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Design of Hollow Nanofibrous Structures using Electrospinning: An Aspect of Chemical Sensor Applications

机译:静电纺丝中空纳米纤维结构设计:化学传感器应用的一个方面

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摘要

Chemical gas sensors have attracted much attention with the purposes of environmental hazardous gas detection and health monitoring via exhaled breath analysis. In particular, semiconducting metal oxide (SMO)-based chemiresistors have been considered as one of the most attractive sensing platforms owing to its simple operation, low cost, ease of miniaturization and integration to mobile devices. However, SMO-based sensors suffer from sluggish gas reactions and poor responses. To enhance their sensing characteristics, one-dimensional (1D) nanostructures with large surface area and high porosity are desired, since sensing reactions with analytes mainly occur at the surface of the sensing layers. In addition, uniform catalyst functionalization on SMO supports is beneficial in terms of gas response, reaction speed, and selectivity. In this review, we comprehensively highlight recent progresses on diverse hollow 1D nanofibrous structures prepared using a well-reputed technique of electrospinning, and their unique morphological advantages as highly sensitive chemical sensing layers. Finally, future perspectives on the synthesis and sensing characterizations of hollow nanofibrous sensing materials functionalized with robust catalysts are discussed.
机译:化学气体传感器通过呼气呼吸分析引起了环境危险气体检测和健康监测的目的。特别地,由于其简单的操作,低成本,易于小型化和对移动设备的集成而被认为是最具吸引力的传感平台的半导体金属氧化物(SMO)被认为是最具吸引力的传感平台之一。然而,基于SMO的传感器遭受缓慢的气体反应和差的反应。为了增强它们的感测特性,需要具有大表面积和高孔隙率的一维(1D)纳米结构,因为感测与分析物的反应主要发生在传感层的表面。此外,在SMO载体上的均匀催化剂官能化在气体反应,反应速度和选择性方面是有益的。在这篇综述中,我们全面地突出了使用静电纺丝良好的静电技术制备的多种空心1D纳米纤维结构的最新进展,以及它们作为高度敏感的化学传感层的独特形态优势。最后,讨论了未来对具有鲁棒催化剂官能化的中空纳米纤维感测材料的合成和感测表征的观点。

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