Liquid crystal alignment member for spatial light phase modulation, spatial light modulation element, and stereoscopic display device

The dielectric shield wall structure with shape anisotropy and grooved base layer addresses the limitations of current spatial light phase modulators, enabling precise liquid crystal alignment and improved viewing angles for high-definition holographic displays.

JP7734893B2Active Publication Date: 2025-09-08DAI NIPPON PRINTING CO LTD +1
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Patent Information

Application Number
JP2021193443
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-11-29
Publication Date
2025-09-08
Estimated Expiration
2041-11-29

AI Technical Summary

Technical Problem

Current spatial light phase modulators have pixel pitches that are too large, limiting the viewing angle and causing issues with electric field leakage and liquid crystal orientation control, making it difficult to achieve practical holographic displays.

Method used

A dielectric shield wall structure with shape anisotropy in orthogonal directions and a base layer with grooves is used to control liquid crystal alignment, blocking electric field leakage and enabling precise alignment even at pixel pitches of 3 μm or less.

Benefits of technology

This structure allows for independent control of liquid crystal alignment in each pixel, enhancing the viewing angle and enabling high-definition holographic displays and stereoscopic imaging.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a liquid crystal alignment member for spatial light phase modulation which has high liquid crystal alignment regulation force, and can obtain a spatial optical modulation element having a pitch of a pixel electrode of 3 μm or less.SOLUTION: A liquid crystal alignment member for spatial light phase modulation has a base part including a silicon substrate and pixel electrodes arranged in a matrix shape at intervals of 3 μm or less, a lattice-shaped wall structure composed of a dielectric material, a base layer successively connected to the lattice-shaped wall structure, and a plurality of fine spaces for liquid crystal filling which are mutually partitioned by the lattice-shaped wall structure, wherein the lattice-shaped wall structure is arranged between at least adjacent pixel regions; the fine spaces for liquid crystal filling have shape anisotropy in a first axial direction and a second axial direction on a plane parallel to the base part; when a space width in the first axial direction is represented by WA and a space width in the second axial direction is represented by WB, WA is smaller than WB; and the base layer has a base groove extending in the second axial direction.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to a liquid crystal alignment member for spatial light phase modulation, a spatial light modulation element, and a stereoscopic display device. [Background technology]

[0002] Three-dimensional displays are expected to be applied not only in broadcasting and communications fields such as television broadcasting and videophones, but also in various fields such as medicine, manufacturing, and education. In recent years, with the development of augmented reality (AR) and virtual reality (VR) technologies, three-dimensional displays that display three-dimensional images and virtual spaces have been proposed. Holographic displays, in particular, are expected to be put to practical use as next-generation three-dimensional displays because they enable natural three-dimensional display that satisfies all physiological factors for stereoscopic vision. Holographic displays modulate highly coherent light, such as from laser light sources, to reproduce the wavefront of the light of an object and display a three-dimensional image. The light from the light source is modulated by a light modulation element displaying a hologram (interference fringes), and the direction and intensity of the light of the object are reproduced by the interference that occurs during the light propagation process. There are two modulation methods for light modulation elements: amplitude modulation, which reproduces the two-dimensional amplitude distribution of light, and phase modulation (phase modulation element), which reproduces the phase distribution of light. Among these, the phase method has the advantage of being more efficient in utilizing light than the former and being able to suppress higher-order diffracted light that interferes with the observation of the reconstructed image, and is therefore considered a useful method for practical use.

[0003] The liquid crystal-based spatial light modulator (LCOS-SLM) is a reflective optical device consisting of a glass substrate with a transparent common electrode and drive electrodes arranged on a silicon backplane, which also serve as reflectors, sandwiching the liquid crystal between them. An inorganic / organic thin film called an alignment film is formed at the interface between the liquid crystal and the common / drive electrodes. In horizontally aligned liquid crystal mode, the alignment force exerted by the alignment film dictates the orientation of the liquid crystal molecules, constraining them to be parallel to the substrate while simultaneously aligning their long axes. Therefore, when no electric field is applied, the liquid crystal is aligned parallel to the substrate. When linearly polarized light oscillating parallel to the long axis of the liquid crystal molecules is incident, the refractive index of the incident light is high. When an electric field is applied, the liquid crystal molecules rotate due to their dielectric anisotropy, causing their long axes to approach the direction of the electric field lines, resulting in a low refractive index for the incident linearly polarized light. As a result, a phase difference occurs between the light reflected from the ON-state pixel and the light reflected from the OFF-state pixel, making it possible to obtain a two-dimensional phase distribution by applying an electric field to each pixel. [Prior art documents] [Non-patent literature]

[0004] [Non-Patent Document 1] Y. Isomae, Y. Shibata, T. Ishinabe, and H. Fujikake, “Design of 1-maikurom-pitch liquid crystal spatial light modulators having dielectric shield wall structure for holographic display with wide field of view,” Opt. Rev., vol. 24, no. 2, pp. 165-176, Apr. 2017.DOI: 10.1007 / s10043-017-0316-0

[0005] [Non-patent document 2] Y. Isomae et al., Experimental study of 1-μm-pitch light modulation of a liquid crystal separated by dielectric shield walls formed by nanoimprint technology for electronic holographic displays, Opt. Eng. 57(6), 061624 (2018). [Patent documents]

[0006] [Patent Document 1] Japanese Patent Publication No. 2020-187345 Summary of the Invention [Problem to be solved by the invention]

[0007] Since holographic displays reproduce object light by optical interference, the angular range (viewing angle) in which the reproduced image can be observed depends on the maximum diffraction angle, which is determined by the pixel pitch of the spatial light phase modulator.

[0008] The inventors investigated the pixel pitch required to realize a practical holographic display. Specifically, they assumed a viewing environment in which a mobile device such as a tablet is placed on a table and an image 20 cm on a side is reproduced at a distance of 50 cm. In this case, a theoretical viewing angle of 30° is required. Calculations showed that to achieve a viewing angle of 30°, the pixel pitch required for the phase modulation element is approximately 1 μm.

[0009] However, the smallest pixel pitch of currently available phase modulation elements is 3.74 μm, and when the wavelength of light is 550 nm, the viewing angle is 8.4°. For these reasons, in order to realize a practical holographic display, it is necessary to narrow the pixel pitch of spatial light phase modulation elements.

[0010] The inventors have found that in minute pixels with a pitch of about 1 μm, the leakage of electric fields and the propagation of elastic forces of the liquid crystal orientation make it difficult to drive each pixel independently, resulting in a decrease in contrast.

[0011] Furthermore, simulations based on the theory of continuous elastic bodies revealed that when the pixel pitch is 3 μm or less, the electric field generated when the pixel electrode is driven propagates to adjacent pixels, causing some of the liquid crystal to rotate (see Non-Patent Document 1).

[0012] In light of this background, the present inventors have proposed a dielectric shield wall structure as a pixel structure. The dielectric shield wall structure is one in which a dielectric wall is formed between pixels.

[0013] In liquid crystal devices, alignment films must be formed on both the pixel electrode side and the opposing electrode (common electrode) side. However, it has been found that forming an alignment film on the pixel electrode side after forming a high-aspect-ratio dielectric shield wall structure, as in the above-mentioned technology, is difficult. For example, when using the rubbing method or photo-alignment method, which are mainstream manufacturing processes for liquid crystal flat panel displays, there is a problem in that it is difficult to apply alignment film material to a substrate on which a high-aspect-ratio structure has been formed. Therefore, there is a problem in that it is difficult to control the alignment of the liquid crystal and align the liquid crystal in the same direction.

[0014] Therefore, the inventors conducted further research and discovered that by giving shape anisotropy to one or more microscopic spaces for filling liquid crystal corresponding to each pixel electrode with a narrow pixel pitch of 3 μm or less in mutually perpendicular directions on the plane of the base, the structure itself has a self-organizing liquid crystal alignment function, and it is possible to regulate the alignment by utilizing the elasticity of the liquid crystal (Patent Document 1).

[0015] On the other hand, as miniaturization advances, there is a demand for a liquid crystal alignment member for spatial light phase modulation that has a stronger alignment control force. The present disclosure has been made in consideration of the above circumstances, and its main object is to provide a liquid crystal alignment member for spatial light phase modulation that has a high liquid crystal alignment control force and can produce a spatial light modulation element with a pixel electrode pitch of 3 μm or less. [Means for solving the problem]

[0016] One embodiment of the present disclosure provides a display device comprising: a base portion including a silicon substrate; pixel electrodes provided on a surface of the silicon substrate and arranged side by side in a matrix at a period of 3 μm or less; a lattice-like wall structure made of a dielectric material and arranged on the base portion, the lattice-like wall structure being a combination of a plurality of linear protrusions; a base layer made of the dielectric material and connected to the lattice-like wall structure; and a plurality of microscopic spaces for filling liquid crystal, which are separated from each other by the lattice-like wall structure and arranged on the base layer, for filling with liquid crystal, wherein the lattice-like wall structure is arranged at least between pixel regions in which adjacent pixel electrodes are formed, and a first axis and a second axis are taken to be orthogonal to each other on a plane parallel to the base portion, and the microscopic spaces for filling liquid crystal have shape anisotropy in the first axial direction and the second axial direction, and a spatial width in the first axial direction is W A , the space width in the second axial direction is W B In this case, W A W B and the base layer is a grooved base layer having base grooves formed therein extending in the second axial direction of the microspace for liquid crystal filling.

[0017] The spatial light phase-modulating liquid crystal alignment member of this embodiment, when filled with liquid crystal to form a light modulation element, can block electric field leakage from adjacent pixels and propagation of liquid crystal elastic force, even when the pixel pitch is as narrow as 3 μm or less. At the same time, one or more microscopic spaces for filling liquid crystal corresponding to each pixel electrode with a pixel pitch as narrow as 3 μm or less have shape anisotropy in mutually orthogonal directions on the base plane, so that the structure itself has a liquid crystal alignment function, enabling alignment of the liquid crystal. Furthermore, since such shape-anisotropic microscopic spaces for filling liquid crystal are provided on a base layer having a base groove extending in the second axial direction (long axis), it becomes possible to more precisely control the alignment of the liquid crystal.

[0018] Preferably, two or more base grooves are provided in the base layer corresponding to each of the minute spaces for filling liquid crystal.

[0019] One embodiment of the present disclosure provides a display device comprising: a base portion including a silicon substrate; pixel electrodes provided on a surface of the silicon substrate and arranged side by side in a matrix at a period of 3 μm or less; a lattice-like wall structure made of a dielectric material and formed on the base portion, the lattice-like wall structure being a combination of a plurality of linear protrusions; a base layer made of the dielectric material and connected to the lattice-like wall structure; and a plurality of microscopic spaces for filling liquid crystal, which are separated from one another by the lattice-like wall structure and provided on the base layer, for filling with liquid crystal, wherein the lattice-like wall structure is disposed at least between pixel regions in which adjacent pixel electrodes are formed, and a first axis and a second axis are taken to be orthogonal to each other on a plane parallel to the base portion, and the microscopic spaces for filling liquid crystal have shape anisotropy in the first axial direction and the second axial direction, and a spatial width in the first axial direction is W A , the space width in the second axial direction is W B In this case, W A W B and the base layer is a differential thickness base layer having a different thickness at one end and the other end in the second axial direction of the microspace for filling with liquid crystal.

