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硅纳米线场效应晶体管生物传感器的校准策略及其在超灵敏、无标记生物传感中的应用。

A Calibration Strategy for Silicon Nanowire Field-Effect Transistor Biosensors and Its Application in Ultra-Sensitive, Label-Free Biosensing.

机构信息

State Key Laboratory of Transducer Technology, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai 200050, China.

University of Chinese Academy of Sciences (UCAS), Beijing 100190, China.

出版信息

ACS Nano. 2024 Aug 20;18(33):21873-21885. doi: 10.1021/acsnano.4c01937. Epub 2024 Aug 8.

DOI:10.1021/acsnano.4c01937
PMID:39115266
Abstract

The silicon nanowire field-effect transistor (SiNW FET) has been developed for over two decades as an ultrasensitive, label-free biosensor for biodetection. However, inconsistencies in manufacturing and surface functionalization at the nanoscale have led to poor sensor-to-sensor consistency in performance. Despite extensive efforts to address this issue through process improvements and calibration methods, the outcomes have not been satisfactory. Herein, based on the strong correlation between the saturation response of SiNW FET biosensors and both their feature size and surface functionalization, we propose a calibration strategy that combines the sensing principles of SiNW FET with the Langmuir-Freundlich model. By normalizing the response of the SiNW FET biosensors (Δ/) with their saturation response (Δ/), this strategy fundamentally overcomes the issues mentioned above. It has enabled label-free detection of nucleic acids, proteins, and exosomes within 5 min, achieving detection limits as low as attomoles and demonstrating a significant reduction in the coefficient of variation. Notably, the nucleic acid test results exhibit a strong correlation with the ultraviolet-visible (UV-vis) spectrophotometer measurements, with a correlation coefficient reaching 0.933. The proposed saturation response calibration strategy exhibits good universality and practicability in biological detection applications, providing theoretical and experimental support for the transition of mass-manufactured nanosensors from theoretical research to practical application.

摘要

硅纳米线场效应晶体管 (SiNW FET) 作为一种超灵敏、无标记的生物传感器,已经发展了二十多年,用于生物检测。然而,由于纳米尺度上制造和表面功能化的不一致性,导致传感器性能的一致性较差。尽管通过工艺改进和校准方法来解决这个问题已经付出了广泛的努力,但结果并不令人满意。在此,基于 SiNW FET 生物传感器的饱和响应与它们的特征尺寸和表面功能化之间的强相关性,我们提出了一种将 SiNW FET 的传感原理与 Langmuir-Freundlich 模型相结合的校准策略。通过归一化 SiNW FET 生物传感器的响应(Δ/)与其饱和响应(Δ/),该策略从根本上克服了上述问题。它已经实现了在 5 分钟内对核酸、蛋白质和外泌体进行无标记检测,检测限低至飞摩尔,并显著降低了变异系数。值得注意的是,核酸测试结果与紫外-可见 (UV-vis) 分光光度计测量结果具有很强的相关性,相关系数达到 0.933。所提出的饱和响应校准策略在生物检测应用中具有良好的通用性和实用性,为大规模制造的纳米传感器从理论研究向实际应用的转变提供了理论和实验支持。

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