Organic light-emitting diode components including an insulating layer and an auxiliary electrode layer positioned above the insulating layer, manufacturing methods for organic light-emitting diode components, display panels including organic light-emitting diode components, and display devices
10270054 ยท 2019-04-23
Assignee
Inventors
Cpc classification
H10K50/814
ELECTRICITY
H10K71/00
ELECTRICITY
H10K59/80516
ELECTRICITY
H10K71/621
ELECTRICITY
International classification
H01L29/08
ELECTRICITY
H01L21/00
ELECTRICITY
Abstract
Embodiments of the disclosure provide an organic light-emitting diode component and a manufacturing method, a display panel and a display device. The organic light-emitting diode component includes: a first electrode layer, a light-emitting layer and a second electrode layer in sequence. The organic light-emitting diode component further includes an insulation layer and an auxiliary electrode layer. The insulation layer is above the second electrode layer. The auxiliary electrode layer is above the insulation layer and electrically connected to the first electrode layer. According to embodiments of the disclosure, while improving a problem of uneven light emission, the auxiliary electrode layer is prevented from blocking the light emitted by the organic light-emitting diode component. Also, an etching process is not necessary for forming the auxiliary electrode layer.
Claims
1. An organic light-emitting diode component comprising a first electrode layer, a light-emitting layer and a second electrode layer, in sequence; wherein the organic light-emitting diode component further comprises an insulation layer, an auxiliary electrode layer and a pixel definition layer; wherein the insulation layer is positioned above the second electrode layer; wherein the auxiliary electrode layer is positioned above the insulation layer and electrically connected to the first electrode layer; wherein the pixel definition layer is positioned above the first electrode layer, and includes a plurality of open regions; wherein an open region of the plurality of open regions corresponds to a pixel definition region; and wherein the light-emitting layer and the second electrode layer are positioned in the pixel definition region.
2. The organic light-emitting diode component according to claim 1, wherein the insulation layer is positioned in the pixel definition region; wherein the pixel definition layer includes via; and wherein the auxiliary electrode layer is electrically connected to the first electrode layer through the via of the pixel definition layer.
3. The organic light-emitting diode component according to claim 2, wherein the first electrode layer is an anode layer and the second electrode layer is a cathode layer.
4. The organic light-emitting diode component according to claim 2, wherein the first electrode layer is a transparent electrode layer and the second electrode layer is a reflective electrode layer.
5. A The display panel comprising: a substrate; and a plurality of organic light-emitting diode components positioned above the substrate, the plurality of organic light-emitting diode components including the organic light-emitting diode component according to claim 2.
6. The organic light-emitting diode component according to claim 1, wherein the insulation layer is positioned in the pixel definition region and above the pixel definition layer; wherein the pixel definition layer includes a via, and the insulation layer includes a via; wherein the via of the insulation layer is positioned above the via of the pixel definition layer; and wherein the auxiliary electrode layer is electrically connected to the first electrode layer through the via of the insulation layer and the via of the pixel definition layer.
7. The organic light-emitting diode component according to claim 6, wherein the first electrode layer is an anode layer and the second electrode layer is a cathode layer.
8. The organic light-emitting diode component according to claim 6, wherein the first electrode layer is a transparent electrode layer and the second electrode layer is a reflective electrode layer.
9. A display panel comprising: a substrate; and a plurality of organic light-emitting diode components positioned above the substrate, the plurality of organic light-emitting diode components including the organic light-emitting diode component according to claim 6.
10. The organic light-emitting diode component according to claim 1, wherein the first electrode layer is an anode layer and the second electrode layer is a cathode layer.
11. The organic light-emitting diode component according to claim 1, wherein the first electrode layer is a transparent electrode layer and the second electrode layer is a reflective electrode layer.
12. A display panel comprising: a substrate; and a plurality of organic light-emitting diode components positioned above the substrate, the plurality of organic light-emitting diode components including the organic light-emitting diode component according to claim 1.
