Liquid crystal composition and liquid crystal element

A liquid crystal composition with specific resistance of 1×10^-11 Ω m or less addresses high resistance issues in ferroelectric liquid crystal elements, enhancing response speed and contrast through ionic conduction and alignment improvements.

JP2025126047AActive Publication Date: 2025-08-28KYUSYU NANOTEC OPTICS CO LTD
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Patent Information

Application Number
JP2024022413
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-02-16
Publication Date
2025-08-28
Estimated Expiration
2044-02-16

AI Technical Summary

Technical Problem

Existing liquid crystal compositions used in ferroelectric liquid crystal elements exhibit high specific resistance, leading to display delays, response issues, and poor contrast due to increased hysteresis.

Method used

A liquid crystal composition with a specific resistance of 1×10^-11 Ω m or less than Ω·m, containing a polymerizable organic compound, a liquid crystal compound, and optionally an additive compound such as a piperidine, phosphoric acid, or halogen compound, to enhance ionic conduction and improve alignment properties.

Benefits of technology

The composition achieves improved response speed and contrast in liquid crystal elements by suppressing hysteresis and enhancing alignment properties.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a liquid crystal composition which can achieve manufacture of a liquid crystal element having good responsibility and contrast, and a liquid crystal element having good responsibility and contrast.SOLUTION: A liquid crystal composition is provided, which includes a polymerizable organic compound, and a liquid crystal compound, and in which a specific resistance value of the liquid crystal composition is 1×10-11 Ω m or more and less than 1×10-5 Ω m. A liquid crystal element is provided, which comprises: a planar first base material; a first electrically conductive film arranged on one surface side of the first base material; a liquid crystal layer which is arranged on a side opposite to the first base material of the first conductive film, and has a liquid crystal composition; a second electrically conductive film which is arranged on a side opposite to the first conductive film of the liquid crystal layer; and a planar second base material arranged on a side opposite to the liquid crystal layer of the second conductive film, wherein the liquid crystal composition includes a polymerizable organic compound, and a liquid crystal compound, and a specific resistance value of the liquid crystal composition is 1×10-11 Ω m or more and less than 1×10-5 Ω m.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a liquid crystal composition and a liquid crystal device, and more particularly to a liquid crystal composition used in, for example, a liquid crystal display, and a liquid crystal device using the liquid crystal composition of the present invention. [Background technology]

[0002] 2. Description of the Related Art Liquid crystal elements such as liquid crystal display panels are used in a variety of household electrical appliances, measuring instruments, automotive panels, word processors, electronic organizers, printers, computers, televisions, and the like.

[0003] The liquid crystal element has a structure in which a liquid crystal layer is sealed between a pair of glass substrates. The glass substrates are also provided with electrodes for applying an electric field to the liquid crystal layer, and by controlling this electric field, the orientation of the liquid crystal molecules contained in the liquid crystal layer changes, allowing images to be displayed. The material that constitutes this liquid crystal layer is a liquid crystal composition, and various liquid crystal compositions have been proposed so far.

[0004] For example, Patent Document 1 describes a liquid crystal composition containing two or more compounds having two to four ring structures between two side chains, one or more ring structures being a 2,3-difluorobenzene skeleton, and two side chains being linked to different ring structures, in which the positions of the 2,3-difluorobenzene skeletons are different and the number of ring structures is the same.

[0005] Here, the number of ring structures is defined as N. If the molecular weights of the two side chains are different, the position of the ring structure to which the side chain with the larger molecular weight is linked is defined as 1, and the position of the ring structure to which the side chain with the smaller molecular weight is linked is defined as N. Ring structures in between are numbered consecutively from 1 to N. If the molecular weights of the two side chains are the same, the position of the ring structure to which the side chains are linked is defined as 1, and the position of the ring structure to which no side chains are linked is defined as 2. Such a liquid crystal composition exhibits the effects of having a low crystallization temperature and excellent compatibility. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-27165 Summary of the Invention [Problem to be solved by the invention]

[0007] Incidentally, a liquid crystal element having a ferroelectric liquid crystal composition as described in Patent Document 1 can achieve a response speed 10 times or more faster than a liquid crystal element having a nematic liquid crystal. However, in order to drive a thin film transistor using a ferroelectric liquid crystal composition, a liquid crystal material with a high specific resistance is required.

[0008] The specific resistance of the liquid crystal composition described in Patent Document 1 is 10 11 Ω·cm or more, i.e., 10 9 Such a high resistivity value increases hysteresis, causing display delays and response problems in the liquid crystal element, as well as poor contrast.

[0009] The present invention has been made in view of the above points, and aims to provide a liquid crystal composition that enables the production of a liquid crystal element having good response and contrast, and a liquid crystal element having good response and contrast. [Means for solving the problem]

[0010] In order to achieve the above object, the inventors have conducted extensive research and have found that the specific resistance of a conventional liquid crystal composition is 10 9 The present inventors have discovered that when a liquid crystal composition having a resistivity that is extremely low compared to values ​​of Ω·m or more and a resistivity value within a specific range is used in a liquid crystal device, the response and contrast become good, and have completed the present invention. That is, in order to achieve the above object, the liquid crystal composition of the present invention is a liquid crystal composition containing a polymerizable organic compound and a liquid crystal compound, and the liquid crystal composition has a specific resistance of 1×10 -11 Ω m or more 1×10 -5It is less than Ω·m.

