Liquid crystal device, display device, and light modulation module
The liquid crystal device addresses reverse tilt domains in high-resolution displays by using phase difference adjusting elements and alignment films to control liquid crystal molecule orientation, ensuring clear and high-quality images.
Patent Information
- Application Number
- JP2022027693
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-25
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2042-02-25
AI Technical Summary
Reverse tilt domains in liquid crystal panels, particularly in small, high-resolution displays, cause display quality deterioration due to lateral electric fields, and correcting gradation data to weaken these fields leads to perceptible changes in display content, such as blurred images.
A liquid crystal device with phase difference adjusting elements and alignment films that control the orientation of liquid crystal molecules to mitigate reverse tilt domains, using inorganic alignment films to align molecules in specific directions and controlling phase differences to maintain image clarity.
The solution effectively suppresses reverse tilt domains, maintaining display quality without perceptible image changes, enhancing the clarity and contrast of high-resolution displays.
Smart Images

Figure 0007790201000001 
Figure 0007790201000002 
Figure 0007790201000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a liquid crystal device, a display device, and a light modulation module. [Background technology]
[0002] On the display screen of a liquid crystal panel, for example, when a white pixel and a black pixel are adjacent to each other at the boundary between characters and the background, a high potential is applied to the pixel electrode of the white pixel, while a low potential is applied to the pixel electrode of the black pixel. As a result, a reverse tilt domain may occur in which the liquid crystal molecules are oriented in a direction different from the intended orientation direction due to the horizontal electric field between the pixel electrode of the white pixel and the pixel electrode of the black pixel.
[0003] The occurrence of reverse tilt domains in liquid crystal panels is known to cause a deterioration in display quality. In particular, in small, high-resolution liquid crystal panels, the influence of the lateral electric field is greater, making suppression of reverse tilt domains one of the challenges.
[0004] Patent Document 1 discloses a technique for suppressing the occurrence of such reverse tilt domains, in which grayscale data is corrected so as to reduce the difference in applied voltage between pixels, thereby weakening the horizontal electric field. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-252206 Summary of the Invention [Problem to be solved by the invention]
[0006] However, when the gradation data is corrected to weaken the transverse electric field, the change in the display content that accompanies this correction can be easily perceived by the viewer as, for example, a blurred image, which can lead to another problem of display contradiction. The present invention has been made in view of the above-mentioned circumstances, and one of its objects is to suppress the degradation of display quality caused by reverse tilt domains. [Means for solving the problem]
[0007] A liquid crystal device according to one aspect of the present application includes a liquid crystal panel having a first liquid crystal layer, a first polarizing element provided on a light incident side of the liquid crystal panel, a second polarizing element provided on a light exiting side of the liquid crystal panel, a first phase difference adjusting element disposed between the first polarizing element and the liquid crystal panel and having a second liquid crystal layer, a second phase difference adjusting element disposed between the liquid crystal panel and the second polarizing element and having a third liquid crystal layer, and a control unit that controls a phase difference of the second liquid crystal layer and a phase difference of the third liquid crystal layer. The first phase difference adjusting element has a first incident side alignment film and a first exit side alignment film disposed with the second liquid crystal layer interposed therebetween, the first incident side alignment film and the first exit side alignment film being inorganic alignment films that align liquid crystal molecules of the second liquid crystal layer in a first direction, and the second phase difference adjusting element has a second incident side alignment film and a second exit side alignment film disposed with the third liquid crystal layer interposed therebetween, the second incident side alignment film and the second exit side alignment film being inorganic alignment films that align liquid crystal molecules of the third liquid crystal layer in a second direction intersecting the first direction. .
[0008] A display device according to one aspect of the present application includes a first liquid crystal panel that modulates light of a first wavelength and a second liquid crystal panel that modulates light of a second wavelength different from the first wavelength, and further includes a first phase difference adjusting element disposed on the light incident side of the first liquid crystal panel, a second phase difference adjusting element disposed on the light exit side of the first liquid crystal panel, and a control unit that controls a phase difference of the first phase difference adjusting element and a phase difference of the second phase difference adjusting element. death , The liquid crystal display device includes a third phase difference adjusting element arranged on the light incident side of the second liquid crystal panel, and a fourth phase difference adjusting element arranged on the light exit side of the second liquid crystal panel, and the control unit controls the phase difference of the first phase difference adjusting element and the phase difference of the second phase difference adjusting element to each be a first phase difference, and controls the phase difference of the third phase difference adjusting element and the phase difference of the fourth phase difference adjusting element to each be a second phase difference different from the first phase difference.
[0009] An optical modulation module according to one aspect of the present application includes a liquid crystal panel having a first liquid crystal layer, a first polarizing element provided on a light incident side of the liquid crystal panel, a second polarizing element provided on a light exit side of the liquid crystal panel, a first phase difference adjusting element disposed between the first polarizing element and the liquid crystal panel and having a second liquid crystal layer, and a second phase difference adjusting element disposed between the liquid crystal panel and the second polarizing element and having a third liquid crystal layer. picture , The first phase difference adjustment element has a first incident side alignment film and a first exit side alignment film arranged on either side of the second liquid crystal layer, and the first incident side alignment film and the first exit side alignment film are inorganic alignment films that align the liquid crystal molecules of the second liquid crystal layer in a first direction, and the second phase difference adjustment element has a second incident side alignment film and a second exit side alignment film arranged on either side of the third liquid crystal layer, and the second incident side alignment film and the second exit side alignment film are inorganic alignment films that align the liquid crystal molecules of the third liquid crystal layer in a second direction that intersects the first direction. [Brief explanation of the drawings]
[0010] [Figure 1]FIG. 1 is a schematic configuration diagram of a projection display device using a liquid crystal device according to a first embodiment. [Figure 2] FIG. 1 is a plan view showing one embodiment of a liquid crystal panel to be combined with a liquid crystal device. [Figure 3] FIG. 1 is an explanatory diagram schematically illustrating a cross section of a liquid crystal device. [Figure 4] FIG. 2 is an explanatory diagram schematically illustrating the configuration of a liquid crystal layer of a liquid crystal panel. [Figure 5A] FIG. [Figure 5B] FIG. [Figure 6A] FIG. [Figure 6B] FIG. [Figure 7] 10 is a graph showing the relationship between the phase difference of a phase difference control element and the display quality of an image. [Figure 8] FIG. 2 is a functional block diagram showing a configuration related to phase difference control. [Figure 9] 10 is a flowchart for determining the phase difference of a phase difference control element depending on brightness. [Figure 10A] FIG. 10 is an explanatory diagram showing an example of a bright display screen. [Figure 10B] Brightness histogram for a bright display screen. [Figure 11A] FIG. 10 is an explanatory diagram showing an example of a dark display screen. [Figure 11B] Brightness histogram for a dark display screen. [Figure 12] 10 is a flowchart for determining the phase difference of a phase difference control element based on contrast. [Figure 13A] FIG. 10 is an explanatory diagram showing an example of a low-contrast display screen. [Figure 13B] Luminance histogram for a low-contrast display screen. [Figure 14A] FIG. 10 is an explanatory diagram showing an example of a high-contrast display screen. [Figure 14B] Luminance histogram for a high-contrast display screen. DETAILED DESCRIPTION OF THE INVENTION
[0011] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. In the following drawings, the scale of each component is different from the actual scale in order to make each component large enough to be recognizable. For ease of explanation, the following drawings will use the mutually perpendicular X-axis, Y-axis, and Z-axis as appropriate. A direction along the X-axis will be referred to as the X1 direction, and a direction opposite to the X1 direction will be referred to as the X2 direction. A direction along the Y-axis will be referred to as the Y1 direction, and a direction opposite to the Y1 direction will be referred to as the Y2 direction. A direction along the Z-axis will be referred to as the Z1 direction, and a direction opposite to the Z1 direction will be referred to as the Z2 direction. In this embodiment, the X1 direction corresponds to the first direction, and the Y1 direction corresponds to the second direction.
[0012] In the following, viewing in the Z2 or Z1 direction will be referred to as a "planar view" or "planar." Viewing from a direction perpendicular to a cross section including the Z axis will be referred to as a "cross-sectional view" or "cross-sectional."
[0013] Furthermore, in the following description, for example, the expression "on the substrate" with respect to a substrate means that the substrate is placed in contact with the substrate, that the substrate is placed via another structure, or that a portion of the substrate is placed in contact with the substrate and a portion of the substrate is placed via another structure.
[0014] 1. Embodiment 1 1.1. Overview of projection display devices using liquid crystal devices FIG. 1 is an explanatory diagram showing a schematic configuration of a projection display device using a liquid crystal device according to this embodiment.
[0015] In this embodiment, the projection display device 1000 is an example of a display device. The projection display device 1000 includes a liquid crystal device 1. In this embodiment, among the components included in the liquid crystal device 1, a component including the liquid crystal panel 100, a first polarizing plate 51 as a first polarizing element, a second polarizing plate 52 as a second polarizing element, a first phase difference control element 60, and a second phase difference control element 70, which will be described later, is sometimes referred to as a light modulation module 4. The light modulation module 4 does not need to include all the components included in the liquid crystal device 1, but it is sufficient to include at least the first phase difference control element 60 as a first phase difference adjustment element and the second phase difference control element 70 as a second phase difference adjustment element, which will be described later. Furthermore, functionally, it is sufficient that the light modulation module 4 has the function of converting linearly polarized light into a desired polarization between linearly polarized light and circularly polarized light and outputting the light to the liquid crystal panel 100, and the function of changing the polarization state of light output from the liquid crystal panel 100 from the desired polarization to linearly polarized light and outputting the light. Furthermore, it is not necessary for all of the components included in the optical modulation module 4 to be physically connected or formed as a single unit; even if each component or some of the components are physically separated, it is sufficient as long as there is an electrical or optical relationship between them.
[0016] The projection display device 1000 has three laser light sources 200R, 200G, and 200B corresponding to RGB as light sources, three liquid crystal devices 1R, 1G, and 1B corresponding to RGB as image display devices, and a projection optical system 300.
[0017] The laser light source 200R emits red light. The central wavelength λ of the red light is 610 nm. The laser light source 200G emits green light. The central wavelength λ of the green light is 550 nm. The laser light source 200B emits blue light. The central wavelength λ of the blue light is 455 nm.
[0018] Each of the liquid crystal devices 1R, 1G, and 1B has a first polarizing plate 51 as a first polarizing element, a first phase difference control element 60 as a first phase difference adjusting element, a liquid crystal panel 100, a second phase difference control element 70 as a second phase difference adjusting element, and a second polarizing plate 52 as a second polarizing element. Note that the first polarizing plate 51 can be omitted when the light emitted from the laser light sources 200R, 200G, and 200B is linearly polarized light. When the linearly polarized light emitted from the laser light sources 200R, 200G, and 200B is directly incident on the first phase difference control element 60, the laser light sources 200R, 200G, and 200B correspond to the first polarizing plate 51.
[0019] The liquid crystal panel 100R of the liquid crystal device 1R modulates the red light emitted from the laser light source 200R based on red gradation data. The liquid crystal panel 100G of the liquid crystal device 1G modulates the green light emitted from the laser light source 200G based on green gradation data. The liquid crystal panel 100B of the liquid crystal device 1B modulates the blue light emitted from the laser light source 200B based on blue gradation data.
