WO2015000191A1 - 基于双层液晶法布里珀罗滤波器模组的显示装置 - Google Patents
基于双层液晶法布里珀罗滤波器模组的显示装置 Download PDFInfo
- Publication number
- WO2015000191A1 WO2015000191A1 PCT/CN2013/079250 CN2013079250W WO2015000191A1 WO 2015000191 A1 WO2015000191 A1 WO 2015000191A1 CN 2013079250 W CN2013079250 W CN 2013079250W WO 2015000191 A1 WO2015000191 A1 WO 2015000191A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- liquid crystal
- layer
- perot filter
- fabry
- crystal fabry
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
-
- G—PHYSICS
- G02—OPTICS
- G02F—OPTICAL 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
- G02F1/00—Devices 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
- G02F1/01—Devices 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
- G02F1/13—Devices 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
- G02F1/133—Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
- G02F1/1333—Constructional arrangements; Manufacturing methods
- G02F1/1347—Arrangement of liquid crystal layers or cells in which the final condition of one light beam is achieved by the addition of the effects of two or more layers or cells
- G02F1/13471—Arrangement of liquid crystal layers or cells in which the final condition of one light beam is achieved by the addition of the effects of two or more layers or cells in which all the liquid crystal cells or layers remain transparent, e.g. FLC, ECB, DAP, HAN, TN, STN, SBE-LC cells
- G02F1/13473—Arrangement of liquid crystal layers or cells in which the final condition of one light beam is achieved by the addition of the effects of two or more layers or cells in which all the liquid crystal cells or layers remain transparent, e.g. FLC, ECB, DAP, HAN, TN, STN, SBE-LC cells for wavelength filtering or for colour display without the use of colour mosaic filters
Definitions
- the present invention relates to the field of liquid crystal display technology, and in particular, to a display device based on a two-layer liquid crystal method Brillop filter module.
- Liquid Crystal Display has many advantages, such as mobile phone, personal digital assistant (PDA), digital camera, computer screen or laptop screen. Wait.
- liquid crystal display devices which include a casing, a liquid crystal panel disposed in the casing, and a backlight module disposed in the casing.
- the structure of a conventional liquid crystal panel is composed of a color filter substrate (Color Filter), a thin film transistor Array Substrate (TFT Array Substrate), and a substrate disposed between the two substrates.
- the liquid crystal layer is composed of a liquid crystal layer.
- the working principle is to control the rotation of the liquid crystal molecules of the liquid crystal layer by applying a driving voltage on the two glass substrates, and refract the light of the backlight module to produce a picture whh Since the liquid crystal panel itself is not
- the light source needs to be normally displayed by the light source provided by the backlight module. Therefore, the backlight module becomes one of the key components of the liquid crystal display device.
- the backlight module is divided into a side-in type backlight module and a direct-type backlight module according to different incident positions of the light source.
- the direct-lit backlight module is provided with a light source such as a cathode fluorescent lamp (CCFL) or a light emitting diode (LED) disposed behind the liquid crystal panel to directly form a surface light source for the liquid crystal panel.
- CCFL cathode fluorescent lamp
- LED light emitting diode
- the side-in backlight module has a backlight LED strip (Light bar) disposed at the edge of the back panel behind the liquid crystal panel, and the light emitted by the LED strip is from the side of the light guide plate (LGP).
- the smooth surface enters the light guide plate, is reflected and diffused, and is emitted from the light exit surface of the light guide plate, and then passes through the optical film group to form a surface light source to be supplied to the liquid crystal panel.
- FIG. 1 is a perspective exploded view of a conventional liquid crystal display device, including: a backlight module 100, a plastic frame 300 disposed on the backlight module 100, and a liquid crystal display panel 500 disposed on the plastic frame 300.
- the backlight module 100 provides a uniform light source for the liquid crystal display panel 500.
- the plastic frame 300 is used to carry the liquid crystal display panel 500, and the front frame 700 is used for The liquid crystal display panel 500 is fixed to the plastic frame 300.
- FIG. 2 is a schematic structural diagram of a conventional liquid crystal display panel, which generally includes a thin film transistor substrate 502 and a color filter base disposed opposite to the thin film transistor substrate 502.
- the liquid crystal layer 506 selects the polarized light
- the light is incident on the color filter substrate 504, and the color filter substrate 504
- the color filter 544 condenses the light, and then aligns it via the second polarizer 542 to emit a color picture.
- polarizers and color filters can seriously affect the utilization of the backlight, making the optical utilization of the entire display system only about 5% - 10%.
- the color gamut is also limited by the chromaticity coordinates of the RGB color filter itself, and the color performance is limited.
- a display device (shown in FIG. 3 ) based on a two-layer liquid crystal method Brillopore filter module, which includes: a backlight module 30 and pixels located above the backlight module 30
- the double-layer liquid crystal Fabry-Perot filter module, the backlight module 30 is composed of a plurality of RGB three-color LED chips, an LED light bar 38, a light guide plate 36, a diffusion sheet 34 and an anti-reflection film 32.
- the pixelated two-layer liquid crystal Fabry-Perot filter module provides a backlight for transmission;
- the pixelated two-layer liquid crystal Fabry-Perot filter module includes a first pixelated single-layer liquid crystal method cloth
- the pixel unit specifically includes first and second substrates 11, 12, respectively located at a top and bottom layer of the pixel unit, an upper multi-layer shield reflective layer 113, and a lower multi-layer shield reflective layer.
- the liquid crystal layer is divided into a red pixel liquid crystal layer 152 and a green pixel liquid crystal layer 154 by the barrier layer 150.
- a blue pixel liquid crystal layer 156, a red pixel upper layer electrode and a driving circuit 162, a green pixel upper layer electrode and a driving circuit 164, and a blue pixel upper layer electrode and a driving circuit 66 are respectively disposed between the first substrate 11 and the liquid crystal layer, respectively
- a driving voltage is supplied to the red pixel liquid crystal layer 152, the green pixel liquid crystal layer 154, and the blue pixel liquid crystal layer 156.
- the upper and lower pixels are respectively supplied with different voltages by their driving circuits, so that the transmission spectrum of the two pixels is shifted to a long wavelength, and the other is shifted to a short wavelength, and the two are superimposed to transmit the center wavelength without being biased. Moved subpixels. Thereby, the adjustment of the backlight gradation is realized while ensuring that the center wavelength of the emitted light does not drift, and the backlight utilization rate is improved.
