Abstract:
An electronic device includes a housing including a front surface, a back surface, and a side surface; a first antenna module disposed adjacent to at least a surface of the housing, facing in a direction, outside of the housing, and operated in a transmission mode for transmitting a signal to an external electronic device or in a reception mode for receiving a signal from the external electronic device; and a second antenna module disposed apart from the first antenna module, facing in a direction different from the direction of the first antenna module, operated in a reception mode for receiving a signal when the first antenna module is operated in the transmission mode, and operated in a transmission mode for transmitting a signal when the first antenna module is operated in the reception mode.
Abstract:
Disclosed is an antenna module including a first printed circuit board (PCB) including a first surface facing a first direction and a second surface facing a second direction opposite the first direction, a second PCB including a third surface facing the first direction spaced from the first PCB and a fourth surface facing the second direction spaced from the first surface, a radio frequency integrated circuit (RFIC) disposed on the first surface, and a connection member comprising a conductive material connecting the first surface to the fourth surface. The at least one first conductive pattern is connected to the RFIC. The at least one third conductive pattern is connected to the RFIC via the connection member. The at least one first conductive pattern and the at least one third conductive pattern at least partially overlap with each other at least partly, when viewed from above the second surface.
Abstract:
An antenna structure is provided that improves performance of a Near Field Communication antenna by constructing a pattern for NFC in an inner center region of a pattern for a wireless charging pad. The structure includes a Printed Circuit Board including a first and a second substrate layer, where the first substrate layer includes a first and a second non-conductive area, one first conductive wire constructed in a shape surrounding the first non-conductive area, one second conductive wire constructed in a shape surrounding the second non-conductive area, and a first antenna corresponding to a first frequency band. The second substrate layer includes a third non-conductive area, a third wire surrounding the third non-conductive area, and connection wires electrically coupling the first and the second conductive wire forming a second winding. The first winding and the second winding are a second antenna corresponding to a second frequency band.
Abstract:
An electronic device includes first and second antennas, a magnetic stripe transmission (MST) integrated circuit (IC), and a processor. The first antenna is disposed between first and second surfaces of the electronic device and in parallel with the first and second surfaces of the electronic device. The first antenna outputs a signal in a first direction. The second antenna is disposed between the second surface of the electronic device and the first antenna and in parallel with the first and second surfaces of the electronic device. The second antenna outputs a signal in a second direction. The MST IC controls the first and second antennas. When a payment mode is executed, the processor controls the MST IC such that one of the first and second antennas outputs an MST signal and the other of the first and second antenna outputs a jamming signal for interfering with wiretapping of the MST signal.
Abstract:
Disclosed is an electronic device having loop antenna. The electronic device is capable of securing improved radiation performance and emitting a magnetic field signal including payment information using a loop antenna, even though a portion of the electronic device may be made of metal.
Abstract:
According to an embodiment of the present invention, the electronic device may comprise: a plurality of antennas; and a control circuit configured to confirm a two-dimensional coordinate value by using signals received via the plurality of antennas and, on the basis of the two-dimensional coordinate value, correct the angle of signal reception or selectively filter data received from a signal source via the plurality of antennas. Various other embodiments may be possible.
Abstract:
An electronic device according to one embodiment comprises a communication module, a processor operatively connected to the communication module, and a memory operatively connected to the processor, the memory may comprise instructions that, when executed, cause the processor to receive a first signal by using a plurality of sub-frequency bands through the communication module, identify at least one sub-frequency band in which hidden interference is identified on the basis of a pre-high efficiency modulated field (pre-HE modulated field) of a packet indicated by the first signal, and change a communication frequency by transmitting a second signal including information indicating the at least one identified sub-frequency band to an external electronic device in which a wireless communication connection has been established.
Abstract:
An electronic device capable of communicating with a card reading apparatus and a payment method are provided. The electronic device includes a first cover configuring a front side of the electronic device, a second cover configuring a back side of the electronic device, a memory contained in a hollow area formed between the first and second covers, a display, at least part of which is contained in the hollow area and which is disclosed through the first cover, a processor that is contained in the hollow area and is electrically connected to the memory, and at least one loop antenna which is contained in the hollow area and electrically connected to the processor.
Abstract:
Disclosed is an electronic device. The electronic device includes: an antenna structure including at least one antenna and at least one processor operatively connected with the antenna structure. The antenna structure includes: a first conductive patch including a first edge and a second edge parallel to the first edge, a first transmission line electrically connected to a first point of the first conductive patch, a second conductive patch spaced apart from the first conductive patch by a specified distance and including a third edge at least partially facing the second edge of the first conductive patch and a fourth edge parallel to the third edge, and a second transmission line electrically connected to a second point of the second conductive patch. The first point of the first conductive patch and the second point of the second conductive patch are located on the second edge of the first conductive patch and the third edge of the second conductive patch or on the first edge of the first conductive patch and the fourth edge of the second conductive patch.