Light control device and method for manufacturing light control device

The light control device design with protruding pieces and intermediate films prevents electrode contact and short circuits, enhancing durability and reliability.

JP2026021194APending Publication Date: 2026-02-10DAI NIPPON PRINTING CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
JP2024122876
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-29
Publication Date
2026-02-10

AI Technical Summary

Technical Problem

In light control devices using liquid crystal films, laminates with transparent electrodes can come into contact, leading to potential exposure and short-circuiting of the electrodes.

Method used

A light control device design that includes a first and second transparent substrate, a light-controlling cell, external electrode substrate, and intermediate films, with protruding pieces and intermediate films interposed to prevent contact between electrodes.

Benefits of technology

Prevents short circuits between electrodes by ensuring the external electrode substrate is sandwiched between protruding pieces and intermediate films, even under impact.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2026021194000001_ABST
    Figure 2026021194000001_ABST
Patent Text Reader

Abstract

To provide a light control device capable of suppressing a short circuit between electrodes, and a method for manufacturing the light control device.SOLUTION: The light modulating device 10 includes a first glass plate 11, a second glass plate 12, a light modulating cell 20, an external electrode substrate 35, a first intermediate film 13, and a second intermediate film 14. The light modulating cell 20 includes a first laminate 21 including a first substrate 24 and a first transparent electrode 25, a second laminate 22 including a second substrate 27 and a second transparent electrode 28, a liquid crystal layer 23 disposed between the first laminate 21 and the second laminate 22, and a sealing material 32 disposed to surround the liquid crystal layer 23. The external electrode substrate 35 is interposed between the first laminate 21 and the second laminate 22. The first intermediate film 13 is interposed between the first laminate 21 and the second laminate 22. The external electrode substrate 35 is in contact with the first intermediate film 13 between the first laminate 21 and the second laminate 22.SELECTED DRAWING: Figure 5
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present disclosure relates to a light control device and a method for manufacturing a light control device. [Background technology]

[0002] Conventionally, light control components that can be used in combination with light-transmitting components such as windows and used in electronic blinds to control the transmission of external light, or light control devices using such light control components, have been proposed (see, for example, Patent Documents 1 and 2). One such light control component is a liquid crystal film with a liquid crystal layer. This liquid crystal film is produced by sandwiching a liquid crystal material between transparent resin substrates provided with transparent electrodes, and further sandwiching this between linear polarizers. The liquid crystal film is configured so that the orientation of the liquid crystal can be changed by changing the electric field applied between the transparent electrodes, thereby controlling the amount of external light transmitted. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent No. 6135816 [Patent Document 2] Japanese Patent Application Publication No. 2017-187810 Summary of the Invention [Problem to be solved by the invention]

[0004] In a light control device including such a liquid crystal film, laminates each having a transparent electrode may come into contact with each other around the transparent electrode outside the area where the liquid crystal material is provided. When laminates each having a transparent electrode come into contact with each other in this way, the transparent electrode may become exposed from the laminate due to an impact or the like. Furthermore, when the transparent electrode is exposed from the laminate, there is a risk that the transparent electrodes may come into contact with each other. Furthermore, when the transparent electrodes come into contact with each other, there is a risk that the transparent electrodes may short-circuit.

[0005] The present embodiment provides a light control device and a method for manufacturing the light control device that can suppress short circuits between electrodes. [Means for solving the problem]

[0006] The embodiments of the present disclosure relate to the following [1] to [4].

[0007] [1] a first transparent substrate; A second transparent substrate; a light-controlling cell disposed between the first transparent substrate and the second transparent substrate; an external electrode substrate electrically connected to the light-control cell; a first intermediate film disposed between the first transparent substrate and the light-controlling cell; a second intermediate film disposed between the light-control cell and the second transparent substrate; The dimming cell is a first laminate including a first transparent electrode electrically connected to the external electrode substrate and a first base material; a second laminate including a second transparent electrode electrically connected to the external electrode substrate and a second base material; a liquid crystal layer disposed between the first stack and the second stack; a sealant disposed between the first laminate and the second laminate so as to surround the liquid crystal layer; the external electrode substrate is sandwiched between the first laminate and the second laminate, the first intermediate film is interposed between the first laminate and the second laminate, The light control device, wherein the external electrode substrate is in contact with the first intermediate film between the first laminate and the second laminate.

[0008] [2] the first laminate includes a first protruding piece that protrudes outward in a planar direction in a region where the external electrode substrate is provided, the second laminate includes a second protruding piece that protrudes outward in a planar direction in a region where the external electrode substrate is provided, the external electrode substrate is sandwiched between the first protruding piece and the second protruding piece, the first intermediate film is inserted between the first protruding piece and the second protruding piece, The light control device according to [1], wherein the external electrode substrate is in contact with the first intermediate film between the first projecting piece and the second projecting piece.

[0009] [3] The light control device according to [1] or [2], wherein the first intermediate film and the second intermediate film sandwich the first protruding piece and the second protruding piece.