[0020] The first polarizing plate 51 adjusts the polarization of the light emitted from the laser light source 200R, 200G or 200B, and emits linearly polarized light to the first phase difference control element 60.
[0021] The first phase difference control element 60R of the liquid crystal device 1R is disposed between the first polarizer 51 and the liquid crystal panel 100R, and outputs the incident linearly polarized light to the liquid crystal panel 100 either as linearly polarized light or after changing the polarization state from linearly polarized light to elliptically polarized light or circularly polarized light according to the phase difference of the first phase difference control element 60R. The phase difference of the first phase difference control element 60R is variably controlled within a range from 0 (zero) to λ / 4 by a method described later.
[0022] When the phase difference of the first phase difference control element 60R is controlled to zero, the first phase difference control element 60R emits linearly polarized light incident from the first polarizer 51 with the polarization state remaining almost unchanged. When the phase difference of the first phase difference control element 60R is controlled to λ / 8, the first phase difference control element 60R changes the linearly polarized light incident from the first polarizer 51 into elliptically polarized light and emits the elliptically polarized light. Similarly, when the phase difference is controlled to λ / 4, the first phase difference control element 60R changes the linearly polarized light into circularly polarized light and emits the elliptically polarized light. The first phase difference control element 60G of the liquid crystal device 1G and the first phase difference control element 60B of the liquid crystal device 1B are configured in the same manner as the first phase difference control element 60R.
[0023] The second phase difference control element 70R of the liquid crystal device 1R is disposed between the liquid crystal panel 100R and the second polarizer 52, and its phase difference is controlled so that the polarization state of the light emitted from the liquid crystal panel 100R becomes linearly polarized.
[0024] When the phase difference of the first phase difference control element 60R is set to zero, the phase difference of the second phase difference control element 70R is also set to zero, and the second phase difference control element 70R passes the linearly polarized light emerging from the liquid crystal panel 100R without changing the polarization state of the light.
[0025] Furthermore, when the phase difference of the first phase difference control element 60R is set to λ / 8, the phase difference of the second phase difference control element 70R is also set to λ / 8, and the second phase difference control element 70R changes the elliptically polarized light emitted from the liquid crystal panel 100R to linearly polarized light for emission. Similarly, when the phase difference of the first phase difference control element 60R is set to λ / 4, the phase difference of the second phase difference control element 70R is also set to λ / 4, and the second phase difference control element 70R changes the circularly polarized light emitted from the liquid crystal panel 100R to linearly polarized light for emission. The second phase difference control element 70G of the liquid crystal device 1G and the second phase difference control element 70B of the liquid crystal device 1B are configured in the same manner as the second phase difference control element 70R.
[0026] The second polarizing plate 52 polarizes the light emitted from the second phase difference control element 70 and causes the light to enter the dichroic prism 310 . Dichroic prism 310 combines the light emitted from liquid crystal panel 100R, the light emitted from liquid crystal panel 100G, and the light emitted from liquid crystal panel 100B.
[0027] The projection lens 330 projects the light emitted from the dichroic prism 310 onto the projection surface 510 of the screen 500 in an enlarged form.
[0028] The liquid crystal device 1R has an image processing unit 80, a phase difference adjustment unit 90, and a brightness detection unit 95. It is sufficient if there is one image processing unit 80, one phase difference adjustment unit 90, and one brightness detection unit 95 common to the liquid crystal devices 1R, 1G, and 1B, but the liquid crystal devices 1R, 1G, and 1B may each have their own image processing unit 80, one phase difference adjustment unit 90, and one brightness detection unit 95.
[0029] The image processing unit 80 supplies gradation data for each color to the liquid crystal panels 100R, 100G, and 100B based on the image data. The image processing unit 80 also analyzes the image data and outputs analysis information to the phase difference adjustment unit 90. In this embodiment, the analysis information is, for example, average gradation information or contrast information. However, the analysis information is not limited to this and may also be content information such as movies, sports, games, landscapes, text, videos, and still images.
[0030] The brightness detection unit 95 detects the brightness of the location where the screen 500 is installed, and outputs the detected brightness information to the phase difference adjustment unit 90.
[0031] The phase difference adjustment unit 90 outputs phase difference control signals RcR, RcG, RcB that control the phase differences of the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B based on analysis information from the image processing unit 80 and / or brightness information from the brightness detection unit 95.
[0032] Note that the first phase difference control element 60 and the second phase difference control element 70 may be provided in only one or two of the liquid crystal devices 1R, 1G, and 1B. For example, the first phase difference control elements 60G and 60R and the second phase difference control elements 70G and 70B may be provided in the liquid crystal device 1G or the liquid crystal devices 1G and 1R that correspond to only green light or to green and red light, for which display defects due to reverse tilt domains are more noticeable, and the first phase difference control element 60B and the second phase difference control element 70B may not be provided in the liquid crystal device 1B that corresponds to blue light, for which display defects due to reverse tilt domains are less noticeable.
[0033] 1.2. Overview of the LCD panel combined with the light modulation module 2 is a plan view showing a schematic configuration of a liquid crystal panel to be combined with an optical modulation module, and shows the liquid crystal panel 100 as viewed in the Z2 direction. Note that the liquid crystal panels 100R, 100G, and 100B are all configured in the same manner as the liquid crystal panel 100. In this embodiment, the liquid crystal panel 100 will be described by taking as an example an active drive type liquid crystal panel having a TFT (Thin Film Transistor) as a pixel transistor for each pixel.
[0034] The liquid crystal panel 100 is formed by bonding a light-transmitting first substrate 10 and a light-transmitting second substrate 20 together with a predetermined gap therebetween using a sealant 107. The sealant 107 is provided in a frame shape along the outer edge of the second substrate 20, and a liquid crystal layer 5 serving as a first liquid crystal layer is disposed in the region surrounded by the sealant 107 between the first substrate 10 and the second substrate 20.
[0035] In the liquid crystal panel 100, the first substrate 10 and the second substrate 20 are both rectangular. Approximately in the center of the liquid crystal panel 100, a display area 10a is provided as a rectangular area whose dimension in the 3 o'clock III-9 o'clock IX direction of the analog clock is longer than its dimension in the 12 o'clock XII-6 o'clock VI direction of the analog clock, and the display area 10a is surrounded by a peripheral area 10b. Note that the 3 o'clock III-9 o'clock IX direction of the analog clock is along the X axis, and the 12 o'clock XII-6 o'clock VI direction of the analog clock is along the Y axis.
[0036] A rectangular frame-shaped peripheral region 10b is provided between the display region 10a and the outer periphery of the second substrate 20. The sealing material 107 is provided in the peripheral region 10b in the shape of a substantially rectangular frame.
[0037] On the second substrate 20 side of the first substrate 10, outside the display area 10a, a data line driving circuit 101, a plurality of terminals 102, and a scanning line driving circuit 104 are arranged. A flexible wiring board 105 is connected to the terminal 102, and various electric potentials and various signals are input to the first substrate 10 via the flexible wiring board 105.
[0038] A light-shielding film 28 made of a metal compound or the like is formed on the second substrate 20. The light-shielding film 28 is, for example, a parting line 28a arranged along the outer periphery of the display region 10a.
[0039] An inter-substrate conduction electrode 106 for establishing electrical conduction between the first substrate 10 and the second substrate 20 is formed on the first substrate 10 in an area that overlaps with the corner portion of the second substrate 20 outside the sealing material 107. Note that the direction P shown in FIG. 2 indicates the alignment direction of the liquid crystal molecules 5a of the liquid crystal layer 5, and in this embodiment, the alignment direction P is the direction from 1:30 to 7:30 on an analog clock in a plan view.
[0040] 1.3. Optical Modulation Module Overview FIG. 3 is a cross-sectional view that schematically shows a cross section of the optical modulation module of this embodiment. The liquid crystal device 1 includes a first polarizer 51, a first phase difference control element 60, a liquid crystal panel 100, a second phase difference control element 70, and a second polarizer 52, which are arranged in this order from the incident side of the light L emitted from the laser light source 200. The liquid crystal devices 1R, 1G, and 1B are configured in the same manner as the liquid crystal device 1.
[0041] A display region 10a of a first substrate 10 of a liquid crystal panel 100 is provided with a matrix of a plurality of light-transmitting pixel electrodes 9a made of a light-transmitting conductive film such as an ITO (Indium Tin Oxide) film, and pixel switching elements 30 electrically connected to each of the plurality of pixel electrodes 9a. In addition, light-shielding wiring 8, 17 is provided between a plurality of insulating films 13 stacked between a substrate body 19 and the pixel electrodes 9a. A first alignment film 16 made of an inorganic obliquely evaporated film is formed on the second substrate 20 side of the pixel electrodes 9a, and the pixel electrodes 9a are covered with the first alignment film 16.
[0042] Dummy pixel electrodes 9b are formed in the peripheral region 10b of the first substrate 10. In this embodiment, the first substrate 10 includes components ranging from a substrate body 19 to a first alignment film 16.
[0043] The second substrate 20 has a light-transmitting substrate body 29 made of quartz, glass, or the like. A light-transmitting common electrode 21 made of an ITO film or the like is formed on substantially the entire surface of the second substrate 20 on the first substrate 10 side. A second alignment film 26 made of an inorganic obliquely evaporated film is provided between the common electrode 21 and the liquid crystal layer 5.
[0044] The parting line 28a is provided between the common electrode 21 in the peripheral region 10b and the protective layer 24, on the side of the common electrode 21 opposite to the first substrate 10. The parting line 28a also overlaps with the dummy pixel electrodes 9b of the first substrate 10 in a plan view. In this embodiment, the second substrate 20 includes components from the substrate main body 29 to the second alignment film 26.
[0045] The liquid crystal panel 100 is configured as a VA (Vertical Alignment) mode liquid crystal panel in which liquid crystal molecules 5a having negative dielectric anisotropy are sandwiched between a first substrate 10 and a second substrate 20 by a sealing material 107. In this liquid crystal panel 100, when a voltage is applied between the pixel electrodes 9a and the common electrode 21, the liquid crystal molecules 5a in the liquid crystal layer 5 are displaced along the alignment direction P in a direction that reduces the tilt angle with respect to the first substrate 10 and the second substrate 20.
[0046] Like the liquid crystal panel 100, the first phase difference control element 60 and the second phase difference control element 70 are both VA mode liquid crystal panels. The first phase difference control element 60 comprises a fourth substrate 62 arranged on the incident side of light L and a third substrate 61 arranged on the emission side, and sandwiches a liquid crystal layer 67 as a second liquid crystal layer having negative dielectric anisotropy between the third substrate 61 and the fourth substrate 62 which are bonded together with a sealing material 108.
[0047] The third substrate 61 has an electrode 63, and the fourth substrate 62 has an electrode 64. A third alignment film 65 made of an inorganic obliquely evaporated film and serving as a first exit-side alignment film is provided between the electrode 63 of the third substrate 61 and the liquid crystal layer 67, and a fourth alignment film 66 made of an inorganic obliquely evaporated film and serving as a first entrance-side alignment film is provided between the electrode 64 of the fourth substrate 62 and the liquid crystal layer 67. The third alignment film 65 and the fourth alignment film 66 align liquid crystal molecules 67a of the liquid crystal layer 67 along a first direction, which will be described later.
