WO2017124611A1 - 多区域垂直配向的显示面板及其像素结构 - Google Patents

多区域垂直配向的显示面板及其像素结构 Download PDF

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Publication number
WO2017124611A1
WO2017124611A1 PCT/CN2016/074683 CN2016074683W WO2017124611A1 WO 2017124611 A1 WO2017124611 A1 WO 2017124611A1 CN 2016074683 W CN2016074683 W CN 2016074683W WO 2017124611 A1 WO2017124611 A1 WO 2017124611A1
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WIPO (PCT)
Prior art keywords
alignment
sub
region
photo
regions
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English (en)
French (fr)
Inventor
张鑫
赵勇
刘秉德
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Wuhan China Star Optoelectronics Technology Co Ltd
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Wuhan China Star Optoelectronics Technology Co Ltd
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Priority to US15/033,905 priority Critical patent/US20180059488A1/en
Publication of WO2017124611A1 publication Critical patent/WO2017124611A1/zh
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Classifications

    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/133Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
    • G02F1/1333Constructional arrangements; Manufacturing methods
    • G02F1/1337Surface-induced orientation of the liquid crystal molecules, e.g. by alignment layers
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/133Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
    • G02F1/1333Constructional arrangements; Manufacturing methods
    • G02F1/1337Surface-induced orientation of the liquid crystal molecules, e.g. by alignment layers
    • G02F1/133753Surface-induced orientation of the liquid crystal molecules, e.g. by alignment layers with different alignment orientations or pretilt angles on a same surface, e.g. for grey scale or improved viewing angle
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/133Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
    • G02F1/1333Constructional arrangements; Manufacturing methods
    • G02F1/1337Surface-induced orientation of the liquid crystal molecules, e.g. by alignment layers
    • G02F1/133753Surface-induced orientation of the liquid crystal molecules, e.g. by alignment layers with different alignment orientations or pretilt angles on a same surface, e.g. for grey scale or improved viewing angle
    • G02F1/133757Surface-induced orientation of the liquid crystal molecules, e.g. by alignment layers with different alignment orientations or pretilt angles on a same surface, e.g. for grey scale or improved viewing angle with different alignment orientations
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/133Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
    • G02F1/1333Constructional arrangements; Manufacturing methods
    • G02F1/1337Surface-induced orientation of the liquid crystal molecules, e.g. by alignment layers
    • G02F1/13378Surface-induced orientation of the liquid crystal molecules, e.g. by alignment layers by treatment of the surface, e.g. embossing, rubbing or light irradiation
    • G02F1/133788Surface-induced orientation of the liquid crystal molecules, e.g. by alignment layers by treatment of the surface, e.g. embossing, rubbing or light irradiation by light irradiation, e.g. linearly polarised light photo-polymerisation

Definitions

  • the invention relates to a display panel and a pixel structure thereof, in particular to a display panel with ultraviolet-induced multi-region vertical alignment and a pixel structure thereof.
  • TFT-LCD Thin film transistor liquid crystal
  • the TFT-LCD can be regarded as a liquid crystal sandwiched between two glass substrates, the upper glass substrate is a color filter, and the lower glass substrate is provided with a thin film transistor.
  • a current passes through the thin film transistor, an electric field change occurs, and a change in the electric field causes the liquid crystal molecules to deflect, thereby changing the polarity of the light to achieve a desired display.
  • an alignment film is usually provided in the display panel, and the alignment film controls the alignment direction and angle of the liquid crystal molecules.
  • the optical alignment technology orientation has gradually replaced the traditional friction cloth orientation.
  • a single pixel is generally made into a multi-domain display, so that liquid crystal molecules in different regions exhibit different pretilt angles.
  • the role of the light alignment film is to replace the conventional bump or trench structure, avoiding light leakage caused by the conventional bump and trench structure, greatly improving the aperture ratio, and making the liquid crystal molecules in the sub-pixel region have an initial The pretilt angle speeds up the response.
  • the pixel 10 includes red, green, and blue sub-pixels R, G, and B.
