IEEE Transactions on Electron Devices · 2023 · 33 citations · 71 references
Wide-bandgap SemiconductorElectrical EngineeringMillimeter-wave Gan HemtsGan HemtsEngineeringPhysicsOther Device DesignsRf SemiconductorGan GrowthApplied PhysicsAluminum Gallium NitrideGan Power DeviceEpitaxial StructurePower ElectronicsMicroelectronicsElectron Trapping
Application of gallium nitride high-electron-mobility transistors (GaN HEMTs) to millimeter-wave power amplifiers requires gate length scaling below 150 nm: in order to control short-channel effects, the gate-to-channel distance must be decreased, and the device epitaxial structure has to be completely redesigned. A high 2-D electron gas (2DEG) carrier density can be preserved even with a very thin top barrier layer by substituting AlGaN with AlN, InAl(Ga)N, or ScAlN. Moreover, to prevent interaction of hot electrons with compensating impurities and defects in the doped GaN buffer, the latter has to be separated from the channel by a back barrier. Other device designs consist in adopting a graded channel (which controls the electric field) or to adopt nitrogen-polar (N-polar) GaN growth (which decreases the distance between gate and channel, thus attenuating short-channel effects). The aim of this article is to review the various options for controlling short-channel effects, improve off-state characteristics, and reduce drain–source leakage current. Advantages and potential drawbacks of each proposed solution are analyzed in terms of current collapse (CC), dispersion effects, and reliability.
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30-W/mm GaN HEMTs by Field Plate Optimization
Yifeng Wu, A. Saxler, M. Moore et al. · IEEE Electron Device Letters · 2004 · 1.1K citations
Wide-bandgap Semiconductor, Electrical Engineering, Engineering +13
GaN-based power devices: Physics, reliability, and perspectives
Matteo Meneghini, Carlo De Santi, Idriss Abid et al. · Journal of Applied Physics · 2021 · 572 citations · Full text