Liquid crystal display devices and electronic equipment

The liquid crystal device design addresses display quality and reliability issues by employing electrodes with specific polarities to trap ionic impurities outside the display area, enhancing the device's performance.

JP2026079459APending Publication Date: 2026-05-15SEIKO EPSON CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
SEIKO EPSON CORP
Filing Date
2024-10-30
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing liquid crystal devices suffer from display quality deterioration and reliability issues due to ionic impurities accumulating at the corners of the display area, which conventional methods fail to adequately address by capturing impurities based on their polarity.

Method used

A liquid crystal device design with a common electrode, pixel electrodes, a first peripheral electrode with negative polarity, and a second peripheral electrode with positive polarity, where the first electrode is closer to the display area to capture negatively polarized impurities, and the second electrode captures positively polarized impurities, effectively trapping them outside the display area.

Benefits of technology

This design efficiently prevents the diffusion of impurities into the display area, thereby improving display quality and reliability by effectively capturing both types of impurities based on their polarity, reducing display stains and defects.

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Abstract

Based on the polarity of contaminants present in the display area of ​​the electro-optical device, the contaminants are removed from the display area. [Solution] The electro-optical apparatus of the embodiment comprises a common electrode to which a common potential is applied, a plurality of pixel electrodes to which a signal potential is applied and which are arranged in a display area, a first electrode to which a first potential with negative polarity relative to the common potential is applied and which is arranged outside the display area, a second electrode to which a second potential with positive polarity relative to the common potential is applied and which is also arranged outside the display area, and a liquid crystal layer arranged between each of the plurality of pixel electrodes and the common electrode, between the first electrode and the common electrode, and between the second electrode and the common electrode. In a plan view, the first distance between the first electrode and the display area is shorter than the second distance between the second electrode and the display area.
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Description

Technical Field

[0001] The present invention relates to a liquid crystal device and an electronic device.

Background Art

[0002] A liquid crystal device includes a liquid crystal panel in which a liquid crystal layer is sandwiched between a pair of substrates. When light is incident on such a liquid crystal device, a photochemical reaction may occur between the liquid crystal material, alignment film, etc. constituting the liquid crystal panel and the incident light, and ionic impurities may be generated as reaction products. Also, it is known that there are ionic impurities that diffuse from sealing materials, encapsulants, etc. into the liquid crystal layer during the manufacturing process of the liquid crystal panel. These impurities move within the display area along the oblique direction of the vapor deposition film obliquely deposited on the base material, accumulate at the corners in the plan view of the display area, and may form display stains. The display quality of the liquid crystal device may deteriorate due to impurities moving in the display area or impurities accumulating at the corners of the display area.

[0003] Conventionally, measures have been studied to suppress the deterioration of the display quality of the liquid crystal device and improve the reliability by capturing impurities generated in the display area in the peripheral area outside the display area. For example, in the liquid crystal device disclosed in Patent Document 1, a fixed potential different from the counter electrode potential applied to the counter electrode is applied to a first peripheral electrode disposed in the peripheral area around a first corner located diagonally along a direction intersecting the uniaxial direction in the pixel area among the peripheral electrodes disposed in the peripheral area around the pixel area where a plurality of pixel electrodes are arranged. In the liquid crystal device disclosed in Patent Document 1, a fixed potential smaller than the fixed potential applied to the first peripheral electrode may be applied to a second peripheral electrode disposed in the peripheral area around a second corner located diagonally along the uniaxial direction.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

[0005] As mentioned above, impurities present in the display area consist of ionic substances and have been confirmed to include both positively polarized and negatively polarized impurities. In the liquid crystal apparatus disclosed in Patent Document 1, even when a fixed potential corresponding to either positively polarized or negatively polarized impurities is applied to the first and second peripheral electrodes, the amount of impurities generated in the display area that are captured is insufficient, making it difficult to suppress the deterioration of display quality and potentially reducing reliability. Therefore, measures are desired to remove impurities from the display area based on their polarity, thereby improving the display quality and reliability of the liquid crystal apparatus. [Means for solving the problem]

[0006] A liquid crystal device according to one aspect of the present disclosure includes a common electrode to which a common potential is applied, a plurality of pixel electrodes to which a signal potential is applied and which are arranged in a display area, a first electrode to which a first potential with negative polarity relative to the common potential is applied and which is arranged outside the display area, a second electrode to which a second potential with positive polarity relative to the common potential is applied and which is also arranged outside the display area, and a liquid crystal layer arranged between each of the plurality of pixel electrodes and the common electrode, between the first electrode and the common electrode, and between the second electrode and the common electrode. In a plan view, the first distance between the first electrode and the display area is shorter than the second distance between the second electrode and the display area. [Brief explanation of the drawing]

[0007] [Figure 1] This is a plan view of the liquid crystal device of the first embodiment. [Figure 2] Figure 1 is a cross-sectional view of a liquid crystal device broken along line II-II. [Figure 3] Figure 1 is a cross-sectional view of a liquid crystal device fractured along line III-III. [Figure 4] Figure 1 is an equivalent circuit diagram of the pixel circuit in the pixel region of the liquid crystal device. [Figure 5]This is a cross-sectional view illustrating the behavior of impurities in the pixel region of the liquid crystal apparatus shown in Figure 1. [Figure 6] This is a schematic diagram of the projector according to the first embodiment. [Figure 7] This is a cross-sectional view of the liquid crystal device according to the second embodiment. [Figure 8] This is another cross-sectional view of the liquid crystal device of the second embodiment. [Modes for carrying out the invention]

[0008] The following description will focus on a liquid crystal device as an example of an electro-optical device according to the embodiment. Note that the dimensions and scale of the parts in the following figures may differ from those of the actual device as appropriate. The embodiments described below are preferred examples. Unless otherwise specified in the following description, the scope of this disclosure is not limited to the embodiments described below.

[0009] [First Embodiment] First, a first embodiment of the present invention will be described with reference to Figures 1 to 6.

[0010] <LCD device> The liquid crystal device 10 of the first embodiment is an electro-optical device and liquid crystal display device equipped with liquid crystal elements that convert incident color light into image light. Figure 1 is a plan view of the liquid crystal device 10. Figure 2 is a cross-sectional view of the liquid crystal device 10 broken along line II-II in Figure 1. Figure 3 is a cross-sectional view of the liquid crystal device 10 broken along line III-III in Figure 1.

[0011] As shown in Figures 1 to 3, the liquid crystal apparatus 10 comprises a first substrate 112, a second substrate 115, a liquid crystal layer 140, and a sealing material 16. The first substrate 112 has an element substrate 12, a plurality of pixel electrodes 120, a plurality of dummy pixel electrodes 122, a first peripheral electrode 311, a second peripheral electrode 312, a plurality of terminals N, and an alignment film 331. The second substrate 115 has a counter substrate 15, a counter electrode 150, and an alignment film 332.

[0012] The element substrate 12 has a rectangular shape in plan view, for example, a rectangular shape, and has plate surfaces 12a and 12b. The opposing substrate 15 has a rectangular shape in plan view, for example, a rectangular shape, and has plate surfaces 15a and 15b. The longer sides of plate surfaces 15a and 15b of the opposing substrate 15 are the same length as the longer sides of plate surfaces 12a and 12b of the element substrate 12. The shorter sides of plate surfaces 15a and 15b of the opposing substrate 15 are shorter than the shorter sides of plate surfaces 12a and 12b of the element substrate 12.