  • Each sub-pixel is divided into a main alignment area 12 and a main alignment area 14, and the main alignment area 12 and the sub-alignment area 14 are further divided.
  • FIG. 2 when the screen is displayed, since the liquid crystal molecules are tilted differently, a dark line 20 appears at the boundary between the main alignment area 12 and the sub-intermediate area 14 and the sub-area boundary, so that the main alignment area 12 and the sub-alignment area are present. There will be a “ ⁇ ” shaped dark line in 14 that affects the light transmission rate.
  • An object of the present invention is to provide a multi-area vertical alignment display panel which can reduce the generation of dark lines and improve the light transmittance by arranging the alignment direction of the sub-regions.
  • Another object of the present invention is to provide a multi-region vertical alignment pixel structure that can reduce the generation of dark lines and improve the light transmittance by arranging the alignment directions of the sub-regions.
  • a preferred embodiment of the present invention provides a multi-area vertical alignment display panel, including a plurality of pixel units arranged in an array, each pixel unit including three sub-pixels arranged in parallel,
  • the three sub-pixels are respectively composed of an upper alignment region and a lower alignment region;
  • the upper alignment region and the lower alignment region respectively comprise four sub-regions, the upper and lower adjacent of the four sub-regions and the sub-regions adjacent to the left and right
  • the alignment directions are all perpendicular to each other, and the alignment directions of any two adjacent sub-pixels respectively located adjacent to the left and right sub-pixels are the same.
  • the four sub-regions of the upper alignment region have the same area and are arranged in a 2 ⁇ 2 array; the four sub-regions of the lower alignment region have the same area. And arranged in a 2 x 2 array.
  • the angle between the alignment direction and the horizontal direction is 45°, 135°, -45° or -135°.
  • the display panel further includes a first substrate and a second substrate that are overlapped, the first substrate includes a first optical alignment film, and the second substrate includes a second optical alignment a film, an alignment direction of the first photo-alignment film is perpendicular to an alignment direction of the second photo-alignment film.
  • the alignment direction of the first photo alignment film is a vertical direction
  • the alignment direction of the second photo alignment film is a horizontal direction
  • the first photo-alignment film includes two alignment directions corresponding to each sub-pixel, and the two alignment directions are parallel and opposite to each other
  • the second photo-alignment film includes two alignment directions, and the two alignment directions The directions are parallel and opposite to each other.
  • two adjacent alignment directions of the left and right adjacent sub-pixels on the first photo-alignment film are the same.
  • another preferred embodiment of the present invention provides a multi-region vertical alignment pixel structure including three sub-pixels arranged in parallel, the three sub-pixels respectively being aligned by an upper alignment region and
  • the upper alignment region and the lower alignment region respectively comprise four sub-regions, wherein the image orientations of the upper and lower adjacent and the left and right adjacent sub-regions of the four sub-regions are perpendicular to each other and are respectively located The orientation directions of any two adjacent sub-regions of the left and right adjacent sub-pixels are the same.
  • the four sub-regions of the upper alignment region have the same area and are arranged in a 2 ⁇ 2 array; the four sub-regions of the lower alignment region have the same area. And arranged in a 2 x 2 array.
  • the angle between the alignment direction and the horizontal direction is 45°, 135°, -45° or -135°.
  • the present invention can reduce the dark lines between the left and right adjacent sub-pixels by arranging the alignment directions of any two adjacent sub-pixels respectively located adjacent to the left and right adjacent sub-pixels. It is to reduce the generation of dark lines by 25 percent and increase the light transmittance.
  • 1 is a schematic view of a conventional pixel alignment
  • FIG. 2 is a schematic diagram of a conventional pixel display screen
  • FIG. 3 is a schematic diagram of a multi-region vertical alignment display panel according to a preferred embodiment of the present invention.
  • FIG. 4 is a top plan view of a first substrate of a preferred embodiment of the present invention.
  • Figure 5 is a top plan view of a second substrate in accordance with a preferred embodiment of the present invention.