[0011] Here, the specific resistance of the liquid crystal composition is 1×10 -11 Ω m or more 1×10 -5 If the resistance is less than Ω·m, hysteresis in the liquid crystal element can be suppressed. In addition, the specific resistance of the liquid crystal composition is 1×10 -11 Ω m or more 1×10 -5 When the resistance is less than Ω·m, the liquid crystal alignment property can be improved.

[0012] The liquid crystal composition of the present invention may also contain at least one additive compound selected from a piperidine compound, a phosphoric acid compound, or a halogen compound.

[0013] In this case, at least one additive compound selected from a piperidine compound, a phosphoric acid compound, or a halogen compound is mixed with the organic compound and the liquid crystal compound to induce ionic conduction and increase the specific resistance of the liquid crystal composition to 1×10 -11 Ω m or more 1×10 -5 Easy to adjust to less than Ω·m.

[0014] In the liquid crystal composition of the present invention, the content of the additive compound may be 0.2 to 17% by mass based on the total amount of the liquid crystal composition.

[0015] In this case, the specific resistance of the liquid crystal composition is 1×10 -11 Ω m or more 1×10 -5 Easier to adjust to less than Ω·m.

[0016] In the liquid crystal composition of the present invention, the specific resistance of the liquid crystal composition is 1×10 -9 Ω m or more 1×10 -7 It may be configured to have a resistance of less than Ω·m.

[0017] In this case, hysteresis in the liquid crystal element can be particularly suppressed, and the liquid crystal alignment property can be particularly improved.

[0018] In addition, the liquid crystal composition of the present invention may be configured so that the content of the additive compound is 5.0 to 14.0% by mass based on the total amount of the liquid crystal composition.

[0019] In this case, the specific resistance of the liquid crystal composition is 1×10 -9 Ω m or more 1×10 -7 Easy to adjust to less than Ω·m.

[0020] In the liquid crystal composition of the present invention, the additive compound may be ethyl piperidine-4-carboxylate, and the content of the additive compound may be 5.0 to 13.0% by mass based on the total amount of the liquid crystal composition.

[0021] In this case, the specific resistance of the liquid crystal composition is 1×10 -9 Ω m or more 1×10 -7 This makes it easier to adjust the resistance to less than Ω·m, and it is possible to particularly suppress hysteresis in the liquid crystal element and particularly improve the liquid crystal alignment.

[0022] In order to achieve the above object, a liquid crystal element of the present invention comprises a planar first substrate, a first conductive film that is disposed on one surface of the first substrate and has conductivity, a liquid crystal layer that is disposed on the side of the first conductive film opposite the first substrate and has a liquid crystal composition, a second conductive film that is disposed on the side of the liquid crystal layer opposite the first conductive film and has conductivity, and a planar second substrate that is disposed on the side of the second conductive film opposite the liquid crystal layer, wherein the liquid crystal composition contains a polymerizable organic compound and a liquid crystal compound, and the liquid crystal composition has a specific resistance of 1×10 -11 Ω m or more 1×10 -5 It is less than Ω·m.

[0023] Here, the specific resistance of the liquid crystal composition is 1×10 -11 Ω m or more 1×10 -5 If the resistance is less than Ω·m, hysteresis in the liquid crystal element can be suppressed. In addition, the specific resistance of the liquid crystal composition is 1×10 -11 Ω m or more 1×10 -5When the resistance is less than Ω·m, the liquid crystal alignment property can be improved. [Effects of the Invention]

[0024] The liquid crystal composition according to the present invention can realize the production of a liquid crystal device having good response and contrast. The liquid crystal device according to the present invention has good response and contrast. [Brief explanation of the drawings]

[0025] [Figure 1] 1 is a schematic cross-sectional view showing an example of a liquid crystal element to which the present invention is applied. [Figure 2] FIG. 1 is a schematic diagram illustrating an example of an apparatus for measuring the driving response of a liquid crystal element. [Figure 3] 1 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 1) to which the present invention is applied. [Figure 4] FIG. 4 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 2) to which the present invention is applied. [Figure 5] FIG. 10 is a schematic diagram showing a hysteresis curve of a conventional liquid crystal element (Comparative Example 1). [Figure 6] FIG. 10 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 3) to which the present invention is applied. [Figure 7] FIG. 10 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 4) to which the present invention is applied. [Figure 8] FIG. 10 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 5) to which the present invention is applied. [Figure 9] FIG. 10 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 6) to which the present invention is applied. [Figure 10] FIG. 10 is a schematic diagram showing a hysteresis curve of a liquid crystal element to which the present invention is applied (Example 7). [Figure 11] FIG. 10 is a schematic diagram showing a hysteresis curve of a conventional liquid crystal element (Comparative Example 2). [Figure 12] FIG. 10 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 8) to which the present invention is applied. [Figure 13] FIG. 10 is a schematic diagram showing a hysteresis curve of a liquid crystal element to which the present invention is applied (Example 9). [Figure 14] FIG. 10 is a schematic diagram showing a hysteresis curve of a liquid crystal element to which the present invention is applied (Example 10). [Figure 15] FIG. 10 is a schematic diagram showing a hysteresis curve of a conventional liquid crystal element (Comparative Example 3). [Figure 16] FIG. 10 is a schematic diagram showing a hysteresis curve of a conventional liquid crystal element (Comparative Example 4). DETAILED DESCRIPTION OF THE INVENTION