[0013] In the following description and drawings, the X direction is one direction included in the surface 12a of the element substrate 12 and the surface 15a of the opposing substrate 15, for example, a direction parallel to the long side direction of the surface 12a and the surface 15a. One side along the X direction is described as the +X side, and the other side along the X direction is described as the -X side. The Y direction is one direction perpendicular to the X direction and included in the surface 12a of the element substrate 12 and the surface 15a of the opposing substrate 15, for example, a direction parallel to the short side direction of the surface 12a and the surface 15a. One side along the Y direction is described as the +Y side, and the other side along the Y direction is described as the -Y side. The Z direction is perpendicular to the X and Y directions and is parallel to the direction along the thickness of the element substrate 12 and the opposing substrate 15, for example. One side along the Z direction is described as the +Z side, and the other side along the Z direction is described as the -Z side. Planar view means viewing along the Z-direction.

[0014] The board surface 12b of the element substrate 12 is parallel to the XY plane, which includes the X and Y directions, and is the +Z side board surface of board surfaces 12a and 12b. A scanning line drive circuit, a data signal output circuit, and transistors that function as switching elements (not shown) are formed on the element substrate 12. In addition, a wiring layer 40 is formed on the board surface 12a of the element substrate 12. In the wiring layer 40, a first wiring layer 43, a first insulating layer 41, a first contact plug 45, a second wiring layer 44, a second insulating layer 42, and a second contact plug 46 are stacked in this order from the element substrate 12 side.

[0015] The plate surface 15b of the counter substrate 15 is parallel to the XY plane and is the -Z side plate surface among the plate surfaces 15a and 15b. In the liquid crystal device 10, the plate surface 12b of the element substrate 12 faces the plate surface 15b of the counter substrate 15 in the Z direction, and the first substrate 112 and the second substrate 115 are separated from each other with an appropriate interval. In the liquid crystal device 10, the first substrate 112 and the second substrate 115 are bonded together via a sealing material 16 such that the distance in the Z direction between the plate surface 12a of the element substrate 12 and the plate surface 15a of the counter substrate 15, that is, the overall thickness in the Z direction, is substantially constant.

[0016] In a plan view, the liquid crystal device 10 is partitioned into a pixel region A1 including the center in the XY plane, a dummy pixel region A2 surrounding the pixel region A1 and located outside the pixel region A1, and a peripheral region A3 surrounding the dummy pixel region A2 and located further outside the dummy pixel region A2. The pixel region A1 corresponds to the display region described later and the display region of the liquid crystal device described in the claims.

[0017] The plurality of pixel electrodes 120, the plurality of dummy pixel electrodes 122, the first peripheral electrode 311, and the second peripheral electrode 312 are formed on the wiring layer 40, that is, on the +Z side surface of the second insulating layer 42 of the wiring layer 40. The plurality of pixel electrodes 120 are arranged in the pixel region A1 and are arranged in a matrix at appropriate intervals along the X direction and the Y direction in the pixel region A1.

[0018] The plurality of dummy pixel electrodes 122 are arranged in the dummy pixel region A2. The dummy pixel region A2 is partitioned in a frame shape in a plan view. The plurality of dummy pixel electrodes 122 have the same shape and size as the plurality of pixel electrodes 120 in a plan view and are arranged in a matrix at appropriate intervals along the X direction and the Y direction in the same manner as the plurality of pixel electrodes 120. In FIG. 1, the plurality of dummy pixel electrodes 122 are omitted.

[0019] In the liquid crystal device 10, since the dummy pixel region A2 is partitioned and the plurality of dummy pixel electrodes 122 are arranged in the dummy pixel region A2, there is no difference in the electrode structure and relative arrangement near the boundary between the pixel region A1 and the dummy pixel region A2, and the occurrence of display unevenness and the degradation of display quality at the outer peripheral end portion in the plan view of the pixel region A1 can be suppressed. In other words, if there are no dummy pixel electrodes 122 having the same shape and size in the plan view as the plurality of pixel electrodes 120 in the dummy pixel electrodes 122, the electrode structure and relative arrangement change suddenly near the boundary between the pixel region A1 and the dummy pixel region A2, and display unevenness may occur at the outer peripheral end portion in the plan view of the pixel region A1, or the display quality may deteriorate.

[0020] Note that when the influence of the above-described degradation of display quality is small, the dummy pixel region A2 may be omitted, and the region corresponding to the dummy pixel region A2 may be included in the pixel region A1.

[0021] The first peripheral electrode 311 is arranged in the peripheral region A3. The peripheral region A3 is partitioned in a frame shape in the plan view, and has a +Y side region A31 parallel to the X direction, a +X side region A32 parallel to the Y direction, a -Y side region A33 parallel to the X direction, and a -X side region A34 parallel to the Y direction. The first peripheral electrode 311 corresponds to the first electrode described later and the first electrode of the liquid crystal device described in the claims. The first peripheral electrode 311 extends along the X direction, for example, in the region A31 of the peripheral region A3, and extends along the Y direction in a portion on the +Y side from the center in the Y direction in each of the regions A32 and A34 of the peripheral region A3.

[0022] The second peripheral electrode 312 is arranged in the peripheral region A3 and is arranged at least outside the first peripheral electrode 311. The second peripheral electrode 312 corresponds to the second electrode described later and the second electrode of the liquid crystal device described in the claims.

[0023] The second peripheral electrode 312 extends, for example, along the X direction in region A33 of peripheral region A3, and along the Y direction in regions A32 and A34 of peripheral region A3, in the portion on the -Y side of the center in the Y direction. The second peripheral electrode 312 is not electrically connected to the first peripheral electrode 311. The relative arrangement of the first peripheral electrode 311 and the second peripheral electrode 312 will be explained later.

[0024] The pixel electrode 120, dummy pixel electrode 122, first peripheral electrode 311, and second peripheral electrode 312 are made of a transparent conductive material that transmits visible wavelength color light L incident from the +Z side, and are composed of, for example, indium tin oxide (ITO) deposited using the same process.

[0025] The counter electrode 150 is formed over the entire surface 15b of the counter substrate 15. The counter electrode 150 is made of a transparent conductive material that corresponds to light incident from the +Z side, and is composed of, for example, ITO.

[0026] The first substrate 112 and the second substrate 115 are bonded together in the Z direction as described above, but the -Y side portion of the element substrate 12 of the first substrate 112 extends further to the -Y side than the opposing substrate 15. Multiple terminals N are formed on the board surface 12b of the element substrate 12 that extends further to the -Y side than the opposing substrate 15. Multiple terminals N input various electrical signals to the scan line drive circuit and the data signal output circuit.

[0027] The alignment films 331 and 332 are positioned in the pixel region A1, the dummy pixel region A2, and the peripheral region A3 on the inner side of the sealing material 16 in a plan view. The alignment film 331 covers each of the multiple pixel electrodes 120, the multiple dummy pixel electrodes 122, the first peripheral electrode 311, the second peripheral electrode 312, and the plate surface 12b of the element substrate 12 where no electrodes are formed, from the +Z side. The +Z side surface of the alignment film 331 is parallel to the XY plane and is substantially flat.

