Backlight system and display unit
The PBP diffraction grating system addresses low light utilization in backlight systems by controlling light diffraction with a polymerizable liquid crystal retardation layer and λ/4 plate, improving efficiency and reducing side lobe light emission.
Patent Information
- Application Number
- JP2024053680
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-28
- Publication Date
- 2025-10-09
AI Technical Summary
Conventional backlight systems suffer from low light utilization efficiency due to the emission of unnecessary side lobe light and difficulties in forming reflective layers, leading to increased reflections and decreased efficiency.
The implementation of a Pancharatnam-Berry Phase (PBP) diffraction grating with a retardation layer containing a cured polymerizable liquid crystal, which rotates its slow axis periodically, combined with a λ/4 plate and optionally a diffusion sheet or refractive optical element, to control light diffraction and enhance light utilization.
The PBP diffraction grating system significantly improves light utilization efficiency by bending light uniformly towards the front, reducing unnecessary side lobe light and increasing the amount of light emitted, thereby enhancing display quality and efficiency.
Smart Images

Figure 2025151995000001_ABST
Abstract
Description
[Technical Field]
[0001] The following disclosure relates to backlight systems and display devices. [Background technology]
[0002] The mainstream backlight structure used in recent LCD displays is the edge type, in which light emitted from LED light sources placed on the side is guided by a light guide plate and then collected toward the front by a diffusion sheet and a prism sheet.
[0003] Patent Document 1 discloses an optical sheet for a backlight, in which a diffusion sheet and a prism sheet are arranged in this order from the light source side. In this optical sheet, the exit surface of the diffusion sheet and the entrance surface of the prism sheet are bonded together via a reflective layer having openings, which prevents light with a large incident angle from entering the prism sheet. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-210798 Summary of the Invention [Problem to be solved by the invention]
[0005] In conventional backlight systems, when a prism sheet is used, a portion of the light incident on the prism sheet is emitted as unnecessary light called side lobe light, resulting in a decrease in light utilization efficiency.
[0006] Furthermore, the optical sheet for backlights described in Patent Document 1 is difficult to form a reflective layer on, and if light does not enter the openings between the reflective layers, the number of reflections increases, resulting in a decrease in light utilization efficiency.
[0007] The present invention has been made in view of the above-mentioned current situation, and has as its object to provide a backlight system with excellent light utilization efficiency, and a display device using the backlight system. [Means for solving the problem]
[0008] (1) One embodiment of the present invention is a backlight system comprising a backlight, a Pancharatnam Berry phase diffraction grating, and a first λ / 4 plate, in that order, and which emits light that is emitted from the backlight and has passed through the Pancharatnam Berry phase diffraction grating and the first λ / 4 plate.
[0009] (2) Furthermore, in addition to the configuration of (1), one embodiment of the present invention provides a backlight system in which the Pancharatnam-Berry phase diffraction grating includes a retardation layer containing a cured polymerizable liquid crystal, a slow axis of the polymerizable liquid crystal periodically rotates within the plane of the retardation layer in a first direction from one end of the retardation layer to the other end of the retardation layer, and a molecular orientation pattern Φ(x) [°], which is an orientation direction of the polymerizable liquid crystal arranged at a position away from a position where the slow axis of the polymerizable liquid crystal is parallel to the first direction by a distance x [μm] in the first direction, satisfies the following formula (1):
number
[0010] (3) Furthermore, in one embodiment of the present invention, in addition to the configuration of (1) or (2) above, the backlight system further comprises a diffusion sheet between the backlight and the Pancharatnam Berry phase diffraction grating.
[0011] (4) Furthermore, in one embodiment of the present invention, in addition to the configuration of (1), (2), or (3) above, the backlight system further comprises a refractive optical element on the opposite side of the first λ / 4 plate from the Pancharatnam-Berry phase diffraction grating.
[0012] (5) Furthermore, in addition to the configuration of (4), one embodiment of the present invention is a backlight system, wherein the refractive optical element is a lenticular lens or a prism sheet.
