Light guide plate comprising a cavity having a flat bottom surface and a plurality of quantum dots confined within the cavity by sidewalls and a cover film
10739504 ยท 2020-08-11
Assignee
Inventors
Cpc classification
G02B6/002
PHYSICS
G02B6/0035
PHYSICS
G02F1/133617
PHYSICS
International classification
G02F1/017
PHYSICS
G02F1/1335
PHYSICS
Abstract
A light guide plate includes a bottom surface and a light emitting surface disposed opposite to the bottom surface. The light emitting surface sags down and forms a hollow, which is filled with a plurality of light-emitting quantum dots (QDs). The light emitting surface capped with a cover film, so to seal the plurality of light-emitting QDs in the hollow. Also provided are a backlight module including the light guide plate and a liquid crystal display using the backlight module. The hollow that is formed in the top surface of a flat body of the light guide plate and filled with light-emitting QDs helps enhance the color gamut of the display backlight. Further, side walls that surround the hollow can be narrowed so as to easily realize a narrow edge design for the backlight module.
Claims
1. A light guide plate, comprising a bottom surface and a light emitting surface that is opposite to the bottom surface, wherein the light emitting surface sags down and forms a hollow, which is filled with a plurality of light-emitting quantum dots (QDs), the light emitting surface being capped with a cover film, so to seal the plurality of light-emitting QDs in the hollow, and wherein the light guide plate comprises a single block of material and the hollow formed in the light emitting surface is in the form of a cavity recessed from a surface of the single block of material and is defined and circumferentially enclosed by sidewalls integrally extending to the surface of the single block of material to support the cover film thereon such that the cover film is in direct contact with the sidewalls of the single block of material, the plurality of light-emitting QDs being confined within the cavity by the sidewalls and the cover film, wherein the cavity that is recessed from the surface of the single block of material has a flat bottom surface that is opposite to the bottom surface of the light guide plate, the bottom surface of the cavity being delimited by the sidewalls, such that the plurality of light-emitting QDs that are confined within the cavity by the sidewalls are deposited on the bottom surface of the cavity and are sealed in the cavity by cover film.
2. The light guide plate according to claim 1, wherein the light guide plate comprises a flat body, and a wedge body extending upward from one end of the flat body; the light emitting surface of the light guide plate comprises a top surface of the flat body; the bottom surface of the light guide plate comprises a bottom surface of the flat body and a bottom surface of the wedge body.
3. The light guide plate according to claim 1, wherein the hollow is filled with transparent adhesive, in which the plurality of QDs are evenly distributed.
4. The light guide plate according to claim 3, wherein the transparent adhesive has a refractive index that is identical to a refractive index of the light guide plate.
5. The light guide plate according to claim 4, wherein the hollow is filled with a plurality of scattering particles that, along with the plurality of light-emitting QDs, are evenly distributed in the transparent adhesive.
6. The light guide plate according to claim 5, wherein the plurality of scattering particles are transparent and have a refractive index that is different from the refractive index of the transparent adhesive.
7. The light guide plate according to claim 3, wherein the transparent adhesive is UV-curing adhesive.
8. The light guide plate according to claim 1, wherein the cover film is transparent.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constituting a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) Although the present invention will be explained with reference to the embodiments shown in the drawings described above, it should be understood to the ordinary skilled persons in the art that the invention is not limited to the embodiments, but rather various changes or modifications thereof are possible without departing from the spirit of the invention. Accordingly, the scope of the invention shall be determined only by the appended claims and their equivalents. The appended figures exaggerate the thickness of layers and areas to provide clearer views. The same reference numerals represent the same components throughout the specification and appended figures.
(7)
(8) Referring to
(9) A detailed description about the backlight module 200 of the present invention will be provided in the following text.
(10) Referring to
(11)
(12) The LGP 220 is disposed on the bottom plate 211 of the bezel 210. In the present embodiment, as shown in
(13) In the present embodiment, the bottom surface of the LGP 220 comprises the bottom surfaces of the wedge body 222 and flat body 221. The light emitting surface of the LGP 220 comprises the top surface of the flat body 221. The light emitting surface and the bottom surface of the LGP 220 are disposed opposite each other. The top surface of the flat body 221 sags down, forming a hollow 2211.
(14) A plurality of light-emitting QDs 231 is filled in the hollow 2211. A cover film 240 is capped on the top surface of the flat body 221, so to seal the light-emitting QDs 231 in the hollow 2211. In the present embodiment, the cover film 240 is a transparent film. The light-emitting QDs 231 filled in the hollow 2211 on the top surface of the flat body 221 can enhance the color gamut of the display backlight. Comparing with the ineffective zone 50 of QD film around the QD film 30 of the existing technology, the four side walls surrounding the hollow 2211 can be narrowed so it is easier to realize the narrow edge design of the backlight module 100.
(15) A plurality of optical films 250 is disposed on the cover film 240 one after another. In the present embodiment, these optical films 250 can comprise brightness enhancement films (BEF) and diffuser films, which can improve the quality of the backlight going out from the cover film 240.
(16) The hollow 2211 is filled with transparent adhesive 290. The plurality of light-emitting QDs 231 is distributed evenly in the transparent adhesive 290. Preferably, the transparent adhesive 290 is UV-curing adhesive, but the present invention is not limit to this option. In addition, in the present embodiment, the refractive index of the transparent adhesive 290 is the same as that of the LGP 220.
(17) In order to ensure even diffusion and emission of the light from the backlight source, a plurality of scattering particles 232 is further filled in the hollow 2211. The scattering particles 232 and the plurality of light-emitting QDs 231 are evenly distributed in the transparent adhesive 290. The scattering particles 232 are transparent particles whose refractive index is different from or inconsistent with that of the transparent adhesive.
(18) Although the present invention has been explained by the embodiments shown in the drawings described above, it should be understood to the ordinary skilled person in the art that the invention is not limited to the embodiments, but rather various changes or modifications thereof are possible without departing from the spirit of the invention. Accordingly, the scope of the invention shall be determined only by the appended claims and their equivalents.