[0028] The alignment film 332 is formed on the -Z side surface of the counter electrode 150 and covers the counter electrode 150 from the -Z side. The -Z side surface of the alignment film 332 is parallel to the XY plane and is substantially flat. The alignment films 331 and 332 determine the orientation of the liquid crystal molecules contained in the liquid crystal layer 140, for example, by slightly tilting them with a slight angle to the Z direction when no voltage is applied.

[0029] Note that the dummy pixel area A2 and the surrounding area A3 do not contribute to image display. For example, a light-shielding film (not shown) may be formed on the surface 15a of the substrate 15 opposite the dummy pixel area A2 and the surrounding area A3.

[0030] The liquid crystal layer 140 is positioned in the Z direction between the plate surface 12a of the element substrate 12 and the plate surface 15a of the opposing substrate 15, and is interposed between the multiple pixel electrodes 120, multiple dummy pixel electrodes 122, the first peripheral electrode 311 and the second peripheral electrode 312 and the opposing electrode 150. Specifically, the liquid crystal layer 140 is sandwiched between alignment films 331 and 332 in the Z direction. The liquid crystal layer 140 is surrounded and sealed by a sealing material 16 in the XY plane. The liquid crystal layer 140 is a layer made of liquid crystal molecules whose long axis is approximately parallel to the Z direction when no voltage is applied, for example, in the VA (Vertical Alignment) method.

[0031] The sealing material 16 is positioned in the peripheral region A3, at least outside the second peripheral electrode 312, and preferably in the outermost peripheral region of the peripheral region A3.

[0032] Figure 4 is an equivalent circuit diagram of the pixel circuit 110 configured in pixel region A1. As shown in Figure 4, the pixel circuit 110 is provided corresponding to the intersection positions of a plurality of scan lines 113 extending in the X direction and a plurality of data lines 114 extending in the Y direction. The pixel circuit 110 includes a transistor 116 that functions as a switching element and a liquid crystal element 180.

[0033] Transistor 116 is, for example, an N-channel thin-film transistor (TFT). In the pixel circuit 110, the gate node of transistor 116 is connected to the scan line 113, the source node of transistor 116 is connected to the data line 114, and the drain node of transistor 116 is connected to the pixel electrode 120.

[0034] In this specification, “connection” means a direct or indirect connection or coupling between two or more elements. In this specification, “connected” includes, for example, a state in which two or more elements are linked together on a substrate, and a state in which they are coupled to each other via different conductive layers and contact plugs.

[0035] The counter electrode 150 faces a plurality of pixel electrodes 120 and is maintained at a substantially constant potential LCcom over time. A predetermined potential LCsig, different from the potential LCcom, is applied to each of the plurality of pixel electrodes 120. The potential LCcom corresponds to the common potential described later and the common potential in the liquid crystal device described in the claims. The potential LCsig corresponds to the signal potential described later and the signal potential in the liquid crystal device described in the claims. In each of the plurality of pixel circuits 110, a liquid crystal element 180 is composed of a pixel electrode 120, a counter electrode 150, and a liquid crystal layer 140.

[0036] A storage capacitor 109 is electrically connected in parallel to the liquid crystal element 180. One end of the storage capacitor 109 is connected to the pixel electrode 120, and the other end of the storage capacitor 109 is connected to a capacitance line 107. The capacitance line 107 is maintained at a constant potential over time, for example, at the same potential LCcom as the counter electrode 150.

[0037] The scan line drive circuit sequentially and exclusively selects one scan line 113 at a time during a single frame, and sets the scan signal of the selected scan line 113 to a relatively high H level. The data signal output circuit outputs a data signal with a potential corresponding to the grayscale to the pixel circuit 110 located on the scan line 113 selected by the scan line drive circuit, via the data line 114.

[0038] In the pixel circuit 110 corresponding to scan line 113 when the scanning signal reaches a high level, transistor 116 turns on, and the data signal is applied to the pixel electrode 120 via data line 114. Even when the scanning signal reaches a relatively low low level and transistor 116 turns off, the data signal is retained by the capacitive and storage capacitance 109 of the liquid crystal element 180.

[0039] In the liquid crystal element 180, the orientation of the liquid crystal molecules changes in response to the electric field generated by the pixel electrode 120 and the counter electrode 150.

[0040] The operations and behaviors described above are also performed in the pixel circuit 110 connected to the selected scan line 113. The sequential, exclusive selection of scan lines 113 during one frame period causes the orientation direction of all liquid crystal elements 180 in the pixel region A1 to change according to the grayscale. This generates an image during one frame period, and the color light L is converted into image light (not shown).

[0041] The liquid crystal element 180 operates, for example, in normally black mode. In normally black mode, the transmittance of light passing through the liquid crystal element 180 is lowest when the applied voltage to the liquid crystal element 180 is zero, and the transmittance of light passing through the polarizing plate (not shown) increases as the applied voltage increases.

[0042] The liquid crystal element 180 is driven by either DC or AC. Specifically, when the liquid crystal element 180 is driven by AC, the potential of the data signal is a positive potential on the higher side or a negative potential on the lower side, relative to the potential LCcom of the counter electrode 150, and is switched alternately between a positive potential and a negative potential, for example, every frame period.

[0043] The first peripheral electrode 311 is maintained at a potential LC1 that is different from the potential LCcom of the counter electrode 150. Potential LC1 is negatively polarized with respect to potential LCcom. Potential LC1 corresponds to the first potential described later, and corresponds to the first potential in the liquid crystal apparatus described in the claims. Potential LC1 is applied to the first peripheral electrode 311, for example, from a common wiring (not shown) that is not electrically connected to the scan lines 113 and data lines 114, respectively, on the first substrate 112.

[0044] The second peripheral electrode 312 is maintained at a potential LC2 that is different from the potential LCcom of the counter electrode 150 and the potential LC1 of the first peripheral electrode 311. Potential LC2 is positive with respect to potential LCcom, or a higher positive potential relative to potential LCcom. Potential LC2 corresponds to the second potential described later, and corresponds to the second potential in the liquid crystal apparatus described in the claims.

[0045] The potential LC2 is applied to the second peripheral electrode 312 from, for example, another common wiring (not shown) that is not electrically connected to the scan line 113, data line 114, and the common wiring that applies the potential LC1 to the first peripheral electrode 311 on the first substrate 112.

[0046] As shown in Figure 2, the distance d1 between the first peripheral electrode 311 and the pixel electrode 120 of pixel region A1 corresponds to the first distance described later and the first distance in the liquid crystal apparatus described in the claims. The distance d1 does not necessarily have to be constant in the XY plane; for example, the distance d1 between the first peripheral electrode 311 and the pixel electrode 120 in regions A32 and A34 of peripheral region A3 may be longer than the distance between the first peripheral electrode 311 and the pixel electrode 120 in region A31. Strictly speaking, the distance between the first peripheral electrode 311 and pixel region A1, and the first distance, are the shortest distance in the XY plane between the edge of the first peripheral electrode 311 and the edge of any one of the multiple pixel electrodes 120.

