The use of a Gaussian doping distribution in the channel region to improve the performance of a tunneling carbon nanotube field-effect transistor

被引:0
作者
Ali Naderi
Maryam Ghodrati
Sobhi Baniardalani
机构
[1] Kermanshah University of Technology,Department of Electrical Engineering, Faculty of Energy
[2] Lorestan University,Department of Electrical and Computer Engineering
来源
Journal of Computational Electronics | 2020年 / 19卷
关键词
OFF current; Intrinsic cutoff frequency; Nonequilibrium Green’s function (NEGF); Gaussian doping distribution; CNTFET;
D O I
暂无
中图分类号
学科分类号
摘要
A new structure with a Gaussian doping distribution along the channel region is proposed to improve the performance of tunneling carbon nanotube field-effect transistors (T-CNTFETs). The new structure involves a Gaussian doping distribution in the channel region with a low level of doping at the sides that gradually increases towards the middle of the channel. The source doping is p-type, while the doping in the drain and channel regions is n-type. The doping distribution is uniform in the drain/source regions. To simulate the behavior of T-CNTFETs, the Poisson and Schrödinger equations are solved self-consistently using the nonequilibrium Green’s function formalism. The simulation results show that the proposed structure exhibits increased saturation current but decreased OFF-state current compared with the conventional structure (C-T-CNTFET), yielding a ~ 104 times higher current ratio for a gate length of 20 nm. The proposed structure also shows improvements in parameters such as the transconductance, gate capacitance, cutoff frequency, and delay compared with the conventional structure and can be considered to be a more appropriate option for different applications.
引用
收藏
页码:283 / 290
页数:7
相关论文
共 54 条
  • [1] Pulfrey DL(2009)Comparison of p-i-n and n-i-n carbon nanotube FETs regarding high-frequency performance Solid-State Electron. 53 935-939
  • [2] Chen L(2014)A novel barrier controlled tunnel FET IEEE Electron. Device. Lett. 35 798-800
  • [3] Wang H(2014)Sdc-Cntfet: stepwise doping channel design in carbon nanotube field effect transistors for improving short channel effects immunity Int. J. Mod. Phys B. 28 1450048-745
  • [4] Chang S(2007)Tunneling field-effect transistors (TFETs) with subthreshold swing (SS) less than 60 mV/dec IEEE Electron. Device Lett. 28 743-156
  • [5] Hu Y(2017)SLD-MOSCNT: a new MOSCNT with step–linear doping profile in the source and drain regions Int. J. Mod. Phys B. 31 1650242-M140
  • [6] He H(2011)LDC-CNTFET: a carbon nanotube field effect transistor with linear doping profile channel Superlattices Microstruct. 50 145-246
  • [7] He J(2016)Methods in improving the performance of carbon nanotube field effect transistors ECS J. Solid State Sci. Technol. 5 M131-102
  • [8] Huang Q(2007)Tunneling CNTFETs J. Comput. Electron. 6 243-72
  • [9] He F(2018)An analytical approach to model capacitance and resistance of capped carbon nanotube single electron transistor AEU-Int. J. Electr. Commun. 90 97-M68
  • [10] Wang G(2017)Design and analysis of electrostatic doped Schottky barrier CNTFET based low power SRAM AEU-Int. J. Electr. Commun. 80 67-1461