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Modulating the properties of SnO2 nanocrystals: morphological effects on structural, photoluminescence, photocatalytic, electrochemical and gas sensing properties

机译:调节SnO2纳米晶体的性质:对结构,光致发光,光催化,电化学和气体传感性能的形态学作用

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Tin dioxide (SnO2) is a material of ever increasing scientific interest as a result of its many useful and varied physical properties: it is a wide band gap (3.6 eV at 300 K), n-type semiconductor which is both highly thermally/chemically stable and inexpensively produced as a highly active nanomaterial. Consequently, it has repeatedly demonstrated promising results in a wide range of applications including gas sensing, lithium batteries, photocatalysis, etc. An interesting facet of SnO2 research is the ability to tune the nanomaterial's physical properties through controlled synthesis of a target morphology. By modulating the morphologies of SnO2 nanocrystals it becomes possible to prepare devices that meet new challenges, in particular by development of new ways to selectively tune the morphology in order to manipulate their physical properties, enhancing some and suppressing others, through synthetic strategies. This review article aims to highlight the morphology-dependent properties of SnO2 nanocrystals and outlines the tools available to tailor their applications. At the outset, general synthetic methodologies are discussed, outlining the selective preparation of a morphologically diverse range of SnO2 nanostructures and describing the resulting induced physical changes. The impact of these different morphologies on a wide range of applications (photoluminescence, electrochemistry, photocatalysis and gas sensing) is then discussed. Finally, the promising future prospects of this research field are evaluated. The overall aim of this review is to provide an in-depth and rational understanding of the application-based properties of SnO2 nanocrystals with a primary focus on the systematic enhancement/control of the aforementioned properties through morphological design.
机译:二氧化锡(SnO2)是由于其许多有用和变化的物理性质,因此是有史以来增加科学兴趣的材料:它是一个宽带隙(300 k处3.6eV),n型半导体,既高热/化学稳定且廉价地制成作为高活性的纳米材料。因此,它已经多次证明了在包括气体传感,锂电池,光催化等的各种应用中的有希望的效果。SnO2研究的有趣方面是通过对靶形态的控制合成来调谐纳米材料的物理性质的能力。通过调节SnO2纳米晶体的形态,可以制备满足新挑战的设备,特别是通过开发选择性地调整形态的新方法,以便通过合成策略来操纵它们的物理性质,增强一些和抑制他人。该审查文章旨在突出SnO2纳米晶体的形态依赖性属性,并概述可用于量身定制其应用的工具。首先,讨论了一般的合成方法,概述了选择性制备形态学多样化的SnO2纳米结构并描述所得诱导的物理变化。然后讨论这些不同形态对各种应用(光致发光,电化学,光催化和气体感测)的影响。最后,评估了该研究领域的未来未来前景。本综述的整体目标是提供对SnO2纳米晶体的基于施用性性质的深入和合理的理解,其通过形态学设计对上述性能的系统增强/控制进行了专注。

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