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Facile engineering of metal-organic framework derived SnO2@NiO core-shell nanocomposites based gas sensor toward superior VOCs sensing performance
被引:0
|作者:
Xu, Hui
[1
]
Zhong, Haoran
[1
]
Hu, Jinwu
[1
]
Rong, Xianjun
[1
]
Zhang, Wenhui
[2
]
Wang, Yinsheng
[3
]
Li, Shengjuan
[1
]
Li, Guisheng
[1
]
Wang, Ding
[1
]
机构:
[1] Univ Shanghai Sci & Technol, Sch Mat & Chem, Shanghai 200093, Peoples R China
[2] Yancheng Inst Technol, Key Lab Adv Technol Environm Protect Jiangsu Prov, Yancheng 224051, Jiangsu, Peoples R China
[3] PhiChem Corp, Shanghai 201908, Peoples R China
基金:
中国国家自然科学基金;
关键词:
SnO;
2;
nanofibers;
NiO nanosheets;
Heterojunction nanocomposites;
VOCs gas sensors;
Synergistic effects;
D O I:
10.1016/j.cej.2024.157692
中图分类号:
X [环境科学、安全科学];
学科分类号:
08 ;
0830 ;
摘要:
Aiming to achieve high-sensitivity volatile organic compounds (VOCs), it is of great significance to continuously enhance the sensing performance of metal oxide based sensors. Herein, novel NiO nanoplates-decorated on SnO2 nanofibers 1D core-shell structures derived from metal-organic frameworks (MOFs) are fabricated by the facial solvothermal method and heat treatment for VOCs gas sensors. The morphology and composition of 1D core shell SnO2@NiO are regulated by solvothermal time in the range of 0 similar to 24 h. Based on the unique structure and composition of SnO2@NiO, SnO2@NiO with 4 h solvothermal time (denoted as SnO2@NiO-4) exhibits excellent selectivity, high response (R-a/R-g = 25.6) and low detection limit as well as good response linearity between response and concentration of xylene. Especially, the obtained SnO2@NiO-8 and SnO2@NiO-16 show the high sensitivity to acetone (R-a/R-g = 28.7) and triethylamine (R-a/R-g = 13.7), respectively. Structural characterizations such as SEM, TEM, and Mott-Schottky results demonstrate the core-shell structure with p-n heterojunction. In-depth investigations on reaction mechanism reveal XPS, photoluminescence (PL), and ESR testing reveal the intrinsic defects such of oxygen vacancy and Ni3+ active sites. And in situ FTIR, online mass spectroscopy, as well as UV/UPS analysis further discover the evolution of intermediates and products during the surface catalysis reaction. These results demonstrate that the remarkable sensing performance of SnO2@NiO-8 can be attributed to several factors, including abundant oxygen vacancy, formation of p-n heterostructure and efficient Ni3+/Ni2+ catalyzing, which beneficial for increased active sites and enhanced electron transport. This synthetic strategy provides an effective method for the facile engineering of high-performances metal oxide-based sensors towards practical health assessment.
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页数:16
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