[0020] In this embodiment, the thickness-varying base layer has a different thickness at one end and the other end in the second axial direction of the microspace for filling with liquid crystal, which allows the liquid crystal molecules to have a slightly inclined pretilt angle relative to the plane of the base, making it possible to control the orientation of the liquid crystal more precisely.

[0021] In this case, it is preferable that the thickness-varying base layer has at least one of an inclined portion and a stepped portion in the second axial direction of the microspace for filling liquid crystal, so that the thickness at one end differs from that at the other end.

[0022] In addition, in the present disclosure, the above W A It is preferable that the thickness is 3 μm or less. If the thickness is such a value, the liquid crystal alignment member can have a sufficient liquid crystal alignment function.

[0023] Also, the above W A The above W B Ratio (W B / W A ) is preferably equal to or greater than 2. Within this range, the shape anisotropy in the first axis direction and the second axis direction in a plane parallel to the base portion is sufficient, so that the orientation of the liquid crystal can be reliably controlled by utilizing the elasticity of the liquid crystal to be filled.

[0024] One embodiment of the present disclosure provides a reflective spatial light phase modulator that reflects incident light while controlling the phase of the incident light and the reflected light, the spatial light modulator comprising: a transparent substrate; a common electrode disposed on one surface of the transparent substrate; the above-mentioned liquid crystal alignment member for spatial light phase modulation that is disposed on the surface of the common electrode opposite to the transparent substrate; and a liquid crystal layer filled in the fine spaces for liquid crystal filling in the liquid crystal alignment member for spatial light phase modulation. In order to further stabilize the liquid crystal alignment function, an alignment film may be disposed between the common electrode and the above-mentioned liquid crystal alignment member for spatial light phase modulation.

[0025] Furthermore, one embodiment of the present disclosure provides a stereoscopic display device including the above-described spatial light modulation element and a driving means for driving the pixel electrodes.

[0026] With the spatial light modulation element and stereoscopic display device of the present disclosure, even when the pixel electrodes have a narrow pitch of 3 μm or less, it is possible to easily control the alignment of the liquid crystal independently in each pixel.

[0027] One embodiment of the present disclosure includes a base portion including a silicon substrate and pixel electrodes provided on a surface of the silicon substrate and arranged side by side in a matrix at a period of 3 μm or less; a lattice-like high-wall structure made of a dielectric material and arranged on the base portion, which is formed by combining a plurality of linear protrusions; and a plurality of highly minute spaces for filling liquid crystal, which are separated from each other by the lattice-like high-wall structure, and for filling with liquid crystal, the lattice-like high-wall structure is arranged at least between pixel regions in which adjacent pixel electrodes are formed, and has a first axis and a second axis that are orthogonal to each other on a plane parallel to the base portion, and further has a third axis that is perpendicular to the plane parallel to the base portion, and the spatial width in the first axial direction of the highly minute spaces for filling with liquid crystal is W 3A , the space width in the second axial direction is W 3B , the space width in the third axial direction is W 3C In this case, W 3c W 3A and W 3B Larger than W 3c / W 3A and W 3c / W 3B and (b) a liquid crystal alignment member for spatial light phase modulation, wherein at least one of the above is 1.1 or more.

[0028] In this embodiment, the above W 3c / W 3A and the above W 3c / W 3Bis preferably 1.3 or more. Within this range, sufficient shape anisotropy is achieved in the first axial direction or the second axial direction in the plane parallel to the base, and in the third axial direction perpendicular to the plane parallel to the base, thereby enabling reliable control of the orientation of the liquid crystal by utilizing the elasticity of the liquid crystal to be filled.

[0029] Also, the above W 3C is preferably, for example, 800 nm or more. Within this range, sufficient shape anisotropy is likely to be achieved in the first axis direction or the second axis direction in a plane parallel to the base, and in the third axis direction perpendicular to the plane parallel to the base.

[0030] In this embodiment, the lattice-like high wall structure preferably has wall grooves extending in the third axis direction on at least one of four faces facing each of the highly minute spaces for filling liquid crystal. By forming wall grooves in the high-wall structure that extend in the third axis direction, which is the long axis direction of the highly fine space for filling liquid crystal, the liquid crystal molecules are oriented along the wall grooves that extend in the long axis direction, which provides a higher alignment control force and makes it possible to precisely control the alignment of the liquid crystal.

[0031] In this embodiment, the display device further includes a base layer connected to the lattice-shaped high-wall structure and surrounding the highly minute spaces for filling liquid crystal together with the lattice-shaped high-wall structure, the base layer being made of the dielectric material and having a thickness different between one end and the other end in the first axial direction or the second axial direction of the highly minute spaces for filling liquid crystal, because this allows the liquid crystal molecules to be given a slightly inclined pretilt angle with respect to the plane of the base when a voltage is applied.

[0032] In this case, it is preferable that the base layer has at least one of an inclined portion and a stepped portion in the first axial direction or the second axial direction of the highly minute space for filling liquid crystal, so that the thickness at one end differs from that at the other end.

[0033] One embodiment of the present disclosure provides a reflective spatial light phase modulation element that reflects incident light while controlling the phase of the incident light and the reflected light, characterized in that it has a transparent substrate, a common electrode arranged on one side of the transparent substrate, the above-mentioned liquid crystal alignment member for spatial light phase modulation that is arranged on the side of the common electrode opposite the transparent substrate, and a liquid crystal layer filled in the highly fine spaces for liquid crystal filling in the liquid crystal alignment member for spatial light phase modulation.

[0034] Furthermore, one embodiment of the present disclosure provides a stereoscopic display device comprising the above-described spatial light modulation element and a driving means for driving the pixel electrodes. With the spatial light modulation element and stereoscopic display device of the present disclosure, even when the pixel electrodes have a narrow pitch of 3 μm or less, it is possible to easily control the alignment of the liquid crystal independently in each pixel. [Effects of the Invention]

[0035] The present disclosure provides advantageous effects such as providing a liquid crystal alignment member for spatial light phase modulation that has a high liquid crystal alignment control force and can provide a spatial light modulation element with a pixel electrode pitch of 3 μm or less. Furthermore, the present disclosure can provide a spatial light modulation element and a three-dimensional display device that are useful for ultra-high definition projectors and holographic displays using optical diffraction. [Brief explanation of the drawings]

[0036] [Figure 1] 1A and 1B are a top view and a schematic cross-sectional view showing an example of a liquid crystal horizontal alignment member for spatial light phase modulation according to a first embodiment of the present disclosure, and a top view of a base portion thereof. [Figure 2] 1A and 1B are a top view and a schematic cross-sectional view showing an example of a liquid crystal horizontal alignment member for spatial light phase modulation according to a first embodiment of the present disclosure, and a top view of a base portion thereof. [Figure 3] 1A and 1B are a top view and a schematic cross-sectional view illustrating an example of a liquid crystal horizontal alignment member for spatial light phase modulation according to a first embodiment of the present disclosure. [Figure 4]10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal horizontal alignment member for spatial light phase modulation according to a second embodiment of the present disclosure. [Figure 5] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal horizontal alignment member for spatial light phase modulation according to a second embodiment of the present disclosure. [Figure 6] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal horizontal alignment member for spatial light phase modulation according to a second embodiment of the present disclosure. [Figure 7] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal horizontal alignment member for spatial light phase modulation according to a second embodiment of the present disclosure. [Figure 8] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal vertical alignment member for spatial light phase modulation according to a third embodiment of the present disclosure, and a top view of a base portion thereof. [Figure 9] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal vertical alignment member for spatial light phase modulation according to a third embodiment of the present disclosure. [Figure 10] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal vertical alignment member for spatial light phase modulation according to a third embodiment of the present disclosure. [Figure 11] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal vertical alignment member for spatial light phase modulation according to a third embodiment of the present disclosure. [Figure 12] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal vertical alignment member for spatial light phase modulation according to a third embodiment of the present disclosure. [Figure 13] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal vertical alignment member for spatial light phase modulation according to a third embodiment of the present disclosure. [Figure 14] 10A and 10B are a top view and a schematic cross-sectional view showing an example of a liquid crystal vertical alignment member for spatial light phase modulation according to a third embodiment of the present disclosure. [Figure 15] 1 is a schematic cross-sectional view showing an example of a spatial light phase modulation element (first embodiment) of the present disclosure. [Figure 16] FIG. 2 is a schematic cross-sectional view showing a base layer and a lattice-shaped wall structure produced in an example. [Figure 17] 1 shows the results of polarizing microscope observation in Example 1. [Figure 18]1 is a top view of an alignment member evaluation sample of an example and a comparative example. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0037] Embodiments of the present disclosure will be described below with reference to the drawings and the like. However, the present disclosure can be implemented in many different forms, and should not be construed as being limited to the description of the embodiments exemplified below. Furthermore, to clarify the explanation, the drawings may schematically depict the width, thickness, shape, etc. of each part compared to the actual form, but these are merely examples and are not intended to limit the interpretation of the present disclosure. Furthermore, in this specification and each drawing, elements similar to those previously described with reference to the preceding drawings will be designated by the same reference numerals, and detailed descriptions may be omitted as appropriate.

[0038] In this specification, when describing a mode in which another component is placed on a certain component, the terms "above" or "below" are used, unless otherwise specified, to include both a case in which another component is placed directly above or below a certain component so as to be in contact with the component, and a case in which another component is placed above or below a certain component with another component interposed therebetween. Also, in this specification, when describing a mode in which another component is placed on the surface of a certain component, the terms "on the surface side" or "on the surface" are used, unless otherwise specified, to include both a case in which another component is placed directly above or below a certain component so as to be in contact with the component, and a case in which another component is placed above or below a certain component with another component interposed therebetween.

[0039] As a result of intensive research to solve the above problems, the inventors have found that the above problems can be solved by the liquid crystal alignment members for spatial light phase modulation of the first to third embodiments described below, and have thus completed the present invention. The first and second embodiments relate to a liquid crystal horizontal alignment member for spatial light phase modulation that can align liquid crystal molecules in a direction approximately parallel to the base when no voltage is applied to the liquid crystal layer, and the third embodiment relates to a liquid crystal vertical alignment member for spatial light phase modulation that can align liquid crystal molecules in a direction approximately perpendicular to the base when no voltage is applied to the liquid crystal layer.

[0040] A. Liquid crystal alignment member for spatial light phase modulation (first embodiment) The liquid crystal alignment member for spatial light phase modulation (hereinafter simply referred to as alignment member) of this embodiment will be described with reference to the drawings. Fig. 1(A) is a top view showing an example of the alignment member of this embodiment, Fig. 1(B) is a schematic cross-sectional view taken along line A-A' in Fig. 1(A), and Fig. 1(C) is a top view of the base part in Fig. 1(B).

