TOP EMISSION MICROLED DISPLAY AND BOTTOM EMISSION MICROLED DISPLAY AND A METHOD OF FORMING THE SAME
A microLED display includes a first main substrate, micrLEDs disposed above the first main substrate, a first light blocking layer disposed above the first main substrate to define emission areas, a light guiding layer disposed in the emission areas, and a plurality of connecting structures disposed in the emission areas respectively and electrically connected with the microLEDs.
The present invention generally relates to a light-emitting diode (LED) display, and more particularly to a top emission microLED display and a bottom emission microLED display.
2. Description of Related ArtA micro light-emitting diode (microLED, mLED or μLED) display panel is one type of flat display panel, which is composed of microscopic microLEDs each having a size of 1-10 micrometers. Compared to conventional liquid crystal display panels, the microLED display panels offer better contrast, response time and energy efficiency. Although both organic light-emitting diodes (OLEDs) and microLEDs possess good energy efficiency, the microLEDs, based on group III/V (e.g., GaN) LED technology, offer higher brightness, higher luminous efficacy and longer lifespan than the OLEDs.
Active matrix using thin-film transistors (TFT) may be used in companion with microLEDs to drive a display panel. However, microLED is made by flip chip technology, while TFT is made by complementary metal-oxide-semiconductor (CMOS) process which is more complex than flip chip technology. These two distinct technologies may cause thermal mismatch. A drive current of the microLED is small in gray display, which may be significantly affected by leakage current.
Passive matrix is another driving method performed by a row drive circuit and a column drive circuit, which are disposed on the periphery of a display panel. When the size or the resolution of the display panel increases, output loading and delay of the drive circuits increase accordingly, causing the display panel to malfunction. Therefore, passive matrix is not suitable for large-size microLED display panels.
A need has thus arisen to propose a novel microLED display panel, particularly a large-size or high-resolution display panel, which is capable of maintaining advantages of microLEDs and overcoming disadvantages of driving schemes.
As adjacent micrLEDs are near to each other, interference (e.g., color mixing) between adjacent microLEDs may happen and thus decrease contrast ratio. Moreover, non-uniform display may happen due to connecting wires composed of opaque or reflective material that connecting the microLEDs with other components or circuits.
A need has thus arisen to propose a novel microLED display with luminous efficacy improvement over the conventional microLED displays.
SUMMARY OF THE INVENTIONIn view of the foregoing, it is an object of the embodiment of the present invention to provide structures and forming methods of a top emission microLED display and a bottom emission microLED display capable of prevent interference, color mixing and non-uniform display issues.
According to one embodiment, a top emission microLED display includes a first main substrate; a bottom common electrode layer disposed on a top surface of the first main substrate; a plurality of microLEDs disposed on the bottom common electrode layer; a first light blocking layer disposed on the bottom common electrode layer to define a plurality of emission areas; a light guiding layer disposed in the emission areas; and a plurality of connecting structures disposed in the emission areas respectively and electrically connected with the microLEDs.
According to another embodiment, a bottom emission microLED display includes a first main substrate; a plurality of microLEDs disposed above the first main substrate; a first light blocking layer disposed above the first main substrate to define a plurality of emission areas; a light guiding layer disposed in the emission areas; a plurality of connecting structures disposed in the emission areas respectively and electrically connected with the microLEDs; and a top common electrode layer disposed above the first light blocking layer and the microLEDs.
The (first) light blocking layer 23A of the embodiment may include black matrix (BM). In the embodiment shown in
The (first) light blocking layer 23A defines emission areas 24, which are not covered with the (first) light blocking layer 23A. In other words, areas other than the emission areas 24 are covered with the (first) light blocking layer 23A. A light guiding layer 25, composed of light guiding material, is disposed in the emission areas 24 to spread the light emitted by the microLEDs 22. The light guiding material is transparent with high refractive index. In the embodiment, the light guiding layer 25 is entirely formed in the emission areas 24.
In the embodiment, the (first) light blocking layer 23A has a thickness greater than the light guiding layer 25. Further, the light guiding layer 25 has a thickness greater than or equal to the microLEDs 22.
The (first) light blocking layer 23A defines emission areas 24, which are not covered with the (first) light blocking layer 23A. In other words, areas other than the emission areas 24 are covered with the (first) light blocking layer 23A. In the embodiment, the light guiding layer 25 is entirely formed in the emission areas 24.
In the embodiment, the (first) light blocking layer 23A has a thickness greater than the light guiding layer 25. Further, the light guiding layer 25 has a thickness greater than the microLEDs 22 as shown in
A light guiding layer 25, composed of light guiding material, is disposed in the emission areas 24 to spread the light emitted by the microLEDs 22. In the embodiment, the light guiding layer 25 is entirely formed in the emission areas 24.
