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用于生化传感应用的电双层晶体管的最新进展。

Recent Advances in Electric-Double-Layer Transistors for Bio-Chemical Sensing Applications.

机构信息

Nanchang Institute of Technology, Nanchang 330099, China.

School of Electronic Science & Engineering, Nanjing University, Nanjing 210093, China.

出版信息

Sensors (Basel). 2019 Aug 5;19(15):3425. doi: 10.3390/s19153425.

Abstract

As promising biochemical sensors, ion-sensitive field-effect transistors (ISFETs) are used widely in the growing field of biochemical sensing applications. Recently, a new type of field-effect transistor gated by ionic electrolytes has attracted intense attention due to the extremely strong electric-double-layer (EDL) gating effect. In such devices, the carrier density of the semiconductor channel can be effectively modulated by an ion-induced EDL capacitance at the semiconductor/electrolyte interface. With advantages of large specific capacitance, low operating voltage and sensitive interfacial properties, various EDL-based transistor (EDLT) devices have been developed for ultrasensitive portable sensing applications. In this article, we will review the recent progress of EDLT-based biochemical sensors. Starting with a brief introduction of the concepts of EDL capacitance and EDLT, we describe the material compositions and the working principle of EDLT devices. Moreover, the biochemical sensing performances of several important EDLTs are discussed in detail, including organic-based EDLTs, oxide-based EDLTs, nanomaterial-based EDLTs and neuromorphic EDLTs. Finally, the main challenges and development prospects of EDLT-based biochemical sensors are listed.

摘要

作为有前途的生化传感器,离子敏感场效应晶体管(ISFET)广泛应用于生化传感应用这一日益增长的领域。最近,由于极强的双电层(EDL)门控效应,一种由离子电解质门控的新型场效应晶体管引起了人们的强烈关注。在这些器件中,半导体通道的载流子密度可以通过半导体/电解质界面处的离子诱导 EDL 电容来有效调制。具有大的比电容、低工作电压和敏感的界面特性等优点,各种基于 EDL 的晶体管(EDLT)器件已被开发用于超灵敏便携式传感应用。在本文中,我们将回顾基于 EDLT 的生化传感器的最新进展。首先简要介绍 EDL 电容和 EDLT 的概念,然后描述 EDLT 器件的材料组成和工作原理。此外,详细讨论了几种重要的 EDLT 的生化传感性能,包括基于有机的 EDLT、基于氧化物的 EDLT、基于纳米材料的 EDLT 和神经形态 EDLT。最后,列出了基于 EDLT 的生化传感器的主要挑战和发展前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f73f/6696065/b19fe06a88fb/sensors-19-03425-g001.jpg

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