利用基于硅掺杂 MoS2 沟道厚度设计的 TFET 生物传感器检测乳腺癌

IF 2.2 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Priya Kaushal;Gargi Khanna
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引用次数: 0

摘要

这封信通过开发掺杂二硫化钼的厚度工程隧道场效应晶体管生物传感器,研究了乳腺癌细胞系检测的电气性能特征。文中对静电场进行了全面研究,包括表面电势、电场、跨导(gm)、阈值电压(Vth)、导通电流(ION)和阈下摆动。分析了漏极电流 (Ids)、gm、Vth、ION、ION/IOFF 比率和 gm 的灵敏度。此外,本研究还探讨了器件几何形状变化(特别是腔体厚度和长度)对漏极电流($\text{S}_\rm{I}_{\rm{ds}}$)灵敏度的影响、跨导($\text{S}_{rm{g}_{\rm{m}}$)、阈值电压(${\text{S}}_{{\rm{V}}_{\rm{th}}}}}$)和导通电流(${\text{S}}_{{rm{I}}_{\rm{ON}}}}}$)的敏感性。此外,还研究了固定细胞系占位对设备性能的影响。随着空腔占有率的增加,所提出的生物传感器具有高灵敏度,从而提高了性能。因此,利用该装置可以实现基于阵列的乳腺癌细胞筛查和诊断,而且经济实惠,制作简单。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Breast Cancer Detection Using Si-Doped MoS2 Channel-Based Thickness Engineered TFET Biosensor
This letter investigates the electrical performance characteristics for breast cancer cell line detection by developing the Si-doped molybdenum disulfide thickness engineered tunnel field effect transistor biosensor. A complete study of the electrostatic field is presented, including the surface potential, electric field, transconductance (g m ), threshold voltage (V th ), on current (I ON ), and subthreshold swing. The sensitivity is analyzed in terms of drain current (I ds ), g m , V th , I ON , I ON /I OFF ratio, and g m . Further, this study investigates the impact of device geometry variations, specifically cavity thickness, and length on the sensitivity of drain current ( $\text{S}_{\rm{I}_{\rm{ds}}}$ ), transconductance ( $\text{S}_{\rm{g}_{\rm{m}}}$ ), threshold voltage ( ${\text{S}}_{{{\rm{V}}_{{\rm{th}}}}}$ ), and on current ( ${\text{S}}_{{{\rm{I}}_{{\rm{ON}}}}}$ ). In addition, the impact of immobilized cell line occupancy on device performance has been examined. The presented biosensor is highly sensitive with increased cavity occupancy resulting in enhanced performance. As a result, array-based screening and diagnosis of breast cancer cells can be accomplished with the device, which is also economical and simpler to fabricate.
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来源期刊
IEEE Sensors Letters
IEEE Sensors Letters Engineering-Electrical and Electronic Engineering
CiteScore
3.50
自引率
7.10%
发文量
194
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