13. A display device comprising the display panel according to claim 12.
14. A manufacturing method for an organic light-emitting diode component, the method comprising: forming a first electrode layer; forming a pixel definition layer above the first electrode layer, the pixel definition layer including a via and a plurality of open regions, an open region of the plurality of open regions corresponding to a pixel definition region; forming a light-emitting layer and a second electrode layer above the first electrode layer and in the pixel definition region; forming an insulation layer above the second electrode layer and in the pixel definition region; and forming an auxiliary electrode layer above the insulation layer, the auxiliary electrode layer and the first electrode layer electrically connected through the via of the pixel definition layer.
15. The manufacturing method according to claim 14, wherein forming the insulation layer includes forming the insulation layer above the pixel definition layer; wherein the insulation layer includes a via above the via of the pixel definition layer; and wherein forming the auxiliary electrode layer includes forming the auxiliary electrode layer so that the auxiliary electrode layer and the first electrode layer are electrically connected through the via of the insulation layer and the via of the pixel definition layer.
16. The manufacturing method according to claim 15, wherein forming the insulation layer includes forming the insulation layer with a chemical vapor deposition method adopting an open mask.
17. The manufacturing method according to claim 15, wherein forming the auxiliary electrode layer includes forming the auxiliary electrode layer with an evaporation method.
18. The manufacturing method according to claim 14, wherein forming the insulation layer includes forming the insulation layer with a chemical vapor deposition method adopting an open mask.
19. The manufacturing method according to claim 14, wherein forming the auxiliary electrode layer includes forming the auxiliary electrode layer with an evaporation method.
20. The manufacturing method according to claim 19, wherein forming the auxiliary electrode layer includes forming the auxiliary electrode layer with the evaporation method adopting an open mask or a fine metal mask.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order to more clearly illustrate the technical solutions of the embodiments of the disclosure, the drawings of the embodiments will be briefly described below, and it should be appreciated that the drawings described below merely relate to some of the embodiments of the disclosure, rather than limit the disclosure, in which:
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DETAILED DESCRIPTION
(13) In order to make the technical solutions and advantages of the embodiments of the disclosure clearer, the technical solutions of the embodiments of the disclosure will be clearly and fully described below in conjunction with the accompanying drawings. It is obvious that the described embodiments are part, instead of all, of the embodiments of the disclosure. All other embodiments obtained by those skilled in the art based on the described embodiments of the disclosure without the need for creative labor also fall within the scope of the disclosure.
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(15) However, in general, the auxiliary electrode layer 6 is made of an opaque metal material, and light can not pass through. The auxiliary electrode layer 6 needs to cover the transparent electrode layer 1 in an interconnected mesh structure, which blocks the light emitted by the OLED component. Therefore, after the auxiliary electrode layer 6 is added, a larger drive current is required in order to maintain the same luminance, which increases power consumption and cost. In addition, this also reduces the aperture ratio of the display panel using the OLED component.
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(17) Embodiments of the disclosure provide an OLED component. The OLED component includes a first electrode layer 1, a light-emitting layer 2, a second electrode layer 3 and an insulation layer 4 arranged in sequence. The OLED component further includes an auxiliary electrode layer 6 arranged above the insulation layer 4 and electrically connected to the transparent electrode layer 1. Hereinafter, the description will be given by example of the first electrode layer 1 as a transparent electrode layer and the second electrode layer 3 as a reflective electrode layer. It should be understood that this is not a limitation of the present invention.
(18) The light emitted by the OLED component is emitted from the light-emitting layer 2 toward the transparent electrode layer 1, while the auxiliary electrode layer 6 is located in the opposite direction. Thus, the auxiliary electrode layer 6 does not block the light emitted from the OLED component. According to embodiments of the disclosure, the luminance of the OLED display panel will not be changed while the luminance uniformity of the OLED display panel is improved. The transparent electrode layer 1 can be an anode layer, and in this case, the reflective electrode layer 3 is a cathode layer. The transparent electrode layer 1 can be a cathode layer, and in this case, the reflective electrode layer 3 is an anode layer.