- the transmission peak wavelength of a single sub-pixel corresponds to the center wavelength of the LED strip of the backlight module, and the peak wavelength and transmittance of the transmission spectrum of the single sub-pixel cannot be achieved. Adjusting, and, because the sub-pixels based on the fixed transmission peak wavelength of the three-color LED in the above scheme are the traditional three primary color mixed colors, the color gamut is relatively small, which cannot satisfactorily meet the needs of consumers. Summary of the invention
- the present invention provides a display device based on a two-layer liquid crystal method Brillop filter module, comprising: a backlight module and a double-layer liquid crystal Fabry-Perot filter module located above the backlight module
- the backlight module provides a continuous spectrum of white transmitted light for a silent liquid crystal Fabry-Perot filter module
- the layer liquid crystal method Brillopole filter module includes an upper layer liquid crystal Fabry-Perot a filter module and a lower layer liquid crystal Fabry-Perot filter module
- the upper liquid crystal Fabry-Perot filter module includes a plurality of upper liquid crystal Fabry-Perot filter units
- the Brippero filter module includes a plurality of lower liquid crystal Fabry-Perot filter units
- the double-layer liquid crystal Fabry-Perot filter module is divided into a plurality of main pixels arranged in an array, each main The pixel includes two sub-pixels, each sub-pixel includes an upper liquid crystal Fab
- the upper liquid crystal Fabry-Perot filter unit includes a first lower glass substrate, a first lower layer electrode and a driving circuit on the first lower glass substrate, and a first lower layer electrode and a driving circuit a lower multilayer shield reflective film, a first lower alignment film on the first lower multilayer dielectric reflective film, a first liquid crystal layer on the first lower alignment film, and a first liquid crystal layer a first upper alignment film, a first upper multilayer dielectric reflective film on the first upper alignment film, a first upper electrode on the first upper multilayer dielectric reflective film, and a first upper glass on the first upper electrode Substrate.
- the lower liquid crystal Fabry-Perot filter unit includes a second lower glass substrate, a second lower layer electrode and a driving circuit on the second lower glass substrate, and a second lower layer on the second lower layer electrode and the driving circuit a dielectric reflective film, a second lower alignment film on the second lower multilayer dielectric reflective film, a second liquid crystal layer on the second lower alignment film, a second upper alignment film on the second liquid crystal layer, and a second a second upper multilayer dielectric reflective film on the upper alignment film, a second upper electrode on the second upper multilayer dielectric reflective film, and a second upper glass substrate on the second upper electrode.
- the pre-tilt direction of the deflection of the liquid crystal molecules in the first liquid crystal layer and the second liquid crystal layer is opposite.
- An anti-reflection film is also provided between the backlight module and the double-layer liquid crystal Fabry-Perot filter module.
- the first liquid crystal layer of the upper liquid crystal Fabry-Perot filter unit of the two sub-pixels disposed adjacent to each other has a first barrier layer therebetween.
- a second barrier layer is disposed between the second liquid crystal layers of the lower liquid crystal Fabry-Perot filter unit of the two sub-pixels disposed adjacent to each other.
- the backlight module comprises: a backlight and a light guide plate, and the backlight emits continuous spectrum of white light, and after the light guide plate, provides a continuous spectrum of white transmitted light for the double-layer liquid crystal Fabry-Perot filter module.
- the present invention also provides a display device based on a two-layer liquid crystal method Brillop filter module, comprising: a backlight module and a silent layer liquid crystal Fabry-Perot filter module located above the backlight module,
- the backlight module provides a continuous spectrum of white transmitted light for the Han liquid crystal Fabry-Perot filter module
- the double-layer liquid crystal Fabry-Perot filter module includes an upper liquid crystal Fabry-Perot filter module.
- the filter module includes a plurality of lower liquid crystal Fabry-Perot filter units, and the Mercedes-Benz liquid crystal Fabry-Perot filter module is divided into a plurality of main pixels arranged in an array, and each main pixel includes two a sub-pixel, each sub-pixel includes an upper liquid crystal Fabry-Perot filter unit and a lower liquid crystal Fabry-Perot filter unit, wherein the two sub-pixels of the main pixel are independently driven, so that the backlight module
- the white transmitted light of the continuous spectrum is provided to transmit the transmitted light of two chromaticities when transmitted through the two sub-pixels, and the transmitted light of the two chromaticities is mixed to obtain the chromaticity of the main pixel;
- the upper liquid crystal Fabry-Perot filter unit includes a first lower glass substrate, a first lower layer electrode and a driving circuit on the first lower glass substrate, and is located on the first lower layer electrode and the driving circuit.
- a first lower multilayer dielectric reflective film, a first lower alignment film on the first lower multilayer dielectric reflective film, a first liquid crystal layer on the first lower alignment film, and a first liquid crystal layer a first upper alignment film, a first upper multilayer shield reflective film on the first upper alignment film, a first upper electrode on the first upper multilayer dielectric reflective film, and a first on the first upper electrode Upper glass substrate;
- the lower liquid crystal Fabry Perot filter unit includes a second lower glass substrate. a second lower layer electrode and a driving circuit on the second lower layer glass substrate, a second lower layer dielectric reflective film on the second lower layer electrode and the driving circuit, and a second lower layer alignment layer on the second lower layer multilayer dielectric reflecting film a film, a second liquid crystal layer on the second lower alignment film, located in the second liquid a second upper alignment film on the crystal layer, a second upper multilayer dielectric reflection film on the second upper alignment film, a second upper electrode on the second upper multilayer dielectric reflection film, and a second upper electrode on the second upper electrode The second upper glass substrate.
- the pre-tilt direction of the deflection of the liquid crystal molecules in the first liquid crystal layer and the second liquid crystal layer is opposite.
- An anti-reflection film is also provided between the backlight module and the double-layer liquid crystal Fabry-Perot filter module.
- the first liquid crystal layer of the upper liquid crystal Fabry-Perot filter unit of the two sub-pixels disposed adjacent to each other has a first barrier layer therebetween.
- a second barrier layer is disposed between the second liquid crystal layers of the lower liquid crystal Fabry-Perot filter unit of the two sub-pixels disposed adjacent to each other.
- the backlight module comprises: a backlight and a light guide plate, and the backlight emits continuous spectrum of white light, and after the light guide plate, provides a continuous spectrum of white transmitted light for the double-layer liquid crystal Fabry-Perot filter module.
- the display device based on the double-layer liquid crystal method Brillop filter module of the present invention cooperates with the double-layer liquid crystal Fabry-Perot filter module to realize color modulation and avoid
- the use of polarizers and color filters in the conventional liquid crystal display device improves the light utilization efficiency of the backlight module; provides white light transmitted by the continuous light pan through the white light source, and is driven by two sub-pixels of each main pixel.
- the two sub-pixels constituting each main pixel are independently driven, so that the peak wavelength and transmittance of the transmission spectrum of each sub-pixel are adjustable, thereby further improving the light utilization efficiency of the backlight module;
- the pretilt direction of the liquid crystal molecules in the liquid crystal layer of the upper and lower liquid crystal Fabry-Perot filter units constituting each sub-pixel is reversed, and the angular color often associated with the optical element is entered. Compensation is applied to improve the display effect.
- FIG. 1 is a perspective exploded view of a conventional liquid crystal display device
- FIG. 2 is a schematic structural view of a conventional liquid crystal display panel
- FIG. 3 is a diagram of a conventional display device based on a two-layer liquid crystal method Brillop filter module Schematic diagram of the body structure;
- FIG. 4 is a schematic structural view of a pixel unit in FIG. 3;
- FIG. 5 is a schematic perspective structural view of a display device based on a two-layer liquid crystal method Brillop filter module according to the present invention.
