Patent classifications
H01L23/49877
Structure and formation method of chip package with shielding structure
Structures and formation methods of a chip package are provided. The method includes forming multiple conductive structures over a carrier substrate. The method also includes disposing a semiconductor die over the carrier substrate such that the conductive structures surround the semiconductor die. The method further includes forming a protective layer to surround the conductive structures and the semiconductor die. In addition, the method includes disposing a shielding element over the semiconductor die and the conductive structures. The shielding element is electrically connected to the conductive structures.
SEMICONDUCTOR DEVICE
A semiconductor device includes a wiring board that includes a first insulating layer, a first conductive layer arranged over the first insulating layer, a second conductive layer arranged under the first insulating layer, the wiring board further including a magnetic layer that is arranged between the first insulating layer and the first or second conductive layer and that has a higher specific magnetic permeability than the first and second conductive layers, and a carbon layer that is arranged between the first insulating layer and the first or second conductive layer and that has a higher thermal conductivity in a planary direction than the first and second conductive layers; a semiconductor chip electrically connected to the first and second conductive layers; and an insulating circuit board arranged separately from the wiring board and that has the semiconductor chip mounted thereon.
Microelectronic package electrostatic discharge (ESD) protection
Embodiments may relate to a material to provide electrostatic discharge (ESD) protection in an electrical device. The material may include first and second electrically-conductive carbon allotropes. The material may further include an electrically-conductive polymer that is chemically bonded to the first and second electrically-conductive carbon allotropes such that an electrical signal may pass between the first and second electrically-conductive carbon allotropes. Other embodiments may be described or claimed.
PRINTED CIRCUIT BOARD AND MANUFACTURING METHOD THEREOF
Provided is a printed circuit board using thermally and electrically conductive layer, and a manufacturing method thereof The manufacturing method for mounting a plurality of elements includes forming an electrode layer on a substrate of a PCB, forming a photo solder resist (PSR) layer in a patterned manner on a first area of the electrode layer; forming a conductive layer on the PSR layer in the patterned manner, the conductive layer being configured to conduct heat and static electricity; and mounting a plurality of elements on a second area of the side of the PCB, the second area being different from the first area.
Component carrier with stabilizing structure for interface adhesion
A component carrier includes a stack with at least one electrically insulating layer structure and/or at least one electrically conductive layer structure, a component which is embedded in the stack and a stabilizing structure arranged between a stack surface of the stack and a main surface of the component. The stabilizing structure provides an interface adhesion to the main surface of the component.
Printed circuit board and manufacturing method thereof
Provided is a printed circuit board using thermally and electrically conductive layer, and a manufacturing method thereof. The manufacturing method for mounting a plurality of elements includes forming an electrode layer on a substrate of a PCB, forming a photo solder resist (PSR) layer in a patterned manner on a first area of the electrode layer; forming a conductive layer on the PSR layer in the patterned manner, the conductive layer being configured to conduct heat and static electricity; and mounting a plurality of elements on a second area of the side of the PCB, the second area being different from the first area.
MICROELECTRONIC PACKAGE ELECTROSTATIC DISCHARGE (ESD) PROTECTION
Embodiments may relate to a material to provide electrostatic discharge (ESD) protection in an electrical device. The material may include first and second electrically-conductive carbon allotropes. The material may further include an electrically-conductive polymer that is chemically bonded to the first and second electrically-conductive carbon allotropes such that an electrical signal may pass between the first and second electrically-conductive carbon allotropes. Other embodiments may be described or claimed.
GRAPHITE-LAMINATED CHIP-ON-FILM-TYPE SEMICONDUCTOR PACKAGE HAVING IMPROVED HEAT DISSIPATION AND ELECTROMAGNETIC WAVE SHIELDING FUNCTIONS
The present invention relates to a chip-on film type semiconductor package including an integrated circuit chip, a printed circuit board layer, and a graphite layer, in which the integrated circuit chip is connected to one surface of the printed circuit board layer directly or by means of a mounting element and the graphite layer is laminated on an opposite surface of the printed circuit board layer and a display device including the same.
Semiconductor substrate and method of manufacturing the same
A semiconductor substrate and a method of manufacturing the same are provided. The semiconductor substrate includes a carrier and a conductive post. The carrier has a first surface, a second surface opposite to the first surface and a lateral surface extending between the first surface and the second surface. The carrier has a through hole extending between the first surface and the second surface. The carrier has a first opening on the lateral surface. The conductive post is disposed within the through hole.
SEMICONDUCTOR ASSEMBLIES INCLUDING THERMAL CIRCUITS AND METHODS OF MANUFACTURING THE SAME
Semiconductor assemblies including thermal layers and associated systems and methods are disclosed herein. In some embodiments, the semiconductor assemblies comprise one or more semiconductor devices over a substrate. The substrate includes a thermal layer configured to transfer thermal energy along a lateral plane and across the substrate. The thermal energy is transferred along a non-lateral direction from the semiconductor device to the graphene layer using one or more thermal connectors.