Patent classifications
H01L29/7804
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.
Silicon carbide semiconductor device
A silicon carbide semiconductor device includes a transistor region, a diode region, a gate line region, and a gate pad region. The gate pad region and the gate line region are each disposed to be sandwiched between the diode region and the diode region, and a gate electrode on the gate pad region and the gate line region is formed on an insulating film formed on an epitaxial layer. Thus, breakdown of the insulating film in the gate region can be prevented without causing deterioration in quality of the gate insulating film, upon switching and avalanche breakdown.
SEMICONDUCTOR DEVICE COMPRISING A TEMPERATURE SENSOR, TEMPERATURE SENSOR AND METHOD OF MANUFACTURING A SEMICONDUCTOR DEVICE COMPRISING A TEMPERATURE SENSOR
A semiconductor device includes a transistor in a semiconductor substrate having a first main surface. The transistor includes a source region, a source contact, the source contact including a first and second source contact portion, and a gate electrode in a gate trench in the first main surface adjacent to a body region. The body region and a drift zone are disposed along a first direction parallel to the first main surface between the source region and a drain region. The second source contact portion is disposed at a second main surface of the semiconductor substrate. The first source contact portion includes a source conductive material in direct contact with the source region, the first source contact portion further including a portion of the semiconductor substrate between the source conductive material and the second source contact portion. The semiconductor device further includes a temperature sensor in the semiconductor substrate.
Semiconductor carrier with vertical power FET module
A monolithic power switch provides a semiconductor layer, a three dimensional FET formed in the semiconductor layer to modulate currents through the semiconductor layer, and a toroidal inductor with a ceramic magnetic core formed on the semiconductor layer around the FET and having a first winding connected to the FET.
INTEGRATED MOS TRANSISTOR WITH SELECTIVE DISABLING OF CELLS THEREOF
An integrated device includes at least one MOS transistor having a plurality of cells. In each of one or more of the cells a disabling structure is provided. The disabling structure is configured to be in a non-conductive condition when the MOS transistor is switched on in response to a control voltage comprised between a threshold voltage of the MOS transistor and an intervention voltage of the disabling structure, or to be in a conductive condition otherwise. A system comprising at least one integrated device as above is also proposed. Moreover, a corresponding process for manufacturing this integrated device is proposed.
DESIGN AND MANUFACTURE OF POWER DEVICES HAVING INCREASED CROSS OVER CURRENT
An embodiment relates to a n-type planar gate DMOSFET comprising a Silicon Carbide (SiC) substrate. The SiC substrate includes a N+ substrate, a N− drift layer, a P-well region and a first N+ source region within each P-well region. A second N+ source region is formed between the P-well region and a source metal via a silicide layer. During third quadrant operation of the DMOSFET, the second N+ source region starts depleting when a source terminal is positively biased with respect to a drain terminal. The second N+ source region impacts turn-on voltage of body diode regions of the DMOSFET by establishing short-circuitry between the P-well region and the source metal when the second N+ source region is completely depleted.
POWER MODULE AND POWER CIRCUIT
A power module includes: a bridge unit including a bridge circuit composed including a plurality of SiC-MOSFETs Q1 and Q2 and an internal capacitor C1 connected so as to extend over between both ends of the bridge circuit; power terminals P and N of which one ends are respectively connected to both ends of the bridge unit and other ends are respectively exposed to the outside; and a snubber circuit (RB, CB) connected so as to extend over between an exposed side of the positive-side power terminal P and an exposed side of the negative-side power terminal N. A power circuit comprising the power module, and a smoothing capacitor C2 connected in parallel to the snubber circuit. There can be provided the power module and the power circuit which can simultaneously realize the low parasitic inductance and the low noise.
Semiconductor device having field-effect structures with different gate materials, and method for manufacturing thereof
A semiconductor device includes a semiconductor substrate, at least a first field-effect structure integrated in the semiconductor substrate and at least a second field-effect structure integrated in the semiconductor substrate. The first field-effect structure includes a first gate electrode comprised of a polycrystalline semiconductor material. The second field-effect structure includes a second gate electrode comprised of one of a metal, a metal alloy, a metal layer stack, a metal alloy layer stack and any combination thereof.
SEMICONDUCTOR DEVICE
A semiconductor device includes a semiconductor substrate of silicon carbide, and a temperature sensor portion. The semiconductor substrate includes a portion in which an n-type drift region and a p-type body region are laminated. The temperature sensor portion is disposed in the semiconductor substrate and is separated from the drift region by the body region. The temperature sensor portion includes an n-type cathode region being in contact with the body region, and a p-type anode region separated from the body region by the cathode region.
SEMICONDUCTOR DEVICE
A semiconductor device includes a first-conductivity type first semiconductor region, a gate electrode extending inwardly of the first semiconductor region, a gate insulation layer interposed between the gate electrode and the first semiconductor region, a second-conductivity type second semiconductor region on the first semiconductor region, a first-conductivity type third semiconductor region on selected portions of second semiconductor region, a second-conductivity type fourth semiconductor region on the first semiconductor region and spaced from the second semiconductor region, a first-conductivity type fifth semiconductor region on the fourth semiconductor region, a first insulation layer on the third and fifth semiconductor regions and extending over the gate electrode, a first electrode on the first insulation layer, and a first insulation portion extending between the second and fourth semiconductor regions.