In the embodiment, the first light blocking layer 23A has a thickness greater than the light guiding layer 25. Further, the light guiding layer 25 has a thickness greater than the microLEDs 22 as shown in
According to one aspect of the embodiment, the connecting structures 26 (not shown) in each emission area 24 have the same pattern, which can prevent nonuniform display issue.
In the embodiment, each pixel (which includes red microLED 22R, green microLED 22G and blue microLED 22B) corresponds to an emission area 24. In the embodiment, a frame-shaped first light blocking layer 23A surrounds the emission area 24 and is disposed above the (first) main substrate 21A. In the embodiment, a second light blocking layer 23B, which covers areas other than the emission areas 24 and the first light blocking layer 23A, is disposed on a bottom surface of the blocking substrate 27. The first light blocking layer 23A and the second light blocking layer 23B partially overlap each other. Accordingly, an aperture d1 of the first light blocking layer 23A is different from (e.g., smaller than) an aperture d2 of the second light blocking layer 23B. In the embodiment, the first light blocking layer 23A and the second light blocking layer 23B may include BM, and the blocking substrate 27 may include transparent material such as quartz, glass or plastic material.
A light guiding layer 25, composed of light guiding material, is disposed in the emission areas 24 to spread the light emitted by the microLEDs 22. In the embodiment, the light guiding layer 25 is entirely formed in the emission areas 24.
In the embodiment, the first light blocking layer 23A has a thickness greater than the light guiding layer 25. Further, the light guiding layer 25 has a thickness greater than the microLEDs 22 as shown in
According to one aspect of the embodiment, the connecting structures 26 (not shown) in the emission areas 24 have the same pattern and the connecting structures 26 in each emission area 24 have the same pattern, which can prevent nonuniform display issue.
As shown in
As shown in
As shown in
The (first) light blocking layer 23A of the embodiment may include black matrix (BM). In the embodiment shown in
The (first) light blocking layer 23A defines emission areas 24, which are not covered with the (first) light blocking layer 23A. In other words, areas other than the emission areas 24 are covered with the (first) light blocking layer 23A. A light guiding layer 25, composed of light guiding material, is disposed in the emission areas 24 to spread the light emitted by the microLEDs 22. The light guiding material is transparent with high refractive index. In the embodiment, the light guiding layer 25 is entirely formed in the emission areas 24.
In the embodiment, the (first) light blocking layer 23A has a thickness greater than the light guiding layer 25. Further, the light guiding layer 25 has a thickness greater than the microLEDs 22 as shown in
The (first) light blocking layer 23A defines emission areas 24, which are not covered with the (first) light blocking layer 23A. In other words, areas other than the emission areas 24 are covered with the (first) light blocking layer 23A. In the embodiment, the light guiding layer 25 is entirely formed in the emission areas 24.
In the embodiment, the (first) light blocking layer 23A has a thickness greater than the light guiding layer 25. Further, the light guiding layer 25 has a thickness greater than the microLEDs 22 as shown in
A light guiding layer 25, composed of light guiding material, is disposed in the emission areas 24 to spread the light emitted by the microLEDs 22. In the embodiment, the light guiding layer 25 is entirely formed in the emission areas 24.
In the embodiment, the first light blocking layer 23A has a thickness greater than the light guiding layer 25. Further, the light guiding layer 25 has a thickness greater than the microLEDs 22 as shown in
According to one aspect of the embodiment, the connecting structures 26 (not shown) in each emission area 24 have the same pattern, which can prevent nonuniform display issue.
In the embodiment, each pixel (which includes red microLED 22R, green microLED 22G and blue microLED 22B) corresponds to an emission area 24. In the embodiment, a frame-shaped first light blocking layer 23A surrounds the emission area 24 and is disposed above the (first) main substrate 21A. In the embodiment, a second light blocking layer 23B, which covers areas other than the emission areas 24 and the first light blocking layer 23A, is disposed on a top surface of the blocking substrate 27. The first light blocking layer 23A and the second light blocking layer 23B partially overlap each other. Accordingly, an aperture d1 of the first light blocking layer 23A is different from (e.g., smaller than) an aperture d2 of the second light blocking layer 23B. In the embodiment, the first light blocking layer 23A and the second light blocking layer 23B may include BM, and the blocking substrate 27 may include transparent material such as quartz, glass or plastic material.
A light guiding layer 25, composed of light guiding material, is disposed in the emission areas 24 to spread the light emitted by the microLEDs 22. In the embodiment, the light guiding layer 25 is entirely formed in the emission areas 24.
