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基于具有亚 ppm 检测能力的花状 SnS 纳米结构的超灵敏 NH 传感器。

Ultra-sensitive NH sensor based on flower-shaped SnS nanostructures with sub-ppm detection ability.

机构信息

State Key Laboratory of Heavy Oil Processing, China University of Petroleum, Qingdao 266580, Shandong, PR China; College of Science, China University of Petroleum, Qingdao 266580, Shandong, PR China.

Department of Mechanical & Industrial Engineering, Louisiana State University, Baton Rouge, LA 70803, USA.

出版信息

J Hazard Mater. 2018 Jan 5;341:159-167. doi: 10.1016/j.jhazmat.2017.07.060. Epub 2017 Jul 25.

Abstract

Layered metal dichalcogenides (LMDs) semiconducting materials have recently attracted tremendous attention as high performance gas sensors due to unique chemical and physical properties of thin layers. Here, three-dimensional SnS nanoflower structures assembled with thin nanosheets were synthesized via a facile solvothermal process. When applied to detect 100ppm NH at 200°C, the SnS based sensor exhibited high response value of 7.4, short response/recovery time of 40.6s/624s. Moreover, the sensor demonstrated a low detection limit of 0.5ppm NH and superb selectivity to NH against CO, CH, H, ethanol and acetone. The excellent performance is attributed to the unique thin layers assembled flower-like nanoarchitecture, which facilitates both the carrier charge transfer process and the adsorption/desorption reaction. More importantly, it was found that the sensor response enhanced with increasing oxygen content in background and was improved by 3.57 times with oxygen content increasing from 0 to 40%. The increased response is owing to the enhanced binding energies between SnS and NH moleculers. Theoretically, density functional theory was employed to reveal the NH adsorption mechanism in different background oxygen contents, which opens a new horizon for LMD based structures applied in various gas sensing fields.

摘要

层状金属二卤化物 (LMDs) 半导体材料由于其薄层层状的独特化学和物理特性,最近作为高性能气体传感器引起了极大的关注。在这里,通过简便的溶剂热工艺合成了由薄纳米片组装的三维 SnS 纳米花结构。当应用于检测 200°C 下的 100ppm NH 时,基于 SnS 的传感器表现出高响应值 7.4,响应/恢复时间短至 40.6s/624s。此外,该传感器对 NH 具有超低检测限 0.5ppm 和出色的选择性,对 CO、CH、H、乙醇和丙酮具有优异的选择性。优异的性能归因于独特的薄层层组装花状纳米结构,这有利于载流子电荷转移过程和吸附/解吸反应。更重要的是,发现传感器响应随背景中氧含量的增加而增强,并且随着氧含量从 0 增加到 40%,响应提高了 3.57 倍。这种增加的响应归因于 SnS 和 NH 分子之间增强的结合能。从理论上讲,密度泛函理论被用于揭示不同背景氧含量下 NH 的吸附机制,这为基于 LMD 的结构在各种气体传感领域的应用开辟了新的前景。

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