Pixel circuit and display device having the same
A pixel circuit includes a voltage applier which generates an alternating control voltage based on a data voltage and a sweep voltage, an alternating signal generator which outputs an alternating signal based on the alternating control voltage, an emission controller which applies a driving current to a light emitting element in response to an emission signal and the alternating signal, and the light emitting element connected to the emission controller.
1 . A pixel circuit comprising:
a voltage applier which generates an alternating control voltage based on a data voltage and a sweep voltage;
an alternating signal generator which outputs an alternating signal based on the alternating control voltage;
an emission controller which applies a driving current to a light emitting element in response to an emission signal and the alternating signal; and
the light emitting element connected to the emission controller,
wherein the alternating signal generator includes:
a first alternating signal control transistor which applies a voltage of an output node of a ring oscillator to an input node of the ring oscillator in response to the alternating control voltage;
the ring oscillator which outputs the alternating signal; and
a second alternating signal control transistor which applies a low voltage to the ring oscillator in response to the alternating control voltage.
2 . The pixel circuit of claim 1 , wherein the ring oscillator includes odd number of inverter circuits.
3 . The pixel circuit of claim 2 , wherein the inverter circuits include:
a first inverter transistor including a control electrode connected to the first alternating signal control transistor and the second alternating signal control transistor, a first electrode which receives a high voltage and a second electrode connected to a first electrode of a second inverter transistor; and
the second inverter transistor including a control electrode connected to the first alternating signal control transistor and the second alternating signal control transistor, the first electrode connected to the second electrode of the first inverter transistor and a second electrode which receives the low voltage.
4 . The pixel circuit of claim 1 , wherein the first alternating signal control transistor includes a control electrode connected to the voltage applier, a first electrode connected to the output node and a second electrode connected to the input node, and
wherein the second alternating signal control transistor includes a control electrode connected to the voltage applier, a first electrode connected to the input node and a second electrode connected to the low voltage.
5 . The pixel circuit of claim 1 , wherein the voltage applier includes:
a first transistor including a control electrode which receives a write gate signal, a first electrode which receives the data voltage, and a second electrode connected to a first node;
a second transistor including a control electrode connected to the first node, a first electrode which receives a reference voltage and a second electrode connected to a second node;
a third transistor including a control electrode which receives an initialization gate signal, a first electrode connected to the second node and a second electrode connected to the alternating signal generator; and
a first capacitor including a first electrode which receives the sweep voltage and a second electrode connected to the first node.
6 . The pixel circuit of claim 5 , wherein during a sweep voltage applying period, the sweep voltage is linearly increased, and
wherein the second transistor is an N-type transistor.
7 . The pixel circuit of claim 5 , wherein during a sweep voltage applying period, the sweep voltage is linearly decreased, and
wherein the second transistor is a P-type transistor.
8 . The pixel circuit of claim 5 , wherein the voltage applier further includes a hold capacitor including a first electrode connected to the second node and a second electrode connected to the second electrode of the third transistor.
9 . The pixel circuit of claim 5 , wherein a frame period during which the pixel circuit is driven includes a first period and a second period, and
wherein in the first period, the initialization gate signal has an activation level, the write gate signal has an inactivation level, such that the third transistor is turned on and the first transistor is turned off.
10 . The pixel circuit of claim 9 , wherein in the second period following the first period, the initialization gate signal has an inactivation level, the write gate signal has an activation level, such that the first transistor is turned on and the third transistor is turned off.
11 . The pixel circuit of claim 5 , wherein a frame period during which the pixel circuit is driven includes a first period, and
wherein in the first period, the initialization gate signal has an activation level, the write gate signal has an activation level, such that the first transistor is turned on and the third transistor is turned on.
12 . The pixel circuit of claim 1 , wherein the emission controller includes:
a first emission control transistor including a first electrode which receives the emission signal, a first electrode which receives a first power voltage and a second electrode connected to a fifth node; and
a driving transistor including a control electrode connected to the alternating signal generator, a first electrode connected to the fifth node and a second electrode connected to the light emitting element.