[0041] As illustrated in Figure 1, the alignment member 100 of this embodiment has a base portion 3 including a substrate 1 and pixel electrodes 2 formed on the surface of the substrate in a matrix with a period of 3 μm or less, a lattice-like wall structure 4 made of a dielectric material and arranged on the base portion 3, which is made up of a combination of multiple linear protrusions, a base layer 5 made of a dielectric material and connected to the lattice-like wall structure 4, and multiple liquid crystal filling microspaces 6 separated from each other by the lattice-like wall structure 4 and arranged on the base layer 5, for filling with liquid crystal.

[0042] The lattice-like wall structure 4 is disposed at least between pixel regions in which the adjacent pixel electrodes 2 are formed. In FIG. 1, the first axis direction is the X-axis direction, which is the matrix direction of the pixel electrodes, and the second axis direction is the Y-axis direction, which is perpendicular to the first axis direction, in a plane parallel to the base. Each of the minute spaces 6 for filling liquid crystal separated by the lattice-like wall structure 4 has anisotropy in shape in the first axis direction and the second axis direction, which are perpendicular to each other, in the plane of the base, and has a space width W B is the space width W in the first axial direction AFurthermore, the base layer 5, which surrounds the microscopic spaces 6 for filling with liquid crystal together with the lattice-like wall structure 4, has base grooves 7 extending in the second axis direction, which is the long axis direction. In FIG. 1, one microscopic space 6 for filling with liquid crystal is formed on one pixel electrode 2.

[0043] In the liquid crystal alignment member for spatial light phase modulation of this embodiment, a lattice-shaped wall structure is disposed at least between pixel regions where adjacent pixel electrodes are formed, and the microspaces for liquid crystal filling are divided by the lattice-shaped wall structure. Therefore, when liquid crystal is filled into a light modulation element, even if the pixel pitch is as narrow as 3 μm or less, electric field leakage from adjacent pixels and propagation of liquid crystal elastic force can be blocked. At the same time, one or more microspaces for liquid crystal filling corresponding to each pixel electrode with a pixel pitch as narrow as 3 μm or less have shape anisotropy in mutually orthogonal directions (first axis direction and second axis direction) in a plane parallel to the base portion, thereby endowing the structure itself with liquid crystal alignment function. Therefore, even if an alignment film is not provided on the base portion, the alignment of liquid crystal can be easily controlled independently for each pixel. Furthermore, in this embodiment, a base layer surrounding the microspaces for liquid crystal filling together with the lattice-shaped wall structure has a base groove extending in the second axis direction, which is the long axis direction of the microspaces for liquid crystal filling. Therefore, the liquid crystal molecules are oriented along the base grooves extending in the major axis direction, which provides a stronger alignment control force and makes it possible to control the alignment of the liquid crystal with high precision.

[0044] The liquid crystal alignment member for spatial light phase modulation in this embodiment is a liquid crystal horizontal alignment member for spatial light phase modulation that can align liquid crystal molecules in a direction approximately parallel to the base portion when no voltage is applied to the liquid crystal layer. The alignment member of this embodiment will be described in detail below.

[0045] 1. Silicon substrate In this embodiment, the substrate on which the pixel electrodes are provided is a silicon substrate. The silicon substrate allows for the fabrication of minute devices in which the pixel electrodes have a period of 3 μm or less. The thickness of the silicon substrate is not particularly limited, but is typically within the range of 280 μm to 775 μm. Furthermore, the size in plan view is typically approximately 50 mmφ to 300 mmφ.

[0046] 2.Pixel electrode In this embodiment, pixel electrodes for driving the display pixels are arranged in a matrix on the surface of a silicon substrate at intervals of 3 μm or less. These pixel electrodes define the pixels of the spatial light modulation element. The "matrix" may be a one-dimensional matrix arranged only in the X-axis direction, or a two-dimensional matrix arranged in the X-axis direction and in the Y-axis direction orthogonal to the X-axis direction. Typically, pixel electrodes are arranged in a two-dimensional matrix.

[0047] In this embodiment, the period of pixel electrodes refers to the distance between the centers of adjacent pixel electrodes. When pixel electrodes are arranged in a one-dimensional matrix, the period of adjacent pixel electrodes is 3 μm or less. When pixel electrodes are arranged in a two-dimensional matrix in the X-axis and Y-axis directions, if the periods in the X-axis and Y-axis directions are the same, the periods are 3 μm or less. When the periods are different, the shorter period is 3 μm or less. In this embodiment, when pixel electrodes are arranged in a two-dimensional matrix, it is preferable that both the periods in the X-axis and Y-axis directions are 3 μm or less.

[0048] Even when the pixel pitch is as narrow as 3 μm or less, the alignment member of this embodiment allows the liquid crystal to be controlled independently for each pixel region when filled with liquid crystal to form a light modulation element. Note that in this embodiment, the period needs only to be 3 μm or less (in which case the viewing angle will be approximately 10° or more), but a period of 1 μm or less is preferable because a practical viewing angle of 30° can be obtained.

[0049] The surface of the pixel electrode is usually processed to be flat and smooth, and the pixel electrode on the silicon substrate may also function as a reflector.

[0050] The pixel electrodes are not particularly limited as long as they are made of a conductive material, and examples thereof include Al, Cr, Cu, Ag, Ta, Mo, Nd, and alloys thereof. Furthermore, a dielectric multilayer film with high reflectivity may be laminated on the surface.

[0051] The shape of the pixel electrodes in plan view is not particularly limited, but is usually either rectangular or square. The size of the pixel electrodes is also not particularly limited as long as the period of the pixel electrodes is 3 μm or less.

[0052] The thickness of the pixel electrode is not particularly limited as long as it can ensure conductivity. Furthermore, the pixel electrodes are preferably arranged in a matrix in the X and Y directions, but are not limited to this.

[0053] The method for forming the pixel electrodes is not particularly limited as long as it is a method that can form the pixel electrodes to the desired thickness and pattern, and general methods for forming pixel electrodes can be used, such as PVD (physical vapor deposition) methods such as vacuum deposition, sputtering, and ion plating, CVD (chemical vapor deposition), conductive paste coating, inkjet printing, screen printing, flexographic printing, and plating.

[0054] 3. Base The base in this embodiment includes at least a silicon substrate and pixel electrodes. The silicon substrate and pixel electrodes are the same as those described above in "1. Silicon substrate" and "2. Pixel electrodes," respectively, and therefore will not be described here.

[0055] 4. Lattice wall structure The lattice-shaped wall structure in this embodiment is formed on a base portion, is made of a dielectric material, and has a structure in which a plurality of linear protrusions are combined.

[0056] In this embodiment, the material constituting the lattice-shaped wall structure is not particularly limited as long as it is a dielectric material and can be microfabricated using a nanoimprinting method, etching method, etc. Among the dielectric materials, it is preferable that the structure be made of a low-dielectric material, and in particular, it is preferable that the structure be made of a material with a relative dielectric constant of 4.0 or less, more preferably 2.0 or less.

[0057] Specific examples of materials that can be nanoimprinted include thermosetting resins and photocurable resins, with photocurable resins being particularly preferred. In addition, if the photocurable resin is a transparent resin, it is preferred. Among the materials that constitute such a lattice-like wall structure, acrylic resin, coating glass, glass, etc. are preferred.

[0058] Furthermore, by using a material in which a black pigment is mixed into the above material, it is possible to absorb unmodulated light. Such black pigments are the same as those described in the section "A. Liquid crystal alignment member for spatial light phase modulation, 7. Other (2) Light absorption layer" below, and therefore will not be described here.

[0059] The lattice-like wall structure is a structure in which a plurality of linear protrusions are combined, preferably a structure in which linear protrusions that are perpendicular to each other are combined, for example, a structure in which linear protrusions extending in a first axial direction and linear protrusions extending in a second axial direction perpendicular to the first axial direction are combined so as to intersect.

[0060] The thickness of the lattice-like wall structure is not particularly limited, but is preferably 50 nm or more and 400 nm or less, and more preferably 200 nm or less. Here, the thickness of the lattice-like wall structure refers to the thickness at the non-intersecting portions of the linear protrusions, as shown by (Ta) and (Tb) in FIG.

[0061] The height of the lattice-like wall structure is not particularly limited, but is preferably 500 nm or more and 3000 nm or less, and more preferably 800 nm or more and 1500 nm or less.

[0062] Here, as shown by (H1) in Figure 1, the height of the lattice-shaped wall structure 4 refers to the maximum distance in the direction perpendicular to the in-plane direction of the base layer 5 from the first surface 5S of the base layer 5 to the top of the lattice-shaped wall structure 4 (linear convex portion) (specifically, in Figure 1, the maximum distance in the direction perpendicular to the in-plane direction of the base layer 5 from the bottom surface of the base groove 7 formed in the base layer 5 to the top of the lattice-shaped wall structure 4 (linear convex portion)).

[0063] In this embodiment, it is preferable that the height H1 of all linear convex portions included in the wall structure 4 is within the above numerical range. The height H1 of the wall structure 4 can be measured using, for example, a scanning electron microscope or the like.

[0064] In this embodiment, as shown in Fig. 2, the lattice-shaped wall structure 4 can be roughly divided into wall portions 4A provided between adjacent pixel regions and partition portions 4B that divide one pixel region into two or more. Fig. 2(A) is a top view showing an example of an alignment member of this embodiment, Fig. 2(B) is a schematic cross-sectional view taken along line A-A' in Fig. 2(A), and Fig. 2(C) is a diagram showing the arrangement of pixel electrodes. The wall portions and partition portions will be described in detail below.

[0065] (1)Wall part The wall portions are provided so as to separate adjacent pixel regions, i.e., so as to surround each pixel region. When the pixel regions do not have shape anisotropy as shown in Fig. 2, it is necessary to provide partition portions, which will be described later. However, when the pixel regions themselves have shape anisotropy as shown in Fig. 1, the lattice-shaped wall structure 4 may be formed only by the wall portions 4A.

[0066] (a) Thickness The thickness of the wall portion is not particularly limited, but is preferably 180 nm to 400 nm, and more preferably 180 nm to 250 nm. A thickness of less than the above value ensures a sufficiently large microscopic space for filling with liquid crystal. Furthermore, a thickness of more than the above value reliably blocks leakage of electric fields from adjacent pixels and propagation of the elastic force of liquid crystal alignment, making it possible to control the alignment of the liquid crystal to be filled.

[0067] (b) Height The height of the wall is not particularly limited, but is preferably 500 nm to 3000 nm, more preferably 800 nm to 1500 nm. Such a height (i.e., the thickness of the liquid crystal layer) enables phase modulation with a sufficient width for the ideal modulation amount of 2π.

[0068] (2) Partition The partition section divides the pixel region into two or more sections. When dividing the pixel region into two or more sections, there is no particular limitation as long as the alignment of the liquid crystal can be controlled, and the partition section may be provided in either or both of the X-axis direction and the Y-axis direction, which are the arrangement directions of the pixel electrodes. Furthermore, it is usually desirable that the partition section is formed so as to be connected to the wall section without leaving any gap between the wall section and the partition section, so that the pixel region is completely divided, but it is not necessary for the partition section to be connected. Note that the partition section divides the pixel region into two or more equal sections, for example.

