IP Library › Granted Patent US 12,603,040
Granted Patent B2
US 12,603,040 · App. 18/966,026 · Granted Apr 14, 2026

Pixel circuit and display device including the same

Inventors: Dae Young Seo (Paju-si, KR); Byung Hyun Lee (Paju-si, KR); Min Seok Kim (Paju-si, KR); Tae Yong Kim (Paju-si, KR); Su Min Lee (Paju-si, KR)
Assignee: LG Display Co., Ltd.
G09G3/32G09G3/3233G09G3/3266G09G3/3291G09G2310/0267G09G2310/0275G09G2330/021
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Quick Facts
Patent No.
US 12,603,040
App. No.
18/966,026
Granted
Apr 14, 2026
Kind
B2
Abstract

The present disclosure relates to a pixel circuit and a display device including the same, including a light-emitting element; a driving transistor connected to the light-emitting element; a first-first switch transistor connected between a gate electrode of the driving transistor and a data line to which a data voltage is applied and turned on in response to a pulse of a second scan signal; and a first-second switch transistor connected between the gate electrode of the driving transistor and the data line and turned on in response to a pulse of a first scan signal input prior to the pulse of the second scan signal.

Claims (81)

1 . A pixel circuit comprising:

a light-emitting element;

a driving transistor electrically connected to the light-emitting element;

a first-first switch transistor connected between a gate electrode of the driving transistor and a data line to which a data voltage is applied, the first-first switch transistor configured to be turned on in response to a pulse of a second scan signal; and

a first-second switch transistor connected between a gate electrode of the driving transistor and the data line, the first-second switch transistor configured to be turned on in response to a pulse of a first scan signal that is input prior to the pulse of the second scan signal,

wherein:

the gate electrode of the driving transistor is connected to a first node,

the driving transistor includes a first electrode connected to a second node and a second electrode to which a ground voltage is applied,

the light-emitting element includes an anode electrode to which a pixel driving voltage is applied, and a cathode electrode connected to the second node, and

a voltage charging time of the first node is longer than a pulse width of each of the first scan signal and the second scan signal.

2 . The pixel circuit of claim 1 , wherein the first-first switch transistor is turned on after the first-second switch transistor is turned on, and then the first-first switch transistor is turned off after the first-second switch transistor is turned off.

3 . The pixel circuit of claim 1 , wherein the pulse of the first scan signal and the pulse of the second scan signal overlap or do not overlap each other.

4 . The pixel circuit of claim 1 , further comprising:

a second-first switch transistor connected between a power line to which a reference voltage is applied and the second node, the second-first switch transistor configured to be turned on in response to the pulse of the second scan signal; and

a second-second switch transistor connected between the power line and the second node, the second-second switch transistor configured to be turned on in response to the pulse of the first scan signal,

wherein the second-first switch transistor is turned on after the second-second switch transistor is turned on, and then the second-first switch transistor is turned off after the second-second switch transistor is turned off.

5 . A pixel circuit comprising:

a driving transistor including a gate electrode connected to a first node, a first electrode connected to a second node, and a second electrode connected to a third node;

a light-emitting element including an anode electrode to which a pixel driving voltage is applied and a cathode electrode connected to the second node;

a first capacitor connected to the first node and a fourth node;

a first-first switch transistor connected to a data line to which a data voltage is applied and the fourth node, the first-first switch transistor configured to be turned on in response to a pulse of a fourth scan signal;

a first-second switch transistor connected to the data line and the fourth node, the first-second switch transistor configured to be turned on in response to a pulse of a third scan signal that is input prior to the pulse of the fourth scan signal;

a second-first switch transistor connected to the first node and the third node, the second-first switch transistor configured to be turned on in response to the pulse of the fourth scan signal; and

a second-second switch transistor connected to the first node and the third node, the second-second switch transistor configured to be turned on in response to the pulse of the third scan signal.

6 . The pixel circuit of claim 5 , wherein the pulse of the third scan signal and the pulse of the fourth scan signal overlap or do not overlap each other, and a voltage charging time of the fourth node is longer than a pulse width of each of the third scan signal and the fourth scan signal.

7 . The pixel circuit of claim 5 , further comprising:

a third-first switch transistor connected to a first power line to which the pixel driving voltage is applied and the second node, the third-first switch transistor configured to be turned on in response to the pulse of the fourth scan signal; and

a third-second switch transistor connected to the first power line and the second node, the third-second switch transistor configured to be turned on in response to the pulse of the third scan signal.

8 . The pixel circuit of claim 6 , further comprising:

a fourth-first switch transistor connected to a third power line to which a reference voltage is applied and the third node, the fourth-first switch transistor configured to be turned on in response to a pulse of a second scan signal;

a fourth-second switch transistor connected to the third power line and the third node, the fourth-second switch transistor configured to be turned on in response to a pulse of a first scan signal input prior to the second scan signal;

a fifth switch transistor connected to the fourth node and the third power line, the fifth switch transistor configured to be turned on in response to an emission signal; and

a sixth switch transistor connected to a second power line to which a ground voltage is applied and the third node, the sixth switch transistor configured to be turned on in response to the emission signal.

