Identification of Highly Active Fe Sites in (Ni,Fe)OOH for Electrocatalytic Water Splitting

Выявление высокоактивных атомов Fe в (Ni,Fe)OOH для электрокаталитического расщепления воды
Alexis T. Bell, Anders Nilsson, Jens K. Nørskov, Mu‐Jeng Cheng, Roberto Alonso‐Mori, Dimosthenis Sokaras, Daniel Friebel, John Bargar, Yun Cai, Anna M. Wise, Mary W. Louie, Michal Bajdich, Kai E. Sanwald, Tsu-Chien Weng, Ryan C. Davis
2015-01-05

Fe3+ octahedral sites with short Fe–O bond distancesNi1–xFexOOHhigh energy resolution fluorescence detection (HERFD)operando X-ray absorption spectroscopy (XAS)oxygen evolution reaction (OER)
Highly active catalysts for the oxygen evolution reaction (OER) are required for the development of photoelectrochemical devices that generate hydrogen efficiently from water using solar energy. Here, we identify the origin of a 500-fold OER activity enhancement that can be achieved with mixed (Ni,Fe)oxyhydroxides (Ni(1-x)Fe(x)OOH) over their pure Ni and Fe parent compounds, resulting in one of the most active currently known OER catalysts in alkaline electrolyte. Operando X-ray absorption spectroscopy (XAS) using high energy resolution fluorescence detection (HERFD) reveals that Fe(3+) in Ni(1-x)Fe(x)OOH occupies octahedral sites with unusually short Fe-O bond distances, induced by edge-sharing with surrounding [NiO6] octahedra. Using computational methods, we establish that this structural motif results in near optimal adsorption energies of OER intermediates and low overpotentials at Fe sites. By contrast, Ni sites in Ni(1-x)Fe(x)OOH are not active sites for the oxidation of water.
1
Computational analysis indicates this structural motif yields near-optimal adsorption energies for OER intermediates and low overpotentials at Fe sites.
2
Mixed Ni1–xFexOOH exhibits up to a 500-fold enhancement in OER activity compared to pure Ni and Fe oxyhydroxides.
3
Ni sites in Ni1–xFexOOH are not the active sites for water oxidation; activity originates from Fe sites.
4
Operando HERFD-XAS shows Fe3+ in Ni1–xFexOOH occupies octahedral sites with unusually short Fe–O bond distances.
5
Short Fe–O distances are induced by edge-sharing between [FeO6] and surrounding [NiO6] octahedra in the mixed oxide.

Mixed nickel–iron oxyhydroxide catalyst (Ni1–xFexOOH) with Fe occupying octahedral sites in edge-sharing [NiO6] framework

Identification and characterization of highly active Fe3+ sites responsible for the 500-fold OER activity enhancement, including their unusually short Fe–O bond distances, structural motif from edge-sharing with [NiO6], optimal adsorption energies for OER intermediates, and resulting low overpotentials (operando XAS/HERFD and computational elucidation)

Publication Details
Publication Date
2015-01-05
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Alexis T. Bell
Anders Nilsson
Jens K. Nørskov
Mu‐Jeng Cheng
Roberto Alonso‐Mori
Dimosthenis Sokaras
Daniel Friebel
John Bargar
Yun Cai
Anna M. Wise
Mary W. Louie
Michal Bajdich
Kai E. Sanwald
Tsu-Chien Weng
Ryan C. Davis
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%