[0048] The second phase difference control element 70 comprises a sixth substrate 72 arranged on the incident side of light L and a fifth substrate 71 arranged on the exit side, and sandwiches a liquid crystal layer 77 as a third liquid crystal layer having negative dielectric anisotropy between the fifth substrate 71 and the sixth substrate 72 which are bonded together by a sealing material 109.
[0049] It is preferable that the thickness d2 of the liquid crystal layer 67 and the thickness d3 of the liquid crystal layer 77 are each equal to or smaller than the thickness d1 of the liquid crystal layer 5 of the liquid crystal panel 100. The thickness d2 of the liquid crystal layer 67 is affected by in-plane variations in the cell gap of the first phase difference control element 60, which causes in-plane variations in phase difference when a voltage is applied. Therefore, by increasing the thickness d2 of the liquid crystal layer 67, it is possible to suppress variations in transmittance caused by in-plane variations in the cell gap for a given voltage. On the other hand, if the thickness d2 of the liquid crystal layer 67 is increased, the phase difference also increases accordingly, deteriorating the contrast. The same applies to the thickness d3 of the liquid crystal layer 77. Therefore, in this embodiment, the thickness d2 of the liquid crystal layer 67 and the thickness d3 of the liquid crystal layer 77 are set to be equal to or smaller than the thickness d1 of the liquid crystal layer 5 of the liquid crystal panel 100, respectively.
[0050] The birefringence index Δn 2 of the liquid crystal material used in the liquid crystal layer 67 is preferably smaller than the birefringence index Δn 1 of the liquid crystal material used in the liquid crystal layer 5 of the liquid crystal panel 100 . Liquid crystals with a small birefringence index Δn have a longer light resistance life than liquid crystals with a larger birefringence index Δn. Therefore, by making the birefringence index Δn2 of the liquid crystal material used in the first phase difference control element 60 arranged on the light incident side of the liquid crystal panel 100 smaller than the Δn1 of the liquid crystal material used in the liquid crystal panel 100, it is possible to prevent the light resistance life of the first phase difference control element 60 from expiring before that of the liquid crystal panel 100.
[0051] Similarly, it is preferable that the birefringence index Δn3 of the liquid crystal material used in the liquid crystal layer 77 is smaller than the birefringence index Δn1 of the liquid crystal material used in the liquid crystal layer 5 of the liquid crystal panel 100. By doing so, it is possible to prevent the light resistance life of the second phase difference control element 70 from expiring before that of the liquid crystal panel 100.
[0052] The fifth substrate 71 has an electrode 73, and the sixth substrate 72 has an electrode 74. A fifth alignment film 75 made of an inorganic obliquely evaporated film and serving as a second exit-side alignment film is provided between the electrode 73 of the fifth substrate 71 and the liquid crystal layer 77, and a sixth alignment film 76 made of an inorganic obliquely evaporated film and serving as a second entrance-side alignment film is provided between the electrode 74 of the sixth substrate 72 and the liquid crystal layer 77. The fifth alignment film 75 and the sixth alignment film 76 align liquid crystal molecules 77a of the liquid crystal layer 77 along a second direction intersecting a first direction described below.
[0053] In this embodiment, the third substrate 61, the fourth substrate 62, the fifth substrate 71, and the sixth substrate 72 are configured similarly to the second substrate 20 of the liquid crystal panel 100. Note that the parting edge 28a of the second substrate 20 is not an essential component of the third substrate 61, the fourth substrate 62, the fifth substrate 71, and the sixth substrate 72.
[0054] Here, by configuring the third substrate 61 and the fifth substrate 71 to have pixel electrodes 9a similar to the first substrate 10 of the liquid crystal panel 100, it is possible to configure the phase difference to be controllable for each region according to the size of the pixel electrodes 9a. In this case, the electrode 63 of the third substrate 61 and the electrode 73 of the fifth substrate 71 are divided into the same shape in a plan view. For example, if the electrode 63 of the third substrate 61 is divided into two, the light transmission region of the third substrate 61 is divided into two: a first light transmission region and a second light transmission region. By dividing the electrode 63 into two, different voltage values can be applied to each electrode, making it possible to individually control the phase difference of the liquid crystal layer 67 corresponding to the first light transmission region and the phase difference of the liquid crystal layer 67 corresponding to the second light transmission region. In addition, the electrode 73 of the fifth substrate 71 is also divided into two in the same shape, and the light transmission region of the fifth substrate 71 is divided into two: a third light transmission region corresponding to the first light transmission region and a fourth light transmission region corresponding to the second light transmission region. By dividing electrode 73 into two, different voltage values can be applied to each electrode, but in this embodiment, the third light transmitting region is controlled to have the same or approximately the same phase difference as the phase difference of the first light transmitting region, and the fourth light transmitting region is controlled to have the same or approximately the same phase difference as the phase difference of the second light transmitting region.
[0055] The number of divisions into the electrodes 63 and 73 can range from two to the same number as the pixel electrodes 9a, and the greater the number of divisions, the more precisely the phase difference can be controlled. Note that, considering that reverse tilt domains may occur across two or more consecutive pixels, the number of divisions into the electrodes 63 and 73 can be set to be less than the number of pixel electrodes 9a.
[0056] In the first phase difference control element 60 and the second phase difference control element 70, when no voltage is applied between the electrodes 63, 64 that drive the liquid crystal layer 67 and between the electrodes 73, 74 that drive the liquid crystal layer 77, the liquid crystal molecules 67a, 77a in the liquid crystal layers 67, 77 are aligned perpendicular to the substrate surfaces. In this case, the phase differences of the first phase difference control element 60 and the second phase difference control element 70 are both zero, and the first phase difference control element 60 and the second phase difference control element 70 transmit incident light without changing its polarization state.
[0057] Strictly speaking, the phase difference between the first phase difference control element 60 and the second phase difference control element 70 is not zero because the liquid crystal molecules 5a are pretilted as described below. Therefore, in this embodiment, when the phase difference between the first phase difference control element 60 and the second phase difference control element 70 becomes zero, it means that the liquid crystal layers 67 and 77 are brought into an initial alignment state with no voltage applied thereto.
[0058] On the other hand, in the first phase difference control element 60 and the second phase difference control element 70, when a voltage is applied between the electrodes 63, 64 and between the electrodes 73, 74 and the value of the applied voltage is increased, the liquid crystal molecules 67a, 77a in the liquid crystal layers 67, 77 gradually tilt in a direction parallel to the substrate surfaces, and accordingly the phase differences of the first phase difference control element 60 and the second phase difference control element 70 gradually increase.
[0059] The first phase difference control element 60 is disposed so that its slow axis forms an angle of 45° with respect to the polarization axis of the first polarizer 51, and the second phase difference control element 70 is disposed so that its slow axis forms an angle of 45° with respect to the polarization axis of the second polarizer 52. In other words, the first phase difference control element 60 and the second phase difference control element 70 are disposed so that their respective slow axes are orthogonal to each other.
[0060] The first polarizer 51 and the second polarizer 52 are arranged in a crossed Nicol configuration with their polarization axes at an angle of 90°, and the liquid crystal panel 100 is configured so that the orientation direction P of the liquid crystal molecules 5a forms an angle of 45° with respect to the polarization axes of the first polarizer 51 and the second polarizer 52.
[0061] In this embodiment, the slow axis of the first phase difference control element 60 is arranged so as to be parallel to the alignment direction P of the liquid crystal panel 100, and the slow axis of the second phase difference control element 70 is arranged so as to be perpendicular to the alignment direction P of the liquid crystal panel 100.
[0062] The alignment direction of the liquid crystal molecules 67a, 77a in the liquid crystal layers 67, 77 is the direction of the slow axis in the first phase difference control element 60 and the second phase difference control element 70. Therefore, in this embodiment, the first direction which is the alignment direction of the liquid crystal molecules 67a in the liquid crystal layer 67 is parallel to the alignment direction P, and the second direction which is the alignment direction of the liquid crystal molecules 77a in the liquid crystal layer 77 is perpendicular to the alignment direction P. The first phase difference control element 60 may be disposed so that its slow axis is perpendicular to the alignment direction P of the liquid crystal panel 100, and the second phase difference control element 70 may be disposed so that its slow axis is parallel to the alignment direction P of the liquid crystal panel 100. In this case, the first direction is perpendicular to the alignment direction P, and the second direction is parallel to the alignment direction P.
[0063] By arranging the light in this manner, the first phase difference control element 60 and the second phase difference control element 70 control the voltage value applied to the liquid crystal layers 67, 77, and by controlling the phase difference of the liquid crystal layers 67, 77 to a desired value, the polarization state of light incident on the first phase difference control element 60 and the second phase difference control element 70 can be either not changed from linear polarization, changed from linear polarization to elliptically polarized or circularly polarized light, or changed from elliptically polarized or circularly polarized light to linearly polarized light.
[0064] The angle between the polarization axis of the first polarizer 51 and the polarization axis of the second polarizer 52, the angle between the slow axis of the first phase difference control element 60 and the slow axis of the second phase difference control element 70, and the angle between the slow axis of the second phase difference control element 70 or the first phase difference control element 60 and the alignment direction P are not limited to 90°, and may be any angle within the range of 90°±5°, taking into account manufacturing tolerances, etc.
[0065] Furthermore, the angles formed between the polarization axes of the first polarizer 51 and the second polarizer 52 and the alignment direction P, the angle formed between the slow axis of the first phase difference control element 60 and the polarization axis of the first polarizer 51, and the angle formed between the slow axis of the second phase difference control element 70 and the second polarizer 52 are not limited to 45°, and may be any angles within the range of 45°±5°, taking into account manufacturing tolerances, etc. Furthermore, the angle between the slow axis of the first phase difference control element 60 or the second phase difference control element 70 and the alignment direction P is not limited to 0°, but may be within the range of 0°±5°, taking into account manufacturing tolerances, etc.
[0066] In this embodiment, the liquid crystal panel 100 and the first phase difference control element 60 are configured separately, but they can also be configured as an integrated unit. In this case, for example, the third substrate 61 can be configured to be formed on the substrate main body 29. Similarly, the liquid crystal panel 100 and the second phase difference control element 70 can also be configured as an integrated unit. In this case, for example, the sixth substrate 72 can be configured to be formed on the substrate main body 19.
[0067] In this embodiment, the first phase difference control element 60 and the second phase difference control element 70 are both configured to use VA mode liquid crystal panels, but this is not limiting. For example, a liquid crystal panel may be used in which, when no voltage is applied to the liquid crystal layer, i.e., in an initial alignment state, the liquid crystal molecules are aligned parallel to the substrates, and when a voltage is applied to the liquid crystal layer, the liquid crystal molecules are aligned perpendicular to the substrates. An ECB mode (Electrically Controlled Birefringence) liquid crystal panel may be used as a liquid crystal panel that operates in this manner.
[0068] 1.4. Overview of the Liquid Crystal Layer FIG. 4 is an explanatory diagram illustrating a schematic configuration of a liquid crystal layer of a liquid crystal panel. The first alignment film 16 and the second alignment film 26 of the liquid crystal panel 100 are made of a pillar structure layer in which pillars 16a, 26a, called columns, are formed obliquely with respect to the substrate bodies 19, 29. Therefore, the first alignment film 16 and the second alignment film 26 align the liquid crystal molecules 5a at an oblique angle with respect to the first substrate 10 and the second substrate 20, and impart a pretilt to the liquid crystal molecules 5a.