[0069] The partitions are provided so as to divide one pixel region into two or more, that is, so as to form two or more minute spaces for filling with liquid crystal corresponding to one pixel region.

[0070] (a) Thickness The thickness of the partition is not particularly limited, but is preferably 50 nm to 400 nm, more preferably 50 nm to 200 nm. If the thickness is less than this range, a sufficient aperture ratio can be ensured and light utilization efficiency can be improved.

[0071] (b) Height The height of the partition is not particularly limited, but is preferably 500 nm to 3000 nm, more preferably 500 nm to 1500 nm, which is sufficient to provide the liquid crystal alignment function to the microscopic spaces for filling the liquid crystal.

[0072] In the present disclosure, as shown in FIG. 2, the heights of the wall portion 4A and the partition portion 4B may be the same, or the heights of the wall portion and the partition portion may be different. In this way, when the height of the partition and the height of the wall are different, the height of the partition is usually made smaller than the height of the wall. In this case, when the height of the wall is 100, the height of the partition is preferably 50 or more, and particularly preferably 80 or more.

[0073] 5. Base layer (grooved base layer) The liquid crystal alignment member for spatial light phase modulation in this embodiment has a base layer connected to a lattice-shaped wall structure. The base layer is usually a dielectric layer formed in the process of forming the lattice-shaped wall structure and is made of the same dielectric material as the lattice-shaped wall structure. The base layer, together with the lattice-shaped wall structure, surrounds the microspaces for filling with liquid crystal, and a base groove is formed in the base layer extending in a second axis direction, which is the long axis direction of the microspaces for filling with liquid crystal.

[0074] It is preferable that two or more base grooves are provided in the base layer corresponding to each microspace for filling liquid crystal. In Fig. 1, three base grooves 7 are formed in the base layer 5 facing one microspace 6 for filling liquid crystal. In Fig. 3, two base grooves 7 are formed in the base layer 5 facing one microspace 6 for filling liquid crystal. By providing such shape-anisotropic microspaces for filling liquid crystal on a base layer having base grooves extending in the major axis direction, it becomes possible to control the alignment of the liquid crystal with greater precision.

[0075] The shape of the base groove as viewed in the thickness direction of the alignment member, i.e., the cross-sectional shape of the base groove, is not particularly limited, and examples thereof include a rectangle, a triangle, etc. The corners of the base groove may have a curvature.

[0076] The ratio (D1 / H1) of the depth (D1) of the base groove to the height (H1) of the lattice-like wall structure is preferably, for example, 0.1 or more. A ratio of this value or more is sufficient to provide high liquid crystal alignment function to the microscopic spaces for filling liquid crystal. On the other hand, it is, for example, 0.5 or less, and preferably 0.4 or less. If it is less than the above value, the grooves are easy to form and the groove shape can be stably formed. Here, the depth (D1) of the base groove refers to the maximum depth of the groove as shown in Figure 1.

[0077] The specific depth (D1) of the base groove is not particularly limited, but is preferably, for example, 100 nm or more. If it is greater than this value, the microscopic spaces for filling liquid crystal can have a high liquid crystal alignment function. On the other hand, it is, for example, 500 nm or less, and preferably 400 nm or less. If it is less than this value, the base groove can be easily formed and the shape of the base groove can be stably formed.

[0078] The width (G1) of the base groove is not particularly limited, but is preferably 50 nm or more, more preferably 70 nm or more. On the other hand, it is preferably 200 nm or less, more preferably 150 nm or less. Here, the width (G1) of the base groove refers to the maximum width of the base groove as shown in FIG. 1.

[0079] The base groove is formed in the base layer so as to extend in the second axial direction of the microcavity for filling liquid crystal, and is usually provided linearly. The base groove is preferably formed continuously, but may be interrupted midway.

[0080] 6. Microscopic spaces for filling liquid crystal In this embodiment, the multiple microscopic spaces for filling liquid crystal are spaces provided on the base layer, separated from one another by a lattice-like wall structure. That is, each microscopic space for filling liquid crystal is a space surrounded by linear convex portions. The microscopic spaces for filling liquid crystal have anisotropy in shape in mutually orthogonal directions on the plane of the base, to the extent that the liquid crystal is oriented. That is, when a first axis and a second axis are taken so as to be mutually orthogonal on a plane parallel to the base, the spatial width W in the first axis direction is A is the space width W in the second axial direction B Shorter.

[0081] The planar (XY plane) shape of such a microscopic space for filling with liquid crystal is not particularly limited, but examples thereof include shapes having a long side (major axis) and a short side (minor axis), such as a rectangle, an ellipse, or a parallelogram. Such an anisotropic space makes it possible to control the orientation of the liquid crystal to be filled. Furthermore, in this embodiment, the microscopic space for filling with liquid crystal is provided on a base layer having a base groove extending in the major axis direction, thereby enabling more precise control of the orientation of the liquid crystal.

[0082] In this embodiment, the space width W in the first axial direction (short side or minor axis direction) A It is preferable that the width W of the space in the first axial direction is 3 μm or less. A The shorter the better, and the more preferable it is 0.6 μm or less, and particularly preferably 0.3 μm or less.

[0083] Furthermore, the space width W in the first axis direction (short side or minor axis direction) of the minute space for filling the liquid crystal A The space width W in the second axial direction (long side or major axis direction) relative to B The ratio of the lengths of (i.e., W B / W A) is preferably about 2 or more, and particularly preferably 2.5 or more. The upper limit is not particularly limited and may be infinite, but is usually set to 10 or less. Within this range, the shape anisotropy in mutually perpendicular directions on the base plane is sufficient, making it possible to reliably control the orientation of the liquid crystal by utilizing the elasticity of the liquid crystal to be filled.

[0084] In this embodiment, either or both of the first axis and the second axis may coincide with the matrix direction of the pixel electrodes arranged in a matrix.

[0085] In other words, when the pixel electrodes are arranged in a one-dimensional matrix in which they are aligned only in the X-axis direction, either the first axis direction or the second axis direction may coincide with the X-axis direction, which is the arrangement direction of the pixel electrodes.

[0086] Furthermore, when the pixel electrodes are arranged in a two-dimensional matrix in the X-axis direction and the Y-axis direction perpendicular to the X-axis direction, the first axis direction and the second axis direction may coincide with the X-axis direction and the Y-axis direction, which are the directions in which the pixel electrodes are arranged. That is, each microscopic space for filling with liquid crystal may have anisotropy in shape in the X-axis direction and the Y-axis direction, which are the directions in which the pixel electrodes are arranged, and the lengths of its sides (axes) may be different in the X-axis direction and the Y-axis direction.

[0087] 6.Applications The liquid crystal alignment member for spatial light phase modulation of this embodiment is suitable for use as a liquid crystal alignment member for a reflective spatial light modulation element that reflects incident light while controlling the phase of the incident light and the reflected light. Furthermore, the alignment member of this embodiment allows liquid crystal control to be performed independently for each pixel region, resulting in a light modulation element with a pixel pitch of 3 μm or less. Therefore, when the liquid crystal alignment member for spatial light phase modulation of this embodiment is used in a display device, a wide angular range in which the reconstructed image can be observed can be ensured, making it suitable for use in holographic displays using optical diffraction, three-dimensional display devices, ultra-high-definition projectors, and the like.

[0088] 7.Other (1) Adhesion layer In the present disclosure, an adhesion layer can be formed to enhance adhesion between the base portion and the convex structure. The adhesion layer is not particularly limited as long as it can enhance adhesion between the base portion and the convex structure, and known materials can be used as adhesion layer materials, such as silane coupling materials.

[0089] (2) Light absorption layer To prevent the emission of unmodulated light, it is preferable to provide a light-absorbing layer on the surface of the base portion excluding the region where the pixel electrodes are formed (pixel region) or on the surface layer of the lattice-shaped wall structure. The light-absorbing layer may contain, for example, a black pigment and a binder resin. Examples of black pigments include titanium black such as low-order titanium oxide and titanium oxynitride, and carbon black. In addition, it is preferable that the binder resin, which is the main component of the light absorber, contains a photosensitive resin.

[0090] As the photosensitive resin, one or more photosensitive resins having a photoreactive group such as a reactive vinyl group, such as acrylic resins, epoxy resins, polyimide resins, polyvinyl cinnamate resins, and cyclized rubbers, can be used. For acrylic resins, for example, photosensitive resins made of alkali-soluble resins, polyfunctional acrylate monomers, photopolymerization initiators, and other additives can be used as the resin component of the binder resin. In addition to the above-mentioned materials, the binder resin can also contain various known additives such as photosensitizers, dispersants, surfactants, stabilizers, and leveling agents.

[0091] (3) Notch, spacer Spacers may be formed partially on the top of the lattice-shaped wall structure to improve the fluidity of the liquid crystal when filling the liquid crystal. By providing such spacers, the height of the spacer formation portion can be made different from the height of the other wall structures, allowing the liquid crystal to be filled with good fluidity. The spacers can be formed integrally with the lattice-shaped wall structure using the same material. Furthermore, cutouts may be partially formed on the top of the lattice-shaped wall structure to improve the fluidity of the liquid crystal when filling the liquid crystal.

[0092] 8. Manufacturing method Next, an example of a method for manufacturing a liquid crystal alignment member for spatial phase modulation according to the present disclosure is described. The liquid crystal alignment member for spatial light phase modulation according to the present disclosure can be manufactured by disposing a grooved base layer and a lattice-shaped wall structure on a silicon substrate having pixel electrodes. The grooved base layer and lattice-shaped wall structure according to the present disclosure can be manufactured using various known processing techniques for forming high-resolution patterns, such as nanoimprinting and etching, with nanoimprinting being particularly preferred. A manufacturing method using nanoimprinting involves forming a dielectric layer on a base using a dielectric material such as a photocurable resin, pressing a mold having a pattern corresponding to the grooved base layer and the lattice-shaped wall structure onto the base, curing the mold by light irradiation, and then removing the mold. Alternatively, the liquid crystal alignment member can be manufactured by simultaneously preparing the grooved base layer and the lattice-shaped wall structure separately using nanoimprinting or the like, and then adhering the lattice-shaped wall structure to the base.

[0093] B. Liquid crystal alignment member for spatial light phase modulation (second embodiment) A liquid crystal alignment member for spatial light phase modulation (hereinafter also simply referred to as alignment member) of this embodiment will be described with reference to the drawings. Figs. 4 to 7 are top views and schematic cross-sectional views showing an example of a liquid crystal alignment member for spatial light phase modulation of this embodiment. A liquid crystal alignment member 200 for spatial light phase modulation of this embodiment has a silicon substrate 21, a base portion 23 provided on the surface of the silicon substrate 21 and including pixel electrodes 22 arranged in a matrix at a period of 3 μm or less, a lattice-like wall structure 24 made of a dielectric material and formed by combining a plurality of linear protrusions, and disposed on the base portion 23, a base layer 25 connected to the lattice-like wall structure 24, and a plurality of minute spaces 26 for filling with liquid crystal, separated from one another by the lattice-like wall structure 24 and provided on the base layer 25.

