2014PCIM Europe 2014; International Exhibition and Conference for Power Electronics, Intelligent Motion, Renewable Energy and Energy Management; Proceedings ofRequires access

Investigation of SiC Stack and Discrete Cascodes

Xueqing Li, Anup Bhalla, P. Alexandrov, John L. Hostetler, Leonid Fursin

Open publisher page 6 citations

Abstract

The SiC cascode switch integrates the advantages of a Si MOSFET and the excellent high voltage, high frequency and high temperature properties of the SiC normally-on JFET. It has a normally-off operation mode, simple gate drive, and a reliable MOS gate without the threshold voltage drift. These superior features make the SiC cascode device the best candidate for realizing a smaller, faster and cheaper power conversion system. The cascode can be constructed in discrete configuration or in stack configuration. In this work, the switching performance, short-circuit withstand capability and unclamped inductive switching (UIS) capability of 1.2kV SiC discrete and stack cascodes are investigated by performing experiments and numerical simulations. Simulation results show that the silicon MOSFET in the stack cascode does not limit the short circuit and UIS capabilities of the stack cascode.

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What this paper is about

The SiC cascode switch integrates the advantages of a Si MOSFET and the excellent high voltage, high frequency and high temperature properties of the SiC normally-on JFET. It has a normally-off operation mode, simple gate drive, and a reliable MOS gate without the threshold voltage drift. These superior features make the SiC cascode device the best candidate for realizing a smaller, faster and cheaper power conversion system. The cascode can be constructed in discrete configuration or in stack configuration. In this work, the switching performance, short-circuit withstand capability and unclamped inductive switching (UIS) capability of 1.2kV SiC discrete and stack cascodes are investigated by performing experiments and numerical simulations. Simulation results show that the silicon MOSFET in the stack cascode does not limit the short circuit and UIS capabilities of the stack cascode.

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OpenAlex reports 6 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

The SiC cascode switch integrates the advantages of a Si MOSFET and the excellent high voltage, high frequency and high temperature properties of the SiC normally-on JFET. It has a normally-off operation mode, simple gate drive, and a reliable MOS gate without the threshold voltage drift. These superior features make the SiC cascode device the best candidate for realizing a smaller, faster and cheaper power conversion system. The cascode can be constructed in discrete configuration or in stack configuration. In this work, the switching performance, short-circuit withstand capability and unclamped inductive switching (UIS) capability of 1.2kV SiC discrete and stack cascodes are investigated by performing experiments and numerical simulations. Simulation results show that the silicon MOSFET in the stack cascode does not limit the short circuit and UIS capabilities of the stack cascode.

Key concepts: Cascode, JFET, Stack (abstract data type), MOSFET, Electronic engineering, Materials science, Electrical engineering, Voltage

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