[0069] In the OFF state where no voltage is applied between the pixel electrode 9a and the common electrode 21, the angle formed between the direction perpendicular to the first substrate 10 and the second substrate 20 and the long axis direction of the liquid crystal molecules 5a, i.e., the alignment direction P, is the pretilt angle θp. In this embodiment, the pretilt angle θp is, for example, 5°.
[0070] In the ON state where a voltage is applied between the pixel electrode 9a and the common electrode 21, the liquid crystal molecules 5a are displaced along the alignment direction P, as shown by the dashed line, so that the tilt angle with respect to the first substrate 10 and the second substrate 20 becomes smaller. This alignment direction P is the so-called clear viewing direction.
[0071] The liquid crystal layers 67 and 77 of the first phase difference control element 60 and the second phase difference control element 70 are configured in the same manner as the liquid crystal panel 100 .
[0072] 1.5. Overview of Linear Polarization Mode and Elliptical or Circular Polarization Mode 5A and 5B are explanatory diagrams of the first mode. In the first mode, the first phase difference control element 60 and the second phase difference control element 70 are controlled to have a phase difference of zero. Fig. 5A shows the OFF state in which no voltage is applied between the pixel electrode 9a and the common electrode 21 of the liquid crystal panel 100, and Fig. 5B shows the ON state in which a voltage is applied between the pixel electrode 9a and the common electrode 21 of the liquid crystal panel 100.
[0073] 6A and 6B are explanatory diagrams of the second mode. In the second mode, the phase difference of the first phase difference control element 60 and the second phase difference control element 70 is controlled to, for example, λ / 24, λ / 12, λ / 8, λ / 6, or λ / 4. Fig. 6A shows the OFF state in which no voltage is applied between the pixel electrode 9a and the common electrode 21 of the liquid crystal panel 100, and Fig. 6B shows the ON state in which a voltage is applied between the pixel electrode 9a and the common electrode 21 of the liquid crystal panel 100.
[0074] 5A, 5B and 6A and 6B, the polarization axis of the first polarizer 51, the slow axis of the first phase difference control element 60, the orientation direction P of the liquid crystal molecules 5a in the liquid crystal panel 100, the slow axis of the second phase difference control element 70, and the polarization axis of the first polarizer 51 are each indicated by dashed arrows, and the polarization state of light, etc. are indicated by solid arrows.
[0075] In this embodiment, the alignment direction P of the liquid crystal molecules 5a in the liquid crystal panel 100 is parallel to the slow axis of the first phase difference control element 60, and the slow axis of the first phase difference control element 60 is perpendicular to the slow axis of the second phase difference control element 70.
[0076] In this embodiment, the phase difference value R of the first phase difference control element 60 and the second phase difference control element 70 is controlled to be a value in the range of zero to λ / 4, where λ is the wavelength of light incident on the liquid crystal panel 100. The first phase difference control element 60 and the second phase difference control element 70 are controlled to have the same phase difference.
[0077] Next, the phase difference between the first phase difference control element 60 and the second phase difference control element 70 in the first mode will be described with reference to FIGS. 5A and 5B. When the phase difference of the first phase difference control element 60 and the second phase difference control element 70 is zero, as shown in Figures 5A and 5B, the first linearly polarized light L1 emitted from the first polarizer 51 passes through the first phase difference control element 60 in the same polarization state and enters the liquid crystal panel 100 as first linearly polarized light L1a.
[0078] 5A, when a pixel of the liquid crystal panel 100 is in an OFF state corresponding to black display, the first linearly polarized light L1b is emitted from the liquid crystal panel 100, and the first linearly polarized light L1b that is incident on the second phase difference control element 70 is emitted in the same polarization state. Therefore, the first linearly polarized light L1c that is emitted from the second phase difference control element 70 is not emitted from the second polarizer 52.
[0079] 5B, when the pixel of the liquid crystal panel 100 is in the ON state corresponding to white display, second linearly polarized light L2b is emitted from the liquid crystal panel 100. The second linearly polarized light L2b passes through the second phase difference control element 70 in the same polarization state, enters the second polarizer 52 as second linearly polarized light L2c, and is emitted as second linearly polarized light L2d.
[0080] The amount of light I of the second linearly polarized light L2d emitted from the second polarizing plate 52 is expressed by the following formula. I=I0 sin2(2θ) sin2(nΔnd / λ) Formula (1) I0=incident light intensity θ=the angle between the alignment direction P of the liquid crystal layer 5 and the polarization axis of the first polarizer 51 n = refractive index of liquid crystal layer 5 Δnd=Retardation of the liquid crystal layer 5 Δn=birefringence d = cell gap λ = wavelength of incident light
[0081] Therefore, the amount of emitted light I is affected by the angle θ formed between the alignment direction P of the liquid crystal layer 5 and the polarization axis of the first polarizer 51. Here, the polarization axis of the polarizer corresponds to the optical axis direction of the first linearly polarized light L1a incident on the liquid crystal panel 100. Therefore, if the alignment of the liquid crystal molecules 5a is disturbed by the transverse electric field, this influence will extend to the amount of emitted light I, resulting in the appearance of black areas on a white screen.
[0082] Next, the phase difference between the first phase difference control element 60 and the second phase difference control element 70 in the second mode will be described with reference to FIGS. 6A and 6B.
[0083] If the phase difference value of the first phase difference control element 60 and the second phase difference control element 70 is λ / 4, when the first linearly polarized light L1 is incident on the first phase difference control element 60 with its vibration direction at an angle of θ=+45° with respect to the slow axis of the first phase difference control element 60, the light emerging from the first phase difference control element 60 becomes clockwise circularly polarized light L3a. In contrast, when the vibration direction of the first linearly polarized light L1 and the slow axis of the first phase difference control element 60 form an angle of θ=−45°, the light emerges as counterclockwise circularly polarized light L3a.
[0084] In this embodiment, as shown in FIG. 6A, in the liquid crystal panel 100, the first linearly polarized light L1 emitted from the first polarizer 51 is incident on the first phase difference control element 60, and clockwise circularly polarized light L3a is incident on the liquid crystal panel 100.
[0085] Here, when a pixel of the liquid crystal panel 100 is in an OFF state corresponding to black display, clockwise circularly polarized light L3b is emitted from the liquid crystal panel 100, and as a result, the clockwise circularly polarized light L3b is incident on the second phase difference control element 70. Therefore, the second phase difference control element 70 emits light of the first linearly polarized light L1c, and therefore no display light is emitted from the second polarizer 52.
[0086] 6B, when a pixel of the liquid crystal panel 100 is in an ON state corresponding to white display, left-handed circularly polarized light L4b is emitted from the liquid crystal panel 100, and as a result, left-handed circularly polarized light is incident on the second phase difference control element 70. Therefore, second linearly polarized light L2c is emitted from the second phase difference control element 70, and this second linearly polarized light L2c passes through the second polarizer 52 and is emitted as second linearly polarized light L2d.
[0087] Here, when the light incident on the liquid crystal panel 100 is circularly polarized light L3a, the term sin2(2θ) does not exist in equation (1), and therefore the amount of emitted light I is expressed by the following equation. Therefore, even if the alignment of the liquid crystal molecules 5a is disturbed by the lateral electric field, this does not affect the amount of emitted light I, and it is possible to prevent black areas from appearing on a white screen. Therefore, if the phase difference between the first phase difference control element 60 and the second phase difference control element 70 is set to λ / 4, it is possible to minimize the influence of poor alignment due to reverse tilt domains. I=I0 sin2(nΔnd / λ) Formula (2)
[0088] However, when the light incident on the liquid crystal panel 100 is circularly polarized light L3a, the circularly polarized light L3a incident on the liquid crystal panel 100 is prone to light leakage due to phase changes when reflected from the side surfaces of the wiring 8, 17, etc., and the contrast ratio is likely to decrease.
[0089] 7 is a graph showing the relationship between the phase difference of the phase difference control element and the display quality of the image. The horizontal axis is the contrast ratio, and the right side of the graph indicates a higher contrast ratio than the left side. The vertical axis is the degree of display defect, and the upper side of the graph indicates a greater influence of alignment defects than the lower side.
[0090] FIG. 7 shows the effect on display defects of the liquid crystal panel 100 and the change in contrast ratio when the phase difference of the first phase difference control element 60 and the second phase difference control element 70 is changed from zero to λ / 4. When the phase difference between the first phase difference control element 60 and the second phase difference control element 70 is controlled to zero, that is, when the first mode, which is the linear polarization mode, is used, the degradation of display quality due to poor alignment is not improved, but a screen with a high contrast ratio can be displayed. Furthermore, when the phase difference of the first phase difference control element 60 and the second phase difference control element 70 is controlled to approach λ / 4, that is, when the second mode, elliptical polarization or circular polarization mode, is used, the contrast ratio decreases, but the degradation of display quality due to poor alignment is improved.
[0091] In this embodiment, the phase difference value R of the first phase difference control element 60 and the second phase difference control element 70 is set to a value in the range of zero to λ / 4 based on the screen data to be displayed or the brightness of the room where the display is performed.
[0092] 1.6. Overview of Phase Difference Control FIG. 8 is a functional block diagram showing a configuration related to phase difference control. Image processing unit 80 includes a frame memory 81, an image signal output unit 82, a histogram generation unit 83, and a calculation unit 84. Frame memory 81 stores one frame of image data based on an input image signal Vs. Image signal output unit 82 outputs a red image signal VsR to liquid crystal panel 100R, a green image signal VsG to liquid crystal panel 100G, and a blue image signal VsB to liquid crystal panel 100B based on the input image signal Vs.
[0093] The histogram generation unit 83 generates a luminance histogram based on one frame of image data stored in the frame memory 81. The calculation unit 84 calculates the average gradation of the display screen for one frame based on the generated luminance histogram and outputs average gradation information K. Note that the calculation unit 84 may also calculate and output the contrast of the display screen for one frame based on the generated luminance histogram, as will be described later.
[0094] The phase difference adjusting section 90 includes a phase difference determining section 91 and a phase difference control signal output section 92 . The phase difference determination unit 91 determines the phase differences of the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B based on average gradation information K of one frame of the display screen output from the calculation unit 84 of the image processing unit 80. The phase difference adjustment unit 90 has a table that associates the average gradation information K with the phase difference, and determines the phase difference based on this table. The phase difference control signal output unit 92 outputs phase difference control signals RcR, RcG, and RcB to the liquid crystal devices 1R, 1G, and 1B based on the phase difference determined by the phase difference determination unit 91, for controlling the phase differences of the first phase difference control elements 60R, 60G, and 60B and the second phase difference control elements 70R, 70G, and 70B, respectively.
[0095] In the liquid crystal device 1G, the phase difference control signal RcG is input to a first phase difference control element driving unit 68 and a second phase difference control element driving unit 78, which serve as a control unit. The control unit may further include an image processing unit 80 and a histogram generating unit 83. The control unit may also further include a brightness detection unit 95. The first phase difference control element drive unit 68 controls the phase difference of the first phase difference control element 60G based on the phase difference control signal RcG. The first phase difference control element drive unit 68 controls the voltages applied to the electrodes 63 and 64 so that the phase difference of the liquid crystal layer 67 becomes the phase difference determined by the phase difference determiner 91.
