Abstract:
A method of controlling an output characteristic of an electronic device is provided. The method includes executing an application, detecting the brightness of an ambient environment, determining a gamma characteristic based on the executing application and the detected brightness, and outputting a screen of the running application based on the determined gamma characteristic.
Abstract:
According to an embodiment, an electronic device comprises a communication module and at least one processor. The at least one processor is configured to establish a first network connection with a first external electronic device via a first communication module of the communication module, identify a first distance between the electronic device and the first external electronic device, identify first state information about the first external electronic device, and control a reception module of the first communication module to remain in a sleep state during a sleep time identified based on the first state information and the first distance. Other various embodiments are possible as well.
Abstract:
A refrigerator including a storage chamber. The refrigerator also includes a first sidewall and a second sidewall arranged to form at least a portion of both side surfaces of the storage chamber.. The refrigerator further includes a light source arranged on the first sidewall to illuminate an inside of the storage chamber. The refrigerator also includes a light guide member provided inside the storage chamber and formed to extend between the first sidewall and the second sidewall to guide light emitted from the light source. The light guide member includes an incident surface arranged to face the first sidewall and an exit surface through which the light guided by the light guide member is emitted to an outside of the light guide member.
Abstract:
A display apparatus is provided. The display apparatus may include a display panel, an optical member that is disposed behind the display panel and that is configured to guide light to the display panel, a light source that is configured to irradiate light to the optical member, a holder that is configured to support the display panel and the optical member, and a contraction member that is disposed parallel to the optical member, and that comprises a negative thermal expansion (NTE) substance.
Abstract:
An electronic device including an EM sensor module and a method for controlling the electronic device. An electronic device includes an electromagnetic (EM) sensor module, an antenna module electrically connected to the EM sensor module, a memory operationally connected to the EM sensor module, and a processor operationally connected to the EM sensor module, The EM sensor module is configured to detect an electromagnetic signal around the electronic device using the antenna module, determine whether the electromagnetic signal is a valid signal from at least one external electronic device, and send electromagnetic detection data related to all or at least part of the electromagnetic signal to the processor based on the electromagnetic signal being a valid signal.
Abstract:
Provided are magnetic tunneling junction devices, memory devices including the magnetic tunneling junction devices, and methods of manufacturing the magnetic tunneling junction devices. The magnetic tunneling junction device (200) includes a first magnetic layer (201); a second magnetic layer (205) disposed to face the first magnetic layer; and a first oxide layer (202) disposed between the first magnetic layer and the second magnetic layer and including a metal oxide, wherein the metal oxide of the first oxide layer has a stoichiometrically oxygen-deficient composition, and wherein the second magnetic layer includes a magnetic material doped with a metal element.
Abstract:
An electronic device may: establish a first Bluetooth low energy (BLE) connection to an external electronic device; measure a distance between the external electronic device and the electronic device on the basis of a first distance measurement scheme based on a BLE technology in the first BLE connection; identify whether the distance measured on the basis of the first distance measurement scheme exists within a configuration range from a second distance to a first distance, both inclusive; on the basis of a determination that the distance measured on the basis of the first distance measurement scheme exists within the configuration range, measure the distance between the external electronic device and the electronic device on the basis of a second distance measurement scheme based on the BLE technology in the first BLE connection; establish a second BLE connection to the external electronic device; and on the basis of a determination that the distance measured on the basis of the second distance measurement scheme is less than the second distance, measure the distance between the electronic device and the external electronic device on the basis of an ultra-wide band (UWB) technology.
Abstract:
A synthetic antiferromagnet includes a first ferromagnetic layer having a first surface; a second ferromagnetic layer having a second surface facing the first surface of the first ferromagnetic layer; and a first non-magnetic layer disposed between the first ferromagnetic layer and the second ferromagnetic layer, wherein the first ferromagnetic layer has an inclined perpendicular magnetic anisotropy (PMA) in which a magnetization direction of the first ferromagnetic layer is inclined from a first direction perpendicular to the first surface and the second surface, a component in a first direction of the magnetization direction of the first ferromagnetic layer and a component in a first direction of a magnetization direction of the second ferromagnetic layer are opposite to each other.
Abstract:
Provided are a magnetic tunneling junction device (100a) having more stable perpendicular magnetic anisotropy (PMA) and/or increased operating speed, and/or a memory device including the magnetic tunneling junction device. The magnetic tunneling junction device includes a free layer (103) having a first surface and a second surface opposite the first surface; a pinned layer (101) facing the first surface of the free layer; a first oxide layer (102) between the pinned layer and the free layer; and a second oxide layer (104) on the second surface of the free layer. The free layer includes a magnetic material X doped with a non-magnetic metal. The second oxide layer includes ZO x which is an oxide of a metal Z. An oxygen affinity of the metal Z is greater than an oxygen affinity of the non-magnetic metal X.