Abstract:
A power semiconductor device is provided comprising: a collector electrode, a collector layer of a second conductivity type, a drift layer of a first conductivity type, a base layer of the second conductivity type, a first insulating layer having an opening, an emitter layer of the first conductivity type, the emitter layer contacts the base layer and separated from the drift layer by one of the first insulating layer or the base layer, a body layer of the second conductivity type arranged laterally to the emitter layer and separated from the base layer by the first insulating layer and the emitter layer, a source region of the first conductivity type separated from the emitter layer by the body layer, an emitter electrode contacted by the source region. The device further comprises a first layer of the second conductivity type contacting the emitter electrode and separated from the base layer, and a second layer of the first conductivity type arranged between the first layer and the base layer and separated from the emitter layer and the source region. A planar MIS gate electrode is arranged laterally from the emitter electrode, a corresponding MIS channel being formable between the source region, the body layer and the emitter layer. A thyristor current path extends between the emitter layer, the base layer and the drift layer through the opening, and a turn-off MIS channel is formable below the planar MIS gate electrode from the first layer, the second layer, the base layer to the drift layer.
Abstract:
An insulated gate bipolar device is disclosed which can include layers of different conductivity types between an emitter electrode on an emitter side and a collector electrode on a collector side in the following order: a source region of a first conductivity type, a base layer of a second conductivity type, which contacts the emitter electrode in a contact area, an enhancement layer of the first conductivity type, a floating compensation layer of the second conductivity type having a compensation layer thickness tp, a drift layer of the first conductivity type having lower doping concentration than the enhancement layer and a collector layer of the second conductivity type.
Abstract:
A junction barrier Schottky rectifier with first and second drift layer sections, wherein a peak net doping concentration of the first section is at least two times lower than a minimum net doping concentration of the second section. For each emitter region the first section includes a layer which is in contact with the respective emitter region to form a pn-junction between the first section and the respective emitter region, wherein the thickness of this layer in a direction perpendicular to the interface between the first section and the respective emitter region is at least 0.1 μm. The JBS rectifier has a transition from unipolar to bipolar conduction mode at a lower forward bias due to lowering of electrostatic forces otherwise impairing the transport of electrons toward the emitter regions under forward bias conditions, and with reduced snap-back phenomenon.
Abstract:
An insulated gate bipolar device is disclosed which can include layers of different conductivity types between an emitter electrode on an emitter side and a collector electrode on a collector side in the following order: a source region of a first conductivity type, a base layer of a second conductivity type, which contacts the emitter electrode in a contact area, an enhancement layer of the first conductivity type, a floating compensation layer of the second conductivity type having a compensation layer thickness tp, a drift layer of the first conductivity type having lower doping concentration than the enhancement layer and a collector layer of the second conductivity type.