Embodiments of present invention relate to a display technology field, more particularly, to a light guiding plate, an optical film, a backlight module, an array substrate and a liquid crystal module.
Thin Film Transistor-Liquid Crystal Display (TFT-LCD) has advantages of small volume, low power consumption, no radiation, etc., so it becomes a dominant product in current flat panel display market. As shown in
An image is displayed by using the optical property of the liquid crystal molecules, but such optical property may narrow a viewing angle of the liquid crystal display. Meanwhile, since the liquid crystal molecules have optical anisotropy, the angles between the long axes of the liquid crystal molecules and the array substrate 1 are actually different when displaying different gray-levels. Thus when users view the LCD from different angles, they might see either the long axes or short axes of the liquid crystal molecules, which produce different brightness. That is called as viewing angle dependency of TFT-LCD. Additionally, in theory, when the thin film transistor is turned on, as shown in
Since the viewing angle property of the liquid crystal is not uniform, the gray-level inversion or color offset becomes serious at the viewing angles other than a normal direction of the display panel. Conventionally, the viewing angle is usually improved by using a wide viewing angle mode or using a compensation film to compensate the view angle. However, the above two methods can not solve the viewing angle problem of TFT-LCD. The problem to be solved by embodiments of the present invention is how to obtain a backlight source which collimates the light at a higher degree, which can eliminate viewing angle dependency issue.
To solve the above problem, an embodiment of the present invention provides a light guiding plate. A reflective layer and a light collimating layer are formed on one surface of the light guiding plate. The reflective layer is positioned below the light collimating layer, and the reflective layer is formed with a plurality of holes.
In the light guiding plate described as above, for example, the light collimating layer has a plurality of micro lens structures, the micro lens structures and the holes have a one to one correspondence, and each hole is located at a focus point of the corresponding micro lens structure.
In the light guiding plate described as above, for example, the light collimating layer has a plurality of prism structures, the holes have a one to one correspondence to the corresponding prism structure.
An embodiment of the present invention provides an optical film comprising a reflective layer and a light collimating layer. The reflective layer is positioned below the light collimating layer, and has a plurality of holes.
In the optical film described as above, for example, the light collimating layer has a plurality of micro lens structures, the micro lens structures and the holes have a one to one correspondence, and each hole is located at a focus point of the corresponding micro lens structure.
In the optical film described as above, for example, the light collimating layer has a plurality of prism structures, and the prism structures and the holes have a one to one correspondence.
Accordingly, an embodiment of the present invention provides a backlight module comprising a light guiding plate and an optical film located on the light guiding plate. The light guiding plate is the light guiding plate described as above, or the optical film is the optical film described as above.
An embodiment of the present invention also provides an array substrate. A light collimating layer and a reflective layer are formed on an outer surface of the array substrate, and the reflective layer is positioned below the light collimating layer and has a plurality of holes.
In the array substrate described as above, for example, the light collimating layer has a plurality of micro lens structures, the micro lens structures and the holes have a one to one correspondence, and each hole is located at a focus point of the corresponding micro lens structure.
In the array substrate described as above, for example, the light collimating layer has a plurality of prism structures, the prism structures and the holes have a one to one correspondence.
Accordingly, an embodiment of the present invention provides a liquid crystal module comprising a backlight module and an array substrate. The backlight module is the backlight module described as above, or the array substrate is the array substrate described as above.
Embodiments of the present invention are described in detail in connection with the drawings and the embodiments. The following embodiments are only for the purpose of explaining the present invention but not for a limitation.
It should be understood that spatially relative terms, such as “above” and “below” that are orientation or position relationship of the device shown in
As shown in
As shown in
There are various optical structures which serve to emit parallel light from the point light sources, for example, the optical structure could be a convex lens structure. For example, the light collimating layer 11 may be designed to have a plurality of micro lens structures 13. The micro lens structure 13 may be a planoconvex lens as shown in
for the double convex lens, where n2 is a refractive index of base material of the micro lens structures 13, n1 is a refractive index of outside atmosphere of the micro lens structures 13, r is a curvature radius of the planoconvex lens, and r1, r2 are curvature radii of the double convex lens. Assuming each lens has a width of 100 μm, the curvature radius r is 1 mm, then the focus length f for is 1 mm for a planoconvex lens. That is, the vertical distance between the corresponding hole 12 and the center of the corresponding micro lens structure 13 is 1 mm. The focus length f can be 2 mm for a double convex lens assuming the same parameters. That is, the vertical distance between the corresponding hole 12 and the center of the corresponding micro lens structure is 2 mm.