  • FIG. 6 is a schematic diagram showing the display of a multi-region vertical alignment pixel unit of the embodiment.
  • FIG. 3 is a schematic diagram of a multi-region vertical alignment display panel according to a preferred embodiment of the present invention.
  • the multi-region vertically aligned display panel 30 of the preferred embodiment of the present invention includes a plurality of pixel units 40 arranged in an array, of which only one pixel unit 40 is shown for clarity of illustration.
  • Each pixel unit 40 includes three sub-pixels 42 arranged in parallel. Specifically, each of the three sub-pixels 42 is a red, green, and blue sub-pixel.
  • the three sub-pixels 42 are respectively composed of an upper alignment region 52 and a lower alignment region 54.
  • the upper alignment region 52 and the lower alignment region 54 respectively include four sub-regions 520, 540.
  • the four sub-regions 520 of the upper alignment region 52 have the same area and are arranged in a 2 x 2 array.
  • the four sub-regions 540 of the lower alignment region 54 have the same area and are arranged in a 2 x 2 array.
  • the imaging directions of the upper and lower adjacent and the left and right adjacent sub-regions 520, 540 of the four sub-regions 520, 540 in the upper alignment region 52 and the lower alignment region 54 are perpendicular to each other. Specifically, the angle between the alignment direction and the horizontal direction is 45°, 135°, -45° or -135°.
  • the alignment directions of any two adjacent sub-regions 520, 540 of the adjacent left and right sub-pixels 42 are the same as indicated by the frame 60. Since the alignment directions of the two adjacent sub-regions 520 and 540 are the same, there is no problem of alignment mismatch between any two adjacent sub-regions 520 and 540, and no dark line is generated.
  • FIG. 4 is a top plan view of a first substrate according to a preferred embodiment of the present invention
  • FIG. 5 is a top view of a second substrate according to a preferred embodiment of the present invention
  • the display panel 30 of this embodiment further includes a first substrate 32 and a second substrate 34 that are stacked.
  • the first substrate 32 is an Array substrate
  • the second substrate 34 is a color filter substrate (Color Filter, CF) substrate.
  • the first substrate 32 includes a first photo alignment film 320
  • the second substrate 34 includes a second photo alignment film 340, an alignment direction of the first photo alignment film 320 (shown by an arrow) and the second The alignment direction of the light alignment film 340 (as indicated by the arrow) is vertical.
  • the alignment direction of the first photo alignment film 320 is a vertical direction
  • the alignment direction of the second photo alignment film 340 is a horizontal direction.
  • each of the sub-pixels 42 on the first photo-alignment film 320 includes two alignment directions, and the two alignment directions are parallel and opposite to each other.
  • the second photo alignment film 340 includes two alignment directions that are parallel and opposite to each other. Further, as shown in FIG. 4, two adjacent alignment directions of the left and right adjacent sub-pixels 42 on the first photo-alignment film 320 are the same, as indicated by the alignment directions 61 and 62.
  • the alignment direction of each of the sub-regions 520 and 540 is a combined effect of the alignment directions of the first substrate 32 and the second substrate 34, respectively.
  • FIG. 6 is a schematic diagram of display of a multi-region vertical alignment pixel unit according to an embodiment of the present invention.
  • the pixel unit 40 of the present embodiment displays the picture, since the alignment directions of any two adjacent sub-regions 520 and 540 of the adjacent left and right sub-pixels 42 are the same, the left and right adjacent sub-pixels are The dark line between 42 will disappear, which will increase the light transmission rate.
  • the present invention can reduce the dark line between the left and right adjacent sub-pixels, that is, the generation of the dark line 20 by 25 percent can be reduced, and the light transmittance can be improved.
  • the multi-region vertical alignment pixel structure of the preferred embodiment of the present invention is explained below. Please refer to the pixel unit 40 of FIG. 3.
  • the pixel structure 40 of the present embodiment includes three sub-pixels 42 arranged in parallel.
