Design, Investigation, and Sensitivity Analysis of a Biosensor Based on an Optimized Electrostatically Doped Nanotube TFET

被引:0
作者
Ashok Kumar Gupta
Ashish Raman
机构
[1] National Institute of Technology,VLSI Design Lab, Department of Electronics and Communications, Dr. B. R. Ambedkar
来源
Journal of Electronic Materials | 2021年 / 50卷
关键词
TFET; nanowire TFET; nanotube TFET; electrostatic doping; biosensor application; biomolecules; cavity variation; short-channel effects (SCEs);
D O I
暂无
中图分类号
学科分类号
摘要
This paper proposes an electrostatically doped nanotube TFET for biosensor (Bio-NT-TFET) application. The device design and sensitivity for bio-sensing applications are analyzed. An electrostatic doping technique is used to creating the p-type source region. Source voltage of −1.2 V (VS = −1.2 V) is used for the electrostatically doped Bio-NT-TFET. For the design of the Bio-NT-TFET, device specifications including hole/electron carrier concentration, electric field, potential, and electron nonlocal band-to-band tunneling (BTBT) rate are investigated for K = 8. Analog parameters including ON current, drain current, OFF current, ION/IOFF current ratio, subthreshold slope, threshold voltage, and the average subthreshold slope are discussed for K = 8. The Bio-NT-TFET source voltage (VS) is found to vary from −0.2 V to −1.2 V, and the gate voltage (VGS) varies from 0.2 V to 1 V. The variation in dielectric constant K (1, 2.1, 3.57, 8, 12, and 20) is also discussed. For bio-sensing applications, a cavity is introduced between the source region and the core source electrode region. K is defined as the dielectric constant of the material. For investigating the Bio-NT-TFET, biomolecules with different dielectric constant values (K), i.e., streptavidin (K = 2.1), (3-aminopropyl)triethoxysilane (K = 3.57), and protein (K = 8), are analyzed. To determine the bio-sensing capability, the cavity is filled with biomolecules at various fill rates: 100%, 75%, 50%, and 25% biomolecules, and no biomolecules (empty). To analyze the proposed Bio-NT-TFET, both positive biomolecules (+BM) and negative biomolecules (−BM) are taken into consideration. To analyze the efficiency of the Bio-NT-TFET, the ON current (ION), ION/IOFF current ratio (ION/IOFF), the effect of charged biomolecules (+BM/−BM), parametric analysis, and sensitivity are taken into consideration.
引用
收藏
页码:5462 / 5471
页数:9
相关论文
共 50 条
  • [21] Design of NW TFET biosensor for enhanced sensitivity and sensing speed by using cavity extension and additional source electrode
    Soni, Deepak
    Sharma, Dheeraj
    MICRO & NANO LETTERS, 2019, 14 (08) : 901 - 905
  • [22] Gate All Around Dopingless Nanotube TFET Biosensor with Si0.5Ge0.5 – Based Source
    Kosheen Wighmal
    Giridhar Peddi
    Naveen Apoorva
    S. Intekhab Kumar
    Sunny Amin
    Silicon, 2022, 14 : 5951 - 5959
  • [23] Design and Performance Analysis of TFET with Extended-Dual-Source Structure-Based Label-Free Biosensor
    Ghosh, P.
    Pratap, S.
    Vanlalawmpuia, K.
    JOURNAL OF ELECTRONIC MATERIALS, 2025, : 4114 - 4122
  • [24] Approach for the improvement of sensitivity and sensing speed of TFET-based biosensor by using plasma formation concept
    Soni, Deepak
    Sharma, Dheeraj
    Aslam, Mohd.
    Yadav, Shivendra
    MICRO & NANO LETTERS, 2018, 13 (12): : 1728 - 1733
  • [25] Design Considerations and Optimization of Electrostatic Doped Ferroelectric Nanotube Tunnel FET: Analog and Noise Analysis
    Ashok Kumar Gupta
    Ashish Raman
    Naveen Kumar
    Silicon, 2022, 14 : 10357 - 10373
  • [26] Design Considerations and Optimization of Electrostatic Doped Ferroelectric Nanotube Tunnel FET: Analog and Noise Analysis
    Gupta, Ashok Kumar
    Raman, Ashish
    Kumar, Naveen
    SILICON, 2022, 14 (16) : 10357 - 10373
  • [27] Study and analysis of the effects of trap assisted tunneling on the sensing performance of InAs/Si hetero juncture TFET based biosensor
    Ghosh, Rittik
    Biswas, Sushantika
    Venugopal, Saraswathy
    Misra, Sinjini
    Bose, Chandreyee
    Saha, Priyanka
    PHYSICA SCRIPTA, 2024, 99 (09)
  • [28] Design, Simulation and Performance Analysis of JLTFET Biosensor for High Sensitivity
    Wadhwa, Girish
    Raj, Balwinder
    IEEE TRANSACTIONS ON NANOTECHNOLOGY, 2019, 18 : 567 - 574
  • [29] Performance investigation of an InAs-based dielectric-modulated heterojunction TFET as a label-free biosensor
    Swati, Jasdeep
    Kaur, Jasdeep
    Singh, Abdesh Kumar
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2023, 129 (05):
  • [30] Performance investigation of an InAs-based dielectric-modulated heterojunction TFET as a label-free biosensor
    Jasdeep Swati
    Abdesh Kumar Kaur
    Applied Physics A, 2023, 129