首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Emerging 2D hybrid nanomaterials: towards enhanced sensitive and selective conductometric gas sensors at room temperature
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Emerging 2D hybrid nanomaterials: towards enhanced sensitive and selective conductometric gas sensors at room temperature

机译:新兴的2D杂化纳米材料:在室温下朝向增强敏感和选择性电导气体传感器

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摘要

The breadth and depth of applications for two-dimensional (2D) materials which, by their nature, are nanoscale and layer structured with a high surface to volume ratio, are extensive and rapidly transforming the field of gas sensing. Facile preparation methods, as well as novel electronic and surface properties that enable functionalisation, provide high sensitivity for gases commonly encountered in natural and industrial environments. Gas sensors that are operational at room temperature offer low power demand and thermal safety during analysis. This review focuses on room-temperature gas sensing performance of conductometric devices employing 2D hybrid nanomaterials including layered transition metal dichalcogenides (TMDs) and graphene materials. The effect of hybridisation of 2D nanomaterials on gas sensing performance and their sensing mechanisms are studied. Hybrid forms of 2D materials occur by the addition of metals, or polymers to surface sites, or by combining two or more different materials (i.e. nanocomposites) or by developing a heterojunction layer, which lead to enhanced collective performance. Gas sensing mechanisms depend on the type and format of 2D material but fundamentally involve gas adsorption on an active surface with a resultant change in the resistive property of the material.
机译:二维(2D)材料的宽度和深度通过其性质是纳米级和具有高表面积的纳米级和体积比构造的材料,是广泛的且快速地改变气体传感领域。易于制备方法,以及能够功能性的新型电子和表面性能,为天然和工业环境中常常遇到的气体提供高灵敏度。在室温下运行的气体传感器可在分析期间提供低功率需求和热安全性。本综述侧重于采用2D杂化纳米材料的电气温度气体传感性能,包括层状过渡金属二甲基化物(TMD)和石墨烯材料。研究了2D纳米材料杂交对气体传感性能及其传感机制的影响及其感应机制。通过将金属或聚合物与表面位点的添加或通过组合两种或更多种不同的材料(即纳米复合材料)或通过显影杂交层来产生杂种形式的2D材料,这导致了增强的集体性能。气体传感机制取决于2D材料的类型和格式,但从根本上涉及在活性表面上的气体吸附,其具有所得材料的电阻性的变化。

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