  • the three sub-pixels 42 are respectively composed of an upper alignment region 52 and a lower alignment region 54.
  • the upper alignment region 52 and the lower alignment region 54 respectively include four sub-regions 520, 540.
  • the four sub-regions 520 of the upper alignment region 52 have the same area and are arranged in a 2 x 2 array.
  • the four sub-regions 540 of the lower alignment region 54 have the same area and are arranged in a 2 x 2 array.
  • the imaging directions of the upper and lower adjacent and the left and right adjacent sub-regions 520, 540 of the four sub-regions 520, 540 in the upper alignment region 52 and the lower alignment region 54 are perpendicular to each other. Specifically, the angle between the alignment direction and the horizontal direction is 45°, 135°, -45° or -135°.
  • the alignment directions of any two adjacent sub-regions 520, 540 of the adjacent left and right sub-pixels 42, respectively are the same as indicated by the frame 60. Since the alignment directions of the two adjacent sub-regions 520 and 540 are the same, there is no problem of alignment mismatch between any two adjacent sub-regions 520 and 540, and no dark line is generated.
  • the present invention can reduce the alignment directions of the left and right adjacent sub-pixels 42 by arranging the alignment directions of any two adjacent sub-regions 520 and 540 respectively located adjacent to the left and right adjacent sub-pixels 42.
  • the dark line which reduces the generation of dark lines by 25 percent, increases the light transmission rate.

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  • Physics & Mathematics (AREA)
  • Nonlinear Science (AREA)
  • Spectroscopy & Molecular Physics (AREA)
  • Mathematical Physics (AREA)
  • Chemical & Material Sciences (AREA)
  • Crystallography & Structural Chemistry (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Liquid Crystal (AREA)