[0047] As shown in Figures 2 and 3, the distance d2 between the second peripheral electrode 312 and the pixel electrode 120 of pixel region A1 corresponds to the second distance described later and the second distance in the liquid crystal apparatus described in the claims. The distance d2 does not necessarily have to be constant in the XY plane; for example, the distance d2 between the second peripheral electrode 312 and the pixel electrode 120 in regions A32 and A34 of peripheral region A3 may be longer than the distance between the second peripheral electrode 312 and the pixel electrode 120 in region A33. Strictly speaking, the distance between the second peripheral electrode 312 and pixel region A1, and the second distance, are the shortest distance in the XY plane between the edge of the second peripheral electrode 312 and the edge of any one of the multiple pixel electrodes 120.

[0048] As shown in Figure 3, the first insulating layer 41 is provided between the first wiring layer 43 and the second wiring layer 44 and has a first contact plug 45 for electrically connecting the first wiring layer 43 and the second wiring layer 44. The second insulating layer 42 is provided between the second wiring layer 44 and the first peripheral electrode 311, the second peripheral electrode 312, the third peripheral electrode 315 and the pixel electrode 120 and has a second contact plug 46 for electrically connecting the second wiring layer 44 to the first peripheral electrode 311, the second peripheral electrode 312, the third peripheral electrode 315 or the pixel electrode 120. The second peripheral electrode 312 is electrically connected to terminal N via the first insulating layer 41, the second insulating layer 42, the first wiring layer 43, the second wiring layer 44, the first contact plug 45 and the second contact plug 46. The first peripheral electrode 311 is similarly electrically connected to terminal N via the first insulating layer 41, the second insulating layer 42, the first wiring layer 43, the second wiring layer 44, the first contact plug 45, and the second contact plug 46.

[0049] In the liquid crystal device 10, distance d1 is shorter than distance d2. That is, the distance between the first peripheral electrode 311 and the pixel region A1 is at least shorter than the distance between the second peripheral electrode 312 and the pixel region A1, and the first distance is at least shorter than the second distance. The ratio of distance d1 to distance d2 is appropriately set according to the ratio of the migration speed and diffusion speed of impurities IM and IP.

[0050] The liquid crystal layer 140 of the liquid crystal device 10 contains impurities IM and IP, which are ionic substances. Impurity IM is a negatively polarized ionic substance. Impurity IP is a positively polarized ionic substance. The migration speed of impurity IM in the XY plane is faster than the migration speed of impurity IP in the XY plane.

[0051] Impurity IP is captured by the first peripheral electrode 311, while impurity IM is captured by the second peripheral electrode 312. Since the movement speed of impurity IP is slower than that of impurity IM, it is captured by the first peripheral electrode 311, which is located relatively close to the pixel region A1, and the capture effect of the first peripheral electrode 311 is enhanced when the current is flowing, i.e., when the potential LC1 is applied. Since the movement speed of impurity IM is faster than that of impurity IP, it is captured by the second peripheral electrode 312, which is located relatively farther from the pixel region A1.

[0052] The diffusion rate of impurity IM, which has a relatively fast migration speed, is faster than the diffusion rate of impurity IP. Before and after energizing the first peripheral electrode 311, i.e., in the non-energized state, the trapping effect of the first peripheral electrode 311 on impurity IP weakens, and impurity IP diffuses from the first peripheral electrode 311 in the XY plane. Similarly, before and after energizing the second peripheral electrode 312, i.e., in the non-energized state, the trapping effect of the second peripheral electrode 312 on impurity IM weakens, and impurity IM diffuses from the second peripheral electrode 312 in the XY plane. Although the diffusion rate of impurity IM is faster than the diffusion rate of impurity IP, the return of impurity IM from the second peripheral electrode 312 to the pixel region A1 is suppressed because the second peripheral electrode 312 is located further away from the pixel region A1 than the first peripheral electrode 311.

[0053] In the liquid crystal display device 10, slow-moving impurities IP present in the liquid crystal layer 140 are captured by the energized first peripheral electrode 311 located close to the pixel area A1, while fast-moving impurities IM present in the liquid crystal layer 140 are captured by the energized second peripheral electrode 312 located far from the pixel area A1. This suppresses the diffusion of impurities IM from the unenergized second peripheral electrode 312 into the pixel area A1, thus preventing the formation of display stains and other defects at the outer edges of the pixel area A1. As a result, the display quality and reliability of the liquid crystal display device 10 are improved.

[0054] Each of the potentials LC1 and LC2 is either a DC potential or an AC potential, preferably a DC potential. Having each of the potentials LC1 and LC2 be a DC potential stabilizes the trapping effect of impurities IP at the energized first peripheral electrode 311 and the trapping effect of impurities IM at the energized second peripheral electrode 312. For example, when the potential LCcom is +7.5V, the potential LC1 is set to +6.0V and the potential LC2 is set to +9.0V.

[0055] As another example, when the potential LCcom is +7.5V, the potential LC1 may be set to an AC potential and the potential LC2 to +9.0V, or the potential LC1 may be set to an AC potential and the potential LC2 may be set to an AC potential. In this case, the frequency of the AC potential applied to potential LC1 may be different from the frequency of the AC potential applied to potential LC2. The frequency of the AC potential applied to potential LC2 may be longer than the frequency of the AC potential applied to potential LC1. When potential LC1 is an AC potential, the average value of potential LC1 may be 6V to 7V and may be negatively polarized with respect to potential LCcom. Also, when potential LC2 is an AC potential, the average value of potential LC2 may be 8V to 9V and may be positively polarized with respect to potential LCcom.

[0056] The first peripheral electrode 311 and the second peripheral electrode 312 are not electrically connected to each other, nor are they connected to each other in the XY plane. As shown in Figure 1, the first peripheral electrode 311 and the second peripheral electrode 312 are separated, for example, in the circumferential direction of peripheral region A3 in a plan view, at the center of the Y direction of regions A32 and A34, respectively.

[0057] As an example, the liquid crystal molecules of the liquid crystal layer 140 may be oriented by the alignment films 331 and 332 in the absence of applied voltage in a direction where they move from the -Y side to the +Y side as they move from the -X side to the +X side in the pixel region A1, that is, in a plan view, along the alignment direction F which is parallel to the line connecting the vicinity of the corners on the -X and -Y sides of the pixel region A1 and the vicinity of the corners on the +X and +Y sides.

[0058] The orientation of the liquid crystal molecules in the liquid crystal layer 140 is determined by the spraying angle of the material for the alignment film 331 when it is obliquely deposited on the +Z-side surfaces of the multiple pixel electrodes 120, the multiple dummy pixel electrodes 122, the first peripheral electrode 311 and the second peripheral electrode 312, and the plate surface 12b of the element substrate 12 where none of the electrodes are formed, and by the spraying angle of the material for the alignment film 332 when it is obliquely deposited on the -Z-side surface of the opposing electrode 150.

[0059] Figure 5 is a cross-sectional view showing the movement of impurities IM and IP when an appropriate potential is applied to each electrode of the liquid crystal apparatus 10, when the liquid crystal molecules of the liquid crystal layer 140 are oriented along the orientation direction F. As shown in Figure 5, the impurities IP present in the liquid crystal layer 140 move to the +X and +Y corners along the orientation direction F, and because their own movement speed is relatively slow, they gather toward the first peripheral electrode 311 which is located relatively close to the pixel region A1 in a plan view, pass through the dummy pixel region A2, and are captured by the first peripheral electrode 311 in the peripheral region A3 via the alignment film 331.

