Liquid crystal display device capable of reducing power consumption without degrading display quality and method of driving the same
In a first transition period during which an operation mode transitions from a normal mode to a low power consumption mode, a VCOM generation unit in a power source IC changes a potential of a common electrode drive voltage VCOM from a potential of a first level (for example, 5 V) to a potential of a second level (for example, 12 V) so that a leakage current flowing through a pixel transistor is not generated during a pause period, a gate driver changes a potential of each gate bus line to 0 V, and a source driver changes a potential of each source bus line to 0 V.
1 . A liquid crystal display device capable of switching an operation mode between a normal mode and a low power consumption mode, the liquid crystal display device comprising:
a plurality of scanning signal lines;
a plurality of video signal lines intersecting the plurality of scanning signal lines;
a plurality of pixel forming portions, each connected to one of the plurality of scanning signal lines and one of the plurality of video signal lines;
a scanning signal line drive circuit configured to drive the plurality of scanning signal lines;
a video signal line drive circuit configured to drive the plurality of video signal lines;
a common electrode provided in common to the plurality of pixel forming portions; and
a power source circuit configured to generate a first power source voltage to be supplied to the common electrode,
wherein each of the plurality of pixel forming portions includes:
a pixel electrode,
a pixel transistor including a control terminal connected to one of the plurality of scanning signal lines, a first conduction terminal connected to one of the plurality of video signal lines, and a second conduction terminal connected to the pixel electrode,
the common electrode, and
a liquid crystal capacitance formed by the pixel electrode and the common electrode,
a period during which the operation mode is set to be the low power consumption mode includes a rewrite period, during which a video signal is written to the liquid crystal capacitance, and a pause period, during which a video signal is not written to the liquid crystal capacitance,
in a first transition period during which the operation mode transitions from the normal mode to the low power consumption mode:
the video signal line drive circuit changes potentials of the plurality of video signal lines to 0 V in a state in which each of potentials of the plurality of scanning signal lines is at a predetermined off level,
the power source circuit changes a potential of the first power source voltage from first level to a second level so that a leakage current flowing through the pixel transistor is not generated during the pause period, and
the scanning signal line drive circuit changes the potentials of the plurality of scanning signal lines from the predetermined off level to 0 V,
in a second transition period during which the operation mode transitions from the low power consumption mode to the normal mode:
the scanning signal line drive circuit changes the potentials of the plurality of scanning signal lines from 0 V to the predetermined off level, and
the power source circuit changes the potential of the first power source voltage from the second level to the first level,
a start point of the first transition period is an end point of a period, during which the operation mode is set to be the normal mode,
an end point of the first transition period is a start point of the period, during which the operation mode is set to be the low power consumption mode,
a start point of the second transition period is an end point of the period, during which the operation mode is set to be the low power consumption mode, and
an end point of the second transition period is a start point of the period, during which the operation mode is set to be the normal mode.
2 . The liquid crystal display device according to claim 1 ,
wherein, during the pause period, the plurality of video signal lines is maintained in a high impedance state, and a power source of the video signal line drive circuit is maintained in an OFF state.
3 . The liquid crystal display device according to claim 2 ,
wherein the power source circuit is further configured to:
generate a second power source voltage to be supplied to the video signal line drive circuit, and
pause the generation of the second power source voltage during the pause period.
4 . The liquid crystal display device according to claim 1 ,
wherein the scanning signal line drive circuit is monolithically formed on a substrate, and
a potential of a scanning control signal for controlling an operation of the scanning signal line drive circuit is maintained at 0 V during the pause period.
5 . The liquid crystal display device according to claim 4 , further comprising:
a level shifter circuit configured to generate the scanning control signal,
wherein a power source of the level shifter circuit is maintained in an OFF state during the pause period.
6 . The liquid crystal display device according to claim 5 ,
wherein the power source circuit is further configured to:
generate a second power source voltage to be supplied to the level shifter circuit, and
pause the generation of the second power source voltage during the pause period.
7 . The liquid crystal display device according to claim 1 ,
wherein the scanning signal line drive circuit is provided in a form of an integrated circuit chip, and
a potential of a scanning control signal for controlling an operation of the scanning signal line drive circuit is maintained at 0 V during the pause period.
8 . The liquid crystal display device according to claim 7 , further comprising:
a timing control circuit configured to generate the scanning control signal,
wherein a power source of the timing control circuit is maintained in an OFF state during the pause period.