[0096] The second phase difference control element driving unit 78 controls the phase difference of the second phase difference control element 70G based on the phase difference control signal RcG. The second phase difference control element driving unit 78 controls the voltages applied to the electrodes 73 and 74 so that the phase difference of the liquid crystal layer 77 becomes the phase difference determined by the phase difference determination unit 91. The first phase difference control element driving section 68 and the second phase difference control element driving section 78 of the liquid crystal device 1R and the liquid crystal device 1B are configured in the same manner as the liquid crystal device 1G.
[0097] The phase difference control signal RcG input to the first phase difference control element driver 68 and the second phase difference control element driver 78 does not need to be the same signal; different signals may be used for the first phase difference control element driver 68 and the second phase difference control element driver 78. For example, the phase difference control signal RcG may be adjusted so that the phase difference of the liquid crystal layer 67 is smaller than the phase difference of the liquid crystal layer 77. Considering the phase difference of the liquid crystal layer 5 when the liquid crystal panel 100 displays black, that is, when no drive voltage is applied to the liquid crystal layer 5, contrast is improved by making the phase difference of the liquid crystal layer 67 of the first phase difference control element 60G smaller than the phase difference of the liquid crystal layer 77 of the second phase difference control element 70G. Furthermore, the contrast can be further improved by controlling the sum of the phase difference of the liquid crystal layer 67 of the first phase difference control element 60G and the phase difference of the liquid crystal layer 5 of the liquid crystal panel 100 during black display to be the same as the phase difference of the liquid crystal layer 77 of the second phase difference control element 70G. Furthermore, the phase difference control signals RcR and RcB may also be adjusted in the same manner as the phase difference control signal RcG.
[0098] The phase difference control signals RcR, RcG, and RcB are adjusted so that the reverse tilt domains generated in the liquid crystal panels 100R, 100G, and 100B are approximately the same in the liquid crystal panels 100R, 100G, and 100B.
[0099] Here, if the degree of reverse tilt domain is to be made the same in the liquid crystal panels 100R, 100G, and 100B, the phase difference of the first phase difference control element 60 and the phase difference of the second phase difference control element 70 are controlled to be different phase differences in the liquid crystal devices 1R, 1G, and 1B.
[0100] For example, if the cell gaps of the liquid crystal panels 100R, 100G, and 100B are the same, the VT characteristics of the liquid crystal panels 100R, 100G, and 100B shift toward higher voltages as the panel corresponds to a color with a longer wavelength. This means that, among the liquid crystal panels 100R, 100G, and 100B, the maximum brightness voltage at which brightness is maximized is the highest for the liquid crystal panel 100R, followed by the liquid crystal panel 100G, and finally the liquid crystal panel 100B. For example, if the maximum brightness voltage of the liquid crystal panel 100G is 4.5V, the maximum brightness voltage of the liquid crystal panel 100R is 5.0V, and the maximum brightness voltage of the liquid crystal panel 100B is 4.0V. Therefore, the occurrence of reverse tilt domains during black-and-white display is the worst for the liquid crystal panel 100R, which has a larger potential difference, and the lightest for the liquid crystal panel 100B.
[0101] Therefore, the phase differences of the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B are set so that the first phase difference control element 60R and the second phase difference control element 70R of the liquid crystal device 1R have the largest phase difference, and the first phase difference control element 60B and the second phase difference control element 70B of the liquid crystal device 1B have the smallest phase difference.
[0102] For example, when the phase difference between the first phase difference control element 60G and the second phase difference control element 70G of the liquid crystal device 1G is set to λ / 8, the phase difference between the first phase difference control element 60R and the second phase difference control element 70R of the liquid crystal device 1R is set to a phase difference greater than λ / 8, and the phase difference between the first phase difference control element 60B and the second phase difference control element 70B of the liquid crystal device 1B is set to a phase difference smaller than λ / 8.
[0103] Furthermore, for example, if a liquid crystal material with a smaller birefringence Δn than the other panels is used for liquid crystal panel 100B in order to equalize the light resistance lifespan of each panel among liquid crystal panels 100R, 100G, and 100B, the VT characteristics of liquid crystal panel 100B will shift to the high voltage side, and the maximum brightness voltage of liquid crystal panel 100B will be the same as that of liquid crystal panel 100R. In this case, the reverse tilt domain during black and white display will be worse for liquid crystal panel 100B than for liquid crystal panel 100G. Therefore, the phase differences of the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B are set so that the liquid crystal device 1B has a larger phase difference than the liquid crystal device 1G, and so that the liquid crystal device 1G has the smallest phase difference.
[0104] Furthermore, in order to further increase the light resistance life of the liquid crystal panel 100B, a liquid crystal material with a smaller birefringence Δn is used, and as a countermeasure, if the maximum brightness voltage of the liquid crystal panel 100B exceeds the maximum drive voltage, the cell gap of the liquid crystal panel 100B is increased. However, increasing the cell gap worsens the reverse tilt domain of the liquid crystal panel 100B. In this case, too, the phase differences of the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B are set so that the liquid crystal device 1B has a larger phase difference than the liquid crystal device 1G, and so that the liquid crystal device 1G has the smallest phase difference.
[0105] Furthermore, the phase difference control signals RcR, RcG, and RcB may be adjusted so that the degree of reverse tilt domains generated in the liquid crystal panels 100R, 100G, and 100B differs among the liquid crystal panels 100R, 100G, and 100B. For example, the phase difference of the liquid crystal layer 67 of the first phase difference control element 60G and the phase difference of the liquid crystal layer 77 of the second phase difference control element 70G of the liquid crystal panel 100G, which corresponds to green light that has a high luminous efficiency and in which display defects due to reverse tilt domains are more noticeable, are controlled to be higher than those of the others. Specifically, the phase difference between the first phase difference control element 60G and the second phase difference control element 70G of the liquid crystal device 1G is controlled to the second mode, and the phase differences between the first phase difference control elements 60B and 60R and the second phase difference control elements 70B and 70R of the liquid crystal devices 1B and 1R are controlled to the first mode. The phase difference between the first phase difference control element 60B and the second phase difference control element 70B of the liquid crystal device 1B may be smaller than the phase difference between the first phase difference control element 60R and the second phase difference control element 70R of the liquid crystal device 1R.
[0106] The panel driver 110 drives the liquid crystal panel 100G based on the green image signal VsG. The liquid crystal devices 1R and 1B are configured in the same manner as the liquid crystal device 1G.
[0107] The phase difference determination unit 91 may determine the phase difference based on brightness information from the brightness detection unit 95. For example, when the screen 500 is installed in a bright place, the contrast CR for the displayed image decreases, and therefore, display contradiction is unlikely to occur even if the phase difference of the phase difference control element is increased so as to eliminate display defects due to reverse tilt domains. For this reason, even when the second mode is selected based on the average gradation information K, the screen 500 may be programmed to select only the first mode.
[0108] The image processing unit 80, the phase difference adjustment unit 90, the first phase difference control element driving unit 68, the second phase difference control element driving unit 78, and the panel driving unit 110 may be mounted on an integrated circuit on a single chip, or may be divided into multiple chips. The image processing unit 80, the phase difference adjustment unit 90, the first phase difference control element driving unit 68, the second phase difference control element driving unit 78, and the panel driving unit 110 may be mounted on a system-on-a-chip (SOC) of a projection display device 1000 serving as a display device, or on a driving IC (Integrated Circuit) that drives the liquid crystal panel 100. Some of the functional blocks, for example, the image processing unit 80 and the phase difference adjustment unit 90, may be mounted on the SOC, and the first phase difference control element driving unit 68, the second phase difference control element driving unit 78, and the panel driving unit 110 may be mounted on the driving IC. These functional blocks may also be formed on the substrate of the liquid crystal panel 100.
[0109] FIG. 9 is a flowchart for determining the phase difference of the phase difference control element depending on the brightness. In step S1, the histogram generating unit 83 generates a histogram of the gradation Pn of each pixel based on the image data for one screen stored in the frame memory 81.
[0110] Fig. 10A is an explanatory diagram showing an example of a dark display screen, showing a screen example with black circles displayed on a dark gray background. Fig. 10B is a luminance histogram of the dark display screen of Fig. 10A, showing gradation Pn on the horizontal axis and frequency on the vertical axis.
[0111] When an overall dark screen is displayed as shown in FIG. 10A, the luminance histogram generated from the gradation Pn of each pixel on one screen will have a high frequency on the low gradation side as shown in FIG. 10B. In the case of such a dark screen, the horizontal electric field between adjacent pixels is unlikely to be large, and the occurrence of reverse tilt domains is also rare. Furthermore, even if reverse tilt domains do occur, the display defects caused by the reverse tilt domains are unlikely to be visually noticeable by the viewer. Therefore, in this embodiment, when a dark screen is displayed, the first phase difference control element 60 and the second phase difference control element 70 are controlled to the first mode in which the phase difference is set to zero, as will be described later.
[0112] Fig. 11A is an explanatory diagram showing an example of a bright display screen, showing a light gray circle on a bright white background. Fig. 11B is a luminance histogram of the bright display screen of Fig. 11A, with the horizontal axis representing the gradation Pn and the vertical axis representing the frequency, similar to Fig. 10B.
[0113] In the case of an overall bright screen as shown in FIG. 11A, a luminance histogram generated from the gradation Pn of each pixel on one screen will have a high frequency on the high gradation side as shown in FIG. 11B. In such a bright screen, the horizontal electric field between adjacent pixels tends to be large, and reverse tilt domains are likely to occur. Furthermore, display defects caused by reverse tilt domains are easily visible to the viewer. Therefore, in this embodiment, when a bright screen is displayed, the first phase difference control element 60 and the second phase difference control element 70 are controlled to the second mode in which the phase difference is set to λ / 8, λ / 4, or the like, as will be described later.
[0114] In the flowchart of FIG. 9, in step S2, the calculation unit 84 calculates the average gradation information K for one screen based on the generated histogram. In steps S3, S4, S5, and S6, the phase difference determination unit 91 determines the phase difference between the first phase difference control element 60 and the second phase difference control element 70. In steps S3, S4, S5, and S6, a is 50, b is 100, c is 150, and d is 200. Note that the values of a, b, c, and d are merely examples and may be changed as appropriate.
[0115] The phase difference determination unit 91 determines the phase difference based on a table that associates the average gradation information K with the phase difference. In step S7, if it is determined in step S3 that the average gradation information K is less than a, the phase difference determination unit 91 sets the phase difference to zero. In step S8, if it is determined in step S4 that the average gradation information K is equal to or greater than a and less than b, the phase difference determination unit 91 sets the phase difference to λ / 32. In step S9, if it is determined in step S5 that the average gradation information K is equal to or greater than b and less than c, the phase difference determination unit 91 sets the phase difference to λ / 16. In step S10, if it is determined in step S6 that the average gradation information K is equal to or greater than c and less than d, the phase difference determination unit 91 sets the phase difference to λ / 8. In step S11, if it is determined in step S6 that the average gradation information K is equal to or greater than d, the phase difference determination unit 91 sets the phase difference to λ / 4.
[0116] The phase difference determination unit 91 controls the phase difference of the first phase difference control element 60 and the phase difference of the second phase difference control element 70 in each of the liquid crystal devices 1R, 1G, and 1B so that they are the same. Furthermore, the phase difference may be corrected according to individual differences between the first phase difference control element 60 and the second phase difference control element 70.
