Patent classifications
H05K3/005
Method for the electrical passivation of electrode arrays and/or conductive paths in general, and a method for producing stretchable electrode arrays and/or stretchable conductive paths in general
A method produces a conductive paste comprising 15-20% by weight of PDMS and 80-85% by weight of metallic micro-nano particles, wherein the conductive paste is obtained by repeated addition of singular doses of PDMS to a heptane diluted PDMS low viscosity liquid containing the metallic micro-nano particles, wherein the heptane fraction is allowed to evaporate after addition of each of the singular doses of PDMS. A method forms a conductive path on a support layer, wherein the conductive path is encapsulated by an encapsulation layer comprising at least one via through which at least one portion of the conductive path is exposed, the method comprising filling the at least one via with the conductive paste.
Polymer frame for a chip, such that the frame comprises at least one via in series with a capacitor
A chip socket defined by an organic matrix framework, wherein the organic matrix framework comprises at least one via post layer where at least one via through the framework around the socket includes at least one capacitor comprising a lower electrode, a dielectric layer and an upper electrode in contact with the via post.
Printer and printing method for printing of printed circuit boards
A printer includes a belt, a tray and a plurality of printing devices located over the belt. The tray is located on the belt and receives a printed circuit board (PCB). A sensor attached to the tray. The sensor is used to sense whether the PCB is located in the tray, when the PCB is located in the tray, the belt is driven by a driving device to transport the tray to be located below each of the plurality of printing devices. Each of the plurality of printing devices is used to print the PCB. The disclosure further offers a printing method for the PCB using the printer.
Image pickup element mounting substrate and image pickup device
An image pickup element mounting substrate includes: a frame body composed of an insulating layer, a through hole being defined by an internal periphery of the frame body; an electronic component mounted on a lower surface side of the frame body; and a flat plate which is disposed on a lower surface of the frame body and covers an opening of the through hole while being partly kept in out-of-contact with the electronic component, the flat plate including an image pickup element mounting section at a part of an upper surface thereof which part is surrounded by the frame body, a lower surface of the electronic component being located above a level of a lower surface of the flat plate.
Heart activity sensor structure
A heart activity sensor structure includes a flexible substrate being substantially non-conductive, at least two electrodes printed on one side of the flexible substrate and configured to be placed against a skin of a user in order to measure biometric signals related to heart activity, and an electrostatic discharge shield printed on opposite side the flexible textile substrate, compared to the printing of the at least two electrodes, for protecting the at least two electrodes from static electricity.
Filling method of conductive paste and manufacturing method of multi-layer printed circuit board
A filling method of conductive paste includes a step of providing a protective film on a principal surface of a metal foil clad laminated sheet, a step of forming bottomed via holes, a step of removing the film from a surface to a midway thereof to form a conductive paste flowing groove having the via holes, a step of disposing a housing member on the film, and thereby, causing a conductive paste injecting channel and a vacuum evacuating channel to communicate with a conductive paste flowing space S, a step of depressurizing the space S via the channel, and a step of injecting conductive paste into the space S via the channel, and thereby, filling an inside of the via holes with the conductive paste.
Composite flexible printed wiring board and method for manufacturing composite flexible printed wiring board
A composite flexible printed wiring board includes a first flexible printed wiring board having an insulating layer, conductor layers and a first metal block fitted in a hole penetrating through the conductor layers and insulating layer, and a second flexible printed wiring board having an insulating layer, conductor layers and a second metal block fitted in a hole penetrating through the conductor layers and insulating layer. The first flexible printed wiring board and the second flexible printed wiring board have a welded portion formed by welding the first metal block and the second metal block and joining the first metal block and the second metal block such that the welded portion is joining the first flexible printed wiring board and the second flexible printed wiring board.
PRINTED CIRCUIT BOARD WITH HEAT SINK
Printed circuit boards (PCBs) may include a heat sink configured to draw heat from a surface-mounted component through the PCB toward a side of the PCB opposite a side having the surface-mounted component. The heat sinks may be single piece components that extend at least partially through the PCB. In some embodiments, the PCB may include connectors that interface between the PCB and a heat sink, or possibly other components.
Flexible substrate with conductive layer for mounting LED arrays
A patterned conductive layer on a flexible substrate includes pads for mounting an array of LEDs, conductive strips, and conductive tabs that couple the conductive strips to the pads. The desired circuit configuration is created by removing select tabs by punching holes or otherwise piercing the flexible substrate at the location of the tabs. In some embodiments, the patterned conductive layer is arranged to permit each LED to be mounted in either of two mirrored orientations, and in some embodiments, the patterned conductive layer is arranged to permit a separation between LEDs that is not predefined by the pattern. In some embodiments, the unmodified patterned conductive layer is arranged to provide a parallel circuit configuration, and the modified patterned conductive layer is arranged to provide a series or series-parallel configuration.
TRANSPARENT LED DISPLAY DEVICE INTEGRATED WITH SMPS AND MANUFACTURING METHOD THEREOF
A method for manufacturing a transparent LED display device includes forming a line of a grid-shaped metal mesh pattern on a first surface of both surfaces of a transparent heat-resistant optical PET by using a wet etching method on a transparent heat-resistant optical PET film, punching a hole in the transparent heat-resistant optical PET film and soldering a line of a controller PCB placed on a second surface of both the surfaces of the transparent heat-resistant optical PET and the line of the metal mesh pattern on the first surface to electrically connect the controller PCB to the line of the metal mesh pattern, mounting color LEDs on the first surface of the transparent heat-resistant optical PET film, and integrally coupling the SMPS to the transparent heat-resistant optical PET film.