IEEE Transactions on Electron Devices · 2001 · 280 citations · 11 references
Electrical EngineeringEngineeringNanoelectronicsElectronic EngineeringBias Temperature InstabilityApplied PhysicsFinfet StructureSemiconductor Device FabricationHigh-performance PmosfetsSilicon On InsulatorMicroelectronicsSemiconductor DeviceTransistor Channel
High-performance PMOSFETs with sub-50-nm gate-length are reported. A self-aligned double-gate MOSFET structure (FinFET) is used to suppress the short-channel effects. This vertical double-gate SOI MOSFET features: 1) a transistor channel which is formed on the vertical surfaces of an ultrathin Si fin and controlled by gate electrodes formed on both sides of the fin; 2) two gates which are self-aligned to each other and to the source/drain (S/D) regions; 3) raised S/D regions; and 4) a short (50 nm) Si fin to maintain quasi-planar topology for ease of fabrication. The 45-nm gate-length p-channel FinFET showed an I/sub dsat/ of 820 /spl mu/A//spl mu/m at V/sub ds/=V/sub gs/=1.2 V and T/sub ox/=2.5 mm. Devices showed good performance down to a gate-length of 18 nm. Excellent short-channel behavior was observed. The fin thickness (corresponding to twice the body thickness) is found to be critical for suppressing the short-channel effects. Simulations indicate that the FinFET structure can work down to 10 nm gate length. Thus, the FinFET is a very promising structure for scaling CMOS beyond 50 nm.
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Xuejue Huang, Wen‐Chin Lee, C. Kuo et al. · 2003 · 365 citations
Low-power Electronics, Electrical Engineering, Quasi-planar Nature +11
A folded-channel MOSFET for deep-sub-tenth micron era
Digh Hisamoto, Wen‐Chin Lee, J. Kedzierski et al. · 2002 · 241 citations
Low-power Electronics, Electrical Engineering, Quasi-planar Nature +12
A comparative study of advanced MOSFET concepts
C. Wann, K. Noda, Tetsu Tanaka et al. · IEEE Transactions on Electron Devices · 1996 · 236 citations
Device Modeling, Electrical Engineering, Different Mosfet Structures +15