9 . A display device comprising:

a display panel including a plurality of data lines, a plurality of gate lines, a plurality of power lines, and a plurality of sub-pixels;

a data driver configured to output a data voltage to the plurality of data lines; and

a gate driver configured to output a scan signal to the plurality of gate lines,

wherein each of the plurality of sub-pixels includes:

a light-emitting element;

a driving transistor electrically connected to the light-emitting element;

a first-first switch transistor connected to a gate electrode of the driving transistor and a data line from the plurality of data lines to which the data voltage is applied, the first-first switch transistor configured to be turned on in response to a pulse of a second scan signal; and

a first-second switch transistor connected to the gate electrode of the driving transistor and the data line, the first-second switch transistor configured to be turned on in response to a pulse of a first scan signal that is input prior to the pulse of the second scan signal,

wherein:

the gate electrode of the driving transistor is connected to a first node,

the driving transistor includes a first electrode connected to a second node and a second electrode to which a ground voltage is applied,

the light-emitting element includes an anode electrode to which a pixel driving voltage is applied, and a cathode electrode connected to the second node, and

a voltage charging time of the first node is longer than a pulse width of each of the first scan signal and the second scan signal.

10 . The display device of claim 9 , wherein the first-first switch transistor is turned on after the first-second switch transistor is turned on, and then the first-first switch transistor is turned off after the first-second switch transistor is turned off, and

wherein the pulse of the first scan signal and the pulse of the second scan signal overlap or do not overlap each other.

11 . The display device of claim 9 , further comprising:

a second-first switch transistor connected to a power line from the plurality of power lines to which a reference voltage is applied and the second node, the second-first switch transistor configured to be turned on in response to the pulse of the first scan signal; and

a second-second switch transistor connected to the power line and the second node, the second-second switch transistor configured to be turned on in response to the pulse of the second scan signal,

wherein the second-first switch transistor is turned on after the second-second switch transistor is turned on, and then the second-first switch transistor is turned off after the second-second switch transistor is turned off.

12 . A display device comprising:

a display panel including a plurality of data lines, a plurality of gate lines, a plurality of power lines, and a plurality of sub-pixels;

a data driver configured to output a data voltage to the plurality of data lines; and

a gate driver configured to output a scan signal to the plurality of gate lines,

wherein each of the plurality of sub-pixels includes:

a driving transistor including a gate electrode connected to a first node, a first electrode connected to a second node, and a second electrode connected to a third node;

a light-emitting element including an anode electrode to which a pixel driving voltage is applied and a cathode electrode connected to the second node;

a first capacitor connected to the first node and a fourth node;

a first-first switch transistor connected to a data line from the plurality of data lines to which the data voltage is applied and the fourth node, the first- first switch transistor configured to be turned on in response to a pulse of a fourth scan signal;

a first-second switch transistor connected to the data line and the fourth node, the first-second switch transistor configured to be turned on in response to a pulse of a third scan signal that is input prior to the pulse of the fourth scan signal;

a second-first switch transistor connected to the first node and the third node, the second-first switch transistor configured to be turned on in response to the pulse of the fourth scan signal;

a second-second switch transistor connected to the first node and the third node, the second-second switch transistor configured to be turned on in response to the pulse of the third scan signal;

a third-first switch transistor connected to a first power line to which the pixel driving voltage is applied and the second node, the third-first switch transistor configured to be turned on in response to the pulse of the fourth scan signal;

a third-second switch transistor connected to the first power line and the second node, the third-second switch transistor configured to be turned on in response to the pulse of the third scan signal;

a fourth-first switch transistor connected to a third power line to which a reference voltage is applied and the third node, the fourth-first switch transistor configured to be turned on in response to a pulse of a second scan signal; and

a fourth-second switch transistor connected to the third power line and the third node, the fourth-second switch transistor configured to be turned on in response to a pulse of a first scan signal that is input prior to the second scan signal.

13 . The display device of claim 12 , wherein the pulse of the third scan signal and the pulse of the fourth scan signal overlap or do not overlap each other, and a voltage charging time of the fourth node is longer than a pulse width of each of the third scan signal and the fourth scan signal.

14 . The display device of claim 12 , wherein the pulse of the first scan signal and the pulse of the second scan signal overlap or do not overlap each other.

15 . The display device of claim 12 , wherein the plurality of gate lines include:

a first gate line to which the first scan signal is input;

a second gate line to which the second scan signal is input;

a third gate line to which the third scan signal is input; and

a fourth gate line to which the fourth scan signal is input, and

wherein each of the first gate line to the fourth gate line is connected in parallel to a corresponding output terminal of the gate driver.

16 . The display device of claim 12 , further comprising:

a fifth switch transistor connected to the fourth node and the third power line, the fifth switch transistor configured to be turned on in response to an emission signal; and

a sixth switch transistor connected to a second power line to which a ground voltage is applied and the third node, the sixth switch transistor configured to be turned on in response to the emission signal,

wherein the gate driver outputs the emission signal.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 4, 2024
From: SEO, DAE YOUNG; LEE, BYUNG HYUN; KIM, MIN SEOK; KIM, TAE YONG; LEE, SU MIN
To: LG DISPLAY CO., LTD.
Reel/Frame 069509/0035 →
Priority Claims (1)
KR 10-2024-0019367 · Feb 8, 2024 · national
Continuity (1)
Related Publication 20250259591A1 · Aug 14, 2025
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