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Updated: Jan 15, 2026

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Interface Engineering of ZnO-Decorated ZnFe2O4 for Enhanced CO2 Reduction Performance
Congyu Cai1, Yufeng Sun2, Yulan Xiao1
1School of Life Science and Chemistry, Minnan Science and Technology College, Quanzhou 362332, China.
None:
Photocatalytic conversion of CO2 to hydrocarbon fuels offers a promising pathway for sustainable renewable energy production. In this study, a ZnO/ZnFe2O4 composite featuring a Type-II heterojunction was synthesized through a facile one-step hydrothermal approach, significantly enhancing visible-light-driven CO2 reduction activity. The optimized catalyst exhibits CH4 and CO production rates that are 3.3 and 4.9 times higher, respectively, than those of pristine ZnFe2O4 over 6 h. This significant enhancement in photocatalytic performance is attributed to the Type-II band alignment, which not only broadens light absorption but also greatly promotes efficient charge separation. It is corroborated by a series of experimental evidence: a two-fold enhancement in photocurrent response, a 15.1% reduction in PL intensity, decreased electrochemical impedance, and an extended charge carrier lifetime. Furthermore, in situ FTIR spectroscopy confirms that the heterojunction facilitates the formation of key intermediates (specifically *COOH and HCOO-). This study highlights the importance of precise interface design based on a Type-II heterojunction in heterostructured composite catalysts and provides mechanistic insights for developing highly efficient CO2 photoreduction systems.
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