The present invention relates to liquid crystal displays, and particularly to a liquid crystal display having an optical concentrating layer.
Conventionally, there have been three types of LCD devices commercially available: a reflection type LCD device utilizing ambient light, a transmission type LCD device utilizing backlight, and a semi-transmission type LCD device equipped with a half mirror and a backlight.
Referring to
A first polarizer 130 is disposed on an outer surface of the first substrate 100. A color filter layer 140, a planarization layer 170, and a common electrode 180 are disposed on an inner surface of the first substrate 100, in that order from the first substrate 100 to the liquid crystal layer 120.
The color filter layer 140 includes a plurality of red filter units 141, a plurality of green filter units 142, and a plurality of blue filter units 143. The red filter units 141, the green filter units 142, and the blue filter units 143 are arranged in a matrix, and are separated from one another by a black matrix 150. The planarization layer 170 is used to protect the color filter layer 140 and the black matrix 150.
A second polarizer 112 is disposed on an outer surface of the second substrate 110. A transflective film 111 is disposed on the second polarizer 112. A pixel electrode layer 114 is disposed on an inner surface of the second substrate 110. The transflective film 111 is used to reflect ambient light beams, and transmit light beams from the backlight module 11.
In an environment of strong ambient light beams, the liquid crystal display 1 can display images solely by utilizing the ambient light beams. When the incident ambient light beams transmit perpendicularly into the liquid crystal panel 10, the reflective ambient light beams return along the same paths as the incident light beams. For example, if the incident ambient light beams transmit through a red filter unit 141, the reflective ambient light beams emit through the same red filter unit 141. However, when the incident ambient light beams transmit into the liquid crystal panel 10 at oblique angles, the reflective ambient light beams return back along different paths according to the basic reflection principle. That is, if the incident ambient light beams transmit through a red filter unit 141, the reflective ambient light beams may transmit through a red filter unit 141, a green filter unit 142 or a blue filter unit 143.
For example, when incident ambient light beams transmit through a red filter unit 141 and the reflective ambient light beams transmit through a red filter unit 141, the reflective ambient light beams can pass through the red filter unit 141. However, if the reflective ambient light beams transmit through a green filter unit 142 or a blue filter unit 143, the red reflective ambient light beams are absorbed by the green filter unit 142 or the blue filter unit 143. Thus overall, much of the reflective ambient light beams of all three primary colors are lost, and the light utilization efficiency of the ambient light beams is low.
What is needed, therefore, is a liquid crystal display that can overcome the above-described deficiencies.
In one preferred embodiment, a liquid crystal display includes a first substrate, a second substrate, a liquid crystal layer interposed between the two substrates, a color filter layer disposed between the two substrates, and an optical concentrating layer provided between the two substrates.
Other novel features and advantages of the present liquid crystal display will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings. In the drawings, all the views are schematic.
Reference now is made to the drawing figures to describe various embodiments of the present invention in detail.
Referring to
A first polarizer 230 is disposed on an outer surface of the first substrate 200. A color filter layer 240, an optical concentrating layer 260, a planarization layer 270, and a common electrode 280 are disposed on an inner surface of the first substrate 200, in that order from the first substrate 200 to the liquid crystal layer 220. The planarization layer 270 is used to protect the color filter layer 240. The planarization layer 270 is made from phototonus material.
The color filter layer 240 includes a plurality of red filter units 241, a plurality of green filter units 242, and a plurality of blue filter units 243. The red filter units 241, the green filter units 242, and the blue filter units 243 are arranged in a matrix, and are separated from one another by a black matrix 250.
Referring also to
A second polarizer 212 is disposed on an outer surface of the second substrate 210. A transflective film 211 is disposed on the second polarizer 212. A pixel electrode layer 214 is disposed on an inner surface of the second substrate 210. The transflective film 211 can reflect ambient light beams, and transmit light beams emitted from the backlight module 21.
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In further and/or alternative embodiments, a transflective film can be disposed on an inner surface or an outer surface of the first substrate of the transflective liquid crystal display. A color filter can instead be disposed on the second substrate. In addition, an optical concentrating layer can be employed in other types of transflective liquid crystal displays such as a transflective liquid crystal display whose pixel electrode layer includes reflective areas. Furthermore, an optical concentrating layer can be employed in a reflection type liquid crystal display. For example, the transflective film of any of the above-described transflective liquid crystal displays 2, 3, 4 can be replaced by a reflective film. Moreover, a first polarizer and/or a second polarizer can be disposed on an inner surface of the first substrate and/or the second substrate.
It is to be understood, however, that even though numerous characteristics and advantages of the present embodiments have been set out in the foregoing description, together with details of the structures and functions of the embodiments, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
| Number | Date | Country | Kind |
|---|---|---|---|
| 95139812 | Oct 2006 | TW | national |