[0026] The liquid crystal composition of the present invention contains a polymerizable organic compound and a liquid crystal compound. The liquid crystal composition of the present invention has a specific resistance of 1×10 -11 Ω m or more 1×10 -5 Less than Ω m, preferably 1×10 -10 Ω m or more 1×10 -6 Less than Ω m, most preferably 1×10 -9 Ω m or more 1×10 -7 It can be less than Ω·m.

[0027] The liquid crystal composition of the present invention has a specific resistance of 1×10 -11 Ω m or more 1×10 -5 Since the resistance is less than Ω·m, the hysteresis in the liquid crystal element of the present invention to which the liquid crystal composition of the present invention is applied can be suppressed, and the liquid crystal alignment property can be improved.

[0028] Furthermore, the liquid crystal composition of the present invention has a specific resistance of 1×10 -9 Ω m or more 1×10 -7 If it is less than Ω·m, the hysteresis in the liquid crystal element of the present invention to which the liquid crystal composition of the present invention is applied can be particularly suppressed, and the liquid crystal alignment property can be particularly improved.

[0029] Here, the organic compound contained in the liquid crystal composition of the present invention has a specific resistance of 1×10 -9 Ω m or more 1×10 -7There are no particular limitations on the material, as long as it can be adjusted to less than Ω·m and is polymerizable. Specific examples of the organic compound contained in the liquid crystal composition of the present invention include a monofunctional acrylate ester monomer, a monofunctional acrylate ester oligomer, a monofunctional acrylate ester polymer, a monofunctional methacrylate ester monomer, a monofunctional methacrylate ester oligomer, a monofunctional methacrylate ester polymer, a difunctional to pentafunctional acrylate ester monomer, a difunctional to pentafunctional acrylate ester oligomer, a difunctional to pentafunctional acrylate ester polymer, a difunctional to pentafunctional methacrylate ester monomer, a difunctional to pentafunctional methacrylate ester oligomer, a difunctional to pentafunctional methacrylate ester polymer, a urethane acrylate ester monomer, a urethane acrylate ester oligomer, a urethane acrylate ester polymer, a urethane methacrylate ester monomer, a urethane methacrylate ester oligomer, a urethane methacrylate ester oligomer, a urethane methacrylate ester monomer, a urethane methacrylate ester oligomer, a urethane methacrylate ester polymer ... The polymerizable monomer is at least one selected from the group consisting of vinyl acrylate ester polymers, polyester acrylate monomers, polyester acrylate oligomers, polyester acrylate polymers, polyester methacrylate monomers, polyester methacrylate oligomers, polyester methacrylate polymers, vinyl acrylate ester monomers, vinyl acrylate ester oligomers, vinyl acrylate ester polymers, vinyl methacrylate ester monomers, vinyl methacrylate ester oligomers, vinyl methacrylate ester polymers, epoxy ester acrylate monomers, epoxy ester acrylate oligomers, epoxy ester acrylate polymers, epoxy ester methacrylate monomers, epoxy ester methacrylate oligomers, and epoxy ester methacrylate polymers.

[0030] The content of the polymerizable organic compound contained in the liquid crystal composition of the present invention is specifically, for example, 10 to 75% by mass based on the total amount of the liquid crystal composition of the present invention.

[0031] In addition, the liquid crystal compound contained in the liquid crystal composition of the present invention has a specific resistance of 1×10 -9Ω m or more 1×10 -7 There are no particular limitations on the material, as long as it can be adjusted to less than Ω·m. Specifically, the liquid crystal compound contained in the liquid crystal composition of the present invention is prepared by setting a combination of target physical property values, i.e., a nematic phase-isotropic liquid phase transition temperature (Tni), a refractive index anisotropy (Δn), and a dielectric anisotropy (Δε), and then using a component liquid crystal compound alone or mixing a plurality of component liquid crystal compounds so that the target physical property values ​​match or approximate the target physical property values.

[0032] The nematic phase-isotropic liquid phase transition temperature (Tni) of the liquid crystal compound contained in the liquid crystal composition of the present invention is specifically, for example, 40°C to 150°C, and preferably 80°C to 150°C.

[0033] The refractive index anisotropy (Δn) of the liquid crystal compound contained in the liquid crystal composition of the present invention is specifically, for example, 0.01 to 0.50, preferably 0.1 to 0.4, and most preferably 0.1 to 0.3.

[0034] The dielectric anisotropy (Δε) of the liquid crystal compound contained in the liquid crystal composition of the present invention is specifically, for example, 1 to 25, preferably 5 to 20, and most preferably 5 to 10. In addition, in the case of a negative type liquid crystal compound, the value of the dielectric anisotropy (Δε) is a negative value.

