DISPLAY DEVICE
To reduce the number of sub-frames and perform high resolution display with low power consumption, each of the pixels has a digital emission period Td and an analog emission period Ta, and is driven in a time-divided fashion in a digital manner or in an analog manner. Each of the pixels performs high resolution display when being driven in an analog manner, and performs display with low power consumption when being driven in a digital manner.
1 . An organic electroluminescent display having a maximum light emission intensity Imax, comprising:
a plurality of pixels disposed in an array;
a first power supply line and a second power supply line each of which is connected to all pixels of the plurality of pixels, and having a voltage difference V between the voltages of the first and second power supply lines;
each pixel comprising a driving transistor and an organic electroluminescent element connected in series between the first power supply line and the second power supply line;
driving circuitry operable to provide drive signals to the plurality of pixels;
wherein the drive signals have a frame-based time structure;
wherein V3 is the minimum magnitude of V for which the display could be operable at intensity Imax using only analog driven drive signals;
wherein each frame is subdivided into a plurality of N sub-frames, wherein N is an integer greater than two;
wherein V1 is the minimum magnitude of V for which the display could be operable at intensity Imax using only digitally driven sub-frames;
wherein the N sub-frames comprise two or more digitally driven sub-frames, and at least one analog driven sub-frame;
wherein the operating magnitude of V is V2, which is greater than V1 and less than V3;
whereby power consumption of the display is reduced compared to having only analog driven drive signals, and display resolution is improved compared to having N digitally driven sub-frames.
2 . The organic electroluminescent display of claim 1 , wherein the N sub-frames comprise three or more digitally driven sub-frames.
3 . The organic electroluminescent display of claim 1 , further comprising control circuitry for receiving input data, for dividing the input data into first data for a first analog driven sub-frame and second data for one or more second digitally driven sub-frames, and for providing the first and second data successively to the driving circuitry.
4 . The organic electroluminescent display of claim 3 , further comprising a memory for storing the second data during the first analog driven sub-frame.
5 . A method of operating an organic electroluminescent display having a plurality of pixels disposed in an array, a first power supply line and a second power supply line each of which is connected to all pixels of the plurality of pixels, and having a voltage difference V between the voltages of the first and second power supply lines, wherein each pixel comprises a driving transistor and an organic electroluminescent element connected in series between the first power supply line and the second power supply line, and wherein the organic electroluminescent display has a maximum light emission intensity Imax, the method comprising:
providing drive signals to the plurality of pixels;
wherein the drive signals have a frame-based time structure;
wherein V3 is the minimum magnitude of V for which the display could be operable at intensity Imax using only analog driven drive signals;
wherein each frame is subdivided into a plurality of N sub-frames, wherein N is an integer greater than two;
wherein V1 is the minimum magnitude of V for which the display could be operable at intensity Imax using only digitally driven sub-frames;
wherein the N sub-frames comprise two or more digitally driven sub-frames, and at least one analog driven sub-frame;
wherein the operating magnitude of V is V2, which is greater than V1 and less than V3;
whereby power consumption of the display is reduced compared to having only analog driven drive signals, and display resolution is improved compared to having N digitally driven sub-frames.
6 . The method of claim 5 , wherein the N sub-frames comprise three or more digitally driven sub-frames.