[0117] In step S12, the phase difference control signal output unit 92 outputs phase difference control signals RcR, RcG, RcB that control the phase difference to the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B of the liquid crystal devices 1R, 1G, 1B based on the phase difference determined by the phase difference determination unit 91.
[0118] The liquid crystal device 1R applies a voltage for driving the liquid crystal layer 67 of the first phase difference control element 60R and the liquid crystal layer 77 of the second phase difference control element 70R to the electrodes 63, 64 of the first phase difference control element 60R and the electrodes 73, 74 of the second phase difference control element 70R based on the phase difference control signal RcR, thereby changing the alignment direction of the liquid crystal molecules 67a in the liquid crystal layer 67 and the alignment direction of the liquid crystal molecules 77a in the liquid crystal layer 77 to a desired direction between a direction perpendicular to the substrate surface and a direction parallel to the substrate surface. This controls the phase differences of the first phase difference control element 60R and the second phase difference control element 70R. Similarly, the liquid crystal device 1G controls the phase differences of the first phase difference control element 60G and the second phase difference control element 70G based on the phase difference control signal RcG. The liquid crystal device 1B controls the phase differences of the first phase difference control element 60B and the second phase difference control element 70B based on the phase difference control signal RcB.
[0119] In step S7, when the phase difference is set to zero, the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B enter the first mode, which is the linear polarization mode, and the phase differences of the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B are controlled so that the polarization state of the incident linearly polarized light is not changed and it is emitted as linearly polarized light.
[0120] In the case of a dark screen such as that shown in Figure 10B, the first mode is selected, and display is performed with priority given to contrast. In the case of a dark screen, the horizontal electric field between pixels is less likely to become large, the occurrence of reverse tilt domains is suppressed, and even if reverse tilt domains occur, the effects of alignment defects are less visible. Therefore, by controlling the phase differences of the first phase difference control elements 60R, 60G, and 60B and the second phase difference control elements 70R, 70G, and 70B to the first mode, a contrast-priority display can be achieved, thereby improving the display quality perceived by the viewer.
[0121] In steps S8 to S11, the second mode is entered, and the first phase difference control elements 60R, 60G, and 60B convert the incident linearly polarized light into elliptically polarized light or circularly polarized light and emit it according to the phase difference, and the second phase difference control elements 70R, 70G, and 70B convert the incident elliptically polarized light or circularly polarized light into linearly polarized light and emit it according to the phase difference. Note that the first phase difference control elements 60R, 60G, and 60B emit elliptically polarized light when the phase difference is λ / 32, λ / 16, and λ / 8, and emit circularly polarized light when the phase difference is λ / 4.
[0122] 11B, the horizontal electric field between pixels becomes large, making it easier for reverse tilt domains to occur and also making the effects of alignment defects more visible. Therefore, by controlling the phase differences of the first phase difference control elements 60R, 60G, and 60B and the phase differences of the second phase difference control elements 70R, 70G, and 70B to the second mode, it is possible to prioritize improving alignment defects and improve the display quality perceived by the viewer.
[0123] As described above, the liquid crystal device 1 serving as the light modulation module of this embodiment can provide the following effects. The liquid crystal device 1 of this embodiment includes a liquid crystal panel 100 having a liquid crystal layer 5 as a first liquid crystal layer, a first polarizer 51 provided on the incident surface side of the liquid crystal panel 100, a second polarizer 52 provided on the exit surface side of the liquid crystal panel 100, a first phase difference control element 60 as a first phase difference adjustment element arranged between the first polarizer 51 and the liquid crystal panel 100 and having a liquid crystal layer 67 as a second liquid crystal layer, a second phase difference control element 70 as a second phase difference adjustment element arranged between the liquid crystal panel 100 and the second polarizer 52 and having a liquid crystal layer 77 as a third liquid crystal layer, and a first phase difference control element drive unit 68 and a second phase difference control element drive unit 78 as control units that control the phase difference of the liquid crystal layer 67 and the phase difference of the liquid crystal layer 77. The first polarizing element may be a laser light source 200 that emits linearly polarized light. Furthermore, "based on an image displayed by the liquid crystal panel 100" is synonymous with "based on image data." According to this configuration, the phase difference of the first phase difference control element 60 and the phase difference of the second phase difference control element 70 can be controlled, and therefore the polarization state of light incident on and exiting the liquid crystal panel 100 can be controlled to control display defects caused by the occurrence of reverse tilt domains, thereby improving the display quality seen by the viewer. Furthermore, the display quality seen by the viewer can be improved while balancing with the reduced contrast caused by improving the display defects caused by the reverse tilt domains.
[0124] Furthermore, in the liquid crystal device 1 of this embodiment, the first phase difference control element 60 has a fourth alignment film 66 as a first incident side alignment film and a third alignment film 65 as a first exit side alignment film arranged on either side of the liquid crystal layer 67, and the fourth alignment film 66 and the third alignment film 65 are inorganic alignment films that align the liquid crystal molecules 67a of the liquid crystal layer 67 in a first direction parallel to the alignment direction P, and the second phase difference control element 70 has a sixth alignment film 76 as a second incident side alignment film and a fifth alignment film 75 as a second exit side alignment film arranged on either side of the liquid crystal layer 77, and the sixth alignment film 76 and the fifth alignment film 75 are inorganic alignment films that align the liquid crystal molecules 77a of the liquid crystal layer 77 in a second direction that intersects the first direction. According to this configuration, the polarization state of light incident on the liquid crystal panel 100 can be converted from linearly polarized light to linearly polarized light or circularly polarized light, and the polarization state of light exiting the liquid crystal panel 100 can be controlled from linearly polarized light or circularly polarized light to linearly polarized light, thereby controlling display defects caused by the occurrence of reverse tilt domains and improving the display quality seen by the viewer.
[0125] Furthermore, in the liquid crystal device 1 of this embodiment, the light transmission region of the first phase difference control element 60 includes a first light transmission region and a second light transmission region, and the voltage value applied to the liquid crystal layer 67 in the first light transmission region is different from the voltage value applied to the liquid crystal layer 67 in the second light transmission region; the light transmission region of the second phase difference control element 70 includes a third light transmission region and a fourth light transmission region, and the voltage value applied to the liquid crystal layer 77 in the third light transmission region is different from the voltage value applied to the third liquid crystal layer in the fourth light transmission region. According to this configuration, the polarization state of light incident on the liquid crystal panel 100 can be converted from linearly polarized light to linearly polarized light or circularly polarized light for each region, and the polarization state of light exiting the liquid crystal panel 100 can be controlled from linearly polarized light or circularly polarized light to linearly polarized light for each region, thereby enabling more detailed control of display defects caused by the occurrence of reverse tilt domains and improving the display quality seen by the viewer.
[0126] In the liquid crystal device 1 of this embodiment, the thickness d2 of the liquid crystal layer 67 is equal to or smaller than the thickness d1 of the liquid crystal layer 5, and the thickness d3 of the liquid crystal layer 77 is equal to or smaller than the thickness d1 of the liquid crystal layer 5. According to this configuration, by making the thicknesses d2 and d3 of the liquid crystal layers 67 and 77 equal to or less than the thickness d1 of the liquid crystal layer 5, deterioration of contrast can be suppressed, thereby improving the display quality seen by the viewer.
[0127] Furthermore, in the liquid crystal device 1 of this embodiment, the birefringence index Δn2 of the liquid crystal material contained in the liquid crystal layer 67 is smaller than the birefringence index Δn1 of the liquid crystal material contained in the liquid crystal layer 5, and the birefringence index Δn3 of the liquid crystal material contained in the liquid crystal layer 77 is smaller than the birefringence index Δn1 of the liquid crystal material contained in the liquid crystal layer 5. According to this configuration, the birefringence of the liquid crystal layers 67 and 77 is made smaller than the birefringence of the liquid crystal layer 5, thereby improving the light resistance lifespan, and it is possible to avoid a situation in which the liquid crystals of the first phase difference control element 60 and the second phase difference control element 70 reach the end of their life before the liquid crystal panel 100, making the liquid crystal device 1 unusable.
[0128] Furthermore, in the liquid crystal device 1 of this embodiment, the first phase difference control element driving unit 68 and the second phase difference control element driving unit 78 serving as control units control the phase difference of the first phase difference control element 60 to be smaller than the phase difference of the second phase difference control element 70. According to this configuration, the phase difference of the first phase difference control element 60 and / or the second phase difference control element 70 can be controlled taking into account the influence of the phase difference of the liquid crystal panel 100, thereby improving the conversion accuracy when converting the polarization state of light emitted from the liquid crystal panel 100 into linearly polarized light.
[0129] Furthermore, in the liquid crystal device 1 of this embodiment, the first phase difference control element driving unit 68 and the second phase difference control element driving unit 78 serving as control units control the phase difference of the first phase difference control element 60 serving as the first phase difference adjustment element to be larger than the phase difference of the second phase difference control element 70 serving as the second phase difference adjustment element. According to this configuration, the phase difference of the first phase difference control element 60 and / or the second phase difference control element 70 can be controlled taking into account the influence of the phase difference of the liquid crystal panel 100, thereby improving the conversion accuracy when converting the polarization state of light emitted from the liquid crystal panel 100 into linearly polarized light.
[0130] Furthermore, in the liquid crystal device 1 of this embodiment, the first phase difference control element driving unit 68 and the second phase difference control element driving unit 78 serving as control units control the phase difference between the first phase difference control element 60 and the second phase difference control element 70 so that the sum of the phase difference of the first phase difference control element 60 and the phase difference of the liquid crystal panel 100 during black display is equal to the phase difference of the second phase difference control element 70. According to this configuration, the phase difference of the second phase difference control element 70 can be controlled taking into account the influence of the phase difference of the liquid crystal panel 100, thereby improving the conversion accuracy when converting the polarization state of light emitted from the liquid crystal panel 100 into linearly polarized light.
[0131] Furthermore, in the liquid crystal device 1 of this embodiment, the first phase difference control element driving unit 68 and the second phase difference control element driving unit 78 serving as control units control the phase difference between the first phase difference control element 60 and the second phase difference control element 70 so that the phase difference of the first phase difference control element 60 serving as the first phase difference adjustment element is equal to the sum of the phase difference of the liquid crystal panel 100 during black display and the phase difference of the second phase difference control element 70 serving as the second phase difference adjustment element. According to this configuration, the phase difference of the first phase difference control element 60 and / or the second phase difference control element 70 can be controlled taking into account the influence of the phase difference of the liquid crystal panel 100, thereby improving the conversion accuracy when converting the polarization state of light emitted from the liquid crystal panel 100 into linearly polarized light.
[0132] Furthermore, in the liquid crystal device 1 of this embodiment, the first phase difference control element driving unit 68 and the second phase difference control element driving unit 78 serving as control units control the phase difference of the first phase difference control element 60 and the phase difference of the second phase difference control element 70 based on image data of an image to be displayed on the liquid crystal panel 100. According to this configuration, display defects caused by the occurrence of reverse tilt domains can be controlled in accordance with the image to be displayed, thereby improving the display quality seen by the viewer.