[0035] Specific examples of component liquid crystal compounds used to prepare the liquid crystal compound contained in the liquid crystal composition of the present invention include cyanobiphenyl-based liquid crystal compounds, ester-based liquid crystal compounds, Schiff-based liquid crystal compounds, tolan-based liquid crystal compounds, PCP-based liquid crystal compounds, and carboxylic acid-based liquid crystal compounds.

[0036] Specific examples of the cyanobiphenyl liquid crystal compound include at least one selected from 4-cyano-4'-ethylbiphenyl, 4-cyano-4'-pentylbiphenyl, 4-cyano-4'-octyloxybiphenyl, 4-cyano-4'-n-pentoxybiphenyl, 4-cyano-4'-propylbiphenylcyclohexane, and 4-cyano-4'-pentylterphenyl.

[0037] Specific examples of the ester liquid crystal compound include at least one selected from 4-pentyl 4'-hexyloxyphenyl ester, 4-cyano-4'-butylphenyl ester, 4-cyano-4'-pentylphenyl ester, 4-cyano-4'-hexyloxyphenyl ester, 3-fluoro-4-cyano-4'-ethylphenyl ester, 3,4-fluoro-4'-ethylphenyl ester, 4-cyano-3,5-bifluoro-4'-ethylphenyl ester, and 4-ethoxy-4'-propylphenyl cyclohexane ester.

[0038] The Schiff liquid crystal compound is specifically, for example, at least one selected from 4-methoxybenzylidene-4-butylaniline and 4-ethoxybenzylidene-4-butylaniline.

[0039] Specific examples of the tolan liquid crystal compounds include 4'-methylphenyl trans, 4-butoxy-4'-propylphenyl trans, 4-fluoro-4'-ethylphenyl trans, 3,4-fluoro-4'-ethylphenyl trans, 3,4,5-trifluoro-4'-ethylphenyl trans, 4-ethyl-4'-propylcyclohexane trans, At least one selected from 4'-pentylcyclohexane ester phenyl trans, 4-methoxy-4'-propylcyclohexane ester biphenyl trans, 4-fluoro-4'-propylcyclohexane ester biphenyl trans, 4-methyl-4'-propylterphenyl trans ester, and 4-cyano-4'-ethyltriphenyl trans ester.

[0040] Specific examples of the PCP liquid crystal compound include at least one selected from 4-fluoro-4'-alkylphenyl ester cyclohexane ester phenyl, 3,4-fluoro-4'-alkylphenyl ester cyclohexane ester phenyl, and 4-alkyl-4'-alkylphenyl ester cyclohexane ester phenyl.

[0041] The carboxylic acid liquid crystal compound is specifically at least one selected from p-alkylbenzoic acid, alkoxybenzoic acid, alkylphenyl ester benzoic acid, and alkylcyclohexane ester benzoic acid.

[0042] The case where the liquid crystal compound contained in the liquid crystal composition of the present invention is prepared by using the component liquid crystal compound alone means that the component liquid crystal compound alone has the target physical property values.

[0043] The content of the liquid crystal compound contained in the liquid crystal composition of the present invention can be specifically set to, for example, 15 to 75% by mass based on the total amount of the liquid crystal composition of the present invention.

[0044] The liquid crystal composition of the present invention contains a polymerizable organic compound and a liquid crystal compound, and the liquid crystal composition of the present invention has a specific resistance of 1×10 -11 Ω m or more 1×10 -5 The liquid crystal composition of the present invention may contain any compound as long as it has a resistance of less than Ω·m.

[0045] For example, the liquid crystal composition of the present invention may contain at least one additive compound selected from a piperidine compound, a phosphate compound, or a halogen compound. When the liquid crystal composition of the present invention contains such an additive compound, ionic conduction is induced, and the specific resistance of the liquid crystal composition of the present invention can be increased to 1×10 -11 Ω m or more 1×10 -5 Easy to adjust to less than Ω·m.

[0046] High-purity liquid crystal compounds with few impurities generally have a high specific resistance, and it is difficult to lower the specific resistance using the liquid crystal compound alone. Similarly, in the case of a liquid crystal composition containing a liquid crystal compound and a polymerizable organic compound monomer, the organic compound becomes a polymer after being polymerized and hardened, and therefore cannot be mixed into the liquid crystal compound, making it difficult to reduce the resistivity. Therefore, one method for lowering the resistivity of a liquid crystal composition is to add an additive compound that can induce ionic conduction and lower the resistivity.

[0047] Specific examples of the piperidine compound include piperidine, ethyl piperidine-4-carboxylate, methyl piperidine-4-carboxylate, piperidine-1-sulfonyl chloride, piperidine-4-carboxamide, 1-piperidinethiocarboxamide, ethyl piperidin-1-ylacetate, and 1-hydroxypiperidine.

[0048] Specific examples of the phosphoric acid compound include chlorodiphenylphosphine, diphenyl phosphate, tert-butylphosphonic acid dichloride, diethyl phosphoramidate, phenylphosphinic acid, 2-ethylhexyl acid phosphate, and dibutyl phosphate.

