The subject matter herein generally relates to a backlight module and a liquid crystal display device using the backlight module.
A liquid crystal display (LCD) does not emit light and hence requires a backlight for its function as a visual display. Recently, Light Emitting Diodes (LEDs) have been employed as light sources for backlighting LCDs. However, the LED's luminous efficiency may be not so good, the backlight module and the display device exist the problem that the transmittance of light are not high enough, thereby reducing the display effect.
Implementations of the present technology will now be described, by way of example only, with reference to the attached figures.
It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among the different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein can be practiced without these specific details. In other instances, methods, procedures, and components have not been described in detail so as not to obscure the related relevant feature being described. The drawings are not necessarily to scale and the proportions of certain parts may be exaggerated to better illustrate details and features. The description is not to be considered as limiting the scope of the embodiments described herein.
The term “substantially” is defined to be essentially conforming to the particular dimension, shape or other word that substantially modifies, such that the component need not be exact. For example, substantially cylindrical means that the object resembles a cylinder, but can have one or more deviations from a true cylinder. The term “comprising” means “including, but not necessarily limited to”; it specifically indicates open-ended inclusion or membership in a so-described combination, group, series and the like.
The light guide plate 130 has a light incident surface 131, a light emitting surface 132 connected to the light incident surface 131, and a bottom surface 133 opposite to the light emitting surface 132 and connected to the light incident surface 131. The at least one light source 140 is disposed beside and faces the light incident surface 131. The phosphor film 150 and the reflector 170 are located at opposite sides of the light guide plate 130. The phosphor 150 faces the light emitting surface 132. The reflector 170 faces the bottom surface 133. The optical film 160 is disposed at a side of the phosphor film 150 away from the light guide plate 130 and sandwiched between the phosphor film 150 and the display panel 110.
Parts of the light having the first primary color from the emitting element 141 excite the first phosphor 143 to generate light having the second primary color. The light having the second primary color mixes with the other parts of the light having the first primary color from the emitting element 141 such that the at least one light source 140 emits a mixed light of the first primary color and the second primary color. In this embodiment, the emitting element 141 is a blue light emitting diode chip, the first phosphor 143 is red phosphor, and the at least one light source 140 emits a mixed light of blue light and red light.
The mixed light of the first primary color and the second primary color emitting from the at least one light source 140 passes through the light incident surface 131 into the light guide plate 130 and leaves the light guide plate 130 through the light emitting surface 132, outwardly emitting. The mixed light emitting from the light emitting surface 132 of the light guide plate 130 is provided to the phosphor film 150. The reflector 170 reflects light leaking from the bottom of the light guide plate 130 back to the light guide plate 130.
The phosphor film 150 may include a bottom barrier layer 151, a top barrier layer 152, and a phosphor layer 153 located between the bottom barrier layer 151 and the top barrier layer 152. The bottom barrier layer 151 and the top barrier layer 152 are configured to protect the phosphor layer 153. The phosphor layer 153 has a base material 1531 and a second phosphor 1532 dispersed in the base material 1531. The base material 1531 can be transparent material, such as transparent resin, and the second phosphor 1532 has a third primary color and is configured to provide light of a third primary color.
In this embodiment, the third primary color is green. In other words, the phosphor layer 153 is a green phosphor layer and has green phosphor. The material of the green phosphor may include SrGa2S4: Eu2+, and a proportion of the phosphor 1532 in the phosphor layer 153 may be range from 5% to 20% by weight. Moreover, a thickness of the phosphor layer 153 may be range from 5 um to 50 um, and a thickness of each of the bottom barrier layer 151 and the top barrier layer 152 may be range from 5 um to 50 um. Accordingly, a thickness of the phosphor film 150 may be range from 15 um to 150 um.
The optical film 160 may be a diffuser or a brightness enhancement film. In other embodiments, the optical film 160 may not be required, and then white plane light from the phosphor film 150 may directly emit toward the display panel 110. In this embodiment, the optical film 160 is a dual-brightness enhancement film (D-BEF) or a brightness enhancement film-reflective polarizer (BEF-RP). A part of the mixed light from the light guide plate 130 excites the phosphor film 150 to generate light having the third primary color. The light having the third primary color mixes with the mixed light from the light guide plate 130 to generate white light, and the white light is provided to the display panel 110 via the optical film 160. The other parts of the mixed light from the light guide plate 130 is reflected to the light guide plate 130 by the optical film 160, reflected by reflector 170, and provided to the phosphor film 150 once again. Accordingly, the other parts of the mixed light can be changed to white light by the phosphor film 150, and the white light is provided to the display panel 110 via the optical film 160. The first primary color, the second primary color, and the third primary color are different, and each is a monochrome color.
The backlight module 120 generates white light by the light of the emitting element 141 exciting the first phosphor 143 and the phosphor film 150.
Because the first light conversion in the at least one light source 140 and the second light conversion in the phosphor film 150 are substantially separated from each other, the light conversion efficiency of the two conversions are improved. Furthermore, because the optical film 160 can reflect the other parts of the mixed light from the light guide plate 130 to the light guide plate 130 by the optical film 160, the light guide plate 130 and the reflector 170 provide the other parts of the mixed light to the optical film 160 second time, the light conversion efficiency of the backlight module 120 and the liquid crystal panel are also improved. Accordingly, luminous efficiency and brightness the backlight module 120 and the liquid crystal panel are also improved.
While various exemplary and preferred embodiments have been described, the disclosure is not limited thereto. On the contrary, various modifications and similar arrangements (as would be apparent to those skilled in the art) are intended to also be covered. Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
This application is a nonprovisional patent application of and claims the benefit of U.S. Provisional Patent Application No. 62/167,911, filed May 29, 2015 and titled “BACKLIGHT MODULE AND LIQUID CRYSTAL DISPLAY DEVICE,” the disclosure of which is hereby incorporated herein by reference in its entirety.
Number | Date | Country | |
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62167911 | May 2015 | US |