Backlight structure
11189763 ยท 2021-11-30
Assignee
Inventors
Cpc classification
H01L2933/0091
ELECTRICITY
G02F1/133614
PHYSICS
G02F1/133606
PHYSICS
H01L33/62
ELECTRICITY
H01L33/507
ELECTRICITY
G09F9/301
PHYSICS
G06F1/1652
PHYSICS
H01L2933/0083
ELECTRICITY
G02F1/13362
PHYSICS
H01L33/06
ELECTRICITY
International classification
H01L21/34
ELECTRICITY
H01L27/15
ELECTRICITY
H01L33/06
ELECTRICITY
H01L33/62
ELECTRICITY
Abstract
A backlight structure is provided. The backlight structure includes a substrate, a light emitting diode array layer disposed on the substrate, a planarization layer disposed on the light emitting diode array layer, a composite medium layer disposed on the planarization layer, a metal gate line layer including a plurality of metal lines disposed on the composite medium layer, a fluorescent layer disposed on the metal gate line layer, and a diffusion layer disposed on the fluorescent layer, wherein the composite medium layer includes a first medium, a second medium, and a third medium, the second medium is interposed between the first medium and the third medium, and each of a refractive index of the first medium and a refractive index of the third medium is less than a refractive index of the second medium.
Claims
1. A backlight structure, comprising: a substrate; a light emitting diode array layer disposed on the substrate and including a plurality of light emitting diodes; a planarization layer disposed on the light emitting diode array layer and filling a gap between the light emitting diodes; a composite medium layer disposed on the planarization layer; a metal gate line layer including a plurality of metal lines disposed on the composite medium layer; a fluorescent layer disposed on the metal gate line layer; and a diffusion layer disposed on the fluorescent layer; wherein the composite medium layer includes a first medium, a second medium, and a third medium, and, the second medium is interposed between the first medium and the third medium, and each of a refractive index of the first medium and a refractive index of the third medium is less than a refractive index of the second medium, and a material of the second medium is selected from a group of silicon nitride, titanium dioxide, and tantalum pentoxide.
2. The backlight structure according to claim 1, wherein the substrate is a flexible substrate or a printed circuit board.
3. The backlight structure according to claim 1, wherein a material of the planarization layer is selected from the group of silica gel, colorless polyimide, and polymethyl methacrylate.
4. The backlight structure according to claim 1, wherein a material of the metal lines is aluminum, silver, or gold.
5. The backlight structure according to claim 1, wherein the metal lines are arranged on the composite medium layer in a repeated cycle, the repeated cycle is 200 to 500 nm, and the metal gate line layer has a duty ratio of 0.4 to 0.9.
6. The backlight structure according to claim 1, wherein the metal lines have an average height of 20 to 200 nm.
7. The backlight structure according to claim 1, wherein the fluorescent layer includes a plurality of phosphor powders or quantum dot particles.
8. The backlight structure according to claim 7, wherein the fluorescent layer further includes a plurality of scattering particles.
9. The backlight structure according to claim 1, wherein each of the first medium and the third medium is made of a material selected from a group of silicon dioxide, silicon monoxide, and magnesium oxide.
10. A backlight structure, comprising: a substrate; a light emitting diode array layer disposed on the substrate and including a plurality of light emitting diodes; a planarization layer disposed on the light emitting diode array layer and filling a gap between the light emitting diodes; a composite medium layer disposed on the planarization layer; a metal gate line layer including a plurality of metal lines disposed on the composite medium layer; a fluorescent layer disposed on the metal gate line layer; and a diffusion layer disposed on the fluorescent layer; wherein the composite medium layer includes a first medium, a second medium, and a third medium, the second medium is interposed between the first medium and the third medium, and each of a refractive index of the first medium and a refractive index of the third medium is less than a refractive index of the second medium; wherein each of the first medium and the third medium is made of a material selected from a group of silicon dioxide, silicon monoxide, and magnesium oxide; wherein a material of the second medium is selected from a group of silicon nitride, titanium dioxide, and tantalum pentoxide; and wherein the metal lines are arranged on the composite medium layer in a repeated cycle, the repeated cycle is 200 to 500 nm, and the metal gate line layer has a duty ratio of 0.4 to 0.9.
11. The backlight structure according to claim 10, wherein the metal lines have an average height of 20 to 200 nm.
12. The backlight structure according to claim 10, wherein the fluorescent layer includes a plurality of phosphor powders or quantum dot particles.
13. The backlight structure according to claim 12, wherein the fluorescent layer further includes a plurality of scattering particles.
Description
DESCRIPTION OF DRAWINGS
(1)
(2)
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(4)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(5) Structure and technical means adopted by the present disclosure to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings. Furthermore, directional terms described by the present disclosure, such as upper, lower, front, back, left, right, inner, outer, side, longitudinal/vertical, transverse/horizontal, etc., are only directions by referring to the accompanying drawings, and thus the used directional terms are used to describe and understand the present disclosure, but the present disclosure is not limited thereto.
(6) Referring to
(7) Preferably, the fluorescent layer 60 includes a plurality of phosphor powders or quantum dot particles, but is not limited thereto. The phosphor powders can be, for example, YAG, silicate or KSF. The quantum dot particles can be, for example, CdSe, ZnS or InP. In an embodiment of the present disclosure, in addition to the phosphor powders or the quantum dot particles, the fluorescent layer 60 further includes a plurality of scattering particles. The scattering particles are transparent and can be SiO2 or Ti2O5. The fluorescent layer 60 can exist in the form of a diaphragm and is directly fixed to an upper surface of the metal gate line layer 50 by coating.
(8) Referring to
(9) Preferably, each of the first medium 41 and the third medium 43 is made of a material selected from a group of silicon dioxide (SiO.sub.2), silicon monoxide (SiO), and magnesium oxide (MgO), and a material of the second medium 42 is selected from a group of silicon nitride (Si.sub.3N.sub.4), titanium dioxide (TiO.sub.2), and tantalum pentoxide (Ta.sub.2O.sub.5). The first medium 41, the second medium 42, and the third medium 43 can form a sandwich structure having a refractive index sequentially low, high, and low.
(10) According to the structural design, the metal gate line layer 50 can be used as a polarizer to have a large transmission pass band for polarized light (transverse magnetic, TM). However, for polarized light (transverse electric, TE), the suppression of transmission in the full range of visible light is achieved. The polarized light TM has a polarization direction of light perpendicular to the metal gate line layer 50, and the polarized light TE has a light polarization direction parallel to the metal gate line layer 50.
(11) In an embodiment of the present disclosure, the metal lines have an average height of 20 to 200 nm. In an embodiment of the present disclosure, material of the metal lines has a large refractive index imaginary part, such as aluminum (Al), silver (Ag), or gold (Au).
(12) Referring to
(13) Referring to
(14) The present disclosure has been described with preferred embodiments thereof and it is understood that many changes and modifications to the described embodiments can be carried out without departing from the scope and the spirit of the disclosure that is intended to be limited only by the appended claims.