[0049] Specific examples of halogen compounds include 4-(aminosulfonyl)-7-fluoro-2,1,3-benzoxadiazole, sodium fluoride, N-fluoropyridinium trifluoromethanesulfonate, sodium fluorophosphate, fluoro(phenyl)acetic acid, ethyl fluoroiodoacetate, sodium chloride, ammonium chloride, potassium chloride, calcium chloride, bromoacetic acid, methyl bromoacetate, bromosuccinic acid, sodium bromide, potassium bromide, sodium iodide, potassium iodide, calcium iodide, and methylammonium iodide.

[0050] Furthermore, the content of the additive compound contained in the liquid crystal composition of the present invention can be specifically, for example, 0.2 to 17 mass % based on the total amount of the liquid crystal composition of the present invention, and preferably 5.0 to 14.0 mass %. When the content of the additive compound contained in the liquid crystal composition of the present invention is 0.2 to 17% by mass based on the total amount of the liquid crystal composition of the present invention, the specific resistance of the liquid crystal composition of the present invention is 1×10 -11 Ω m or more 1×10 -5 Easier to adjust to less than Ω·m. Furthermore, when the content of the additive compound contained in the liquid crystal composition of the present invention is 5.0 to 14.0 mass % based on the total amount of the liquid crystal composition of the present invention, the specific resistance of the liquid crystal composition of the present invention is 1×10 -9 Ω m or more 1×10 -7 Easy to adjust to less than Ω·m.

[0051] In the liquid crystal composition of the present invention, the additive compound may be piperidine-4-ethyl carboxylate, and the content of the additive compound may be 5.0 to 13.0% by mass based on the total amount of the liquid crystal composition of the present invention. Under these conditions, the specific resistance of the liquid crystal composition of the present invention is 1×10 -9 Ω m or more 1×10 -7 The resistance can be easily adjusted to less than Ω·m, and the hysteresis in the liquid crystal element of the present invention to which the liquid crystal composition of the present invention is applied can be particularly suppressed, and the liquid crystal alignment property can be particularly improved.

[0052] Next, the liquid crystal element of the present invention will be described. FIG. 1 is a schematic cross-sectional view showing an example of a liquid crystal element to which the present invention is applied. A liquid crystal element 1 of the present invention shown in FIG. 1 includes a first transparent resin film substrate 2 in the form of a thin film having a planar shape.

[0053] The liquid crystal element 1 of the present invention also includes a first transparent conductive film 4 . Here, the first transparent conductive film 4 is disposed on one surface of the first transparent resin film substrate 2 and has conductivity.

[0054] The liquid crystal element 1 of the present invention also includes a liquid crystal layer 6 . Here, the liquid crystal layer 6 is disposed on the side of the first transparent conductive film 4 opposite to the first transparent resin film substrate 2, and contains the liquid crystal composition of the present invention.

[0055] The liquid crystal element 1 of the present invention also includes a second transparent conductive film 5 . Here, the second transparent conductive film 5 is disposed on the opposite side of the liquid crystal layer 6 to the first transparent conductive film 4, and has conductivity. The liquid crystal device 1 of the present invention also includes a second transparent resin film substrate 3 in the form of a thin film having a planar shape. Here, the second transparent resin film substrate 3 is disposed on the opposite side of the second transparent conductive film 5 from the liquid crystal layer 6 .

[0056] That is, the first transparent conductive film 4 covers one surface of the first transparent resin film substrate 2 , and the second transparent conductive film 5 covers one surface of the second transparent resin film substrate 3 . The liquid crystal layer 6 is in contact with the first transparent conductive film 4 and the second transparent conductive film 5.

[0057] As such, the liquid crystal element 1 of the present invention is a laminated body, as shown in FIG. 1, in which a liquid crystal layer 6 is sandwiched between a first transparent resin film substrate 2 provided with a first transparent conductive film 4 and a second transparent resin film substrate 3 provided with a second transparent conductive film 5.

[0058] The first transparent resin film substrate 2 and the second transparent resin film substrate 3 are each made of a material that is used as a substrate for a typical liquid crystal element. Specific examples of such materials include polymer films made of polyethylene, polystyrene, polyethylene terephthalate (PET), polyvinyl alcohol, polycarbonate, polyvinyl chloride, polyimide, polysulfone, cycloolefin polymer, triacetyl cellulose, and the like.

[0059] The first transparent resin film substrate 2 is an example of a first substrate, and the second transparent resin film substrate 3 is an example of a second substrate. Furthermore, the first and second substrates do not necessarily have to be made of resin films, and can also be made of glass substrates, for example.

[0060] Moreover, the first transparent conductive film 4 and the second transparent conductive film 5 are each made of a material that is used for conductive films in ordinary liquid crystal elements. Specific examples of such materials include indium tin oxide (ITO), fluorine-doped tin oxide (FTO), tin oxide, zinc oxide, and carbon nanotubes.

[0061] The first transparent conductive film and the second transparent conductive film are examples of the first conductive film and the second conductive film, respectively.