[0010] [4] A method for manufacturing a light control device, comprising: providing a first transparent substrate and a second transparent substrate; preparing a dimming cell electrically connected to an external electrode substrate; a step of integrally bonding the first transparent substrate, the light-controlling cell, and the second transparent substrate using a first intermediate film and a second intermediate film, The light control device is the first intermediate film disposed between the first transparent substrate and the light-controlling cell; the second intermediate film is disposed between the second transparent substrate and the light-controlling cell; The dimming cell is a first laminate including a first transparent electrode electrically connected to the external electrode substrate and a first base material; a second laminate including a second transparent electrode electrically connected to the external electrode substrate and a second base material; a liquid crystal layer disposed between the first stack and the second stack; a sealant disposed between the first laminate and the second laminate so as to surround the liquid crystal layer; the external electrode substrate is sandwiched between the first laminate and the second laminate, the first intermediate film is interposed between the first laminate and the second laminate, The method for manufacturing a light control device, wherein the external electrode substrate is in contact with the first intermediate film between the first laminate and the second laminate. [Effects of the Invention]

[0011] According to the embodiments of the present disclosure, short circuits between electrodes can be suppressed. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 1 is a perspective view showing a light control device according to an embodiment. [Figure 2A] FIG. 2A is an exploded perspective view showing a light control device according to one embodiment. [Figure 2B] FIG. 2B is a plan view showing a light control device according to one embodiment. [Figure 3] FIG. 3 is a cross-sectional view (cross-sectional view taken along line III-III in FIG. 2A) showing a light control device according to one embodiment. [Figure 4] FIG. 4 is an enlarged cross-sectional view showing a light control device according to an embodiment. [Figure 5] FIG. 5 is a cross-sectional view (cross-sectional view taken along line VV in FIG. 2B) showing a light control device according to one embodiment. [Figure 6] 6(a) to 6(d) are cross-sectional views showing a method for manufacturing a light-control cell according to one embodiment. [Figure 7] 7(a) to 7(d) are cross-sectional views showing a method for manufacturing a light-control cell according to one embodiment. [Figure 8] 8(a) to 8(c) are cross-sectional views showing a method for manufacturing a light control device according to one embodiment. [Figure 9] 9(a) to 9(c) are cross-sectional views showing a method for manufacturing a light control device according to one embodiment. [Figure 10] 10(a) to 10(d) are cross-sectional views showing a method for manufacturing a light control device according to one embodiment. [Figure 11] FIG. 11 is a plan view showing a modified example of the light control device according to the embodiment. [Figure 12]FIG. 12 is a cross-sectional view (cross-sectional view taken along line XII-XII in FIG. 11) showing a modification of the light control device according to the embodiment. [Figure 13] FIG. 13 is a cross-sectional view (cross-sectional view taken along line XIII-XIII in FIG. 11) showing a modification of the light control device according to the embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0013] An embodiment will be described below with reference to FIGS.

[0014] The light control device 10 described below can be applied to various technical fields that require adjustment of light transmittance, and the range of application is not particularly limited. For example, the light control device 10 may control the amount of light incident on the inside of a building, a vehicle, or the like. In this case, the light control device 10 may be disposed in a location where light control is desired (a location where external light enters, such as a windowpane of a building, a showcase, an indoor transparent partition, or a vehicle window, for example) (a location where external light enters, such as a front, side, rear, or roof window).

[0015] It should be noted that the dimming device 10 described below merely illustrates one embodiment. Therefore, for example, some of the elements listed below as components of the dimming device 10 may be replaced with other elements or may not be included. Furthermore, elements not listed below may be included as components of the dimming device 10. Furthermore, for the convenience of illustration and ease of understanding, the scale, dimensional ratios, etc. in the drawings may be appropriately changed or exaggerated from those of the actual objects.

[0016] (dimmer) FIG. 1 is a diagram showing a light control device (laminated glass) 10 according to the present embodiment. FIG. 2A is an exploded perspective view showing the layer structure of the light control device 10 according to the present embodiment, and FIG. 2B is a plan view showing the layer structure of the light control device 10 according to the present embodiment. FIG. 3 is a cross-sectional view showing the layer structure of the light control device 10 according to the present embodiment. The light control device 10 according to the present embodiment has a three-dimensional shape with a curved surface. In FIG. 1, as an example, the light control device 10 has a shape with one side being convex. Note that although the light control device 10 according to the present embodiment has a three-dimensional surface shape, FIGS. 2A to 3 show a case in which the surface shape of the light control device 10 is flat for ease of understanding. In FIG. 2B, even components that are actually hidden are shown with solid lines to clearly show the positional relationship of each component in a planar view. In addition, the shaded area in FIG. 2B is the area outside the sealing material 32 described below, where the first interlayer film 13 and the second interlayer film 14 are provided.

[0017] The light control device 10 is not limited thereto, and may have a planar surface shape (i.e., a flat plate shape), or may have a two-dimensional surface shape having a curved shape (e.g., a shape constituting a part of a cylinder). Here, the three-dimensional shape is not a simple cylindrical surface, but a curved surface that cannot be obtained by simply deforming a plane without expansion or contraction. In other words, the three-dimensional shape is a shape that is distinguished from a two-dimensional shape (two-dimensional curved surface) that is curved two-dimensionally around a single axis, or a two-dimensional shape (two-dimensional curved surface) that is curved two-dimensionally with different curvatures around multiple axes that are parallel to each other. In other words, the three-dimensional shape is a shape formed by a surface that is partially or entirely curved around each of multiple axes that are inclined relative to each other. In addition, in this specification, a planar view refers to a state when viewed from a direction perpendicular to the main surface of the light control device 10.

[0018] 1 to 2B, a light control device 10 according to the present embodiment includes a first glass plate (first transparent substrate) 11, a first interlayer film 13, a dimming cell 20, a second interlayer film 14, and a second glass plate (second transparent substrate) 12. The first glass plate 11, the first interlayer film 13, the dimming cell 20, the second interlayer film 14, and the second glass plate 12 are laminated in this order. Furthermore, as shown in FIG. 2A, the light control device 10 includes an external electrode substrate 35 connected to a dimming controller 91 that controls the dimming state of the light control device 10.

