IP Library Granted Patent US 12670856
Granted Patent B2
US 12670856 · App. 18/829,426 · Granted Jun 30, 2026

Display device

Inventors: Kyunghoon Chung (Yongin-si, KR); Minkyu Woo (Yongin-si, KR)
Assignee: SAMSUNG DISPLAY CO., LTD.
G09G3/3233G09G3/32G09G2300/0814G09G2300/0819G09G2300/0852G09G2300/0861G09G2320/0242
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Quick Facts
Patent No.
US 12670856
App. No.
18/829,426
Granted
Jun 30, 2026
Kind
B2
Abstract

A display device includes a plurality of pixels, where each of the plurality of pixels includes a light emitting element, an initialization circuit configured to provide a first initialization voltage to a first node, a data writing circuit configured to provide a data voltage to a second node, a ramp generating circuit configured to provide a ramp voltage to the first node in response to an enable signal, a comparator configured to generate an emission signal by comparing the ramp voltage at the first node and the data voltage at the second node, and a driving circuit configured to provide a constant current to the light emitting element in response to the emission signal.

Claims (255)

1 . An electronic display device including a plurality of pixels, each of the plurality of pixels comprising:

a light emitting element;

an initialization circuit configured to provide a first initialization voltage to a first node, the initialization circuit including a first initialization transistor configured to transfer the first initialization voltage to the first node;

a data writing circuit configured to provide a data voltage to a second node;

a ramp generating circuit configured to provide a ramp voltage to the first node in response to an enable signal, the ramp generating circuit including a ramp current source configured to generate a ramp current, a ramp enable transistor connected in series with the ramp current source, and configured to selectively provide the ramp current to the first node in response to the enable signal, and a ramp capacitor connected to the first node, and configured to generate the ramp voltage based on the ramp current;

a comparator configured to generate an emission signal by comparing the ramp voltage at the first node and the data voltage at the second node; and

a driving circuit configured to provide a constant current to the light emitting element in response to the emission signal.

2 . The electronic device of claim 1 , wherein an emission time of the light emitting element of each of the plurality of pixels is determined according to a voltage level of the data voltage for each of the plurality of pixels.

3 . The electronic device of claim 1 , wherein the plurality of pixels include the ramp generating circuits.

4 . The electronic device of claim 1 , wherein the ramp current source includes:

a ramp current transistor configured to generate the ramp current based on a ramp bias voltage,

wherein gates of the ramp current transistor are connected to a same line for transferring the ramp bias voltage.

5 . The electronic device of claim 1 , further comprising:

a reference ramp current source; and

a reference ramp current transistor connected in series with the reference ramp current source, the reference ramp current transistor including a reference ramp current transistor drain and a reference ramp current transistor gate connected to each other,

wherein the ramp current source includes:

a ramp current transistor configured to generate the ramp current, and

wherein gates of ramp current transistors of the plurality of pixels are connected to the reference ramp current transistor gate.

6 . The electronic device of claim 1 , wherein the initialization circuit further includes:

a second initialization transistor configured to transfer a second initialization voltage to the second node.

7 . The electronic device of claim 1 , wherein the data writing circuit includes at least one of a first data writing transistor for transferring the data voltage to the second node in response to a writing signal, and a second data writing transistor for transferring the data voltage to the second node in response to an inverted writing signal.

8 . The electronic device of claim 7 , wherein the data writing circuit further includes:

a storage capacitor connected to the second node, and configured to store the data voltage.

9 . The electronic device of claim 1 , wherein the driving circuit includes:

a constant current source configured to generate the constant current; and

an emission transistor configured to selectively provide the constant current to the light emitting element in response to the emission signal.

10 . The electronic device of claim 9 , wherein the driving circuit further includes:

at least one driving enable transistor connected in series with the emission transistor, the at least one driving enable transistor being selectively turned on in response to the enable signal or an inverted enable signal.

11 . The electronic device of claim 1 , wherein the ramp voltage gradually decreases in a sweep period in which the enable signal has a high level,

wherein the comparator generates the emission signal having a low level when the ramp voltage is higher than the data voltage,

wherein the driving circuit includes an emission transistor that is turned on while the emission signal has the low level, and

wherein an emission time of the light emitting element starts at a start time point of the sweep period, and ends when a voltage level of the ramp voltage becomes equal to a voltage level of the data voltage.

