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Analog/RF Performance of T-Shape Gate Dual-Source Tunnel Field-Effect Transistor

In this paper, a silicon-based T-shape gate dual-source tunnel field-effect transistor (TGTFET) is proposed and investigated by TCAD simulation. As a contrastive study, the structure, characteristic, and analog/RF performance of TGTFET, LTFET, and UTFET are discussed. The gate overlap introduced by...

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Autores principales: Chen, Shupeng, Liu, Hongxia, Wang, Shulong, Li, Wei, Wang, Xing, Zhao, Lu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer US 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6185875/
https://www.ncbi.nlm.nih.gov/pubmed/30315380
http://dx.doi.org/10.1186/s11671-018-2723-y
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author Chen, Shupeng
Liu, Hongxia
Wang, Shulong
Li, Wei
Wang, Xing
Zhao, Lu
author_facet Chen, Shupeng
Liu, Hongxia
Wang, Shulong
Li, Wei
Wang, Xing
Zhao, Lu
author_sort Chen, Shupeng
collection PubMed
description In this paper, a silicon-based T-shape gate dual-source tunnel field-effect transistor (TGTFET) is proposed and investigated by TCAD simulation. As a contrastive study, the structure, characteristic, and analog/RF performance of TGTFET, LTFET, and UTFET are discussed. The gate overlap introduced by T-shape gate can enhance the efficiency of tunneling junction. The dual-source regions in TGTFET can increase the on-state current (I(ON)) by offering a doubled tunneling junction area. In order to further improve the device performance, the n+ pocket is introduced in TGTFET to further increase the band-to-band tunneling rate. Simulation results reveal that the TGTFET’s I(ON) and switching ratio (I(ON)/I(OFF)) reach 81 μA/μm and 6.7 × 10(10) at 1 V gate to source voltage (V(g)). The average subthreshold swing of TGTFET (SS(avg), from 0 to 0.5 V V(g)) reaches 51.5 mV/dec, and the minimum subthreshold swing of TGTFET (SS(min), at 0.1 V V(g)) reaches 24.4 mV/dec. Moreover, it is found that TGTFET have strong robustness on drain-induced barrier lowering (DIBL) effect. The effects of doping concentration, geometric dimension, and applied voltage on device performance are investigated in order to create the TGTFET design guideline. Furthermore, the transconductance (g(m)), output conductance (g(ds)), gate to source capacitance (C(gs)), gate to drain capacitance (C(gd)), cut-off frequency (f(T)), and gain bandwidth (GBW) of TGTFET reach 232 μS/μm, 214 μS/μm, 0.7 fF/μm, 3.7 fF/μm, 11.9 GHz, and 2.3 GHz at 0.5 V drain to source voltage (V(d)), respectively. Benefiting from the structural advantage, TGTFET obtains better DC/AC characteristics compared to UTFET and LTFET. In conclusion, the considerable good performance makes TGTFET turn into a very attractive choice for the next generation of low-power and analog/RF applications.
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spelling pubmed-61858752018-10-18 Analog/RF Performance of T-Shape Gate Dual-Source Tunnel Field-Effect Transistor Chen, Shupeng Liu, Hongxia Wang, Shulong Li, Wei Wang, Xing Zhao, Lu Nanoscale Res Lett Nano Express In this paper, a silicon-based T-shape gate dual-source tunnel field-effect transistor (TGTFET) is proposed and investigated by TCAD simulation. As a contrastive study, the structure, characteristic, and analog/RF performance of TGTFET, LTFET, and UTFET are discussed. The gate overlap introduced by T-shape gate can enhance the efficiency of tunneling junction. The dual-source regions in TGTFET can increase the on-state current (I(ON)) by offering a doubled tunneling junction area. In order to further improve the device performance, the n+ pocket is introduced in TGTFET to further increase the band-to-band tunneling rate. Simulation results reveal that the TGTFET’s I(ON) and switching ratio (I(ON)/I(OFF)) reach 81 μA/μm and 6.7 × 10(10) at 1 V gate to source voltage (V(g)). The average subthreshold swing of TGTFET (SS(avg), from 0 to 0.5 V V(g)) reaches 51.5 mV/dec, and the minimum subthreshold swing of TGTFET (SS(min), at 0.1 V V(g)) reaches 24.4 mV/dec. Moreover, it is found that TGTFET have strong robustness on drain-induced barrier lowering (DIBL) effect. The effects of doping concentration, geometric dimension, and applied voltage on device performance are investigated in order to create the TGTFET design guideline. Furthermore, the transconductance (g(m)), output conductance (g(ds)), gate to source capacitance (C(gs)), gate to drain capacitance (C(gd)), cut-off frequency (f(T)), and gain bandwidth (GBW) of TGTFET reach 232 μS/μm, 214 μS/μm, 0.7 fF/μm, 3.7 fF/μm, 11.9 GHz, and 2.3 GHz at 0.5 V drain to source voltage (V(d)), respectively. Benefiting from the structural advantage, TGTFET obtains better DC/AC characteristics compared to UTFET and LTFET. In conclusion, the considerable good performance makes TGTFET turn into a very attractive choice for the next generation of low-power and analog/RF applications. Springer US 2018-10-12 /pmc/articles/PMC6185875/ /pubmed/30315380 http://dx.doi.org/10.1186/s11671-018-2723-y Text en © The Author(s). 2018 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Nano Express
Chen, Shupeng
Liu, Hongxia
Wang, Shulong
Li, Wei
Wang, Xing
Zhao, Lu
Analog/RF Performance of T-Shape Gate Dual-Source Tunnel Field-Effect Transistor
title Analog/RF Performance of T-Shape Gate Dual-Source Tunnel Field-Effect Transistor
title_full Analog/RF Performance of T-Shape Gate Dual-Source Tunnel Field-Effect Transistor
title_fullStr Analog/RF Performance of T-Shape Gate Dual-Source Tunnel Field-Effect Transistor
title_full_unstemmed Analog/RF Performance of T-Shape Gate Dual-Source Tunnel Field-Effect Transistor
title_short Analog/RF Performance of T-Shape Gate Dual-Source Tunnel Field-Effect Transistor
title_sort analog/rf performance of t-shape gate dual-source tunnel field-effect transistor
topic Nano Express
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6185875/
https://www.ncbi.nlm.nih.gov/pubmed/30315380
http://dx.doi.org/10.1186/s11671-018-2723-y
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