轻松合成具有丰富氧空位的多孔金装饰二氧化锡微流子,用于痕量挥发性有机化合物检测

IF 2.7 Q2 PHYSICS, CONDENSED MATTER Micro and Nanostructures Pub Date : 2024-06-20 DOI:10.1016/j.micrna.2024.207921
Haibo Ren , Hui Pan , Ge Song , Jiarui Huang , Sang Woo Joo
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引用次数: 0

摘要

成功合成了具有多孔结构的分层金装饰二氧化锡(Au@SnO2)微流体。制备过程包括水热法、煅烧处理和改性。这种分层结构由大量多孔、均匀的纳米片组成。利用 Au@SnO2 微流体制作的气体传感器具有优异的气体传感性能,可用于检测挥发性有机化合物(VOC)。特别是在准确而快速地检测甲醛方面,2%金装饰的二氧化锡微流体传感器在140 °C时对甲醛(100 ppm)显示出很强的传感响应(76.5),比纯多孔二氧化锡微流体的传感响应(28.2)高出约三倍。响应时间和恢复时间(10 秒/16 秒)分别比纯二氧化锡的响应时间和恢复时间(12 秒/25 秒)短。2%Au@SnO2 传感器的检测限为 19.03 ppb。此外,还研究了 Au@SnO2 传感器的传感机制。金纳米颗粒(NPs)的多孔三维结构、高催化活性和电子敏化效应提高了气体传感性能。此外,由于金纳米粒子均匀地分布在每个多孔二氧化锡纳米片的表面,它们的催化活性得到了最大程度的发挥。金装饰的二氧化锡微流传感器在准确、快速、高灵敏度地检测甲醛气体方面具有巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Facile synthesis of porous Au-decorated SnO2 microflowers with abundant oxygen vacancies for trace VOCs detection

Hierarchical Au-decorated SnO2 (Au@SnO2) microflowers with a porous structure were successfully synthesized. The preparation process involves in a hydrothermal method, calcination treatment, as well as modification. The hierarchical structure consisted of a large number of porous, uniform nanosheets. Excellent gas-sensing performances were demonstrated by the gas sensors fabricated using Au@SnO2 microflowers, for detecting volatile organic compounds (VOCs). In particular, for the accurate and fast detection of formaldehyde, the 2%Au-decorated SnO2 microflowers sensors showed a strong sensing response (76.5) for formaldehyde (100 ppm) at 140 °C, approximately three times higher than that (28.2) observed for the pure porous SnO2 microflowers. The response and recovery times (10 s/16 s) were shorter than those (12 s/25 s) of the pure SnO2, respectively. The detection limit for the 2%Au@SnO2 sensor was 19.03 ppb. The sensing mechanism of Au@SnO2 sensors was also investigated. Favorable porous 3-dimensional structure, high catalytic activity, and electron sensitization effect of Au nanoparticles (NPs) improved the gas-sensing performance. Furthermore, the catalytic activity of Au NPs was maximized due to their uniform distribution on the surface of each porous SnO2 nanosheet. The Au-decorated SnO2 microflowers sensors have great potential for the accurate, fast, and highly sensitive response detection of formaldehyde gas.

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