Patent classifications
H01L2224/0235
METHOD FOR MANUFACTURING ELECTRONIC CHIPS
A method for manufacturing electronic chips includes forming, on the side of a first face of a semiconductor substrate, in and on which a plurality of integrated circuits has been formed beforehand, metallizations coupling contacts of adjacent integrated circuits to one another. The method further includes forming, on the side of the first face of the substrate, first trenches extending through the first face of the substrate and laterally separating the adjacent integrated circuits. The first trenches extend through the metallizations to form at least a portion of metallizations at each of the adjacent circuits.
SEMICONDUCTOR PACKAGE ASSEMBLY
The invention provides a semiconductor package assembly. The semiconductor package assembly includes a redistribution layer (RDL) structure. The RDL structure includes a conductive trace. A redistribution layer (RDL) contact pad is electrically coupled to the conductive trace. The RDL contact pad is composed of a symmetrical portion and an extended wing portion connected to the symmetrical portion. The extended wing portion overlaps at least one-half of a boundary of the symmetrical portion when observed from a plan view.
PASSING SIGNALS THROUGH MICRO DEVICE SIDEWALLS
The present invention relates to structure and formation of side walls in micro devices. The structure allows access of one side of the micro device to another side through conductive layers and pads. In particular, the top and bottom sides of the micro devices are in direction of the current in the device and sidewalls are isolation surfaces surrounding the top and bottom sides of the device.
PASSING SIGNALS THROUGH MICRO DEVICE SIDEWALLS
The present invention relates to structure and formation of side walls in micro devices. The structure allows access of one side of the micro device to another side through conductive layers and pads. In particular, the top and bottom sides of the micro devices are in direction of the current in the device and sidewalls are isolation surfaces surrounding the top and bottom sides of the device.
Semiconductor Devices and Methods of Manufacturing
Packaged devices and methods of manufacturing the devices are described herein. The packaged devices may be fabricated using heterogeneous devices and asymmetric dual-side molding on a multi-layered redistribution layer (RDL) structure. The packaged devices may be formed with a heterogeneous three-dimensional (3D) Fan-Out System-in-Package (SiP) structure having small profiles and can be formed using a single carrier substrate.
Dual-damascene zero-misalignment-via process for semiconductor packaging
Techniques that can assist with fabricating a package layer that includes a plurality of dual-damascene zero-misalignment-vias (dual-damascene ZMVs) and a trace between the dual-damascene ZMVs are described. The disclosed techniques allow for the dual-damascene ZMVs and their corresponding trace to be plated simultaneously in a single step or operation. As such, there is little or no misalignment between the dual-damascene ZMVs, the trace, and the metal pads connected to the ZMVs. In this way, one or more of the embodiments described herein can assist with reducing manufacturing costs, reducing development time of fabricating a package layer, and with increasing the I/O density in a semiconductor package.
SEMICONDUCTOR DEVICE HAVING A DUAL MATERIAL REDISTRIBUTION LINE
A semiconductor device includes a first conductive element electrically connected to an interconnect structure, wherein the first conductive element includes a first conductive material. The semiconductor device further includes an RDL over the first conductive element and electrically connected to the first conductive element, wherein the RDL includes a second conductive material different from the first conductive material. The semiconductor device further includes a passivation layer over the RDL, wherein a top portion of a sidewall of the second passivation layer includes a convex curve protruding in a direction parallel to a top surface of the interconnect structure, a width of the top portion at a bottom of the convex curve is less than a width of the top portion at a middle of the convex curve, and the middle of the convex curve is above the bottom of the convex curve.
Chip module and method for forming the same
A chip module is provided. The chip module includes a chip having an upper surface, a lower surface and a sidewall. The chip includes a signal pad region adjacent to the upper surface. A recess extends from the upper surface toward the lower surface along the sidewall of the chip. A redistribution layer is electrically connected to the signal pad region and extends into the recess. A circuit board is located between the upper surface and the lower surface and extends into the recess. A conducting structure is located in the recess and electrically connects the circuit board to the redistribution layer. A method for forming the chip module is also provided.
Chip module and method for forming the same
A chip module is provided. The chip module includes a chip having an upper surface, a lower surface and a sidewall. The chip includes a signal pad region adjacent to the upper surface. A recess extends from the upper surface toward the lower surface along the sidewall of the chip. A redistribution layer is electrically connected to the signal pad region and extends into the recess. A circuit board is located between the upper surface and the lower surface and extends into the recess. A conducting structure is located in the recess and electrically connects the circuit board to the redistribution layer. A method for forming the chip module is also provided.
SEMICONDUCTOR DEVICES WITH REDISTRIBUTION STRUCTURES CONFIGURED FOR SWITCHABLE ROUTING
Semiconductor devices having redistribution structures, and associated systems and methods, are disclosed herein. In one embodiment, a semiconductor package includes a first semiconductor die including a first redistribution structure and a second semiconductor die including a second redistribution structure. The first and second semiconductor dies can be mounted on a package substrate such that the first and second redistribution structures are aligned with each other. In some embodiments, an interconnect structure can be positioned between the first and second semiconductor dies to electrically couple the first and second redistribution structures to each other. The first and second redistribution structures can be configured such that signal routing between the first and second semiconductor dies can be altered based on the location of the interconnect structure.