MIRROR ORGANIC LIGHT-EMITTING DIODE DEVICE AND METHOD OF MANUFACTURING SAME
20210336193 · 2021-10-28
Inventors
Cpc classification
H10K71/00
ELECTRICITY
H10K2102/00
ELECTRICITY
H10K50/828
ELECTRICITY
International classification
Abstract
The disclosure provides a mirror (organic light-emitting diode) OLED device and a method of manufacturing same. A transparent cathode and a reflective cathode on an organic layer are made of two different material. The reflective cathode and the transparent cathode are disposed alternately. A periphery of the reflective cathode and a periphery of the transparent cathode are connected to each other, thereby improving conductivity of the entire cathode. A mirror OLED display device manufactured by the method has both a display function and a reflective function which will not interfere with each other. A flexible, large-scale mirror OLED display device with various shapes is realized.
Claims
1. A mirror organic light-emitting diode (OLED) display device, comprising: a thin film transistor (TFT) substrate comprising a plurality of light-emitting pixels; an anode disposed on the TFT substrate; an organic layer disposed on the anode; at least one transparent cathode disposed on a region of the organic layer corresponding to the light-emitting pixels; at least one reflective cathode disposed on a region of the organic layer outside the region of the organic layer corresponding to the light-emitting pixels; and an encapsulation layer disposed on the transparent cathode and the reflective cathode.
2. The mirror OLED display device of claim 1, wherein the reflective cathode and the transparent cathode are disposed alternately.
3. The mirror OLED display device of claim 2, wherein a periphery of the reflective cathode and a periphery of the transparent cathode are connected to each other.
4. The mirror OLED display device of claim 1, wherein material of the transparent cathode is at least one of Mg or Ag.
5. The mirror OLED display device of claim 1, wherein material of the reflective cathode is at least one of Al or Ag.
6. The mirror OLED display device of claim 1, wherein an encapsulating structure of the encapsulation layer is flexible encapsulation or plate encapsulation.
7. The mirror OLED display device of claim 1, wherein the organic layer further comprises: a hole injection layer disposed on the anode; a hole transport layer disposed on the hole injection layer; a luminescent layer disposed on a region of the hole transport layer corresponding to the light-emitting pixels; an electron transport layer disposed on the luminescent layer; and an electron injection layer disposed on the electron transport layer.
8. A method of manufacturing an organic light-emitting diode (OLED) display device, comprising the following steps: step 1: forming a plurality of light-emitting pixels on a thin film transistor (TFT) substrate; step 2: sequentially forming an anode and an organic layer on the TFT substrate; step 3: forming a transparent cathode on a region of the organic layer corresponding to the light-emitting pixels; step 4: forming a reflective cathode on a region of the organic layer outside the region of the organic layer corresponding to the light-emitting pixels; and step 5: encapsulating the TFT substrate.
9. The method of claim 8, wherein the reflective cathode and the transparent cathode are disposed alternately.
10. The method of claim 9, wherein a periphery of the reflective cathode and a periphery of the transparent cathode are connected to each other.
11. The method of claim 8, wherein material of the transparent cathode is at least one of Mg or Ag.
12. The method of claim 8, wherein material of the reflective cathode is at least one of Al or Ag.
13. The method of claim 8, wherein the transparent cathode is formed by a fine metal mask.
14. The method of claim 8, wherein the reflective cathode is formed by a fine metal mask.
15. The method of claim 8, wherein an encapsulating structure of the encapsulation layer is flexible encapsulation or plate encapsulation.
16. The method of claim 8, wherein a step of manufacturing the organic layer of the step 2 further includes: step 21: depositing a hole injection layer on the anode; step 22: depositing a hole transport layer on the hole injection layer; step 23: depositing a luminescent layer on a region of the hole transport layer corresponding to the light-emitting pixels; step 24: depositing an electron transport layer on the luminescent layer; and step 25: depositing an electron injection layer on the electron transport layer.
Description
DESCRIPTION OF DRAWINGS
[0033] The accompanying figures to be used in the description of embodiments of the present disclosure or prior art will be described in brief to more clearly illustrate the technical solutions of the embodiments or the prior art. Apparently, the accompanying figures described below are only part of the embodiments of the present disclosure, from which figures those skilled in the art can derive further figures without making any inventive efforts.
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DETAILED DESCRIPTION
[0043] The following description of the various embodiments is provided with reference to the accompanying drawings. It should be understood that terms such as “upper”, “lower”, “front”, “rear”, “left”, “right”, “inside”, “outside”, “clockwise”, “lateral”, as well as derivative thereof should be construed to refer to the orientation as then described or as shown in the drawings under discussion. These relative terms are for convenience of description, do not require that the present disclosure be constructed or operated in a particular orientation, and shall not be construed as causing limitations to the present disclosure. In the drawings, the identical or similar reference numerals constantly denote the identical or similar elements or elements having the identical or similar functions.
