The Ferro-Power MOSFET: Enhancing Short-Circuit Robustness in Power Switches With a Ferroelectric Gate Stack

Power Metal Oxide Semiconductor Field Effect Transistors (MOSFETs) are essential in modern electronics, enabling efficient power conversion and control in a wide range of applications. Wide bandgap semiconductors such as silicon carbide (SiC) and gallium nitride (GaN) have been shown to boost device...

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Main Authors: Marco Boccarossa, Luca Maresca, Alessandro Borghese, Michele Riccio, Giovanni Breglio, Andrea Irace, Giovanni A. Salvatore
Format: Article
Language:English
Published: IEEE 2025-01-01
Series:IEEE Access
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Online Access:https://ieeexplore.ieee.org/document/10945321/
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author Marco Boccarossa
Luca Maresca
Alessandro Borghese
Michele Riccio
Giovanni Breglio
Andrea Irace
Giovanni A. Salvatore
author_facet Marco Boccarossa
Luca Maresca
Alessandro Borghese
Michele Riccio
Giovanni Breglio
Andrea Irace
Giovanni A. Salvatore
author_sort Marco Boccarossa
collection DOAJ
description Power Metal Oxide Semiconductor Field Effect Transistors (MOSFETs) are essential in modern electronics, enabling efficient power conversion and control in a wide range of applications. Wide bandgap semiconductors such as silicon carbide (SiC) and gallium nitride (GaN) have been shown to boost device performance, by providing higher efficiency and faster switching for high-power, high-frequency applications. Although optimised for standard operation, their performance under short circuit (SC) events remains critical mostly because of the higher current density. Notably, SiC MOSFETs can only withstand SC conditions for a few microseconds, necessitating larger layouts or faster control electronics to prevent the catastrophic failure of the device. This paper introduces a novel power device, the Ferro-Power MOSFET, that integrates a ferroelectric material into the gate stack of a power SiC MOSFET. This innovative approach leverages the temperature-dependent dielectric constant of ferroelectrics to effectively reduce the temperature rise during short-circuit events without altering the basic layout of the device neither the control electronics. TCAD simulations and design optimisation of a 1.2 kV SiC MOSFET reveal substantial enhancements, achieving temperature and current reductions of up to 31% and 42%, respectively, without compromising current conduction during normal operation. It stands to reason that this concept is general and can be broadly applied to any power MOSFET. Moreover, it is bolstered by recent achievements in ferroelectricity in CMOS-compatible hafnium oxide (HfO2), thus prospecting concrete experimental developments in power semiconductors.
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spelling doaj-art-c0613e77bbb74355ba4fad90de17a8cf2025-08-20T02:16:29ZengIEEEIEEE Access2169-35362025-01-0113592645927410.1109/ACCESS.2025.355593110945321The Ferro-Power MOSFET: Enhancing Short-Circuit Robustness in Power Switches With a Ferroelectric Gate StackMarco Boccarossa0https://orcid.org/0000-0002-6912-5413Luca Maresca1https://orcid.org/0000-0003-4660-5163Alessandro Borghese2https://orcid.org/0000-0002-6285-4242Michele Riccio3https://orcid.org/0000-0002-5926-4911Giovanni Breglio4https://orcid.org/0000-0002-9350-5483Andrea Irace5https://orcid.org/0000-0003-1400-8380Giovanni A. Salvatore6https://orcid.org/0000-0002-8983-3257Department of Electrical Engineering and Information Technologies, University of Naples Federico II, Naples, ItalyDepartment of Electrical Engineering and Information Technologies, University of Naples Federico II, Naples, ItalyDepartment of Electrical Engineering and Information Technologies, University of Naples Federico II, Naples, ItalyDepartment of Electrical Engineering and Information Technologies, University of Naples Federico II, Naples, ItalyDepartment of Electrical Engineering and Information Technologies, University of Naples Federico II, Naples, ItalyDepartment of Electrical Engineering and Information Technologies, University of Naples Federico II, Naples, ItalyDepartment of Molecular Science and Nanosystems, Ca’ Foscari University of Venice, Venice, ItalyPower Metal Oxide Semiconductor Field Effect Transistors (MOSFETs) are essential in modern electronics, enabling efficient power conversion and control in a wide range of applications. Wide bandgap semiconductors such as silicon carbide (SiC) and gallium nitride (GaN) have been shown to boost device performance, by providing higher efficiency and faster switching for high-power, high-frequency applications. Although optimised for standard operation, their performance under short circuit (SC) events remains critical mostly because of the higher current density. Notably, SiC MOSFETs can only withstand SC conditions for a few microseconds, necessitating larger layouts or faster control electronics to prevent the catastrophic failure of the device. This paper introduces a novel power device, the Ferro-Power MOSFET, that integrates a ferroelectric material into the gate stack of a power SiC MOSFET. This innovative approach leverages the temperature-dependent dielectric constant of ferroelectrics to effectively reduce the temperature rise during short-circuit events without altering the basic layout of the device neither the control electronics. TCAD simulations and design optimisation of a 1.2 kV SiC MOSFET reveal substantial enhancements, achieving temperature and current reductions of up to 31% and 42%, respectively, without compromising current conduction during normal operation. It stands to reason that this concept is general and can be broadly applied to any power MOSFET. Moreover, it is bolstered by recent achievements in ferroelectricity in CMOS-compatible hafnium oxide (HfO2), thus prospecting concrete experimental developments in power semiconductors.https://ieeexplore.ieee.org/document/10945321/Curie temperatureCurie-Weiss lawferroelectrichafnium oxideHfO₂short-circuit
spellingShingle Marco Boccarossa
Luca Maresca
Alessandro Borghese
Michele Riccio
Giovanni Breglio
Andrea Irace
Giovanni A. Salvatore
The Ferro-Power MOSFET: Enhancing Short-Circuit Robustness in Power Switches With a Ferroelectric Gate Stack
IEEE Access
Curie temperature
Curie-Weiss law
ferroelectric
hafnium oxide
HfO₂
short-circuit
title The Ferro-Power MOSFET: Enhancing Short-Circuit Robustness in Power Switches With a Ferroelectric Gate Stack
title_full The Ferro-Power MOSFET: Enhancing Short-Circuit Robustness in Power Switches With a Ferroelectric Gate Stack
title_fullStr The Ferro-Power MOSFET: Enhancing Short-Circuit Robustness in Power Switches With a Ferroelectric Gate Stack
title_full_unstemmed The Ferro-Power MOSFET: Enhancing Short-Circuit Robustness in Power Switches With a Ferroelectric Gate Stack
title_short The Ferro-Power MOSFET: Enhancing Short-Circuit Robustness in Power Switches With a Ferroelectric Gate Stack
title_sort ferro power mosfet enhancing short circuit robustness in power switches with a ferroelectric gate stack
topic Curie temperature
Curie-Weiss law
ferroelectric
hafnium oxide
HfO₂
short-circuit
url https://ieeexplore.ieee.org/document/10945321/
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