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近期超材料微流体传感器综述

Review of Recent Metamaterial Microfluidic Sensors.

作者信息

Salim Ahmed, Lim Sungjoon

机构信息

School of Electrical and Electronics Engineering, College of Engineering, Chung-Ang University, 221, Heukseok-Dong, Dongjak-Gu, Seoul 156-756, Korea.

出版信息

Sensors (Basel). 2018 Jan 15;18(1):232. doi: 10.3390/s18010232.

Abstract

Metamaterial elements/arrays exhibit a sensitive response to fluids yet with a small footprint, therefore, they have been an attractive choice to realize various sensing devices when integrated with microfluidic technology. Micro-channels made from inexpensive biocompatible materials avoid any contamination from environment and require only microliter-nanoliter sample for sensing. Simple design, easy fabrication process, light weight prototype, and instant measurements are advantages as compared to conventional (optical, electrochemical and biological) sensing systems. Inkjet-printed flexible sensors find their utilization in rapidly growing wearable electronics and health-monitoring flexible devices. Adequate sensitivity and repeatability of these low profile microfluidic sensors make them a potential candidate for point-of-care testing which novice patients can use reliably. Aside from degraded sensitivity and lack of selectivity in all practical microwave chemical sensors, they require an instrument, such as vector network analyzer for measurements and not readily available as a self-sustained portable sensor. This review article presents state-of-the-art metamaterial inspired microfluidic bio/chemical sensors (passive devices ranging from gigahertz to terahertz range) with an emphasis on metamaterial sensing circuit and microfluidic detection. We also highlight challenges and strategies to cope these issues which set future directions.

摘要

超材料元件/阵列对流体表现出灵敏的响应,且占用空间小,因此,当与微流控技术集成时,它们成为实现各种传感设备的诱人选择。由廉价的生物相容性材料制成的微通道可避免来自环境的任何污染,并且仅需微升-纳升的样品用于传感。与传统(光学、电化学和生物)传感系统相比,简单的设计、易于制造的工艺、轻质的原型以及即时测量都是其优点。喷墨打印的柔性传感器在快速发展的可穿戴电子设备和健康监测柔性设备中得到应用。这些低剖面微流控传感器足够的灵敏度和可重复性使其成为即时检测的潜在候选者,新手患者也能可靠使用。除了所有实际微波化学传感器都存在的灵敏度下降和缺乏选择性之外,它们还需要诸如矢量网络分析仪之类的仪器进行测量,并且不容易作为自持式便携式传感器获得。这篇综述文章介绍了受超材料启发的微流控生物/化学传感器(从吉赫兹到太赫兹范围的无源器件)的最新进展,重点是超材料传感电路和微流控检测。我们还强调了应对这些问题的挑战和策略,这些问题为未来指明了方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/56f8/5795505/ef2698669ddb/sensors-18-00232-g001.jpg

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