In the embodiment, the first light blocking layer 23A has a thickness greater than the light guiding layer 25. Further, the light guiding layer 25 has a thickness greater than the microLEDs 22 as shown in
According to one aspect of the embodiment, the connecting structures 26 (not shown) in the emission areas 24 have the same pattern and the connecting structures 26 in each emission area 24 have the same pattern, which can prevent nonuniform display issue.
As shown in
As shown in
As shown in
The shielding layer 30 may be disposed between a top surface of the first main substrate 21A and first light blocking layer 23A. The shielding layer 30 may be electrically insulated from the top common electrode layer 28 by an insulating layer 29, and may be electrically insulated from the connecting structure 26 by an insulating layer 31. Similarly, the shielding layer 30 may be disposed between a top surface of the second main substrate 21B and first light blocking layer 23A. The shielding layer 30 may be electrically insulated from the top common electrode layer 28 by an insulating layer 29, and may be electrically insulated from the connecting structure 26 by an insulating layer 31. The shielding layer 30 may be disposed between a top surface of the blocking substrate 27 and the second light blocking layer 23B. Generally speaking, the shielding layer 30 may be disposed in one or more areas mentioned above.
The shielding layer 30 may be adaptable to a top emission microLED display.
After the light emitted by the microLEDs 22 enters the first main substrate 21A, some of the generated light passes through the first main substrate 21A, while other of the generated light laterally diffuses in the first main substrate 21A due to total reflection, which may interfere with adjacent microLED 22 or pixel to result in floodlight issue. The anti-floodlight layer 32 of the embodiment may absorb lateral diffused light and effectively avoid floodlight issue.
The anti-floodlight layer 32 of the embodiment may include BM. In one example, a chromium/chromium oxide film is first formed, followed by adopting photo etching technique to form the BM anti-floodlight layer 32. In another example, black resin is first formed, followed by adopting photo process and curing process to form the BM anti-floodlight layer 32. In a further example, ink-jet printing technique and curing process are adopted to form the BM anti-floodlight layer 32. The anti-floodlight layer 32 may be directly formed on the first main substrate 21A, or may be first formed on another substrate, which is then attached on the first main substrate 21A.
As discussed above, the anti-floodlight layer 32 may be disposed between adjacent microLEDs 22. However, the anti-floodlight layer 32 may be disposed between adjacent pixels.
Although specific embodiments have been illustrated and described, it will be appreciated by those skilled in the art that various modifications may be made without departing from the scope of the present invention, which is intended to be limited solely by the appended claims.
Claims
1. A top emission micro light-emitting diode (microLED) display, comprising:
- a first main substrate;
- a bottom common electrode layer disposed on a top surface of the first main substrate;
- a plurality of microLEDs disposed on the bottom common electrode layer;
- a first light blocking layer disposed on the bottom common electrode layer to define a plurality of emission areas;
- a light guiding layer disposed in the emission areas; and
- a plurality of connecting structures disposed in the emission areas respectively and electrically connected with the microLEDs.
2. The display of claim 1, wherein the connecting structures have a same pattern.
3. The display of claim 1, wherein the connecting structures comprise transparent material.
4. The display of claim 1, wherein the connecting structures comprise opaque material.
5. The display of claim 1, wherein the first light blocking layer comprises black matrix.
6. The display of claim 1, wherein the first light blocking layer has a thickness greater than the light guiding layer.
7. The display of claim 1, wherein the first light blocking layer has a thickness less than the light guiding layer, the first light blocking layer and the light guiding layer partially overlap each other, and the first light blocking layer is partially covered with the light guiding layer.
8. The display of claim 1, wherein each said emission area corresponds to one microLED.
9. The display of claim 1, wherein each said emission area corresponds to a red microLED, a green microLED and a blue microLED.
10. The display of claim 1, wherein a red microLED, a green microLED and a blue microLED in the emission area respectively correspond to the connecting structures with a same pattern.
11. The display of claim 1, wherein the connecting structures are entirely formed in the emission areas.
12. The display of claim 1, further comprising:
- a blocking substrate disposed above the first main substrate and the first light blocking layer; and
- a second light blocking layer formed on a bottom surface of the blocking substrate, the second light blocking layer covering areas other than emission areas and the first light blocking layer;
- wherein the first light blocking layer surrounding the emission area has a frame shape, the first light blocking layer and the second light blocking layer partially overlapping each other.
13. The display of claim 12, wherein an aperture of the first light blocking layer is different from an aperture of the second light blocking layer.
