layers containing dendrimers, whereas no current waveform indicating the presence of impurity ions was observed in liquid crystal layer A, which has a nematic liquid crystal layer without dendrimers. Furthermore, as shown in Figure 9, it was confirmed that the density of impurity ions increased as the concentration of dendrimers increased. From these results, it is thought that impurity ions originating from dendrimers generate electrical convection when a voltage is applied, causing a scattering phenomenon.

[0110] As can be seen from the above results, the present invention provides an inexpensive dimming device with a low driving voltage, a method for manufacturing the same, and a smart window.

[0111] [License Declaration] Upon granting this patent application, we will, in principle, flexibly consider granting exclusive licenses or assigning ownership to those who wish to use the patent. Those wishing to obtain a license or other rights should contact the patent application agent. [Explanation of Symbols]

[0112] 10a, 10b Transparent substrate 20 Polymer dispersed liquid crystal layer 21 Vertical alignment agent 22 Liquid crystal compounds 23 Bulkhead 30 Nematic Liquid Crystal Layers 31 Nematic liquid crystal compounds 100, 200, 300 dimming devices

Claims

1. A dimming device comprising a pair of transparent substrates and a liquid crystal layer sandwiched between the pair of transparent substrates, wherein the driving method is reverse mode, The liquid crystal layer contains a vertical alignment agent, The pair of transparent substrates does not have an alignment film provided on the surface on the liquid crystal layer side. The impurity ion density in the liquid crystal layer is 0.3 to 400 nC / cm². 2 And, A dimming device that requires a drive voltage of 25V or less to reduce haze to 80% or more.

2. The dimming device according to claim 1, wherein the driving voltage required to reduce the haze to 80% or more is 20V or less.

3. The dimming device according to claim 1, wherein the driving voltage required to reduce the haze to 80% or more is 15V or less.

4. The dimming device according to any one of claims 1 to 3, wherein the vertical orientation agent is a polymer having a branched structure containing a mesogenic group in its side chain, and the polymer contains one or more atoms that can be adsorbed onto the transparent substrate by intermolecular forces.

5. The dimming device according to any one of claims 1 to 4, wherein the liquid crystal layer further comprises a dichroic dye.

6. The dimming device according to any one of claims 1 to 5, wherein the pair of transparent substrates are glass substrates and / or resin substrates.

7. The dimming device according to any one of claims 1 to 6, wherein the liquid crystal layer is a polymer-dispersed liquid crystal layer.

8. The dimming device according to claim 7, wherein the polymer-dispersed liquid crystal layer comprises partitions that divide the polymer-dispersed liquid crystal layer into a plurality of regions.

9. The dimming device according to any one of claims 1 to 6, wherein the liquid crystal layer is a nematic liquid crystal layer.

10. A method for manufacturing a dimming device according to any one of claims 1 to 8, A method for manufacturing a dimming device, comprising the step of preparing a liquid crystal cell by arranging a liquid crystal composition containing a liquid crystal compound and a vertical alignment agent between a pair of transparent substrates.

11. A method for manufacturing a dimming device according to claim 10, wherein the liquid crystal composition further comprises a monomer component, and further comprises the step of irradiating the liquid crystal cell with active energy rays.

12. The method for manufacturing a dimming device according to claim 11, wherein the monomer component includes a liquid crystal monomer.

13. The method for manufacturing a dimming device according to claim 11 or 12, wherein the activation energy ray irradiation includes a first activation energy ray irradiation that selectively irradiates a predetermined portion of the liquid crystal cell, and a second activation energy ray irradiation that irradiates the entire surface of the liquid crystal cell.

14. A method for manufacturing a dimming device according to claim 9, A method for manufacturing a dimming device, comprising the step of preparing a liquid crystal cell by arranging a liquid crystal composition containing a liquid crystal compound and a vertical alignment agent between a pair of transparent substrates.

15. The method for manufacturing a dimming device according to claim 10 or 14, wherein the liquid crystal compound is a nematic liquid crystal compound.

16. A smart window including a dimming device according to any one of claims 1 to 9.

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