This application claims the benefit of Taiwan application Serial No. 102130466, filed Aug. 26, 2013. The subject matter of which is incorporated herein by reference.
1. Field of the Invention
The invention relates in general to a display, and more particularly to a pixel structure and a display using the same.
2. Description of the Related Art
Along with the continual advance in semiconductor technology, consumers demand displays with higher and higher display quality and expect that the displays can display image with high brightness, resolution and contrast, and more importantly, the displays can have the advantages of lightweight and low power consumption.
In an ordinary liquid crystal display, a pixel structure is composed of red sub-pixels, green sub-pixels and blue sub-pixels, and the colors of an image are formed by the RGB primary colors. However, conventional display uses light emitting diode array (LED array) as a backlight source of a backlight module, and cannot adjust the brightness of respective pixel structure or the proportion of light outputting for each sub-pixel. Therefore, the color saturation of the image is poor and the color rendering index (CRI) is low.
The invention is directed to a pixel structure and a display using the same. The lights of different colors are mixed in respective pixel structures first and then the mixed lights are outputted via a light emitting surface so as to increase the color rendering index.
According to one embodiment of the present invention, a pixel structure is provided. The pixel structure comprises an N-side light emitting surface, a plurality of reflectors and a plurality of light emitting elements. N is a nature number equal to or greater than 3. The light emitting surface has a first normal line. The reflectors surround peripherals of the light emitting surface. Each reflector, which correspondingly connects with a side of the light emitting surface, is connected to its adjoining reflectors and comprises a first reflecting portion and a second reflecting portion connected to the first reflecting portion. The first reflecting portion and the second reflecting portion have a second normal line and a third normal line, respectively. The second normal line and the first normal line intercross to form an acute angle α. The third normal line and the first normal line intercross to form an obtuse angle β. The light emitting surface and the reflectors define a closed light reflecting space therein. The light emitting elements are disposed on the first reflecting portions in a direction facing towards the closed light reflecting space, respectively. Lights emitted by the light emitting elements are reflected by the second reflecting portions of the reflectors so that the lights are directed towards the light emitting surface.
According to another embodiment of the present invention, a display is provided. The display comprises a plurality of pixel structures adjoining to each other to form a pixel array. Each pixel structure comprises an N-side light emitting surface, a plurality of reflectors and a plurality of light emitting elements. N is a nature number equal to or greater than 3. The light emitting surface has a first normal line. The reflectors surround peripherals of the light emitting surface. Each reflector, which correspondingly connects with a side of the light emitting surface, is coupled to its adjoining reflectors and comprises a first reflecting portion and a second reflecting portion connected to the first reflecting portion. The first reflecting portion and the second reflecting portion have a second normal line and a third normal line, respectively. The second normal line and the first normal line intercross to form an acute angle α. The third normal line and the first normal line intercross to form an obtuse angle β. The light emitting surface and the reflectors define a closed light reflecting space therein. The light emitting elements are respectively disposed on the first reflecting portion in a direction facing towards the closed light reflecting space. Lights emitted by the light emitting elements are reflected by the second reflecting portions of the reflectors so that the lights are directed towards the light emitting surface.
The above and other aspects of the invention will become better understood with regard to the following detailed description of the preferred but non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
According to a pixel structure and a display using the same disclosed in the embodiment of the invention, a single pixel structure is composed of an N-side light emitting surface, a plurality of light emitting elements and a plurality of reflectors. The display comprises a plurality of pixel structures adjoining to each other to form a pixel array for displaying an image. The light emitting elements are composed of red, green, and blue (RGB) light emitting diodes (LEDs) or composed of red, green, blue, and yellow (RGBY) LEDs. The quantity and arrangement of the light emitting elements of different colors can be adjusted so that the lights of different colors are mixed in respective pixel structure and then are outputted from the light emitting surface to increase color rendering index.
A number of embodiments are disclosed below for elaborating the invention. However. The embodiments of the invention are for detailed descriptions only, not for limiting the scope of protection of the invention.
Please refer to FIGS. 1 and 2A˜2C.
The light emitting surface 110 has N sides, wherein N is a nature number (integer) equal to or greater than 3. When the light emitting surface is a triangle, as indicated in
Given that the length of the side is the same, the hexagonal light emitting surface 110C has larger light emitting area than the triangular light emitting surface 110A or the quadrilateral light emitting surface 110B, and the light emitting area of single pixel structure can thus be increased. Besides, in comparison to the design of three light emitting elements 120 respectively disposed on the first reflecting portions 112A, the design of six light emitting elements 120 respectively disposed on the first reflecting portions 112C can at least double the light intensity of single pixel structure so as to increase the light output of single pixel structure.
As indicated in
Referring to
In addition, the light emitting surface 110 may further comprise a diffuser 130, such as a prism, for refracting or diffusing the lights B to produce a planar light source with uniform brightness. The light emitting elements 120 can be selected from LEDs or organic LEDs of single or multiple colors. The lights B of different colors can be uniformly mixed in each closed light reflecting space C and then the mixed lights are outputted via the light emitting surface 110.
Referring to
As indicated in
As indicated in
As indicated in
LEDs 120A and the two green LEDs 120B respectively. The red LEDs 120A, the green LEDs 120B and the blue LEDs 120C are disposed on peripherals of the pixel structure 100B. The ratio among quantities of the RGB LEDs is 1:1:1.
As indicated in
In above embodiments, each pixel structure of the displays 150A˜150D, according to the voltage provided by the transistor (not illustrated), controls each light emitting element to emit a color light corresponding to actual image for the displays 150A˜150D to display the image. For instance, when a pixel structure needs to display a blue image, the transistor drives a corresponding light emitting element to emit a blue light; meanwhile, other light emitting elements do not emit the light. When another pixel structure needs to display a red image, the transistor drives a corresponding light emitting element to emit a red light; meanwhile, other light emitting elements do not emit the light. The display using the pixel structures disclosed in above embodiment has the advantages of low power consumption, high color rendering index and high brightness so as to meet the requirements of the market.
While the invention has been described by way of example and in terms of the preferred embodiment(s), it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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102130466 | Aug 2013 | TW | national |