[0094] The lattice-shaped wall structure 24 is disposed at least between pixel regions in which the adjacent pixel electrodes 22 are formed. In Figs. 4 to 7, the first axis direction is the X-axis direction which is the matrix direction of the pixel electrodes, and the second axis direction is the Y-axis direction which is the matrix direction of the pixel electrodes. Each of the minute spaces 26 for filling liquid crystal separated by the lattice-shaped wall structure 24 has anisotropy in shape in the first axis direction and the second axis direction which are orthogonal to each other on the plane of the base, and has a space width W B is the space width W in the first axial direction A Furthermore, the base layer 25, which surrounds the microscopic spaces 26 for filling liquid crystal together with the lattice-like wall structure 24, is characterized by having at least one of an inclined portion P and a stepped portion Q formed therein, so that the base layer 25 has a thickness difference between one end E1 and the other end E2 in the second axial direction of the microscopic spaces 26 for filling liquid crystal.

[0095] In the liquid crystal alignment member for spatial light phase modulation of this embodiment, a lattice-like wall structure is arranged at least between the pixel regions in which the adjacent pixel electrodes are formed, and the microscopic spaces for filling with liquid crystal are divided by the lattice-like wall structure.Therefore, when liquid crystal is filled to form an optical modulation element, it is possible to block electric field leakage from adjacent pixels and propagation of liquid crystal elastic force even when the pixel pitch is as narrow as 3 μm or less.

[0096] At the same time, one or more microscopic spaces for filling liquid crystal corresponding to each pixel electrode with a pixel pitch of 3 μm or less have shape anisotropy in mutually orthogonal directions (first axis direction and second axis direction) on the plane of the base, which gives the structure itself the ability to align liquid crystal, making it possible to align the liquid crystal even without an alignment film on the base. This makes it possible to easily control the alignment of liquid crystal independently for each pixel.

[0097] Furthermore, the base layer has a thickness difference between one end and the other end in the second axial direction of the microscopic spaces for filling with liquid crystal, thereby imparting a pretilt angle that is slightly inclined with respect to the plane of the base layer to the liquid crystal molecules. For example, Koichi Miyachi, Yuichiro Yamada, Naofumi Kimura, and Shigeaki Mizushima, “The UV2A Technology for Large Size LCD-TV Panels,” ISSN-L 1883-2490 / 17 / 0013 2010 ITE and SID, and Yu-Ping Kuo, Shih-Chyuan Fan Jiang, Chih-hung Shih, and Wei-Ming Huang, “New MVA Design to Improve Color Washout for Mobile Applications,” ISSN-L 1883-2490 / 17 / 1799 2010 ITE and SID, etc., describe how a pretilt angle can be imparted by a slope or a step. Specifically, in the above-mentioned document, protrusions with a triangular or hemispherical cross section are provided on the surface of one of the substrates, and the liquid crystal alignment is slightly tilted on the tilted protrusion surface, which triggers the tilt direction of the liquid crystal alignment to be controlled to any direction when a voltage is applied.

[0098] In this embodiment, the pretilt angle refers to the average tilt angle of the long axis direction of the liquid crystal molecules relative to the plane of the base. The pretilt angle has a significant effect on the operating characteristics (particularly the rising direction of the liquid crystal molecules) when a voltage is applied. Therefore, by providing a pretilt angle to the liquid crystal molecules, the rotation direction of the liquid crystal molecules can be regulated, making it possible to accurately control the alignment of the liquid crystal, including the transient alignment. Furthermore, in this embodiment, the above-mentioned structure (the lattice-like wall structure and the thickness-varying base layer) having the functions of blocking electric field leakage from adjacent pixels and propagation of liquid crystal elastic force, liquid crystal alignment function, and pretilt angle imparting function can be formed all at once.

[0099] The spatial light phase-modulating liquid crystal alignment member of this embodiment can align the liquid crystal molecules in a direction substantially parallel to the base while providing a pretilt angle when no voltage is applied to the liquid crystal layer. The alignment member of this embodiment will be described in detail below.

[0100] The silicon substrate, pixel electrode, base portion, and lattice-shaped wall structure in this embodiment are the same as those described above in "A. Liquid crystal alignment member for spatial light phase modulation (first embodiment)," so their description will be omitted here.

[0101] 1. Base layer (variable thickness base layer) The liquid crystal alignment member for spatial light phase modulation in this embodiment has a variable-thickness base layer connected to a lattice-shaped wall structure. The base layer is usually a dielectric layer formed in the process of forming the lattice-shaped wall structure and is made of the same dielectric material as the lattice-shaped wall structure. The variable-thickness base layer surrounds the microscopic space for filling with liquid crystal together with the lattice-shaped wall structure and has a different thickness at one end and the other end in the second axial direction of the microscopic space for filling with liquid crystal.

[0102] Specifically, the thickness-varying base layer preferably has at least one of an inclined portion and a stepped portion in the second axial direction of the microcavity 26 for filling with liquid crystal, thereby varying the thickness at one end and the other end. In FIG. 4, the thickness-varying base layer 25 has an inclined portion P that slopes linearly from one end E1 to the other end E2 in the second axial direction of the microcavity 26 for filling with liquid crystal. In FIG. 5, the thickness-varying base layer 25 has a curved inclined portion P at one end E1 in the second axial direction of the microcavity 26 for filling with liquid crystal. In FIG. 6, the thickness-varying base layer 25 has a stepped portion Q from one end E1 to the other end E2 in the second axial direction of the microcavity 26 for filling with liquid crystal. In FIG. 7, the base layer 25 has an inclined portion P that slopes partway from one end E1 to the other end E2 in the second axial direction of the microcavity 26 for filling with liquid crystal.

[0103] The difference in thickness between one end (E1) and the other end (E2) in the second axial direction of the microscopic space for filling with liquid crystal is preferably, for example, 200 nm or more. If it is equal to or greater than this value, the thickness is sufficient to impart a pretilt angle to the liquid crystal molecules, making it possible to control the alignment of the liquid crystal with greater precision. On the other hand, it is, for example, 300 nm or less, and preferably 240 nm or less. If it is equal to or less than this value, a microscopic space for filling with liquid crystal of sufficient size can be secured.

[0104] The inclined portion may be provided over the entire area from one end E1 to the other end E2 in the second axial direction of the microscopic space 26 for filling with liquid crystal, or may be provided over a partial area. The inclination angle (θ) of the inclined portion may be, for example, 3 degrees or more. Alternatively, it may be, for example, 20 degrees or less, or 16 degrees or less. Within the above range, the angle is sufficient to impart a pretilt angle to the liquid crystal molecules, making it possible to more precisely control the alignment of the liquid crystal. In this embodiment, the inclination angle (θ) of the inclined portion is the angle formed by the surface of the base layer with respect to the plane of the base portion.

[0105] There may be one or more step portions from one end E1 to the other end E2 in the second axial direction of the microscopic space 26 for filling with liquid crystal. The step portion may be provided over the entire area or in a partial area.

[0106] In this embodiment, the height of the lattice-shaped wall structure 24 refers to the maximum length from the first surface 25S of the base layer 25 to the top of the lattice-shaped wall structure 24 (linear convex portion) in a direction perpendicular to the in-plane direction of the base layer 25, as shown by (H2) in Figure 4.

[0107] The thickness of the base layer with different thicknesses may be the same or different at one end and the other end in the first axial direction of the minute space for filling with liquid crystal, but it is preferable that the thickness is the same.

[0108] Furthermore, the base layer may have a base groove formed therein, the base groove extending in a second axis direction, which is the long axis direction of the microscopic spaces for filling with liquid crystal. Such a groove is the same as that described above in "A. Liquid crystal alignment member for spatial light phase modulation (first embodiment)," and therefore will not be described here.

[0109] C. Spatial Light Modulation Element (First Embodiment) The present disclosure provides a reflective phase modulation element that reflects incident light while controlling the phase of the incident light and the reflected light, the spatial light modulation element having a transparent substrate, a common electrode arranged on one side of the transparent substrate, the above-mentioned liquid crystal orientation member for spatial light phase modulation that is arranged on the side of the common electrode opposite the transparent substrate, and a liquid crystal layer filled in the fine spaces for liquid crystal filling in the liquid crystal orientation member for spatial light phase modulation.

[0110] In the spatial light modulation element of this embodiment, the liquid crystal molecules filled in the minute spaces for filling the liquid crystal are oriented in a direction substantially parallel to the base portion (homogeneous orientation) when no voltage is applied. The spatial light modulation element of this embodiment will be described in detail below.

[0111] Fig. 15 is a schematic cross-sectional view showing an example of a spatial light modulation element of the present disclosure using the liquid crystal alignment member for spatial light phase modulation of the first embodiment described above. The spatial light modulation element 101 of the present disclosure is a reflective spatial light phase modulation element 101 that reflects incident light and controls the phase of the incident light and the reflected light, and is characterized by having a transparent substrate 8, a common electrode 9 formed on the transparent substrate, a liquid crystal alignment member for spatial light phase modulation 100 of the first embodiment described above, and a liquid crystal layer 11 filled in the fine spaces for filling the liquid crystal in the liquid crystal alignment member for spatial light phase modulation. As shown in Fig. 15, the spatial light modulation element 101 of the present disclosure may have an alignment film 10 between the common electrode 9 and the liquid crystal alignment member for spatial light phase modulation 100. The spatial light modulation element of the present disclosure will be described below.

[0112] 1.Transparent substrate The transparent substrate constitutes the surface of the spatial light modulation element, and transmits light of a predetermined wavelength incident on the surface of the spatial light modulation element into the interior of the spatial light modulation element. The transparent substrate can be made of glass materials such as quartz glass or alkali-free glass, or existing plastic substrates such as polycarbonate, acrylic, polyimide, polystyrene, and polyolefin.

[0113] 2.Common electrode The common electrode is formed on the back surface of the transparent substrate, and can be made of a general transparent electrode, such as ITO or IZO.

[0114] 3. Liquid crystal alignment material for spatial light phase modulation The liquid crystal alignment member for spatial light phase modulation used in the spatial light modulation element of the present disclosure is similar to that described above in "A. Liquid crystal alignment member for spatial light phase modulation (first embodiment)" or "B. Liquid crystal alignment member for spatial light phase modulation (second embodiment)," so description thereof will be omitted here.

[0115] 4. Liquid crystal layer The liquid crystal layer in this embodiment is not particularly limited as long as it is a liquid crystal having a dielectric anisotropy suitable for use in a light modulation element. For example, nematic crystals with excellent response are preferred, and cyano-, fluorine-, biphenyl-, terphenyl-, and tolan-based liquid crystals are particularly useful. Specifically, a liquid crystal material having a higher dielectric constant in the long axis direction than in the short axis direction of the molecular shape (i.e., liquid crystal with positive dielectric anisotropy (Np liquid crystal)) can be used. In this case, the liquid crystal layer contains Np liquid crystal and can adopt a homogeneous alignment (horizontal alignment) in which the liquid crystal molecules are initially aligned parallel to the base and in the same direction. Furthermore, in Np liquid crystal, the liquid crystal molecules are aligned parallel to the electric field direction when a voltage is applied. Note that in a phase modulation element, a liquid crystal material (Np liquid crystal) having a higher dielectric constant in the long axis direction than in the short axis direction has a larger refractive index difference between the long axis and the short axis, making it easier to achieve a high modulation degree. Therefore, it is preferable to use the above-mentioned nematic liquid crystal, which has a higher dielectric constant in the long axis direction of the molecules.

