Abstract

Abstract Fe is considered as a promising alternative for OER catalysts owing to its high natural abundance and low cost. Due to the low conductivity and sluggish catalytic kinetics, the catalytic efficiency of Fe-rich catalysts is far from less abundant Ni, Co-rich alternatives and has been hardly improved without the involvement of Ni or Co. The lower activity of Fe-rich catalysts renders the real active center of state-of-the-art NiFe, CoFe catalyst in long-term scientific debate, despite of detection of Fe-based active intermediates in these catalysts during catalytic process. In the present work, we fabricated a series of sub-5 nm Fe1-yCryOx nanocatalysts via a simple solvothermal method, achieving systematically promoted high-valent Fe(VI) species generation by structural and electronic modulation, displaying highly active OER performance without involvement of Ni or Co. Detailed investigation revealed that the high OER activity is related to the ultrasmall nanoparticle size that promotes abundant edge- and corner-site exposure at catalyst surface, which involves in OER as highly reactive site; and the incorporated Cr ions that remarkably accelerate the charge transfer kinetics, providing an effective conduit as well as suitable host for high-valent active intermediate. This work reveals the structural prerequisites for efficient Fe-rich OER catalyst fabrication, inspiring deeper understanding of the structure-activity relationship as well as OER mechanism of Fe-based catalysts.

Highlights

  • Sustainable and environmental-friendly energy harvesting and storage systems, e.g. electrochemical water splitting, N2 reduction, CO2 reduction and fuel cells, have attracted increasing attention owing to the worldwide sustainable energy demands and environmental/climate concerns

  • These results suggest that the considerable oxygen evolution reaction (OER) activity of Fe0.65Cr0.35Ox-25 and Fe0.65Cr0.35Ox-30 is due to the facilitated charge transfer and the promoted key intermediate generation by Cr incorporation

  • Ultrasmall Fe1-yCryOx nanoparticles were synthesized via a solvothermal method

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Summary

Ken Inge

Fe is considered as a promising alternative for OER catalysts owing to its high natural abundance and low cost. Responses to Reviewer #2 Comment 1: The manuscript entitled "Promoting the Fe(VI) active species generation by structural and electronic modulation of efficient iron oxide based water oxidation catalyst without Ni or Co"presents several kinds of sub-5 nm Fe1-yCryOx nanocatalysts for the enhancement of OER. Cyclic voltammogram in dry acetonitrile was performed on Fe0.65Cr0.35Ox-25 and Fe0.65Cr0.35Ox-30 to study the Fe redox behavior of these catalysts (Fig. S20 in the revised supporting information) Both Fe0.65Cr0.35Ox-25 and Fe0.65Cr0.35Ox30 exhibits significantly enhanced formation of Fe(VI) species compared with bare FeOx, confirming that the Cr species provide a suitable environment for high valent Fe intermediate generation, enhancing the activity. Ken Inge[2], Licheng Sun1,3,*

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