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A Universal Synthesis Strategy for Ferrite Nanocage Superstructures and Their Enhanced Gas Sensing Properties
Mingyang Zhu1, Fan Wang2,3, Shihao Lu1
1Key Laboratory of Functional Molecular Solids of the Ministry of Education, College of Chemistry and Materials Science, Anhui Normal University, Wuhu, Anhui 241002, PR China.
Abstract:
Ferrites with superstructures exhibit great potential for gas sensing applications, benefiting from their open structure, high specific surface area, and fully exposed active sites. However, the preparation of these superstructures is often cumbersome and requires some surfactants. In this study, Zn-Fe Prussian blue analogue (PBA) nanocages were synthesized through Ostwald ripening using a simple liquid-phase coprecipitation method without any other etchants or surfactants. A series of MFe2O4 (M = Fe, Co, Ni, Cu) nanocages, including n-type and p-type semiconductors, were obtained using the Zn-Fe PBA nanocages as templates via a metal ion exchange strategy and annealing process. Gas sensing investigations revealed that Zn-CuFe2O4, Zn-Fe3O4, and Zn-CoFe2O4 materials exhibited high sensitivity and selectivity for H2S, ZnFe2O4 for H2, and Zn-NiFe2O4 for NO2 at relatively low operating temperatures (50-150 °C). Quasi-in situ X-ray photoelectron spectroscopy and in situ infrared spectroscopy analyses indicated that during the H2S sensing response process, H2S reacted with the adsorbed oxygen on the surface of Zn-doped Fe3O4 and CuFe2O4 materials, as well as with the materials themselves, resulting in the formation of metal sulfide intermediates in small quantities. This work advances the controllable preparation of nanosuperstructures and lays a sound foundation for their widespread applications.
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