Abstract:
An apparatus of inspecting a liquid crystal display device includes a magnetic sensor scanning a signal line pattern on a substrate to detect a defective position of the signal line pattern, a camera imaging the signal line pattern detected by the magnetic sensor, an inspecting jig contacting a probe pin with the signal line pattern to determine the existence of defective in the signal line pattern, a transferring tool system transferring at least one of the substrate, the magnetic sensor and the camera in a two-axis direction, and a controller controlling the magnetic sensor, the camera, the inspecting jig and the transferring tool system.
Abstract:
An apparatus for forming an alignment layer of a liquid crystal display device includes: an alignment material dropping unit with a head having a plurality of holes for dropping an alignment material on the substrate; an alignment material supply unit to supply the alignment material to the alignment material dropping unit; a scan unit to survey alignment material dropping from the head; and a monitor to display an image base upon scan data from the scan unit so that the discharge state of the plurality of holes in the head can be checked.
Abstract:
A liquid crystal display device includes a liquid crystal panel having a pixel region, a graphic interface unit generating a first data enable signal having first and second time intervals, a signal modulating unit generating a second data enable signal by using the first data enable signal, the second data enable signal having third and fourth time intervals, and a timing controller generating the data signals by using the second data enable signal, wherein data signals are not input to the pixel region during the third time interval and are input to the pixel region during the fourth time interval, and the forth time interval is shorter than the second time interval.
Abstract:
A method of patterning a transparent conductive film adaptive for selectively etching a transparent conductive film without any mask processes, a thin film transistor for a display device using the same and a fabricating method thereof are disclosed. In the method of patterning the transparent conductive film, an inorganic material substrate is prepared. An organic material pattern is formed at a desired area of the inorganic material substrate. A thin film having a different crystallization rate depending upon said inorganic material and said organic material is formed. The thin film is selectively etched in accordance with said crystallization rate.
Abstract:
A dual display mode liquid crystal display device includes first and second substrates spaced apart from and facing each other, a first transparent electrode on an inner surface of the first substrate, a second transparent electrode on an inner surface of the second substrate, a liquid crystal layer between the first and second transparent electrodes, a first polarizer on an outer surface of the first substrate, the first polarizer having a first light transmission axis, a front light unit on an outer surface of the first polarizer, a selective reflection/transmission part on an outer surface of the second substrate, the selective reflection/transmission part selectively reflecting linearly polarized light corresponding to the first light transmission axis, and a second polarizer on an outer surface of the selective reflection/transmission part.
Abstract:
A system for cleaning a substrate of flat panel display devices includes an ultraviolet source providing ultraviolet light, a driver for moving the ultraviolet source along a first direction, and a track extended along a second direction perpendicular to the first direction, wherein the substrate is disposed upon the track to be provided to the ultraviolet source.
Abstract:
A method for forming an alignment layer of a liquid crystal display device includes providing a substrate having a plurality of unit panels formed thereon, loading the substrate onto a stage, selectively dropping an alignment material onto a first one of the unit panel regions by an alignment material dropping unit having a plurality of heads, each of the heads having a plurality of holes arranged along a row at regularly-spaced interval distance d1, and forming an alignment layer on the substrate to have a uniform thickness.
Abstract:
A flat-type fluorescent lamp device includes first and second substrates facing each other, a plurality of first electrodes on the first substrate disposed along a first direction, each first electrode having protrusions extending from both sides of the first electrode along the first direction, a plurality of second electrodes on the first substrate, the second electrodes each having concave portions that correspond to the protrusions of the first electrode and convex portions that correspond to regions between the protrusions of the first electrode, a first fluorescent layer on an entire surface of the first substrate including the first and second electrodes, and a second fluorescent layer on the second substrate.
Abstract:
A liquid crystal display device includes a lower substrate, an upper substrate facing the lower substrate, a common electrode and a plurality of data electrodes on the lower substrate to generate an In-Plane switching mode electric field parallel to the lower and upper substrates, and a liquid crystal layer having a helical alignment between the lower and upper substrates.
Abstract:
An apparatus for aligning a dispenser includes: a table that can move horizontally in forward/backward and left/right directions for receiving a substrate of at least one liquid crystal display panel; first and second dummy aligning plates on the table with a certain space therebetween; a syringe for supplying a sealant onto the first and second dummy aligning plates to form first and second alignment patterns; a first image camera for detecting an image of the first alignment pattern; a second image camera for detecting an image of the second alignment pattern; and an alignment controller for aligning the image of the first image camera with a first reference position and the image of the second image camera with a second reference position.