[0116] The liquid crystal layer modulates light in response to the electric field generated by each pixel electrode. That is, when a voltage is applied to a pixel electrode by a driving means (described later), an electric field is generated between the common electrode and the pixel electrode. The orientation direction of the liquid crystal molecules changes depending on the magnitude of the electric field applied to the liquid crystal layer. When light passes through the transparent substrate and the common electrode and enters the liquid crystal layer, the light is modulated by the aligned liquid crystal regions as it passes through the liquid crystal layer, reflected by the pixel electrodes, and then modulated again by the liquid crystal layer before being extracted. At this time, the orientation direction of the liquid crystal molecules changes within the normal plane. As a result, the refractive index of the liquid crystal layer changes depending on the pixel position. The readout light incident on the liquid crystal layer is phase-modulated by this change in refractive index, reflected by the pixel electrodes, and output again from the incident surface.

[0117] 5.Alignment film In order to strengthen the restricting force for aligning the liquid crystal molecules in a certain direction and to define the pretilt angle, an alignment film may be formed on the edge surface of the liquid crystal layer on the common electrode side. Any known alignment film can be used, including, for example, a film made of a polymer material such as polyimide and having a rubbing treatment applied to the surface in contact with the liquid crystal layer, a photo-alignment film in which the polymer surface is irradiated with ultraviolet light to align the molecules, and an obliquely evaporated SiOx film.

[0118] 6. Manufacturing method The spatial light modulation element of the present disclosure can be manufactured by aligning the above-mentioned liquid crystal alignment member for spatial light phase modulation with a transparent substrate having a common electrode, fixing the periphery with a sealant or the like, and injecting liquid crystal under vacuum or dripping it under vacuum before bonding the substrates together. In the present disclosure, if necessary, an alignment member may be disposed in advance on the transparent substrate having the common electrode. Furthermore, a lattice-like wall structure as described in "A. Liquid crystal alignment member for spatial light phase modulation 4. Lattice-like wall structure" may be arranged on the transparent substrate side, and after liquid crystal is injected, this and the base portion as described in "A. Liquid crystal alignment member for spatial light phase modulation 3. Base portion" may be sealed with a sealant or the like.

[0119] D. Stereoscopic display device (first embodiment) The present disclosure provides a stereoscopic display device comprising the above-described spatial light modulation element and a driving means for driving the pixel electrodes.

[0120] 1. Spatial light modulation element The spatial light modulation element used in the stereoscopic display device of the present disclosure is similar to that described above in "C. Spatial Light Modulation Element (First Embodiment)," and therefore will not be described here.

[0121] 2. Driving means The driving means for driving the pixel electrodes controls the voltage applied to each pixel electrode according to the optical image to be output from the spatial light modulation element. For example, the device may have a first driver circuit that controls the voltage applied to each pixel row aligned in the X-axis direction and a second driver circuit that controls the voltage applied to each pixel row aligned in the Y-axis direction, and a predetermined voltage is applied between the pixel electrode of the pixel designated by both driver circuits and the common electrode. This generates an electric field in the liquid crystal layer. For example, a stereoscopic display device can be configured in which light is incident on the spatial light modulation element and the interference of the exiting light is controlled to form a three-dimensional spatial light image at any position. Alternatively, a glasses-type stereoscopic display device can be configured.

[0122] E. Liquid crystal alignment member for spatial light phase modulation (third embodiment) The liquid crystal alignment member for spatial light phase modulation (hereinafter also simply referred to as alignment member) of this embodiment will be described with reference to the drawings. Fig. 8(A) is a top view showing an example of the alignment member of this embodiment, Fig. 8(B) is a schematic cross-sectional view taken along line A-A' of Fig. 8(A), and Fig. 8(C) is a top view of the base part in Fig. 8(B). The spatial light phase modulating liquid crystal alignment member 300 of this embodiment has a silicon substrate 31, a base portion 33 provided on the surface of the silicon substrate 31 and including pixel electrodes 32 arranged in a matrix at a period of 3 μm or less, a lattice-like high-wall structure 34 made of a dielectric material and consisting of a combination of multiple linear protrusions, and a base layer 35 connected to the lattice-like high-wall structure 34, and multiple highly minute spaces 36 for filling with liquid crystal that are separated from each other by the lattice-like high-wall structure 34 and provided on the base layer 35. The lattice-like high-wall structure 34 is arranged at least between pixel regions in which adjacent pixel electrodes 32 are formed.

[0123] Furthermore, a first axis and a second axis are set so as to be orthogonal to each other in a plane parallel to the base portion 33 (in FIG. 8, the first axis is set in the X-axis direction which is the matrix direction of the pixel electrodes 32, and the second axis is set in the Y-axis direction which is orthogonal to the first axis direction in a plane parallel to the base portion 33 and is the matrix direction of the pixel electrodes 32), and further, a third axis is set in a direction perpendicular to the plane parallel to the base portion, and each of the highly minute spaces 36 for filling liquid crystal separated by the lattice-like high wall structure 34 has a spatial width in the first axis direction of W 3A , the space width in the second axial direction is W 3B , the space width in the third axial direction is W 3C In this case, W 3c W 3A and W 3B Larger than W 3c / W 3A and W 3c / W 3B At least one of the above is 1.1 or more.

[0124] In the liquid crystal alignment member for spatial light phase modulation of this embodiment, a lattice-like high wall structure is arranged at least between the pixel regions in which the adjacent pixel electrodes are formed, and the highly minute space for filling liquid crystal is divided by the lattice-like high wall structure.Therefore, when liquid crystal is filled and an optical modulation element is formed, it is possible to block electric field leakage from adjacent pixels and propagation of liquid crystal elastic force even when the pixel pitch is as narrow as 3 μm or less. At the same time, the one or more highly minute spaces for filling liquid crystal corresponding to each pixel electrode with a pixel pitch of 3 μm or less have shape anisotropy in the first and second axial directions in a plane parallel to the base, and in the third axial direction perpendicular to the plane parallel to the base. This gives the structure itself a liquid crystal alignment function, making it possible to align the liquid crystal even without an alignment film on the base. This makes it possible to easily control the liquid crystal alignment independently for each pixel.

[0125] The liquid crystal alignment member for spatial light phase modulation in this embodiment is a liquid crystal vertical alignment member for spatial light phase modulation that can align liquid crystal molecules in a direction approximately perpendicular to the plane of the base when no voltage is applied to the liquid crystal layer. The alignment member of this embodiment will be described in detail below.

[0126] The silicon substrate, pixel electrodes, and base portion in this embodiment are the same as those explained in "A. Liquid crystal alignment member for spatial light phase modulation (first embodiment)" above, and therefore explanations thereof will be omitted here.

[0127] 1. High-wall lattice structure The thickness of the lattice-like high-wall structure in this embodiment is not particularly limited, but is preferably 50 nm to 400 nm, more preferably 200 nm or less. Here, the thickness of the lattice-like high-wall structure in this embodiment refers to the thickness at the non-intersecting portions of the linear protrusions, as in FIG. 1 .

[0128] In addition, the height of the lattice-shaped high wall structure in this embodiment is equal to the space width W in the third axial direction. 3C is the space width W in the first axial direction 3A , the space width W in the second axial direction 3B There is no particular limitation as long as the height is greater than

[0129] 8, when the alignment member 300 includes a base layer 35, the height of the lattice-shaped high wall structure 34 refers to the maximum length from the first surface 35S of the base layer 35 to the top of the wall structure 34 (linear convex portion) in a direction perpendicular to the in-plane direction of the base layer 35. When the alignment member 300 does not include a base layer 35, the height of the lattice-shaped high wall structure 34 refers to the length from the first surface 31S of the silicon substrate 31 to the top of the wall structure 34 (wall portion) in a direction perpendicular to the in-plane direction of the silicon substrate 31.

[0130] The height of the lattice-like high wall structure is, for example, preferably 500 nm or more and 3000 nm or less, and particularly preferably 800 nm or more and 1500 nm or less.

[0131] 9, the lattice-shaped high-wall structure 34 can be roughly divided into high wall portions 34A provided between adjacent pixel regions and high partition portions 34B that divide one pixel region into two or more. The high wall portions and the high partition portions will be described in detail below.

[0132] (1) High wall section The high wall portion is arranged to separate adjacent pixel regions, i.e., to surround each pixel region, and other than its height, is the same as the wall portion described above in "A. Liquid crystal alignment member for spatial light phase modulation (first embodiment)."

[0133] The height of the high wall portion in this embodiment is not particularly limited, but is preferably 500 nm to 3000 nm, and more preferably 800 nm to 1500 nm. With such a height (i.e., the thickness of the liquid crystal layer), when liquid crystal is filled to form a light modulation element, it is possible to reliably block electric field leakage from adjacent pixels and propagation of liquid crystal elastic force. Furthermore, even if no alignment film is present on the base, it is possible to align the liquid crystal. Furthermore, a highly minute space for filling liquid crystal with sufficient shape anisotropy with respect to a plane parallel to the base is obtained. Furthermore, phase modulation with a sufficient width for the ideal modulation amount of 2π is possible.

[0134] (2) High partition section The high partition section divides the pixel region into two or more sections, and is similar to the partition section described above in "A. Liquid crystal alignment member for spatial light phase modulation (first embodiment)" except for the height. The height of the high partition is not particularly limited, but is preferably 500 nm to 3000 nm, more preferably 500 nm to 1500 nm, which is sufficient to provide the liquid crystal alignment function to the highly minute spaces for filling the liquid crystal.

[0135] In this embodiment, the heights of the high wall portion and the high partition portion may be the same, or as shown in FIG. 9, the heights of the high wall portion 34A and the high partition portion 34B may be different. When the heights of the high partitions and the high wall portions are different, the height of the high partitions is usually smaller than the height of the high wall portions. In this case, when the height of the high wall portions is 100, the height of the high partitions is preferably 50 or more, and particularly preferably 80 or more. If the height of the high partitions is smaller than the above range, the liquid crystal alignment function may become insufficient.

[0136] As shown in Fig. 10, the lattice-shaped high-wall structure in this embodiment preferably has wall grooves 37 extending in the third axis direction on at least one of four surfaces facing each of the highly-fine spaces 36 for filling liquid crystal. In Fig. 10, three wall grooves 37 are formed on each of two opposing surfaces of the four surfaces facing each of the highly-fine spaces 36 for filling liquid crystal. The number of wall grooves per surface is not particularly limited, but is preferably two or more. By having such a shape-anisotropic, highly minute space for filling liquid crystal facing a wall having a wall groove extending in the long axis direction (third axis direction), it becomes possible to control the orientation of the liquid crystal more precisely.