[0013] (6) Furthermore, in addition to the configuration of (1), (2), (3), (4), or (5) above, an embodiment of the present invention is a backlight system further comprising a second λ / 4 plate between the backlight and the Pancharatnam-Berry phase diffraction grating, and the light emitted from the backlight is linearly polarized.
[0014] (7) Furthermore, in addition to the configuration of (1), (2), (3), (4), (5), or (6), another embodiment of the present invention is a backlight system, wherein the Pancharatnam-Berry phase diffraction grating has, in a planar view, a plurality of regions having different orientation pitches, the plurality of regions including a first region facing a first backlight region in the backlight and a second region facing a second backlight region in the backlight that is farther from a light source of the backlight than the first backlight region, and the orientation pitch in the second region is smaller than the orientation pitch in the first region.
[0015] (8) Also, one embodiment of the present invention is a display device comprising the backlight system of (1), (2), (3), (4), (5), (6), or (7) above, and a liquid crystal panel that displays an image using light emitted from the backlight system.
[0016] (9) Furthermore, in addition to the configuration of (7), one embodiment of the present invention is a display device further comprising a reflective polarizing plate between the backlight system and the liquid crystal panel. [Effects of the Invention]
[0017] According to the present invention, it is possible to provide a backlight system with excellent light utilization efficiency, and a display device using the backlight system. [Brief explanation of the drawings]
[0018] [Figure 1] FIG. 1 is a schematic diagram showing the configuration of a conventional backlight system. [Figure 2] FIG. 10 is a cross-sectional view of a prism sheet for explaining side lobe light. [Figure 3] 1 is a schematic diagram showing the configuration of a backlight system and a display device according to Embodiment 1. FIG. [Figure 4] FIG. 1 is a cross-sectional view schematically showing the configuration of a PBP diffraction grating. [Figure 5] FIG. 1 is a plan view schematically showing the configuration of a PBP diffraction grating. [Figure 6] This is a photo of a PBP diffraction grating taken with a polarizing microscope. [Figure 7] 1 is a schematic diagram illustrating the function of a PBP diffraction grating when circularly polarized light is incident thereon. [Figure 8] 1 is a schematic diagram illustrating the diffraction angle θ of a PBP diffraction grating and the light intensity distribution U(θ) on a screen placed on the light exit side of the PBP diffraction grating. FIG. [Figure 9] 1 is a graph showing the molecular orientation pattern Φ(x) of a PBP diffraction grating of a reference example. [Figure 10] 10 is a graph showing the light intensity distribution U(θ) of the PBP diffraction grating of the reference example. [Figure 11] 10 is a graph showing the molecular orientation pattern Φ(x) of the PBP diffraction grating of the second embodiment. [Figure 12] 10 is a graph showing the light intensity distribution U(θ) of the PBP diffraction grating of the second embodiment. [Figure 13] 10A and 10B are schematic diagrams illustrating the state of light transmitted through the PBP diffraction gratings of the second embodiment and the reference example. [Figure 14] FIG. 10 is a schematic diagram showing the configuration of a backlight system and a display device according to a third embodiment. [Figure 15A] FIG. 10 is a schematic diagram showing the configuration of a backlight system and a display device according to a fourth embodiment. [Figure 15B] FIG. 10 is a cross-sectional view schematically showing the structure of a prism sheet included in a backlight system according to a fourth embodiment. [Figure 16A] FIG. 2 is a schematic diagram for explaining the characteristics of a diffraction element. [Figure 16B] FIG. 2 is a schematic diagram for explaining the characteristics of a refractive element. [Figure 17] FIG. 10 is a schematic diagram showing the configuration of a backlight system and a display device according to a fifth embodiment. [Figure 18] 1 is a schematic diagram showing a head-mounted display including a display panel that emits display light uniformly in the normal direction within a plane. [Figure 19] 1 is a schematic diagram showing a head-mounted display having a display panel that emits display light obliquely at both ends. [Figure 20] FIG. 10 is a schematic diagram showing the configuration of a backlight system and a display device according to a sixth embodiment. [Figure 21] 4A and 4B are diagrams illustrating a method for measuring the angle of emitted light in the first embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0019] (Summary of the Disclosure) Fig. 1 is a schematic diagram showing the configuration of a conventional backlight system. Fig. 2 is a cross-sectional view of a prism sheet for explaining side lobe light. In this disclosure, arrows in the figures indicate the traveling direction of light rays. In this disclosure, angles represent values when the normal direction to the display surface is defined as 0°, and correspond to the magnitude of the inclination from the normal direction to the display surface.
