IP Library › Granted Patent US 11,094,767
Granted Patent B2
US 11,094,767 · App. 16/349,291 · Granted Aug 17, 2021

Flexible organic light emitting diode device and method of forming the same

Inventors: Weiwei Yang (Wuhan, CN); Cheng Yang (Wuhan, CN)
H01L27/3276H01L27/3246H01L27/3262H01L51/0097H01L51/56H01L2227/323
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Quick Facts
Patent No.
US 11,094,767
App. No.
16/349,291
Granted
Aug 17, 2021
Kind
B2
Abstract

A flexible organic light-emitting diode (OLED) device includes a flexible substrate, a buffer layer, an inorganic layer, a first gate insulating layer, a second gate insulating layer, an inter-layer dielectric layer, a passivation layer, a pixel definition layer, a driving transistor, an OLED, a data voltage lead, and a driving voltage lead. The driving voltage lead is connected to the driving voltage terminal through a first hole which penetrates the second gate insulating layer, the first gate insulating layer, the inorganic layer, and the buffer layer, and through a second hole which penetrates the inter-layer dielectric layer. The data voltage lead and the driving voltage lead are arranged in different layers in a bendable inactive area. Compared with the related art, the layout space is omitted or saved in the present disclosure, which shortens the bezel effectively.

Claims (42)

1. A flexible organic light-emitting diode (OLED) device having an active area and an inactive area, comprising:

a flexible substrate;

a buffer layer, arranged on the flexible substrate;

an inorganic layer, arranged on the buffer layer;

a first gate insulating layer, arranged on the inorganic layer;

a second gate insulating layer, arranged on the first gate insulating layer;

an inter-layer dielectric (ILD) layer, arranged on the second gate insulating layer;

a passivation layer, arranged on the ILD layer;

a pixel definition layer (PDL), arranged on the passivation layer;

a driving transistor, arranged in the active area, comprising a controlling electrode and an outputting electrode, and configured to receive data voltage and driving voltage;

an OLED, arranged in the active area, comprising an anode layer, a cathode layer, and a light-emitting layer; the light-emitting layer arranged between the anode layer and the cathode layer and configured to produce light based on a difference between the data voltage and the driving voltage;

a data voltage lead, connected to the controlling electrode of the driving transistor; wherein the data voltage lead arranged on the ILD layer in the inactive area, and the data voltage lead corresponding to a bendable area of the inactive area located on the passivation layer; and

a driving voltage lead, connected to the outputting electrode of the driving transistor and a driving voltage terminal wherein the driving voltage lead is connected to the driving voltage terminal through a first hole which penetrates the second gate insulating layer, the first gate insulating layer, the inorganic layer, and the buffer layer, and through a second hole which penetrates the ILD layer.

2. The flexible OLED device of claim 1 , wherein the driving transistor further comprises an active layer; the active layer is arranged on the buffer layer; the controlling electrode is arranged on the first gate insulating layer; the outputting electrode is connected to the active layer through a third hole which penetrates the ILD layer, the second gate insulating layer, and the first gate insulating layer.

3. The flexible OLED device of claim 1 , wherein the anode layer is connected to the outputting electrode through a fourth hole which penetrates passivation layer; the anode layer is configured to receive the driving voltage.

4. The flexible OLED device of claim 1 , wherein the flexible substrate is fabricated by polyimide (PI).

5. The flexible OLED device of claim 1 , wherein the inorganic layer may be fabricated from either silicon oxide (SiOx) or silicon nitride (SiNx).

6. A method of forming a flexible organic light-emitting diode (OLED) device, comprising:

forming a flexible substrate;

forming an inorganic layer and a buffer layer on the flexible substrate sequentially;

forming an active layer of a driving transistor on the buffer layer;

forming a first gate insulating layer on the buffer layer;

forming a controlling electrode of the driving transistor on the first gate insulating layer;

forming a second gate insulating layer on the first gate insulating layer;

etching the buffer layer, the first gate insulating layer, and the second gate insulating layer to form a first hole;

etching a first metallic layer to form a first segment of a driving voltage lead; connecting the first segment of the driving voltage lead to a driving voltage terminal through the first hole;

forming an inter-layer dielectric (ILD) layer on the second gate insulating layer;

etching the ILD layer to form a second hole and the third hole, and etching the first gate insulating layer, the second gate insulating layer and the ILD layer to form a third hole;

etching a second metallic layer to form a second segment of the driving voltage lead, a data voltage lead, and an outputting electrode of the driving transistor; connecting the second segment of the driving voltage lead to the first segment of the driving voltage lead through the second hole; connecting the outputting electrode of the driving transistor to the active layer through the third hole;

forming a passivation layer on the ILD layer; and

forming an OLED on the passivation layer wherein an anode layer of the OLED is connected to the outputting electrode of the driving transistor.

7. The method of claim 6 , wherein the step of forming the OLED on the passivation layer and connecting the anode layer of the OLED to the outputting electrode comprises:

etching the passivation layer to form a fourth hole;

etching a third metallic layer of the passivation layer to form the anode layer; connecting the anode layer to the outputting electrode through the fourth hole;

forming a pixel definition layer (PDL) on the passivation layer;

etching the passivation layer to form a fifth hole; and

forming a light-emitting layer of the OLED and a cathode layer of the OLED on the anode layer sequentially.

8. The method of claim 6 , wherein the step of etching the buffer layer, the first gate insulating layer, and the second gate insulating layer to form the first hole comprises:

etching the first gate insulating layer and the second gate insulating layer to form a primary hole; and

etching the buffer layer to form a first auxiliary hole, wherein the first hole is formed with the first primary hole and the first auxiliary hole.

9. The method of claim 6 , wherein the flexible OLED device comprises an active area and an inactive area; the driving transistor and the OLED are arranged in the active area; the driving voltage lead and the data voltage lead are arranged in the inactive area.

10. The method of claim 6 , wherein the flexible substrate is fabricated by polyimide (PI).

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 13, 2019
From: YANG, WEIWEI; YANG, CHENG
To: WUHAN CHINA STAR OPTOELECTRONICS SEMICONDUCTOR DISPLAY TECHNOLOGY CO., LTD.
Reel/Frame 049151/0641 →
Priority Claims (1)
CN 201811477096.5 · Dec 5, 2018 · national
Continuity (1)
Related Publication 20210183981A1 · Jun 17, 2021