9 . The liquid crystal display device according to claim 7 ,
wherein the power source circuit is further configured to:
generate a second power source voltage to be supplied to the scanning signal line drive circuit, and
pause the generation of the second power source voltage during the pause period.
10 . The liquid crystal display device according to claim 1 ,
wherein, during the first transition period, the power source circuit changes the potential of the first power source voltage from the first level to the second level, and thereafter, the scanning signal line drive circuit changes the potentials of the plurality of scanning signal lines from the predetermined off level to 0 V.
11 . The liquid crystal display device according to claim 1 ,
wherein, during the second transition period, the scanning signal line drive circuit changes the potentials of the plurality of scanning signal lines from 0 V to the predetermined off level, and thereafter, the power source circuit changes the potential of the first power source voltage from the second level to the first level.
12 . The liquid crystal display device according to claim 1 ,
wherein the pixel transistor is a thin film transistor in which a channel layer is formed of an oxide semiconductor, the oxide semiconductor being indium gallium zinc oxide containing indium (In), gallium (Ga), zinc (Zn), and oxygen (O) as main components.
13 . The liquid crystal display device according to claim 1 ,
wherein the pixel transistor is a thin film transistor having a dual-gate structure in which two transistors are connected in series.
14 . The liquid crystal display device according to claim 1 ,
wherein the pixel transistor is a thin film transistor having a double-gate structure including a top gate and a back gate as the control terminal.
15 . The liquid crystal display device according to claim 1 ,
wherein a variation range of the potential of the first power source voltage from the first level to the second level in the first transition period is equal to a variation range of the potentials of the plurality of scanning signal lines from the predetermined off level to 0 V in the first transition period.
16 . A method of driving a liquid crystal display device capable of switching an operation mode between a normal mode and a low power consumption mode,
the liquid crystal display device including:
a plurality of scanning signal lines,
a plurality of video signal lines intersecting the plurality of scanning signal lines,
a plurality of pixel forming portions, each connected to one of the plurality of scanning signal lines and one of the plurality of video signal lines,
a scanning signal line drive circuit configured to drive the plurality of scanning signal lines,
a video signal line drive circuit configured to drive the plurality of video signal lines,
a common electrode provided in common to the plurality of pixel forming portions, and
a power source circuit configured to generate a first power source voltage to be supplied to the common electrode,
wherein:
each of the plurality of pixel forming portions includes:
a pixel electrode,
a pixel transistor including a control terminal connected to one of the plurality of scanning signal lines, a first conduction terminal connected to one of the plurality of video signal lines, and a second conduction terminal connected to the pixel electrode,
the common electrode, and
a liquid crystal capacitance formed by the pixel electrode and the common electrode,
a period during which the operation mode is set to be the low power consumption mode includes a rewrite period, during which a video signal is written to the liquid crystal capacitance, and a pause period, during which a video signal is not written to the liquid crystal capacitance,
the driving method comprising:
causing the operation mode to transition from the normal mode to the low power consumption mode; and
causing the operation mode to transition from the low power consumption mode to the normal mode,
wherein causing the operation mode to transition from the normal mode to the low power consumption mode includes:
causing the video signal line drive circuit to change potentials of the plurality of video signal lines to 0 V in a state in which each of potentials of the plurality of scanning signal lines is at a predetermined off level,
causing the power source circuit to change the potential of the first power source voltage from a first level to a second level so that a leakage current flowing through the pixel transistor is not generated during the pause period, and
causing the scanning signal line drive circuit to change the potentials of the plurality of scanning signal lines from the predetermined off level to 0 V, and
causing the operation mode to transition from the low power consumption mode to the normal mode includes:
causing the power source circuit to change the potential of the first power source voltage from the second level to the first level, and
causing the scanning signal line drive circuit to change the potentials of the plurality of scanning signal lines from 0 V to the predetermined off level, and
wherein a start point of a first period, during which causing the operation mode to transition from the normal mode to the low power consumption mode is performed, is an end point of a period, during which the operation mode is set to be the normal mode,
an end point of the first period is a start point of the period, during which the operation mode is set to be the low power consumption mode,
a start point of a second period, during which causing the operation mode to transition from the low power consumption mode to the normal mode is performed, is an end point of the period, during which the operation mode is set to be the low power consumption mode, and
an end point of the second period is a start point of the period, during which the operation mode is set to be the normal mode.