[0020] As shown in FIG. 1, a conventional backlight system includes a diffusion sheet 11 and prism sheets 12a and 12b, whose ridgelines intersect at right angles with each other, stacked on a backlight 100. These sheets adjust the angle of the light beam emitted from the backlight system, which indicates its maximum intensity (also called the "peak angle"), to 0° (the normal direction of the display surface). However, as shown in FIG. 2, the direction of the light beam changes depending on the angle and position at which the light strikes the prism sheet 12, so not all of the light can be uniformly used as effective light. Light emitted as side lobes (side lobe light) is emitted without being reused. In the configuration of FIG. 1, the two prism sheets 12a and 12b each generate side lobe light, which means that conventional backlight systems have issues with light utilization efficiency.
[0021] The backlight system of the present disclosure uses a Pancharatnam-Berry Phase (PBP) diffraction grating instead of the prism sheet. A PBP diffraction grating is an optical film fabricated by UV-curing polymerizable liquid crystals. Its diffraction angle can be controlled by changing the rotation period of the liquid crystal orientation. By bending incident light toward the front, the PBP diffraction grating can increase the amount of light emitted from the front of the backlight system. Furthermore, because the light can be bent uniformly within the plane, unnecessary light, such as side lobe light, is not generated. These factors enable the backlight system of the present disclosure to achieve high light utilization efficiency without the need for complex stacking of optical films.
[0022] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. Note that the same reference numerals are used in different drawings to designate the same parts or parts having similar functions, and repeated description thereof will be omitted as appropriate.
[0023] (Embodiment 1) The configurations of the backlight system of embodiment 1 and a display device including the backlight system will be described with reference to Figures 3 to 7. Figure 3 is a schematic diagram showing the configurations of the backlight system and display device according to embodiment 1. Figure 4 is a cross-sectional view showing a schematic configuration of a PBP diffraction grating. Figure 5 is a plan view showing a schematic configuration of a PBP diffraction grating. Figure 6 is a photograph of a PBP diffraction grating taken with a polarizing microscope. Figure 7 is a schematic diagram explaining the function of a PBP diffraction grating when circularly polarized light is incident thereon.
[0024] As shown in Fig. 3, the backlight system of the first embodiment includes a backlight 100, a Pancharatnam-Berry Phase (PBP) diffraction grating 150, and a first λ / 4 plate 180, arranged in this order. The display device of the first embodiment includes a reflective polarizing plate 200 and a liquid crystal panel (LCD) 300, arranged in this order in front of the backlight system. The liquid crystal panel 300 displays an image using light emitted from the backlight system.
[0025] The backlight 100 is not particularly limited, and may be, for example, a conventionally known backlight used in the technical field of liquid crystal display devices, etc. The backlight 100 is preferably an edge-type backlight including a light source such as an LED and a light guide plate.
[0026] As shown in FIG. 4, the PBP diffraction grating 150 is an optical film having a retardation layer 158 formed by applying an alignment film 154 provided on a base material 152 made of a glass substrate, a PET film, or the like to an alignment film 154, then applying an alignment treatment to the alignment film 154, and photo-curing the polymerizable liquid crystal 156 with ultraviolet light.
[0027] The PBP diffraction grating 150 can be fabricated by the methods described in, for example, International Publication No. 2019 / 189818 and JP-A-2008-532085.
