Generation of Oxygen Vacancies in Metal-Organic Framework-Derived One-Dimensional Ni 0.4 Fe 2.6 O 4 Nanorice Heterojunctions for ppb-Level Diethylamine Gas Sensing

Metal-organic frameworks (MOFs) are ideal sensing materials due to their distinctive morphologies, high surface area, and simple calcination to remove sacrificial MOF scaffolds. Oxygen vacancies (O ) can be efficiently generated by the thermal annealing of metal oxides in an inert atmosphere. Herein...

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Veröffentlicht in:Analytical chemistry (Washington) 2023-01, Vol.95 (2), p.1747
Hauptverfasser: Hussain, Altaf, Zhang, Xiaohui, Shi, Yulin, Bushira, Fuad Abduro, Barkae, Tesfaye Hailemariam, Ji, Kaixiang, Guan, Yiran, Chen, Wei, Xu, Guobao
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Sprache:eng
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Zusammenfassung:Metal-organic frameworks (MOFs) are ideal sensing materials due to their distinctive morphologies, high surface area, and simple calcination to remove sacrificial MOF scaffolds. Oxygen vacancies (O ) can be efficiently generated by the thermal annealing of metal oxides in an inert atmosphere. Herein, MIL-53-based Fe and Fe/Ni-MOFs nanorices (NRs) were first prepared by using a solvothermal method, and then one-dimensional (1D) Fe O and Ni Fe O NRs were derived from the MOFs after calcination at 350 °C in an air and argon (Ar) atmosphere, respectively. It was found that Ar-annealed Ni Fe O NRs have higher O concentrations (82.11%) and smaller NRs (24.3 nm) than air-annealed NRs (65.68% & 31.5 nm). Beneficially, among the synthesized NRs, the Ar-Ni Fe O NRs show a higher sensitivity to diethylamine (DEA) ( / = 23 @ 5 ppm, 175 °C), low detection limit ( / = 1.2 @ 200 ppb), wide dynamic response ( / = 93.5@ 30 ppm), high stability (30 days), and faster response/recovery time (4 s/38 s). Moreover, the 1D nanostructure containing heterostructures offers excellent sensing selectivity and a wide detection range from 200 ppb to 30 ppm in the presence of DEA. The outstanding gas sensing behavior can be attributable to synergistic impact, structural advantages, high concentration of O and the heterojunction interface, which can have profound effects on gas sensor performance. This study provides a unique technique for constructing high-performance gas sensors for ppb-level DEA detection and the formation of O in metal oxides without the need for any additives.
ISSN:0003-2700
1520-6882
DOI:10.1021/acs.analchem.2c05119