[0062] In order to apply a voltage to the liquid crystal element 1 of the present invention, a conducting wire 7 is electrically connected to the liquid crystal element 1 of the present invention, as shown in FIG. That is, at the end of the liquid crystal element 1 of the present invention, a part of the liquid crystal layer 6 is removed to expose a part of the first transparent conductive film 4 and a part of the second transparent conductive film 5. Then, one end of each of two conductive wires 7 is electrically connected to the exposed part of the first transparent conductive film 4 and the exposed part of the second transparent conductive film 5. The other end of the conductor 7 is connected to a power source (not shown).

[0063] The driving response of liquid crystal elements in general, including the liquid crystal element 1 of the present invention, is measured as follows. That is, FIG. 2 is a schematic diagram showing an example of an apparatus for measuring the driving response of a liquid crystal element.

[0064] As shown in Figure 2, when measuring the drive response of the liquid crystal element 1 of the present invention, a laser oscillator 20 capable of emitting laser light, a temperature-controlled stage 30 for a microscope having an observation window 31 that can transmit the laser light, a photoreceiver 33 capable of receiving the laser light that has passed through the observation window 31, and an oscilloscope 40 capable of measuring the intensity of the laser light received by the photoreceiver 33 are used.

[0065] Here, the temperature-controlled stage 30 for the microscope is provided with a sample stage 32 on which the liquid crystal element 1 of the present invention can be placed. Furthermore, inside the sample stage 32, a flow path is formed through which a refrigerant for cooling the sample stage 32 can be introduced, and a heater is built in to heat the sample stage 32. Note that such flow paths and heaters are not shown in the drawings. With this configuration, the liquid crystal element 1 of the present invention placed on the sample stage 32 can be cooled or heated indirectly via the sample stage 32 .

[0066] Although not shown, there are electrode terminals in the temperature control stage 30 for the microscope, and a voltage can be applied to the liquid crystal element 1 of the present invention through a lead wire. The sample stage 32 is made of a material that can transmit laser light. As shown in FIG. 2, the light receiver 33 is located inside the temperature-controlled stage 30 for the microscope, and is disposed on the opposite side of the sample stage 32 to the surface on which the liquid crystal element 1 of the present invention is placed.

[0067] Furthermore, when no voltage is applied to the liquid crystal element 1 of the present invention, the liquid crystal element 1 of the present invention does not transmit, i.e., blocks, laser light, and when a voltage is applied to the liquid crystal element 1 of the present invention, the liquid crystal element 1 of the present invention transmits laser light. The state in which no voltage is applied to the liquid crystal element 1 of the present invention is referred to as "OFF", and the state in which a voltage is applied to the liquid crystal element 1 of the present invention is referred to as "ON".

[0068] Therefore, the light receiver 33 can receive the laser light that has passed through the observation window 31 , the liquid crystal element 1 of the present invention, and the sample stage 32 .

[0069] <Examples and Comparative Examples> A liquid crystal composition of the present invention was prepared using a liquid crystal compound, a polymerizable organic compound, and an additive compound. At this time, the specific resistance of the liquid crystal composition is 1×10 -11 Ω m or more 1×10 -5 It was adjusted to less than Ω·m.

[0070] For comparison, a conventional liquid crystal composition was prepared using a liquid crystal compound, a polymerizable organic compound, and an additive compound. At this time, the specific resistance of the liquid crystal composition is 1×10 -11 Ω m or more 1×10 -5 Do not fall into the range below Ω·m, i.e., 1×10 -11 Less than Ω·m or 1×10 -5 It was adjusted to Ω·m or higher.

[0071] Table 1 shows the specific types and physical properties of the liquid crystal compounds used. Table 2 also shows the specific monomers of the organic compounds used and the content of the monomers based on the total amount of the liquid crystal composition.

[0072] Table 3 also shows the contents of the liquid crystal compound, organic compound, and additive compound based on the total amount of the liquid crystal composition, the specific compound names of the additive compounds used, and the specific resistance values ​​of the liquid crystal composition. Here, the content of the organic compounds shown in Table 3 is the sum of the content of the monomers shown in Table 2. The resistivity of the liquid crystal composition was measured using a liquid crystal resistivity measuring system, Model SR-6517, manufactured by Toyo Corporation.

[0073] [Table 1]

[0074] [Table 2]

[0075] [Table 3]

[0076] Next, the liquid crystal element 1 of the present invention shown in FIG. 1 was fabricated using the prepared liquid crystal composition of the present invention. Furthermore, a liquid crystal element (hereinafter referred to as "conventional liquid crystal element") having the same structure as the liquid crystal element of the present invention shown in FIG. 1 was fabricated using the prepared conventional liquid crystal composition.

[0077] Then, an AC voltage was applied to the liquid crystal element 1 of the present invention and the conventional liquid crystal element while varying it arbitrarily from 0V to 100V, and the corresponding "haze ratio" and "total light transmittance" were measured. On the other hand, an AC voltage was applied to the liquid crystal element 1 of the present invention while varying it arbitrarily from 100V to 0V, and the corresponding "haze ratio" and "total light transmittance" were measured. Here, the "haze ratio" and "total light transmittance" were measured using a haze meter (NDH-7000SPII, manufactured by Nippon Denshoku Industries Co., Ltd.). The results are shown in Table 4. Here, the difference between the "total light transmittance when OFF" and the "total light transmittance when ON" is shown in Table 4 as "contrast."

