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    • 14. 发明申请
    • LIQUID CRYSTAL DISPLAY UNIT
    • 液晶显示单元
    • US20090268141A1
    • 2009-10-29
    • US12088034
    • 2006-09-28
    • Yoshito HashimotoMasumi KuboAkihiro Yamamoto
    • Yoshito HashimotoMasumi KuboAkihiro Yamamoto
    • G02F1/1337
    • G02F1/133788G02F2001/13712G02F2201/086
    • A liquid crystal display device according to the present invention includes: a vertical alignment liquid crystal layer; first and second electrodes arranged on one surface of first and second substrates to face the liquid crystal layer; and first and second alignment films arranged on the first and second electrodes, respectively, in contact with the liquid crystal layer. The first alignment film has been subjected to an optical alignment treatment by obliquely irradiating a first alignment film material, having a photosensitive wavelength within the wavelength range of 250 nm to 380 nm, with light including the photosensitive wavelength. The device further includes: a metal layer arranged between the first alignment film and the first substrate; and a first resin layer arranged between the metal layer and the first alignment film. The first resin layer has an optical property that attenuates the intensity of light, which has been incident on the first resin layer and then reflected from the metal layer, to 60% or less at the photosensitive wavelength.
    • 根据本发明的液晶显示装置包括:垂直取向液晶层; 布置在第一和第二基板的一个表面上以面对液晶层的第一和第二电极; 以及分别配置在与液晶层接触的第一和第二电极上的第一和第二取向膜。 利用包含感光波长的光,通过倾斜照射具有250nm至380nm的波长范围内的感光波长的第一取向膜材料,对第一取向膜进行光学取向处理。 该装置还包括:布置在第一取向膜和第一基板之间的金属层; 以及布置在所述金属层和所述第一取向膜之间的第一树脂层。 第一树脂层具有将入射到第一树脂层上然后从金属层反射的光的强度在光敏波长处衰减到60%以下的光学性质。
    • 15. 发明申请
    • LIQUID CRYSTAL DISPLAY DEVICE
    • 液晶显示装置
    • US20090267880A1
    • 2009-10-29
    • US12088106
    • 2006-09-25
    • Yoshito HashimotoMasumi KuboTakako Nakai
    • Yoshito HashimotoMasumi KuboTakako Nakai
    • G09G3/36G02F1/1337
    • G09G3/3607G02F1/133753G02F2001/13712G09G2320/0233
    • A pixel has a first liquid crystal domain. In the first liquid crystal domain, first and second pretilt directions of liquid crystal molecules, defined by first and second alignment films, respectively, intersect with each other at substantially right angles. Also, in the first liquid crystal domain, when a signal voltage is applied to the liquid crystal layer to display the highest gray scale, liquid crystal molecules, located around the center of a plane of the liquid crystal layer and around the middle of the thickness of the liquid crystal layer, are tilted in a first direction that substantially equally divides the first and second pretilt directions into two. A driver applies a signal voltage to the liquid crystal layer of the pixel every vertical scanning period. At least while display gray scales are changing from the lowest gray scale into the highest one, the driver applies a voltage that is at least 0.96 times as high as the threshold voltage Vth of the liquid crystal layer in a vertical scanning period just before the signal voltage is applied to display the highest gray scale.
    • 像素具有第一液晶畴。 在第一液晶畴中,由第一和第二取向膜限定的液晶分子的第一和第二预倾角方向分别以基本上成直角相交。 此外,在第一液晶畴中,当向液晶层施加信号电压以显示最高灰度时,液晶分子位于液晶层的平面的中心周围且厚度的中间附近 的液晶层在基本上等分地将第一和第二预倾斜方向分成两部分的第一方向倾斜。 驱动器在垂直扫描期间向像素的液晶层施加信号电压。 至少在显示灰度级从最低灰度级变为最高灰度级时,驱动器在正好在信号之前的垂直扫描期间施加至少为液晶层阈值电压Vth的0.96倍的电压 施加电压以显示最高灰度。
    • 16. 发明申请
    • Liquid crystal display device
    • 液晶显示装置
    • US20090231502A1
    • 2009-09-17
    • US12385220
    • 2009-04-02
    • Masumi KuboAkihiro Yamamoto
    • Masumi KuboAkihiro Yamamoto
    • G02F1/133G02F1/1343
    • G02F1/133707G02F1/134336G02F2001/133776
    • In a liquid crystal display device of the present invention, when a display voltage is applied to picture element electrodes, each picture element electrode forms a plurality of domains in which liquid crystal molecules align themselves in different directions. The picture element electrodes are formed such that their edge portions on the opposite sides of a picture-element-electrode aperture portion formed between the picture element electrodes face parallel to each other with a certain interval. A source bus line is provided along the picture-element-electrode aperture portion formed between the picture element electrodes. The source bus line is disposed beneath the picture element electrodes and at the edge portions of the picture element electrodes by overlapping therewith in a direction of thickness.
    • 在本发明的液晶显示装置中,当向像素电极施加显示电压时,每个像素电极形成多个畴,其中液晶分子在不同方向上对齐。 像素电极形成为使得形成在像素电极之间的像素 - 电极开口部分的相对侧上的边缘部分以一定间隔彼此平行。 沿着形成在像素电极之间的像素 - 电极孔径部分设置源极总线。 源极总线通过与图像元素电极的厚度方向重叠而配置在像素电极的下方和像素电极的边缘部分。
    • 19. 发明授权
    • Liquid crystal display device and driving method for the same
    • 液晶显示装置及其驱动方法相同
    • US07292301B2
    • 2007-11-06
    • US10898688
    • 2004-07-26
    • Masumi KuboAkihiro YamamotoHiroyuki OhgamiTakashi Ochi
    • Masumi KuboAkihiro YamamotoHiroyuki OhgamiTakashi Ochi
    • G02F1/1337
    • G02F1/133707G02F1/133753G02F1/1393G02F2001/133776
    • An alignment-divided vertical alignment liquid crystal display device permitting high-definition moving image display when OS driving is adopted. The device has a plurality of pixels each having a first electrode, a second electrode facing the first electrode, and a vertical alignment liquid crystal layer placed between the first and second electrodes. The device includes: first alignment regulating structure having a first width W1 placed in the first electrode side of the liquid crystal layer; second alignment regulating structure having a second width placed in the second electrode side of the liquid crystal layer; and a liquid crystal region having a third width defined between the first and second alignment regulating structures. The third width W3 is in a range between 2 μm and 14 μm in certain embodiments.
    • 采用OS驱动时,能够进行高画质动画显示的对准分割垂直取向液晶显示装置。 该装置具有多个像素,每个像素具有第一电极,面对第一电极的第二电极和放置在第一和第二电极之间的垂直取向液晶层。 该装置包括:第一对准调节结构,其具有放置在液晶层的第一电极侧的第一宽度W 1; 第二对准调节结构,具有放置在液晶层的第二电极侧的第二宽度; 以及限定在所述第一和第二对准调节结构之间的具有第三宽度的液晶区域。 在某些实施例中,第三宽度W 3在2μm和14μm之间的范围内。