[0019] The first glass plate (first transparent substrate) 11 and the second glass plate (second transparent substrate) 12 are disposed on the front and back surfaces of the light control device 10, respectively, and are plate glasses having high light transmittance. The first glass plate 11 and the second glass plate 12 have three-dimensional curved surface shapes, and are pre-formed into a shape having a curved surface that is convex on one side (see FIG. 1 ). In this case, the first glass plate 11 and the second glass plate 12 are formed so that the first glass plate 11 side is convex with respect to the second glass plate 12 side, but this is not limiting, and the second glass plate 12 side may be formed so that the second glass plate 12 side is convex with respect to the first glass plate 11 side.

[0020] In this embodiment, the first glass plate 11 and the second glass plate 12 each have a thickness of 0.5 mm or more and 4 mm or less. As an example, each is made of a 2 mm thick plate glass. The first glass plate 11 and the second glass plate 12 may be made of inorganic glass or resin glass. Examples of resin glass that can be used include polycarbonate and acrylic. When inorganic glass is used as the first glass plate 11 and the second glass plate 12, the light control device 10 can have excellent heat resistance and scratch resistance. On the other hand, when resin glass is used as the first glass plate 11 and the second glass plate 12, the light control device 10 can be made lighter. Furthermore, the first glass plate 11 and the second glass plate 12 may be subjected to a surface treatment such as a hard coat, as necessary. Note that a transparent resin substrate may be used instead of the first glass plate 11 and the second glass plate 12.

[0021] The first interlayer film 13 is disposed between the first glass plate 11 and the dimming cell 20. The first interlayer film 13 is a member that bonds the first glass plate 11 and the dimming cell 20 together.

[0022] The second interlayer film 14 is disposed between the light control cell 20 and the second glass plate 12. The second interlayer film 14 is a member that bonds the second glass plate 12 and the light control cell 20 together.

[0023] The first interlayer film 13 and the second interlayer film 14 may each be made of an optically clear adhesive film (OCA film) or a transparent adhesive resin (OCR (Optical Clear Resin)). The first interlayer film 13 and the second interlayer film 14 may each contain PVB (polyvinyl butyral). The material for the first interlayer film 13 and the second interlayer film 14 is not limited to the above-mentioned OCA, OCR, and PVB, but may also be EVA (ethylene-vinyl acetate copolymer), COP (cycloolefin polymer), or the like. It is preferable to use a material that does not contain a plasticizer as the material for the first interlayer film 13 and the second interlayer film 14.

[0024] In this embodiment, the first intermediate film 13 and the second intermediate film 14 sandwich a first electrode protruding piece 36a of the first laminate 21 described later and a second electrode protruding piece 36b of the second laminate 22 described later.

[0025] The thickness of the first interlayer film 13 and the second interlayer film 14 can also be selected appropriately depending on the material and other factors. Specifically, the thickness of the first interlayer film 13 and the second interlayer film 14 may be 300 μm or more and 2.5 mm or less, and may be 760 μm, for example. The size of the first interlayer film 13 and the second interlayer film 14 may be the same as the size of the first glass plate 11 and the second glass plate 12, or may be larger than the size of the first glass plate 11 and the second glass plate 12.

[0026] As shown in FIG. 2A, the light-controlling cell 20 has a first laminate 21 and a second laminate 22. The light-controlling cell 20 (light-controlling film, liquid crystal film) is a film that can control the amount of transmitted light by changing the applied voltage. The light-controlling cell 20 is sandwiched between a first glass plate 11 and a second glass plate 12. The light-controlling cell 20 has a guest-host liquid crystal layer 23 (see FIG. 3) that uses a dichroic dye, and is a component that changes the amount of transmitted light depending on the electric field applied to the liquid crystal.

[0027] Next, the light-control cell 20 will be described in more detail.

[0028] 2B , in this embodiment, the planar shape of the dimming cell 20 is smaller than the planar shape of the dimming device 10 (first glass plate 11, first interlayer film 13, second interlayer film 14, and second glass plate 12). Note that the planar shape of the dimming cell 20 may be the same as the planar shape of the dimming device 10 (first glass plate 11, first interlayer film 13, second interlayer film 14, and second glass plate 12).

[0029] 3, the dimming cell 20 includes a first stack 21, a second stack 22, a liquid crystal layer 23 disposed between the first stack 21 and the second stack 22, and a sealant 32 disposed between the first stack 21 and the second stack 22 so as to surround the liquid crystal layer 23. In this case, the liquid crystal layer 23 is disposed in an area 32a surrounded by the sealant 32.

[0030] 3, the first laminate 21 is a film-like member and includes a first substrate 24 and a first transparent electrode 25. In the present embodiment, the first laminate 21 is formed by laminating the first substrate 24, the first transparent electrode 25, and the first alignment layer 26. That is, from the first interlayer film 13 side, the first substrate 24, the first transparent electrode 25, and the first alignment layer 26 are laminated in this order.

[0031] The second laminate 22 is a film-like member and includes a second substrate 27 and a second transparent electrode 28. In the present embodiment, the second laminate 22 is formed by laminating the second substrate 27, the second transparent electrode 28, and the second alignment layer 29. That is, from the second interlayer film 14 side, the second substrate 27, the second transparent electrode 28, and the second alignment layer 29 are laminated in this order.

[0032] The dimming cell 20 is a component that changes the orientation of the liquid crystal material made of a guest-host liquid crystal composition provided in the liquid crystal layer 23 due to the potential difference between the first transparent electrode 25 and the second transparent electrode 28 provided in the first laminate 21 and the second laminate 22, thereby changing the amount of transmitted light.