[0044] In traditional mirror OLED display device, a display function and a reflective function of the mirror OLED display device will interfere with each other, furthermore, a plug-in mirror display device is difficult to realize a flexible and large-scale mirror display device with various shapes, the following embodiments can solve the above technical problems.
[0045] To more clearly illustrate the present disclosure, in a first embodiment and a second embodiment, a region of a TFT substrate corresponding to light-emitting pixels is defined as a luminescent region A1, and a region of the TFT substrate outside the luminescent region A1 is defined as a reflective region A2.
First Embodiment
[0046] As shown in
[0047] Specifically, as shown in
[0048] Specifically, the reflective cathode 14 and the transparent cathode 13 are disposed alternately, and a periphery of the reflective cathode 14 and a periphery of the transparent cathode 13 are connected to each other. Therefore, conductivity of the entire cathode is improved, and a display function and a reflective function of the mirror OLED display device will not interfere with each other.
[0049] Specifically, material of the transparent cathode 13 is at least one of transparent conductive metal material such as Mg, Al, or other transparent metal oxides.
[0050] Specifically, material of the reflective cathode 14 is at least one of high-reflectivity conductive metal material such as Al or Ag.
[0051] Specifically, the mirror OLED display device further include an encapsulation layer 15 disposed on the transparent cathode 13 and the reflective cathode 14. In the present embodiment, an encapsulating structure of the encapsulation layer 15 may be flexible encapsulation or plate encapsulation.
[0052] Specifically, in the mirror OLED display device of the present embodiment, material of the transparent cathode 13 and that of the reflective cathode 14 are different. The reflective cathode 14 and the transparent cathode 13 are disposed alternately, and a periphery of the reflective cathode 14 and a periphery of the transparent cathode 13 are connected to each other. Therefore, conductivity of the entire cathode is improved, and a display function and a reflective function of the mirror OLED display device will not interfere with each other. A high-quality mirror OLED display device with both a display function and a reflective function can be realized.
Second Embodiment
[0053] As shown in
[0054] step 1: forming a plurality of light-emitting pixels on a thin film transistor (TFT) substrate.
[0055] step 2: sequentially forming an anode and an organic layer on the TFT substrate.
[0056] step 3: forming a transparent cathode on a region of the organic layer corresponding to the light-emitting pixels.
[0057] step 4: forming a reflective cathode on a region of the organic layer outside the region of the organic layer corresponding to the light-emitting pixels.
[0058] step 5: encapsulating the TFT substrate.
[0059] Specifically, as shown in
[0060] Specifically, as shown in
[0061] step 21: depositing a hole injection layer on the anode.
[0062] step 22: depositing a hole transport layer on the hole injection layer.
[0063] step 23: depositing a luminescent layer on the hole transport layer and in the luminescent region A1.
[0064] step 24: depositing an electron transport layer on the luminescent layer.
[0065] step 25: depositing an electron injection layer on the electron transport layer.
[0066] Specifically, the step 3 is shown in
[0067] Specifically, the transparent cathode 13 is formed by a fine metal mask (FMM). The FMM is a metal plate with millions of holes which are used to precisely control deposition position of vapor deposition and ensure that the transparent cathode 13 is only deposited on the organic layer 12 and in the luminescent region A1. As a result, a mirror OLED display device with both a display function and a reflective function can be realized, wherein the display function and the reflective function will not interfere with each other.
[0068] Specifically, the step 4 is shown in
[0069] Specifically, the reflective cathode 14 is formed by a FMM. The FMM is a metal plate with millions of holes which are used to precisely control deposition position of vapor deposition and ensure that the reflective cathode 14 is only deposited on the organic layer 12 and in the reflective region A2. As a result, a mirror OLED display device with both a display function and a reflective function can be realized, wherein the display function and the reflective function will not interfere with each other.
[0070] Specifically, the reflective cathode 14 and the transparent cathode 13 are disposed alternately, and a periphery of the reflective cathode 14 and a periphery of the transparent cathode 13 are connected to each other. Therefore, conductivity of the entire cathode is improved, and a display function and a reflective function of the mirror OLED display device will not interfere with each other.
[0071] Specifically, encapsulating method in the step 5 may be flexible encapsulation, plate encapsulation, or other encapsulating structures. An encapsulated structured is shown in
[0072] Regarding the beneficial effects: In the method of manufacturing a mirror OLED display device, the transparent cathode and the reflective cathode of the mirror OLED display device are respectively disposed on a region of the organic layer corresponding to light-emitting pixels and a region of the organic layer outside the region of the organic layer corresponding to the light-emitting pixels. The reflective cathode and the transparent cathode are disposed alternately. The periphery of the reflective cathode and the periphery of the transparent cathode are connected to each other, thereby improving conductivity of the entire cathode. A display function and a reflective function of the mirror OLED display device provided by the present disclosure will not interfere with each other, further, the manufacturing process is simple, which can realize a flexible and large-scale mirror OLED display device with various shapes.
[0073] The present disclosure has been described with a preferred embodiment thereof. The preferred embodiment is not intended to limit the present disclosure, and it is understood that many changes and modifications to the described embodiment 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.