- Figure 6 shows the CIE1931 chromaticity diagram
- FIG. 7 is a schematic structural diagram of a main pixel of a display device based on a Briddle-Performed Filter Module of a silent layer liquid crystal method according to the present invention.
- the present invention provides a display device based on a two-layer liquid crystal method Brillop filter module, including: a backlight module 4 and a double-layer liquid crystal Fabric above the backlight module 4
- the Perot filter module 2 the backlight module 4 provides a continuous spectrum of white transmitted light for the double-layer liquid crystal Fabry-Perot filter module 2, and the double-layer liquid crystal Fabry-Perot filter module 2 Used for color modulation to control the color and intensity of transmitted light, avoiding the use of polarizers and color filters in conventional liquid crystal display devices, thereby improving the light utilization efficiency of the backlight module 4.
- the double-layer liquid crystal Fabry-Perot filter module 2 includes an upper liquid crystal Fabry-Perot filter module 22 and a lower layer liquid crystal Fabry-Perot filter module 24, and the upper liquid crystal method cloth
- the Ripper filter module 22 includes a plurality of upper liquid crystal Fabry-Perot filter units 220
- the lower liquid crystal Fabry-Perot filter module 24 includes a plurality of lower liquid crystal Fabry-Perot filter units 240.
- the two-layer liquid crystal Fabry-Perot filter 2 is divided into a plurality of main pixels 402 arranged in an array, each main pixel 402 includes two sub-pixels 204, and each sub-pixel 204 includes a stacking setting.
- An upper liquid crystal Fabry Perot filter unit 220 and a lower liquid crystal Fabry Perot filter unit 240, the two sub-pixels 204 of the main pixel 402 are independently driven, and can freely control the peak wavelength and transmission of the transmission spectrum. Therefore, the white transmitted light of the continuous spectrum provided by the backlight module 4 is transmitted through the two sub-pixels 204 to form two kinds of chromatic transmitted light, and the transmitted light of the two chromaticities is mixed to obtain the main pixel.
- the gamut of the main pixel 402 can cover the entire Cmi93 i chromaticity space.
- the color gamut of the present invention is wider and the display effect is better.
- each upper liquid crystal Fabry Perot filter unit 220 includes a first lower glass substrate 221 , a first lower layer electrode and a driving circuit 222 on the first lower glass substrate 221 , a first lower multilayer dielectric reflective film 223 on the first lower layer electrode and the driving circuit 222, and a first lower alignment film 224 on the first lower multilayer dielectric reflective film 223, located in the first lower layer alignment a first liquid crystal layer 225 on the film 224, a first upper alignment film 226 on the first liquid crystal layer 225, a first upper multilayer dielectric reflection film 227 on the first upper alignment film 226, and a first upper multilayer film A first upper layer electrode 228 on the dielectric reflective film 227 and a first upper glass substrate 229 on the first upper layer electrode 228.
- Each lower layer liquid crystal Fabry Perot filter unit 240 includes a second lower glass substrate 241, a second lower layer electrode and a driving circuit 242 on the second lower glass substrate 241, and a second lower layer electrode and a driving circuit 242. a second lower multilayer dielectric reflective film 243, a second lower alignment film 244 on the second lower multilayer dielectric reflective film 243, a second liquid crystal layer 245 on the second lower alignment film 244, and a second liquid crystal layer 245. a second upper alignment film 246, a second upper multilayer dielectric reflection film 247 on the second upper alignment film 246, a second upper electrode 248 on the second upper multilayer dielectric reflection film 247, and a second upper layer A second upper glass substrate 249 on electrode 248.
- the continuous transmitted white light transmitted by the backlight module 4 is sequentially filtered by the lower liquid crystal Fabry Perot filter unit 240 and the upper liquid crystal Fabry Perot filter unit 220 to form a transmitted light of a specific chromaticity.
- the chromaticity of the main pixel 402 is formed by mixing the two specific chromaticities of the transmitted light.
- the principle is that the liquid crystal molecules in the second liquid crystal layer 245 are deflected by the second upper layer electrode 248, the second lower layer electrode and the driving circuit 242 to
- the white light passing through the continuous spectrum of the second liquid crystal layer 245 is selected such that the chromaticity of the transmitted light transmitted through the second liquid crystal layer 245 is changed, and then the selection of the first liquid crystal layer 225 is performed to further transmit the sub-liquid crystal layer 225.
- the chromaticity of the transmitted light of pixel 204 is the desired chromaticity.
- the first lower alignment film 224 and the first upper alignment film 226 are used for aligning the steering of the liquid crystal molecules in the first liquid crystal layer 225
- the second lower alignment film 244 and the second upper alignment film 246 are used for
- the alignment of the liquid crystal molecules in the second liquid crystal layer 245 is aligned, preferably,
- the pre-tilt direction of the deflection of the liquid crystal molecules in the first liquid crystal layer 225 and the second liquid crystal layer 245 is opposite to each other, thereby compensating for the angular color shift which is often caused by the chiral optical element, thereby improving the display effect :
- a first blocking layer 252 is disposed between the first liquid crystal layer 225 of the upper liquid crystal Fabry-Perot filter unit 220 of the two sub-pixels 204 disposed adjacent to each other, and the two sub-pixels 204 disposed adjacent to each other.
- the second liquid crystal layer 245 of the lower liquid crystal Fabry-Perot filter unit 240 has a second barrier layer 254 therebetween.
- the backlight module 4 is a side-lit backlight module, and includes: a backlight 42 and a light guide plate 44.
- the backlight 42 emits continuous spectrum of white light through the light guide plate 44.
- the white light source 42 providing continuous spectrum for the double-layer liquid crystal Fabry-Perot filter module 2 can be selected from the existing white light backlight.
