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基于二硫化钼的电极材料在电分析应用中的最新进展。

Recent advances in molybdenum disulfide-based electrode materials for electroanalytical applications.

机构信息

Department of Energy and Materials Engineering, Dongguk University-Seoul, Seoul, 04620, Republic of Korea.

Center for Nanotechnology & Advanced Biomaterials (CeNTAB), School of Chemical and Biotechnology, SASTRA Deemed University, Thanjavur, Tamil Nadu, 613 401, India.

出版信息

Mikrochim Acta. 2019 Feb 22;186(3):203. doi: 10.1007/s00604-019-3287-y.

Abstract

The primary objective of this review article is to summarize the development and structural diversity of 2D/3D molybdenum disulfide (MoS) based modified electrodes for electrochemical sensors and biosensor applications. Hydrothermal, mechanical, and ultrasonic techniques and solution-based exfoliation have been used to synthesize graphene-like 2D MoS layers. The unique physicochemical properties of MoS and its nanocomposites, including high mechanical strength, high carrier transport, large surface area, excellent electrical conductivity, and rapid electron transport rate, render them useful as efficient transducers in various electrochemical applications. The present review summarizes 2D/3D MoS-based nanomaterials as an electrochemical platform for the detection and analysis of various biomolecules (e.g., neurotransmitters, NADH, glucose, antibiotics, DNA, proteins, and bacteria) and hazardous chemicals (e.g., heavy metal ions, organic compounds, and pesticides). The substantial improvements that have been achieved in the performance of enzyme-based amperometry, chemiluminescence, and nucleic acid sensors incorporating MoS-based chemically modified electrodes are also addressed. We also summarize key sensor parameters such as limits of detection (LODs), sensitivity, selectivity, response time, and durability, as well as real applications of the sensing systems in the environmental, pharmaceutical, chemical, industrial, and food analysis fields. Finally, the remaining challenges in designing MoS nanostructures suitable for electroanalytical applications are outlined. Graphical abstract • MoS based materials exhibit high conductivity and improved electrochemical performance with great potential as a sensing electrode. • The role of MoS nanocomposite films and their detection strategies were reviewed. • Biomarkers detection for disease identification and respective clinical treatments were discussed. • Future Challenges, as well as possible research development for "MoS nanocomposites", are suggested.

摘要

本文综述了用于电化学传感器和生物传感器应用的二维/三维二硫化钼(MoS)基修饰电极的发展和结构多样性。水热法、机械法和超声技术以及基于溶液的剥离法已被用于合成类石墨烯二维 MoS 层。MoS 及其纳米复合材料的独特物理化学性质,包括高机械强度、高载流子输运、大比表面积、优异的导电性和快速电子传输速率,使它们成为各种电化学应用中高效换能器的有用材料。本综述总结了二维/三维 MoS 基纳米材料作为电化学平台,用于检测和分析各种生物分子(如神经递质、NADH、葡萄糖、抗生素、DNA、蛋白质和细菌)和有害化学物质(如重金属离子、有机化合物和农药)。还讨论了在包含 MoS 基化学修饰电极的酶基电流安培法、化学发光法和核酸传感器中,性能得到了实质性的提高。我们还总结了关键的传感器参数,如检测限(LOD)、灵敏度、选择性、响应时间和耐用性,以及传感系统在环境、制药、化学、工业和食品分析领域的实际应用。最后,概述了设计适合电分析应用的 MoS 纳米结构的剩余挑战。

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