12 . The electronic device of claim 1 , wherein the initialization circuit includes:

the first initialization transistor including a first initialization transistor gate for receiving the enable signal, a first initialization transistor first terminal for receiving the first initialization voltage, and a first initialization transistor second terminal connected to the first node; and

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to the second node,

wherein the data writing circuit includes:

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node; and

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage,

wherein the ramp generating circuit includes:

the ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the first node, and a ramp enable transistor second terminal;

the ramp current source connected between the ramp enable transistor second terminal and a line for transferring a second power supply voltage; and

the ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage,

wherein the comparator includes a comparator positive input terminal connected to the second node, a comparator negative input terminal connected to the first node, and an comparator output terminal for outputting the emission signal,

wherein the driving circuit includes:

a constant current source connected to a line for transferring a first power supply voltage;

a first driving enable transistor including a first driving enable transistor gate for receiving an inverting enable signal, a first driving enable transistor first terminal connected to the constant current source, and a first driving enable transistor second terminal;

an emission transistor including a emission transistor gate for receiving the emission signal, a emission transistor first terminal connected to the first driving enable transistor second terminal, and a emission transistor second terminal; and

a second driving enable transistor including a second driving enable transistor gate for receiving the enable signal, a second driving enable transistor first terminal connected to the emission transistor second terminal, and a second driving enable transistor second terminal, and

wherein the light emitting element includes a light emitting element anode connected to the second driving enable transistor second terminal, and a light emitting element cathode connected to the line for transferring the second power supply voltage.

13 . The electronic device of claim 12 , wherein a frame period includes:

an initialization period in which the initialization signal has a high level, and the enable signal and the writing signal have a low level;

a data writing period in which the writing signal has the high level, and the enable signal and the initialization signal have the low level; and

a sweep period in which the enable signal has the high level, and the initialization signal and the writing signal have the low level,

wherein, in the initialization period, the first initialization transistor provides the first initialization voltage to the first node in response to the enable signal having the low level, and the second initialization transistor provides the second initialization voltage to the second node in response to the initialization signal having the high level,

wherein, in the data write period, the first data writing transistor provides the data voltage to the second node in response to the writing signal having the high level, the second data writing transistor provides the data voltage to the second node in response to the inverted writing signal having the low level, and the storage capacitor stores the data voltage at the second node, and

wherein, in the sweep period, the ramp enable transistor provides a ramp current generated by the ramp current source to the ramp capacitor in response to the enable signal having the high level, wherein the ramp capacitor provides the first node with the ramp voltage, wherein the ramp voltage gradually decreases from the first initialization voltage based on the ramp current, the comparator generates the emission signal having the low level during an emission time from a start time point of the sweep period to a time point at which the ramp voltage becomes the data voltage, the first driving enable transistor is turned on in response to the inverted enable signal having the low level, the second driving enable transistor is turned on in response to the enable signal having the high level, the emission transistor is turned on in response to the emission signal having the low level during the emission time, and the light emitting element emits light based on the constant current during the emission time.

14 . The electronic device of claim 1 , wherein the initialization circuit includes:

the first initialization transistor including a first initialization transistor gate for receiving the enable signal, a first initialization transistor first terminal for receiving the first initialization voltage, and a first initialization transistor second terminal connected to the first node,

wherein the data writing circuit includes:

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node; and

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage,

wherein the ramp generating circuit includes:

the ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the first node, and a ramp enable transistor second terminal;

the ramp current source connected between the ramp enable transistor second terminal and a line for transferring a second power supply voltage; and

the ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage,

wherein the comparator includes a comparator positive input terminal connected to the second node, a comparator negative input terminal connected to the first node, and a comparator output terminal for outputting the emission signal,

wherein the driving circuit includes:

a constant current source connected to a line for transferring a first power supply voltage;

a first driving enable transistor including a first driving enable transistor gate for receiving an inverting enable signal, a first driving enable transistor first terminal connected to the constant current source, and a first driving enable transistor second terminal;

an emission transistor including an emission transistor gate for receiving the emission signal, an emission transistor first terminal connected to the first driving enable transistor second terminal, and an emission transistor second terminal; and

a second driving enable transistor including a second driving enable transistor gate for receiving the enable signal, a second driving enable transistor first terminal connected to the emission transistor second terminal, and a second driving enable transistor second terminal,

wherein the light emitting element includes a light emitting element anode connected to the second driving enable transistor second terminal, and a light emitting element cathode connected to the line for transferring the second power supply voltage, and

wherein, in the initialization period of a current frame period, a voltage of the second node is maintained as the data voltage in a previous frame period.

