Microtubular α-Fe2O3/Fe2(MoO4)3 heterostructure derived from absorbent cotton for enhanced ppb-level H2S gas-sensing performance

被引:25
作者
Wu, Yan-Yun [1 ]
Song, Bao-Yu [1 ]
Zhang, Xian-Fa [1 ]
Deng, Zhao-Peng [1 ]
Huo, Li-Hua [1 ]
Gao, Shan [1 ]
机构
[1] Heilongjiang Univ, Sch Chem & Mat Sci, Key Lab Funct Inorgan Mat Chem, Minist Educ, Harbin 150080, Peoples R China
基金
对外科技合作项目(国际科技项目);
关键词
alpha-Fe2O3/Fe-2(MoO4)(3); H2S; Heterostructure; Bio-template; Gas sensor;
D O I
10.1016/j.jallcom.2021.158994
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Microtubular alpha-Fe2O3/Fe-2(MoO4) 3 heterostructure (FFMO) was massively prepared by facile immersioncalcination method with absorbent cotton being employed as template, which is formed by a great number of cross-linking nanoparticles. In comparison with the pure iron molybdate (FMO) microtubules, the small-sized alpha-Fe2O3 nanocrystals evenly attached to the surface of FMO particles, increasing the specific surface area of FFMO composites and forming broad hierarchical pores. Gas-sensing measurement indicates that the sensor fabricated from FFMO heterostructure presents response of 12.69 toward 10 ppm H2S, being about 2.2 times larger than that of pure FMO-based sensor. And the working temperature also reduces from 170 degrees C to 133 degrees C. In particular, the FFMO composite exhibits the fastest response (T-res = 3 s) and the lowest detection limit (50 ppb) to H2S gas among all reported FMO-based sensors. Such rapid response and highly sensitive to trace H2S are dominantly assigned to the synergism of the inherent properties of multistage-pores microtubule, n-n heterojunction, surface adsorbed oxygen, as well as the generation of metastable iron sulfide induced by lattice oxygen. In addition, the gas-sensing mechanism of the sensor is also studied in detail. (C) 2021 Elsevier B.V. All rights reserved.
引用
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页数:9
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