[0033] The first substrate 24 and the second substrate 27 may be made of a transparent resin and may be configured as a flexible film. It is desirable to use a transparent resin film that has small optical anisotropy and a transmittance of 80% or more in the visible wavelength range (380 nm to 800 nm). Examples of materials for the transparent resin film include acetylcellulose resins such as triacetylcellulose (TAC), polyester resins such as polyethylene terephthalate (PET) and polyethylene naphthalate (PEN), polyolefin resins such as polyethylene (PE), polypropylene (PP), polystyrene, polymethylpentene, and EVA, vinyl resins such as polyvinyl chloride and polyvinylidene chloride, acrylic resins, polyurethane resins, polysulfone (PEF), polyethersulfone (PES), polycarbonate (PC), polysulfone, polyether (PE), polyetherketone (PEK), (meth)acrylonitrile, cycloolefin polymer (COP), and cycloolefin copolymer. As the material for the transparent resin film, resins such as polycarbonate, cycloolefin polymer, and polyethylene terephthalate are particularly preferred.

[0034] The thickness of the transparent resin film used as the first substrate 24 and the second substrate 27 may vary depending on the material, but can be selected appropriately within the range in which the transparent resin film is flexible. The thickness of the first substrate 24 and the second substrate 27 may be 50 μm or more and 200 μm or less. In the present embodiment, a polyethylene terephthalate film having a thickness of 100 μm is used as an example of the first substrate 24 and the second substrate 27.

[0035] The first transparent electrode 25 and the second transparent electrode 28 are each electrically connected to the external electrode substrate 35. The first transparent electrode 25 and the second transparent electrode 28 are each composed of a transparent conductive film laminated on the first base material 24 and the second base material 27 (transparent resin film), respectively. The transparent conductive film may be made of any of various transparent electrode materials that are applicable to this type of transparent resin film. Examples of transparent conductive films include oxide-based transparent metal thin films with a total light transmittance of 50% or more. Examples of transparent conductive films include tin oxide-based, indium oxide-based, or zinc oxide-based metal thin films.

[0036] Examples of tin oxide (SnO2)-based materials include NESA (tin oxide SnO2), ATO (antimony tin oxide), and fluorine-doped tin oxide. Examples of indium oxide (In2O3)-based materials include indium oxide, ITO (indium tin oxide), and IZO (indium zinc oxide). Examples of zinc oxide (ZnO)-based materials include zinc oxide, AZO (aluminum-doped zinc oxide), and gallium-doped zinc oxide. In this embodiment, the transparent conductive films constituting the first transparent electrode 25 and the second transparent electrode 28 are formed of ITO.

[0037] The first alignment layer 26 and the second alignment layer 29 are components for aligning the liquid crystal molecules contained in the liquid crystal layer 23 in a desired direction. The first alignment layer 26 and the second alignment layer 29 can be formed by photo-alignment layers. A wide variety of materials that can be used for photo-alignment layers can be used as photo-alignment materials. Examples of photo-alignment materials that can be used for the photo-alignment layer include photo-decomposition-type, photo-dimerization-type, and photo-isomerization-type photo-alignment materials. In the present embodiment, a photo-dimerization-type material can be used. Examples of photo-dimerization-type materials include polymers containing cinnamate, coumarin, benzylidenephthalimidine, benzylideneacetophenone, diphenylacetylene, stilbazole, uracil, quinolinone, maleimide, or a cinnamylideneacetic acid derivative. Among these, polymers containing one or both of cinnamate and coumarin are preferred due to their excellent alignment control ability.

[0038] Note that a rubbed alignment layer may be used instead of the photo-alignment layer. The rubbed alignment layer may be a layer that is not subjected to a rubbing treatment, or may be a layer that is produced by performing a rubbing treatment and then performing a shaping treatment to form a fine line-shaped concave-convex shape. Note that, in the present embodiment, the dimming cell 20 includes the first alignment layer 26 and the second alignment layer 29, but this is not limiting, and the dimming cell 20 may also be configured without the first alignment layer 26 and the second alignment layer 29.

[0039] Next, a description will be given of the liquid crystal layer 23. The liquid crystal layer 23 is disposed between the first stacked body 21 and the second stacked body 22 in an area 32a surrounded by the sealant 32.

[0040] A wide variety of guest-host liquid crystal compositions and dichroic dye compositions can be used for the liquid crystal layer 23. The guest-host liquid crystal composition may contain a chiral agent, which causes the liquid crystal material to be helically aligned in the thickness direction of the liquid crystal layer 23 when horizontally aligned. As described above, the liquid crystal layer 23 is disposed in a region 32a surrounded by the sealant 32. That is, the sealant 32, which is annular or frame-shaped in plan view, is disposed between the first laminate 21 and the second laminate 22 so as to surround the liquid crystal layer 23. The sealant 32 holds the first laminate 21 and the second laminate 22 together and prevents leakage of the liquid crystal material. The sealant 32 may be a thermosetting resin such as an epoxy resin or an acrylic resin, or a UV-curable resin.

[0041] A plurality of bead spacers 31 are disposed between the first laminate 21 and the second laminate 22. The above-mentioned liquid crystal layer 23 is disposed between the first laminate 21 and the second laminate 22, filling the spaces between the plurality of bead spacers 31 in the region 32a surrounded by the sealing material 32. The plurality of bead spacers 31 may be disposed irregularly or regularly.

[0042] The bead spacers 31 are components that determine the thickness (cell gap) of the liquid crystal layer 23 excluding its peripheral portion. In this embodiment, spherical bead spacers are used as the bead spacers 31. The diameter of the bead spacers 31 may be in the range of 1 μm to 20 μm, preferably 3 μm to 15 μm. The bead spacers 31 may be made of an inorganic material such as silica, an organic material, or a core-shell structure that combines these. In addition to a spherical shape, the bead spacers 31 may also be made of a rod shape such as a cylindrical shape, an elliptical cylindrical shape, or a polygonal prism shape. Furthermore, the bead spacers 31 may be made of a transparent material, and the color may be adjusted by using a colored material as needed.