15 . The electronic device of claim 1 , wherein the ramp voltage gradually decreases in a sweep period in which the enable signal has a high level,

wherein the comparator generates the emission signal having the high level when the ramp voltage is higher than the data voltage,

wherein the driving circuit includes an emission transistor that is turned on while the emission signal has the high level, and

wherein an emission time of the light emitting element starts at a start time point of the sweep period, and ends when a voltage level of the ramp voltage becomes equal to a voltage level of the data voltage.

16 . The electronic device of claim 1 , wherein the initialization circuit includes:

a first initialization transistor including a first initialization transistor gate for receiving the enable signal, a first initialization transistor first terminal for receiving the first initialization voltage, and a first initialization transistor second terminal connected to the first node; and

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to the second node,

wherein the data writing circuit includes:

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node; and

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage,

wherein the ramp generating circuit includes:

a ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the first node, and a ramp enable transistor second terminal;

a ramp current source connected between the ramp enable transistor second terminal and a line for transferring a second power supply voltage; and

a ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage,

wherein the comparator includes a comparator positive input terminal connected to the first node, a comparator negative input terminal connected to the second node, and a comparator output terminal for outputting the emission signal,

wherein the driving circuit includes:

a first driving enable transistor including a first driving enable transistor gate for receiving an inverting enable signal, a first driving enable transistor first terminal, and a first driving enable transistor second terminal;

an emission transistor including a emission transistor gate for receiving the emission signal, a emission transistor first terminal connected to the second terminal of the first driving enable transistor, and a emission transistor second terminal;

a second driving enable transistor including a second driving enable transistor gate for receiving the enable signal, a second driving enable transistor first terminal connected to the emission transistor second terminal, and a second driving enable transistor second terminal; and

a constant current source connected between the second driving enable transistor second terminal and the line for transferring the second power supply voltage, and

wherein the light emitting element includes a light emitting element anode connected to a line for transferring a first power supply voltage, and a light emitting element cathode connected to the first driving enable transistor first terminal of the first driving enable transistor.

17 . The electronic device of claim 1 , wherein the ramp voltage gradually increases in a sweep period in which the enable signal has a low level,

wherein the comparator generates the emission signal having the low level when the ramp voltage is lower than the data voltage,

wherein the driving circuit includes an emission transistor that is turned on while the emission signal has the low level, and

wherein an emission time of the light emitting element starts at a start time point of the sweep period, and ends when a voltage level of the ramp voltage becomes equal to a voltage level of the data voltage.

18 . The electronic device of claim 1 , wherein the initialization circuit includes:

the first initialization transistor including a first initialization transistor gate for receiving the enable signal, a first initialization transistor first terminal for receiving the first initialization voltage, and a first initialization transistor second terminal connected to the first node; and

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to the second node,

wherein the data writing circuit includes:

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node; and

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage,

wherein the ramp generating circuit includes:

the ramp current source connected to a line for transferring a first power supply voltage;

the ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the ramp current source, and a ramp enable transistor second terminal connected to the first node; and

the ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage,

wherein the comparator includes a comparator positive input terminal connected to the first node, a comparator negative input terminal connected to the second node, and a comparator output terminal for outputting the emission signal,

wherein the driving circuit includes:

a constant current source connected to the line for transferring the first power supply voltage;

a first driving enable transistor including a first driving enable transistor gate for receiving the enable signal, a first driving enable transistor first terminal connected to the constant current source, and a first driving enable transistor second terminal;

an emission transistor including an emission transistor gate for receiving the emission signal, an emission transistor first terminal connected to the first driving enable transistor second terminal, and an emission transistor second terminal; and

a second driving enable transistor including a second driving enable transistor gate for receiving an inverted enable signal, a second driving enable transistor first terminal connected to the emission transistor second terminal, and a second driving enable transistor second terminal, and

wherein the light emitting element includes a light emitting element anode connected to the second driving enable transistor second terminal, and a cathode connected to a line for transferring a second power supply voltage.