[0078] [Table 4]

[0079] The hysteresis curves of each example and each comparative example are shown in FIGS. A hysteresis curve is a curve obtained by plotting the change in haze ratio as an AC voltage is gradually applied from 0 V to 100 V, and then gradually decreasing the AC voltage back down to 0 V after applying the AC voltage up to 100 V, and then similarly showing (plotting) the change in haze ratio.

[0080] That is, FIG. 3 is a schematic diagram showing the hysteresis curve of a liquid crystal element (Example 1) to which the present invention is applied. FIG. 4 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 2) to which the present invention is applied. FIG. 5 is a schematic diagram showing a hysteresis loop of a conventional liquid crystal element (Comparative Example 1). FIG. 6 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 3) to which the present invention is applied.

[0081] FIG. 7 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 4) to which the present invention is applied. FIG. 8 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 5) to which the present invention is applied. FIG. 9 is a schematic diagram showing a hysteresis curve of a liquid crystal element (Example 6) to which the present invention is applied. FIG. 10 is a schematic diagram showing the hysteresis curve of a liquid crystal element (Example 7) to which the present invention is applied.

[0082] FIG. 11 is a schematic diagram showing a hysteresis loop of a conventional liquid crystal element (Comparative Example 2). FIG. 12 is a schematic diagram showing the hysteresis curve of a liquid crystal element (Example 8) to which the present invention is applied. FIG. 13 is a schematic diagram showing a hysteresis curve of a liquid crystal element to which the present invention is applied (Example 9). FIG. 14 is a schematic diagram showing the hysteresis curve of a liquid crystal element to which the present invention is applied (Example 10). FIG. 15 is a schematic diagram showing a hysteresis loop of a conventional liquid crystal element (Comparative Example 3). FIG. 16 is a schematic diagram showing a hysteresis loop of a conventional liquid crystal element (Comparative Example 4). 3 to 16, the vertical axis represents the haze ratio, and the horizontal axis represents the applied voltage.

[0083] As is clear from the resistivity values ​​shown in Table 3 and Figures 3 to 16, the resistivity value is 1 × 10 -11 Ω m or more 1×10 -5 The hysteresis curves of the liquid crystal devices of Examples 1 to 10 using the liquid crystal compositions of the present invention, each having a specific resistance in the range of less than Ω·m, are -11 Ω m or more 1×10-5 The hysteresis was smaller than the hysteresis curves of the liquid crystal devices of Comparative Examples 1 to 4, which used conventional liquid crystal compositions that were not within the range of less than Ω·m.

[0084] The resistivity is 3.1 x 10 -8 The hysteresis loop of the liquid crystal element of Example 5, which uses a liquid crystal composition with a specific resistance of 5.7 × 10 -9 The hysteresis loop of the liquid crystal device of Example 7, which uses a liquid crystal composition with a specific resistance of 2.1 × 10 -8 The hysteresis loop of the liquid crystal device of Example 9, which uses a liquid crystal composition with a specific resistance of 2.4 × 10 -9 The hysteresis curve of the liquid crystal device of Example 10, which used a liquid crystal composition with a resistance of Ω·m, showed a particularly small hysteresis.

[0085] The criteria for judgment based on the values ​​shown in Table 4 are as follows: That is, a haze rate of 10% or less was determined to be transparent. Furthermore, if the "voltage at which the haze rate falls below 10%" or the "voltage at which the haze rate exceeds 90%" was 100V or less, the response was judged to be "high," and if it exceeded 100V, the response was judged to be "low." Furthermore, it was determined that the greater the difference between the "total light transmittance when OFF" and the "total light transmittance when ON", the better the contrast.

[0086] As is clear from Table 4, the liquid crystal devices of Examples 1 to 10 had a haze ratio of 10% or less when either in the OFF or ON state, and were therefore judged to be transparent. On the other hand, the liquid crystal elements of Comparative Examples 1 and 2 did not have a haze ratio of 10% or less in either the OFF or ON state, and therefore could not be determined to be transparent.

[0087] Furthermore, as is clear from Table 4, the liquid crystal elements of Examples 1 to 10 all had a "voltage at which the haze ratio was less than 10%" or a "voltage at which the haze ratio exceeded 90%" of 100 V or less, and were therefore judged to have "high responsiveness." On the other hand, the liquid crystal elements of Comparative Examples 1 to 2 and 3 had a "voltage at which the haze ratio falls below 10%" or a "voltage at which the haze ratio exceeds 90%" of over 100V, and were therefore judged to have "low responsiveness."

[0088] Furthermore, as is clear from Table 4, the liquid crystal elements of Examples 1 to 10 all had a large "contrast," which is the difference between the "total light transmittance when OFF" and the "total light transmittance when ON," of 20% or more, and it was determined that the contrast was good. On the other hand, the liquid crystal elements of Examples 1 to 4 all had a low "contrast" of 10% or less, and could not be judged to have a good contrast.

[0089] Furthermore, although the liquid crystal composition of Example 9 and the liquid crystal composition of Comparative Example 1 differ in that the liquid crystal composition of Example 9 contains a "trifunctional acrylate ester monomer" while the liquid crystal composition of Comparative Example 1 contains a "trifunctional methacrylate ester monomer," both compositions are composed of almost the same organic compounds and additive compounds, and only the amount of additive compound is significantly different, but the results are significantly different.

