硅纳米线场效应晶体管生物传感器性能的数值模拟研究

Yucai Wang, Guangyong Li
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引用次数: 12

摘要

硅场效应晶体管(SiNW FET)生物传感器最近在实验中被证明可以在非常低的浓度下直接、无标签、高灵敏度、高选择性和实时检测DNA和蛋白质。在这些实验中,生物素/链霉亲和素结合的检测是特别感兴趣的,因为生物素/链霉亲和素系统表现出已知最强的非共价生物相互作用,并被广泛证明是研究蛋白质和其他生物分子之间生物识别的模型系统。本文提出了一种综合的建模理论和仿真方法来解释利用SiNW场效应晶体管生物传感器检测生物素/链霉亲和素结合的潜在机制。为了优化SiNW场效应管生物传感器的性能,研究了SiNW尺寸、掺杂程度和周围环境等参数对传感器性能的影响。初步仿真结果表明,通过对传感器参数的精心优化,可以保证传感器的最佳性能,并且在选择最佳参数的情况下,可以检测单个链霉亲和素分子的结合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance investigation for a silicon nanowire FET biosensor using numerical simulation
Silcion field-effect transistor (SiNW FET) biosensors have recently been demonstrated experimentally for direct, label free, high sensitive, high selective and real time detection of DNA and proteins at very low concentration. Among these experiments, the detection of Biotin/Streptavidin binding is of special interest since the biotin/ Streptavidin system exhibits the strongest noncovalent biological interaction known and is widely demonstrated as a model system to study biorecognition between proteins and other biomolecules. In this paper, a comprehensive modeling theory and simulation approach is presented to account for the underlying detection mechanism of biotin/Streptavidin binding using SiNW FET biosensor. The influence of parameters like the dimension of the SiNW, the doping of the SiNW, and surrounding environment are investigated for the performance optimization of the SiNW FET biosensor. The preliminary simulation results indicate that the optimal sensor performance can be ensured by careful optimization of its parameters and it is feasible to detect binding of single streptavidin molecule when optimal parameters are chosen.
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