Fe containing template derived atomic Fe-N-C to boost Fenton-like reaction and charge migration analysis on highly active Fe-N4sites

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Abstract

Persulfate-based advanced oxidation processes are promising technologies to solve water pollution. In this work, single iron atoms are anchored on three-dimensional N-doped carbon nanosheets by a chemical vapor deposition (CVD) method with ferrocene-loaded CaO as the hard template. The high surface density of Fe-N4sites and abundant interconnected meso-macro pores are highly favorable for activating peroxymonosulfate (PMS) to produce superoxide radicals (O2˙−), giving rise to ultrahigh activity and excellent stability for pollutant degradation. Experiment and density functional theory (DFT) calculations reveal that Fe-N4is the main active site, on which electrons transfer from C to Feviathe C-N-Fe bond to secure the low-valence state of Fe species for the redox process. This work proposes a new strategy for developing highly active single-atom materials by CVD and reveals mechanisms of PMS activation on single-atom activators.

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Gao, Y., Duan, X., Li, B., Jia, Q., Li, Y., Fan, X., … Peng, W. (2021). Fe containing template derived atomic Fe-N-C to boost Fenton-like reaction and charge migration analysis on highly active Fe-N4sites. Journal of Materials Chemistry A, 9(26), 14793–14805. https://doi.org/10.1039/d1ta02446a

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