Abstract:
An organic light-emitting display device including a plurality of pixels. Each of the pixels includes an organic light-emitting diode (OLED), a driving transistor, which has a control electrode connected to a first node, an input electrode connected to a second node, and an output electrode connected to the third node and provides a driving current to the OLED in accordance with a voltage of the control electrode, a sustain capacitor, which is connected to the first node, a first transistor, which controls whether the first and third nodes are to be connected, and a compensation transistor, which has both an input electrode and an output electrode connected to the first node.
Abstract:
A pixel includes a driving transistor connected to an organic light emitting diode. The circuit places the driving transistor in an on-biased state based on first and second scan signals which at least partially overlap during a time when an organic light emitting diode does not emit light. The first and scan signals are received from different scan lines. The scan lines may be adjacent scan lines.
Abstract:
An organic light emitting display device includes a display panel including a plurality of scan lines, a plurality of data lines, a plurality of emission lines, and a plurality of pixels, a scan driver configured to provide a scan signal to the pixels via the scan lines, a data driver configured to provide a data signal to the pixels via the data lines, an emission driver including a plurality of emission stages for providing an emission signal to the pixels via the emission lines, and a controller configured to control the scan driver, the data driver, and the emission driver, wherein each of the emission stages includes a plurality of sub-stages dependently connected to each other, and wherein one of the sub-stages is configured to output the emission signal to one of the emission lines.
Abstract:
An organic light-emitting diode (OLED) display is disclosed. In one aspect, the display includes a display panel, a data driver, an emission control driver, a timing controller, a gate driver, an initialization driver, and a timing controller. The emission control driver is configured to sequentially apply an emission control signal to emission control lines, the emission control signal configured to determine a light emission period and a non-light emission period. The timing controller is configured to output a first start signal and a second start signal. The gate driver is configured to receive the first start signal from the timing controller, sequentially apply a gate initialization signal to gate initialization lines based on the first start signal, and sequentially apply a scan signal to the scan lines. The initialization driver is configured to receive the second start signal and sequentially apply an OLED initialization signal to the OLED initialization lines.
Abstract:
An array substrate and a display apparatus including the array substrate are provided. The array substrate includes a substrate divided into a display area and a peripheral area adjacent to the display area. A pixel array is formed on the substrate corresponding to the display area and receives a driving signal. A driving circuit includes a plurality of stages and is formed on the substrate corresponding to the peripheral area. Each of the stages includes a first transistor having a source electrode connected to an output terminal to output the driving signal, a channel layer formed between a gate insulating layer and the source electrode, the channel layer having an opening to facilitate contact between a portion of the gate insulating layer and the source electrode, and a capacitor defined by a gate electrode of the first transistor, the source electrode, and the gate insulating layer contacting the source electrode.