[0028] As shown in FIG. 5, in a planar view, the orientation direction of the cured polymerizable liquid crystal 156 periodically rotates within the plane of the retardation layer 158 in a first direction (the x-axis direction in FIG. 5) from one end of the retardation layer 158 to the other end, but does not periodically rotate in the y-axis direction perpendicular to the x-axis direction. Here, the long axis of the cured polymerizable liquid crystal 156 is the slow axis. That is, in the retardation layer 158 provided in the PBP diffraction grating 150, the direction of the slow axis derived from the cured polymerizable liquid crystal 156 changes while continuously rotating along the x-axis direction within the plane. As shown in FIG. 6, the direction of the slow axis can be confirmed using a polarizing microscope or an Axoscan (AxoMetrics). As shown in FIG. 7, the PBP diffraction grating 150 diffracts incident right-handed circularly polarized light (RCP) in the +θ direction and left-handed circularly polarized light (LCP) in the −θ direction. In other words, it is a polarization-dependent diffraction element in which the diffraction direction reverses depending on the type of polarization.
[0029] The PBP diffraction grating 150 can control the diffraction angle of incident light by changing the rotation period of the liquid crystal orientation (hereinafter also referred to as the "orientation pitch"). The orientation pitch may be varied within the plane of the PBP diffraction grating 150. This allows multiple regions with different diffraction angles to be formed within the plane of the PBP diffraction grating 150, depending on the incidence angle distribution of the incident light.
[0030] The alignment film 154 has a patterned in-plane alignment regulating force. Specifically, the alignment film 154 has an alignment regulating force that aligns the polymerizable liquid crystal 156 so that the slow axis of the retardation layer 158 rotates periodically in-plane.
[0031] Materials that are common in the field of liquid crystal panels, such as polymers having polyimide in the main chain, polymers having polyamic acid in the main chain, and polymers having polysiloxane in the main chain, can be used as the material for the alignment film 154. The alignment film 154 can be formed by applying an alignment film material onto the substrate 152. The application method is not particularly limited, and for example, flexographic printing, inkjet application, etc. can be used.
[0032] The type of alignment film 154 is not particularly limited, and may be a rubbed alignment film that has been subjected to a rubbing treatment as an alignment treatment, or a photo-alignment film that has photo-functional groups and has been subjected to a photo-alignment treatment as an alignment treatment. However, from the viewpoint of patterning the in-plane alignment control force into a complex pattern, a photo-alignment film is preferable.
[0033] The retardation layer 158 is obtained by polymerizing polymerizable liquid crystal 156. The type of polymerizable liquid crystal 156 is not particularly limited, and conventionally known polymerizable liquid crystal compounds can be used, with those that polymerize and harden when irradiated with ultraviolet (UV) light being preferred. Examples of the polymerizable liquid crystal 156 include polymers having a side chain with a structure that combines a mesogen group such as a biphenyl group, a terphenyl group, a naphthalene group, a phenylbenzoate group, an azobenzene group, or a derivative thereof, with a photoreactive group such as a cinnamoyl group, a chalcone group, a cinnamylidene group, a β-(2-phenyl)acryloyl group, a cinnamic acid group, or a derivative thereof, and having a structure such as acrylate, methacrylate, maleimide, N-phenylmaleimide, or siloxane in the main chain.
[0034] The polymerizable liquid crystal 156 may be a homopolymer consisting of a single repeating unit, or a copolymer consisting of two or more repeating units with different side chain structures. The copolymer may be any of an alternating type, a random type, a graft type, etc.
[0035] The diffraction efficiency η of the PBP diffraction grating 150 is expressed as η=sin 2 The efficiency is expressed as (Δndπ / λ), and is 100% when the phase difference Δnd=λ / 2. Therefore, the phase difference layer 158 is usually designed so that Δnd is λ / 2. Since the PBP diffraction grating 150 functions as a λ / 2 plate, incident circularly polarized light is converted into counter-rotating circularly polarized light before exiting.
[0036] The λ / 4 plate is a member that imparts a phase difference corresponding to ¼ of the wavelength of light that passes through it, and is, for example, a member that imparts a phase difference of 117.5 nm or more and 157.5 nm or less to light with a wavelength of 550 nm. The first λ / 4 plate 180 may be, for example, a conventionally known plate used in technical fields such as liquid crystal display devices.
