IP Library › Granted Patent US 12,733,345
Granted Patent B2
US 12,733,345 · App. 18/080,578 · Granted Sep 8, 2026

Organic light emitting diode display device

Inventors: Jae-Myeong Park (Paju-si, KR); Ho-Jun Lee (Paju-si, KR); Ji-Yeon Kim (Paju-si, KR); Hee-Won Lee (Paju-si, KR)
Assignee: LG Display Co., Ltd.
H10K59/122H10K50/822H10K59/35
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Quick Facts
Patent No.
US 12,733,345
App. No.
18/080,578
Granted
Sep 8, 2026
Kind
B2
Abstract

A display device having a plurality of subpixels may include: a first substrate; a bank layer on the first substrate at boundaries between the plurality of subpixels; a thin film transistor in one of the subpixels; a light emitting diode in the one of the subpixels and electrically connected to the thin film transistor, the light emitting diode including an anode, a hole transporting layer, a first emitting layer, an electron transporting layer, and a cathode; and a spacer on the bank layer at a periphery of the one of the subpixels, the spacer having a reverse taper shape. The cathode may include at least two discontinuous segments disconnected from each other at one or more side surfaces of the spacer.

Claims (70)

1 . A display device, comprising:

a first substrate;

a bank layer on the first substrate to define red, green, and blue subpixels;

a thin film transistor in each of the red, green, and blue subpixels;

a light emitting diode in the red subpixel; and

a plurality of spacers on the bank layer in a periphery of the red subpixel,

wherein the light emitting diode includes an anode, a hole transporting layer, an emitting layer, an electron transporting layer, and a cathode,

wherein each of the plurality of spacers has a reverse taper shape,

wherein the hole transporting layer and the electron transporting layer extend to an adjacent subpixel through side and top surfaces of each of the plurality of spacers,

wherein the cathode is discontinuous at the side surface of each of the plurality of spacers and does not cover at least a portion of the side surface of at least one of the plurality of spacers, and

wherein the plurality of spacers are disposed between the red subpixel and the green subpixel and between the red subpixel and the blue subpixel, and the plurality of spacers are not disposed between the green subpixel and the blue subpixel.

2 . The display device of claim 1 , wherein the plurality of spacers are spaced apart from each other in the periphery of the red subpixel to surround the red subpixel.

3 . The display device of claim 2 , wherein each of the plurality of spacers includes a plurality of sub-spacers spaced apart from each other.

4 . The display device of claim 1 , further comprising a groove in the bank layer in the periphery of the red subpixel,

wherein the hole transporting layer, the electron transporting layer, and the cathode are disposed in the groove, and

wherein the hole transporting layer and the electron transporting layer are disposed on one or more side surfaces and a bottom surface of the groove.

5 . The display device of claim 4 , wherein the groove has a closed loop, rectangular, or polygonal shape surrounding the red subpixel.

6 . The display device of claim 4 , wherein the groove has a reverse taper shape, and the cathode is discontinuous at the one or more side surfaces of the groove.

7 . The display device of claim 1 , wherein:

the green subpixel and the blue subpixel are next to each other, and each include a light emitting diode having an anode, an emitting layer, and a cathode; and

the cathode in the green subpixel is connected to and continuous with the cathode in the blue subpixel.

8 . The display device of claim 7 , wherein:

the adjacent subpixel to the red subpixel is the green subpixel; and

the cathode in the red subpixel is disconnected from the cathode in the green subpixel.

9 . The display device of claim 7 , wherein the cathode in the green subpixel extends over the bank layer between the green subpixel and the blue subpixel and is connected to the cathode in the blue subpixel.

10 . The display device of claim 1 , wherein the spacer is widest at the top surface and gradually narrows toward the bank layer, and

wherein at least one of the side surfaces of the spacer is inclined at an angle less than 90° with respect to the top surface of the spacer.

11 . The display device of claim 1 , wherein the electron transporting layer on the side surface of each of the plurality of spacers is exposed between the cathode on the top surface of each of the plurality of spacers and the cathode on a top surface of the bank layer.

12 . The display device of claim 1 , wherein the hole transporting layer and the electron transporting layer have an uneven shape on the bank layer between the red subpixel and the green subpixel and between the red subpixel and the blue subpixel, and the hole transporting layer and the electron transporting layer have a flat shape on the bank layer between the green subpixel and the blue subpixel.

13 . A display device having a plurality of subpixels, the display device comprising:

a first substrate;

a bank layer on the first substrate at boundaries between the plurality of subpixels;

a thin film transistor in one of the subpixels;

a light emitting diode in the one of the subpixels and electrically connected to the thin film transistor, the light emitting diode including an anode, a hole transporting layer, a first emitting layer, an electron transporting layer, and a cathode; and

a spacer on the bank layer at a periphery of the one of the subpixels, the spacer having a reverse taper shape,

wherein the cathode includes at least two discontinuous segments disconnected from each other at one or more side surfaces of the spacer, and the cathode does not cover at least a portion of the one or more side surfaces of the spacer, and

wherein the spacer is disposed between the one of the subpixels and one other of the subpixels, and the spacer is not disposed between two of the subpixels other than the one of the subpixels.

