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硅纳米线生物敏感场效应晶体管:电学特性及应用

Silicon nanowire biologically sensitive field effect transistors: electrical characteristics and applications.

作者信息

Rim Taiuk, Baek Chang-Ki, Kim Kihyun, Jeong Yoon-Ha, Lee Jeong-Soo, Meyyappan M

出版信息

J Nanosci Nanotechnol. 2014 Jan;14(1):273-87. doi: 10.1166/jnn.2014.8760.

Abstract

The interest in biologically sensitive field effect transistors (BioFETs) is growing explosively due to their potential as biosensors in biomedical, environmental monitoring and security applications. Recently, adoption of silicon nanowires in BioFETs has enabled enhancement of sensitivity, device miniaturization, decreasing power consumption and emerging applications such as the 3D cell probe. In this review, we describe the device physics and operation of the silicon nanowire BioFETs along with recent advances in the field. The silicon nanowire BioFETs are basically the same as the conventional field-effect transistors (FETs) with the exceptions of nanowire channel instead of thin film and a liquid gate instead of the conventional gate. Therefore, the silicon device physics is important to understand the operation of the BioFETs. Herein, physical characteristics of the silicon nanowire FETs are described and the operational principles of the BioFETs are classified according to the number of gates and the analysis domain of the measured signal. Even the bottom-up process has merits on low-cost fabrication; the top-down process technique is highlighted here due to its reliability and reproducibility. Finally, recent advances in the silicon nanowire BioFETs in the literature are described and key features for commercialization are discussed.

摘要

由于生物敏感场效应晶体管(BioFET)在生物医学、环境监测和安全应用中作为生物传感器的潜力,人们对它的兴趣正在急剧增长。最近,在BioFET中采用硅纳米线能够提高灵敏度、实现器件小型化、降低功耗,并催生了诸如3D细胞探针等新兴应用。在这篇综述中,我们描述了硅纳米线BioFET的器件物理和操作,以及该领域的最新进展。硅纳米线BioFET与传统场效应晶体管(FET)基本相同,只是用纳米线沟道代替了薄膜,用液体栅极代替了传统栅极。因此,了解硅器件物理对于理解BioFET的操作很重要。本文描述了硅纳米线FET的物理特性,并根据栅极数量和测量信号的分析域对BioFET的工作原理进行了分类。即使自下而上的工艺在低成本制造方面有优点,但由于其可靠性和可重复性,这里重点介绍自上而下的工艺技术。最后,描述了文献中硅纳米线BioFET的最新进展,并讨论了商业化的关键特性。

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