Abstract:
The display module is provided having a rounded shape in a matrix of pixels therein. A matrix of pixels is organized in rows and columns of pixels in a display area of the module such that a bottom pixel of each column is adjacent to a curved edge of the display area. In an inactive area outside the display area and adjacent to the bottom of the columns of pixels are a plurality of analog switch circuits configured to switch pixel signals to the columns of pixels. Additionally, a plurality of shift register circuits are positioned in the inactive area outside the display area and adjacent to the either ends of the rows of pixels. The plurality of shift register circuits are configured to shift signals to different rows of the pixels within the matrix.
Abstract:
An electronic device may be provided with a display. The display may be a liquid crystal display having a thin-film transistor layer and a color filter layer. The thin-film transistor layer may have diagonally opposed recesses in its edges that form diagonally opposed display driver ledges that protrude outwardly from under the color filter layer. Display driver circuitry may be mounted on the display driver ledges. Gate driver circuitry may be formed on the thin-film transistor layer. Recesses may be formed along the left and right edges of the display to form left and right display driver ledges to support the gate driver circuitry. A single display drive integrated circuit or multiple display driver integrated circuits may be mounted on each display driver ledge. The recesses may accommodate components in the electronic device such as a camera and audio jack or other components.
Abstract:
A non-rectangular pixel array includes non-rectangular pixels. A first conductor line group including first conductor lines and a second conductor line group including second conductor lines are arranged to intersect. Each non-rectangular pixel is arranged to be partially surrounded by one of the first conductor lines and one of second conductor lines. Each first conductor lines includes a first line and a second line which are arranged in parallel and in proximity to each other, without non-rectangular pixel existing between the first line and the second line within each first conductor line, and with non-rectangular pixels existing between adjacent the first conductor lines. Non-rectangular pixels include first pixels and second pixels. Each first pixel is arranged to be partially surrounded by the first line and the second conductor line, and each second pixel is arranged to be partially surrounded by the second line and the second conductor line.
Abstract:
The liquid crystal display device has a liquid crystal display panel, a backlight for illuminating the liquid crystal display panel where the outer shape of the backlight in a plane has at least one corner of which the angle is greater than 90°, and a light guide plate LG having approximately the same form as the outer shape of the backlight, wherein a number of light emitting diodes are aligned along two sides (s1, s3) of the light guide plate LG that form a corner A of which the angle is greater than 90°, and the main light for illumination (L2 to L4, L6 and L7) from the light emitting diodes aligned along the two sides propagates through the light guide plate LG in the same direction.
Abstract:
A method of forming a three-dimensional electronic device includes forming at least one electronic device on a two-dimensional, flexible substrate, the electronic device being formed according to a three-dimensional structure, cutting the two-dimensional, flexible substrate, the cuts being located to allow the two-dimensional substrate to be shaped, the cuts having at least one stress relief feature, and shaping the two-dimensional, flexible substrate to form the three-dimensional structure, the stress relief features arranged to alleviate stress in the three-dimensional structure. A method of forming a three-dimensional electronic device includes forming at least one electronic device on a two-dimensional, flexible substrate, the electronic device being formed according to a three-dimensional structure, cutting the two-dimensional, flexible substrate, the cuts being arranged to as to increase a radius of curvature to meet a stress relief parameter when the substrate is shaped, and shaping the two-dimensional, flexible substrate to form the three-dimensional structure.
Abstract:
A contoured display that includes a faceplate configured to propagate an image in a collimated manner from an interface surface of the faceplate configured to receive the image from a display device to a display surface of the faceplate. The display surface is contoured to provide a three-dimensional (3D) contoured surface that provides designers with artistic freedom when designing a display shape, and a convenient way to contour a display surface to reduce the effects of glare on the display surface.
Abstract:
A method of forming a three-dimensional electronic device includes forming at least one electronic device on a two-dimensional, flexible substrate, the electronic device being formed according to a three-dimensional structure, cutting the two-dimensional, flexible substrate, the cuts being located to allow the two-dimensional substrate to be shaped, the cuts having at least one stress relief feature, and shaping the two-dimensional, flexible substrate to form the three-dimensional structure, the stress relief features arranged to alleviate stress in the three-dimensional structure. A method of forming a three-dimensional electronic device includes forming at least one electronic device on a two-dimensional, flexible substrate, the electronic device being formed according to a three-dimensional structure, cutting the two-dimensional, flexible substrate, the cuts being arranged to as to increase a radius of curvature to meet a stress relief parameter when the substrate is shaped, and shaping the two-dimensional, flexible substrate to form the three-dimensional structure. A three-dimensional electronic device having an electronic device formed on a flexible substrate, the flexible substrate formed into a three-dimensional structure, wedged-shaped portions removed from the substrate to allow the substrate to be formed into the three-dimensional structure, and a stress relief feature arranged adjacent to the wedge-shaped portions.
Abstract:
A display panel includes a first substrate in which a terminal area is defined along at least one edge thereof, and connection terminals are formed in the terminal area; and a second substrate which is bonded to the first substrate with sealing material being interposed between the first and second substrates, so as to expose the connection terminals. At an edge of the second substrate corresponding to the edge of the first substrate, at which the terminal area is defined, the second substrate includes protrusions protruding to the edge of the first substrate.
Abstract:
A liquid crystal display device having a non-rectangular display panel includes an active area which is defined by a peripheral shield layer. A plurality of pixels are formed in the active area in a matrix, and each pixel includes a plurality of sub-pixels to display colors different from each other. A part of the sub-pixels of peripheral pixels located in a peripheral region of the active area is covered with a peripheral shield layer. Shield elements are arranged in the sub-pixels which are not covered with the peripheral shield layer so that an effective display area of each of the sub-pixels of the peripheral pixel is substantially equal.
Abstract:
The present invention relates to a method for manufacturing a curved display panel. The method for manufacturing a curved display panel using a lower substrate and an upper substrate made of glass and opposite each other, and a liquid crystal layer formed between the lower substrate and the upper substrate, comprises: a step of cutting out portions of outer surfaces of the lower substrate and the upper substrate such that the thicknesses of the substrates are reduced to a preset level; and a step of bending the cut lower substrate and the cut upper substrate into a desired curved shape, and forming transparent polymer layers, having shapes identical to the desired curved shape, onto outer surfaces of the substrates, respectively, or attaching transparent substrates, which are prefabricated into shapes identical to the desired curved shape, onto outer surfaces of the substrates, respectively.