[0133] Furthermore, in the liquid crystal device 1 of this embodiment, the first phase difference control element driving unit 68 and the second phase difference control element driving unit 78 serving as control units control the phase difference of the first phase difference control element 60 and the phase difference of the second phase difference control element 70 within the range of 0≦Δnd≦λ / 4. According to this configuration, the polarization state of light incident on the liquid crystal panel 100 can be converted from linearly polarized light to linearly polarized light or circularly polarized light, and the polarization state of light exiting the liquid crystal panel 100 can be controlled from linearly polarized light or circularly polarized light to linearly polarized light, thereby controlling display defects caused by the occurrence of reverse tilt domains and improving the display quality seen by the viewer.
[0134] The liquid crystal device 1 of this embodiment comprises a first phase difference control element 60 arranged between a first polarizer 51 and a liquid crystal panel 100 having a liquid crystal layer 5, and a second phase difference control element 70 arranged between the liquid crystal panel 100 and a second polarizer 52. The first phase difference control element 60 has a liquid crystal layer 67, electrodes 63 and 64 that drive the liquid crystal layer 67, and a fourth alignment film 66 and a third alignment film 65 that are arranged across the liquid crystal layer 67 and align the liquid crystal molecules 67a of the liquid crystal layer 67 in a first direction parallel to the alignment direction P. The second phase difference control element 70 has a liquid crystal layer 77, electrodes 73 and 74 that drive the liquid crystal layer 77, and a sixth alignment film 76 and a fifth alignment film 75 that are arranged across the liquid crystal layer 77 and align the liquid crystal molecules 77a of the liquid crystal layer 77 in a second direction that intersects the first direction. According to this configuration, the polarization state of light incident on the liquid crystal panel 100 can be converted from linearly polarized light to linearly polarized light or circularly polarized light, and the polarization state of light exiting the liquid crystal panel 100 can be controlled from linearly polarized light or circularly polarized light to linearly polarized light, thereby controlling display defects caused by the occurrence of reverse tilt domains and improving the display quality seen by the viewer.
[0135] A projection display device 1000 as a display device of this embodiment includes the above-described light modulation module. According to this configuration, by controlling the polarization state of the light incident on and exiting the liquid crystal panel 100, it is possible to provide a display device that can control display defects caused by the occurrence of reverse tilt domains and improve the display quality seen by the viewer.
[0136] The projection display device 1000 of this embodiment is a display device that includes a liquid crystal panel 100G as a first liquid crystal panel that modulates light of a first wavelength, and a liquid crystal panel 100B as a second liquid crystal panel that modulates light of a second wavelength that is different from the first wavelength, and has a first phase difference control element 60G arranged on the light incident side of the liquid crystal panel 100G, a second phase difference control element 70G arranged on the light exit side of the liquid crystal panel 100G, and a phase difference adjustment unit 90 as a control unit that controls the phase difference of the first phase difference control element 60G and the phase difference of the second phase difference control element 70G. According to this configuration, by controlling the polarization state of light incident on and exiting the liquid crystal panel 100G provided in the projection display device 1000, it is possible to control display defects caused by the occurrence of reverse tilt domains and improve the display quality seen by the viewer. The first liquid crystal panel and the second liquid crystal panel may be read as the liquid crystal panel 100R and the liquid crystal panel 100G, respectively.
[0137] Furthermore, the projection display device 1000 of this embodiment includes a first phase difference control element 60B as a third phase difference adjustment element arranged on the light incident side of the liquid crystal panel 100B, and a second phase difference control element 70B as a fourth phase difference adjustment element arranged on the light exit side of the liquid crystal panel 100B, and the phase difference adjustment unit 90 controls the phase difference of the first phase difference control element 60G and the phase difference of the second phase difference control element 70G of the liquid crystal panel 100G to each be a first phase difference, and controls the phase difference of the first phase difference control element 60B and the phase difference of the second phase difference control element 70B of the liquid crystal panel 100B to each be a second phase difference different from the first phase difference. According to this configuration, even if the display defects caused by the reverse tilt domain differ between liquid crystal panel 100G and liquid crystal panel 100B, the display defects caused by the occurrence of the reverse tilt domain can be controlled for each liquid crystal panel, thereby improving the display quality seen by the viewer.
[0138] Furthermore, in the projection display device 1000 of this embodiment, when the liquid crystal driving voltage at maximum brightness of the liquid crystal panel 100G is higher than the liquid crystal driving voltage at maximum brightness of the liquid crystal panel 100B, the phase difference adjustment unit 90 controls the first phase difference to be larger than the second phase difference. According to this configuration, the phase difference can be controlled depending on the degree of occurrence of the reverse tilt domain, thereby improving the display quality seen by the viewer.
[0139] Furthermore, in the projection display device 1000 of this embodiment, the thickness of the liquid crystal layer 5 of the liquid crystal panel 100G is thinner than the thickness of the liquid crystal layer 5 of the liquid crystal panel 100B. According to this configuration, even if the thickness of the liquid crystal layer 5 differs for each liquid crystal panel, the phase difference can be controlled for each liquid crystal panel, thereby improving the display quality seen by the viewer.
[0140] Furthermore, in the projection display device 1000 of this embodiment, the birefringence Δn of the liquid crystal layer of the liquid crystal panel 100B is smaller than the birefringence Δn of the liquid crystal layer 5 of the liquid crystal panel 100G. According to this configuration, a liquid crystal material with a small birefringence index Δn is used for the liquid crystal layer 5 of the liquid crystal panel 100B corresponding to short-wavelength blue light, thereby improving the light resistance life of the liquid crystal panel 100B and making the light resistance life of the liquid crystal panel 100B the same as that of the liquid crystal panel 100G corresponding to green light and the liquid crystal panel 100R corresponding to red light.
[0141] Furthermore, in the projection display device 1000 of this embodiment, when the birefringence index Δn of the liquid crystal layer 5 of the liquid crystal panel 100B is smaller than the birefringence index Δn of the liquid crystal layer 5 of the liquid crystal panel 100G, the phase difference adjustment unit 90 makes the second phase difference, which is the phase difference between the first phase difference control element 60B and the second phase difference control element 70B of the liquid crystal panel 100B, larger than the first phase difference, which is the phase difference between the first phase difference control element 60G and the second phase difference control element 70G of the liquid crystal panel 100G. According to this configuration, a liquid crystal material with a low birefringence index Δn is used for the liquid crystal layer 5 of the liquid crystal panel 100B, which corresponds to short-wavelength blue light, so that the light resistance life of the liquid crystal panel 100B can be improved. In addition, since the first phase difference is made larger than the second phase difference, the degree of display defects caused by reverse tilt domains occurring in the liquid crystal panels 100B and 100G can be made uniform between the liquid crystal panels 100B and 100G.
[0142] The light modulation module 4 also includes a liquid crystal panel 100 having a liquid crystal layer 5 as a first liquid crystal layer, a first polarizer 51 provided on the light incident side of the liquid crystal panel 100, a second polarizer 52 provided on the light exit side of the liquid crystal panel 100, a first phase difference control element 60 as a first phase difference control adjustment element to which a voltage corresponding to an image displayed by the liquid crystal panel 100 is applied and which is disposed between the first polarizer 51 and the liquid crystal panel 100 and has a liquid crystal layer 67 as a second liquid crystal layer, and a second phase difference control element 70 as a second phase difference adjustment element to which a voltage corresponding to an image displayed by the liquid crystal panel 100 is applied and which is disposed between the liquid crystal panel 100 and the second polarizer 52 and has a liquid crystal layer 77 as a third liquid crystal layer. According to this configuration, the polarization state of light incident on the liquid crystal panel 100 can be controlled based on the image displayed on the liquid crystal panel 100, thereby improving the display quality seen by the viewer.
[0143] 2. Embodiment 2 2.1. Overview of Phase Difference Control FIG. 12 is a flowchart for determining the phase difference of the phase difference control element based on the contrast. In step S21, the histogram generating unit 83 generates a histogram of the gradation Pn of each pixel based on the image data for one screen stored in the frame memory 81. Fig. 13A is an explanatory diagram showing an example of a low-contrast display screen, where an example screen with little difference in brightness across the entire screen is displayed. Fig. 13B is a luminance histogram of the low-contrast display screen of Fig. 13A, with the horizontal axis showing gradation Pn and the vertical axis showing frequency.
[0144] When a screen with little difference in brightness across the entire screen, as shown in Fig. 13A, is displayed, the brightness histogram generated from the gradation Pn of each pixel on the screen will have a single large convex shape, as shown in Fig. 13B. In the case of such a low-contrast screen, the horizontal electric field between adjacent pixels is unlikely to be large, and the occurrence of reverse tilt domains is also rare. Even if reverse tilt domains do occur, the display defects caused by the reverse tilt domains are unlikely to be visually recognized by the viewer. Therefore, in this embodiment, when a dark screen is displayed, the first phase difference control element 60 and the second phase difference control element 70 are controlled to the first mode in which the phase difference is set to zero, as will be described later.
[0145] Fig. 14A is an explanatory diagram showing an example of a high-contrast display screen, which displays an example of a screen with a large difference in brightness between white and black. Fig. 14B is a luminance histogram of the high-contrast display screen of Fig. 14A, and similarly to Fig. 13B, the horizontal axis represents gradation Pn and the vertical axis represents frequency.
[0146] When a high-brightness screen such as that shown in FIG. 14A is displayed, the luminance histogram generated from the gradation Pn of each pixel on the screen will have two large convex shapes at two separate locations, as shown in FIG. 14B. In the case of such a high-contrast screen, the horizontal electric field between adjacent pixels tends to be large, and reverse tilt domains are likely to occur. Furthermore, display defects due to reverse tilt domains are easily noticeable to viewers. Therefore, in this embodiment, when a high contrast screen is displayed, the first phase difference control element 60 and the second phase difference control element 70 are controlled to the second mode in which the phase difference is set to λ / 8, λ / 4, or the like, as will be described later.
[0147] In step S22 of the flowchart in Fig. 12, the calculation unit 84 calculates the contrast CR of one screen based on the generated histogram. The contrast CR is calculated, for example, from the difference in gradation between two gradations with high frequency in the histogram. Note that if there are three or more gradations with high frequency, it is advisable to find the contrast CR from the difference in gradation between two gradations with the largest difference.
[0148] In steps S23, S24, S25, and S26, the phase difference determination unit 91 determines the phase differences between the first phase difference control element 60 and the second phase difference control element 70. In steps S23, S24, S25, and S26, a is 500, b is 1000, c is 1500, and d is 2000. Note that the values of a, b, c, and d are merely examples and may be changed as appropriate.
[0149] The phase difference determination unit 91 determines the phase difference based on a table that associates the contrast CR with the phase difference. In step S27, if it is determined in step S23 that the contrast CR is less than a, the phase difference determination unit 91 sets the phase difference to zero. In step S28, if it is determined in step S24 that the contrast CR is equal to or greater than a and less than b, the phase difference determination unit 91 sets the phase difference to λ / 32. In step S29, if it is determined in step S25 that the contrast CR is equal to or greater than b and less than c, the phase difference determination unit 91 sets the phase difference to λ / 16. In step S30, if it is determined in step S26 that the contrast CR is equal to or greater than c and less than d, the phase difference determination unit 91 sets the phase difference to λ / 8. In step S31, if it is determined in step S26 that the contrast CR is equal to or greater than d, the phase difference determination unit 91 sets the phase difference to λ / 4.
[0150] The phase difference determination unit 91 controls the phase difference of the first phase difference control element 60 and the phase difference of the second phase difference control element 70 in each of the liquid crystal devices 1R, 1G, and 1B so that they are the same. Furthermore, the phase difference may be corrected according to individual differences between the first phase difference control element 60 and the second phase difference control element 70.
