IP Library Granted Patent US 12711899
Granted Patent B2
US 12711899 · App. 18/738,343 · Granted Aug 18, 2026

Pixel and display apparatus having the same

Inventor: Heechul Lee (Yongin-si, KR)
Assignee: SAMSUNG DISPLAY CO., LTD.
G09G3/32G09G2300/0819G09G2300/0852G09G2300/0861G09G2310/08G09G2320/0233G09G2320/045
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Quick Facts
Patent No.
US 12711899
App. No.
18/738,343
Filed
Jun 10, 2024
Granted
Aug 18, 2026
Kind
B2
Art Unit
2625
USPC
345/214
Abstract

A pixel includes a light emitting element, a driving transistor, a data writing transistor and a leakage current compensator. The driving transistor applies a driving current to the light emitting element. The data writing transistor applies a data voltage to the driving transistor in response to a first writing signal and connected to a first electrode of the driving transistor. The leakage current compensator is connected to a second electrode of the driving transistor and operates in a way such that a turned-off state of the driving transistor is maintained in an emission waiting period in response to a second writing signal different from the first writing signal. The leakage current compensator includes an eighth transistor and the turned off state of the driving transistor is maintained in the emission waiting period by the eighth transistor connected to the second electrode of the driving transistor.

Claims (117)

1 . A pixel comprising:

a light emitting element;

a driving transistor which applies a driving current to the light emitting element;

a data writing transistor which applies a data voltage in response to a first writing signal and is connected to a first electrode of the driving transistor; and

a leakage current compensator connected to a second electrode of the driving transistor,

wherein the leakage current compensator operates in response to a second writing signal different from the first writing signal in a way such that a turned-off state of the driving transistor is maintained in an emission waiting period, and

wherein a voltage level of the second writing signal is maintained constantly at an inactivation level throughout an entirety of a frame period.

2 . The pixel of claim 1 , wherein the leakage current compensator comprises an eighth transistor including a control electrode which receives the second writing signal, a first electrode which receives the data voltage and a second electrode connected to the second electrode of the driving transistor.

3 . The pixel of claim 1 , wherein the pixel further comprises a storage capacitor,

wherein the storage capacitor includes a first electrode which receives a first power voltage and a second electrode connected to a control electrode of the driving transistor, and

wherein the second writing signal is the first power voltage.

4 . The pixel of claim 1 , wherein the leakage current compensator comprises an eighth transistor and a first capacitor,

wherein the eighth transistor includes a control electrode which receives the second writing signal, a first electrode which receives the data voltage and second electrode connected to a fifth node, and

wherein the first capacitor includes a first electrode connected to the fifth node and a second electrode connected to the second electrode of the driving transistor.

5 . The pixel of claim 1 , wherein the emission waiting period is subsequent to a writing period in which the first writing signal has an activation level and

wherein the first writing signal and the second writing signal have an inactivation level in the emission waiting period.

6 . The pixel of claim 1 , wherein the pixel comprises:

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

a second transistor including a control electrode which receives the first writing signal, a first electrode which receives the data voltage and a second electrode connected to the second node;

a third transistor including a control electrode which receives the first writing signal, a first electrode connected to the third node and a second electrode connected to the first node;

a fourth transistor including a control electrode which receives an initialization signal, a first electrode which receives an initialization voltage and a second electrode connected to the first node;

a fifth transistor including a control electrode which receives an emission signal, a first electrode which receives a first power voltage and a second electrode connected to the second node;

a sixth transistor including a control electrode which receives the emission signal, a first electrode connected to the third node and a second electrode connected to a fourth node;

a seventh transistor including a control electrode which receives the first writing signal, a first electrode which receives the initialization voltage and a second electrode connected to the fourth node;

an eighth transistor including a control electrode which receives the second writing signal, a first electrode which receives the data voltage and a second electrode connected to the third node;

a second capacitor including a first electrode which receives the first power voltage and a second electrode connected to the first node; and

the light emitting element including a first electrode connected to the fourth node and a second electrode which receives a second power voltage,

wherein the driving transistor is the first transistor,

wherein the data writing transistor is the second transistor, and

wherein the leakage current compensator includes the eighth transistor.

