Abstract:
In a display region of an active matrix substrate, an interlayer insulating film made of a photosensitive organic insulating film, an insulating film different from the interlayer insulating film, and a plurality of pixel electrodes formed on a surface of the interlayer insulating film are provided. In a non-display region of the active matrix substrate, a lead line extended from the display region is formed. In a formation region for a sealing member, the interlayer insulating film is removed, the insulating film is provided to cover part of the lead line, and the sealing member is formed directly on a surface of the insulating film.
Abstract:
A liquid crystal display device may include a first substrate having a display area and a non-display area, a first electrode located on the first substrate at the display area, a second substrate opposed to the first substrate, a second electrode located on the second substrate at the display area, a liquid crystal layer located between the first electrode and the second electrode, a spacer located between the first substrate and the second substrate in the non-display area, a sealant located adjacent to the spacer, and a blocking structure located beneath the spacer.
Abstract:
In at least one embodiment of the disclosure, a liquid crystal device comprises a plurality of conductive patterns formed of a conductive film in a peripheral region between an image display region and a sealing member. The conductive patterns are formed at a same layer as a plurality of pixel electrodes. An insulation film is formed on a side facing a counter substrate so as to correspond to the plurality of conductive patterns and a plurality of pixel electrodes. Peripheral electrodes are formed in a region overlapping the plurality of conductive patterns in a plan view on a side on which the counter substrate is located so as to correspond to the insulation film in the peripheral region.
Abstract:
A liquid crystal display device includes a first substrate, a second substrate, a first insulation layer, an anti-corrosion layer, a liquid crystal layer, and a seal pattern. The second substrate faces the first substrate, and includes a display area which displays an image, and a non-display area surrounding the display area. The first insulation layer is provided on the second substrate, and exposes a layer thereunder at an edge of the non-display area. The anti-corrosion layer is provided at an edge of the first insulation layer. The liquid crystal layer is disposed between the first and second substrates. The seal pattern is provided on the first insulation layer, and couples the first and second substrates.
Abstract:
A package structure of flexible display device includes a flexible opto-electronic display panel, a first barrier layer and a second barrier layer. The flexible opto-electronic display panel includes a backplane, a flexible frontplane, and a display media layer. The display media layer is disposed between the flexible frontplane and the backplane, where the display media layer is substantially corresponding to a display region of the backplane, and at least one side of the display media layer aligns with one corresponding side of the backplane. The first barrier layer is disposed on a first surface of the flexible frontplane, where the flexible frontplane, the display media layer and the first barrier layer expose a bonding region of the backplane. The second barrier layer is disposed on a second surface of the backplane.
Abstract:
An object of the present invention is to provide a liquid crystal panel wherein provisions are made to effectively prevent the infiltration of gas from an end portion of a liquid crystal cell or from areas near cut portions of the liquid crystal cell, and a method for fabricating such a liquid crystal panel. More particularly, the present invention provides a liquid crystal panel includes a liquid crystal cell which includes a first substrate, a second substrate, a sealing member, and a liquid crystal layer provided between the first and second transparent substrates and sealed by the sealing member, a planarizing layer formed so as to cover an end portion of the liquid crystal cell, and a gas barrier layer formed on the planarizing layer. The invention also provides a method for producing such a liquid crystal panel.
Abstract:
A flexible substrate includes: a flexible base substrate; a plurality of display structures on a first surface of the flexible base substrate; and a barrier coating on a second surface of the flexible base substrate to prevent contaminants from penetrating into the display structures.
Abstract:
Provided is a substrate for a liquid crystal display which is resistant to deformation. The substrate includes a flexible substrate, first and second barrier layers respectively disposed on first and second surfaces of the flexible substrate, and first and second hard coating layers respectively disposed on the first and second barrier layers.
Abstract:
The present invention is directed to an electrically switchable laminate construction for applications including smart windows, and other uses and applications in which light management is desired. The electro-optical laminate construction has scattering and transparent modes of operation for dynamically controlling electromagnetic radiation flow.
Abstract:
An active matrix display panel includes a plurality of pixel electrodes formed in a matrix manner, a plurality of switching elements connected with these pixel electrodes, a plurality of scan lines for supplying a scan signal to thin film transistors, and a plurality of data lines for supplying a display data signal. Components except for the pixel electrodes are covered with an overcoat film. Since a contact hole extending through this overcoat film and a contact hole extending through the overcoat film and a gate insulating film are simultaneously formed, a jumper line for connecting a disconnected portion of a protect ring, a surface layer of a data line connecting pad, and a line protecting film are formed at the same time as the pixel electrodes are formed. This reduces the number of fabrication steps. Components such as the data line and source and drain electrodes are formed by a three-layered structure of Cr(Chromium)/Al(Aluminum)/Cr(Chromium). This reduces the contact resistance between the source electrode and the pixel electrode and also reduces the resistance of the data line. The sectional shape of, e.g., the data line made of the multilayered film is so formed as to be readily covered with the overcoat film. This improves the reliability.