[0037] The reflective polarizing plate 200 is not particularly limited, and for example, a conventionally known plate used in the technical field of liquid crystal display devices or the like can be used.
[0038] The liquid crystal panel (LCD) 300 is not particularly limited, and for example, a conventionally known panel used in the technical field of liquid crystal display devices or the like can be used.
[0039] The principle of improving light utilization efficiency in the first embodiment will be described with reference to FIG. 3 . The left-handed circularly polarized light (LCP) component contained in light (incident angle θ) emitted from the backlight 100 and incident on the PBP diffraction grating 150 is diffracted by −θ by the PBP diffraction grating 150 and becomes right-handed circularly polarized light (RCP). The light that has passed through the PBP diffraction grating 150 and become right-handed circularly polarized light (RCP) is converted into linearly polarized light (LP1) by the first λ / 4 plate 180. This linearly polarized light (LP1) is parallel to the transmission axis of the reflective polarizer 200 and therefore passes through the reflective polarizer 200. On the other hand, the right-handed circularly polarized light (RCP) component contained in the light (incident angle θ) incident on the PBP diffraction grating 150 is diffracted by +θ by the PBP diffraction grating 150 and becomes left-handed circularly polarized light (LCP). The light that has passed through the PBP diffraction grating 150 and become left-handed circularly polarized light (LCP) is converted into linearly polarized light (LP2) by the first λ / 4 plate 180. This linearly polarized light LP2 is perpendicular to the transmission axis of the reflective polarizer 200 and is therefore reflected by the reflective polarizer 200. This reflected light is returned to the backlight 100 and recycled. Therefore, ideally, all the light is ultimately emitted in the front direction, improving light utilization efficiency.
[0040] (Embodiment 2) In the second embodiment, a configuration for further improving light utilization efficiency will be described in comparison with the reference example. FIG. 8 is a schematic diagram illustrating the diffraction angle θ of the PBP diffraction grating and the light intensity distribution U(θ) on a screen arranged on the light exit side of the PBP diffraction grating. FIG. 9 is a graph showing the molecular orientation pattern Φ(x) of the PBP diffraction grating of the reference example. FIG. 10 is a graph showing the light intensity distribution U(θ) of the PBP diffraction grating of the reference example. Note that in this disclosure, the "molecular orientation pattern Φ(x)" is also simply referred to as "molecular orientation Φ(x)." FIG. 11 is a graph showing the molecular orientation pattern Φ(x) of the PBP diffraction grating of the second embodiment. FIG. 12 is a graph showing the light intensity distribution U(θ) of the PBP diffraction grating of the second embodiment. FIG. 13 is a schematic diagram illustrating the state of light transmitted through the PBP diffraction gratings of the second embodiment and the reference example.
[0041] The diffraction angle of the PBP diffraction grating 150 depends on the wavelength. The diffraction angle can be calculated using, for example, Fraunhofer diffraction. When the molecular orientation of the polymerizable liquid crystal 156, positioned at a distance x [μm] in the first direction from the position where the slow axis of the polymerizable liquid crystal 156 is parallel to the first direction (the x-axis direction in the figure) in a planar view, is defined as Φ(x) [°]. When light is incident on the screen 50 from the PBP diffraction grating 150 with a diffraction angle θ [°] as shown in FIG. 8, the light intensity distribution U(θ) on the screen 50 is expressed by the following equation (2):
[0042]
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[0043] In the formula, θ is the diffraction angle (°) of the PBP diffraction grating 150, λ is the wavelength of light (nm), and k is a proportionality constant. In this embodiment and reference example, the value of k is determined so that the value obtained by integrating U(θ) over the range of θ = -π to π becomes 100%. In this case, U(θ) is also called the diffraction efficiency.
[0044] Here, in order to simplify the calculation, the case where the orientation pitch is relatively large (the diffraction angle is 7.9°) will be explained. As shown in Figure 9, for the PBP diffraction grating of the reference example, which has a molecular orientation pattern of "Φ(x) = x × 180° / 4 μm," we calculated the light intensity distribution U(θ) when the wavelength of the incident light was 450 nm, 550 nm, and 650 nm. This corresponds to a calculation for an orientation pitch of 4 μm.