[0043] In this embodiment, the bead spacers 31 are provided in the second laminate 22, as will be described later, but this is not limited thereto, and they may be provided in both the first laminate 21 and the second laminate 22, or only in the first laminate 21. Also, the bead spacers 31 do not necessarily have to be provided. Furthermore, instead of or together with the bead spacers 31, columnar spacers may be used.

[0044] In such a dimming cell 20, the first alignment layer 26 and the second alignment layer 29 may be configured as vertical alignment layers in which an alignment restraining force related to the pretilt is set in a certain direction so that the transmittance is maximized when no voltage is applied to the liquid crystal. In this case, the dimming cell 20 is configured as a normally clear cell. Note that the dimming cell 20 may also be configured as a normally dark cell so that the transmittance is minimized (black screen) when no voltage is applied to the liquid crystal.

[0045] Although the light-controlling cell 20 of the present embodiment includes a guest-host liquid crystal layer 23, the present invention is not limited to this. The light-controlling cell 20 may also include a liquid crystal layer 23 of a TN (Twisted Nematic) type, a VA (Vertical Alignment) type, an IPS (In-Plane-Switching) type, or the like, which does not use a dichroic dye composition. When including such a liquid crystal layer 23, the cell can function as a light-controlling film by further providing linear polarization layers on the surfaces of the first substrate 24 and the second substrate 27, respectively.

[0046] 2A and 3, the dimmer 10 is connected to a dimming controller 91. A sensor device 92 and a user operation unit 93 are connected to the dimming controller 91. The dimming controller 91 controls the dimming state of the dimmer 10, switches between blocking and transmitting light by the dimmer 10, and changes the light transmittance of the dimmer 10. Specifically, the dimming controller 91 is connected to the external electrode substrate 35 of the dimmer 10, and is configured to change the orientation of liquid crystal molecules in the liquid crystal layer 23 by adjusting the electric field applied to the liquid crystal layer 23 with the dimming controller 91. This makes it possible to switch between blocking and transmitting light by the dimmer 10 and change the light transmittance.

[0047] The dimming controller 91 is configured to adjust the electric field applied to the liquid crystal layer 23 based on any method. The dimming controller 91 may adjust the electric field applied to the liquid crystal layer 23, for example, in response to the measurement results of the sensor device 92 or in response to instructions (commands) input by a user via the user operation unit 93. Therefore, the dimming controller 91 may automatically adjust the electric field applied to the liquid crystal layer 23 in response to the measurement results of the sensor device 92, or may manually adjust the electric field in response to instructions from the user via the user operation unit 93. Note that the object measured by the sensor device 92 is not particularly limited, and for example, the brightness of the usage environment may be measured. In this case, the dimming device 10 switches between blocking and transmitting light or changes the light transmittance in response to the brightness of the usage environment. Furthermore, both the sensor device 92 and the user operation unit 93 do not necessarily need to be connected to the dimming controller 91; only one of the sensor device 92 and the user operation unit 93 may be connected.

[0048] As described above, the dimming controller 91 is connected to the external electrode substrate 35 of the dimming device 10. This external electrode substrate 35 is electrically connected to the dimming cell 20.

[0049] As shown in FIGS. 2A to 5, the external electrode substrate 35 is sandwiched between the first laminate 21 and the second laminate 22. The first laminate 21 includes first electrode protruding pieces (first protruding pieces) 36a that protrude outward in the planar direction in the region where the external electrode substrate 35 is provided. Similarly, the second laminate 22 includes second electrode protruding pieces (second protruding pieces) 36b that protrude outward in the planar direction in the region where the external electrode substrate 35 is provided. The external electrode substrate 35 is sandwiched between the first electrode protruding pieces 36a and the second electrode protruding pieces 36b. The planar shapes of the first electrode protruding pieces 36a and the second electrode protruding pieces 36b may be larger than the planar shape of the portion of the external electrode substrate 35 that is sandwiched between the first electrode protruding pieces 36a and the second electrode protruding pieces 36b.

[0050] 4 and 5 are schematic cross-sectional views showing the periphery of the external electrode substrate 35 of the dimming cell 20. Of these, FIG. 4 is a schematic cross-sectional view showing an enlarged view of the periphery of the external electrode substrate 35 shown in FIG. 3. As shown in FIG. 4, the external electrode substrate 35 is disposed between the first stack 21 and the second stack 22, outside (outside in the planar direction) of the region 32a surrounded by the sealant 32, and is electrically connected to the first transparent electrode 25 and the second transparent electrode 28. The outer end of the external electrode substrate 35 is electrically connected to the dimming controller 91 (see FIGS. 2A and 3), and the inner end is electrically connected to the first transparent electrode 25 and the second transparent electrode 28 via a conductive film 37. The external electrode substrate 35 may be made of, for example, a flexible printed circuit (FPC). The conductive film 37 may be made of, for example, an anisotropic conductive film (ACF). In this case, the thickness of the external electrode substrate 35 is greater than the thickness of the liquid crystal layer 23. Therefore, the gap between the first laminate 21 and the second laminate 22 is wider in the portion where the external electrode substrate 35 is disposed than in the portion where the liquid crystal layer 23 is disposed.

[0051] Fig. 5 is a schematic cross-sectional view showing the periphery of the external electrode substrate 35 in the light control device 10, and corresponds to the cross-sectional view taken along line VV in Fig. 2B. As shown in Fig. 5, the external electrode substrate 35 is in contact with the first intermediate film 13 between the first laminate 21 and the second laminate 22. In this case, the external electrode substrate 35 is in contact with the first intermediate film 13 between the first electrode protruding piece 36a and the second electrode protruding piece 36b. Note that the conductive film 37 is not shown in Fig. 5 to clarify the drawing.

