Abstract:
A display electrode structure and the repairing method thereof are described. The display electrode structure includes a display electrode and at least one opening formed on the display electrode and extending toward the inside of the display electrode so as to easily repair a display electrode defect thereon. The display electrode repairing method uses a laser beam to cut a display electrode from the opening and along the metal line to separate the display electrode from an adjacent display electrode so as to remove a short circuit between the display electrode and the adjacent display electrode.
Abstract:
A display apparatus and a display method thereof are provided. The display apparatus includes a display panel, a timing controller, a data driving unit and an extending driving unit. The display includes a plurality of first pixels disposed in a frame display region and a plurality of second pixels disposed in an extending display region, where the extending display region surrounds the frame display region. The timing controller outputs a plurality of display data corresponding to a display frame. The data driving unit outputs a plurality of first signals to the first pixels according to the display data. The extending driving unit obtains a display reference data corresponding to the display frame through the data driving unit, and provides a second driving signal to the second pixels according to the display reference data so as to determine the display effect of the second pixels.
Abstract:
An array substrate includes scan lines and data lines defining pixel structures. Each pixel structure includes a first TFT, a second TFT and a pixel electrode. The first TFT includes a first gate connected to the scan line, a first source disposed above and partially overlapping the first gate, and a first drain disposed above the first gate. An end of the first source is connected to the data line. The first drain has at least one first concavity in which the first source is disposed partially. The second TFT includes a second gate connected to the scan line, a second source disposed above the second gate and connected to the first drain, and a second drain disposed above and partially overlapping the second gate. The second source has at least one second concavity in which the second drain is disposed partially. The pixel electrode connects to the second drain.
Abstract:
An electronic device includes a shell, a display module and a cushion. The shell includes a bottom plate and a top plate. The top plate defines an opening The display module is disposed in the shell and faces the opening The display module is spaced from the bottom plate of the shell. The cushion is disposed between the display module and the bottom plate of the shell, and brought into contact with the display module for cushioning the display module when an external force is applied to the display module.
Abstract:
This present invention provides an electronic paper display device. The electronic paper display device includes a thin film transistor array substrate and a display panel disposed on one side of the thin film transistor array substrate. The thin film transistor array substrate comprises a first substrate, a first metal layer, a dielectric layer, a second metal layer, a channel layer, a pixel electrode layer, a protection layer, a first resin layer and a second resin layer. The display panel includes a second substrate, a transparent electrode layer disposed on the second substrate, and an electronic ink material layer between the transparent electrode layer and the thin film transistor array substrate.
Abstract:
The invention discloses a curved display module and a display device. The curved display module includes an enclosure, at least one opening, a flexible display panel and an Optical Clear Adhesive (OCA) layer. There is a first curved surface inside the enclosure. A cavity is formed within the enclosure. The at least one opening are disposed on at least one edge of the enclosure and connected to the cavity. The flexible display panel is disposed on the first curved surface in the cavity. The OCA layer is disposed within the cavity. The OCA layer directly covers the flexible display panel.
Abstract:
This present invention provides an electronic paper display device. The electronic paper display device includes a thin film transistor array substrate and a display panel disposed on one side of the thin film transistor array substrate. The thin film transistor array substrate comprises a first substrate, a first metal layer, a dielectric layer, a second metal layer, a channel layer, a pixel electrode layer, a protection layer, a first resin layer and a second resin layer. The display panel includes a second substrate, a transparent electrode layer disposed on the second substrate, and an electronic ink material layer between the transparent electrode layer and the thin film transistor array substrate.
Abstract:
An electronic-ink display apparatus is provided. The electronic-ink display apparatus includes a thin film transistor (TFT) array substrate, an electronic-ink layer, a common electrode, a second substrate and an edge sealant. The TFT array substrate includes a first substrate and a dielectric layer located above the first substrate. The electronic-ink layer, common electrode and second substrate are located above TFT array substrate in sequence. The edge sealant surrounds the electronic-ink layer and at least one part of the edge sealant is not overlaid above the dielectric layer.
Abstract:
In a bistable display device having a driver circuit, the driver circuit has multiple electrical ports for electrically connecting to external circuits. The electric potential difference between any two neighboring ports is less than 10 volts so that electrical punch-through caused by great electric potential difference and short distance between the electrical ports is substantially avoided.
Abstract:
An E-ink display panel including an active device matrix substrate, an opposite substrate and a display medium is provided. The active device matrix substrate includes pixel structures disposed thereon, and each pixel structure includes a bottom-gate thin film transistor and a pixel electrode. The pixel electrode disposed on the dielectric layer covers a portion of a channel layer of the bottom-gate thin film transistor and is electrically connected to a drain of the bottom-gate thin film transistor. The opposite substrate is above the active device matrix substrate. The display medium is disposed between the active device matrix substrate and the opposite substrate.