DISPLAY BOARD AND DISPLAY DEVICE

DE602014092833T2Active Publication Date: 2026-02-25BOE TECHNOLOGY GROUP CO LTD
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Patent Information

Application Number
DE602014092833
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2014-06-12
Filing Date
2014-09-05
Publication Date
2026-02-25
Estimated Expiration
2034-09-05

AI Technical Summary

Technical Problem

The issue of lower brightness in OLEDs and LCDs is caused by the large refractive index difference between Indium Tin Oxide (ITO) and the glass substrate, leading to total reflection and light loss.

Method used

A liquid crystal display panel design with a color film structure comprising transparent conductive oxide film layers and color filter units, where the refractive indices of color filter films gradually increase from the base substrate to the transparent conductive oxide film, reducing total reflection and enhancing light transmission.

Benefits of technology

The design increases display brightness by minimizing light loss due to refractive index mismatch, resulting in improved luminance and color purity.

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Description

TECHNICAL FIELD

[0001] Embodiments of the present invention relates to a liquid crystal display panel and a display device.BACKGROUND

[0002] In the current Organic Light Emitting Diodes (OLED) and Liquid Crystal Displays (LCD), there is a usual problem of lower brightness. This problem is caused by that the anodes in the OLEDs and the pixel electrodes and common electrodes in the LCDs are generally made of Indium Tin Oxides (ITO) with the refractive index of 1.8, there is a relatively large refractive index difference between the ITO film and a glass substrate with the refractive index of 1.5. When incident light is irradiated to the glass substrate after passing the ITO film, part of the incident light will be subjected to total reflection, thus the light emitted from the glass substrate will be subjected to loss problem, thereby directly affecting the display brightness of OLEDs and LCDs. US 2010 / 013741 A1 relates to a light extraction device having a reflector function and a color filter function, and the light extraction device includes a translucent portion having a reflection surface for changing an exit angle of light from a light-emitting layer, and at least a part of the translucent portion is formed as color filters. The translucent portion has a function as a reflector for changing the exit angle of light from the light-emitting layer, and improves an extraction efficiency of light from the light-emitting layer to an air layer. Further, the at least a part of translucent portion is formed as the color filters, and therefore a reflector and the color filter can be formed on the same layer. With this structure, the light extraction device having the reflector function and the color filter function can be obtained. US 2011 / 074272 A1 relates to an optical member which is disposed on the light emitting side of an organic light-emitting display device having at least a light reflective electrode and an organic EL layer, the optical member including: a light transmissive substrate, and a light transmissive layer which is formed on the light transmissive substrate and which has concave portions, wherein the optical member is disposed on the light emitting side of the organic light-emitting display device, the optical member enabling to from an optical resonator between the light reflective electrode in the organic light-emitting display device and surfaces of the concave portions opposite to the light reflective electrode, and wherein the optical resonator emits light of at least one color light selected from a red light, a green light and a blue light. US 2004 / 201798 A1 relates to a method for manufacturing a color filter, and the method for manufacturing a color filter includes: preparing a transparent substrate; forming a black matrix on the transparent substrate, the black matrix including an antireflection layer formed on the transparent substrate and a light-shielding layer formed on the antireflection layer, the antireflection layer including a first antireflection film having a first index of refraction, and a second antireflection film having a different second index of refraction, the black matrix defining a plurality of apertures arranged in an array; and coating a color resin layer on the transparent substrate and the black matrix.SUMMARY

[0003] According to one aspect of the present invention, a liquid crystal display panel is provided comprising: a display substrate, an array substrate, and a liquid crystal layer sandwiched between the display substrate and the array substrate, wherein the display substrate comprises a base substrate, a color film structure and a transparent conductive oxide film layer subsequently laminated on the base substrate, and the transparent conductive oxide film layer is arranged on a side of the color film structure close to the liquid crystal layer; or the display substrate comprises a base substrate, and a color film structure arranged on the base substrate, the array substrate comprises a transparent conductive oxide film layer, and the transparent conductive oxide film layer is arranged on a side of the array substrate close to the liquid crystal layer; wherein the color film structure comprises a blue color filter unit, a red color filter unit and a green color filter unit arranged in a matrix; wherein the blue color filter unit comprises four layers of laminated color filter films, and the red color filter unit and the green color filter unit are of single-layer structure, wherein one layer of the color filter films of the blue color filter unit adjacent to the base substrate has a refractive index larger than that of the base substrate, and one layer of the color filter films of the blue color filter unit adjacent to the transparent conductive oxide film layer has a refractive index less than that of the transparent conductive oxide film layer, wherein refractive indices of the color filter films of the blue color filter unit gradually increase in a direction from the base substrate towards the transparent conductive oxide film layer; and wherein a thickness of each layer of the color filter films is less than or equal to 0.45 µm.

