1. Field of the Invention
The present invention relates generally to a liquid crystal display, and more particularly to a backlight unit for the liquid crystal display, which has a well performance in diffusion and light guide.
2. Description of the Related Art
The lamp 64 provides light to the light guide plate 62 and the reflective film 66 reflects the light to emit the light to the top side of the light guide plate 62 and pass through the diffusive film 68. As shown in
Another conventional backlight unit provides a light guide plate, in which reflecting grains are distributed uniformly to replace the diffusive film. The grains are very expensive that increases the cost of the light guide plate. In the process of fabrication of Su's light guide plate, the grains are reacted with the light guide plate in the high temperature environment that makes the light guide plate yellowing. The yellowing of the light guide plate changes the chroma.
The primary objective of the present invention is to provide a backlight unit, which has a well performance in diffusion.
The secondary objective of the present invention is to provide a backlight unit, which the light guide plate is thinner than the conventional device.
According to the objectives of the present invention, a backlight unit comprises a light guide plate having a diffusive layer therein. The light guide plate has a first side and a second side opposite to the first side. The diffusive layer has a base and a plurality of grains in the base and is arranged between the first side and the second side of the light guide plate. A lamp is arranged beside the light plate. A reflective film is attached on the second side of the light guide plate. A brightness enhance member is provided at the first side of the light guide plate.
As shown in
The light guide plate 10 has a first side 12, a second side 14 and a third side 16, wherein the first side 12 is opposite to the second side 14 and the third side 16 is located at between the first side 12 and the second side 14. A printed layer 18 is provided on the second side 14 of the light guide plate 10. The lamp 20 is arranged beside the third side 16 of the light guide plate 10. The reflective film 22 is attached on the printed layer 18. The brightness enhancement member 24 has two prism plates 26 and 28 arranged above the first side 12 of the light guide plate 10.
The light guide plate 10 can be made of Polycarbonate (PC), Polymethyl methacrylate (PMMA), Cyclic Olefins Polymer (COP) or Cyclic Olefins Copolymer (COC). A diffusive layer 30 is embedded in the light guide plate 10 between the first side 12 and the second side 14. A shown in
Diameters of the grains 34 in the diffusive layer 30 are preferred less than 50 μm and a thickness of the base 32 is preferred double greater than the diameters of the grains 34. In other words, the grains 34 are preferred totally embedded in the base 32, such that only the base 34 will has yellowing because of the grains 34. The base 32 of the diffusive layer 30 can be made of Polycarbonate (PC), Polymethyl methacrylate (PMMA), Cyclic Olefins Polymer (COP) or Cyclic Olefins Copolymer (COC) just like the light guide plate 10. For the mechanical property, the light guide plate 10 and the base 32 of the diffusive layer 30 are preferred made of same material to have same thermal expansion in high-temperature environment. A thermal stability agent is added into the diffusive layer 30 to decrease the yellowing of the base 32.
The diffusive layer 30 serves both functions of changing the paths of light and diffusion. As shown in
For diffusion, as shown in
To compare with the Sue's invention, the present invention provides fewer grains in the light guide plate, which decreases the cost of the light guide plate of the present invention. The present invention also has less yellowing in the light guide plate, which the yellowing only occurred in the dissuasive layer.
In practice, the light guide plate might be embedded with two or more diffusive layers according to the optical requirement.