14 . The display device of claim 13 , wherein the hole transporting layer and the electron transporting layer extend over the one or more side surfaces and a top surface of the spacer to an adjacent subpixel among the plurality of subpixels.

15 . The display device of claim 13 , wherein the light emitting diode includes at least two stacks of emitting layers overlapping one another, the at least two stacks of emitting layers including the first emitting layer.

16 . The display device of claim 15 , wherein the light emitting diode further includes a charge generation layer between the at least two stacks of emitting layers.

17 . The display device of claim 13 , wherein the one of the subpixels is a red subpixel.

18 . The display device of claim 13 , wherein at least four subpixels among the plurality of subpixels form a pixel, and

wherein at least two of the at least four subpixels are of a same color.

19 . The display device of claim 13 , wherein a distance between the red subpixel and the blue subpixel is different from a distance between the red subpixel and the green subpixel, or the distance between the red subpixel and the blue subpixel is different from a distance between the green subpixel and the blue subpixel.

20 . The display device of claim 13 , further comprising a groove in the bank layer in the periphery of the red subpixel,

wherein the hole transporting layer, the electron transporting layer, and the cathode are disposed in the groove, and

wherein the hole transporting layer and the electron transporting layer are disposed on one or more side surfaces and a bottom surface of the groove.

21 . The display device of claim 20 , wherein the groove has a closed loop, rectangular, or polygonal shape surrounding the red subpixel.

22 . The display device of claim 20 , wherein the groove has a reverse taper shape, and the cathode is discontinuous at the one or more side surfaces of the groove.

23 . A display device having a plurality of subpixels, the display device comprising:

a first substrate;

a bank layer on the first substrate at boundaries between the plurality of subpixels, the bank layer including a groove at a top surface of the bank layer in a periphery of one of the subpixels, the groove having a reverse taper shape;

a thin film transistor in the one of the subpixels; and

a first light emitting diode in the one of the subpixels and electrically connected to the thin film transistor, the first light emitting diode including an anode, a hole transporting layer, an emitting layer, an electron transporting layer, and a cathode,

wherein at least one of the hole transporting layer and the electron transporting layer extends on the bank layer, including one or more side surfaces and a bottom surface of the groove, to be connected to an adjacent one of the subpixels,

wherein the cathode is discontinuous at the one or more side surfaces of the groove, and

wherein the groove is disposed between the one of the subpixels and one other of the subpixels, and the groove is not disposed between two of the subpixels other than the one of the subpixels.

24 . The display device of claim 23 , wherein both of the hole transporting layer and the electron transporting layer extend on the bank layer, including the one or more side surfaces and the bottom surface of the groove, to be connected to the adjacent one of the subpixels.

25 . The display device of claim 23 , further comprising:

a spacer on the bank layer at a periphery of the one of the subpixels, the spacer having a reverse taper shape,

wherein the at least one of the hole transporting layer and the electron transporting layer extends over side surfaces and a top surface of the spacer to the adjacent one of the subpixels.

26 . The display device of claim 23 , wherein the light emitting diode includes at least two stacks of emitting layers overlapping one another, the at least two stacks of emitting layers including the first emitting layer.

27 . The display device of claim 26 , wherein the light emitting diode further includes a charge generation layer between the at least two stacks of emitting layers.

28 . The display device of claim 23 , wherein the one of the subpixels is a red subpixel.

29 . The display device of claim 23 , wherein at least four subpixels among the plurality of subpixels form a pixel, and

wherein at least two of the at least four subpixels are of a same color.

30 . The display device of claim 23 , wherein a distance between the red subpixel and the blue subpixel is different from a distance between the red subpixel and the green subpixel, or the distance between the red subpixel and the blue subpixel is different from a distance between the green subpixel and the blue subpixel.

31 . The display device of claim 23 , wherein the groove has a closed loop, rectangular, or polygonal shape surrounding the red subpixel.

32 . The display device of claim 23 , wherein the cathode does not cover the one or more side surfaces of the groove and does not cover at least a portion of the bottom surface of the groove.

33 . The display device of claim 23 , wherein the electron transporting layer on the side surface of the groove is exposed between the cathode on the bottom surface of the groove and the cathode on a top surface of the bank layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 13, 2022
From: PARK, JAE-MYEONG; LEE, HO-JUN; KIM, JI-YEON; LEE, HEE-WON
To: LG DISPLAY CO., LTD.
Reel/Frame 062118/0185 →
Priority Claims (1)
KR 10-2021-0191084 · Dec 29, 2021 · national
Continuity (1)
Related Publication 20230209910A1 · Jun 29, 2023
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