Patent classifications
H05K1/0237
IN-PACKAGE MMWAVE ANTENNAS AND LAUNCHERS USING GLASS CORE TECHNOLOGY
Embodiments disclosed herein include package substrates with antennas on the core. In an embodiment, a package substrate comprises a core with a first surface and a second surface. In an embodiment, a first conductive plane is formed into the core, where the first conductive plane is substantially orthogonal to the first surface, and a second conductive plane is formed into the core, where the second conductive plane is substantially orthogonal to the first surface. In an embodiment, an antenna is on the core, where the antenna is between the first conductive plane and the second conductive plane.
Cable assembly with improved high frequency signal integrity and increase quality with high frequency signal transmission
A cable assembly includes a plurality of wires and a plurality of electrical contacts. The electrical contacts include contact sections and wire connecting sections, and the wire connecting sections of the electrical contacts are respectively connected to the wires. Two adjacent electrical contacts for transmitting signals have a first edge distance and an expanded edge distance. The first edge distance is adjacent to the contact sections, and the expanded edge distance is between the first edge distance and the wire connecting sections. In addition, the first edge distance is smaller than the expanded edge distance to improve signal integrity.
Flexible connection member and electronic device comprising same
Various embodiments disclosed in the disclosure relate to a flexible connection member and an electronic device comprising same, the flexible connection member having an RF line for signal transmission formed therein, wherein an impedance of the RF line is prevented from being changed even when a flexible printed circuit board is bent. According to one embodiment, a connection member may be provided, the connection member comprising, a first conductive layer including a first logic line, and a second conductive layer in contact with the first conductive layer and including a bonding sheet layer, wherein the second conductive layer includes, a second logic line formed on part of the second conductive layer, and an RF line formed on other part of the second conductive layer, the bonding sheet layer includes, the second conductive layer adhered over the second logic line and the RF line, a first insulating layer formed between the first conductive layer and the second conductive layer, and pins formed on one side of the first conductive layer and the second conductive layer and configured to be electrically connected to connection pins of an external module, and the second conductive layer includes at least one via formed between the second logic line and the RF line so as to energize between the layers included in the second conductive layer. Such a flexible connection member may vary according to embodiments, and an electronic device comprising the flexible connection member may be provided according to various other embodiments.
ELECTRONIC DEVICE INCLUDING ANTENNA AND PRINTED CIRCUIT BOARD
An electronic device of various embodiments of the present disclosure may include: a display, a side bezel including at least one conductive portion, and a printed circuit board disposed inside the side bezel. The printed circuit board may include an interposer, and a first printed circuit board and a second printed circuit board electrically connected through the interposer. The first printed circuit board may include a first fill-cut area, and the second printed circuit board may include a second fill-cut area corresponding to the first fill-cut area, and a ground or feeding unit comprising a conductive feed of an antenna using the conductive portion may be disposed in the first fill-cut area or the second fill-cut area.
SAMPLE HOLDER AND SUPERCONDUCTING QUANTUM COMPUTER
A sample holder includes a base comprising a support structure and a printed circuit board (PCB) in contact with the base. The PCB includes: a dielectric; a front-surface ground (GND) formed on a front surface of the dielectric; a back-surface GND formed on a back surface of the dielectric; a through hole penetrating from the front-surface GND to the back-surface GND, the through hole in which a chip is disposed, and a conductor that electrically connects the front-surface GND and the back-surface GND on an end face of the through hole. At least a part of the base below the through hole has a cavity. The support structure that supports a surface of the chip and is electrically connected to the base. The support structure is disposed in the cavity.
SAMPLE HOLDER AND SUPERCONDUCTING QUANTUM COMPUTER
A sample holder includes a base comprising a support structure and a printed circuit board (PCB) in contact with the base. The PCB has a through hole. The PCB has a cavity in at least a part of the base below the through hole. The support structure that supports a surface of a chip and is electrically connected to the base. The support structure is disposed in the cavity. At least a part of the section supporting the chip in the support structure is not parallel to the back surface of the chip.
SANDWICH STRUCTURE POWER SUPPLY MODULE
A power supply module having at least one inductor modules, a top PCB mounted on top of the at least one inductor modules, and at least one pair of power device chips mounted on top of the top PCB, wherein power pins and signal pins for connecting the top PCB and a board that the at least one inductor modules are attached to, are implemented by metal layers wrapping each of the at least one inductor modules.
Flexible printed circuit and manufacturing method thereof, electronic device module and electronic device
A flexible printed circuit and a manufacturing method thereof, an electronic device module and an electronic device are provided. The flexible printed circuit includes a main sub-circuit board and a bridge sub-circuit board; the main sub-circuit board includes a first substrate, and a first bridge end, a second bridge end, a first wiring portion, and a second wiring portion on the first substrate, the first wiring portion and the second wiring portion are spaced apart from each other and are electrically connected to the first bridge end and the second bridge end, respectively; the bridge sub-circuit board includes a second substrate, and a third bridge end, a fourth bridge end, and a third wiring portion for a first functional wiring line on the second substrate, the third bridge end and the fourth bridge end are electrically connected by the third wiring portion, the first substrate and the second substrate are not in direct contact, and the bridge sub-circuit board is configured to be mounted on the main sub-circuit board by electrically connecting the third bridge end and the fourth bridge end to the first bridge end and the second bridge end, respectively. The wiring layout of the flexible printed circuit is simple and is easy to be manufactured.
TRANSPARENT ANTENNA AND MANUFACTURING METHOD THEREOF
A transparent antenna includes a substrate, an antenna grid layer, and a ground grid layer. The substrate has an electrically conductive hole extending from two opposite surfaced of the substrate. The antenna grid layer is formed on a surface of the substrate. The antenna grid layer includes a feeding portion and a transmission portion. The ground grid layer is formed on another surface of the substrate. The ground grid layer is coupled to the feeding portion of the antenna grid layer via the electrically conductive hole. An offset distance between a projection of a gridline of the antenna grid layer on the first surface and a projection of a gridline of the ground grid layer on the first surface is smaller than or equal to half of a difference between a line width of the antenna grid layer and a line width of the ground grid layer.
RIGID FLEXIBLE PRINTED CIRCUIT BOARD AND ELECTRONIC DEVICE INCLUDING THE SAME
A rigid flexible printed circuit board (RFPCB) may include: a first base conductive layer; a first rigid conductive layer spaced apart from the first base conductive layer in a first direction; a second rigid conductive layer spaced apart from the first base conductive layer in the first direction and spaced apart from the first rigid conductive layer in a second direction intersecting the first direction; a base cover layer spaced apart from the first base conductive layer in the first direction and positioned closer to the first base conductive layer than to the first rigid conductive layer and the second rigid conductive layer; a transmission line positioned between the first base conductive layer and the base cover layer; and a dummy metal layer disposed on the base cover layer, positioned between the first rigid conductive layer and the second rigid conductive layer, and overlapping the transmission line in the first direction.