[0004] In one example, each layer of the color filter films has a thickness less than a minimum wavelength of visible light.

[0005] In one example, the display substrate of the liquid crystal display panel further comprises a flat layer disposed between the color film structure and the transparent conductive oxide film layer.

[0006] In one example, the display substrate of the liquid crystal display panel further comprises a black matrix disposed between the adjacent color filter units.

[0007] According to the second aspect of the present invention, a display device comprising the above liquid crystal display panel is provided.BRIEF DESCRIPTION OF THE DRAWINGS

[0008] In order to clearly illustrate the technical solution of the embodiments of the invention, the drawings of the embodiments will be briefly described in the following; it is obvious that the described drawings are only related to some embodiments of the invention and thus are not limitative of the invention. FIG. 1a and FIG. 1b are schematic diagrams illustrating a configuration of a display substrate provided by embodiments which are not part of the present invention, respectively; FIG. 2a to FIG. 2d are schematic diagrams illustrating a configuration of a liquid crystal display panel provided by embodiments of the present invention (FIG. 2a and FIG. 2c) and by embodiments which are not part of the present invention (FIG. 2b and FIG. 2d), respectively; FIG. 3a and FIG. 3b are schematic diagrams illustrating a configuration of an organic light emitting diode display panel provided by embodiments which are not part of the present invention, respectively. DETAILED DESCRIPTION

[0009] In order to make objects, technical details and advantages of the embodiments of the invention apparent, the technical solutions of the embodiments will be described in a clearly and fully understandable way in connection with the drawings related to the embodiments of the invention. Apparently, the described embodiments are just a part but not all of the embodiments of the invention. Based on the described embodiments herein, those skilled in the art can obtain other embodiment(s), without any inventive work.

[0010] The shape and thickness of each of the film layers in drawings are not intended to show the real scale, but to schematically describe the content of the present invention.

[0011] Embodiments which are not part of the present invention provide a display substrate, as shown in FIG. 1a and FIG. 1b, the display substrate comprises a base substrate 1, and a color film structure 2 and a transparent conductive oxide film layer 3 subsequently laminated on the base substrate 1. The color film structure 2 comprises a plurality of color filter units arranged in a matrix and having different colors (for example, red (R) color filter unit, green (G) color filter unit and blue (B) color filter unit, respectively, as shown in FIG. 1a and FIG. 1b).

[0012] In the color film structure 2, at least one color of the color filter units comprises at least two layers of laminated color filter films.

[0013] In the color filter unit comprising at least two layers of color filter films, the refractive index of each of the color filter films is gradually increased from the base substrate 1 towards the transparent conductive oxide film layer 3, and one layer of the color filter films adjacent to the base substrate 1 has refractive index larger than that of the base substrate 1, and one layer of the color filter films adjacent to the transparent conductive film layer 3 has refractive index less than that of the transparent conductive oxide film layer 3.

[0014] As the arrow directions shown in FIG. 1a and FIG. 1b, in the above display substrate provided by the embodiments which are not part of the present invention, when light is incident into the transparent conductive oxide film layer 3 and emitted from the base substrate 1 after passing through the color film structure 2, the total reflection caused by the large refractive index difference between the transparent conductive oxide film layer 3 and the base substrate 1 can be reduced, thus the loss of light during its propagation in the display panel can be reduced, and therefore, the display brightness of the display device can be increased.