- the display device based on the double-layer liquid crystal method Brillopore filter module realizes color modulation by using the backlight module and the Han layer liquid crystal method Buripero filter module, thereby avoiding the existing conventional liquid crystal display device
- the two sub-pixels constituting each main pixel are independently driven, so that the peak wavelength and transmittance of the transmission spectrum of each sub-pixel are adjustable, thereby further improving the light utilization efficiency of the backlight module; and, by the arrangement of the alignment film, the composition is made
- the pre-tilt directions of the liquid crystal molecules in the liquid crystal layer of the upper and lower liquid crystal Fabry Perot filter units of the sub-pixels are opposite to each other, thereby compensating for the angular color shift which is often used in the optical optical elements, thereby improving
Landscapes
- Physics & Mathematics (AREA)
- Nonlinear Science (AREA)
- Liquid Crystal (AREA)
- Mathematical Physics (AREA)
- Chemical & Material Sciences (AREA)
- Crystallography & Structural Chemistry (AREA)
- General Physics & Mathematics (AREA)
- Optics & Photonics (AREA)
- Devices For Indicating Variable Information By Combining Individual Elements (AREA)
Abstract
一种基于双层液晶法布里珀罗滤波器模组的显示装置,包括:背光模组(4)及位于背光模组(4)上方的双层液晶法布里珀罗滤波器模组(2),双层液晶法布里珀罗滤波器模组(2)划分有阵列排布的数个主像素(402),每一主像素(402)包括两个子像素(204),每一子像素(204)包括层叠设置的一个上层液晶法布里珀罗滤波器单元(220)及一个下层液晶法布里珀罗滤波器单元(240),主像素(402)的两个子像素(204)独立驱动,使得背光模组(4)提供的连续光谱的白色透射光在透射过两个子像素(204)时,形成两种色度的透射光,两种色度的透射光混光后,得到主像素(402)的色度。
Description
本发明涉及液晶显示技术领域, 尤其涉及一种基于双层液晶法布里珀 罗滤波器模组的显示装置。
液晶显示装置 ( Liquid Crystal Display, LCD )具有机身薄、 省电、 无 辐射等众多优点, 得到了广泛的应用, 如移动电话、 个人数字助理 ( PDA ) 、 数字相机、 计算机屏幕或笔记本电脑屏幕等。
现有市场上的液晶显示装置大部分为背光型液晶显示装置, 其包括壳 体、 设于壳体内的液晶面板及设于壳体内的背光模组 ( Backlight module ) 。 传统的液晶面板的结构是由一彩色滤光片基板 ( Color Filter ) ■' 一— 月莫晶 4 ' 「车歹 基 ( Thin Film Transistor Array Substrate , TFT Array Substrate ) 以及一配置于两基板间的液晶层 ( Liquid Crystal Layer )所构成, 其工作原理是通过在两片玻璃基板上施加驱动电压来控制 液晶层的液晶分子的旋转, 将背光模组的光线折射出来产生画面„ 由于液 晶面板本身不发光, 需要借由背光模组提供的光源来正常显示影像, 因 此, 背光模组成为液晶显示装置的关键组件之一。 背光模组依照光源入射 位置的不同分成側入式背光模组与直下式背光模组两种。 直下式背光模组 是将发光光源例如阴极萤光灯管 (Cold Cathode Fluorescent Lamp, CCFL) 或发光二极管 (Light Emitting Diode, LED)设置在液晶面板后方, 直接形成 面光源提供给液晶面板。 而侧入式背光模组是将背光源 LED 灯条(Light bar )设于液晶面板侧后方的背板边缘处, LED 灯条发出的光线从导光板 ( Light Guide Plate , LGP )一侧的入光面进入导光板, 经反射和扩散后从 导光板出光面射出, 再经由光学膜片组, 以形成面光源提供给液晶面板。
请参阅图 1 , 为现有的液晶显示装置的立体分解示意图, 其包括: 背 光模组 100、 设于背光模组 100上的胶框 300、 设于胶框 300上的液晶显 示面板 500及设于液晶显示面板 500上的前框 700, 所述背光模组 100为 液晶显示面板 500提供光照均匀的面光源, 所述胶框 300用于承载液晶显 示面板 500, 所述前框 700用于将液晶显示面板 500固定于胶框 300上。
请参阅图 2 , 为现有的液晶显示面板的结构示意图, 其一般包括: 薄 膜晶体管基板 502、 与薄膜晶体管基板 502相对贴合设置的彩色滤光片基
板 504、 设于薄膜晶体管基板 502 与彩色滤光片基板 504之间的液晶层 506及分别贴合于薄膜晶体管基板 502与彩色滤光片基板 504外表面的第 一与第二偏光片 522、 542 , 背光模组发出光线经由第一偏光片 522 偏正 后, 进入液晶层 506, 液晶层 506对该偏正光进行选择后, 光线射入彩色 滤光片基板 504, 彩色滤光片基板 504 的彩色滤光片 544 对光线进行调 色, 再经由第二偏光片 542偏正后射出, 以显示彩色画面。
然而, 偏光片和彩色滤光片都会严重影响背光的利用率, 使得整个显 示系统的光学利用率只有 5%- 10%左右。 同时色域也受到 RGB彩色滤光片 自身的色度坐标限制, 色彩表现能力有限。
为了克服上述缺陷, 现有一种基于双层液晶法布里珀罗滤波器模组的 显示装置 (如图 3 所示) , 其包括: 背光模组 30 以及位于所述背光模组 30上方的像素化的双层液晶法布里珀罗滤波器模组, 背光模组 30 由多个 RGB三色 LED芯片组成的 LED灯条 38、 导光板 36 , 扩散片 34及增透膜 32组成, 为所述像素化的双层液晶法布里珀罗滤波器模组提供透射用的背 光; 所述像素化的双层液晶法布里珀罗滤波器模组包括第一像素化的单层 液晶法布里珀罗滤波器模组 10及第二像素化的默层液晶法布里珀罗滤波 器模组 20 , 各层像素化的双层液晶法布里珀罗滤波器模组分别包括阵列化 的若千像素单元, 各层的若千像素单元分别独立驱动投射出中心波长不偏 移的像素, 该像素化的双层液晶法布里珀罗滤波器模组用于对背光进行灰 度和色彩调制。
