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通过制造的分形实现形态学驱动的气体传感:综述。

Morphology-driven gas sensing by fabricated fractals: A review.

作者信息

Kamathe Vishal, Nagar Rupali

机构信息

Nanomaterials for Energy Applications Lab, Applied Science Department, Symbiosis Institute of Technology, Symbiosis International (Deemed University), Lavale, Pune-412115, Maharashtra, India.

出版信息

Beilstein J Nanotechnol. 2021 Nov 9;12:1187-1208. doi: 10.3762/bjnano.12.88. eCollection 2021.

Abstract

Fractals are intriguing structures that repeat themselves at various length scales. Interestingly, fractals can also be fabricated artificially in labs under controlled growth environments and be explored for various applications. Such fractals have a repeating unit that spans in length from nano- to millimeter range. Fractals thus can be regarded as connectors that structurally bridge the gap between the nano- and the macroscopic worlds and have a hybrid structure of pores and repeating units. This article presents a comprehensive review on inorganic fabricated fractals (fab-fracs) synthesized in labs and employed as gas sensors across materials, morphologies, and gas analytes. The focus is to investigate the morphology-driven gas response of these fab-fracs and identify key parameters of fractal geometry in influencing gas response. Fab-fracs with roughened microstructure, pore-network connectivity, and fractal dimension () less than 2 are projected to be possessing better gas sensing capabilities. Fab-fracs with these salient features will help in designing the commercial gas sensors with better performance.

摘要

分形是一种在各种长度尺度上自我重复的有趣结构。有趣的是,分形也可以在实验室的受控生长环境中人工制造,并用于各种应用探索。这种分形具有一个重复单元,其长度范围从纳米到毫米。因此,分形可被视为连接纳米世界和宏观世界之间结构间隙的连接器,并具有孔隙和重复单元的混合结构。本文全面综述了在实验室中合成并用作气体传感器的无机人工制造分形(fab-fracs),涵盖了材料、形态和气体分析物等方面。重点是研究这些fab-fracs的形态驱动气体响应,并确定分形几何形状影响气体响应的关键参数。具有粗糙微观结构、孔网络连通性且分形维数()小于2的fab-fracs预计具有更好的气体传感能力。具有这些显著特征的fab-fracs将有助于设计性能更好的商用气体传感器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2aa1/8593696/7bf1942b11d8/Beilstein_J_Nanotechnol-12-1187-g002.jpg

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