Meanwhile, since the reflective layer 10 and the light collimating layer 11 are formed on the light guiding plate 11 as an integral structure, the whole structure is stable.
In order to make the light incident into an array substrate at the same angle, an optical film is provided between a light guiding plate and the array substrate in the present embodiment. The optical film comprises a reflective layer and a light collimating layer, and the reflective layer is positioned below the light collimating layer, and the reflective layer is formed with a plurality of holes. Also, the light collimating layer may be designed to have a plurality of micro lens structures. The micro lens structures and the holes in the reflective layer have a one to one correspondence, and each hole are located at a focus point of the corresponding micro lens structure, so that the lights are emitted in parallel from the light collimating layer, and then is incident to the array substrate at the same angle.
A liquid crystal module is provided in the present embodiment. The liquid crystal module comprises a light guiding plate and an optical film on the light guiding plate. The light guiding plate can be the light guiding plate according to the first embodiment, or the optical film can be the optical film according to the second embodiment, so that the lights are incident perpendicular into the array substrate 1 at the same angle, and thus the light leakage caused by different viewing angles can be prevented. Since the lights viewed from other angles by the users is obtained by diffusing the lights having the same incident angle at a surface of the display panel, the same brightness may be maintained when viewed from different angles by the users, and the problem of the viewing angle dependency in the TFT-LCD can be overcome.
In order to make the lights incident into the array substrate at the same angle, a light collimating layer and a reflective layer also may be formed on an outer surface of the array substrate.
Referring to
There are various optical structures for emitting lights in parallel from the point light sources, for example, a convex lens structure. The light collimating layer 11 may be designed to have a plurality of micro lens structures 13, for example. The micro lens structure 13 may be a planoconvex lens as shown in
Meanwhile, since the reflective layer and the light collimating layer are formed on the array substrate as an integral structure, the integral structure is stable.
A liquid crystal module is provided in the present embodiment. The liquid crystal comprises a backlight module and an array substrate. The backlight module is the backlight module according to the third embodiment, or the array substrate is the array substrate according to the fourth embodiment, so that the lights are incident to the array substrate 1 at the same angle without any lists at other angles, thus the light leakage caused by different viewing angles can be prevented. Since the lights viewed from other angles by the users are obtained by diffusing the lights having the same incident angle at a surface of the display panel, the same brightness may be maintained when viewed from different angles by the users, and the problem of the viewing angle dependency in the TFT-LCD is overcome.
The embodiments of the present invention provide the light guiding plate, the optical film, the backlight module, the array substrate and the liquid crystal module, which may be used to obtain the backlight source with a higher light collimation. A surface light source having the parallel lights emitted is provided, so that the parallel lights are incident into the array substrate at the same angle without any lights at other angles, thus the light leakage caused by different viewing angles can be prevented. Since the lights viewed from other angles by the users are obtained by diffusing the light having the same incident angle at a surface of the display panel, it overcomes the problem of the viewing angle dependency in the TFT-LCD.
It is noted that the embodiments of the present invention only describe the convex lens structure as an example in order to explain how to obtain parallel lights emitted from a point light source by the light collimating layer, but it is not a limitation. The light collimating layer may have other structures, e.g., prism structures having a one to one correspondence with a plurality of holes, as long as they can collimate the lights from the point light source and then emit the parallel lights.
The above embodiments provide the light guiding plate, the optical film, the backlight module, the array substrate and the liquid crystal module, in which the reflective layer and the light collimating layer are formed between the light guiding plate and the array substrate, the reflective layer is positioned below the light collimating layer, and the reflective layer is formed with a plurality of holes, so as to form a point light source in each hole. The light from each point light source is collimated by the light collimating layer so as to form the parallel lights, so that the lights are incident to the array substrate at the same angle without any lights at other angles. Thus, a backlight source with a higher light collimation for the TFT-LCD is provided, and the light leakage caused by different viewing angles can be prevented. Since the lights viewed from other angles by the users are obtained by diffusing the lights having the same incident angle at a surface of the display panel, the same brightness may be maintained when viewed from different angles by the users, and the problem of the viewing angle dependency in the TFT-LCD is overcome.
It should be noted that: the above description only describes the embodiments of the present invention, those skilled in the art should understand that change and alternation can be made in the solutions of the invention without depart from the spirit and scope of the invention, and the change and alternation also fall into the scope of the present invention.
Number | Date | Country | Kind |
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201310077667.7 | Mar 2013 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2013/078215 | 6/27/2013 | WO | 00 |