请参阅图 4, 所述像素单元具体包括第一与第二衬底 11、 1 12, 分别 位于所述像素单元的顶层和底层、 上层多层介盾反射层 113、 下层多层介 盾反射层 U 4 以及设于上层多层介,质反射层 1 13 与下层多层介质反射层 114 之间的液晶层, 所述液晶层通过隔断层 150 分割成红色像素液晶层 152、 绿色像素液晶层 154和蓝色像素液晶层 156, 第一衬底 11与液晶层 之间还设有红色像素上层电极及驱动电路 162、 绿色像素上层电极及驱动 电路 164 及蓝色像素上层电极及驱动电路 66, 分别为红色像素液晶层 152、 绿色像素液晶层 154 和蓝色像素液晶层 156 提供驱动电压。 工作 时, 上下相对的像素, 分别由其驱动电路提供不同的电压, 以使得两像素 的透射谱一个向长波长偏移, 另一个向短波长偏移, 两者叠加后透射出中 心波长不偏移的子像素。 从而实现对背光灰度的调节同时保证出射光的中 心波长不发生漂移, 提高背光利用率。
然而, 上述方案中单个子像素的透射峰值波长与背光模组的 LED 灯 条的中心波长相对应, 不能实现单个子像素透射谱的峰值波长和透射率的
调节, 且, 由于上述方案中的基于三色 LED 配合固定透射峰值波长的子 像素是传统的三原色混色, 其色域相对较小, 不能很好的满足消费者的需 求。 发明内容
本发明的目的在于提供一种基于默层液晶法布里珀罗滤波器模组的显 示装置, 其系统光学效率高, 色域范围广, 且结构简单, 成本低„
为实现上述目的, 本发明提供一种基于双层液晶法布里珀罗滤波器模 组的显示装置, 包括: 背光模组及位于背光模组上方的双层液晶法布里珀 罗滤波器模组, 所述背光模组为默层液晶法布里珀罗滤波器模组提供连续 光谱的白色透射光, 所述 层液晶法布里珀罗滤波器模组包括一上层液晶 法布里珀罗滤波器模组及一下层液晶法布里珀罗滤波器模组, 所述上层液 晶法布里珀罗滤波器模组包括数个上层液晶法布里珀罗滤波器单元, 所述 下层液晶法布里珀罗滤波器模组包括数个下层液晶法布里珀罗滤波器单 元, 所述双层液晶法布里珀罗滤波器模组划分有阵列排布的数个主像素, 每一主像素包括两个子像素, 每一子像素包括层叠设置的一个上层液晶法 布里珀罗滤波器单元及一个下层液晶法布里珀罗滤波器单元, 所述主像素 的两个子像素独立驱动, 使得背光模组提供的连续光谱的白色透射光在透 射过该两个子像素时, 形成两种色度的透射光, 该两种色度的透射光混光 后, 得到主像素的色度。
所述上层液晶法布里珀罗滤波器单元包括第一下层玻璃基板、 位于第 一下层玻璃基板上的第一下层电极及驱动电路、 位于第一下层电极及驱动 电路上的第一下层多层介盾反射膜、 位于第一下层多层介质反射膜上的第 一下层配向膜、 位于第一下层配向膜上的第一液晶层、 位于第一液晶层上 的第一上层配向膜、 位于第一上层配向膜上的第一上层多层介质反射膜、 位于第一上层多层介质反射膜上的第一上层电极及位于第一上层电极上的 第一上层玻璃基板。
所述下层液晶法布里珀罗滤波器单元包括第二下层玻璃基板、 位于第 二下层玻璃基板上的第二下层电极及驱动电路、 位于第二下层电极及驱动 电路上的第二下层多层介质反射膜、 位于第二下层多层介质反射膜上的第 二下层配向膜、 位于第二下层配向膜上的第二液晶层、 位于第二液晶层上 的第二上层配向膜、 位于第二上层配向膜上的第二上层多层介质反射膜、 位于第二上层多层介质反射膜上的第二上层电极及位于第二上层电极上的 第二上层玻璃基板。
所述第一液晶层与第二液晶层内的液晶分子偏转的预倾方向相反。 还包括设于背光模组与双层液晶法布里珀罗滤波器模组之间的增透 膜。
所述相邻设置的两子像素的上层液晶法布里珀罗滤波器单元的第一液 晶层之间具有第一隔断层。
所述相邻设置的两子像素的下层液晶法布里珀罗滤波器单元的第二液 晶层之间具有第二隔断层。
所述背光模组包括: 背光源及导光板, 该背光源发出连续光谱的白 光, 经由导光板后, 为双层液晶法布里珀罗滤波器模组提供连续光谱的白 色透射光。
本发明还提供一种基于双层液晶法布里珀罗滤波器模组的显示装置, 包括: 背光模组及位于背光模组上方的默层液晶法布里珀罗滤波器模组, 所述背光模组为汉层液晶法布里珀罗滤波器模组提供连续光谱的白色透射 光, 所述双层液晶法布里珀罗滤波器模组包括一上层液晶法布里珀罗滤波 器模组及一下层液晶法布里珀罗滤波器模组, 所述上层液晶法布里珀罗滤 波器模组包括数个上层液晶法布里珀罗滤波器单元, 所述下层液晶法布里 珀罗滤波器模组包括数个下层液晶法布里珀罗滤波器单元, 所述默层液晶 法布里珀罗滤波器模组划分有阵列排布的数个主像素, 每一主像素包括两 个子像素, 每一子像素包括层叠设置的一个上层液晶法布里珀罗滤波器单 元及一个下层液晶法布里珀罗滤波器单元, 所述主像素的两个子像素独立 驱动, 使得背光模组提供的连续光谱的白色透射光在透射过该两个子像素 时, 形成两种色度的透射光, 该两种色度的透射光混光后, 得到主像素的 色度;
其中, 所述上层液晶法布里珀罗滤波器单元包括第一下层玻璃基板、 位于第一下层玻璃基板上的第一下层电极及驱动电路、 位于第一下层电极 及驱动电路上的第一下层多层介质反射膜、 位于第一下层多层介质反射膜 上的第一下层配向膜、 位于第一下层配向膜上的第一液晶层、 位于第一液 晶层上的第一上层配向膜、 位于第一上层配向膜上的第一上层多层介盾反 射膜、 位于第一上层多层介质反射膜上的第一上层电极及位于第一上层电 极上的第一上层玻璃基板;
其中, 所述下层液晶法布里珀罗滤波器单元包括第二下层玻璃基板。 位于第二下层玻璃基板上的第二下层电极及驱动电路、 位于第二下层电极 及驱动电路上的第二下层多层介质反射膜、 位于第二下层多层介质反射膜 上的第二下层配向膜、 位于第二下层配向膜上的第二液晶层、 位于第二液
晶层上的第二上层配向膜、 位于第二上层配向膜上的第二上层多层介质反 射膜、 位于第二上层多层介质反射膜上的第二上层电极及位于第二上层电 极上的第二上层玻璃基板。
所述第一液晶层与第二液晶层内的液晶分子偏转的预倾方向相反。 还包括设于背光模组与双层液晶法布里珀罗滤波器模组之间的增透 膜。
所述相邻设置的两子像素的上层液晶法布里珀罗滤波器单元的第一液 晶层之间具有第一隔断层。
所述相邻设置的两子像素的下层液晶法布里珀罗滤波器单元的第二液 晶层之间具有第二隔断层。
所述背光模组包括: 背光源及导光板, 该背光源发出连续光谱的白 光, 经由导光板后, 为双层液晶法布里珀罗滤波器模组提供连续光谱的白 色透射光。
本发明的有益效果: 本发明的基于双层液晶法布里珀罗滤波器模组的 显示装置, 通过背光模组与双层液晶法布里珀罗滤波器模组配合, 实现色 彩调制, 避免了现有传统液晶显示装置中偏光片及彩色滤光片的使用, 进 而提高背光模组的光利用率; 通过白光光源提供连续光潘的白色透射光, 配合每个主像素的两个子像素驱动, 实现超广色域的覆盖; 构成每个主像 素的两个子像素分别独立驱动, 使得每个子像素的透射谱的峰值波长和透 射率可调, 进一步提高背光模组的光利用率; 且, 通过配向膜的设置, 使 得构成每个子像素的上、 下层液晶法布里珀罗滤波器单元的液晶层内的液 晶分子偏转的预倾方向相反, 进 对千涉性光学元件常有的角度色偏进行 补偿, 提升了显示效果。
为了能更进一步了解本发明的特征以及技术内容, 请参阅以下有关本 发明的详细说明与附图, 然而附图仅提供参考与说明用, 并非用来对本发 明加以限制。 附图说明
下面结合附图, 通过对本发明的具体实施方式详细描述, 将使本发明 的技术方案及其它有益效果显而易见„
附图中,
图 1为现有液晶显示装置的立体分解示意图;
图 2为现有的液晶显示面板的结构示意图;
图 3 为现有一种基于双层液晶法布里珀罗滤波器模组的显示装置的立
体结构示意图;
图 4为图 3中像素单元的结构示意图;
图 5 为本发明基于双层液晶法布里珀罗滤波器模组的显示装置的立体 结构示意图;
图 6为 CIE1931 色度图;
图 7为本发明基于默层液晶法布里珀罗滤波器模组的显示装置的主像 素的结构示意图„ 具体实族方式
为更进一步阐述本发明所采取的技术手段及其效果, 以下结合本发明 的优选实施例及其附图进行详细描述。