[0015] In one example, the transparent conductive oxide film layer 3 can be made of Indium Tin Oxide (ITO), Indium Zinc Oxide (IZO), Indium Gallium Zinc Oxide (IGZO), or the like, and there is no limitation thereon. The refractive index of the ITO is 1.92, the refractive index of the IZO and IGZO is 2.05, and the base substrate 1 is typically a glass substrate with the refractive index of 1.5. Therefore, the layer of the color filter film adjacent to the base substrate 1 has refractive index larger than that of the glass substrate, e.g. larger than 1.5, and the layer of the color filter film adjacent to the transparent conductive film layer 3 has refractive index less than that of the transparent conductive film layer 3, e.g. less than 1.9.

[0016] In one example, in the color filter unit comprising at least two layers of color filter films, the more the layer of the color filter film is, the less the refractive index difference between two adjacent color filter films is, whereby, the better the total reflection effect of the light in the layers of the color filter films is. Of course, it is necessary to meet the requirement that the refractive index of each layers of the color filter films is gradually increased in a direction from the base substrate 1 towards the transparent conductive oxide film layer 3, and one layer of the color filter films adjacent to the base substrate 1 has refractive index larger than that of the base substrate 1, and one layer of the color filter films adjacent to the transparent conductive oxide film layer 3 has refractive index less than that of the transparent conductive oxide film layer 3, therefore, the practical number of the layers of the color filter films depends on the existing materials for fabricating the color filter films.

[0017] As shown in FIG. 1a and FIG. 1b, the transparent conductive oxide film layer 3 can be provided as a layer entirely overlaying the substrate; alternatively, according to the function of the transparent conductive oxide film layer 3 in the display substrate, the transparent conductive oxide film layer 3 may have a pattern formed by patterning process, there is no limitation here.

[0018] In FIG. 1a and FIG. 1b, the color film structure 2 is described as comprising the color filter units in tri-colors of red (R), green (G), and blue (B); alternatively, in order to increase the display brightness of the display device, the color film structure 2 may also comprise the color filter units in four colors, i.e. red (R), green (G), blue (B), and white (W); alternatively, in order to increase the gamut of the picture displayed by the display device, the color film structure 2 may also comprise the color filter units in four colors, i.e. red (R), green (G), blue (B), and yellow (Y); alternatively, the color film structure 2 may also comprise the color filter units in other colors, there is no limitation herein.

[0019] In the above display substrate provided by the embodiment which is not part of the present invention, at least one color of the color filter units in the color film structure 2 comprises at least two layers of laminated color filter films. For example, the color filter unit in one color (such as, any one color from red (R), green (G), blue (B), white (W) and yellow (Y)) in the color film structure 2 comprises at least two layers of laminated color filter films. As shown in FIG. 1a, only the color filter unit in blue color in the color film structure 2 is composed of four layers of laminated color filter films; alternatively, in the color film structure 2, the color filter units in any two colors (such as, any two colors from red (R), green (G), blue (B), white (W) and yellow (Y)) each comprises at least two layers of laminated color filter films; Alternatively, the color filter units in all colors each comprises at least two layers of laminated color filter films. As shown in FIG. 1b, each of the red (R), green (G), and blue (B) color filter units in the color film structure 2 is composed of four layers of laminated color filter films, and there is no limitation thereon.

[0020] Compared with the red (R) color filter unit and the green (G) color filter unit, the emission efficiency of the blue (B) color filter unit is relatively low, and therefore, in order to enable the entire displayed picture to render good white balance, in the above display substrate provided by the embodiment which is not part of the present invention, only the blue (B) color filter unit in the color film structure 2 comprises at least two layers of laminated color filter films, and the color filter units in other colors (such as, red (R), green (G), white (W), yellow (Y), and so on) are provided as a single-layer structure. As shown in FIG. 1a, in the color film structure 2, the color filter unit in blue (B) color is composed of four layers of laminated color filter films, and the color filter units in red (R) and green (G) colors are both of single-layer structure.

[0021] When manufacturing the display substrate as shown in FIG. 1a, for example, red (R) resin material with refractive index of 1.65 is spin coated on the base substrate 1, after exposure, development and curing process, to form the red (R) color filter unit having a layer of red (R) color filter film; green (G) resin material with refractive index of 1.68 is spin coated on the base substrate 1, and after exposure, development and curing process, to form the green (G) color filter unit having a layer of green (G) color filter film; and blue resin materials with refractive index of 1.57, 1.62, 1.67 and 1.72 are respectively spin coated on the base substrate 1, after exposure, development and curing process, to form the blue (B) color filter unit having four layers of blue (B) color filter films.