[0045] The results are shown in Figure 10. For example, when the wavelength of the incident light is 550 nm, U(θ) is 100% at θ = 7.9°. This indicates that all incident light is bent in the direction of θ = 7.9°, which can be easily verified experimentally. The problem with this reference example was that the diffraction angles of red light R, green light G, and blue light B were different from one another. This can cause color breakup and other degradation of display quality.
[0046] Therefore, in this embodiment, U(θ) was calculated by assuming that the molecular orientation is "Φ(x) = kx + m × sin(nx + A)". Specifically, the following formula (1) was used, where k = 180° / Λ in "Φ(x) = kx + m × sin(nx + A)".
[0047]
number
[0048] More specifically, as shown in FIG. 11 , U(θ) was calculated assuming Λ=4 μm (i.e., k=180° / 4 μm), n=2π / 800 μm, and A=0. This calculation is based on the concept of FM modulation, and it is known that multiple peaks appear. Looking at the calculation results in FIG. 12 , the peaks for each wavelength were split and overlapped. As a result, as shown in FIG. 13 , it was found that the PBP diffraction grating 150 of the second embodiment, which satisfies the above formula (1), is more effective at solving the color breakup problem than the PBP diffraction grating 150 of the reference example. Note that because the second term on the right side of the above formula (1) is small, FIGS. 9 and 11 appear similar, but are actually different graphs. Similarly, when the diffraction angle is 78°, the problem of color breakup can be solved by appropriately setting the optimum values of A, k, n, and m.
[0049] (Embodiment 3) Fig. 14 is a schematic diagram showing the configuration of a backlight system and a display device according to embodiment 3. As shown in Fig. 14, in embodiment 3, a diffusion sheet 120 is provided between a backlight 100 and a PBP diffraction grating 150. The diffusion sheet 120 is not limited as long as it has the function of diffusing and transmitting incident light, and for example, a conventionally known diffusion sheet used in technical fields such as liquid crystal display devices can be used. To increase the diffraction angle of the PBP diffraction grating 150, the orientation pitch must be narrowed. However, narrowing the orientation pitch results in uneven alignment of the liquid crystals, making haze more likely to occur. This places limitations on the selection of materials that allow for clear alignment of the liquid crystals. The use of a diffusion sheet 120 can reduce the diffraction angle of the PBP diffraction grating 150. For example, as shown in FIG. 14, when the peak angle of the light emitted from the backlight 100 is 78°, the diffraction angle required for the PBP diffraction grating 150 can be reduced from 78° to 45°. A diffraction angle of 45° results in the orientation pitch of the PBP diffraction grating 150 being 0.8 μm. This larger orientation pitch improves the productivity of the PBP diffraction grating 150. Furthermore, the use of a diffusion sheet 120 also prevents color breakup, a phenomenon in which the optical paths of light rays split into wavelengths (e.g., white light splitting into multiple monochromatic lights) when passing through the PBP diffraction grating 150.
[0050] (Embodiment 4) Fig. 15A is a schematic diagram showing the configuration of a backlight system and a display device according to embodiment 4. Fig. 15B is a cross-sectional view showing the structure of a lenticular lens included in the backlight system according to embodiment 4. As shown in Fig. 15A, in embodiment 4, a lenticular lens 190, which is a refractive optical element (refractive element), is provided between a first λ / 4 plate 180 and a reflective polarizing plate 200. The type of refractive element is not particularly limited, and a prism sheet may be used instead of the lenticular lens 190. FIG. 16A is a schematic diagram illustrating the characteristics of a diffractive element. FIG. 16B is a schematic diagram illustrating the characteristics of a refractive element. As shown in FIGS. 16A and 16B, the diffractive element 15 bends light with longer wavelengths more, while the refractive element 19 bends light with shorter wavelengths more. Therefore, white light W incident on the diffractive element 15 or the refractive element 19 is color-separated into red light R, green light G, and blue light B. Therefore, combining the PBP diffraction grating 150 with the refractive element 19 can reduce color breakup caused by the wavelength dependence of the diffraction angle of the PBP diffraction grating 150. When a refractive element (lenticular lens 190) is disposed as in this embodiment, as shown in FIG. 15A, the light color-separated by the PBP diffraction grating 150 overlaps again at the lenticular lens 190, improving color separation. Furthermore, the lenticular lens 190 can focus light more in the front direction, thereby improving front brightness.