19 . The electronic device of claim 1 , wherein the ramp voltage gradually increases in a sweep period in which the enable signal has a low level,

wherein the comparator generates the emission signal having a high level when the ramp voltage is lower than the data voltage,

wherein the driving circuit includes an emission transistor that is turned on while the emission signal has the high level, and

wherein an emission time of the light emitting element starts at a start time point of the sweep period, and ends when a voltage level of the ramp voltage becomes equal to a voltage level of the data voltage.

20 . The electronic device of claim 1 , wherein the initialization circuit includes:

the first initialization transistor including a first initialization transistor gate for receiving the enable signal, a first initialization transistor first terminal for receiving the first initialization voltage, and a first initialization transistor second terminal connected to the first node; and

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to the second node,

wherein the data writing circuit includes:

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node; and

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage,

wherein the ramp generating circuit includes:

the ramp current source connected to a line for transferring a first power supply voltage;

the ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the ramp current source, and a ramp enable transistor second terminal connected to the first node; and

the ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage,

wherein the comparator includes a comparator positive input terminal connected to the second node, a comparator negative input terminal connected to the first node, and a comparator output terminal for outputting the emission signal,

wherein the driving circuit includes:

a first driving enable transistor including a first driving enable transistor gate for receiving the enable signal, a first driving enable transistor first terminal, and a first driving enable transistor second terminal;

an emission transistor including a emission transistor gate for receiving the emission signal, a emission transistor first terminal connected to the first driving enable transistor second terminal, and a emission transistor second terminal;

a second driving enable transistor including a second driving enable transistor gate for receiving an inverted enable signal, a second driving enable transistor first terminal connected to the emission transistor second terminal, and a second driving enable transistor second terminal; and

a constant current source connected between the second driving enable transistor second terminal and a line for transferring a second power supply voltage, and

wherein the light emitting element includes a light emitting element anode connected to the line for transferring the first power supply voltage, and a light emitting element cathode connected to the first driving enable transistor first terminal.

21 . The electronic device of claim 1 , wherein the ramp voltage gradually decreases in a sweep period in which the enable signal has a high level,

wherein the comparator generates the emission signal having a low level when the ramp voltage is lower than the data voltage,

wherein the driving circuit includes an emission transistor that is turned on while the emission signal has the low level, and

wherein an emission time of the light emitting element starts when a voltage level of the ramp voltage becomes equal to a voltage level of the data voltage, and ends at an end time point of the sweep period.

22 . The electronic device of claim 1 , wherein the initialization circuit includes:

the first initialization transistor including a first initialization transistor gate for receiving the enable signal, a first initialization transistor first terminal for receiving the first initialization voltage, and a first initialization transistor second terminal connected to the first node; and

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to the second node,

wherein the data writing circuit includes:

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node; and

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage,

wherein the ramp generating circuit includes:

the ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the first node, and a ramp enable transistor second terminal;

the ramp current source connected between the ramp enable transistor second terminal and a line for transferring a second power supply voltage; and

the ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage,

wherein the comparator includes a comparator positive input terminal connected to the first node, a comparator negative input terminal connected to the second node, and a comparator output terminal for outputting the emission signal,

wherein the driving circuit includes:

a constant current source connected to a line for transferring a first power supply voltage; and

an emission transistor including a emission transistor gate for receiving the emission signal, a emission transistor first terminal connected to the constant current source, and a emission transistor second terminal, and

wherein the light emitting element includes a light emitting element anode connected to the emission transistor second terminal, and a light emitting element cathode connected to the line for transferring the second power supply voltage.

23 . The electronic device of claim 22 , wherein a frame period includes:

an initialization period in which the initialization signal has a high level, and the enable signal and the writing signal have a low level;

a data writing period in which the writing signal has the high level, and the enable signal and the initialization signal have the low level; and

a sweep period in which the enable signal has the high level, and the initialization signal and the writing signal have the low level,

wherein, in the initialization period, the first initialization transistor provides the first initialization voltage to the first node in response to the enable signal having the low level, and the second initialization transistor provides the second initialization voltage to the second node in response to the initialization signal having the high level,

wherein, in the data write period, the first data writing transistor provides the data voltage to the second node in response to the writing signal having the high level, the second data writing transistor provides the data voltage to the second node in response to the inverted writing signal having the low level, and the storage capacitor stores the data voltage at the second node, and

