Metal-organic frameworks-derived In2O3/ZnO porous hollow nanocages for highly sensitive H2S gas sensor

纳米笼 材料科学 化学工程 异质结 多孔性 吸附 微观结构 硫化氢 咪唑酯 金属有机骨架 选择性 比表面积 纳米技术 化学 催化作用 物理化学 有机化学 复合材料 冶金 工程类 硫黄 光电子学
作者
Jesse Nii Okai Amu‐Darko,Shahid Hussain,Xiangzhao Zhang,Asma A. Alothman,Mohamed Ouladsmane,M. Tariq Nazir,Guanjun Qiao,Guiwu Liu
出处
期刊:Chemosphere [Elsevier]
卷期号:314: 137670-137670 被引量:80
标识
DOI:10.1016/j.chemosphere.2022.137670
摘要

The detection of hydrogen sulfide (H2S) is critical because of its potential harm and widespread presence in the oil and gas sectors. The zeolitic imidazolate framework-8 (ZIF-8) derived ZnO nanostructures manufactured as gas sensors have exceptional sensitivity and selectivity for H2S gas. In/Zn-ZIF-8 template material was synthesized by a simple one-step co-precipitation method followed by thermal annealing in air. The heat treatment resulted in In2O3/ZnO nanostructures with mixed heterostructures. The crystal structure (XRD), morphology (SEM/TEM), chemical state (XPS), surface area (BET), etc were investigated to ascertain the nature of the as-prepared material. SEM imagery revealed that the as-prepared In2O3/ZnO sensitive material had a microstructure of porous hollow nanocages with an average particle size of about 200 nm, which is beneficial to the diffusion and adsorption of gas molecules. The gas sensing performance test results of the In2O3/ZnO hollow nanocages show that their response to H2S gas is significantly improved 67.5 @50 ppm H2S (about 11 times that of pure ZnO nanocages) at an optimal temperature of 200 °C, better selectivity, lower theoretical detection limit and good linearity between gas concentration and response values. The enhanced gas sensing feat to H2S gas is mainly attributed to the formation of n-n heterojunction and the wide surface area of the newly formed In2O3/ZnO porous hollow nanocages.
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