[0051] (Embodiment 5) Fig. 17 is a schematic diagram showing the configuration of a backlight system and a display device according to embodiment 5. As shown in Fig. 17, in embodiment 5, a second λ / 4 plate 130 is provided between a backlight 100 and a PBP diffraction grating 150. When the light emitted from the backlight 100 is linearly polarized light LP, by inserting the second λ / 4 plate 130 before the PBP diffraction grating 150, only circularly polarized light (here, left-handed circularly polarized light LCP) is incident on the PBP diffraction grating 150. Therefore, the PBP diffraction grating 150 diffracts all of the incident left-handed circularly polarized light LCP in the forward direction, thereby improving light utilization efficiency.
[0052] (Embodiment 6) Fig. 18 is a schematic diagram showing a head-mounted display including a display panel that emits display light uniformly in the normal direction within a plane. Fig. 19 is a schematic diagram showing a head-mounted display including a display panel that emits display light in oblique directions at both ends. Fig. 20 is a schematic diagram showing the configuration of a backlight system and a display device according to a sixth embodiment.
[0053] For example, in a head-mounted display (HMD), a lens 400 is placed between the liquid crystal panel 300 (the display) and the observer's eye E, magnifying the image displayed on the liquid crystal panel 300. As shown in FIG. 18 , if the liquid crystal panel 300 is designed to have the highest brightness in the normal direction uniformly across the surface, the amount of light reaching the eye E decreases slightly at the edges of the liquid crystal panel 300. Therefore, by changing the optical path as shown in FIG. 19 , the light utilization efficiency at the edges of the liquid crystal panel 300 can be improved. In the sixth embodiment, the light propagation direction shown in FIG. 19 is achieved by varying the orientation pitch of the PBP diffraction element across the surface. Specifically, the orientation pitch is increased on the side closer to the LED light source 110 and decreased as the distance from the LED light source 110 increases. This increases the peak angle of the emitted light, resulting in high light utilization efficiency.
[0054] In order to achieve the light propagation direction shown in Figure 19, for example, the orientation pitch at the end of the light guide plate on the LED light source side (an example of a first region facing the first backlight region in the backlight) is adjusted to 1.2 μm, the orientation pitch at the center of the light guide plate (an example of a second region facing the second backlight region that is farther from the backlight light source than the first backlight region in the backlight) is adjusted to 0.5 μm, and the orientation pitch at the end of the light guide plate opposite the LED light source (an example of a second region facing the second backlight region that is farther from the backlight light source than the first backlight region in the backlight) is adjusted to 0.4 μm.
[0055] (Verification experiment) 21 is a diagram illustrating a method for measuring the angle of output light in Example 1. In this verification experiment, laser light (wavelength 532 nm) was used as the incident light, and an optical system in which the "reflective polarizing plate" was replaced with a general polarizing plate 210 was used to measure whether diffraction of the PBP diffraction grating 150 actually occurred according to the principle.
[0056] A measurement sample of the PBP diffraction grating 150 was prepared in the following procedure. (1) A photoisomerizable photo-alignment film was applied to a glass substrate. (2) Polarized ultraviolet light (UV) with a wavelength of 365 nm is applied to the photo-alignment film at 100 mJ / cm 2 Then, the photo-alignment film was baked in an oven at 160° C. for 20 minutes. (3) A polymerizable liquid crystal compound was applied onto the photo-alignment film using a spin coater rotating at 1000 rpm. (4) After application, the polymerizable liquid crystal compound is exposed to unpolarized UV light with a wavelength of 365 nm at 3 J / cm. 2 The polymerizable liquid crystal compound was cured by irradiation, and a measurement sample of the PBP diffraction grating 150 was completed.
