This Non-provisional application claims priority under 35 U.S.C. ยง119(a) on Patent Application No(s). 095141670, filed in Taiwan, Republic of China on Nov. 10, 2006, the entire contents of which are hereby incorporated by reference.
1. Field of Invention
The present invention relates to an optical system and a liquid crystal display apparatus thereof. In particular, the present invention relates to an optical system and a liquid crystal display apparatus thereof with the better light uniformity.
2. Related Art
In the modern society, a light source is an indispensable element, and may be applied to the indoor illumination, the vehicle illumination and the display apparatus to provide light rays. The display apparatus, such as a projector or a liquid crystal television, needs the light source for providing uniform light rays so that the apparatus may have the better color representation.
In general, a white light source applied to the display apparatus may include a hot cathode fluorescent lamp (HCFL), a cold cathode fluorescent lamp (CCFL) or a light emitting diode (LED). As for LED, there are various materials correspondingly used to form the LEDs capable of generating white light rays. For example, a LED die for outputting blue light rays is used in conjunction with fluorescent powders for emitting yellow light rays, and the blue light rays excite the fluorescent powders to make them output the yellow light rays, and the blue light rays and the yellow light rays are mixed to form the white light rays. Furthermore, a LED die for outputting purple light rays or ultra-violet rays is used in conjunction with special monochromatic fluorescent powders so that the white light rays may be generated. In addition, an indium gallium nitride (GaInN) die and the fluorescent powders may be disposed in a lens so that the white light rays may be generated.
As shown in
In addition to the white light source, the same problem may of course rise due to the difference between the relative intensities in the technology of mixing the light rays. In view of this, it is a subject of the present invention to provide an optical system and a liquid crystal display apparatus, in which the highly pure white light composed of the red, green and blue bandwidths may be generated, and the color garishness may thus be enhanced.
In view of the foregoing, the present invention is to provide an optical system capable of generating highly pure red, green and blue light rays, and a liquid crystal display apparatus thereof.
To achieve the above, the present invention discloses an optical system including a light source and a dielectric optical film. The light source generates at least one first light ray having a first spectral distribution, which has a plurality of first peaks with different levels. The dielectric optical film is disposed on an optical path of the first light ray for converting the first light ray into a second light ray having a second spectral distribution, which has a plurality of second peaks with similar levels.
To achieve the above, the present invention discloses a liquid crystal display apparatus including a backlight module, a liquid crystal display panel and a dielectric optical film. The backlight module has a housing and at least one light source disposed on the housing. The light source generates at least one first light ray having a first spectral distribution, which has a plurality of first peaks with different levels. The liquid crystal display panel is disposed opposite to the backlight module and has a light outputting surface. The dielectric optical film is disposed between the light source and the light outputting surface for converting the first light ray into a second light ray and emitting the second light ray to the light outputting surface. The second light ray has a second spectral distribution, which has a plurality of second peaks with similar levels.
The above mentioned light source can be a light emitting diode (LED) emitting white lights, a cold cathode fluorescent lamp (CCFL), a hot cathode fluorescent lamp (HCFL) or any other electronic device capable of generating light rays. The dielectric optical film has a plurality of optical layers for converting the first light ray originally having different levels into the second light ray with similar levels.
As mentioned above, the dielectric optical film of the present invention can convert the first light ray originally having different levels into the second light ray having similar levels. Consequently, the second light ray has the highly pure color representation. When the second light ray is white, it can fall on the coordinates of the purer white light in the CIE-1931 model so that the application apparatus thereof has the better color representation.
The present invention will become more fully understood from the detailed description given herein below illustration only, and thus is not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
The light source 11 generates at least one first light ray L01 having a first spectral distribution, which has a plurality of first peaks with different levels, wherein the level is a relative intensity of light. In this embodiment, the light source 11 is a white light source. That is, the first light ray L01 is white. Of course, the light source may also output other colors of light and is not particularly restricted. As shown in
As shown in
In this embodiment, the dielectric optical film 12 is composed of a plurality of optical layers, which includes at least one low-refractivity film material and at least one high-refractivity film material. The low-refractivity film material may be silicon dioxide (SiO2), magnesium fluoride (MgF2), and so on. Also, the high-refractivity film material may be aluminum nitride (AlN), tantalum oxide (Ta2O5), titanium oxide (TiO2), zirconium oxide (ZrO2), niobium oxide (Nb2O5), and so on. The optical layers may be formed on a transparent substrate, the lens of the LED or a secondary optical device (not shown) of the LED by way of evaporation. As shown in
As shown in
The backlight module 21 may be a direct type backlight module or a side-edge type backlight module. Herein, the backlight module 21 is a side-edge type backlight module in this illustrated example. The backlight module 21 has a housing 211 and at least one light source 212. The light source 212 is disposed on the housing 211 and generates at least one first light ray, which has a first spectral distribution. The first spectral distribution has a plurality of first peaks with different levels.
The liquid crystal display panel 22 is disposed opposite to the backlight module 21 and has a light outputting surface LOUT. The dielectric optical film 23 is disposed between the light source 212 of the backlight module 21 and the light outputting surface LOUT of the liquid crystal display panel 22. The dielectric optical film 23 converts the first light ray into a second light ray, which is sequentially transmitted to the light outputting surface LOUT. The second light ray has a second spectral distribution, which has a plurality of second peaks with similar levels.
In this embodiment, the light source 212 of the backlight module 21 and the dielectric optical film 23 have the variations, structures and functions the same as those of the light source 11 and the dielectric optical film 12 of
The components of the liquid crystal display apparatus 2 will be described with reference to
The liquid crystal display panel 22 further has a lower polarizer 221, a pixel array substrate 222, a color filter 223, a liquid crystal layer 224 and an upper polarizer 225. The pixel array substrate 222 is disposed on the lower polarizer 221. The color filter 223 is disposed opposite to the pixel array substrate 222. The liquid crystal layer 224 is disposed between the pixel array substrate 222 and the color filter 223. The upper polarizer 225 is disposed on the color filter. In this embodiment, the light outputting surface LoUT is located on the upper polarizer 225.
As mentioned hereinabove, the dielectric optical film 23 may be disposed or formed at any position on or between the diffuser plate 213, the light guide plate 214, the brightness enhancement film 215, the lower polarizer 221, the pixel array substrate 222, the color filter 223 or the upper polarizer 225. In this embodiment, the dielectric optical film 23 is disposed between the brightness enhancement film 215 and the lower polarizer 221.
In summary, the dielectric optical film of the present invention converts the first light ray with the unbalanced frequency bandwidth distribution into the second light ray with the balanced frequency bandwidth distribution, and the second light ray can be outputted. That is, the first light ray having different relative intensities of light is converted into the second light ray having similar relative intensities of light. As the results, the second light ray has the highly pure color representation. When the second light ray is white, it can fall on the coordinates of the purer white light in the CIE-1931 model so that the application apparatus thereof has the better color representation.
Although the present invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
095141670 | Nov 2006 | TW | national |