wherein, in the sweep period, the ramp enable transistor provides a ramp current generated by the ramp current source to the ramp capacitor in response to the enable signal having the high level, the ramp capacitor provides the first node with the ramp voltage, wherein the ramp voltage gradually decreases from the first initialization voltage based on the ramp current, the comparator generates the emission signal having the low level during an emission time from a time point at which the ramp voltage becomes the data voltage to an end time point of the sweep period, the emission transistor is turned on in response to the emission signal having the low level during the emission time, and the light emitting element emits light based on the constant current generated by the constant current source during the emission time.

24 . The electronic device of claim 1 , wherein the ramp voltage gradually decreases in a sweep period in which the enable signal has a high level,

wherein the comparator generates the emission signal having the high level when the ramp voltage is lower than the data voltage,

wherein the driving circuit includes an emission transistor that is turned on while the emission signal has the high level, and

wherein an emission time of the light emitting element starts when a voltage level of the ramp voltage becomes equal to a voltage level of the data voltage, and ends at an end time point of the sweep period.

25 . The electronic device of claim 1 , wherein the initialization circuit includes:

a first initialization transistor including a first initialization transistor gate for receiving the enable signal, a first initialization transistor first terminal for receiving the first initialization voltage, and a first initialization transistor second terminal connected to the first node; and

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to the second node,

wherein the data writing circuit includes:

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node; and

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage,

wherein the ramp generating circuit includes:

the ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the first node, and a ramp enable transistor second terminal;

the ramp current source connected between the ramp enable transistor second terminal and a line for transferring a second power supply voltage; and

the ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage, wherein the comparator includes a comparator positive input terminal connected to the second node, a comparator negative input terminal connected to the first node, and a comparator output terminal for outputting the emission signal,

wherein the driving circuit includes:

an emission transistor including a emission transistor gate for receiving the emission signal, a emission transistor first terminal, and a emission transistor second terminal; and

a constant current source connected between the emission transistor second terminal and the line for transferring the second power supply voltage, and

wherein the light emitting element includes a light emitting element anode connected to a line for transferring a first power supply voltage, and a light emitting element cathode connected to the emission transistor first terminal.

26 . The electronic device of claim 1 , wherein the ramp voltage gradually increases in a sweep period in which the enable signal has a low level,

wherein the comparator generates the emission signal having the low level when the ramp voltage is higher than the data voltage,

wherein the driving circuit includes an emission transistor that is turned on while the emission signal has the low level, and

wherein an emission time of the light emitting element starts when a voltage level of the ramp voltage becomes equal to a voltage level of the data voltage, and ends at an end time point of the sweep period.

27 . The electronic device of claim 1 , wherein the initialization circuit includes:

the first initialization transistor including a first initialization transistor gate for receiving the enable signal, a first initialization transistor first terminal for receiving the first initialization voltage, and a first initialization transistor second terminal connected to the first node; and

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to the second node,

wherein the data writing circuit includes:

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node; and

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage,

wherein the ramp generating circuit includes:

the ramp current source connected to a line for transferring a first power supply voltage;

the ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the ramp current source, and a ramp enable transistor second terminal connected to the first node; and

the ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage,

wherein the comparator includes a comparator positive input terminal connected to the second node, a comparator negative input terminal connected to the first node, and a comparator output terminal for outputting the emission signal,

wherein the driving circuit includes:

a constant current source connected to the line for transferring the first power supply voltage; and

an emission transistor including a emission transistor gate for receiving the emission signal, a emission transistor first terminal connected to the constant current source, and a emission transistor second terminal, and

wherein the light emitting element includes a light emitting element anode connected to the emission transistor second terminal, and a light emitting element cathode connected to a line for transferring a second power supply voltage.

28 . The display device of claim 1 , wherein the ramp voltage gradually increases in a sweep period in which the enable signal has a low level,

wherein the comparator generates the emission signal having a high level when the ramp voltage is higher than the data voltage,

wherein the driving circuit includes an emission transistor that is turned on while the emission signal has the high level, and

wherein an emission time of the light emitting element starts when a voltage level of the ramp voltage becomes equal to a voltage level of the data voltage, and ends at an end time point of the sweep period.