[0022] In order to increase the display brightness of the whole display picture, in the above display substrate provided by the embodiment which is not part of the present invention, the color filter units in all colors in the color film structure 2 all comprise at least two layers of laminated color filter films. As shown in FIG. 1b, in the color film structure 2, the color filter units in red (R), green (G) and blue (B) colors are all composed of four layers of laminated color filter films.

[0023] When manufacturing the display substrate shown in FIG. 1b, for example, red (R) resin materials having refractive index of 1.55, 1.6, 1.65 and 1.75 are respectively spin coated on the base substrate, after exposure, development and curing process, to form the red (R) color filter unit having four layers of red (R) color filter films; green (G) resin materials having refractive index of 1.55, 1.59, 1.71 and 1.75 are respectively spin coated on the base substrate 1, after exposure, development and curing process, to form the green (G) color filter unit comprising four layers of green (G) color filter films; and blue resin materials with refractive index of 1.52, 1.55, 1.58 and 1.74 are respectively spin coated on the base substrate 1, after exposure, development and curing process, to form the blue (B) color filter unit having four layers of blue (B) color filter films.

[0024] In order to further reduce the total reflection during light propagation in the display substrate, in one example, the thickness of each of the color filter films is less than or equal to 0.45 µm. Since the emitting wavelength for the three primary colors red (R), green (G) and blue (B) is ranged from 0.45µm to 0.54µm, when the thickness of each of the color filter films is less than or equal to 0.45µm, it can be guaranteed that the thickness of each of the color filter films is less than the emitting wavelength of the three primary colors red (R), green (G) and blue (B); in this way, it is possible that the light in the three primary colors red (R), green (G) and blue (B) is propagated in each layer of the color filter films in electromagnetic wave manner, and the total reflection phenomenon in the geometric optics will not occur, and thus the loss of light transmitted in the display panel is reduced, and therefore, the display brightness of the display device can be further increased.

[0025] Furthermore, in one example, thickness of each layer of the color filter films is less than the minimum wavelength of visible light, for example, the thickness of each layer of the color filter films is less than 0.38 µm; in this way, it is possible that no total reflection phenomenon occurs in each layer of the color filter films for the light in whole visible waveband, thus it is possible to avoid the loss of light transmitted in the display panel, and therefore, the brightness of the display device can be significantly increased.

[0026] In the above display substrate provided by the embodiment which is not part of the present invention, according to the display requirement for the different color pixels, the thickness of one or more layers of the color filter films can be suitably adjusted; according to the optical micro-cavity effect, full width at half maximum (FWHM) of the light can be narrowed after passing through the color filter films, and thus the purity of the pixel color can be increased.

[0027] In order to guarantee the flatness of the transparent conductive oxide film layer 3, in one example, a flat layer 4 is disposed between the color film structure 2 and the transparent conductive oxide film layer 3; the flat layer 4 is typically formed by spin coating acrylic material and curing the same; the thickness of the flat layer 4 is for example about 4 µm. Furthermore, a black matrix 5 is disposed between the color filter units; the black matrix 5 is typically formed by spin coating resin material and subjecting to exposure, development and curing process; the thickness of the black matrix 5 is for example 1.5 µm. In one example, the thickness of the color filter units in the color film structure 2 is from 1.5 µm to 3 µm, that is, the thickness of each color filter film in the color film structure 2 is larger than the thickness of the black matrix 5.

[0028] Based on the same inventive concept, the embodiments of the present invention provide a liquid crystal display panel comprising the above display substrate. The display panel can be implemented by referring to the above embodiments of the display substrate, and will not be further described in detail.

[0029] The display panel is a liquid crystal display panel (LCD); alternatively, in embodiments which are not part of the present invention, the display panel can be an organic light emitting diode display panel (OLED).

