Patent classifications
H01L2224/37193
POWER MODULE AND FABRICATION METHOD OF THE SAME, GRAPHITE PLATE, AND POWER SUPPLY EQUIPMENT
A power module (PM) includes: an insulating substrate; a semiconductor device disposed on the insulating substrate, the semiconductor device including electrodes on a front surface side and a back surface side thereof; and a graphite plate having an anisotropic thermal conductivity, the graphite plate of which one end is connected to the front surface side of the semiconductor device and the other end is connected to the insulating substrate, wherein heat of the front surface side of the semiconductor device is transferred to the insulating substrate through the graphite plate. There is provide an inexpensive power module capable of reducing a stress and capable of exhibiting cooling performance not inferior to that of the double-sided cooling structures.
Power module and fabrication method of the same, graphite plate, and power supply equipment
A power module (PM) includes: an insulating substrate; a semiconductor device disposed on the insulating substrate, the semiconductor device including electrodes on a front surface side and a back surface side thereof; and a graphite plate having an anisotropic thermal conductivity, the graphite plate of which one end is connected to the front surface side of the semiconductor device and the other end is connected to the insulating substrate, wherein heat of the front surface side of the semiconductor device is transferred to the insulating substrate through the graphite plate. There is provide an inexpensive power module capable of reducing a stress and capable of exhibiting cooling performance not inferior to that of the double-sided cooling structures.
Package structure for power device
A package structure for power devices includes a heat dissipation insulating substrate, a plurality of power devices, a heat dissipation baseplate, and a thermal interface layer. The heat dissipation insulating substrate has a first surface and a second surface which are opposite to each other, and the power devices are coupled to the first surface of the heat dissipation insulating substrate. The heat dissipation baseplate is disposed at the second surface of the heat dissipation insulating substrate, wherein at least one of a surface of the heat dissipation baseplate and the second surface of the heat dissipation insulating substrate has at least one plateau, and the plateau is at least disposed within a projected area of the plurality of power devices. The thermal interface layer is disposed between the second surface of the heat dissipation insulating substrate and the surface of the heat dissipation baseplate.
SEMICONDUCTOR MODULE AND METHOD FOR MANUFACTURING SEMICONDUCTOR MODULE
Provided is a semiconductor module including: an insulating circuit board having a circuit pattern formed in one surface; a semiconductor chip placed in the insulating circuit board; and a wiring portion for electrically connecting the semiconductor chip and the circuit pattern. The wiring portion includes a chip connecting portion connected to the semiconductor chip. A surface of the chip connecting portion includes: a plurality of concave portions; and a flat portion disposed between two concave portions.
SEMICONDUCTOR MODULE AND METHOD FOR MANUFACTURING SEMICONDUCTOR MODULE
Provided is a semiconductor module including: an insulating circuit board having a circuit pattern formed in one surface; a semiconductor chip placed in the insulating circuit board; and a wiring portion for electrically connecting the semiconductor chip and the circuit pattern. The wiring portion includes a chip connecting portion connected to the semiconductor chip. A surface of the chip connecting portion includes: a plurality of concave portions; and a flat portion disposed between two concave portions.
SEMICONDUCTOR DEVICE AND INSPECTION DEVICE
A semiconductor device 10 includes a pair of electrodes 16 and a conductive connection member 21 electrically bonded to the pair of electrodes 16. At least a portion of a perimeter of a bonding surface 24 of at least one of the pair of electrodes 16 and the conductive connection member 21 includes an electromigration reducing area 22.
PACKAGE STRUCTURE FOR POWER DEVICE
A package structure for power devices includes a heat dissipation insulating substrate, a plurality of power devices, at least one conductive clip, and a heat dissipation baseplate. The heat dissipation insulating substrate has a first surface and a second surface opposite thereto, and the power devices form a bridge circuit topology and are disposed on the first surface, wherein active regions of at least one of the power devices are flip-chip bonded to the first surface. The conductive clip is configured to electrically connect at least one of the power devices to the first surface, and the heat dissipation baseplate is disposed at the second surface of the heat dissipation insulating substrate.
PACKAGE STRUCTURE FOR POWER DEVICE
A package structure for power devices includes a heat dissipation insulating substrate, a plurality of power devices, a heat dissipation baseplate, and a thermal interface layer. The heat dissipation insulating substrate has a first surface and a second surface which are opposite to each other, and the power devices are coupled to the first surface of the heat dissipation insulating substrate. The heat dissipation baseplate is disposed at the second surface of the heat dissipation insulating substrate, wherein at least one of a surface of the heat dissipation baseplate and the second surface of the heat dissipation insulating substrate has at least one plateau, and the plateau is at least disposed within a projected area of the plurality of power devices. The thermal interface layer is disposed between the second surface of the heat dissipation insulating substrate and the surface of the heat dissipation baseplate.
Power module and fabrication method of the same, graphite plate, and power supply equipment
A power module (PM) includes: an insulating substrate; a semiconductor device disposed on the insulating substrate, the semiconductor device including electrodes on a front surface side and a back surface side thereof; and a graphite plate having an anisotropic thermal conductivity, the graphite plate of which one end is connected to the front surface side of the semiconductor device and the other end is connected to the insulating substrate, wherein heat of the front surface side of the semiconductor device is transferred to the insulating substrate through the graphite plate. There is provide an inexpensive power module capable of reducing a stress and capable of exhibiting cooling performance not inferior to that of the double-sided cooling structures.
Semiconductor device and inspection device
A semiconductor device 10 includes a pair of electrodes 16 and a conductive connection member 21 electrically bonded to the pair of electrodes 16. At least a portion of a perimeter of a bonding surface 24 of at least one of the pair of electrodes 16 and the conductive connection member 21 includes an electromigration reducing area 22.