[0137] The shape of the wall groove in a plan view of the alignment member, i.e., the cross-sectional shape of the wall groove, is not particularly limited, and examples thereof include a rectangle, a triangle, etc. The corners of the wall groove may have a curvature.

[0138] The specific depth (D2) of the wall groove is not particularly limited, but is preferably, for example, 100 nm or more. A value above this value is sufficient to provide high liquid crystal alignment function to the highly minute spaces for filling liquid crystal. On the other hand, it is, for example, 500 nm or less, and preferably 400 nm or less. If it is below this value, the grooves are easy to form and the groove shape can be stably formed. Here, the depth (D2) of the wall groove refers to the maximum depth of the groove, as shown in Figure 10.

[0139] The width (G2) of the wall groove is not particularly limited, but is preferably 50 nm or more, for example, and is preferably 70 nm or less, for example.

[0140] The wall grooves in this embodiment are formed in a lattice-like high-wall structure extending in the third axis direction of the microscopic space for filling liquid crystal, and are usually provided linearly. The wall grooves are preferably formed continuously, but may be interrupted along the way.

[0141] 2.Highly detailed space for liquid crystal filling In this embodiment, the multiple microscopic spaces for filling liquid crystal are separated from one another by a lattice-like high wall structure, i.e., each microscopic space is a space surrounded by linear convex portions. The microscopic spaces for filling liquid crystal have anisotropy in shape in the plane of the base (first and second axial directions) and in the third axial direction perpendicular to the plane parallel to the base, to the extent that the liquid crystal is aligned.

[0142] That is, a first axis and a second axis are set so as to be perpendicular to each other on a plane parallel to the base portion, and a third axis is set in a direction perpendicular to the plane parallel to the base portion, and the spatial width in the first axial direction of the highly minute space for filling liquid crystal is defined as W 3A , the space width in the second axial direction is W 3B , the space width in the third axial direction is W 3C In this case, W 3c W 3A and W 3B Larger than W 3c / W 3A and W 3c / W 3B At least one of the following is 1.1 or greater. 3c / W 3A and W 3c / W 3B At least one of these is preferably 1.3 or more, and particularly preferably 1.5 or more. The first axis and the second axis may be set so that, in a plane parallel to the base, one or both of them coincides with the matrix direction of pixel electrodes arranged in a matrix.

[0143] The cross-sectional shape (XZ plane and YZ plane) of such a highly minute space for filling with liquid crystal is not particularly limited, but examples thereof include a shape having a long side (major axis) and a short side (minor axis), such as a rectangle or a parallelogram. Such an anisotropic space makes it possible to control the orientation of the liquid crystal to be filled.

[0144] Space width W in the first axial direction 3A and the second axial space width W 3B The values ​​of may be the same or different. 3A and the second axial space width W 3B If the values ​​of are the same, the space width W in the third axial direction 3C is W 3C >W 3A =W 3B In this case, the space width W in the first axial direction is 3A and the second axial space width W 3B The space width W in the third axial direction 3C The ratio of the lengths of (W 3C / W 3A and W 3C / W 3B ) is approximately 1.1 or more, preferably 1.3 or more, and particularly preferably 1.5 or more. Within this range, the shape anisotropy is sufficient in the direction in the plane of the base (the first axis direction or the second axis direction) and in the third axis direction perpendicular to the plane parallel to the base, so that it is possible to reliably control the orientation of the liquid crystal by utilizing the elasticity of the liquid crystal to be filled.

[0145] In this embodiment, when the pixel electrodes are arranged in a one-dimensional matrix in the X-axis direction only, either the first axis direction or the second axis direction may coincide with the X-axis direction, which is the arrangement direction of the pixel electrodes.

[0146] Furthermore, when the pixel electrodes are arranged in a two-dimensional matrix in the X-axis direction and the Y-axis direction perpendicular to the X-axis direction, it is preferable that the first axis direction and the second axis direction coincide with the X-axis direction and the Y-axis direction, which are the arrangement directions of the pixel electrodes. That is, each of the highly minute spaces for filling liquid crystal may or may not have anisotropy in shape in the X-axis direction and the Y-axis direction, which are the arrangement directions of the pixel electrodes (XY plane), but has anisotropy in shape in the X-axis direction and the Z-axis direction (XZ plane) and in the Y-axis direction and the Z-axis direction (YZ plane).

[0147] 3. Base layer In this embodiment, the bottom of the highly precise space for filling liquid crystal may have a base layer 35, as shown in Figures 8 to 10, or the base layer may be removed to expose the pixel electrode 32. The base layer 35 is usually made of a dielectric material formed in the process of forming the lattice-shaped high-wall structure. The base layer 35 is connected to the lattice-shaped high-wall structure 34 and, together with the lattice-shaped high-wall structure 34, surrounds the highly precise space 36 for filling liquid crystal.

[0148] Furthermore, the base layer in this embodiment is preferably a base layer having a different thickness at one end and the other end in the second axial direction of the highly minute space for filling liquid crystal. By using a base layer having a different thickness, when a voltage is applied, a pretilt angle is imparted and the liquid crystal can be aligned in a direction substantially parallel to the base.

[0149] The base layer preferably has at least one of an inclined portion and a stepped portion in the second axial direction of the highly minute space for filling liquid crystal, so that the thickness at one end and the other end differs. In FIG. 11, the base layer 35 has an inclined portion P that is linearly inclined from one end E3 to the other end E4 in the second axial direction of the highly minute space 36 for filling liquid crystal. In FIG. 12, the base layer 35 has a curved inclined portion P at one end E3 of the highly minute space 36 for filling liquid crystal in the second axial direction. In FIG. 13, the base layer 35 has a sloped portion P extending from one end E1 to the other end E2 in the second axial direction of the highly minute space 36 for filling liquid crystal. In FIG. 14, the base layer 35 has a step portion Q from one end E3 to the other end E4 in the second axial direction of the highly minute space 36 for filling liquid crystal.

[0150] The difference in thickness between one end (E3) and the other end (E4) in the first axial direction or the second axial direction of the highly minute space for filling with liquid crystal is preferably, for example, 200 nm or more. If it is equal to or greater than this value, the thickness is sufficient to impart a pretilt angle to the liquid crystal molecules, making it possible to control the alignment of the liquid crystal with greater precision. On the other hand, it is, for example, 300 nm or less, and preferably 240 nm or less. If it is equal to or less than this value, a sufficiently large minute space for filling with liquid crystal can be secured.

[0151] The inclined portion may be provided over the entire area from one end E3 to the other end E4 in the first axial direction or the second axial direction of the highly fine space 36 for filling liquid crystal, or may be provided over a partial area.

[0152] The inclination angle of the inclined portion may be, for example, 3 degrees or more. Alternatively, it may be, for example, 20 degrees or less, or 16 degrees or less. Within the above range, a pretilt angle is imparted to the liquid crystal molecules when a voltage is applied, thereby restricting the rotation direction of the liquid crystal molecules, thereby enabling more precise control of the alignment of the liquid crystal. In this embodiment, the inclination angle (θ) of the inclined portion is the angle between the surface of the base layer and the plane of the base portion.

[0153] There may be one or more step portions from one end E3 to the other end E4 in the second axial direction of the highly-fine space for filling liquid crystal 36. The step portion may be provided over the entire area or only in part.

[0154] F. Spatial Light Modulation Element (Second Embodiment) The present disclosure provides a reflective phase modulation element that reflects incident light while controlling the phase of the incident light and the reflected light, the spatial light modulation element having a transparent substrate, a common electrode arranged on one side of the transparent substrate, a liquid crystal alignment member for spatial light phase modulation of the third embodiment described above that is arranged on the side of the common electrode opposite the transparent substrate, and a liquid crystal layer filled in the highly fine spaces for liquid crystal filling in the liquid crystal alignment member for spatial light phase modulation.

[0155] In the spatial light modulation element of this embodiment, the liquid crystal molecules filled in the highly minute spaces for liquid crystal filling are oriented in a direction substantially perpendicular to the base portion when no voltage is applied. The spatial light modulation element of this embodiment will be described in detail below.

[0156] The transparent substrate and the common electrode are the same as those explained above in "C. Spatial Light Modulation Element (First Embodiment)", and therefore will not be explained here.

[0157] 1. Liquid crystal alignment material for spatial light phase modulation The liquid crystal alignment member for spatial light phase modulation used in the spatial light modulation element of this embodiment is the same as that described above in "E. Liquid crystal alignment member for spatial light phase modulation (third embodiment)", so description thereof will be omitted here.

[0158] 2. Liquid crystal layer The liquid crystal layer in this embodiment is not particularly limited as long as it is a liquid crystal having a dielectric anisotropy suitable for use in a light modulation element. For example, a nematic crystal with excellent response is preferable, and cyano-based, fluorine-based, biphenyl-based, terphenyl-based, and tolan-based liquid crystals are particularly useful. Specifically, a liquid crystal material having a higher dielectric constant in the minor axis direction than in the major axis of the molecular shape (i.e., liquid crystal with negative dielectric anisotropy (Nn liquid crystal)) can be used. In this case, the liquid crystal layer contains Nn liquid crystal and can adopt a homeotropic alignment (vertical) in which the liquid crystal molecules are initially aligned perpendicular to the base and in the same direction. Furthermore, in Nn liquid crystal, the liquid crystal molecules are aligned perpendicular to the electric field direction when a voltage is applied.

[0159] Other configurations and manufacturing methods of the spatial light modulation element of this embodiment are the same as those explained above in "E. Liquid crystal alignment member for spatial light phase modulation (third embodiment)", so explanations thereof will be omitted here.

[0160] G. Stereoscopic display device (second embodiment) In this embodiment, a stereoscopic display device is provided that is characterized by comprising the spatial light modulation element of the second embodiment described above and a driving means for driving the pixel electrodes.

[0161] 1. Spatial light modulation element The spatial light modulation element used in the stereoscopic display device of this embodiment is similar to that described above in "F. Spatial Light Modulation Element (Second Embodiment)," and therefore will not be described here.

[0162] 2. Driving means The driving means used in the stereoscopic display device of this embodiment is the same as that explained in "D. Stereoscopic display device (first embodiment)" above, and therefore will not be explained here.

[0163] The present disclosure is not limited to the above-described embodiments. The above-described embodiments are merely examples, and any configuration that is substantially identical to the technical idea described in the claims of the present disclosure and that provides similar effects is included within the technical scope of the present disclosure. [Example]

[0164] The present disclosure will be described in more detail below with reference to examples and comparative examples.

[0165] Example 1 An acrylic resin layer made of a photocurable resin, mainly made of acrylate, was formed on a glass substrate, and nanoimprint processing was performed to produce an evaluation sample of the alignment member of the first embodiment, which has a grooved base layer and a lattice-like wall structure with the cross-sectional shape shown in Figure 16. A top view is shown in Figure 18(A). The thickness of the lattice-like wall structure is 190 nm, the height of the lattice-like wall structure is 1000 nm, and the spatial width (W) in the minor axis (short side) direction of the fine spaces for filling liquid crystal is 190 nm. A ) is 310 nm, and the spatial width in the long axis (long side) direction (W B ) was 830 nm. The base layer had two base grooves along the long axis direction (second axis direction), each 94 nm wide ((b) in Figure 16) and 100 nm deep. The distance between adjacent base grooves ((a) in Figure 16) was 123 nm.

