Tailoring atomic chemistry to refine reaction pathway for the most enhancement by magnetization in water oxidation

Water oxidation on magnetic catalysts has generated significant interest due to the spin-polarization effect. Recent studies have revealed that the disappearance of magnetic domain wall upon magnetization is responsible for the observed oxygen evolution reaction (OER) enhancement. However, an atomic...

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Veröffentlicht in:Proceedings of the National Academy of Sciences - PNAS 2024-05, Vol.121 (19), p.e2318652121
Hauptverfasser: Wu, Tianze, Ge, Jingjie, Wu, Qian, Ren, Xiao, Meng, Fanxu, Wang, Jiarui, Xi, Shibo, Wang, Xin, Elouarzaki, Kamal, Fisher, Adrian, Xu, Zhichuan J
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Sprache:eng
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Zusammenfassung:Water oxidation on magnetic catalysts has generated significant interest due to the spin-polarization effect. Recent studies have revealed that the disappearance of magnetic domain wall upon magnetization is responsible for the observed oxygen evolution reaction (OER) enhancement. However, an atomic picture of the reaction pathway remains unclear, i.e., which reaction pathway benefits most from spin-polarization, the adsorbent evolution mechanism, the intermolecular mechanism (I2M), the lattice oxygen-mediated one, or more? Here, using three model catalysts with distinguished atomic chemistries of active sites, we are able to reveal the atomic-level mechanism. We found that spin-polarized OER mainly occurs at interconnected active sites, which favors direct coupling of neighboring ligand oxygens (I2M). Furthermore, our study reveals the crucial role of lattice oxygen participation in spin-polarized OER, significantly facilitating the coupling kinetics of neighboring oxygen radicals at active sites.
ISSN:0027-8424
1091-6490
1091-6490
DOI:10.1073/pnas.2318652121