Abstract

一种多区域垂直配向的显示面板(30)及其像素结构(40)。所述像素结构(40)包括三个并行排列的子像素(42),所述三个子像素(42)分别由上配向区域(52)及下配向区域(54)构成;所述上配向区域(52)及下配向区域(54)分别包括四个子区域(520、540),所述四个子区域(520、540)的上、下相邻及左、右相邻的子区域的配向方向均互相垂直,且分别位于左、右相邻的子像素(42)的任两相邻的子区域的配向方向(61、62)相同,可减少左、右相邻的子像素(42)之间的暗线,提高了光线透过率。

Description

多区域垂直配向的显示面板及其像素结构 技术领域
本发明涉及一种显示面板及其像素结构,特别涉及一种紫外线诱导多区域垂直配向的显示面板及其像素结构。
背景技术
薄膜晶体管液晶(TFT-LCD)显示器近年来得到了飞速的发展和广泛的应用。具体而言,TFT-LCD可视为两片玻璃基板中间夹着一层液晶,上层的玻璃基板是彩色滤光片、下层的玻璃基板上设置有薄膜晶体管。当电流通过薄膜晶体管时,产生电场变化,电场的变化引起液晶分子偏转,从而来改变光线的偏极性,而实现预期的显示画面。在施加电压前,需要使液晶分子有一个初始取向方向,因此,在显示面板中通常设置有配向膜,配向膜控制液晶分子的排列方向与角度。
随着配向技术的进步,光配向技术取向方式逐渐取代了传统的摩擦布取向方式。为了降低大视角色偏,一般都将单一像素做成多区域(multi-domain)显示,使得不同区域中的液晶分子出现不同的预倾角。光配向膜的作用就是替代了传统的凸起或沟槽结构,避免了由传统的凸起和沟槽结构造成的漏光,极大的提高了开口率,并且使子像素区域的液晶分子具有初始的预倾角,加快响应速度。
如图1所示,像素10包括红、绿、蓝色子像素R、G、B,每一子像素划分为主配向区域12及主配向区域14,主配向区域12及次配向区域14再划分为四个相同大小的子区域,且同一子像素中相邻两配向子区域间的配向方向均不相同,以达到广视角的需求。然而,如图2所示,在显示画面时,由于液晶分子倾倒方向不同,在主配向区域12及次配向区域14交界以及子区域交界处会出现暗线20,使得主配向区域12及次配向区域14中会有“卍”状暗线,影响了光线透过率。
技术问题
本发明的一个目的在于提供一种多区域垂直配向的显示面板,其透过配置子区域的配向方向,可减少暗线的产生,提高了光线透过率。
本发明的另一个目的在于提供一种多区域垂直配向的像素结构,其透过配置子区域的配向方向,可减少暗线的产生,提高了光线透过率。
技术解决方案
为解决上述问题,本发明的优选实施例提供了一种多区域垂直配向的显示面板,包括多个呈阵列式排布的像素单元,每一像素单元包括三个并行排列的子像素,所述三个子像素分别由上配向区域及下配向区域构成;所述上配向区域及下配向区域分别包括四个子区域,所述四个子区域的上、下相邻及左、右相邻的子区域的配像方向均互相垂直,且分别位于左、右相邻的子像素的任两相邻的子区域的配向方向相同。
在本发明优选实施例的显示面板中,所述上配向区域的所述四个子区域的面积相等,且是以2×2阵列排列;所述下配向区域的所述四个子区域的面积相等,且是以2×2阵列排列。
在本发明优选实施例的显示面板中,所述配向方向与水平方向的夹角为45°、135°、-45°或-135°。
在本发明优选实施例的显示面板中,所述显示面板还包括相迭的第一基板及第二基板,所述第一基板包括第一光配向膜,所述第二基板包括第二光配向膜,所述第一光配向膜的配向方向与所述第二光配向膜的配向方向垂直。
在本发明优选实施例的显示面板中,所述第一光配向膜的配向方向为垂直方向,所述第二光配向膜的配向方向为水平方向。详细而言,所述第一光配向膜上对应每一子像素包括两配向方向,且所述两配向方向互相平行且反向;所述第二光配向膜包括两配向方向,所述两配向方向互相平行且反向。进一步而言,所述第一光配向膜上对应左、右相邻的子像素中的两相邻的配向方向相同。
同样地,为解决上述问题,本发明的另一优选实施例提供了一种多区域垂直配向的像素结构,其包括三个并行排列的子像素,所述三个子像素分别由上配向区域及下配向区域构成;所述上配向区域及下配向区域分别包括四个子区域,所述四个子区域的上、下相邻及左、右相邻的子区域的配像方向均互相垂直,且分别位于左、右相邻的子像素的任两相邻的子区域的配向方向相同。
