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硅纳米线场效应晶体管:电化阻抗和电位测量范式之间的比较传感性能。

Silicon Nanowires Field Effect Transistors: A Comparative Sensing Performance between Electrical Impedance and Potentiometric Measurement Paradigms.

机构信息

Future Industries Institute and ARC Centre of Excellence for Convergent Bio-Nano Science and Technology , University of South Australia , Mawson Lakes , South Australia 5095 , Australia.

Institute of Complex Systems Bioelectronics , Forschungszentrum Jülich , 52425 , Jülich , Germany.

出版信息

Anal Chem. 2019 Oct 1;91(19):12568-12573. doi: 10.1021/acs.analchem.9b03559. Epub 2019 Sep 10.

Abstract

Potentiometric sensors based on silicon nanowire field effect transistors (SiNW FETs) typically display exquisite sensitivities, but their bioanalytical implementation is limited due to the need for stringent measurement conditions and high-precision readout units. An alternative operation principle where SiNW FETs are operated in a frequency-domain electrical impedimetric approach is promising. However, to date only limited data is available in regard to the sensing performance and translational relevance of this novel approach in comparison to the standard charge detection paradigm. We demonstrate the feasibility of conducting electrical impedimetric FET measurements with a portable unit for the ultrasensitive detection of cancer biomarkers in biospecimens. Compared to standard potentiometric measurements, electrical impedimetric FET measurements yielded significant improvements in biosensing performances, including the limit of detection, sensing resolution, and dynamic range.

摘要

基于硅纳米线场效应晶体管(SiNW FET)的电位传感器通常具有出色的灵敏度,但由于需要严格的测量条件和高精度的读出单元,其生物分析应用受到限制。另一种操作原理是将 SiNW FET 以频域电阻抗方法进行操作,这一原理很有前景。然而,迄今为止,与标准电荷检测范式相比,关于这种新方法的传感性能和转化相关性的数据非常有限。我们展示了使用便携式单元进行电阻抗 FET 测量的可行性,该单元可用于生物样本中癌症生物标志物的超灵敏检测。与标准电位测量相比,电阻抗 FET 测量在生物传感性能方面有了显著的改进,包括检测限、传感分辨率和动态范围。

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