14. The display of claim 12, wherein the second light blocking layer comprises black matrix.
15. The display of claim 12, wherein the blocking substrate comprises transparent material.
16. The display of claim 12, further comprising:
- a second main substrate disposed at a same level as the first main substrate, the first main substrate and the second main substrate corresponding to distinct microLED displays respectively, and the first light blocking layer being disposed above the first main substrate and the second main substrate;
- wherein the first main substrate and the second main substrate correspond to the same blocking substrate, and the first light blocking layer of the first main substrate and the second light blocking layer of the second main substrate correspond to the same second light blocking layer at a joint of the first main substrate and the second main substrate.
17. The display of claim 12, further comprising a shielding layer disposed between the blocking substrate and the second light blocking layer for blocking electromagnetic interference.
18. The display of claim 17, wherein the shielding layer comprises transparent material.
19. The display of claim 1, the microLED is a rectangle and is disposed longitudinally.
20-30. (canceled)
31. A bottom emission microLED display, comprising:
- a first main substrate;
- a plurality of microLEDs disposed above the first main substrate;
- a first light blocking layer disposed above the first main substrate to define a plurality of emission areas;
- a light guiding layer disposed in the emission areas;
- a plurality of connecting structures disposed in the emission areas respectively and electrically connected with the microLEDs; and
- a top common electrode layer disposed above the first light blocking layer and the microLEDs.
32. The display of claim 31, wherein the connecting structures have a same pattern.
33. The display of claim 31, wherein the connecting structures comprise transparent material.
34. The display of claim 31, wherein the connecting structures comprise opaque material.
35. The display of claim 31, wherein the first light blocking layer comprises black matrix.
36. The display of claim 31, wherein the first light blocking layer has a thickness greater than the light guiding layer.
37. The display of claim 31, wherein the first light blocking layer has a thickness less than the light guiding layer, the first light blocking layer and the light guiding layer partially overlap each other, and the first light blocking layer is partially covered with the light guiding layer.
38. The display of claim 31, wherein each said emission area corresponds to one microLED.
39. The display of claim 31, wherein each said emission area corresponds to a red microLED, a green microLED and a blue microLED.
40. The display of claim 31, wherein a red microLED, a green microLED and a blue microLED in the emission area respectively correspond to the connecting structures with a same pattern.
41. The display of claim 31, wherein the connecting structures are entirely formed in the emission areas.
42. The display of claim 31, further comprising a shielding layer disposed between the first main substrate and the first light blocking layer for blocking electromagnetic interference.
43. The display of claim 42, wherein the shielding layer comprises transparent material.
44. The display of claim 31, further comprising:
- a blocking substrate disposed below the first main substrate; and
- a second light blocking layer formed on a top surface of the blocking substrate, the second light blocking layer covering areas other than emission areas and the first light blocking layer;
- wherein the first light blocking layer surrounding the emission area has a frame shape, the first light blocking layer and the second light blocking layer partially overlapping each other.
45. The display of claim 44, wherein an aperture of the first light blocking layer is different from an aperture of the second light blocking layer.
46. The display of claim 44, wherein the second light blocking layer comprises black matrix.
47. The display of claim 44, wherein the blocking substrate comprises transparent material.
48. The display of claim 44, further comprising a shielding layer disposed between the blocking substrate and the second light blocking layer for blocking electromagnetic interference.
49. The display of claim 48, wherein the shielding layer comprises transparent material.
50. The display of claim 44, further comprising:
- a second main substrate disposed at a same level as the first main substrate, the first main substrate and the second main substrate corresponding to distinct microLED displays respectively, and the first light blocking layer being disposed above the first main substrate and the second main substrate;
- wherein the first main substrate and the second main substrate correspond to the same blocking substrate, and the first light blocking layer of the first main substrate and the second light blocking layer of the second main substrate correspond to the same second light blocking layer at a joint of the first main substrate and the second main substrate.
51. The display of claim 50, further comprising a shielding layer disposed between the second main substrate and the first light blocking layer for blocking electromagnetic interference.
52. The display of claim 51, wherein the shielding layer comprises transparent material.
53. The display of claim 31, the microLED is a rectangle and is disposed longitudinally.
54. The display of claim 31, further comprising an anti-floodlight layer disposed on a bottom surface of the first main substrate and disposed between adjacent microLEDs or pixels.
55. The display of claim 54, wherein the anti-floodlight layer is disposed on the first main substrate opposite the first light blocking layer.
56. The display of claim 54, wherein the anti-floodlight layer comprises black matrix.
57. The display of claim 56, wherein the black matrix comprises chromium/chromium oxide, black resin or ink-jet.
58-68. (canceled)
Type: Application
Filed: Sep 11, 2018
Publication Date: Mar 12, 2020
Inventors: Biing-Seng Wu (Tainan City), Chao-Wen Wu (Tainan City)
Application Number: 16/128,255