请参阅图 5 至图 Ί, 本发明提供一种基于双层液晶法布里珀罗滤波器 模组的显示装置, 包括: 背光模组 4及位于背光模组 4上方的双层液晶法 布里珀罗滤波器模组 2, 所述背光模组 4 为双层液晶法布里珀罗滤波器模 组 2提供连续光谱的白色透射光, 所述双层液晶法布里珀罗滤波器模组 2 用于色彩调制, 以控制透射光的颜色与强度, 避免了现有传统液晶显示装 置中偏光片及彩色滤光片的使用, 进而提高背光模组 4的光利用率。
所述双层液晶法布里珀罗滤波器模组 2 包括一上层液晶法布里珀罗滤 波器模组 22及一下层液晶法布里珀罗滤波器模组 24, 所述上层液晶法布 里珀罗滤波器模组 22包括数个上层液晶法布里珀罗滤波器单元 220, 所述 下层液晶法布里珀罗滤波器模组 24 包括数个下层液晶法布里珀罗滤波器 单元 240。
在本实施例中, 所述双层液晶法布里珀罗滤波器 2 划分有阵列排布的 数个主像素 402, 每一主像素 402 包括两个子像素 204, 每一子像素 204 包括层叠设置的一个上层液晶法布里珀罗滤波器单元 220及一个下层液晶 法布里珀罗滤波器单元 240, 所述主像素 402 的两个子像素 204 独立驱 动, 能够自由控制透射谱的峰值波长和透射率, 从而使得背光模组 4提供 的连续光谱的白色透射光在透射过该两个子像素 204 时, 形成两种色度的 透射光, 该两种色度的透射光混光后, 得到主像素 402的色度。
根据格拉斯曼颜色混合定律 ( Grassman's law ) 的补色律和中间色律, 可知, 在由两个成分组成的混合色中, 如果一个成分连续变化, 混合色的 外貌也连续地变化, 那么, 当需要主像素 402 的色度发生变化时, 控制其 中一个子像素 204 的驱动电压, 改变透射谱的峰值波长和透射率, 使得透 过该子像素 204 的透射光的色度发生变化即可; 而同时控制两个子像素
204 的驱动电压, 使得透过该两个子像素 204 的透射光的色度均发生变 化, 以混合出更多色度的主像素 402 , 即可实现基于双层液晶法布里珀罗 滤波器模组的显示装置的彩色显示。
请参阅图 6, 为 CIE1931 色度图, 当一个主像素 402 的两个子像素 204 的色度坐标分别位于色度曲线外围时, 那么该主像素 402 的色域就能 够覆盖整个 Cmi93 i 色度空间, 相比现有的 RGB三原色混合的主像素的 色域(图 6中三角形所示) , 本发明的色域更为广泛, 显示效果更好。
具体地, 请参阅图 7, 每一上层液晶法布里珀罗滤波器单元 220 包括 第一下层玻璃基板 221、 位于第一下层玻璃基板 221 上的第一下层电极及 驱动电路 222、 位于第一下层电极及驱动电路 222 上的第一下层多层介质 反射膜 223、 位于第一下层多层介质反射膜 223 上的第一下层配向膜 224 , 位于第一下层配向膜 224上的第一液晶层 225、 位于第一液晶层 225 上的第一上层配向膜 226、 位于第一上层配向膜 226上的第一上层多层介 质反射膜 227、 位于第一上层多层介质反射膜 227 上的第一上层电极 228 及位于第一上层电极 228上的第一上层玻璃基板 229。
每一下层液晶法布里珀罗滤波器单元 240 包括第二下层玻璃基板 241 , 位于第二下层玻璃基板 241上的第二下层电极及驱动电路 242、 位于 第二下层电极及驱动电路 242 上的第二下层多层介质反射膜 243、 位于第 二下层多层介质反射膜 243 上的第二下层配向膜 244、 位于第二下层配向 膜 244 上的第二液晶层 245、 位于第二液晶层 245 上的第二上层配向膜 246、 位于第二上层配向膜 246上的第二上层多层介质反射膜 247、 位于第 二上层多层介质反射膜 247 上的第二上层电极 248 及位于第二上层电极 248上的第二上层玻璃基板 249。
所述背光模组 4提供的连续光谱的白色透射光, 依次经过下层液晶法 布里珀罗滤波器单元 240与上层液晶法布里珀罗滤波器单元 220滤波后形 成特定色度的透射光, 两种特定色度的透射光混合后形成主像素 402 的色 度, 其原理为, 通过第二上层电极 248、 第二下层电极及驱动电路 242驱 动第二液晶层 245 内的液晶分子偏转, 以对经过该第二液晶层 245的连续 光谱的白光进行选择, 使得透过该第二液晶层 245 的透射光的色度发生变 化, 再经过第一液晶层 225的选择, 进而使得透过该子像素 204的透射光 的色度为所需要的色度。
所述第一下层配向膜 224、 第一上层配向膜 226 用于对第一液晶层 225 内液晶分子的转向进行配向, 所述第二下层配向膜 244、 第二上层配 向膜 246用于对第二液晶层 245 内液晶分子的转向进行配向, 优选的, 所
述第一液晶层 225与第二液晶层 245 内的液晶分子偏转的预倾方向相反, 进而对千涉性光学元件常有的角度色偏进行补偿, 提升显示效果 :,
具体地, 所述相邻设置的两子像素 204 的上层液晶法布里珀罗滤波器 单元 220的第一液晶层 225之间具有第一隔断层 252, 所述相邻设置的两 子像素 204的下层液晶法布里珀罗滤波器单元 240的第二液晶层 245之间 具有第二隔断层 254。
值得一提的是, 在本发明中, 所述背光模组 4为侧入式背光模组, 其 包括: 背光源 42及导光板 44, 该背光源 42发出连续光谱的白光, 经由导 光板 44后, 为双层液晶法布里珀罗滤波器模组 2提供连续光谱的白色透 光源 42 可选用现有的白光背光源, 均可实现本
的基于双层液晶法布里珀罗滤波器模组的显示装 置, 通过背光模组与汉层液晶法布里珀罗滤波器模组配合, 实现色彩调 制, 避免了现有传统液晶显示装置中偏光片及彩色滤光片的使用, 进而提 高背光模组的光利用率; 通过白光光源提供连续光谱的白色透射光, 配合 每个主像素的两个子像素驱动, 实现超广色域的覆盖; 构成每个主像素的 两个子像素分别独立驱动, 使得每个子像素的透射谱的峰值波长和透射率 可调, 进一步提高背光模组的光利用率; 且, 通过配向膜的设置, 使得构 成每个子像素的上、 下层液晶法布里珀罗滤波器单元的液晶层内的液晶分 子偏转的预倾方向相反, 进而对千涉性光学元件常有的角度色偏进行补 偿, 提升了显示效杲。
以上所述, 对于本领域的普通技术人员来说, 可以根据本发明的技术 方案和技术构思作出其他各种相应的改变和变形, 而所有这些改变和变形 都应属于本发明权利要求的保护范围。
Claims
权 利 要 求 一种基于双层液晶法布里珀罗滤波器模组的显示装置, 包括: 背 光模组及位于背光模组上方的双层液晶法布里珀罗滤波器模组, 所述背光 模组为双层液晶法布里珀罗滤波器模组提供连续光谱的白色透射光, 所述 双层液晶法布里珀罗滤波器模组包括一上层液晶法布里珀罗滤波器模组及 一下层液晶法布里珀罗滤波器模组, 所述上层液晶法布里珀罗滤波器模组 包括数个上层液晶法布里珀罗滤波器单元, 所述下层液晶法布里珀罗滤波 器模组包括数个下层液晶法布里珀罗滤波器单元, 所述双层液晶法布里珀 罗滤波器模组划分有阵列排布的数个主像素, 每一主像素包括两个子像 素, 每一子像素包括层叠设置的一个上层液晶法布里珀罗滤波器单元及一 个下层液晶法布里珀罗滤波器单元, 所述主像素的两个子像素独立驱动, 使得背光模组提供的连续光谱的白色透射光在透射过该两个子像素时, 形 成两种色度的透射光, 该两种色度的透射光混光后, 得到主像素的色度。
2、 如权利要求 1 所述的基于双层液晶法布里珀罗滤波器模组的显示 装置, 其中, 所述上层液晶法布里珀罗滤波器单元包括第一下层玻璃基 板, 位于第一下层玻璃基板上的第一下层电极及驱动电路, 位于第一下层 电极及驱动电路上的第一下层多层介质反射膜、 位于第一下层多层介质反 射膜上的第一下层配向膜、 位于第一下层配向膜上的第一液晶层、 位于第 一液晶层上的第一上层配向膜、 位于第一上层配向膜上的第一上层多层介 质反射膜、 位于第一上层多层介质反射膜上的第一上层电极及位于第一上 层电极上的第一上层玻璃基板。
3、 如权利要求 2 所述的基于双层液晶法布里珀罗滤波器模组的显示 装置, 其中, 所述下层液晶法布里珀罗滤波器单元包括第二下层玻璃基 板、 位于第二下层玻璃基板上的第二下层电极及驱动电路、 位于第二下层 电极及驱动电路上的第二下层多层介质反射膜、 位于第二下层多层介质反 射膜上的第二下层配向膜、 位于第二下层配向膜上的第二液晶层、 位于第 二液晶层上的第二上层配向膜、 位于第二上层配向膜上的第二上层多层介 质反射膜、 位于第二上层多层介质反射膜上的第二上层电极及位于第二上 层电极上的第二上层玻璃基.板。