[0030] FIG. 2a and FIG. 2b are schematic diagrams illustrating the display substrates of FIG. 1a and FIG. 1b applied into a LCD where the transparent conductive oxide layer 3 is used as a common electrode. The base substrate 1 is used as a color film substrate of the LCD, and the transparent conductive oxide film layer 3 is used as a common electrode. The LCD further comprises: an array substrate 6 disposed opposite to the color film substrate, a liquid crystal layer 7 disposed between the color film substrate and the array substrate, and a backlight module 9 disposed at a side of the array substrate facing away from the color film substrate, and so on. As shown in FIG. 2a and FIG. 2b, the transparent conductive oxide film layer 3 functioning as the common electrode may be provided at a side of the color film substrate adjacent to the liquid crystal layer, which forms a Twisted Nematic (TN) type LCD. Alternatively, the transparent conductive oxide film layer 3 functioning as the common electrode may be provided at a side of the array substrate 6 adjacent to the liquid crystal layer, which forms an Advanced Super Dimension Switch (ADS) type LCD. There is no limitation herein.

[0031] After passing through the transparent conductive oxide film layer 3, i.e. the common electrode, and the color film structure 2 subsequently, the light emitted from the backlight module 8 exits the base substrate 1, i.e. color film substrate. Since the blue color filter unit in the color film structure 2 comprises four layers of laminated color filter films, and the refractive index of the color filter films is gradually increased in a direction from the base substrate, i.e. the color film substrate, towards the transparent conductive oxide film layer 3, i.e. the common electrode, and the layer of the color filter film adjacent to the base substrate 1, i.e. the color film substrate has a refractive index larger than the refractive index of the base substrate, i.e. the color film substrate, and the layer of the color filter film adjacent to the transparent conductive oxide film layer 3, i.e. the common electrode, has a refractive index less than the refractive index of the transparent conductive oxide film layer 3, i.e. the common electrode, thus, the total reflection phenomenon caused by the large refractive index difference between the transparent conductive oxide film layer 3, i.e. the common electrode and the base substrate 1, i.e. the color film substrate can be reduced, thus the loss of light transmitted in the LCD (in a direction as indicated by the arrow in FIG. 2a and FIG. 2b) can be reduced, and therefore, the display brightness of the LCD can be increased.

[0032] FIG. 2c and FIG. 2d are schematic diagrams illustrating the display substrates of FIG. 1a and FIG. 1b applied into a LCD where the transparent conductive oxide layer 3 is used as a pixel electrode. The transparent conductive oxide film layer 3 is located at a side of the array substrate 6 adjacent to the liquid crystal layer 7, the liquid crystal layer 7 is located between the transparent conductive oxide film layer 3 and the color film structure 2. Other film layers in FIG. 2c and FIG. 2d are same as those in FIG. 2a and FIG. 2b, and thus will not be described in detail.

[0033] In one example, the LCD further comprises a Thin Film Transistor (TFT), e.g. a low temperature polysilicon TFT, or an oxide TFT, or a monocrystalline silicon TFT, and will not be further described.

[0034] FIG. 3a and FIG. 3b are schematic diagrams when the display substrate shown in FIG. 1a and FIG. 1b is applied into an OLED. The base substrate 1 is used as a base substrate having a TFT, the transparent conductive oxide film layer 3 is used as an anode in the organic light emitting diode structure, the TFT is electrically connected with the transparent conductive oxide film layer 3, i.e. the anode, through vias in the flat layer 4. The OLED further comprises a light emitting layer 9 and a cathode 10 subsequently laminated on the transparent conductive oxide film layer 3, i.e. the anode, a pixel defining layer 11 disposed on the flat layer 4 and in an area corresponding to the black matrix 5, and an encapsulation layer 12 adhered to the cathode 10.

[0035] After passing through the transparent conductive oxide film layer 3, i.e. the anode, and the color film structure 2 subsequently, the light emitted from the light emitting layer 9 exits the base substrate 1. Since at least one color of the color filter units in the color film structure 2 comprises at least two layers of laminated color filter films, the refractive index of the color filter films is gradually increased in a direction from the base substrate 1 towards the transparent conductive oxide film layer 3, i.e. the anode, and the refractive index of the layer of the color filter film adjacent to the base substrate 1 is larger than the refractive index of the base substrate 1, and the refractive index of the layer of the color filter film adjacent to the transparent conductive oxide film layer 3, i.e. the anode is less than the refractive index of the transparent conductive oxide film layer, i.e. the anode, thus, the total reflection caused by the large refractive index difference between the transparent conductive oxide film layer 3, i.e. the anode, and the base substrate 1 is reduced, thus the loss of light transmitted in the OLED (the direction indicated by the arrows in FIG. 3a and FIG. 3b is the light propagation direction) is reduced, and hence the display brightness of the OLED can be increased.