7 . The pixel of claim 6 , wherein the frame period of the pixel comprises:

an initialization period in which the emission signal has an inactivation level, the initialization signal has an activation level, the first writing signal has an inactivation level and the second writing signal has an inactivation level;

a writing period in which the emission signal has an inactivation level, the initialization signal has an inactivation level, the first writing signal has an activation level and the second writing signal has an inactivation level;

the emission waiting period in which the emission signal has an inactivation level, the initialization signal has an inactivation level, the first writing signal has an inactivation level and the second writing signal has an inactivation level; and

an emission period in which the emission signal has an activation level, the initialization signal has an inactivation level, the first writing signal has an inactivation level and the second writing signal has an inactivation level.

8 . The pixel of claim 1 , wherein the pixel comprises:

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

a second transistor including a control electrode which receives the first writing signal, a first electrode which receives the data voltage and a second electrode connected to the second node;

a third transistor including a control electrode which receives the first writing signal, a first electrode connected to the third node and a second electrode connected to the first node;

a fourth transistor including a control electrode which receives an initialization signal, a first electrode which receives an initialization voltage and a second electrode connected to the first node;

a fifth transistor including a control electrode which receives an emission signal, a first electrode which receives a first power voltage and a second electrode connected to the second node;

a sixth transistor including a control electrode which receives the emission signal, a first electrode connected to the third node and a second electrode connected to a fourth node;

a seventh transistor including a control electrode which receives the first writing signal, a first electrode which receives the initialization voltage and a second electrode connected to the fourth node;

an eighth transistor including a control electrode which receives the second writing signal, a first electrode which receives the data voltage and a second electrode connected to a fifth node;

a first capacitor including a first electrode connected to the fifth node and a second electrode connected to the third node;

a second capacitor including a first electrode which receives the first power voltage and a second electrode connected to the first node; and

the light emitting element including a first electrode connected to the fourth node and a second electrode which receives a second power voltage,

wherein the driving transistor is the first transistor,

wherein the data writing transistor is the second transistor, and

wherein the leakage current compensator includes the eighth transistor and the first capacitor.

9 . The pixel of claim 1 , wherein the pixel comprises:

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

a second transistor including a control electrode which receives the first writing signal, a first electrode which receives the data voltage and a second electrode connected to the second node;

a third transistor including a control electrode which receives the first writing signal, a first electrode connected to the third node and a second electrode connected to the first node;

a fourth transistor including a control electrode which receives an initialization signal, a first electrode which receives a first initialization voltage and a second electrode connected to the first node;

a fifth transistor including a control electrode which receives an emission signal, a first electrode which receives a first power voltage and a second electrode connected to the second node;

a sixth transistor including a control electrode which receives the emission signal, a first electrode connected to the third node and a second electrode connected to a fourth node;

a seventh transistor including a control electrode which receives the first writing signal, a first electrode which receives a second initialization voltage and a second electrode connected to the fourth node;

an eighth transistor including a control electrode which receives the second writing signal, a first electrode which receives the data voltage and a second electrode connected to the third node;

a second capacitor including a first electrode which receives the first power voltage and a second electrode connected to the first node; and

the light emitting element including a first electrode connected to the fourth node and a second electrode which receives a second power voltage,

wherein the driving transistor is the first transistor,

wherein the data writing transistor is the second transistor, and

wherein the leakage current compensator includes the eighth transistor.

10 . The pixel of claim 1 , wherein the pixel comprises:

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

a second transistor including a control electrode which receives the first writing signal, a first electrode which receives the data voltage and a second electrode connected to the second node;

a third transistor including a control electrode which receive a compensation signal, a first electrode connected to the third node and a second electrode connected to the first node;

a fourth transistor including a control electrode which receives an initialization signal, a first electrode which receives an initialization voltage and a second electrode connected to the first node;

a fifth transistor including a control electrode which receives an emission signal, a first electrode which receives a first power voltage and a second electrode connected to the second node;

a sixth transistor including a control electrode which receives the emission signal, a first electrode connected to the third node and a second electrode connected to a fourth node;

a seventh transistor including a control electrode which receives the first writing signal, a first electrode which receives the initialization voltage and a second electrode connected to the fourth node;

an eighth transistor including a control electrode which receives the second writing signal, a first electrode which receives the data voltage and a second electrode connected to the third node;

a second capacitor including a first electrode which receives the first power voltage and a second electrode connected to the first node; and

the light emitting element including a first electrode connected to the fourth node and a second electrode which receives a second power voltage,

wherein the driving transistor is the first transistor,

wherein the data writing transistor is the second transistor, and

wherein the leakage current compensator includes the eighth transistor.

