Abstract:
A display apparatus includes a first substrate including a channel-forming area, a second substrate facing the first substrate, a thin-film transistor disposed on the first substrate, a pixel electrode electrically connected to the thin-film transistor, a gate line disposed on the first substrate and electrically connected to the thin-film transistor, a data line electrically connected to the thin-film transistor and divided into at least two portions such that the channel-forming area is disposed between the two portions of the data line, and a connection portion electrically connecting the two portions of the data line to each other, in which the thin-film transistor includes a gate electrode branched from the gate line and overlapping the channel-forming area, a semiconductor pattern overlapping the gate electrode and contacting the two portions of the data line so that the channel-forming area is disposed in the semiconductor pattern, and a drain electrode electrically connected to the pixel electrode and overlapping the semiconductor pattern.
Abstract:
A liquid crystal display panel includes a first substrate, a second substrate facing the first substrate, a plurality of first spacers disposed between the first and second substrates, and a plurality of second spacers disposed between the first and second substrates to maintain a cell gap between the first and second substrates in cooperation with the first spacers. Each first spacer includes a first sub-spacer integrally formed with the first substrate and a second sub-spacer disposed on the second substrate that overlaps the first sub-spacer.
Abstract:
A display device includes a display panel including a pixel including a first sub-pixel displaying a first color, a second sub-pixel displaying a second color, and a third sub-pixel displaying a third color, a data driver applying a data voltage generated based on input image data to the pixel in an active period, sensing the first sub-pixel to generate first sensing data in a blank period, sensing the second sub-pixel to generate second sensing data in the blank period, and sensing the third sub-pixel to generate third sensing data in the blank period, and a driving controller compensating for the first sensing data, the second sensing data, and the third sensing data based on a grayscale value of the input image data.
Abstract:
A display device includes a substrate including a display area and a test area adjacent to the display area, a lower electrode disposed in the display area on the substrate, a common layer disposed on the lower electrode, an upper electrode disposed on the common layer; and a test element group. The test element group includes a plurality of electrode patterns disposed in a same layer as the lower electrode and in the test area on the substrate, a test common layer disposed in a same layer as the common layer and on the electrode patterns, where a plurality of openings is defined through the test common layer to expose a part of each of the electrode patterns, and an electrode layer disposed in a same layer as the upper electrode, on the test common layer, and in contact with the electrode patterns through the openings.
Abstract:
A method for manufacturing a curved liquid crystal display panel includes bending a display member including at least one alignment layer at a predetermined curvature using a jig and forming an alignment axis in the alignment layer while the display member is bent using an alignment axis forming part. A control part is used to control an operation of the jig and the alignment axis forming part.
Abstract:
A display device includes a display panel including pixels, a gate driver which sequentially applies scan signals to pixel rows including the pixels at a scan frequency, a data driver which applies data voltages to the pixels, a power voltage generator which applies a power voltage to the pixels, and a timing controller which sets a ripple frequency of the power voltage to deviate from the scan frequency by a predetermined reference ratio or more.
Abstract:
A display device includes a first substrate. A first gate line is disposed on the first substrate. First and second data lines intersect the first gate line. A first transistor is connected to the first gate line and the first data line. A second transistor is connected to the first gate line and the second data line. A first passivation layer is disposed on the first and second transistors, the first passivation layer including a first contact hole. A first pixel electrode is disposed on the first passivation layer, the first pixel electrode being connected to the first transistor through the first contact hole. A second pixel electrode is disposed on the first passivation layer, the second pixel electrode being connected to the second transistor through the first contact hole. The first and second transistors are both exposed through the first contact hole.
Abstract:
A LCD device includes a first substrate, a second substrate, and a liquid crystal layer between the first substrate and the second substrate. A gate line is disposed on the first substrate. The gate line extends in a first direction. A plurality of data lines extend in a second direction intersecting the first direction. A thin film transistor of a plurality of thin film transistors is disposed at an intersection area between each of the plurality of data lines and the gate line. First, second and third pixel electrodes are sequentially arranged in the first direction. Each of the first, second and third pixel electrodes are respectively connected to one of the thin film transistors. At least two data lines are disposed between the second pixel electrode and the third pixel electrode, and at least one data line is disposed between the second pixel electrode and the first pixel electrode.