Abstract:
The present disclosure relates to a power supply device including a gate driving circuit configured to supply gate signals to a plurality of gate lines, a first power supply circuit configured to supply a first initialization voltage having a voltage level between a first voltage level and a second voltage level to a plurality of first initialization power lines, the first initialization voltage having the first voltage level in a first period, a third voltage level between the first and second voltage levels in a second period, and the second voltage level in a third period, and a second power supply circuit configured to supply a driving voltage to a plurality of driving power lines among the plurality of power lines, and a display device including the power supply device.
Abstract:
A display device is disclosed. The display device comprises a display panel including an optical area and a normal area in a display area, and an optical electronic device overlapping at least a portion of the optical area. Two or more subpixels and a lower shield metal may be disposed in a non-transmission area between adjacent transmission areas in the optical area. In the non-transmission area of the optical area, the lower shield metal may include at least one opening overlapping all or a portion of a specific transistor among two or more transistors included in each of the two or more subpixels disposed in the non-transmission area in the optical area.
Abstract:
The present disclosure relates to a display apparatus. The display apparatus includes a plurality of light-transmitting areas disposed between the plurality of pixels. The light-transmitting area is formed between structures disposed in the light-emitting area adjacent to the light-transmitting area, and the structure physically disconnects a cathode layer of the light-emitting area and a cathode layer of the light-transmitting area. The cathode layer may be patterned in the light-transmitting area. Accordingly, when patterning is performed with a laser, it is possible to prevent the edge of the cathode layer from being curled in the outer portion of the light-transmitting area. In addition, it is possible to pattern with low energy and solve the damage due to thermal energy of the laser beam by preventing heat conduction to the light-emitting area of the light-emitting device layer. Further, it is possible to improve the reliability by blocking the moisture permeable path.
Abstract:
Discussed is a display device including a substrate, a circuit element on the substrate, a light emitting element electrically connected to the circuit element and including a first electrode, a light emitting layer, and a second electrode. A bank can define the emission area where the first electrode is exposed, and define the non-emission area where the bank is located, a taper pattern can be on the substrate and interposed between the circuit element and the bank at the non-emission area. The bank can include an incline extending from an edge of the emission area to a predetermined distance into the non-emission area, the incline of the bank defining a taper area, and the taper pattern can be adjacent to or overlap the taper area.
Abstract:
A display panel of a display device includes a display area including a first optical area overlapping with a first optical electronic device and a normal area located outside of the first optical area, the first optical area includes a plurality of light emitting areas and a plurality of first transmission areas, and the normal area may include a plurality of light emitting areas, a plurality of signal lines may include a first horizontal line including a first optical horizontal line portion disposed in the first optical area, and a non-optical horizontal line portion disposed in the normal area, and a second horizontal line disposed in the normal area without being disposed in the first optical area, a first outer horizontal line portion disposed in an outer area in the first optical area has a greater length per unit area compared to other portions thereof, or a width of all or a portion of the first horizontal line may be smaller than a width of the second horizontal line, thereby compensating for an RC load difference between the horizontal lines.
Abstract:
Disclosed are a shift register and a flat panel display device. The shift register includes a plurality of stages that supply a gate-on voltage pulse to a plurality of gate lines formed in a display panel. Each of the stages includes a pull-up transistor configured to supply one of a plurality of clock signals to an output node according to a voltage of a first node, a pull-down transistor configured to supply a gate-off voltage to the output node according to a voltage of a second node, a node controller configured to control the voltages of the first and second nodes on the basis of a gate start signal, and a switching unit connected to at least two gate lines adjacent to the output node, and configured to sequentially supply gate-on voltage pulses having different pulse widths to the at least two adjacent gate lines using the clock signal.
Abstract:
The present disclosure provides a display device including a plurality of subpixels disposed in a display area for displaying images, each of the subpixels including a light emitting element, a driving transistor for driving the light emitting element. The display area may include a first area, a second area surrounding the first area, and a third area between the first area and the second area. First, second, and third subpixels among the plurality of subpixels are disposed in the first, second, and third areas, respectively. When first data corresponding to the first subpixel is equal to second data corresponds to the second subpixel, the luminance of the first subpixel may be greater than the luminance of the second subpixel.
Abstract:
An electroluminescent display device having a plurality of pixels is disclosed. Each pixel includes a driving transistor having a gate connected to a first node, a source connected to a third node, and a drain connected to a fourth node, the driving transistor generating pixel current corresponding to a data voltage when a high-level source voltage is applied to the third node, a light emitting element connected between the fourth node and an input terminal for a low-level source voltage, an internal compensator controlling voltages of the first to fourth nodes in accordance with operations of a plurality of switching transistors in an initialization period, a data writing period and an emission period, and a refresh transistor configured to apply the high-level source voltage to the second node in accordance with a scan signal in a refresh period preceding an initialization period.
Abstract:
Disclosed is a shift register including stages for sequentially outputting output pulses including carry and scan pulses. Odd-numbered stages supply corresponding scan pulses to odd-numbered gate lines in a sequential manner, and even-numbered stages supply corresponding scan pulses to even-numbered gate lines in a sequential manner. Each stage includes a carry output unit for generating a carry pulse, based on a first discharge voltage and a clock pulse having a low-level voltage equal to the first discharge voltage, and supplying the carry pulse to at least one of upstream and downstream stages, and a scan output unit for generating a scan pulse, based on a second discharge voltage having a higher voltage than the first discharge voltage and the clock pulse, and supplying the scan pulse to a corresponding gate line.
Abstract:
The present disclosure provides a display device that by including a spacer located outside of a first transmission area and located on a bank, enables a second electrode to be easily opened in the first transmission area using a sacrificial layer, and thereby, is capable of improving the transmittance of the first transmission area and preventing a decrease in the transmittance due to a residue remaining in the transmission area in the process of forming an opening of the second electrode, and a method of manufacturing the display device.