4、 如权利要求 3 所述的基于双层液晶法布里珀罗滤波器模组的显示 装置, 其中, 所述第一液晶层与第二液晶层内的液晶分子偏转的预倾方向 相反。
5、 如权利要求 i 所述的基于默层液晶法布里珀罗滤波器的显示装 置, 还包括设于背光模组与双层液晶法布里珀罗滤波器模组之间的增透 膜。
6、 如权利要求 4 所述的基于双层液晶法布里珀罗滤波器模组的显示 装置, 其中, 所述相邻设置的两子像素的上层液晶法布里珀罗滤波器单元 的第一液晶层之间具有第一隔断层。
7、 如权利要求 4 所述的基于双层液晶法布里珀罗滤波器模组的显示 装置, 其中, 所述相邻设置的两子像素的下层液晶法布里珀罗滤波器单元 的第二液晶层之间具有第二隔断层。
8、 如权利要求 所述的基于双层液晶法布里珀罗滤波器模组的显示 装置, 其中, 所述背光模组包括: 背光源及导光板, 该背光源发出连续光 潘的白光, 经由导光板后, 为双层液晶法布里珀罗滤波器模组提供连续光 -潘的白色透射光。
9、 一种基于双层液晶法布里珀罗滤波器模组的显示装置, 包括: 背 光模组及位于背光模组上方的双层液晶法布里珀罗滤波器模组, 所述背光 模组为 层液晶法布里珀罗滤波器模组提供连续光谱的白色透射光, 所述 双层液晶法布里珀罗滤波器模组包括一上层液晶法布里珀罗滤波器模组及 一下层液晶法布里珀罗滤波器模组, 所述上层液晶法布里珀罗滤波器模组 包括数个上层液晶法布里珀罗滤波器单元, 所述下层液晶法布里珀罗滤波 器模组包括数个下层液晶法布里珀罗滤波器单元, 所述双层液晶法布里珀 罗滤波器模组划分有阵列排布的数个主像素, 每一主像素包括两个子像 素, 每一子像素包括层叠设置的一个上层液晶法布里珀罗滤波器单元及一 个下层液晶法布里珀罗滤波器单元, 所述主像素的两个子像素独立驱动, 使得背光模组提供的连续光谱的白色透射光在透射过该两个子像素时, 形 成两种色度的透射光, 该两种色度的透射光混光后, 得到主像素的色度; 其中, 所述上层液晶法布里珀罗滤波器单元包括第一下层玻璃基板。 位于第一下层玻璃基板上的第一下层电极及驱动电路、 位于第一下层电极 及驱动电路上的第一下层多层介盾反射膜、 位于第一下层多层介质反射膜 上的第一下层配向膜、 位于第一下层配向膜上的第一液晶层、 位于第一液 晶层上的第一上层配向膜、 位于第一上层配向膜上的第一上层多层介质反 射膜、 位于第一上层多层介质反射膜上的第一上层电极及位于第一上层电 极上的第一上层玻璃基板;
其中, 所述下层液晶法布里珀罗滤波器单元包括第二下层玻璃基板、 位于第二下层玻璃基板上的第二下层电极及驱动电路、 位于第二下层电极
及驱动电路上的第二下层多层介质反射膜、 位于第二下层多层介质反射膜 上的第二下层配向膜、 位于第二下层配向膜上的第二液晶层、 位于第二液 晶层上的第二上层配向膜、 位于第二上层配向膜上的第二上层多层介质反 射膜、 位于第二上层多层介质反射膜上的第二上层电极及位于第二上层电 极上的第二上层玻璃基板。
10、 如权利要求 9所述的基于双层液晶法布里珀罗滤波器模组的显示 装置, 其中, 所述第一液晶层与第二液晶层内的液晶分子偏转的预倾方向 相反„
1 K 如权利要求 9 所述的基于双层液晶法布里珀罗滤波器的显示装 置, 还包括设于背光模组与默层液晶法布里珀罗滤波器模组之间的增透 膜。
12 , 如权利要求 10 所述的基于双层液晶法布里珀罗滤波器模组的显 示装置, 其中, 所述相邻设置的两子像素的上层液晶法布里珀罗滤波器单 元的第一液晶层之间具有第一隔断层。
13、 如权利要求 10 所述的基于双层液晶法布里珀罗滤波器模组的显 示装置, 其中, 所述相邻设置的两子像素的下层液晶法布里珀罗滤波器单 元的第二液晶层之间具有第二隔断层。
14、 如权利要求 9所述的基于双层液晶法布里珀罗滤波器模组的显示 装置, 其中, 所述背光模组包括: 背光源及导光板, 该背光源发出连续光 潘的白光, 经由导光板后, 为双层液晶法布里珀罗滤波器模组提供连续光 谱的白色透射光。
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US14/235,070 US9291867B2 (en) | 2013-07-02 | 2013-07-11 | Double layer liquid crystal (LC) fabry-perot (FP) filter display device |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201310274521.1 | 2013-07-02 | ||
| CN201310274521.1A CN103293760B (zh) | 2013-07-02 | 2013-07-02 | 基于双层液晶法布里珀罗滤波器模组的显示装置 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2015000191A1 true WO2015000191A1 (zh) | 2015-01-08 |
Family
ID=49094910
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/CN2013/079250 Ceased WO2015000191A1 (zh) | 2013-07-02 | 2013-07-11 | 基于双层液晶法布里珀罗滤波器模组的显示装置 |
Country Status (2)
| Country | Link |
|---|---|
| CN (1) | CN103293760B (zh) |
| WO (1) | WO2015000191A1 (zh) |
Families Citing this family (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| KR101317882B1 (ko) * | 2013-03-25 | 2013-10-18 | (주)엔디스 | 입체영상 디스플레이 장치 |
| KR102466673B1 (ko) * | 2016-01-13 | 2022-11-14 | 삼성전자주식회사 | 가변 전기광학 필터 |
| CN109828406B (zh) * | 2019-03-15 | 2021-03-30 | 山西大学 | 一种像素结构、显示器件、显示装置和投影显示系统 |
| WO2020186492A1 (zh) * | 2019-03-21 | 2020-09-24 | 京东方科技集团股份有限公司 | 显示面板 |
| CN109870858A (zh) * | 2019-04-24 | 2019-06-11 | 京东方科技集团股份有限公司 | 显示面板及3d打印装置 |
| US11151914B1 (en) * | 2020-04-09 | 2021-10-19 | Nvidia Corporation | Defective pixel identification and mitigation in multi-layer liquid crystal displays |
| CN114935789B (zh) * | 2022-05-19 | 2024-05-17 | 西安中科微星光电科技有限公司 | 一种窄带滤光片及其制备方法 |
Citations (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN1325502A (zh) * | 1998-11-02 | 2001-12-05 | 斯马特显示器株式会社 | 非偏振敏感型向列液晶法布里-珀罗波长调谐滤波器 |
| US20040227455A1 (en) * | 2002-07-27 | 2004-11-18 | Samsung Electronics Co., Ltd. | Light regulating device and photonic crystal display utilizing photonic bandgap controls |