[0166] Examples 2 to 6 As shown in Table 1 below, the space width (W A ), space width in the long axis (long side) direction (W B An evaluation sample for an alignment member having a base layer with a base groove and a lattice-like wall structure was manufactured in the same manner as in Example 1, except that the thickness, number of base grooves, and distance (a) between adjacent base grooves were changed and the base grooves were formed so as to resemble the top view shown in Figures 18(A) and (B).

[0167] (Comparative Example 1) An evaluation sample of the alignment member of the first embodiment having a base layer and a lattice-like wall structure was produced in the same manner as in Example 1, except that no base grooves were formed in the base layer.

[0168] (Comparative Examples 2 to 4) As shown in Table 1 below, the space width (W A ), space width in the long axis (long side) direction (W BAn evaluation sample of the alignment member of the first embodiment having a grooved base layer and a lattice-like wall structure was manufactured in the same manner as in Example 1, except that the number of base grooves and the distance between the base grooves (a) shown in Table 1 below were changed along the short side direction (first axis direction) of the microspace for filling liquid crystal, and the base grooves were formed so as to appear as shown in Figures 18(C) to (E) when viewed from above.

[0169] [evaluation] (No alignment film) A liquid crystal material was filled into the minute spaces for liquid crystal filling produced in Examples 1 to 6 and Comparative Examples 1 to 4, and a common electrode made of IZO and a polycarbonate substrate were laminated with a sealant around the periphery so that the polycarbonate substrate was the outermost surface, to produce a spatial light modulation element evaluation sample. The liquid crystal material used was a nematic liquid crystal, cyanobiphenyl-based E7 (manufactured by Merck).

[0170] Two polarizing plates were arranged in a crossed Nicol state with a 90° offset, and a spatial light modulation element using the alignment member produced in Example 1 was placed between these polarizing plates, and the light and dark state was observed using a 100x objective lens. Figure 17(a) shows the results of observation under a polarizing microscope when the angular difference between the Y-axis (long axis) direction and the polarization direction of the polarizing plate was 45°, and Figure 17(b) shows the results of observation under a polarizing microscope when the angular difference between the Y-axis direction and the polarization direction of the polarizing plate was 0°.

[0171] In Example 1, when the angular difference between the Y-axis direction and the polarization direction of the polarizer was 45°, a bright state was obtained (Figure 17(a)), and when the angular difference between the Y-axis direction and the polarization direction of the polarizer was 0°, an almost completely black state was obtained (Figure 17(b)).

[0172] In addition, for Examples 1 to 6 and Comparative Examples 1 to 4, the average transmittance (T 45° ) and the average transmittance in the dark state when the angle difference is 0° (T 0° The ratio (R) of the average transmittance to the average transmittance was calculated using the following formula (average transmittance ratio) and used as an evaluation index. R=(T 45° ) / (T 0° ) If the liquid crystal is uniformly oriented, the polarization axis rotates as polarized light passes through the liquid crystal, and the light is transmitted through the polarizers arranged in a crossed Nicol configuration. In other words, the higher the average transmittance ratio R, the more uniformly the liquid crystal is oriented in the intended direction. The results are shown in Table 1.

[0173] [evaluation] (with alignment film) A sample for evaluating a spatial light modulation element was produced in the same manner as above (without alignment film), except that a polycarbonate substrate with an alignment film formed thereon was used instead of the polycarbonate substrate used above (without alignment film) and the polycarbonate substrate was positioned as the outermost surface, and the average transmittance ratio was calculated. A polyimide-based rubbed alignment film AL1254 (manufactured by JSR Corporation) was used as the alignment film. The results are shown in Table 2.

[0174] No alignment film

[0175] [Table 1]

[0176] With alignment film

[0177] [Table 2]

[0178] From the results in Tables 1 and 2, it was confirmed that, in both cases with and without an alignment film, Examples 1 to 6 had higher average transmittance ratios than Comparative Examples 1 to 4, and that the base layer in which base grooves were formed along the long axis direction enabled the alignment of the liquid crystal to be more uniform. [Explanation of symbols]

[0179] 1. Silicon substrate 2...Pixel electrode 3... Base 4... Lattice wall structure 5... Base layer 6... Microspace for filling liquid crystal 100 ...liquid crystal alignment member for spatial light phase modulation

Claims

1. a base portion including a silicon substrate and pixel electrodes provided on a surface of the silicon substrate and arranged in a matrix with a period of 3 μm or less; a lattice-shaped wall structure made of a dielectric material and including a combination of a plurality of linear protrusions, the wall structure being disposed on the base; a base layer made of the dielectric material and connected to the lattice-like wall structure; a plurality of microscopic spaces for filling liquid crystal, the microscopic spaces being separated from one another by the lattice-like wall structure and provided on the base layer, for filling with liquid crystal; the lattice-shaped wall structure is disposed at least between adjacent pixel regions in which the pixel electrodes are formed, A first axis and a second axis are taken so as to be perpendicular to each other on a plane parallel to the base portion, the minute spaces for filling a liquid crystal have shape anisotropy in a first axis direction and a second axis direction; The space width in the first axial direction is W A , the space width in the second axial direction is W B In this case, W A W B is smaller than A liquid crystal alignment member for spatial light phase modulation, characterized in that the base layer is a grooved base layer in which base grooves extending in the second axial direction of the microspaces for liquid crystal filling are formed.

2. 2. The liquid crystal alignment member for spatial light phase modulation according to claim 1, wherein two or more base grooves are provided in the base layer corresponding to each of the minute spaces for filling the liquid crystal.

3. A liquid crystal alignment member for spatial light phase modulation as described in claim 1 or claim 2, wherein the depth of the base groove is 100 nm or more and 500 nm or less.

4. a base portion including a silicon substrate and pixel electrodes provided on a surface of the silicon substrate and arranged in a matrix with a period of 3 μm or less; a lattice-shaped wall structure made of a dielectric material and including a combination of a plurality of linear protrusions, the wall structure being disposed on the base; a base layer made of the dielectric material and connected to the lattice-like wall structure; a plurality of microscopic spaces for filling liquid crystal, the microscopic spaces being separated from one another by the lattice-like wall structure and provided on the base layer, for filling with liquid crystal; the lattice-shaped wall structure is disposed at least between adjacent pixel regions in which the pixel electrodes are formed, A first axis and a second axis are taken so as to be perpendicular to each other on a plane parallel to the base portion, the minute spaces for filling a liquid crystal have shape anisotropy in a first axis direction and a second axis direction; The space width in the first axial direction is W A , the space width in the second axial direction is W B In this case, W A W B is smaller than A liquid crystal alignment member for spatial light phase modulation, characterized in that the base layer is a differential thickness base layer having different thicknesses at one end and the other end in the second axial direction of the microspace for filling with liquid crystal.

5. 5. The liquid crystal alignment member for spatial light phase modulation according to claim 4, wherein the thickness-varying base layer has at least one of an inclined portion and a stepped portion in the second axial direction of the minute space for filling with liquid crystal.

6. The W A 6. The liquid crystal alignment member for spatial light phase modulation according to claim 1, wherein the thickness is 3 μm or less.

7. The W A The W B The ratio (W B / W A 7. The liquid crystal alignment member for spatial light phase modulation according to claim 1, wherein the number of the first and second polarizing elements is 2 or more.

8. A reflective spatial light phase modulator that reflects incident light and controls the phases of the incident light and the reflected light, A spatial light modulation element characterized by having a transparent substrate, a common electrode arranged on one side of the transparent substrate, a liquid crystal alignment member for spatial light phase modulation according to any one of claims 1 to 7 arranged on the side of the common electrode opposite the transparent substrate, and a liquid crystal layer filled in the fine spaces for liquid crystal filling in the liquid crystal alignment member for spatial light phase modulation.

9. 9. The spatial light modulation element according to claim 8, wherein an alignment film is disposed between the common electrode and the spatial light phase modulation liquid crystal alignment member.

10. A stereoscopic display device comprising the spatial light modulation element according to claim 8 or claim 9 and a driving means for driving the pixel electrodes.

11. a base portion including a silicon substrate and pixel electrodes provided on a surface of the silicon substrate and arranged in a matrix with a period of 3 μm or less; a lattice-shaped high-wall structure made of a dielectric material and including a combination of a plurality of linear protrusions, the high-wall structure being disposed on the base portion; a plurality of highly minute spaces for filling liquid crystal, which spaces are separated from one another by the lattice-like high wall structure, and for filling liquid crystal therein; the lattice-shaped high wall structure is disposed at least between adjacent pixel regions in which the pixel electrodes are formed, A first axis and a second axis are taken so as to be orthogonal to each other on a plane parallel to the base portion, and a third axis is taken in a direction perpendicular to the plane parallel to the base portion, The space width in the first axial direction in the highly minute space for filling the liquid crystal is W 3A , the space width in the second axial direction is W 3B , the space width in the third axial direction is W 3C In this case, W 3c W 3A and W 3B Larger than W 3c / W 3A and W 3c / W 3B A liquid crystal alignment member for spatial light phase modulation, wherein at least one of the following is 1.1 or more:

12. The W 3c / W 3A and the W 3c / W 3B 12. The liquid crystal alignment member for spatial light phase modulation according to claim 11, wherein at least one of the following is 1.3 or more.

13. The W 3C The liquid crystal alignment member for spatial light phase modulation according to claim 11 or 12, wherein the wavelength of the light is 800 nm or more.

14. A liquid crystal alignment member for spatial light phase modulation as described in any one of claims 11 to 13, wherein the lattice-shaped high wall structure has a wall groove extending in the third axis direction on at least one of four surfaces facing each of the highly fine spaces for filling liquid crystal.

15. the liquid crystal display further comprises a base layer connected to the lattice-shaped high wall structure and surrounding the highly minute spaces for filling the liquid crystal together with the lattice-shaped high wall structure; A liquid crystal alignment member for spatial light phase modulation as described in any one of claims 11 to 14, characterized in that the base layer is made of the dielectric material and has a different thickness at one end and the other end in the first axial direction or the second axial direction of the highly fine space for filling with liquid crystal.

16. The liquid crystal alignment member for spatial light phase modulation according to claim 15, wherein the base layer has at least one of an inclined portion and a stepped portion in the first axial direction or the second axial direction of the highly minute space for filling the liquid crystal.

17. A reflective spatial light phase modulator that reflects incident light and controls the phases of the incident light and the reflected light, A spatial light modulation element comprising: a transparent substrate; a common electrode arranged on one side of the transparent substrate; a liquid crystal alignment member for spatial light phase modulation according to any one of claims 11 to 16, which is arranged on the side of the common electrode opposite the transparent substrate; and a liquid crystal layer filled in the highly minute spaces for liquid crystal filling in the liquid crystal alignment member for spatial light phase modulation.

18. A stereoscopic display device comprising the spatial light modulation element according to claim 17 and a driving means for driving the pixel electrodes.

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