[0151] In step S22, the phase difference control signal output unit 92 outputs phase difference control signals RcR, RcG, RcB to the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B of the liquid crystal devices 1R, 1G, 1B based on the phase difference determined by the phase difference determination unit 91, to control the phase differences of the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B.
[0152] The liquid crystal device 1R applies a voltage to the electrodes 63, 64 of the first phase difference control element 60R and the electrodes 73, 74 of the second phase difference control element 70R to drive the liquid crystal layer 67 of the first phase difference control element 60R and the liquid crystal layer 77 of the second phase difference control element 70R based on the phase difference control signal RcR. This controls the phase differences of the first phase difference control element 60R and the second phase difference control element 70R. Similarly, the liquid crystal device 1G controls the phase differences of the first phase difference control element 60G and the second phase difference control element 70G based on the phase difference control signal RcG. The liquid crystal device 1B controls the phase differences of the first phase difference control element 60B and the second phase difference control element 70B based on the phase difference control signal RcB.
[0153] In step S27, when the phase difference is set to zero, the first phase difference control elements 60R, 60G, 60B and the second phase difference control elements 70R, 70G, 70B enter the first mode, which is the linear polarization mode, and the phase difference is controlled so that the incident linearly polarized light is emitted as linearly polarized light without changing the polarization state of the light.
[0154] In the case of a low-contrast screen such as that shown in Figure 13B, the first mode is selected, and contrast is prioritized for display. In the case of a low-contrast screen, the horizontal electric field between pixels is unlikely to become large, the occurrence of reverse tilt domains is suppressed, and even if reverse tilt domains do occur, the effects of alignment defects are difficult for the viewer to see. Therefore, by selecting contrast-priority display as the first mode, the display quality perceived by the viewer can be improved.
[0155] In steps S28 to S31, the second mode is entered, and the first phase difference control element 60 converts the incident linearly polarized light into elliptically polarized light or circularly polarized light and emits it according to the phase difference, and the second phase difference control element 70 converts the incident elliptically polarized light or circularly polarized light into linearly polarized light and emits it according to the phase difference. Note that the second phase difference control element 70 converts the incident elliptically polarized light into linearly polarized light and emits it when the phase difference is λ / 32, λ / 16, and λ / 8, converts the incident circularly polarized light into linearly polarized light and emits it when the phase difference is λ / 4, and emits the incident linearly polarized light as it is when the phase difference is zero.
[0156] In the case of a high-contrast screen such as that shown in FIG. 14B, the horizontal electric field between pixels becomes large, making it easier for reverse tilt domains to occur and also making the effects of alignment defects more visible. Therefore, by using the second mode to prioritize improving alignment defects, the display quality perceived by the viewer can be improved. [Explanation of symbols]
[0157] 1, 1B, 1G, 1R... liquid crystal device, 4... light modulation module, 5... liquid crystal layer, 5a... liquid crystal molecules, 9a... pixel electrode, 10... first substrate, 10a... display area, 16... first alignment film, 16a... pillars, 19... substrate body, 20... second substrate, 21... common electrode, 26... second alignment film, 26a... pillars, 29... substrate body, 51... first polarizing plate, 52... second polarizing plate, 60 , 60B, 60G, 60R...first phase difference control element, 61...third substrate, 62...fourth substrate, 63, 64...electrode, 65...third alignment film, 66...fourth alignment film, 67...liquid crystal layer, 67a...liquid crystal molecules, 68...first phase difference control element drive unit, 70, 70B, 70G, 70R...second phase difference control element, 71...fifth substrate, 72...sixth substrate, 73, 74...electrode, 75...fifth Alignment film, 76...sixth alignment film, 77...liquid crystal layer, 77a...liquid crystal molecules, 78...second phase difference control element driving unit, 80...image processing unit, 81...frame memory, 82...image signal output unit, 83...histogram generation unit, 84...calculation unit, 90...phase difference adjustment unit, 91...phase difference determination unit, 92...phase difference control signal output unit, 95...brightness detection unit, 100, 100B, 100G, 100R...liquid crystal panel, 110...panel driving unit, 200...laser light source, 300...projection optical system, 500...screen, 510...projection surface, 1000...projection display device, L...light, L1, L1a, L1b, L1c...first linearly polarized light, L2b, L2c, L2d...second linearly polarized light, L3a...circularly polarized light, L3b...right-handed circularly polarized light, L4b...left-handed circularly polarized light.
Claims
1. a liquid crystal panel having a first liquid crystal layer; a first polarizing element provided on the light incident side of the liquid crystal panel; a second polarizing element provided on the light exit side of the liquid crystal panel; a first phase difference adjusting element disposed between the first polarizing element and the liquid crystal panel and having a second liquid crystal layer; a second phase difference adjusting element disposed between the liquid crystal panel and the second polarizing element and having a third liquid crystal layer; a control unit that controls a phase difference of the second liquid crystal layer and a phase difference of the third liquid crystal layer, the first phase difference adjustment element has a first incident-side alignment film and a first emitting-side alignment film disposed with the second liquid crystal layer interposed therebetween, the first incident-side alignment film and the first emitting-side alignment film being inorganic alignment films that align liquid crystal molecules of the second liquid crystal layer in a first direction; the second phase difference adjustment element has a second incident-side alignment film and a second exit-side alignment film disposed with the third liquid crystal layer interposed therebetween, the second incident-side alignment film and the second exit-side alignment film being inorganic alignment films that align liquid crystal molecules of the third liquid crystal layer in a second direction intersecting the first direction; Liquid crystal device.
2. the light transmission region of the first phase difference adjusting element includes a first light transmission region and a second light transmission region, and a voltage value applied to the second liquid crystal layer in the first light transmission region is different from a voltage value applied to the second liquid crystal layer in the second light transmission region; the light transmission region of the second phase difference adjusting element includes a third light transmission region and a fourth light transmission region, and a voltage value applied to the third liquid crystal layer in the third light transmission region is different from a voltage value applied to the third liquid crystal layer in the fourth light transmission region; The liquid crystal device according to claim 1 .
3. the thickness of the second liquid crystal layer is equal to or less than the thickness of the first liquid crystal layer; the thickness of the third liquid crystal layer is equal to or less than the thickness of the first liquid crystal layer; 3. The liquid crystal device according to claim 1.
4. a birefringence index Δn2 of the liquid crystal material contained in the second liquid crystal layer is equal to or less than a birefringence index Δn1 of the liquid crystal material contained in the first liquid crystal layer; the birefringence index Δn3 of the liquid crystal material contained in the third liquid crystal layer is equal to or less than the birefringence index Δn1 of the liquid crystal material contained in the first liquid crystal layer; The liquid crystal device according to claim 1 .
5. The control unit controlling the phase difference of the first phase difference adjusting element to be smaller than the phase difference of the second phase difference adjusting element; The liquid crystal device according to claim 1 .
6. The control unit controlling the phase difference of the first phase difference adjusting element to be larger than the phase difference of the second phase difference adjusting element; The liquid crystal device according to claim 1 .
7. The control unit controlling the phase difference between the first phase difference adjusting element and the second phase difference adjusting element so that the sum of the phase difference of the first phase difference adjusting element and the phase difference of the liquid crystal panel during black display becomes equal to the phase difference of the second phase difference adjusting element; The liquid crystal device according to claim 1 .
8. The control unit controlling the phase difference between the first phase difference adjusting element and the second phase difference adjusting element so that the phase difference of the first phase difference adjusting element is equal to the sum of the phase difference of the liquid crystal panel during black display and the phase difference of the second phase difference adjusting element; The liquid crystal device according to claim 1 .
9. The control unit, in response to an image displayed by the liquid crystal panel, controlling the phase difference of the first phase difference adjusting element and the phase difference of the second phase difference adjusting element; The liquid crystal device according to claim 1 .
10. the control unit controls the phase difference of the first phase difference adjustment element and the phase difference of the second phase difference adjustment element within a range of 0≦Δnd≦λ / 4; The liquid crystal device according to claim 1 .
11. A display device comprising the liquid crystal device according to any one of claims 1 to 10.
12. A display device including a first liquid crystal panel that modulates light of a first wavelength and a second liquid crystal panel that modulates light of a second wavelength different from the first wavelength, a first phase difference adjusting element disposed on the light incident side of the first liquid crystal panel; a second phase difference adjusting element disposed on the light exit side of the first liquid crystal panel; a control unit that controls the phase difference of the first phase difference adjusting element and the phase difference of the second phase difference adjusting element, a third phase difference adjusting element disposed on the light incident side of the second liquid crystal panel, and a fourth phase difference adjusting element disposed on the light exit side of the second liquid crystal panel, The control unit a phase difference of the first phase difference adjusting element and a phase difference of the second phase difference adjusting element are each controlled to be a first phase difference, and a phase difference of the third phase difference adjusting element and a phase difference of the fourth phase difference adjusting element are each controlled to be a second phase difference different from the first phase difference; Display device.
13. When the liquid crystal driving voltage at maximum brightness of the first liquid crystal panel is higher than the liquid crystal driving voltage at maximum brightness of the second liquid crystal panel, The control unit The first phase difference is controlled to be larger than the second phase difference. The display device according to claim 12.
14. The thickness of the liquid crystal layer of the first liquid crystal panel is thinner than the thickness of the liquid crystal layer of the second liquid crystal panel. The display device according to claim 12.
15. the birefringence Δn of the liquid crystal layer of the second liquid crystal panel is smaller than the birefringence Δn of the liquid crystal layer of the first liquid crystal panel; 15. The display device according to claim 12.
16. When the birefringence Δn of the liquid crystal layer of the second liquid crystal panel is smaller than the birefringence Δn of the liquid crystal layer of the first liquid crystal panel, the control unit sets the second phase difference to be larger than the first phase difference; The display device according to claim 12.
17. a liquid crystal panel having a first liquid crystal layer; a first polarizing element provided on the light incident side of the liquid crystal panel; a second polarizing element provided on the light exit side of the liquid crystal panel; a first phase difference adjusting element disposed between the first polarizing element and the liquid crystal panel and having a second liquid crystal layer; a second phase difference adjusting element disposed between the liquid crystal panel and the second polarizing element and having a third liquid crystal layer; the first phase difference adjustment element has a first incident-side alignment film and a first emitting-side alignment film disposed with the second liquid crystal layer interposed therebetween, the first incident-side alignment film and the first emitting-side alignment film being inorganic alignment films that align liquid crystal molecules of the second liquid crystal layer in a first direction; the second phase difference adjustment element has a second incident-side alignment film and a second exit-side alignment film disposed with the third liquid crystal layer interposed therebetween, the second incident-side alignment film and the second exit-side alignment film being inorganic alignment films that align liquid crystal molecules of the third liquid crystal layer in a second direction intersecting the first direction; Optical modulation module.
Citation Information
Patent Citations
Liquid crystal display device and driving method thereof
CN110618547A
Liquid crystal device
JP1995191296A
Display apparatus and electronic equipment
JP2006106439A
In vivo drug concentration distribution measuring device, variable-wavelength filter used for the same, and in vivo drug concentration distribution measuring method
JP2010091318A
Display control circuit, display control method and electro-optic device and electronic apparatus
JP2012252206A