[0052] In this embodiment, the first interlayer film 13 is inserted between the first stack 21 and the second stack 22 around the first transparent electrode 25 and the second transparent electrode 28 outside the region 32a surrounded by the sealant 32. In this case, the first interlayer film 13 is inserted between the first electrode protruding piece 36a and the second electrode protruding piece 36b. This prevents the first stack 21 and the second stack 22 from coming into contact around the first transparent electrode 25 and the second transparent electrode 28, even when an impact or the like is applied to the light control device 10. When the first stack 21 and the second stack 22 come into contact, the first alignment layer 26 and the second alignment layer 29 are pushed apart. This may cause the first transparent electrode 25 and the second transparent electrode 28 to be partially exposed from the first alignment layer 26 and the second alignment layer 29. In this case, the first transparent electrode 25 and the second transparent electrode 28 may come into contact with each other. In this way, when the first transparent electrode 25 and the second transparent electrode 28 come into contact with each other, the first transparent electrode 25 and the second transparent electrode 28 are short-circuited.

[0053] In contrast to this, in the present embodiment, contact between the first laminate 21 and the second laminate 22 can be prevented, and therefore exposure of the first transparent electrode 25 from the first laminate 21 can be prevented. Similarly, exposure of the second transparent electrode 28 from the second laminate 22 can be prevented. Therefore, short circuits between the first transparent electrode 25 and the second transparent electrode 28 can be prevented. Note that, in FIG. 5, the conductive film 37 is not shown for clarity.

[0054] Furthermore, in this embodiment, the first intermediate film 13 that is interposed between the first laminate 21 and the second laminate 22 is in contact with the external electrode substrate 35. This makes it possible to more effectively prevent the first laminate 21 and the second laminate 22 from coming into contact with each other even when an impact or the like is applied to the light control device 10.

[0055] (Light-control cell manufacturing method) Next, a method for manufacturing the dimming cell 20 of the dimming device 10 according to this embodiment will be described with reference to Figures 6(a)-(d) and 7(a)-(c). Figures 6(a)-(d) and 7(a)-(c) are cross-sectional views illustrating the method for manufacturing the dimming cell 20 according to this embodiment.

[0056] First, as shown in Fig. 6(a), a second substrate 27 is prepared. The second substrate 27 may be supplied in a roll form. Then, as shown in Fig. 6(b), a second transparent electrode 28 made of, for example, ITO is formed on the second substrate 27 by sputtering using a sputtering device. At this time, the transparent electrode may be patterned to have a predetermined pattern shape.

[0057] 6(c), a coating liquid for the second alignment layer 29 is applied onto the second substrate 27 on which the second transparent electrode 28 has been formed, and then exposed to light to form the second alignment layer 29. In this manner, a second laminate 22 is prepared in which the second substrate 27, the second transparent electrode 28, and the second alignment layer 29 are laminated.

[0058] In addition, a first laminate 21 in which a first substrate 24, a first transparent electrode 25, and a first alignment layer 26 are laminated is also prepared in the same manner as in the steps shown in FIGS. 6(a) to 6(c).

[0059] Next, as shown in FIG. 6(d), bead spacers 31 are disposed on the second alignment layer 29 of the second laminate 22. The bead spacers 31 can be disposed by a variety of methods, including wet and dry spraying. For example, a coating solution prepared by dispersing the bead spacers 31 in a solvent together with a resin component may be applied to a portion of the surface, followed by drying and baking. This allows the bead spacers 31 to be randomly disposed on the second alignment layer 29 and held in place to prevent movement. Although not shown, the bead spacers 31 may be disposed on the second transparent electrode 28, with the outer periphery of the bead spacers 31 covered by the second alignment layer 29. Specifically, the bead spacers 31 are mixed into the coating solution for the second alignment layer 29 to form the second alignment layer 29, allowing the bead spacers 31 to be thinly covered and held by the second alignment layer 29.

[0060] 7(a), a dispenser is used to apply a sealant 32 onto the second alignment layer 29 of the second laminate 22. The sealant 32 is applied in a frame shape so as to surround the area where the liquid crystal layer 23 is to be formed. The sealant 32 may also be applied by screen printing or the like.

[0061] 7(b)-(c), the second laminate 22 and the first laminate 21 are laminated together, and the liquid crystal layer 23 is disposed thereon. During this process, as shown in FIG. 7(b), liquid crystal that constitutes the liquid crystal layer 23 is first dropped into the region 32a surrounded by the sealant 32. At this time, the liquid crystal layer 23 is filled inside the sealant 32 and around the bead spacers 31.

[0062] Next, as shown in FIG. 7( c), the second laminate 22 on which the liquid crystal layer 23 is disposed and the previously prepared first laminate 21 are laminated and pressed together. After that, the sealant 32 is semi-cured by irradiating it with ultraviolet light, and then heated to integrate the first laminate 21 and the second laminate 22. The integration of the first laminate 21 and the second laminate 22 may be performed only by irradiating it with ultraviolet light or by heating. The laminate of the first laminate 21 and the second laminate 22 thus prepared is then trimmed to a desired size. At this time, the laminate is trimmed so that a space for attaching the external electrode substrate 35 remains between the first laminate 21 and the second laminate 22.

[0063] As described above, it is preferable to arrange the liquid crystal layer 23 and then stack the second stack 22 and the first stack 21 together, but this is not limited to this, and the liquid crystal layer 23 may be arranged after the second stack 22 and the first stack 21 are stacked together.

[0064] In this way, the light-controlling cell 20 is obtained.

