解耦(概率)
钴
降级(电信)
催化作用
化学
环境科学
化学工程
环境化学
无机化学
计算机科学
生物化学
工程类
电信
控制工程
作者
Darcy Simondson,Marc F. Tesch,Ioannis Spanos,Travis E. Jones,Jining Guo,Brittany V. Kerr,Manjunath Chatti,Shannon A. Bonke,Ronny Golnak,Bernt Johannessen,Jie Xiao,Douglas R. MacFarlane,Rosalie K. Hocking,Alexandr N. Simonov
出处
期刊:Nature Energy
[Nature Portfolio]
日期:2025-07-16
卷期号:10 (8): 1013-1024
被引量:26
标识
DOI:10.1038/s41560-025-01812-x
摘要
Abstract Advancement of iridium-free catalysts for the low-pH oxygen evolution reaction (OER) is required to enable multi-gigawatt-scale proton-exchange water electrolysis. Cobalt-based materials might address this requirement, but little is known about the mechanism of operation of these OER catalysts at low pH. Here we investigate the nature and evolution of the active cobalt sites along with charge- and mass-transfer processes that support their catalytic function within a cobalt–iron–lead oxide material using in situ spectroscopic, gravimetric and electrochemical techniques. We demonstrate that corrosion of the cobalt sites and their reformation through electrooxidation of dissolved Co 2+ do not affect the catalytic mechanism and are decoupled from the OER. The OER-coupled charge transfer is supported by Co (3+δ)+ -oxo-species, which are structurally different from those reported for alkaline/near-neutral conditions and are formed on a relatively slow timescale of minutes. These mechanistic insights might assist in developing genuinely practical catalysts for this vital technology.
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