Patent classifications
H05K2201/09845
Backplane footprint for high speed, high density electrical connectors
A printed circuit board includes a plurality of layers including attachment layers and routing layers; and columns of via patterns formed in the plurality of layers, wherein via patterns in adjacent columns are offset in a direction of the columns, each of the via patterns comprising: first and second signal vias forming a differential signal pair, the first and second signal vias extending through at least the attachment layers; and at least one conductive shadow via located between the first and second signal vias of the differential pair. In some embodiments, at least one conductive shadow via is electrically connected to a conductive surface film.
BEVELED OVERBURDEN FOR VIAS AND METHOD OF MAKING THE SAME
A substrate including a via with a beveled overburden is disclosed. The substrate can include a substrate having a first surface, a second surface opposite the first surface, and a via passing from the first surface to the second surface. The via can be coated with a metallic layer that includes a first beveled overburden on the first surface, and the first beveled overburden can include a first outer edge that forms a first bevel angle greater than 95° with the first surface. The substrate can include a second beveled overburden that includes a second outer edge that forms a second bevel angle greater than 95° with the second surface. Methods of making the beveled overburdens are also disclosed.
METHOD OF MANUFACTURING PRINTED CIRCUIT BOARD AND RESIST LAMINATE FOR THE SAME
A method of manufacturing a printed circuit board a includes preparing an insulating substrate on which a first metal layer is formed, stacking a resist laminate having a plurality of layers on the first metal layer, forming an opening exposing a portion of the first metal layer by patterning the stacked resist laminate having the plurality of layers, forming a second metal layer on the exposed portion of the first metal layer, removing the patterned resist laminate having the plurality of layers, and etching at least another portion of the first metal layer.
METHODS OF FORMING HIGH ASPECT RATIO PLATED THROUGH HOLES AND HIGH PRECISION STUB REMOVAL IN A PRINTED CIRCUIT BOARD
The present invention relates to printed circuit boards (PCBs), and more particularly, to methods of forming high aspect ratio through holes and high precision stub removal in a printed circuit board (PCB). The high precision stub removal processes may be utilized in removing long stubs and short stubs. In the methods, multiple holes of varying diameter and depth are drilled from an upper and/or lower surface of the printed circuit board utilizing drills of different diameters.
METHOD FOR PRODUCING A PRINTED CIRCUIT BOARD
Methods for producing a printed circuit board and printed circuit boards are disclosed, including a method in which a slot is formed in a substrate, the substrate having at least three layers with the slot extending through at least two of the layers. The slot has a length and a width with the length being greater than the width. The sidewall of the substrate surrounding the slot is coated with a conductive layer. The conductive layer is separated into at least two segments that are electrically isolated along the side wall of the substrate.
PRINTED CIRCUIT BOARD AND MANUFACTURING METHOD THEREFOR, AND TERMINAL
A Printed Circuit Board (PCB), a method for manufacturing a PCB, and a terminal are provided. The PCB includes: a PCB daughter board which is a Radio Frequency (RF) PCB; and a PCB mother board with a hollow slot, wherein the PCB daughter board is embedded in the hollow slot.
VARIABLE STIFFNESS MODULES
A variable-stiffness module comprises a rigid structure (10) having a first stiffness, an intermediate substrate (20) having a second stiffness less than the first stiffness, and a flexible substrate (30) having a third stiffness less than the second stiffness. The rigid structure (10) is disposed on the intermediate substrate (20) and the intermediate substrate (20) is disposed on the flexible substrate (30). A conductor (40) is disposed partially on the intermediate substrate (21) and partially on the flexible substrate (30) and connected to the rigid structure (10). The conductor (40) extends from the rigid structure (10) to the intermediate substrate (21) to the flexible substrate (30). In some embodiments, a variable-stiffness module comprises any combination of multiple rigid structures, multiple intermediate substrates, and multiple conductors. The conductor (40) can be an optical conductor or an electrical conductor and can be disposed over the rigid structure (10) or between the rigid structure (10) and the intermediate substrate (21).
Electronic device including light emitting module and light receiving module adjacent to display, and operating method thereof
An electronic device is provided. The electronic device includes a display panel, a light emitting module disposed adjacent to the display panel, and configured to output light, and a light receiving module disposed in a portion of the display panel or below or beneath the display panel, and configured to detect light of the outputted light that is reflected by an external object.
Packaging photon building blocks with top side connections and interconnect structure
Standardized photon building blocks are used to make both discrete light emitters as well as array products. Each photon building block has one or more LED chips mounted on a substrate. No electrical conductors pass between the top and bottom surfaces of the substrate. The photon building blocks are supported by an interconnect structure that is attached to a heat sink. Landing pads on the top surface of the substrate of each photon building block are attached to contact pads disposed on the underside of a lip of the interconnect structure. In a solder reflow process, the photon building blocks self-align within the interconnect structure. Conductors on the interconnect structure are electrically coupled to the LED dice in the photon building blocks through the contact pads and landing pads. The bottom surface of the interconnect structure is coplanar with the bottom surfaces of the substrates of the photon building blocks.
LIGHTING ARRANGEMENT, LIGHT GUIDE ARRANGEMENT AND METHOD
The invention relates to an illumination arrangement comprising a light-emitting optoelectronic element and an optical device for beam conversion of electromagnetic radiation generated by the light-emitting optoelectronic element. The light emitting optoelectronic element comprises a plurality of emission areas arranged in matrix form; and each emission region is associated with a main beam direction. At least a portion of the emission areas is arranged such that the centers of the emission areas lie on a curved surface.