[0065] 7(d), an external electrode substrate 35 is attached between the first laminate 21 and the second laminate 22. The external electrode substrate 35 may be electrically connected to the first transparent electrode 25 and the second transparent electrode 28 via a conductive film 37. This provides a dimming cell 20 electrically connected to the external electrode substrate 35.

[0066] (Manufacturing method of light control device) Next, a manufacturing method (laminated glass processing method) for the light control device 10 according to this embodiment will be described with reference to Figures 8(a)-(c), 9(a)-(c), and 10(a)-(d). Figures 8(a)-(c), 9(a)-(c), and 10(a)-(d) are cross-sectional views showing the manufacturing method for the light control device 10.

[0067] First, as shown in Fig. 8(a), a first glass plate 11 and a second glass plate 12 are prepared. The first glass plate 11 and the second glass plate 12 may have a curved surface shape formed in advance, which is a three-dimensional surface shape.

[0068] 8(b), a dimming cell 20 electrically connected to an external electrode substrate 35 is prepared. The dimming cell 20 can be fabricated, for example, by the methods shown in FIGS. 6(a)-(d) and 7(a)-(c). The dimming cell 20 may be pre-formed into a three-dimensional curved shape by thermoforming.

[0069] Next, the first glass plate 11, the dimming cell 20, and the second glass plate 12 are bonded together using the first interlayer film 13 and the second interlayer film .

[0070] In this case, first, as shown in Fig. 8(c), a second interlayer film 14 is formed on the second glass plate 12. The second interlayer film 14 may be made of, for example, an optically clear adhesive film (OCA film).

[0071] Next, as shown in FIG. 9(a), the dimming cell 20 is placed on the second interlayer film .

[0072] Next, as shown in FIG. 9( b), a first interlayer film 13 is formed on the dimming cell 20. The first interlayer film 13 may be made of, for example, a transparent adhesive resin (OCR (Optical Clear Resin)). When forming the first interlayer film 13 on the dimming cell 20, the transparent adhesive resin is dropped onto the dimming cell 20. At this time, the transparent adhesive resin penetrates between the first stacked body 21 and the second stacked body 22 around the first transparent electrode 25 and the second transparent electrode 28 outside the region 32a surrounded by the sealant 32. In this way, the first interlayer film 13 penetrates between the first stacked body 21 and the second stacked body 22 around the first transparent electrode 25 and the second transparent electrode 28 outside the region 32a surrounded by the sealant 32 (see FIG. 5).

[0073] 9(c), a first glass plate 11 is provided on the first interlayer film 13. As a result, the first interlayer film 13, the dimming cell 20, and the second interlayer film 14 are sandwiched between the first glass plate 11 and the second glass plate 12, thereby obtaining a laminate 30.

[0074] The first interlayer film 13 and the second interlayer film 14 may each be composed of a layer made of PVB (polyvinyl butyral) resin. In this case, as shown in Fig. 10(a), a laminate 30 is prepared in which the first interlayer film 13, the dimming cell 20, and the second interlayer film 14 are sandwiched between a first glass plate 11 and a second glass plate 12.

[0075] Next, the laminate 30 is heated while being degassed.

[0076] 10(b), the laminate 30 is first sealed in a bag (vacuum bag) 51. The bag 51 is preferably made of flexible and airtight rubber or silicone. A ventilation pipe 52 is connected to the bag 51.

[0077] 10(c), the laminate 30 is sealed in a bag 51, and then the laminate 30 together with the bag 51 is placed in a heating device 53. There are no particular limitations on the device used as the heating device 53 as long as it can sufficiently heat the laminate 30, and examples thereof include an oven, an autoclave, and the like.

[0078] At this time, air is sucked out of the bag 51 by a pump (not shown) through the ventilation pipe 52. This sucks out any air remaining between the components of the laminate 30, making it possible to prevent poor crimping due to air bubbles or the like remaining inside the light control device 10. In this embodiment, an example will be described in which suction is performed to create a vacuum inside the bag 51 and the interior of the laminate 30, and a pressure of approximately atmospheric pressure (0.1 MPa) is applied to the laminate 30 due to the pressure difference. However, this is not limiting, and for example, the suction force of the pump (not shown) may be adjusted so that, although the bag 51 is not completely evacuated, the air between the components of the laminate 30 is sufficiently sucked out and a pressure lower than atmospheric pressure is applied to the laminate 30 due to the pressure difference.

[0079] 10(d), the laminate 30 together with the bag 51 is heated at a predetermined temperature for a predetermined time. In the present embodiment, the laminate 30 is heated for a predetermined time at a temperature equal to or higher than the softening temperature of the first interlayer film 13 and the second interlayer film 14. This heating melts the first interlayer film 13 and the second interlayer film 14, and the first glass plate 11, the first interlayer film 13, the dimming cell 20, the second interlayer film 14, and the second glass plate 12 of the laminate 30 are pressure-bonded together, thereby obtaining the light control device 10.

[0080] Thereafter, a leveling step is performed in which the laminate 30 (light control device 10) is heated for a predetermined time at a temperature equal to or higher than the softening temperature of the first interlayer film 13 and the second interlayer film 14. By performing this leveling step, the cell gap, which had become smaller than a predetermined value, returns to its original value, uneven distribution of liquid crystal such as liquid crystal pools is eliminated, and the cell gap (thickness of the liquid crystal layer 23) becomes uniform. This leveling step may be performed after the laminate 30 (light control device 10) is cooled once after the components of the laminate 30 are bonded, or may be performed continuously after bonding the laminate 30. Furthermore, if there is no need to suction the air from the bag 51, the laminate 30 (light control device 10) may be removed from the bag 51 before the leveling step.

