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Fe-S dually modulated adsorbate evolution and lattice oxygen compatible mechanism for water oxidation. | LitMetric

Fe-S dually modulated adsorbate evolution and lattice oxygen compatible mechanism for water oxidation.

Nat Commun

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, China.

Published: September 2024

AI Article Synopsis

  • The research focuses on enhancing the oxygen evolution reaction (OER) by developing a dual-modulated NiFe oxyhydroxide catalyst (R-NiFeOOH@SO) that optimizes both metal and lattice oxygen sites.
  • The study demonstrates how iron (Fe) and sulfur (S) improve OER kinetics by acting on different mechanisms, including enhancing active site availability and stability during the reaction.
  • R-NiFeOOH@SO shows impressive performance metrics with low overpotentials required to achieve high current densities in alkaline conditions, maintaining stability for over 300 hours, highlighting its potential for high-performance OER catalysis.

Article Abstract

Simultaneously activating metal and lattice oxygen sites to construct a compatible multi-mechanism catalysis is expected for the oxygen evolution reaction (OER) by providing highly available active sites and mediate catalytic activity/stability, but significant challenges remain. Herein, Fe and S dually modulated NiFe oxyhydroxide (R-NiFeOOH@SO) is conceived by complete reconstruction of NiMoO·xHO@Fe,S during OER, and achieves compatible adsorbate evolution mechanism and lattice oxygen oxidation mechanism with simultaneously optimized metal/oxygen sites, as substantiated by in situ spectroscopy/mass spectrometry and chemical probe. Further theoretical analyses reveal that Fe promotes the OER kinetics under adsorbate evolution mechanism, while S excites the lattice oxygen activity under lattice oxygen oxidation mechanism, featuring upshifted O 2p band centers, enlarged d-d Coulomb interaction, weakened metal-oxygen bond and optimized intermediate adsorption free energy. Benefiting from the compatible multi-mechanism, R-NiFeOOH@SO only requires overpotentials of 251 ± 5/291 ± 1 mV to drive current densities of 100/500 mA cm in alkaline media, with robust stability for over 300 h. This work provides insights in understanding the OER mechanism to better design high-performance OER catalysts.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11436974PMC
http://dx.doi.org/10.1038/s41467-024-52682-yDOI Listing

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