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Electrospinning: A versatile technique for making of 1D growth of nanostructured nanofibers and its applications: An experimental approach

机译:电纺:一种用于纳米结构纳米纤维的一维生长的通用技术及其应用:一种实验方法

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One dimensional (1D) metal oxide nanostructures (1D-MONS) play a key role in the development of functional devices including energy conversion, energy storage and environmental devices. They are also used for some important biomedical products like wound dressings, filter media, drug delivery and tissue engineering. The electrospinning (ES) is the versatile technique for making of 1D growth of nanostructured nanofibers, an experimental approach and its applications. The present review is focused on the 1D growth of nanostructured nanofibers in different applications like dye sensitized solar cells, perovskite solar cells, fuel cells, lithium ion batteries, redox flow batteries, supercapacitor, photocatalytic, and gas sensors based on ZnO, TiO2, MnO2, WO3, V2O5, NiO, SnO2, Fe2O3 etc. metal oxides, their composites and carbon. This review article presents an introduction to various types of ES techniques and their technical details. Also, the advantages and disadvantages of each ES technique are summarized. The various technical details such as preparative parameters, post-deposition methods, applied electric field, solution feed rate and a distance between a tip to the collector are the key factors in order to obtain exotic 1D nanostructured materials. Also, the lucid literature survey on the growth of nanostructures of various metal oxides and application in different fields are covered in this review. Further, the future perspectives has also been discussed. (c) 2017 Elsevier B.V. All rights reserved.
机译:一维(1D)金属氧化物纳米结构(1D-MONS)在功能器件的开发中起着关键作用,这些功能器件包括能量转换,能量存储和环境器件。它们还用于一些重要的生物医学产品,例如伤口敷料,过滤介质,药物输送和组织工程。电纺(ES)是一种用于纳米结构纳米纤维的一维生长的通用技术,一种实验方法及其应用。本综述着重于纳米结构纳米纤维在不同应用中的一维生长,例如染料敏化太阳能电池,钙钛矿太阳能电池,燃料电池,锂离子电池,氧化还原液流电池,超级电容器,光催化和基于ZnO,TiO2,MnO2的气体传感器,WO3,V2O5,NiO,SnO2,Fe2O3等金属氧化物,它们的复合物和碳。这篇综述文章介绍了各种类型的ES技术及其技术细节。此外,总结了每种ES技术的优缺点。各种技术细节,例如制备参数,沉积后的方法,施加的电场,溶液的进料速度以及尖端与集电极之间的距离,是获得异乎寻常的一维纳米结构材料的关键因素。此外,这篇综述还涵盖了关于各种金属氧化物的纳米结构的生长及其在不同领域中的应用的清晰的文献调查。此外,还讨论了未来的观点。 (c)2017 Elsevier B.V.保留所有权利。

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