[0060] The impurities IM present in the liquid crystal layer 140 move along the orientation direction F to the -X and -Y corners, and because their movement speed is relatively fast, they accumulate toward the second peripheral electrode 312 which is located relatively far from the pixel region A1 in a plan view, pass through the dummy pixel region A2, and are captured by the second peripheral electrode 312 in the peripheral region A3 via the alignment film 331.

[0061] In a planar view, the peripheral region A3 with respect to the +X and +Y corners of pixel region A1, that is, the first peripheral electrode 311 at the +X end of region A31 and the first peripheral electrode 311 at the +Y end of region A32, are connected to each other. Therefore, when the liquid crystal molecules of the liquid crystal layer 140 are oriented along the orientation direction F, impurities IP that move to the +X and +Y corners along the orientation direction F are efficiently and smoothly captured by the first peripheral electrode 311.

[0062] In a planar view, the peripheral region A3 with respect to the -X and -Y corners of pixel region A1, specifically the second peripheral electrode 312 at the -X end of region A33 and the second peripheral electrode 312 at the -Y end of region A34, are connected to each other. Therefore, when the liquid crystal molecules of the liquid crystal layer 140 are oriented along the orientation direction F, impurities IM that move along the orientation direction F to the -X and -Y corners are efficiently and smoothly captured by the second peripheral electrode 312. As a result, the occurrence of display stains that conventionally occurred near the +X and +Y corners and the -X and -Y corners of pixel region A1 is efficiently prevented.

[0063] Although not shown in the diagram, it is conceivable that the liquid crystal molecules of the liquid crystal layer 140 are oriented in a direction intersecting the orientation direction F in a plan view, for example, along a line connecting the vicinity of the -X and +Y corners of pixel region A1 in a plan view. In this case as well, as shown in Figure 1, the peripheral region A3 with respect to the -X and +Y corners of pixel region A1, that is, the first peripheral electrode 311 at the -X end of region A31 of peripheral region A3 and the first peripheral electrode 311 at the +Y end of region A34 are connected to each other. Therefore, impurities IP generated in the liquid crystal layer 140 and moving to the vicinity of the -X and +Y corners are efficiently and smoothly captured by the first peripheral electrode 311.

[0064] In the aforementioned case as well, the peripheral region A3 with respect to the +X and -Y corners of pixel region A1, that is, the second peripheral electrode 312 at the +X end of region A33 of peripheral region A3 and the second peripheral electrode 312 at the -Y end of region A32 are connected to each other. Therefore, impurities IM generated in the liquid crystal layer 140 and moving near the +X and -Y corners are efficiently and smoothly captured by the second peripheral electrode 312.

[0065] As described above, the alignment films 331 and 332 determine the orientation direction of the liquid crystal molecules in the liquid crystal layer 140. When it is expected that impurities IM and IP generated in the liquid crystal layer 140 will tend to accumulate in a particular location in the pixel region A1, it is preferable that the first peripheral electrode 311 extends circumferentially in the peripheral region A3 opposite to the location in the pixel region A1 where impurities IM tend to accumulate, in a plan view. Similarly, it is preferable that the second peripheral electrode 312 extends circumferentially in the peripheral region A3 opposite to the location in the pixel region A1 where impurities IP tend to accumulate, in a plan view.

[0066] Although not shown in the diagram, for example, in a plan view, the first peripheral electrode 311 and the second peripheral electrode 312 may be positioned inverted relative to each other with respect to an unshown imaginary line that is the center in the Y direction of pixel region A1 and peripheral region A3 and parallel to the X direction. That is, the first peripheral electrode 311 may extend along the X direction in region A33 of peripheral region A3, and may extend along the Y direction in regions A32 and A34 of peripheral region A3 in the portion that is -Y side of the center in the Y direction. The second peripheral electrode 312 may be positioned at least outside the first peripheral electrode 311 in a plan view, extending along the X direction in region A31 of peripheral region A3, and may extend along the Y direction in the portion that is +Y side of the center in each of regions A32 and A34 of peripheral region A3.

[0067] Furthermore, the first peripheral electrode 311 and the second peripheral electrode 312 may be spaced apart, for example, in the circumferential direction of peripheral region A3 in a plan view, at the center of each of regions A31 and A33 in the X direction. That is, the first peripheral electrode 311 may extend along the Y direction in region A32 of peripheral region A3, and may extend along the X direction in the portion of regions A31 and A33 of peripheral region A3 that is +X side of the center in the X direction. The second peripheral electrode 312 may be positioned at least outside the first peripheral electrode 311 in a plan view, extend along the Y direction in region A34 of peripheral region A3, and may extend along the X direction in the portion of regions A31 and A33 of peripheral region A3 that is -X side of the center in the X direction.

[0068] In contrast to the relative arrangement of the first peripheral electrode 311 and the second peripheral electrode 312 described above, in a plan view, the first peripheral electrode 311 and the second peripheral electrode 312 may be arranged inverted relative to each other with respect to an unillustrated imaginary line that is the center of the pixel region A1 and peripheral region A3 in the X direction and parallel to the Y direction.

[0069] <Projectors, electronic devices> Next, we will describe a projector, which is an example of an electronic device equipped with the liquid crystal display device 10 of the first embodiment.

[0070] Figure 6 is a schematic diagram of the projector 200 of the first embodiment. As shown in Figure 6, the projector 200 is a so-called three-chip projector and comprises a light source device 210, two dichroic mirrors 211 and 212, three total reflection mirrors 215, 216 and 217, three liquid crystal devices 10B, 10G and 10R, a cross dichroic prism 230, and a projection optical system 240. Each of the liquid crystal devices 10B, 10G and 10R is configured in the same way as the liquid crystal device 10 described above.

[0071] The light source device 210 consists of a halogen lamp or a white light-emitting diode (LED) and emits white light including red, green, and blue light. The white light emitted from the light source device 210 is separated into red light, green light, and blue light by the dichroic mirror 211, and then separated into green light and blue light by the dichroic mirror 212.

[0072] The red light emitted from the dichroic mirror 211 is irradiated onto the liquid crystal device 10R by the total reflection mirror 215. The green light emitted from the dichroic mirror 211 is emitted from the dichroic mirror 212 and irradiated onto the liquid crystal device 10G. The blue light emitted from the dichroic mirror 211 is irradiated onto the liquid crystal device 10B by the total reflection mirrors 216 and 217.

[0073] The optical path from the dichroic mirror 211 to the liquid crystal device 10B for blue light is longer than the optical path from the dichroic mirror 211 to the liquid crystal device 10R for red light, and the optical path from the dichroic mirror 211 to the liquid crystal device 10G for green light. To reduce the loss of blue light to red and green light, an incident lens 222 is placed on the optical path of blue light between the dichroic mirror 212 and the total reflection mirror 216. A relay lens 223 is placed between the total reflection mirror 216 and the total reflection mirror 217. An exit lens 224 is placed between the total reflection mirror 217 and the liquid crystal device 10B. The incident lens 222, relay lens 223, and exit lens 224 constitute a relay optical system 220.

