Scan driver
According to an embodiment, a scan driver includes a plurality of stages. An output controller of each of the stages includes a pull-down transistor, and the pull-down transistor includes a first gate and a second gate, where the first gate is electrically connected to a third control node or a node electrically connected to the third control node, and the second gate is connected to a third voltage input terminal to which a third voltage of a second voltage level is applied.
1 . A driver comprising a plurality of stages, wherein each of the plurality of stages comprises:
a first circuit configured to transmit a start signal to a first node in response to a first clock signal input to a first clock terminal;
a second circuit configured to control voltages of the first node and a second node to have different voltage levels from each other; and
a third circuit configured to output a first output signal in response to the voltages of the first node and the second node, and
wherein the third circuit comprises:
a first transistor connected between a first voltage input terminal to which a first voltage is applied and a first output terminal outputting the first output signal and to transmitting the first voltage to the first output terminal in response to a voltage of the second node; and
a second transistor connected between the first output terminal and a second clock terminal to which a second clock signal is applied and transmitting the second clock signal to the first output terminal in response to a voltage of the first node.
2 . The driver of claim 1 , wherein the first output signal is applied to a next stage for a start signal of the next stage.
3 . The driver of claim 1 , wherein each of the plurality of stages further comprising a capacitor connected between the first node and the first output terminal.
4 . The driver of claim 1 , wherein each of the plurality of stages further comprises a fourth circuit configured to output a second output signal in response to the first output signal, and
wherein the fourth circuit comprises:
a third transistor connected between the first voltage input terminal and a second output terminal outputting the second output signal and transmitting the first voltage to the second output terminal in response to the first output signal, and
a fourth transistor connected between the second output terminal and a second voltage input terminal to which a second voltage is applied and transmitting the second voltage to the second output terminal in response to the first output signal.
5 . The driver of claim 4 , wherein a channel type of the third transistor and a channel type of the fourth transistor are different from each other.
6 . The driver of claim 4 , wherein the third transistor is a P-channel transistor and a channel type of the fourth transistor is an N-channel transistor.
7 . The driver of claim 4 , wherein a voltage level of the second output signal is an inversion of a voltage level of the first output signal.
8 . The driver of claim 1 , wherein a channel type of the first transistor and a channel type of the second transistor are the same.
9 . The driver of claim 4 , wherein each of the first clock signal and the second clock signal is a signal repeating a first level voltage and a second level voltage, and each of the first voltage and the second voltage lower than the first voltage is a constant voltage.
10 . The driver of claim 9 , wherein the second clock signal is phase-shifted by a half period from the first clock signal.
11 . The driver of claim 1 , wherein the first circuit comprises a fifth transistor connected between an input terminal to which the start signal is applied and the first node.
12 . The driver of claim 11 , wherein the fifth transistor comprises a first sub-transistor and a second sub-transistor connected in series each other.
13 . The driver of claim 11 , wherein the first circuit further comprises a sixth transistor connected between the first transistor and the first node and configured to transmit the start signal to the first node in response to a second voltage input to a second voltage input terminal, the second voltage being lower than the first voltage.
14 . The driver of claim 1 , wherein the second circuit comprising:
a seventh transistor connected between the first voltage input terminal and the first node, a gate of the seventh transistor being connected to the second node;
an eighth transistor connected between the seventh transistor and the first node, a gate of the eighth transistor being connected to the second clock terminal;
a ninth transistor connected between the second node and the first clock terminal, a gate of the ninth transistor being connected to the first node; and
a tenth transistor connected between the second node and a second voltage input terminal to which a second voltage is applied, a gate of the tenth transistor being connected to the first clock terminal.
15 . The driver of claim 14 , wherein the second circuit further comprising a capacitor connected between the first voltage input terminal and the second node.
16 . An electronic apparatus comprising a display apparatus, wherein the display apparatus comprises:
a pixel unit comprising a plurality of pixels;
a driver comprising a plurality of stages configured to generate output signals in response to a control signal and sequentially transmit the generated output signals to the plurality of pixels; and
a controller configured to output the control signal generated based on signals input from the outside of the display apparatus, to the driver,
wherein each of the plurality of stages comprising:
a first circuit configured to transmit a start signal to a first node in response to a first clock signal input to a first clock terminal;
a second circuit configured to controls voltages of the first node and a second node to have different voltage levels each other; and
a third circuit configured to output a first output signal in response to the voltages of the first node and a second node, and
wherein the third circuit comprises:
a first transistor connected between a first voltage input terminal to which a first voltage is applied and a first output terminal outputting the first output signal and to transmitting the first voltage to the first output terminal in response to a voltage of the second node; and
a second transistor connected between the first output terminal and a second clock terminal to which a second clock signal is applied and transmitting the second clock signal to the first output terminal in response to a voltage of the first node.
17 . The electronic apparatus of claim 16 , wherein each of the plurality of stages further comprises a fourth circuit configured to output a second output signal in response to the first output signal, and
wherein the fourth circuit comprises:
a third transistor connected between the first voltage input terminal and a second output terminal outputting the second output signal and transmitting the first voltage to the second output terminal in response to the first output signal, and
a fourth transistor connected between the second output terminal and a second voltage input terminal to which a second voltage is applied and transmitting the second voltage to the second output terminal in response to the first output signal.
18 . The electronic apparatus of claim 17 , wherein the first output signal is applied to a next stage for a start signal of the next stage.
19 . The electronic apparatus claim 18 , wherein a channel type of the first transistor and a channel type of the second transistor are the same, and a channel type of the third transistor and a channel type of the fourth transistor are different from each other.
20 . The electronic apparatus of claim 16 , wherein the first circuit comprises a fifth transistor connected between an input terminal to which the start signal is applied and the first node, the fifth transistor comprising a first sub-transistor and a second sub-transistor connected in series each other.