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Published on: November 1, 2013
Performance Analysis and Optimization of an InGaAs/GaAsSb Heterojunction Dopingless Tunnel FET with a Heterogate
JunJie Huang1, HongXia Liu1, Shupeng Chen1
1Key Laboratory for Wide Band Gap Semiconductor Materials and Devices of Education, School of Microelectronics, Xidian University, Xi'an 710071, China.
Abstract:
An InGaAs/GaAsSb heterojunction dopingless Tunnel FET with a heterogate dielectric is proposed and investigated in this work, aiming to extend the advantages of dopingless TFETs in low-power applications. By employing the InGaAs/GaAsSb heterojunction with a quasi-broken gap energy band structure in dopingless TFET, the HDL-TFET achieves extremely high band-to-band tunneling efficiency. A dual-electrode structure is adopted to improve carrier distribution, which further enhances tunneling efficiency and increases on-state current (ION). To suppress off-state tunneling, optimize ambipolar current, and reduce parasitic capacitance, a heterogate dielectric structure is introduced. Results show that the HDL-TFET exhibits an ION up to 8.33 × 10-5 A/μm and a steep subthreshold swing (SSavg) of 10.18 mV/dec at a low operating voltage of 0.5 V. It also achieves an off-state current (IOFF) as low as 3.42 × 10-15 A/μm and ION/IOFF ratio up to 2.44 × 1010, with no obvious ambipolar current. Compared with previously reported works, the proposed HDL-TFET demonstrates significant advantages. Additionally, the introduction of the heterogate dielectric and dual-electrode structure significantly improves the RF performance of the device, with a peak transconductance (Gm) of 333 μS/μm, and a peak cutoff frequency (fT) and gain bandwidth product (GBP) up to 64 GHz and 49 GHz, respectively.
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