[0074] Liquid crystal device 10R is driven based on an image data signal input in response to incident red light and generates image light R including a red transmitted image. Liquid crystal device 10G is driven based on an image data signal input in response to incident green light and generates image light G including a green transmitted image. Liquid crystal device 10B is driven based on an image data signal input in response to incident blue light and generates image light B including a blue transmitted image.

[0075] Image light R emitted from liquid crystal device 10R, image light G emitted from liquid crystal device 10G, and image light B emitted from liquid crystal device 10B enter the cross dichroic prism 230 from different directions in a planar view. In the cross dichroic prism 230, image light R and B are reflected, and the optical paths of image light R and B are refracted by 90° in a planar view. In the cross dichroic prism 230, image light G is transmitted and travels in a straight line, and the optical path of image light G overlaps with the optical paths of image light R and B.

[0076] Image light, which is combined by a cross dichroic prism 230 and emitted in a direction different from the incident direction of image light R, G, and B, is projected onto the screen SCR by a projection optical system 240. The projection optical system 240 has one or more optical lenses. Examples of optical lenses include biconvex lenses, biconcave lenses, plano-convex lenses, meniscus lenses, aspherical lenses, or free-form lenses. A color image is displayed on the screen SCR.

[0077] In addition to the projector 200, other electronic devices equipped with electro-optical devices such as the liquid crystal display 10 include head-mounted displays, video cameras, electronic viewfinders in interchangeable-lens digital cameras, smartwatches, and display units for wearable devices.

[0078] <Effects and Effects> The liquid crystal apparatus 10 of the first embodiment described above comprises a counter electrode (common electrode) 150, a plurality of pixel electrodes 120, a first peripheral electrode (first electrode) 311, a second peripheral electrode (second electrode) 312, and a liquid crystal layer 140. A potential (common potential) LCcom is applied to the counter electrode 150. A potential (signal potential) LCsig is applied to each of the plurality of pixel electrodes 120. The plurality of pixel electrodes 120 are arranged in a pixel region (display region) A1 in a plan view. A potential (first potential) LC1, which is negatively polarized with respect to potential LCcom, is applied to the first peripheral electrode (first electrode) 311. The first peripheral electrode 311 is arranged in a peripheral region A3 outside the pixel region A1 in a plan view. A potential (second potential) LC2, which is positively polarized with respect to potential LCcom, is applied to the second peripheral electrode (second electrode) 312. The second peripheral electrode 312 is located in the peripheral region A3 outside the pixel region A1 in a plan view, and is located outside the first peripheral electrode 311. The liquid crystal layer 140 is located in the Z direction between each of the plurality of pixel electrodes 120 and the counter electrode 150, between the first peripheral electrode 311 and the counter electrode 150, and between the second peripheral electrode 312 and the counter electrode 150. In the liquid crystal apparatus 10 of the first embodiment, in a plan view, the distance d1 between the first peripheral electrode 311 and the pixel region A1 is shorter than the distance d2 between the second peripheral electrode 312 and the pixel region A1.

[0079] In the liquid crystal device 10 of the first embodiment, positive polarity impurities IP, which have a relatively slow movement speed, are captured by the energized first peripheral electrode 311, which is positioned relatively close to the pixel area A1, and negative polarity impurities IM, which have a relatively fast movement speed, are captured by the energized second peripheral electrode 312, which is positioned relatively far from the pixel area A1. In the liquid crystal device 10 of the first embodiment, the capture effect of the first peripheral electrode 311 on impurities IP and the capture effect of the second peripheral electrode 312 on impurities IM can be enhanced by positioning the first peripheral electrode 311 and the second peripheral electrode 312 on impurities IM according to the polarity of the impurities IP and IM. According to the liquid crystal device 10 of the first embodiment, impurities IM and IP can be efficiently and smoothly removed from the pixel area A1, taking into account the polarity of the impurities IM and IP, thereby improving display quality and reliability.

[0080] In the liquid crystal device 10 of the first embodiment, impurities IM, whose diffusion speed is faster than that of impurities IP as the movement speed increases, are captured by the second peripheral electrode 312, which is located further away from the pixel region A1 than the first peripheral electrode 311. According to the liquid crystal device 10 of the first embodiment, taking into account the polarity of impurities IM and IP, the intrusion of impurities IM from the unenergized first peripheral electrode 311 and impurities IP from the unenergized second peripheral electrode 312 into the pixel region A1 can be suppressed, thereby improving display quality and reliability. In particular, in projection-type display devices including projectors, liquid crystal devices used in light modulation devices such as light bulbs have a higher luminous flux density of incident light compared to direct-view type liquid crystal devices, so by suppressing the effect of ionic impurities on the display, display quality and reliability can be improved.

[0081] In the liquid crystal apparatus 10 of the first embodiment, the potential LC1 may be an AC potential, and the average value of the potential LC1 may be negative with respect to the potential LCcom.

[0082] According to the liquid crystal apparatus 10 of the first embodiment, the impurity IP capture effect of the first peripheral electrode 311 can be further enhanced and stabilized.

[0083] In the liquid crystal apparatus 10 of the first embodiment, the potential LC2 may be an AC potential, and the average value of the potential LC2 may be positive with respect to the potential LCcom.

[0084] According to the liquid crystal apparatus 10 of the first embodiment, the impurity IM capture effect of the second peripheral electrode 312 can be further enhanced and stabilized.

[0085] The electronic device including the projector (electronic device) 200 of the first embodiment comprises the liquid crystal display device 10 described above.

[0086] According to the projector 200 and electronic equipment of the first embodiment, since it is equipped with a liquid crystal device 10, the display quality and reliability of the entire projected image can be improved.

[0087] [Second Embodiment] Next, a second embodiment of the present invention will be described with reference to Figures 7 and 8. In the description of the second embodiment, the explanation of the contents common to the first embodiment will be omitted, and only the contents that differ from the first embodiment will be described. In addition, among the configurations of the liquid crystal device of the second embodiment, the components common to the liquid crystal device 10 of the first embodiment are denoted by the same reference numerals as the corresponding components in the liquid crystal device 10 of the first embodiment, and detailed explanations are omitted.

[0088] Although not shown, the liquid crystal device of the second embodiment has the same configuration as the liquid crystal device 10 of the first embodiment. Figures 7 and 8 are cross-sectional views of the liquid crystal device of the second embodiment, from the pixel area A1 to the peripheral area A3 in a plan view. Figure 7 is a cross-sectional view corresponding to the view taken along the line II-II in Figure 1. Figure 8 is a cross-sectional view corresponding to the view taken along the line III-III in Figure 1.

[0089] As shown in Figure 7, in the liquid crystal apparatus of the second embodiment, fine irregularities are formed on the +Z side surface 122a of each of the multiple dummy pixel electrodes 122, and on the +Z side surface 311a of the first peripheral electrode 311. The width in the X direction, the width in the Y direction, and the depth in the Z direction of the irregularities formed on the first peripheral electrode 311 are appropriately larger than the maximum diameter of the impurity IP. By forming irregularities in the Z direction on the first peripheral electrode 311, impurity IP generated in the liquid crystal layer 140 and moving toward the first peripheral electrode 311 enters the recesses of the irregularities, and the impurity IP is actively captured by the first peripheral electrode 311, improving the capture effect of impurity IP on the first peripheral electrode 311 in both energized and unenergized states.

