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多孔CoO的制备及其对乙醇的低能耗响应

Preparation of porous CoO and its response to ethanol with low energy consumption.

作者信息

Zhang Xiao, Xu Yaohua, Liu Hao, Zhao Wenrui, Ming Anjie, Wei Feng

机构信息

State Key Laboratory of Advanced Materials for Smart Sensing, General Research Institute for Nonferrous Metals Beijing 100088 China

GRIMAT Engineering Institute Co., Ltd Beijing 101407 China.

出版信息

RSC Adv. 2020 Jan 10;10(4):2191-2197. doi: 10.1039/c9ra08904g. eCollection 2020 Jan 8.

Abstract

CoO is a promising p-type semiconductor for ethanol detection. In this work, ethanol detection sensors were fabricated with nanostructured CoO, which exhibited higher selectivity and lower operating temperature. The CoO was synthesised using ZIF-67 as a sacrificial precursor. The T400-CoO that was obtained by calcining ZIF-67 at 400 °C showed the best sensing performance. Its response to 100 ppm ethanol vapor was 221.99 at a low optimal operating temperature (200 °C). Moreover, T400-CoO achieved a low detection limit (1 ppm), remarkable repeatability, and higher selectivity compared to ammonia, carbon monoxide, acetone, hydrogen, methane, methanol, and nitrogen dioxide. The enhanced sensing performance was mainly attributed to three factors: (1) the adsorption/desorption of active adsorbed oxygen molecules ( O and O) and abundant oxygen vacancies, which increased the number of active sites; (2) the catalytic activity of Co, which greatly increased the reaction route and decreased the activation energy; and (3) the effective diffusion of gas molecules, which increased the effect of collisions between gas molecules and the material surface. This work provides an effective means to fabricate sensitive ethanol gas sensors with low energy consumption.

摘要

氧化钴是一种用于乙醇检测的很有前景的p型半导体。在这项工作中,用纳米结构的氧化钴制备了乙醇检测传感器,该传感器表现出更高的选择性和更低的工作温度。氧化钴是使用ZIF-67作为牺牲前驱体合成的。通过在400℃煅烧ZIF-67得到的T400-CoO表现出最佳的传感性能。在低最佳工作温度(200℃)下,它对100 ppm乙醇蒸汽的响应为221.99。此外,与氨、一氧化碳、丙酮、氢气、甲烷、甲醇和二氧化氮相比,T400-CoO实现了低检测限(1 ppm)、显著的重复性和更高的选择性。传感性能的增强主要归因于三个因素:(1)活性吸附氧分子(O和O)的吸附/解吸以及丰富的氧空位,这增加了活性位点的数量;(2)钴的催化活性,这大大增加了反应路径并降低了活化能;(3)气体分子的有效扩散,这增加了气体分子与材料表面之间的碰撞效果。这项工作提供了一种制造低能耗灵敏乙醇气体传感器的有效方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aa00/9048834/c24cd71f8e0e/c9ra08904g-f1.jpg

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