[0081] As described above, the light control device 10 includes the first glass plate 11, the second glass plate 12, the dimming cell 20 disposed between the first glass plate 11 and the second glass plate 12, the external electrode substrate 35 electrically connected to the dimming cell 20, the first interlayer film 13 disposed between the first glass plate 11 and the dimming cell 20, and the second interlayer film 14 disposed between the dimming cell 20 and the second glass plate 12. The dimming cell 20 also includes a first laminate 21 including a first transparent electrode 25 electrically connected to the external electrode substrate 35 and a first substrate 24, a second laminate 22 including a second transparent electrode 28 electrically connected to the external electrode substrate 35 and a second substrate 27, a liquid crystal layer 23 disposed between the first laminate 21 and the second laminate 22, and a sealant 32 disposed between the first laminate 21 and the second laminate 22 so as to surround the liquid crystal layer 23. The external electrode substrate 35 is sandwiched between the first laminate 21 and the second laminate 22. The first intermediate film 13 is inserted between the first laminate 21 and the second laminate 22. The external electrode substrate 35 is in contact with the first intermediate film 13 between the first laminate 21 and the second laminate 22. This prevents the first laminate 21 and the second laminate 22 from coming into contact with each other, even when the light control device 10 is subjected to an impact or the like, and prevents the first transparent electrode 25 and the second transparent electrode 28 from being exposed from the first laminate 21 and the second laminate 22. This prevents the first transparent electrode 25 and the second transparent electrode 28 from coming into contact with each other. As a result, a short circuit between the first transparent electrode 25 and the second transparent electrode 28 can be prevented.

[0082] In the above-described embodiment, an example has been described in which the first intermediate film 13 is inserted between the first laminate 21 and the second laminate 22 around the first transparent electrode 25 and the second transparent electrode 28. In this case, for example, as shown in FIG. 11 and FIG. 12, which is a cross-sectional view taken along line XII-XII in FIG. 11, a space S may be formed in part between the first laminate 21 and the second laminate 22 around the first transparent electrode 25 and the second transparent electrode 28. Even in this case, as shown in FIG. 13, which is a cross-sectional view taken along line XIII-XIII in FIG. 11, the external electrode substrate 35 is in contact with the first intermediate film 13 in part of the region between the first laminate 21 and the second laminate 22. That is, in this modification, the external electrode substrate 35 and the first intermediate film 13 are in contact only in part of the region, and a space S exists in the part where they are not in contact. In this case as well, contact between the first laminate 21 and the second laminate 22 can be prevented, and short circuits between the first transparent electrode 25 and the second transparent electrode 28 can be prevented.

[0083] It is also possible to combine the multiple components disclosed in the above embodiments and modifications as needed, or to delete some of the components disclosed in the above embodiments and modifications. [Explanation of symbols]

[0084] 10. Dimmer 11 First glass plate 12 Second glass plate 13 First interlayer 14 Second interlayer 20 Photochromic Cell 21 First laminate 22 Second laminate 23 Liquid crystal layer 24 First base material 25 1st transparent electrode 27 Second base material 28 Second transparent electrode 32 Sealing material 32a Area surrounded by sealing material 35 External electrode board

Claims

1. a first transparent substrate; A second transparent substrate; a light-controlling cell disposed between the first transparent substrate and the second transparent substrate; an external electrode substrate electrically connected to the light-control cell; a first intermediate film disposed between the first transparent substrate and the light-controlling cell; a second intermediate film disposed between the light-controlling cell and the second transparent substrate; The dimming cell is a first laminate including a first transparent electrode electrically connected to the external electrode substrate and a first base material; a second laminate including a second transparent electrode electrically connected to the external electrode substrate and a second base material; a liquid crystal layer disposed between the first stack and the second stack; a sealant disposed between the first laminate and the second laminate so as to surround the liquid crystal layer; the external electrode substrate is sandwiched between the first laminate and the second laminate, the first intermediate film is interposed between the first stack and the second stack, The external electrode substrate is in contact with the first intermediate film between the first laminate and the second laminate.

2. the first laminate includes a first protruding piece that protrudes outward in a surface direction in a region where the external electrode substrate is provided, the second laminate includes a second protruding piece protruding outward in a surface direction in a region where the external electrode substrate is provided, the external electrode substrate is sandwiched between the first protruding piece and the second protruding piece, the first intermediate film is inserted between the first protruding piece and the second protruding piece, The light control device according to claim 1 , wherein the external electrode substrate is in contact with the first intermediate film between the first projecting piece and the second projecting piece.

3. The light control device according to claim 2 , wherein the first intermediate film and the second intermediate film sandwich the first protruding piece and the second protruding piece.

4. A method for manufacturing a light control device, comprising: providing a first transparent substrate and a second transparent substrate; preparing a dimming cell electrically connected to an external electrode substrate; a step of integrally bonding the first transparent substrate, the light-controlling cell, and the second transparent substrate using a first intermediate film and a second intermediate film, The light control device is the first intermediate film disposed between the first transparent substrate and the light-controlling cell; the second intermediate film is disposed between the second transparent substrate and the light-controlling cell; The dimming cell is a first laminate including a first transparent electrode electrically connected to the external electrode substrate and a first base material; a second laminate including a second transparent electrode electrically connected to the external electrode substrate and a second base material; a liquid crystal layer disposed between the first stack and the second stack; a sealant disposed between the first laminate and the second laminate so as to surround the liquid crystal layer; the external electrode substrate is sandwiched between the first laminate and the second laminate, the first intermediate film is interposed between the first stack and the second stack, The method for manufacturing a light control device, wherein the external electrode substrate is in contact with the first intermediate film between the first laminate and the second laminate.

Citation Information

Patent Citations

  • Solid-liquid separation apparatus

    JP1986035816A

  • Light control film and laminated glass

    JP2017187810A