1. Field of the Invention
The invention relates to a backlight unit, and more particularly, to an LED light-mixing package of a backlight unit that produces white light.
2. Description of the Prior Art
LEDs are widely applied as pilot lamps and light sources for various household appliances and instruments. This is due in part to the LEDs advantages, including: a long lifetime, small size, high resistance to earthquakes, low heat emission, and a low consumption of electric power. Additionally, development in recent years has resulted in LEDs that can produce rich color and high brightness. As a result, the LED is further applied in many kinds of movable electronic products. For example, the LED is utilized as a back light source for small-sized displays thereby becoming a source for a stream of illumination light having low power consumption and low contamination (i.e., radiation).
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Since a flat display of a general electronic product requires white light from its back light source, an LED serving as a back light must emit white light. However, even with white light LEDs many advantages, including: small sizes, high response speeds, low heat emissions, low consumptions of electric power, long lifetimes, high resistance to earthquakes, and low contamination, and are able to be flat packaged, the technique of developing white light LEDs, when compared to the common tungsten filament lamps or fluorescent lamps is not mature. White light LED production techniques suffer from problems of high fabrication cost and low emission efficiency of the white light LEDs. Therefore, white light LEDs are not commonly used in products.
Conventionally, the process of fabricating white light LED includes the following methods:
(1) Using a blue LED chip together with yellow-green fluorescent powder to produce white light. The cost and efficiency of this method are low, and consequently this is the most common method adopted by manufacturers. However, this method has a significant disadvantage: its white light lacks red lights and has bad color saturation performance.
(2) Utilizing red, blue, and green LED chips together to produce white light by controlling currents of the three LED chips respectively. This method has a high efficiency and high cost.
(3) Using a UV chip together with red, green, and blue fluorescent powder packaged together. This method has low efficiency and UV light easily damages the epoxy resin in the package.
(4) Using a blue LED chip with red and green florescent powder. This method also has a disadvantage that the white light has a low efficiency.
Presently, manufacturers are conducting further research on a method to package a red LED chip, a blue LED chip, and a green LED chip in a single package with epoxy resin, so that the single package can produce red light, blue light, and green light at the same time. However, the light-mixing performance of a conventional epoxy resin is poor. Hence, to improve the light-mixing performance to obtain white light, a light-mixing mechanism is acquired and positioned between the light guide plate and the single package with three kinds of LED chips, or the size of the light guide plate is enlarged to increase a distance between the display area of the display panel and the package.
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Hence, the fabrication of an LED package that can efficiently produce white light with low fabrication cost is still an important issue for manufacturers.
It is therefore an objective of the present invention to provide a light emitting diode mixing package having different color LED chips and compensation films corresponding to each LED chip, such that the various colors produced by the light emitting diodes can be mixed in the backlight unit to produce white lights, thereby eliminating the need of increasing the size of the light guide plate 66 for generating white light beams as is required by the prior art.
According to the present invention, a backlight unit includes a light guide plate having a light-incidence plane and a light-exit plane and at least a light emitting diode (LED) mixing package disposed in proximity to the light-incidence plane for providing lights, and a spectrum sensor disposed on the light-exit plane of the backlight unit. The light emitting diode mixing package includes at least a first color LED chip and at least a first color compensation film corresponding to the first color LED chip, and at least a second color LED chip and at least a second color compensation film corresponding to the second color LED chip.
Preferably, the present invention matches the red LED chip, blue LED chip, and green LED chip with corresponding cyan compensation film, purple compensation film, and yellow compensation film to form a light emitting diode mixing package. Hence, by utilizing a much shorter light mixing distance, the present invention is able to eliminate the need of increasing the size of the light guide plate for generating white light beams as is required by the conventional technique. Additionally, the backlight unit of the present invention includes a sensor disposed on the light-exit plane of the light guide plate to measure the spectrum produced by the light emitting diode mixing package. Preferably, the present invention is able to utilize the parameters obtained by the sensor to adjust the voltage or electrical current of the backlight unit, thereby maintaining the color uniformity in the display region.
By matching light emitting diodes with corresponding compensation films, the backlight unit of the present invention is able to achieve a much broader color saturation range, and thereby a higher NTSC value than the conventional three color LED backlight units. Moreover, by utilizing the parameters obtained by the sensor to adjust the voltage or electrical current of the backlight unit, the color saturation and distribution can be further adjusted. In other words, the original color saturation (and hence the NTSC value) will rotate, thereby producing a best color output.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
As shown in
According to the preferred embodiment of the present invention, the backlight unit 64 is an edge-type backlight unit, in which the light source of the backlight unit 64 is the light emitting diode mixing package 50. Alternatively, the backlight unit 64 can also be a direct-type backlight unit, wherein the light-incidence plane is located on the bottom of the light guide plate. Preferably, the light guide plate 66 is a wedge-shaped plate or a flat plate.
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Preferably, the present invention first matches at least a red LED chip, a blue LED chip, and a green LED chip to compensation films corresponding to each of the LED chips, utilizes the LED chips and compensation films to generate white lights, and projects the white lights into the light-incidence plane 72 of the light guide plate 66, thereby decreasing the light mixing distance of the light emitting diodes and simultaneously eliminating the need of increasing the size of the light guide plate 66 for generating white light beams as is necessary in the prior art.
According to the preferred embodiment of the present invention, a sensor 90, such as a spectrum sensor, can be further installed on the surface of the light guide plate 66 to adjust the input current of the color and brightness of the backlight unit 64 after mixing the light via the light emitting diode mixing package 50. Please refer to
Preferably, the wavelengths of a conventional three color LED chip are 590-700 nm for red light, 500-560 nm for green light, and 400-480 nm for blue light. The present invention provides said conventional wavelengths and additionally the backlight unit of the present invention provides the wavelength range of cyan, purple, and yellow from the corresponding compensation films. By matching the red LED chip 74, green LED chip 76, and blue LED chip 78 with the corresponding cyan compensation film 84, purple compensation film 86, and yellow compensation film 88, the backlight unit 64 of the present invention is able to produce significantly improved color uniformity and color saturation as compared to the conventional three color LED backlight unit. Additionally, the color mixing scheme of the present invention can be applied in multi-color LED modules having two colors, four colors, or more.
Preferably, the present invention matches the red LED chip, blue LED chip, and green LED chip with corresponding cyan compensation film, purple compensation film, and yellow compensation film to form a light emitting diode mixing package. Hence, by utilizing a much shorter light mixing distance, the present invention is able to eliminate the need of increasing the size of the light guide plate as is necessary in the prior art for generating white light beams. Additionally, the number, color, and position of the LED chips and compensation films corresponding to the LED chips can be adjusted according to various product design requirements, thereby increasing the light mixing efficiency. Moreover, the backlight unit of the present invention also includes a sensor, such that the sensor is disposed on the light-exit plane of the light guide plate to measure the spectrum produced by the light emitting diode mixing package. Preferably, the present invention is able to utilize the parameters obtained by the sensor to adjust the voltage or electrical current of the backlight unit, thereby maintaining the color uniformity in the display region.
By matching light emitting diodes with corresponding compensation films, the backlight unit of the present invention is able to cover a much broader color saturation range set by the national television system committee (NTSC) than is possible using the conventional three color LED backlight unit, thereby obtaining a significantly higher NTSC value. As shown in
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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095100365 | Jan 2006 | TW | national |