Abstract:
The present disclosure provides an electroluminescence display comprising: a first substrate; subpixels arranged on the first substrate; and repair lines located on the first substrate, one for at least every two subpixels that emit light of the same color and are adjacent to each other, wherein the repair lines comprise one side having a contact point with an electrode of a first subpixel and the other side having a non-contact point with an electrode of a second subpixel.
Abstract:
An organic light emitting display device is discussed. The organic light emitting display device includes a driving thin film transistor including an active layer and a gate electrode; a storage capacitor including a first electrode and a second electrode; a first pattern electrode including the gate electrode and the first electrode; an anode disposed on the driving thin film transistor and the storage capacitor; a second pattern electrode connected with an anode contact part which connects an output electrode connected with the active layer and the anode; and a patterned semiconductor layer including the active layer having a semiconductive characteristic and a shield unit having a conductive characteristic.
Abstract:
A see-through organic light emitting display device including a light emitting region having a transparent anode, an organic light emitting layer, and a transparent cathode, and a see-through region having a transparent auxiliary electrode, which is configured to transmit external light. The transparent auxiliary electrode can be made from the same material as the transparent anode and separated from the transparent anode, and the transparent cathode extends into the see-through region so as to be electrically connected with the transparent auxiliary electrode.
Abstract:
Provided is an organic light emitting display device. The organic light emitting display device includes: a plurality of sub-pixels including an anode and a cathode; an anode line configured to supply an anode voltage to the anode; and a cathode line configured to supply a cathode voltage to the cathode, and in each of the plurality of sub-pixels, a direction of an anode voltage input of the anode line and a direction of a cathode voltage input of the cathode line are different from each other and face each other in order to reduce a deviation in a potential difference between the anode and the cathode. Thus, it is possible to improve uniformity in the potential difference between the anode and the cathode caused by a line resistance.
Abstract:
A display device and method of forming a display device are provided. A display device includes: a first auxiliary electrode coupled to a first power voltage supply line; a second auxiliary electrode coupled to a second power voltage supply line with a first link electrode; an active area, comprising: scan lines; data lines; first voltage lines; second voltage lines; and pixels; and a display drive circuit configured to supply data voltages to data links coupled to the data lines, wherein the first auxiliary electrode, the second auxiliary electrode, the first power voltage supply line, the second power voltage supply line, the data links, and the display drive circuit being in a bezel area corresponding to an area outside the active area, the second auxiliary electrode being between the first auxiliary electrode and the active area, the first auxiliary electrode being between the second auxiliary electrode and the display drive circuit.