Abstract:
An electronic device and method in which an electronic device handles a hovering operation are provided. The electronic device includes a display including a first area at which an object is displayed and a second area adjacent to the first area, and a touch module configured to recognize a user input selecting the object and an operation in which the user input is hovering, wherein the touch module is further configured to determine that the selection of the object is maintained if the user input is hovering above a specific area. The method includes recognizing a user input selecting an object; recognizing that the hovering operation is performed above a specific area; and determining that a selection of the object is maintained, wherein a display of the electronic device comprises a first area at which the object is displayed and a second area adjacent to the first area.
Abstract:
A semiconductor device capable of improving operation performance and reliability, may include a gate insulating support to isolate gate electrodes that are adjacent in a length direction. The semiconductor device includes a first gate structure on a substrate, the first gate structure extending lengthwise in a first direction to have two long sides and two short sides, relative to each other, and including a first gate spacer; a second gate structure on the substrate, the second gate structure extending lengthwise in the first direction to have two long sides and two short sides, relative to each other, and including a second gate spacer, wherein a first short side of the second gate structure faces a first short side of the first gate structure; and a gate insulating support disposed between the first short side of the first gate structure and the first short side of the second gate structure and extending lengthwise in a second direction different from the first direction, a length of the gate insulating support in the second direction being greater than a width of each of the first gate structure and the second gate structure in the second direction.
Abstract:
Methods and mobile devices for providing various eco-friendly User Interfaces (UIs) are provided. In one method for providing the eco-friendly UI, the mobile device measures a recharging amount or time, displays the recharging amount or time, and determines whether the recharging amount or time is more than a predefined critical amount or time. If the recharging amount or time is more than the critical amount or time, the mobile device is transitioned into an executable state of a specific application. This may give a user motivation to use a solar charge system and thereby reduce battery consumption of the mobile device.
Abstract:
Provided is a light emitting device package including: a plurality of lead frames disposed to be separated from one another; at least one light emitting device mounted on the lead frames and electrically connected to the lead frames through a bonding wire provided on a wire bonding pad, the wire bonding pad being disposed on the same surface as a light emission surface provided as an upper surface of the light emitting device; a body part formed to encapsulate and support the wire bonding pad, the bonding wire, the light emitting device and the lead frames, and having a reflective groove formed in an upper surface thereof to expose the light emission surface to the outside therethrough; and a lens part disposed on the body part, to cover the light emitting device.
Abstract:
A semiconductor package includes a package substrate having a first side and an opposite second side, a semiconductor chip on the first side of the package substrate, a capacitor on the second side of the package substrate, a plurality of connecting terminals on the second side of the package substrate, and a metal line within a trench in the package substrate. The trench extends in a first direction, and the metal line is between the capacitor and the plurality of connecting terminals. The metal line is spaced apart from the capacitor in a second direction that is transverse to the first direction, and a distance between the metal line and the capacitor is 100 μm or more and 1000 μm or less.
Abstract:
A semiconductor device capable of improving operation performance and reliability, may include a gate insulating support to isolate gate electrodes that are adjacent in a length direction. The semiconductor device includes a first gate structure on a substrate, the first gate structure extending lengthwise in a first direction to have two long sides and two short sides, relative to each other, and including a first gate spacer; a second gate structure on the substrate, the second gate structure extending lengthwise in the first direction to have two long sides and two short sides, relative to each other, and including a second gate spacer, wherein a first short side of the second gate structure faces a first short side of the first gate structure; and a gate insulating support disposed between the first short side of the first gate structure and the first short side of the second gate structure and extending lengthwise in a second direction different from the first direction, a length of the gate insulating support in the second direction being greater than a width of each of the first gate structure and the second gate structure in the second direction.
Abstract:
A specimen analysis apparatus and measurement method thereof are provided. The specimen analysis apparatus includes: a cartridge including at least two containers, at least one of the at least two containers containing an internal standard material including a target material; and a controller configured to determine a correction value for a concentration of the target material by comparing an extent of a change in optical signal values of the target material measured in the at least two containers with a predetermined extent of change in the optical signal values of the target material..
Abstract:
A light emitting device and a method for fabricating the same are provided. The method includes: forming a plurality of light emitting laminates in which a first conductivity-type semiconductor layer, an active layer, and a second conductivity-type semiconductor layer are sequentially laminated on a growth substrate; mounting the growth substrate on a substrate including a plurality of terminal units each including a pair of electrode terminals; electrically connecting the second conductivity-type semiconductor layer of each of the light emitting laminates to a first electrode terminal of a corresponding terminal unit; removing the growth substrate to expose the first conductivity-type semiconductor layer; forming an insulating layer on a lateral surface of each of the plurality of light emitting laminates; and electrically connecting the exposed first conductivity-type semiconductor layer of each of the light emitting laminates to a second electrode terminal of the corresponding terminal unit.