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Sulfur substitution for lattice oxygen in Co(OH)2 activates the lattice oxygen-mediated mechanism for enhancing oxygen evolution reaction

氧气 硫黄 格子(音乐) 材料科学 结晶学 替代(逻辑) 反应机理 化学 机制(生物学) 析氧 悠氧 氨基酸取代 氧原子 化学物理 氧化还原
作者
Guochang Chen,Heyi Wang,Wen Li,Zhengjiao Zhou,Yifan Chen,Mingfu Ye,Lin Zhang,Binbin Jiang,Konglin Wu
出处
期刊:Advanced powder materials [Elsevier BV]
卷期号:5 (5): 100427-100427
标识
DOI:10.1016/j.apmate.2026.100427
摘要

Water electrolysis for hydrogen production is a highly promising sustainable technology, yet its advancement is hindered by the sluggish kinetics of the anodic oxygen evolution reaction (OER). The lattice oxygen-mediated mechanism (LOM) can offer electrocatalysts faster kinetics than the adsorbate evolution mechanism (AEM). Developing effective strategies to activate the Lattice Oxygen-Mediated mechanism (LOM) is one of the major challenges in the field of hydrogen production through water electrolysis. Herein, we report a sulfur ion-mediated strategy for the in-situ derivation of sulfur-doped cobalt oxyhydroxide (S−CoOOH) from Co(OH) 2 via lattice oxygen substitution, which effectively activates the LOM, allowing for the controllable preparation of a highly active OER catalyst. Furthermore, an integrated OER electrode was constructed by coupling S−CoOOH with nickel foam (S−CoOOH/NF), which provides a current density of 10 mA cm −2 at an overpotential of only 279 mV in alkaline medium, far lower than the 320 mV required for its corresponding Co(OH) 2 /NF electrode. The successful sulfur-for-oxygen substitution in Co(OH) 2 is directly confirmed by Raman, X-ray absorption fine structure (XAFS), and X-ray photoelectron spectroscopy (XPS). Subsequent pH-dependent activity, along with in situ Raman and 18 O-labeled differential electrochemical mass spectrometry (DEMS) measurements, collectively confirms that this structural modification effectively activates the LOM. Density functional theory (DFT) analyses reveal that sulfur substitution shifts the O 2p band closer to the Fermi level ( E F ), which favors lattice oxygen release, thereby activating the LOM. These findings contribute to a deeper understanding of the LOM activation pathways and accelerated reaction kinetics, thereby guiding the rational design of highly active OER catalysts based on non-noble materials. Sulfur substitution for lattice oxygen in Co(OH) 2 , enabled by S doping and morphology control, effectively drives the lattice oxygen mechanism (LOM), leading to a significant enhancement of electrocatalytic activity. This work provides new insights into the activation of the LOM in non-noble materials, thereby guiding the design of highly active OER catalysts based on non-noble materials.
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