| CN1936682A (zh) * | 2005-09-23 | 2007-03-28 | 三星电子株式会社 | 液晶显示面板及其驱动方法及使用该面板的液晶显示设备 |
| CN101520565A (zh) * | 2009-01-09 | 2009-09-02 | 中国工程物理研究院流体物理研究所 | 一种快速响应液晶光开关及制备方法 |
| CN102799013A (zh) * | 2012-09-05 | 2012-11-28 | 天津奇谱光电技术有限公司 | 一种偏振无关的可调谐法布里-珀罗滤波器 |
| CN103105708A (zh) * | 2013-01-14 | 2013-05-15 | 上海交通大学 | 基于双层液晶法布里珀罗滤波器的显示装置 |
-
2013
- 2013-07-02 CN CN201310274521.1A patent/CN103293760B/zh not_active Expired - Fee Related
- 2013-07-11 WO PCT/CN2013/079250 patent/WO2015000191A1/zh not_active Ceased
Patent Citations (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN1325502A (zh) * | 1998-11-02 | 2001-12-05 | 斯马特显示器株式会社 | 非偏振敏感型向列液晶法布里-珀罗波长调谐滤波器 |
| US20040227455A1 (en) * | 2002-07-27 | 2004-11-18 | Samsung Electronics Co., Ltd. | Light regulating device and photonic crystal display utilizing photonic bandgap controls |
| CN1936682A (zh) * | 2005-09-23 | 2007-03-28 | 三星电子株式会社 | 液晶显示面板及其驱动方法及使用该面板的液晶显示设备 |
| CN101520565A (zh) * | 2009-01-09 | 2009-09-02 | 中国工程物理研究院流体物理研究所 | 一种快速响应液晶光开关及制备方法 |
| CN102799013A (zh) * | 2012-09-05 | 2012-11-28 | 天津奇谱光电技术有限公司 | 一种偏振无关的可调谐法布里-珀罗滤波器 |
| CN103105708A (zh) * | 2013-01-14 | 2013-05-15 | 上海交通大学 | 基于双层液晶法布里珀罗滤波器的显示装置 |
Also Published As
| Publication number | Publication date |
|---|---|
| CN103293760B (zh) | 2015-06-03 |
| CN103293760A (zh) | 2013-09-11 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US7583332B2 (en) | Color-filterless liquid crystal display device | |
| WO2015000191A1 (zh) | 基于双层液晶法布里珀罗滤波器模组的显示装置 | |
| WO2015105733A1 (en) | High dynamic range liquid crystal display | |
| JP2018180290A (ja) | 表示装置 | |
| US10203545B2 (en) | Display panels and polarizers thereof | |
| US10895777B1 (en) | Display device and method for adjusting chromaticity of display beam | |
| WO2013135077A1 (zh) | 液晶显示面板及其制作方法、液晶显示器 | |
| WO2016026181A1 (zh) | 彩色液晶显示模组结构及其背光模组 | |
| KR20090079779A (ko) | 듀얼 액정표시장치 | |
| JP2004287323A (ja) | 半透過型液晶表示装置 | |
| WO2014173004A1 (zh) | 液晶面板 | |
| TWI454795B (zh) | 液晶顯示裝置 | |
| US20080273147A1 (en) | Liquid crystal display device having black/white LCD panel | |
| US20140009695A1 (en) | Illumination device, display device, and television reception device | |
| US9476577B2 (en) | Lighting device, display device, and television reception device | |
| KR101920697B1 (ko) | 편광판과 이를 포함하는 액정표시장치 | |
| US9291867B2 (en) | Double layer liquid crystal (LC) fabry-perot (FP) filter display device | |
| TW200909933A (en) | Liquid crystal display and liquid crystal display panel | |
| TWI316631B (en) | Electro-optical device and electronic apparatus | |
| US7580094B2 (en) | Transreflective LCD panel and electronic device using the same | |
| US20080094539A1 (en) | Liquid crystal display with black/white liquid crystal display panel | |
| US12147130B2 (en) | Display device | |
| KR101717652B1 (ko) | 컬러필터층 및 이를 구비한 액정표시소자 | |
| CN215340639U (zh) | 一种区域调光液晶模组 | |
| JP2007010752A (ja) | カラー静止画表示素子及びカラー静止画表示装置 |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| WWE | Wipo information: entry into national phase |
Ref document number: 14235070 Country of ref document: US |
|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 13888633 Country of ref document: EP Kind code of ref document: A1 |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| 122 | Ep: pct application non-entry in european phase |
Ref document number: 13888633 Country of ref document: EP Kind code of ref document: A1 |