[0036] In one example, the OLED further comprises a hole injection layer, a hole transport layer, a light emitting layer, an electron transport layer and an electron injection layer disposed between the anode and the cathode 10, and will not be further described herein. The OLED may emit, for example, full fluorescence, full phosphorescence, or combined fluorescence-phosphorescence, there is not limitation thereon.

[0037] Based on the same inventive concept, the embodiment of the present invention further provides a display device comprising the above liquid crystal display panel provided by the embodiments of the present invention, the display device may be any product or component having display function, such as a mobile phone, a tablet computer, a television, a display, a laptop computer, a digital photo frame, a navigator, and so on, and the display device can be specifically implemented by referring to the above embodiments in relation to the display panel, and will not be further described.

[0038] The embodiments of the present invention provide a liquid crystal display panel comprising a display substrate, and a display device. Since the blue color filter unit in the color film structure of the display substrate comprises four layers of laminated color filter films, and in the blue color filter unit comprising the four layers of laminated color filter films, the refractive index of the color filter films is gradually increased in a direction from the base substrate towards the transparent conductive oxide film layer, the layer of the color filter film adjacent to the base substrate has refractive index larger than that of the base substrate, and the layer of the color filter film adjacent to the transparent conductive oxide film layer has refractive index less than that of the transparent conductive oxide film layer, in this way, when the light is incident onto the transparent conductive oxide film layer and exits the base substrate after passing through the color film structure, the total reflection caused by the large refractive index difference between the transparent conductive oxide film layer and the base substrate can be reduced, and thus the loss of light transmitted in the display panel can be reduced, and hence the display brightness of the display device can be increased.

[0039] What is described above is related to the illustrative embodiments of the disclosure only and not limitative to the scope of the disclosure; the scopes of the disclosure are defined by the accompanying claims.

[0040] The present application claims the priority of Chinese Patent Application No. 201410262118.1 filed on June 12, 2014.

Claims

1. A liquid crystal display panel, comprising: a display substrate (1, 2, 3, 4, 5), an array substrate (6), and a liquid crystal layer (7) sandwiched between the display substrate and the array substrate (6), wherein the display substrate comprises a base substrate (1), a color film structure (2) and a transparent conductive oxide film layer (3) subsequently laminated on the base substrate (1), and the transparent conductive oxide film layer (3) is arranged on a side of the color film structure (2) close to the liquid crystal layer (7); or the display substrate comprises a base substrate (1), and a color film structure (2) arranged on the base substrate (1), the array substrate (6) comprises a transparent conductive oxide film layer (3), and the transparent conductive oxide film layer (3) is arranged on a side of the array substrate (6) close to the liquid crystal layer (7); wherein the color film structure (2) comprises a blue color filter unit (B), a red color filter unit (R) and a green color filter unit (G) arranged in a matrix; wherein the blue color filter unit comprises four layers of laminated color filter films, and the red color filter unit and the green color filter unit are of single-layer structure, wherein one layer of the color filter films of the blue color filter unit adjacent to the base substrate (1) has a refractive index larger than that of the base substrate (1), and one layer of the color filter films of the blue color filter unit adjacent to the transparent conductive oxide film layer (3) has a refractive index less than that of the transparent conductive oxide film layer (3), wherein refractive indices of the color filter films of the blue color filter unit gradually increase in a direction from the base substrate (1) towards the transparent conductive oxide film layer (3); and wherein a thickness of each layer of the color filter films is less than or equal to 0.45 µm.

2. The liquid crystal display panel according to claim 1, wherein the thickness of each layer of the color filter films is less than a minimum wavelength of visible light.

3. The liquid crystal display panel according to claim 1 or 2, the display substrate (1, 2, 3, 4, 5) further comprising a flat layer (4) disposed between the color film structure (2) and the transparent conductive oxide film layer (3).

4. The liquid crystal display panel according to claim 3, the display substrate (1, 2, 3, 4, 5) further comprising a black matrix (5) disposed between adjacent color filter units.

5. A display device, comprising the liquid crystal display panel according to any one of claims 1 to 4.