[0090] That is, the specific resistance of the liquid crystal composition of Example 9 was 2.1×10 -8 Ω·m, whereas the resistivity of the liquid crystal composition of Comparative Example 1 was 1.6×10 -12 Ω·m, and as can be seen from a comparison between FIG. 5 and FIG. 13, the hysteresis curve of the liquid crystal element of Example 9 was smaller than that of the liquid crystal element of Comparative Example 1. Furthermore, as can be seen from Table 4, the contrast of the liquid crystal element of Example 9 was 29.7%, while the contrast of the liquid crystal element of Comparative Example 1 was significantly lower at 7.3%.

[0091] On the other hand, when the liquid crystal composition of Example 2 and the liquid crystal composition of Comparative Example 1 were compared, the results were significantly different, even though the organic compounds were different but the blending amounts were almost the same. That is, the specific resistance of the liquid crystal composition of Example 2 was 1.0×10 -11 Ω·m, whereas the resistivity of the liquid crystal composition of Comparative Example 1 was 1.6×10-12 Ω·m, and as can be seen from a comparison between FIG. 4 and FIG. 5, the hysteresis curve of the liquid crystal element of Example 2 has a smaller hysteresis than the hysteresis curve of the liquid crystal element of Comparative Example 1. Furthermore, as can be seen from Table 4, the contrast of the liquid crystal element of Example 2 was 30.4%, while the contrast of the liquid crystal element of Comparative Example 1 was significantly lower at 7.3%.

[0092] As described above, the specific resistance of the conventional liquid crystal composition is 10 9 Liquid crystal elements using liquid crystal compositions with resistivity values ​​that are very low compared to values ​​of Ω·m or more and that fall within a specific range have smaller hysteresis and greater contrast than liquid crystal elements using liquid crystal compositions with resistivity values ​​slightly outside this specific range. From this, the specific resistance of the liquid crystal composition is 1×10 -11 Ω m or more 1×10 -5 The present invention, which adjusts the resistance to less than Ω·m, can be said to make a significant contribution to industrial development.

[0093] As described above, the liquid crystal composition of the present invention has a specific resistance of 1×10 -11 Ω m or more 1×10 -5 Since the resistance is less than Ω·m, hysteresis can be suppressed in the liquid crystal device of the present invention using the liquid crystal composition of the present invention. Furthermore, the liquid crystal composition of the present invention has a specific resistance of 1×10 -11 Ω m or more 1×10 -5 Since the resistance is less than Ω·m, the liquid crystal alignment can be improved. By increasing the liquid crystal alignment, the black display level in the dark state increases, and the contrast can be improved.

[0094] Therefore, the liquid crystal composition of the present invention can realize the production of a liquid crystal device having good response and contrast. Furthermore, the liquid crystal composition of the present invention has a liquid crystal layer containing the liquid crystal composition of the present invention, and therefore has good response and contrast. [Explanation of symbols]

[0095] 1 Liquid crystal element 2. First transparent resin film substrate 3. Second transparent resin film substrate 4. First transparent conductive film 5 Second transparent conductive film 6 Liquid crystal layer 7 Conductor 20 Laser oscillator 30 Temperature-controlled stage for microscope 31 Observation window 32 Sample stand 33 Receiver 40 Oscilloscope

Claims

1. A liquid crystal composition comprising a polymerizable organic compound and a liquid crystal compound, The liquid crystal composition has a specific resistance of 1×10 -11 Ω・m or more 1×10 -5 Less than Ω·m Liquid crystal composition.

2. At least one additive compound selected from a piperidine compound, a phosphoric acid compound, or a halogen compound is included. The liquid crystal composition according to claim 1 .

3. The content of the additive compound is 0.2 to 17% by mass based on the total amount of the liquid crystal composition. The liquid crystal composition according to claim 2 .

4. The liquid crystal composition has a specific resistance of 1×10 -9 Ω・m or more 1×10 -7 Less than Ω·m The liquid crystal composition according to claim 3 .

5. The content of the additive compound is 5.0 to 14.0% by mass based on the total amount of the liquid crystal composition. The liquid crystal composition according to claim 4 .

6. the additive compound is ethyl piperidine-4-carboxylate; The content of the additive compound is 5.0 to 13.0% by mass based on the total amount of the liquid crystal composition. The liquid crystal composition according to claim 4 .

7. a planar first substrate; a first conductive film disposed on one surface of the first base material and having conductivity; a liquid crystal layer disposed on the side of the first conductive film opposite to the first substrate and having a liquid crystal composition; a second conductive film that is disposed on the opposite side of the liquid crystal layer from the first conductive film and has conductivity; a planar second substrate disposed on the opposite side of the second conductive film from the liquid crystal layer; the liquid crystal composition includes a polymerizable organic compound and a liquid crystal compound; The liquid crystal composition has a specific resistance of 1×10 -11 Ω・m or more 1×10 -5 Less than Ω·m Liquid crystal element.

Citation Information

Patent Citations

  • Liquid crystal composition

    JP2016027165A