Nanofiber Based on Electrically Conductive Materials for Biosensor Applications.

Seda Gungordu Er, Alesha Kelly, Sumudith Bhanuka Warnarathna Jayasuriya, Mohan Edirisinghe
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Abstract

Biosensors are analytical tools that enable the transmission of different signals produced from the target analyte to a transducer for the production of real-time clinical diagnostic devices by obtaining meaningful results. Recent research demonstrates that the production of structured nanofiber through various methods has come to light as a potential platform for enhancing the functionality of biosensing devices. The general trend is towards the use of nanofibers for electrochemical biosensors. However, optical and mechanical biosensors are being developed by functionalization of nanofibers. Such nanofibers exhibit a high surface area to volume ratio, surface porosity, electroconductivity and variable morphology. In addition, nanosized structures have shown to be effective as membranes for immobilizing bioanalytes, offering physiologically active molecules a favorable microenvironment that improves the efficiency of biosensing. Cost effective, wearable biosensors are crucial for point of care diagnostics. This review aims to examine the electrically conductive materials, potential forming methods, and wide-ranging applications of nanofiber-based biosensing platforms, with an emphasis on transducers incorporating mechanical, electrochemical and optical and bioreceptors involving cancer biomarker, urea, DNA, microorganisms, primarily in the last decade. The appealing properties of nanofibers mats and the attributes of the biorecognition components are also stated and explored. Finally, consideration is given to the difficulties now affecting the design of nanofiber-based biosensing platforms as well as their future potential.

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用于生物传感器应用的基于导电材料的纳米纤维。
生物传感器是一种分析工具,可将目标分析物产生的不同信号传输到传感器,通过获得有意义的结果来生产实时临床诊断设备。最近的研究表明,通过各种方法生产的结构化纳米纤维已成为增强生物传感设备功能的潜在平台。总的趋势是将纳米纤维用于电化学生物传感器。然而,通过对纳米纤维进行功能化处理,光学和机械生物传感器也在不断发展。这种纳米纤维具有高表面积体积比、表面多孔性、导电性和可变形态。此外,纳米结构还可有效固定生物分析物,为生理活性分子提供有利的微环境,从而提高生物传感的效率。具有成本效益的可穿戴生物传感器对于医疗点诊断至关重要。本综述旨在研究导电材料、潜在的成型方法以及基于纳米纤维的生物传感平台的广泛应用,重点关注结合了机械、电化学和光学的传感器,以及涉及癌症生物标志物、尿素、DNA、微生物的生物受体,主要集中在过去十年中。此外,还阐述和探讨了纳米纤维垫的吸引人特性和生物识别元件的属性。最后,还考虑了目前影响基于纳米纤维的生物传感平台设计的困难及其未来潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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