11 . A display apparatus comprising:

a display panel including a pixel;

a gate driver which applies a gate signal to the pixel;

a data driver which applies a data voltage to the pixel; and

an emission driver which applies an emission signal to the pixel and

wherein the pixel comprises a light emitting element, a driving transistor which applies a driving current to the light emitting element, a data writing transistor which applies the data voltage in response to a first writing signal and connected to a first electrode of the driving transistor, and a leakage current compensator connected to a second electrode of the driving transistor,

wherein the leakage current compensator operates in response to a second writing signal different from the first writing signal in a way such that a turned-off state of the driving transistor is maintained in an emission waiting period, and

wherein a voltage level of the second writing signal is maintained constantly at an inactivation level throughout an entirety of a frame period.

12 . The display apparatus of claim 11 , wherein the leakage current compensator comprises an eighth transistor including a control electrode which receives the second writing signal, a first electrode which receives the data voltage and a second electrode connected to the second electrode of the driving transistor.

13 . The display apparatus of claim 11 , wherein the pixel further comprises a storage capacitor and

wherein the storage capacitor includes a first electrode which receives a first power voltage and a second electrode connected to a control electrode of the driving transistor and

wherein the second writing signal is the first power voltage.

14 . The display apparatus of claim 11 , wherein the leakage current compensator comprises an eighth transistor and a first capacitor,

wherein the eighth transistor includes a control electrode which receives the second writing signal, a first electrode which receives the data voltage and second electrode connected to a fifth node, and

wherein the first capacitor includes a first electrode connected to the fifth node and a second electrode connected to the second electrode of the driving transistor.

15 . The display apparatus of claim 11 , wherein the emission waiting period is subsequent to a writing period in which the first writing signal has an activation level, and

wherein the first writing signal and the second writing signal have an inactivation level in the emission waiting period.

16 . The display apparatus of claim 11 , wherein the pixel comprises:

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

a second transistor including a control electrode which receives the first writing signal, a first electrode which receives the data voltage and a second electrode connected to the second node;

a third transistor including a control electrode which receives the first writing signal, a first electrode connected to the third node and a second electrode connected to the first node;

a fourth transistor including a control electrode which receives an initialization signal, a first electrode which receives an initialization voltage and a second electrode connected to the first node;

a fifth transistor including a control electrode which receives the emission signal, a first electrode which receives a first power voltage and a second electrode connected to the second node;

a sixth transistor including a control electrode which receives the emission signal, a first electrode connected to the third node and a second electrode connected to a fourth node;

a seventh transistor including a control electrode which receives the first writing signal, a first electrode which receives the initialization voltage and a second electrode connected to the fourth node;

an eighth transistor including a control electrode which receives the second writing signal, a first electrode which receives the data voltage and a second electrode connected to the third node;

a second capacitor including a first electrode which receives the first power voltage and a second electrode connected to the first node; and

the light emitting element including a first electrode connected to the fourth node and a second electrode which receives a second power voltage,

wherein the driving transistor is the first transistor,

wherein the data writing transistor is the second transistor, and

wherein the leakage current compensator includes the eighth transistor.

17 . An electronic apparatus comprising a display apparatus,

wherein the display apparatus comprises:

a display panel including a pixel;

a gate driver which applies a gate signal to the pixel;

a data driver which applies a data voltage to the pixel; and

an emission driver which applies an emission signal to the pixel and wherein the pixel comprises a light emitting element, a driving transistor which applies a driving current to the light emitting element, a data writing transistor which applies the data voltage in response to a first writing signal and connected to a first electrode of the driving transistor, and a leakage current compensator connected to a second electrode of the driving transistor,

wherein the leakage current compensator operates in a way such that a turned-off state of the driving transistor is maintained in an emission waiting period in response to a second writing signal different from the first writing signal, and

wherein a voltage level of the second writing signal is maintained constantly at an inactivation level throughout an entirety of a frame period.