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(20) The light emitted by the OLED component is emitted from the light-emitting layer 2 toward the transparent electrode layer 1 while the auxiliary electrode layer 6 is located in the opposite direction. Thus, the auxiliary electrode layer 6 does not block the light emitted from the OLED component. According to embodiments of the disclosure, the luminance of the OLED display panel will not be changed while the luminance uniformity of the OLED display panel is improved.
(21) In addition, as shown in
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(24) The auxiliary electrode layer does not block the light emitted by the OLED component. Therefore, during manufacturing the OLED display panel, the auxiliary electrode layer of the entire panel can be formed into any pattern without being limited to the grid structure. In this way, not only can the square resistance be further reduced and the luminance uniformity be improved, the etching process may be also removed, and the manufacturing method is simplified.
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(26) As shown in
(27) In embodiments of the disclosure, the insulation layer 4 is arranged in the pixel definition region and can be formed using the same or similar mask as the light-emitting layer 2 and the reflective electrode layer 3, thereby simplifying the manufacturing process.
(28) In embodiments of the disclosure, during forming the insulation layer 4, the insulation layer 4 may also be arranged in the pixel definition region and above the pixel definition layer 5, and the insulation layer 4 may include a via 8 located above the via 7. During forming the auxiliary electrode layer 6, the auxiliary electrode layer 6 and the transparent electrode layer 1 are electrically connected through the via of the insulation layer 4 and the via of the pixel definition layer 5. In this way, the insulation layer 4 can be extended for packaging the OLED component. In this case, the insulation layer 4 has the via 8, and the via 7 and the via 8 enable the connection between the auxiliary electrode layer 6 and the transparent electrode layer 1.
(29) In embodiments of the disclosure, the auxiliary electrode layer 6 can be formed using an evaporation method, in particular, an evaporation method adopting an open mask. In addition, a fine metal mask may also be used.
(30) The evaporation method using the mask can include the following steps. First, a mask having an open region is coated on a surface to be evaporated on. Then, the surface is evaporated on. At this time, the material is evaporated at a position corresponding to the open region of the mask on the surface, while the other position is covered and the material is not evaporated thereon. In this way, the auxiliary electrode layer 6 of a predetermined pattern can be obtained by one evaporation without etching.
(31) Of course, the entire auxiliary electrode layer 6 can also be obtained by direct evaporation if necessary.
(32) As shown in
(33) As shown in
(34) As shown in
(35) Finally, referring back to
(36) In embodiments of the disclosure, it is ensured during manufacturing that neither the evaporated layer nor the deposited layer (including the light-emitting layer 2, the reflective electrode layer 3 and the insulation layer 4) in the pixel definition region covers the via 7 arranged in advance at the pixel definition layer 5, to ensure the connection between the auxiliary electrode layer 6 and the transparent electrode layer 1.
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(38) The OLED component and the OLED display panel 1101 provided in embodiments of the disclosure can be applied to an OLED display device 1102. The OLED display device 1102 can be any product or component with a display function, such as a mobile phone, a tablet computer, a television, a display, a notebook computer, a digital photo frame, a navigator, etc.
(39) In embodiments of the disclosure, after the reflective electrode layer 3 is evaporated, the insulation layer 4 is deposited, the auxiliary electrode layer 6 is evaporated on the insulation layer 4, and the auxiliary electrode layer 6 is connected to the transparent electrode layer 1 through the via 7, which can reduce the voltage drop of the transparent electrode layer 1, and will not affect light output. The auxiliary electrode layer 6 does not need to be etched into a grid structure and can be evaporated on the entire surface, removing the etching process, further simplifying the manufacturing process of the OLED component and improving the production efficiency of the OLED component.
(40) It can be understood that the above embodiments are merely exemplary embodiments used for illustrating the principle of the disclosure, but the disclosure is not limited thereto. For those of ordinary skill in the art, various variations and improvements can be made without departing from the spirit and essence of the disclosure, and these variations and improvements also fall within the protection scope of the disclosure.