Advanced Nanoporous Material-Based QCM Devices: A New Horizon of Interfacial Mass Sensing Technology

Advanced Nanoporous Material-Based QCM Devices: A New Horizon of Interfacial Mass Sensing Technology
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DOI:
10.1002/admi.201900849
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发表时间:
2019-09-02
影响因子:
5.4
通讯作者:
Yamauchi, Yusuke
Yamauchi, Yusuke
中科院分区:
材料科学3区
文献类型:
--
作者:
Torad, Nagy L.;Zhang, Shuaihua;Yamauchi, Yusuke

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大量的界面过程被认为是支持基础研究的关键因素之一。由于成本低和概念简单,基于压电器件的方法已经在各种条件下原位测定沉积材料表面的质量变化方面取得了重大进展。引入用于设计传感器和监测系统的纳米材料,对于创建用于环境修复的有毒分析物的选择性传感的先进检测系统至关重要。将具有预定纳米结构的材料集成到传感器器件中,如表面声波(SAW)、石英晶体微天平(QCM)和耗散QCM(QCM-D)监测,导致了在纳克范围内有毒目标分析物的传感应用的巨大进步。本文综述了近年来通过与介孔材料碳基纳米材料、金属有机骨架(MOF)、金属有机骨架(MOF)衍生的纳米孔炭、普鲁士蓝(PB)及其类似物(PBA)、沸石及其相关材料等纳米孔材料的结合,制备用于目标化学蒸汽和离子界面质量传感的压电器件的最新进展。通过与纳米结构材料的性质相关的先进的QCM技术,总结了挑战和未来的前景。
Mass interfacial processes have been considered as one of the crucial factors supporting fundamental research. Due to the low cost and conceptual simplicity, significant advancements have been achieved in the development of methodologies based on piezoelectric devices for in situ determination of mass changes on the surfaces of deposited materials under various conditions. The introduction of nanomaterials for designing sensors and monitoring systems becomes essential to create advanced detection systems for selective sensing of toxic analytes for environmental remediation. The integration of materials with predesignated nanostructures into sensor devices, such as surface acoustic wave (SAW), quartz crystal microbalance (QCM), and QCM with dissipation (QCM-D) monitoring, has led to an immense progress in the sensing applications of toxic target analytes at the nanogram range. Here, an overview is introduced of recent advancement in the fabrication of piezoelectric devices for the interfacial mass sensing of targeted chemical vapors and ions through combination with nanoporous materials including mesoporous materials carbon-based nanomaterials, metal-organic frameworks (MOFs), MOF-derived nanoporous carbons, Prussian blue (PB) and its analogues (PBA), zeolites and related materials. Challenges and future prospect are also summarized by the advanced QCM technique associated with properties of nanostructured materials.