Abstract:
Various embodiments of the present invention relate to an electronic device having an auxiliary device that can be attached/detached. The disclosed device comprises: a first electronic device having a touch screen arranged thereon; and a second electronic device arranged to be forced against at least a partial area of a surface of the touch screen such that data is input to the touch screen by a pressing operation, wherein the second electronic device may comprise a keypad unit, which comprises an array of multiple key tops that are pressed, and a substrate, which operates the touch screen by means of pressing of the key tops.
Abstract:
A slim display device is disclosed in the present disclosure. The disclosed display device may include: a window having a printed area formed along an outer periphery thereof, a display panel disposed below the window to provide a view area including an active area where data is displayed and a non-active area, and a touch detection unit disposed between the window and the display panel, wherein a plurality of electrode trace patterns of the touch detection unit are disposed under the non-active area.
Abstract:
A touch panel using a conductive mesh and a method of manufacturing the same are provided. The touch panel includes a substrate on which a conductive mesh is disposed, a plurality of driving channels for recognizing a horizontal axis coordinate, wherein the plurality of driving channels are formed by patterning a first conductive mesh disposed on the substrate, a plurality of sensing channels for recognizing a vertical axis coordinate, wherein the sensing channels are formed by patterning a second conductive mesh disposed on the substrate, and an insulating layer positioned between the first conductive mesh and the second conductive mesh.
Abstract:
Disclosed is an electronic apparatus including a display module. The display module may include: a display panel comprising a substrate, a plurality of light sources including a plurality of light emitting devices mounted on the substrate, a color conversion layer and a color filter layer stacked on each of the plurality of light emitting devices, the plurality of light sources may each be provided with encapsulation structure, and a size of the color conversion layer may be less than a size of the light emitting device.
Abstract:
A method for manufacturing tempered-glass panels for electronic devices is provided. The method includes pre-processing an original glass substrate so as to reduce weak portions that are formed in the original glass substrate when the original glass substrate is first tempered and then processed tempering the pre-processed original glass substrate and cutting the tempered pre-processed original glass substrate to produce a number of tempered-glass panels. The method can produce the tempered-glass panels from the original glass substrate, maintaining a certain level of production efficiency.
Abstract:
A display device having a perpendicular electrode structure and a method of manufacturing the display device are provided. The display device includes a display substrate including wiring therein, a first pad provided on the display substrate and connected to the wiring, a second pad provided on the display substrate, spaced apart from the first pad, and connected to the wiring, and a micro-semiconductor chip including a first electrode, a p-type semiconductor layer provided on the first electrode, an active layer provided on the p-type semiconductor layer, an n-type semiconductor layer provided on the active layer, and a second electrode provided on the n-type semiconductor layer, wherein the micro-semiconductor chip is constituted by a perpendicular electrode chip, the first electrode is connected to the first pad, and the second electrode is connected to the second pad.
Abstract:
A display module in which a plurality of pixels are arranged and an electronic device including the display module are disclosed. The display module includes: a display panel including a substrate, a plurality of light emitting elements mounted on the substrate, a bank portion disposed on the substrate to space the plurality of light emitting elements apart from each other, color conversion layers disposed in cells defined by the bank portion to cover the light emitting elements, and an encapsulation layer covering the bank portion and the color conversion layers, and a driving circuit disposed on the substrate and configured to generate a driving signal of the plurality of light emitting elements, the bank portion including a first layer having a thickness less than a height of an active layer of the light emitting element, and a second layer disposed on the first layer, spaced apart from a side surface of the light emitting element, and configured to reflect light emitted from the side surface of the light emitting element.