在本发明优选实施例的像素结构中,所述上配向区域的所述四个子区域的面积相等,且是以2×2阵列排列;所述下配向区域的所述四个子区域的面积相等,且是以2×2阵列排列。
在本发明优选实施例的像素结构中,所述配向方向与水平方向的夹角为45°、135°、-45°或-135°。
有益效果
相对于现有技术,本发明透过配置分别位于左、右相邻的子像素的任两相邻的子区域的配向方向相同,可减少左、右相邻的子像素之间的暗线,也就是可减少百分之二十五的暗线的产生,提高了光线透过率。
附图说明
图1为现有像素配向的示意图;
图2为现有像素显示画面的示意图;
图3为本发明优选实施例的多区域垂直配向的显示面板的示意图;
图4为本发明的优选实施例的第一基板的上视示意图;
图5为本发明的优选实施例的第二基板的上视示意图;
图6为本实施例的多区域垂直配向的像素单元的显示示意图。
本发明的最佳实施方式
以下各实施例的说明是参考附加的图式,用以例示本发明可用以实施的特定实施例。本发明所提到的方向用语,例如「上」、「下」、「前」、「后」、「左」、「右」、「内」、「外」、「侧面」等,仅是参考附加图式的方向。因此,使用的方向用语是用以说明及理解本发明,而非用以限制本发明。
在图中,结构相似的单元是以相同标号表示。
参考图3,图3为本发明优选实施例的多区域垂直配向的显示面板的示意图。本发明的优选实施例的多区域垂直配向的显示面板30包括多个呈阵列式排布的像素单元40,为了清楚说明,仅绘示出一个像素单元40。每一像素单元40包括三个并行排列的子像素42,具体来说,三个子像素42各为红、绿、蓝色子像素。所述三个子像素42分别由上配向区域52及下配向区域54构成。
如图3所示,所述上配向区域52及下配向区域54分别包括四个子区域520、540。在此实施例中,所述上配向区域52的所述四个子区域520的面积相等,且是以2×2阵列排列。同样地,所述下配向区域54的所述四个子区域540的面积相等,且是以2×2阵列排列。
进一步而言,所述上配向区域52及下配向区域54中的所述四个子区域520、540的上、下相邻及左、右相邻的子区域520、540的配像方向(如箭头所示)均互相垂直。具体来说,所述配向方向与水平方向的夹角为45°、135°、-45°或-135°。另外,为了降低暗线,分别位于左、右相邻的子像素42的任两相邻的子区域520、540的配向方向相同,如标示框60所示。由于所示两相邻的子区域520、540的配向方向相同,因此于任两相邻的子区域520、540之间将不会产生配向不匹配的问题,进而不会产生暗线。
参考图4及图5,图4为本发明的优选实施例的第一基板的上视示意图,图5为本发明的优选实施例的第二基板的上视示意图。本实施例的显示面板30还包括相迭的第一基板32及第二基板34。举例来说,第一基板32为阵列(Array)基板,第二基板34为彩膜基板(Color Filter, CF)基板。所述第一基板32包括第一光配向膜320,所述第二基板34包括第二光配向膜340,所述第一光配向膜320的配向方向(如箭头所示)与所述第二光配向膜340的配向方向(如箭头所示)垂直。
在此实施例中,所述第一光配向膜320的配向方向为垂直方向,所述第二光配向膜340的配向方向为水平方向。更进一步而言,所述第一光配向膜320上对应每一子像素42包括两配向方向,且所述两配向方向互相平行且反向。所述第二光配向膜340包括两配向方向,所述两配向方向互相平行且反向。进一步而言,如图4所示,所述第一光配向膜320上对应左、右相邻的子像素42中的两相邻的配向方向相同,如配向方向61、62所示。
如图3所示,第一基板32及第二基板34组立后,各个子区域520、540的配向方向则为上述第一基板32及第二基板34分别的配向方向的合成效果。
参考图6,图6为本实施例的多区域垂直配向的像素单元的显示示意图。本实施例的像素单元40在显示画面时,由于分别位于左、右相邻的子像素42的任两相邻的子区域520、540的配向方向相同,因此在左、右相邻的子像素42之间的暗线将会消失,进而提升了光线透过率。由上可知,本发明可减少左、右相邻的子像素之间的暗线,也就是可减少百分之二十五的暗线20的产生,提高了光线透过率。
以下说明本发明之优选实施例的多区域垂直配向的像素结构。请参考图3的像素单元40。本实施例的像素结构40包括三个并行排列的子像素42。所述三个子像素42分别由上配向区域52及下配向区域54构成。所述上配向区域52及下配向区域54分别包括四个子区域520、540。