29 . The display device of claim 1 , wherein the initialization circuit includes:

the first initialization transistor including a first initialization transistor gate for receiving the enable signal, a first initialization transistor first terminal for receiving the first initialization voltage, and a first initialization transistor second terminal connected to the first node; and

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to the second node,

wherein the data writing circuit includes:

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node; and

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage,

wherein the ramp generating circuit includes:

the ramp current source connected to a line for transferring a first power supply voltage;

the ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the ramp current source, and a ramp enable transistor second terminal connected to the first node; and

the ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage,

wherein the comparator includes a comparator positive input terminal connected to the first node, a comparator negative input terminal connected to the second node, and a comparator output terminal for outputting the emission signal,

wherein the driving circuit includes:

an emission transistor including a emission transistor gate for receiving the emission signal, a emission transistor first terminal, and a emission transistor second terminal; and

a constant current source connected between the emission transistor second terminal and a line for transferring a second power supply voltage, and

wherein the light emitting element includes a light emitting element anode connected to the line for transferring the first power supply voltage, and a light emitting element cathode connected to the emission transistor first terminal.

30 . An electronic device including a plurality of pixels, each of the plurality of pixels comprising:

a first initialization transistor including a first initialization transistor gate for receiving an enable signal, a first initialization transistor first terminal for receiving a first initialization voltage, and a first initialization transistor second terminal connected to a first node;

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to a second node;

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node;

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage;

a ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the first node, and a ramp enable transistor second terminal;

a ramp current source connected between the ramp enable transistor second terminal and a line for transferring a second power supply voltage;

a ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage;

a comparator including a comparator positive input terminal connected to the second node, a comparator negative input terminal connected to the first node, and a comparator output terminal for outputting an emission signal;

a constant current source connected to a line for transferring a first power supply voltage;

a first driving enable transistor including a first driving enable transistor gate for receiving an inverting enable signal, a first driving enable transistor first terminal connected to the constant current source, and a first driving enable transistor second terminal;

an emission transistor including a emission transistor gate for receiving the emission signal, a emission transistor first terminal connected to the first driving enable transistor second terminal, and a emission transistor second terminal;

a second driving enable transistor including a second driving enable transistor gate for receiving the enable signal, a second driving enable transistor first terminal connected to the emission transistor second terminal, and a second driving enable transistor second terminal; and

a light emitting element including a light emitting element anode connected to the second driving enable transistor second terminal, and a light emitting element cathode connected to the line for transferring the second power supply voltage.

31 . An electronic device including a plurality of pixels, each of the plurality of pixels comprising:

a first initialization transistor including a first initialization transistor gate for receiving an enable signal, a first initialization transistor first terminal for receiving a first initialization voltage, and a first initialization transistor second terminal connected to a first node;

a second initialization transistor including a second initialization transistor gate for receiving an initialization signal, a second initialization transistor first terminal for receiving a second initialization voltage, and a second initialization transistor second terminal connected to a second node;

a first data writing transistor including a first data writing transistor gate for receiving a writing signal, a first data writing transistor first terminal connected to a data line, and a first data writing transistor second terminal connected to the second node;

a second data writing transistor including a second data writing transistor gate for receiving an inverted writing signal, a second data writing transistor first terminal connected to the data line, and a second data writing transistor second terminal connected to the second node;

a storage capacitor including a storage capacitor first electrode connected to the second node, and a storage capacitor second electrode for receiving a ground voltage;

a ramp enable transistor including a ramp enable transistor gate for receiving the enable signal, a ramp enable transistor first terminal connected to the first node, and a ramp enable transistor second terminal;

a ramp current source connected between the ramp enable transistor second terminal and a line for transferring a second power supply voltage;

a ramp capacitor including a ramp capacitor first electrode connected to the first node, and a ramp capacitor second electrode for receiving the ground voltage;

a comparator including a comparator positive input terminal connected to the first node, a comparator negative input terminal connected to the second node, and a comparator output terminal for outputting an emission signal;

a constant current source connected to a line for transferring a first power supply voltage;

an emission transistor including a emission transistor gate for receiving the emission signal, a emission transistor first terminal connected to the constant current source, and a emission transistor second terminal; and

a light emitting element including a light emitting element anode connected to the emission transistor second terminal, and a light emitting element cathode connected to the line for transferring the second power supply voltage.