[0090] The first peripheral electrode 311 is formed higher than at least each of the multiple pixel electrodes 120. That is, the +Z side end face of the first peripheral electrode 311 is located further to the +Z side than the +Z side surface 120a of each of the multiple pixel electrodes 120. The +Z side end face of the first peripheral electrode 311 is the convex surface of the uneven surface formed on the first peripheral electrode 311, and refers to the surface of the first peripheral electrode 311 that is furthest to the +Z side and aligned with the XY plane. The shortest distance between the +Z side end face of the first peripheral electrode 311 and the -Z side surface of the opposing electrode 150 is shorter than the shortest distance between the +Z side surface 120a of each of the multiple pixel electrodes 120 and the -Z side surface of the opposing electrode 150.

[0091] By forming the first peripheral electrode 311 higher than each of the multiple pixel electrodes 120, impurities IP present in the liquid crystal layer 140 can easily move toward the first peripheral electrode 311 in the XY plane, and after being captured by the first peripheral electrode 311, they are less likely to move toward the pixel electrodes 120, thereby improving the capture effect of impurities IM at the first peripheral electrode 311 in both energized and unenerged states.

[0092] As shown in Figure 8, in the liquid crystal apparatus of the second embodiment, fine irregularities are formed on the +Z side surface 312a of the second peripheral electrode 312. The width in the X direction, the width in the Y direction, and the depth in the Z direction of the irregularities formed on the second peripheral electrode 312 are appropriately larger than the maximum diameter of the impurity IM. By forming irregularities in the Z direction on the second peripheral electrode 312, impurity IM generated in the liquid crystal layer 140 and moving toward the second peripheral electrode 312 enters the recesses of the irregularities, and the impurity IM is actively captured by the second peripheral electrode 312, improving the impurity IM capture effect on the second peripheral electrode 312 in both energized and unenergetic states.

[0093] The second peripheral electrode 312 is formed higher than at least each of the multiple pixel electrodes 120, for example, to the same height as the first peripheral electrode 311. The +Z side end face of the second peripheral electrode 312 is located further to the +Z side than each of the surfaces 120a of the multiple pixel electrodes 120. The +Z side end face of the second peripheral electrode 312 is the convex surface of the unevenness formed on the second peripheral electrode 312, and refers to the surface of the second peripheral electrode 312 that is furthest to the +Z side and aligned with the XY plane. The shortest distance between the +Z side end face of the second peripheral electrode 312 and the -Z side surface of the opposing electrode 150 is shorter than the shortest distance between each of the surfaces 120a of the multiple pixel electrodes 120 and the -Z side surface of the opposing electrode 150.

[0094] By forming the second peripheral electrode 312 higher than each of the multiple pixel electrodes 120, impurities IM present in the liquid crystal layer 140 can easily move toward the second peripheral electrode 312 in the XY plane, and after being captured by the second peripheral electrode 312, they are less likely to move toward the pixel electrodes 120, thereby improving the capture effect of impurities IM on the second peripheral electrode 312 in both energized and unenerged states.

[0095] In the liquid crystal apparatus of the second embodiment, the supplemental effect of the first peripheral electrode 311 on impurities IP and the supplemental effect of the second peripheral electrode 312 on impurities IM are improved. Compared to the case where the +Z side surfaces of the first peripheral electrode 311 and the second peripheral electrode 312 are flat without any irregularities being formed on their respective surfaces, the decrease in the amount of image light in the pixel region A1 is suppressed, resulting in improved display quality and reliability.

[0096] Fine irregularities similar to those of the first peripheral electrode 311 or the second peripheral electrode 312 are formed on the +Z side surface 120a of the dummy pixel electrode 122. The dummy pixel electrode 122 is formed to be higher than at least each of the multiple pixel electrodes 120 and to be about the same height as the first peripheral electrode 311 and the second peripheral electrode 312.

[0097] For example, impurities IP that cannot be captured by the energized first peripheral electrode 311, and impurities IM that cannot be captured by the energized second peripheral electrode 312, can be captured by the irregularities of the energized dummy pixel electrode 122. Also, if there are impurities IP diffusing from the unenergized first peripheral electrode 311 toward the pixel electrode 120, and impurities IM diffusing from the unenergized second peripheral electrode 312 toward the pixel electrode 120, these impurities IM and IP can be captured by the irregularities of the unenergized dummy pixel electrode 122.

[0098] In the liquid crystal apparatus of the second embodiment, if the trapping effect of either the first peripheral electrode 311, which has no irregularities formed on it, or the trapping effect of the second peripheral electrode 312, which also has no irregularities formed on it, is sufficiently ensured, then irregularities may be formed only on the other peripheral electrode. Furthermore, if the trapping effect of the first peripheral electrode 311, which has irregularities formed on it, or the trapping effect of the second peripheral electrode 312, which has irregularities formed on it, is sufficiently ensured, then irregularities may not be formed on the dummy pixel electrode 122.

[0099] The liquid crystal device of the second embodiment described above has the same components as the liquid crystal device 10 of the first embodiment and provides the same effects as the liquid crystal device 10 described above.

[0100] In the liquid crystal apparatus of the second embodiment, irregularities are formed on the surface (surface) 311a of the first peripheral electrode (first electrode) 311 on the liquid crystal layer 140 side.

[0101] According to the liquid crystal apparatus of the second embodiment, impurities IP present in the liquid crystal layer 140 are actively captured by the irregularities of the first peripheral electrode 311. This enhances the capture effect of the first peripheral electrode 311 on impurities IP, allowing for efficient and smooth removal of impurities IP from the pixel area A1, thereby further improving display quality and reliability.

[0102] In the liquid crystal apparatus of the second embodiment, irregularities are formed on the surface (surface) 312a of the second peripheral electrode (second electrode) 312 on the liquid crystal layer 140 side.

[0103] According to the liquid crystal apparatus of the second embodiment, impurities IM present in the liquid crystal layer 140 are actively captured by the irregularities of the second peripheral electrode 312. This enhances the capture effect of the second peripheral electrode 312 on impurities IM, allowing for efficient and smooth removal of impurities IM from the pixel area A1, thereby further improving display quality and reliability.

[0104] In the liquid crystal apparatus of the second embodiment, the height of the first peripheral electrode 311 on the +Z side is formed to be higher than the height of the +Z side of each of the multiple pixel electrodes 120, and is closer to the opposing electrode 150 in the Z direction than each of the multiple pixel electrodes 120.

[0105] According to the liquid crystal apparatus of the second embodiment, the capture effect of the first peripheral electrode 311 on impurities IP in both energized and de-energized states is enhanced, impurities IP can be efficiently and smoothly removed from the pixel area A1, the diffusion of impurities IP into the pixel area A1 is suppressed, and display quality and reliability can be further improved.

[0106] In the liquid crystal apparatus of the second embodiment, the height of the second peripheral electrode 312 on the +Z side is formed to be higher on the +Z side than each of the multiple pixel electrodes 120, and is closer to the opposing electrode 150 in the Z direction than each of the multiple pixel electrodes 120.

