DocumentCode :
2003597
Title :
A simple approach to reduce peak temperatures in integrated and discrete power mosfets
Author :
Pfost, Martin ; Zawischka, Timo ; Ebli, Michael
Author_Institution :
Robert Bosch Center for Power Electron., Reutlingen Univ., Reutlingen, Germany
fYear :
2013
fDate :
11-12 July 2013
Firstpage :
1
Lastpage :
4
Abstract :
DMOS transistors are often subject to large power dissipation and thus substantial self-heating. This can lead to extremely high device temperatures, thermal runaway, and device failure. Because of this, the safe operating area of the DMOS is limited by its peak temperature. Therefore, it has been suggested to lower the peak temperature by shifting the heat generation from the hotter to the cooler parts of the device. In this paper a simple approach to redistribute the power dissipation density in DMOS transistors will be presented that can be used to reduce the peak temperature significantly. The proposed approach can easily be applied to integrated and discrete power MOSFETs. Layout modifications are usually sufficient, no process changes are required. The impact on the electrical characteristics of the DMOS will be evaluated and explained. The presented approach can effectively lower the peak temperature in typical DMOS transistors as will be demonstrated by measurements and numerical simulations.
Keywords :
numerical analysis; power MOSFET; semiconductor device measurement; semiconductor device reliability; DMOS transistor; device failure; discrete power MOSFET; integrated power MOSFET; layout modification; numerical simulation; peak temperature reduction; power dissipation density; substantial self-heating; thermal runaway; Logic gates; MOSFET; Power dissipation; Temperature measurement; Temperature sensors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signals, Circuits and Systems (ISSCS), 2013 International Symposium on
Conference_Location :
Iasi
Print_ISBN :
978-1-4799-3193-4
Type :
conf
DOI :
10.1109/ISSCS.2013.6651262
Filename :
6651262
Link To Document :
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