[0057] The completed measurement sample of the PBP diffraction grating 150 had a structure in which a photo-alignment film and a polymerizable liquid crystal layer were laminated on a glass substrate. This measurement sample was subjected to an alignment process so that the distance by which the alignment direction of the polymerizable liquid crystal rotates by 180° (alignment pitch Δ) was 0.5 μm. The diffraction angle θ of the PBP diffraction grating 150 is calculated using the following formula. In this verification experiment, θ = 78°, as shown in Figure 21. θ=arcsin(λ / Δ)
[0058] As the first λ / 4 plate 180, a retardation film made of COP (cycloolefin polymer) was used.
[0059] 21, the angle of the exiting light was measured when the incident angle of the incident light to the PBP diffraction grating 150 was set to 78°. According to the above calculation, the exiting angle would be 0°, but the experimental result was 0°. This experimental result confirmed that the light utilization efficiency can be improved by the method described in this disclosure. [Explanation of symbols]
[0060] 11: Diffusion sheet 12, 12a, 12b: Prism sheet 15: Diffractive element 19: Refractive element 50: Screen 100: Backlight 110:LED light source 120: Diffusion sheet 130: Second λ / 4 plate 150: Pancharatnam-Berry Phase (PBP) diffraction grating 152: Base material 154: Alignment film 156: Polymerizable liquid crystal 158: Retardation layer 180: First λ / 4 plate 190: Lenticular lens 200: Reflective polarizing plate 210: Polarizing plate 300: Liquid crystal panel (LCD) 400: Lens LCP: Left circularly polarized light LP, LP1, LP2: Linear polarization RCP: Right circularly polarized light
Claims
1. Backlight and Pancharatnam Berry phase grating; a first λ / 4 plate in this order, A backlight system that outputs light that is emitted from the backlight and passes through the Pancharatnam Berry phase diffraction grating and the first λ / 4 plate.
2. the Pancharatnam-Berry phase diffraction grating comprises a retardation layer containing a cured product of a polymerizable liquid crystal; a slow axis of the polymerizable liquid crystal periodically rotates in a first direction from one end of the retardation layer to the other end of the retardation layer within the plane of the retardation layer, The backlight system of claim 1, wherein the molecular orientation pattern Φ(x) [°], which is the orientation direction of the polymerizable liquid crystal arranged at a position a distance x [μm] in the first direction from a position where the slow axis of the polymerizable liquid crystal is parallel to the first direction, satisfies the following formula (1): [Equation 1] In the formula, Λ represents the pitch [μm] at which the slow axis of the polymerizable liquid crystal rotates by 180° in the plane of the retardation layer, and m, n, and A are arbitrary constants.
3. The backlight system of claim 1 , further comprising a diffusion sheet between the backlight and the Pancharatnam Berry phase grating.
4. The backlight system according to claim 1 , further comprising a refractive optical element on the opposite side of the first λ / 4 plate from the Pancharatnam Berry phase diffraction grating.
5. 5. The backlight system according to claim 4, wherein the refractive optical element is a lenticular lens or a prism sheet.
6. further comprising a second λ / 4 plate between the backlight and the Pancharatnam Berry phase grating; The backlight system according to claim 1 , wherein the light emitted from the backlight is linearly polarized light.
7. The Pancharatnam Berry phase diffraction grating has a plurality of regions having different orientation pitches in a plan view, the plurality of regions include a first region facing a first backlight region of the backlight and a second region facing a second backlight region of the backlight that is farther from a light source of the backlight than the first backlight region of the backlight, The backlight system according to claim 1 , wherein the alignment pitch in the second region is smaller than the alignment pitch in the first region.
8. A backlight system according to any one of claims 1 to 7; a display device comprising a liquid crystal panel that displays an image using light emitted by the backlight system;
9. The display device according to claim 8 , further comprising a reflective polarizing plate between the backlight system and the liquid crystal panel.
Citation Information
Patent Citations
Optical sheet and its producing method
JP2009210798A