[0107] According to the liquid crystal apparatus of the second embodiment, the trapping effect of the second peripheral electrode 312 on impurities IM in both energized and de-energized states is enhanced, impurities IM are efficiently and smoothly removed from the pixel area A1, diffusion of impurities IM into the pixel area A1 is suppressed, and display quality and reliability can be further improved.

[0108] Although not shown in the figures, the projector (electronic device) of the second embodiment has the same components as the projector 200 of the first embodiment. In the projector of the second embodiment, each of the three liquid crystal devices 10B, 10G, and 10R of the projector 200 of the first embodiment is configured in the same way as the liquid crystal device of the second embodiment described above.

[0109] According to the projector and electronic equipment of the second embodiment, since it is equipped with the liquid crystal device of the second embodiment, the display quality and reliability of the entire projected image can be further improved.

[0110] Although preferred embodiments of the present invention have been described in detail above, the present invention is not limited to these specific embodiments, and various modifications and changes are possible within the scope of the gist of the invention as described in the claims.

[0111] For example, in cross-sectional views of liquid crystal devices, the laminated structure including conductive layers, semiconductor layers, or insulating layers contained in each of the element substrate 12 and the opposing substrate 15 is omitted, and an example of a conductive layer is shown. A conductive layer, semiconductor layer, or insulating layer (not shown) for wiring or interlayer spacing may be provided between the +Z side surface of the element substrate 12 and at least one of the pixels 120, dummy pixel electrode 122, first peripheral electrode 311, and second peripheral electrode 312. The -Z side surface of at least one of the pixels 120, dummy pixel electrode 122, first peripheral electrode 311, and second peripheral electrode 312 does not have to be a flat surface.

[0112] [Summary of this disclosure] A summary of this disclosure is provided below. (Note 1) A liquid crystal device comprising: a common electrode to which a common potential is applied; a plurality of pixel electrodes to which a signal potential is applied and which are arranged in a display area; a first electrode to which a first potential of negative polarity with respect to the common potential is applied and which is arranged outside the display area; a second electrode to which a second potential of positive polarity with respect to the common potential is applied and which is arranged outside the display area; and a liquid crystal layer arranged between each of the plurality of pixel electrodes and the common electrode, between the first electrode and the common electrode, and between the second electrode and the common electrode, wherein in a plan view, the first distance between the first electrode and the display area is shorter than the second distance between the second electrode and the display area.

[0113] As described in Appendix 1, positively polarized impurities present in the liquid crystal layer during conversion from color light to image light, which have a relatively slow migration speed, are captured by the energized first electrode located relatively close to the display area, while negatively polarized impurities, which have a relatively fast migration speed, are captured by the energized second electrode located relatively far from the pixel area. As a result, the capture effect of the first electrode on positively polarized impurities and the capture effect of the second electrode on negatively polarized impurities are improved compared to conventional methods, allowing for efficient and smooth removal of impurities from the display area based on their polarity, thereby improving display quality and reliability.

[0114] (Note 2) The liquid crystal apparatus of Note 1, wherein the first potential is an AC potential, and the average value of the first potential is negative with respect to the common potential.

[0115] The configuration described in Appendix 2 stabilizes the trapping effect of the first electrode on impurities having positive and negative polarity relative to the common electrode.

[0116] (Note 3) The liquid crystal apparatus of Note 1 or Note 2, wherein the second potential is an AC potential, and the average value of the second potential is negative with respect to the common potential.

[0117] The configuration described in Appendix 3 stabilizes the trapping effect of impurities with negative and positive polarity relative to the common electrode of the second electrode.

[0118] (Note 4) Any of the liquid crystal devices described in Notes 1 to 3, wherein the surface of the first electrode on the liquid crystal layer side has irregularities formed thereon.

[0119] With the configuration described in Appendix 4, positively polarized impurities are actively captured by the irregularities formed on the first electrode, thereby enhancing the capture effect of the first electrode on positively polarized impurities.

[0120] (Note 5) Any of the liquid crystal devices described in Notes 1 to 4, wherein the surface of the second electrode on the liquid crystal layer side has irregularities formed thereon.

[0121] With the configuration described in Appendix 5, negatively polarized impurities are actively trapped by the irregularities formed on the second electrode, thereby enhancing the trapping effect of the second electrode on negatively polarized impurities.

[0122] (Note 6) Any liquid crystal apparatus according to Notes 1 to 5, wherein the height of the first electrode is greater than the height of each of the plurality of pixel electrodes.

[0123] The configuration described in Appendix 6 makes it easier for positively polarized impurities to move to the energized first electrode, while making it difficult for positively polarized impurities to move from the unenergized first electrode toward the pixel electrode, thereby enhancing the trapping effect of the first electrode on positively polarized impurities.

[0124] (Note 7) Any liquid crystal apparatus according to Notes 1 to 6, wherein the height of the second electrode is greater than the height of each of the plurality of pixel electrodes.

[0125] The configuration described in Appendix 7 makes it easier for negatively polarized impurities to move to the energized second electrode, while making it difficult for negatively polarized impurities to move from the non-energized second electrode toward the pixel electrode, thereby enhancing the trapping effect of the second electrode on negatively polarized impurities.

[0126] (Note 8) An electronic device equipped with any one of the liquid crystal devices specified in Notes 1 to 7.

[0127] The configuration described in Appendix 8 can improve the display quality of the output image of the electronic device and the reliability of the electronic device. [Explanation of Symbols]

[0128] 10...Liquid crystal device, 120...Pixel electrode, 150...Counter electrode (common electrode), 200...Projector (electronic device), 311...First peripheral electrode (first electrode), 312...Second peripheral electrode (second electrode), A1...Pixel area (display area), A3...Peripheral area.

Claims

1. A common electrode to which a common potential is applied, A signal potential is applied to each of the multiple pixel electrodes arranged in the display area, A first potential with negative polarity is applied to the common potential, and a first electrode is located outside the display area. A second potential with positive polarity is applied to the common potential, and a second electrode is located outside the display area. A liquid crystal layer is disposed between each of the plurality of pixel electrodes and the common electrode, between the first electrode and the common electrode, and between the second electrode and the common electrode. Equipped with, In a plan view, the first distance between the first electrode and the display area is shorter than the second distance between the second electrode and the display area. Liquid crystal display (LCD) device.

2. The first potential is an AC potential, The average value of the first potential is negative with respect to the common potential. The liquid crystal apparatus according to claim 1.

3. The second potential is an AC potential, The average value of the second potential is positive with respect to the common potential. The liquid crystal apparatus according to claim 1 or claim 2.

4. The surface of the first electrode facing the liquid crystal layer has irregularities formed on it. The liquid crystal apparatus according to claim 1 or claim 2.

5. The surface of the second electrode facing the liquid crystal layer has irregularities formed on it. The liquid crystal apparatus according to claim 1 or claim 2.

6. The height of the first electrode is greater than the height of each of the plurality of pixel electrodes. The liquid crystal apparatus according to claim 1 or claim 2.

7. The height of the second electrode is greater than the height of each of the plurality of pixel electrodes. The liquid crystal apparatus according to claim 1 or claim 2.

8. A liquid crystal device comprising the liquid crystal device according to claim 1 or claim 2, electronic equipment.