Patent classifications
H01L2224/49096
Adjustable losses on bond wire arrangement
The invention provides a bond wire arrangement comprising a signal bond wire (1) for operably connecting a first electronic device (6) to a second electronic device (8), and a control bond wire (2) being arranged alongside the signal bond wire at a distance so as to have a magnetic coupling with the signal bond wire (1), and having a first end (11) coupled to ground, and a second end (12) coupled to ground via a resistive element (14). The proposed solution allows the control of the Q factor (losses) of wire bond inductors during assembly phase, which will save time and reduce overall design cycle as compared to known methods.
Method of forming a power module with a magnetic device having a conductive clip
A method of forming a power module located on a conductive substrate by providing power conversion circuitry. The method of providing the power conversion circuitry includes forming a magnetic device by placing a magnetic core proximate a conductive substrate with a surface thereof facing a conductive substrate, and placing a conductive clip proximate a surface of the magnetic core. The method of forming the magnetic device also includes electrically coupling ends of the conductive clip to the conductive substrate to cooperatively form a winding therewith about the magnetic core. The method of providing the power conversion circuitry also includes providing at least one switch on the conductive substrate. The method of forming the power module also includes depositing an encapsulant about the power conversion circuitry.
Wire bonding methods and systems incorporating metal nanoparticles
Wire bonding operations can be facilitated through the use of metal nanoparticle compositions. Both ball bonding and wedge bonding processes can be enhanced in this respect. Wire bonding methods can include providing a wire payout at a first location from a rolled wire source via a dispensation head, contacting a first metal nanoparticle composition and a first portion of the wire payout with a bonding pad, and at least partially fusing metal nanoparticles in the first metal nanoparticle composition together to form an adhering interface between the bonding pad and the first portion of the wire payout. The adhering interface can have a nanoparticulate morphology. Wire bonding systems can include a rolled wire source, a dispensation head configured to provide a wire payout, and an applicator configured to place a metal nanoparticle composition upon at least a portion of the wire payout or upon a bonding pad.
Semiconductor package including package substrate and chip stack in which a lower chip has a respective dummy pad by which each upper chip is connected to the package substrate
A semiconductor package includes a package substrate, semiconductor chips stacked on the package substrate, and electrical connectors that connect internal circuitry of each of the chips to the package substrate. Each of the semiconductor chips includes a chip selection pad for transmitting a chip selection signal to the internal circuitry of the semiconductor chip and a chip dummy pad, electrically isolated from the internal circuitry, along a first side of the semiconductor chip. The electrical connectors include a lower chip connector that electrically connects the package substrate to the chip selection pad of the lower semiconductor chip, a first auxiliary connector that electrically connects the package substrate to the chip dummy pad of the lower semiconductor chip, and a second auxiliary connector that electrically connects the chip dummy pad of the lower semiconductor chip to the chip selection pad of the upper semiconductor chip.
SEMICONDUCTOR CHIP PACKAGE COMPRISING SUBSTRATE, SEMICONDUCTOR CHIP, AND LEADFRAME AND A METHOD FOR FABRICATING THE SAME
A semiconductor chip package may comprise a semiconductor chip disposed on a substrate. The semiconductor chip may have a first surface and a second surface. The first surface of the semiconductor chip may be connected to the substrate. The semiconductor chip package may comprise a leadframe that includes a first lead and a second lead. The first lead of the leadframe may be directly attached to the second surface of the semiconductor chip. The second lead of the leadframe may be directly attached to the substrate.
Fan out semiconductor device including a plurality of semiconductor die
A semiconductor package is disclosed including a number of stacked semiconductor die, electrically connected to each other with wire bonds. The stacked semiconductor die are provided in a mold compound such that a spacing exists between a top die in the die stack and a surface of the mold compound. The wire bonds to the top die may be provided in the spacing. An RDL pad is affixed to the surface of the mold compound. Columns of bumps may be formed on the die bond pads of the top die in the die stack to electrically couple the RDL pad to the die stack across the spacing.
PASSIVE ELEMENT AND ELECTRONIC DEVICE
The passive element includes a semiconductor substrate, a first insulating film, a first metal pad, a first conductor, and a first conductive film. The semiconductor substrate has p-type or n-type conductivity, and has a main surface and a back surface. The first insulating film is provided on a first region in the main surface of the semiconductor substrate. The first metal pad is provided on the first insulating film. The first conductor extends from the first metal pad in the first direction. The first conductive film is provided on a second region adjacent to the first region in a first direction in the main surface of the semiconductor substrate. The first conductive film is in ohmic contact with the main surface of the semiconductor substrate, and has an electrical resistivity lower than an electrical resistivity of the semiconductor substrate.
Transistor die with drain via arrangement, and methods of manufacture thereof
An embodiment of a transistor die includes a semiconductor substrate a drain region, a channel region, a drain terminal, and a conductive gate tap. The conductive gate tap includes a distal end that is coupled to a gate structure over the channel region. A first segment of the drain region is adjacent to the distal end of the gate tap. The drain terminal includes a drain runner formed from one or more portions of the patterned conductive layers. A plurality of drain pillars electrically connects the drain runner to second and third segments of the drain region, and a plurality of second drain pillars electrically connect the drain runner and the third drain region segment. The build-up structure over the second drain region segment between the first and second drain pillars is devoid of electrical connections between the drain runner and the drain region.
ADJUSTABLE LOSSES OF BOND WIRE ARRANGEMENT
The invention provides a bond wire arrangement comprising a signal bond wire (1) for operably connecting a first electronic device (6) to a second electronic device (8), and a control bond wire (2) being arranged alongside the signal bond wire at a distance so as to have a magnetic coupling with the signal bond wire (1), and having a first end (11) coupled to ground, and a second end (12) coupled to ground via a resistive element (14). The proposed solution allows the control of the Q factor (losses) of wire bond inductors during assembly phase, which will save time and reduce overall design cycle as compared to known methods.
APPARATUS FOR COMMUNICATION ACROSS A CAPACITIVELY COUPLED CHANNEL
Apparatus for communication across a capacitively coupled channel are disclosed herein. An example circuit includes a first plate substantially parallel to a substrate, thereby forming a first capacitance intermediate the first plate and the substrate. A second plate is substantially parallel to the substrate and the first plate, the first plate intermediate the substrate and the second plate. A third plate is substantially parallel to the substrate, thereby forming a second capacitance intermediate the third plate and the substrate. A fourth plate is substantially parallel to the substrate and the third plate, the third plate intermediate the substrate and the fourth plate. An inductor is connected to the first plate and the third plate, the inductor to, in combination with the first capacitance and the second capacitance, form an LC amplifier.