13 . A display device comprising:
a display panel including a pixel circuit;
a data driver which applies a data voltage to the display panel;
a gate driver which outputs a gate signal to the display panel;
a sweep voltage generator which applies a sweep voltage to the display panel; and
an emission driver which applies an emission signal to the display panel,
wherein the pixel circuit includes:
a voltage applier which generates an alternating control voltage based on the data voltage and the sweep voltage;
an alternating signal generator which outputs an alternating signal based on the alternating control voltage;
an emission controller which applies a driving current to a light emitting element in response to the emission signal and the alternating signal; and
the light emitting element connected to the emission controller, and wherein the alternating signal generator includes:
a first alternating signal control transistor which applies a voltage of an output node of a ring oscillator to an input node of the ring oscillator in response to the alternating control voltage;
the ring oscillator which outputs the alternating signal; and
a second alternating signal control transistor which applies a low voltage to the ring oscillator in response to the alternating control voltage.
14 . The display device of claim 13 , wherein the ring oscillator includes odd number of inverter circuits, and
wherein the inverter circuits include a first inverter transistor including a control electrode connected to the first alternating signal control transistor and the second alternating signal control transistor, a first electrode which receives a high voltage and a second electrode connected to a first electrode of a second inverter transistor, and a second inverter transistor including a control electrode connected to the first alternating signal control transistor and the second alternating signal control transistor, the first electrode connected to the second electrode of the first inverter transistor and a second electrode which receives the low voltage.
15 . The display device of claim 13 , wherein the first alternating signal control transistor includes a control electrode connected to the voltage applier, a first electrode connected to the output node and a second electrode connected to the input node, and
wherein the second alternating signal control transistor includes a control electrode connected to the voltage applier, a first electrode connected to the input node and a second electrode connected to the low voltage.
16 . The display device of claim 13 , wherein the alternating signal generator includes:
a first inverter transistor including a control electrode connected to the input node, a first electrode which receives the high voltage and a second electrode connected to a sixth node;
a second inverter transistor including a control electrode connected to the input node, a first electrode connected to the sixth node and a second electrode which receives the low voltage;
a third inverter transistor including a control electrode connected to the sixth node, a first electrode which receives the high voltage and a second electrode connected to a seventh node;
a fourth inverter transistor including a control electrode connected to the sixth node, a first electrode connected to the seventh node and a second electrode which receives the low voltage;
a fifth inverter transistor including a control electrode connected to the seventh node, a first electrode which receives the high voltage and a second electrode connected to the output node; and
a sixth inverter transistor including a control electrode connected to the seventh node, a first electrode connected to the output node and a second electrode which receives the low voltage.
17 . An electronic device comprising:
a display panel including a pixel circuit;
a data driver which applies a data voltage to the display panel;
a gate driver which outputs a gate signal to the display panel;
a sweep voltage generator which applies a sweep voltage to the display panel;
an emission driver which applies an emission signal to the display panel;
a driving controller which controls the data driver, the gate driver, the sweep voltage generator and the emission driver based on an input control signal; and
a processor which outputs the input control signal,
wherein the pixel circuit includes:
a voltage applier which generates an alternating control voltage based on the data voltage and the sweep voltage;
an alternating signal generator which outputs an alternating signal based on the alternating control voltage;
an emission controller which applies a driving current to a light emitting element in response to the emission signal and the alternating signal; and
the light emitting element connected to the emission controller, and wherein the alternating signal generator includes:
a first alternating signal control transistor which applies a voltage of an output node of a ring oscillator to an input node of the ring oscillator in response to the alternating control voltage;
the ring oscillator which outputs the alternating signal; and
a second alternating signal control transistor which applies a low voltage to the ring oscillator in response to the alternating control voltage.