在此实施例中,所述上配向区域52的所述四个子区域520的面积相等,且是以2×2阵列排列。同样地,所述下配向区域54的所述四个子区域540的面积相等,且是以2×2阵列排列。
进一步而言,所述上配向区域52及下配向区域54中的所述四个子区域520、540的上、下相邻及左、右相邻的子区域520、540的配像方向(如箭头所示)均互相垂直。具体来说,所述配向方向与水平方向的夹角为45°、135°、-45°或-135°。为了降低暗线,分别位于左、右相邻的子像素42的任两相邻的子区域520、540的配向方向相同,如标示框60所示。由于所示两相邻的子区域520、540的配向方向相同,因此于任两相邻的子区域520、540之间将不会产生配向不匹配的问题,进而不会产生暗线。
综上所述,本发明透过配置分别位于左、右相邻的子像素42的任两相邻的子区域520、540的配向方向相同,可减少左、右相邻的子像素42之间的暗线,也就是可减少百分之二十五的暗线的产生,提高了光线透过率。
虽然本发明已以优选实施例揭露如上,但上述优选实施例并非用以限制本发明,本领域的普通技术人员,在不脱离本发明的精神和范围内,均可作各种更动与润饰,因此本发明的保护范围以权利要求界定的范围为准。

Claims (14)

  1. 一种多区域垂直配向的显示面板,包括多个呈阵列式排布的像素单元,每一像素单元包括三个并行排列的子像素,其中所述三个子像素分别由上配向区域及下配向区域构成;所述上配向区域及下配向区域分别包括四个子区域,所述四个子区域的上、下相邻及左、右相邻的子区域的配像方向均互相垂直,且分别位于左、右相邻的子像素的任两相邻的子区域的配向方向相同。
  2. 根据权利要求1所述的多区域垂直配向的显示面板,其特征在于,所述上配向区域的所述四个子区域的面积相等,且是以2×2阵列排列;所述下配向区域的所述四个子区域的面积相等,且是以2×2阵列排列。
  3. 根据权利要求1所述的多区域垂直配向的显示面板,其中所述配向方向与水平方向的夹角为45°、135°、-45°或-135°。
  4. 根据权利要求1所述的多区域垂直配向的显示面板,其特征在于,所述显示面板还包括相迭的第一基板及第二基板,所述第一基板包括第一光配向膜,所述第二基板包括第二光配向膜,所述第一光配向膜的配向方向与所述第二光配向膜的配向方向垂直。
  5. 根据权利要求4所述的多区域垂直配向的显示面板,其中所述第一光配向膜的配向方向为垂直方向,所述第二光配向膜的配向方向为水平方向。
  6. 根据权利要求5所述的多区域垂直配向的显示面板,其中所述第一光配向膜上对应每一子像素包括两配向方向,且所述两配向方向互相平行且反向;所述第二光配向膜包括两配向方向,所述两配向方向互相平行且反向。
  7. 根据权利要求6所述的多区域垂直配向的显示面板,其中所述第一光配向膜上对应左、右相邻的子像素中的两相邻的配向方向相同。
  8. 一种多区域垂直配向的像素结构,包括三个并行排列的子像素,其中所述三个子像素分别由上配向区域及下配向区域构成;所述上配向区域及下配向区域分别包括四个子区域,所述四个子区域的上、下相邻及左、右相邻的子区域的配像方向均互相垂直,且分别位于左、右相邻的子像素的任两相邻的子区域的配向方向相同。
  9. 根据权利要求8所述的多区域垂直配向的像素结构,其中所述上配向区域的所述四个子区域的面积相等,且是以2×2阵列排列;所述下配向区域的所述四个子区域的面积相等,且是以2×2阵列排列。
  10. 根据权利要求8所述的多区域垂直配向的像素结构,其中所述配向方向与水平方向的夹角为45°、135°、-45°或-135°。
  11. 根据权利要求8所述的多区域垂直配向的像素结构,其中所述像素结构还包括相迭的第一基板及第二基板,所述第一基板包括第一光配向膜,所述第二基板包括第二光配向膜,所述第一光配向膜的配向方向与所述第二光配向膜的配向方向垂直。
  12. 根据权利要求11所述的多区域垂直配向的像素结构,其中所述第一光配向膜的配向方向为垂直方向,所述第二光配向膜的配向方向为水平方向。
  13. 根据权利要求12所述的多区域垂直配向的像素结构,其中所述第一光配向膜上对应每一子像素包括两配向方向,且所述两配向方向互相平行且反向;所述第二光配向膜包括两配向方向,所述两配向方向互相平行且反向。
  14. 根据权利要求13所述的多区域垂直配向的像素结构,其中所述第一光配向膜上对应左、右相邻的子像素中的两相邻的配向方向相同。
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