占用率
自旋(空气动力学)
氧气
析氧
物理
化学物理
凝聚态物理
化学
纳米技术
材料科学
生物
量子力学
生态学
热力学
电极
电化学
作者
Bin Li,Yanming Yu,Yihao Wang,Ming Xu,Guanjie Li,Simin Xu,Wei Wei,Tingting Cui
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2025-03-12
卷期号:18 (5): 94907361-94907361
被引量:2
标识
DOI:10.26599/nr.2025.94907361
摘要
Nickel-based layered double hydroxides (LDHs) are widely recognized as promising substitutes for noble metal catalysts in the oxygen evolution reaction (OER). However, conventional Ni2+ sites exhibit a high-spin configuration (dxz2dyz2dxy2dx2−y21dz21) with excessive frontier-orbital occupancy, resulting in weak binding strength towards oxygen intermediates, which dramatically limits their OER performance. Herein, we first report the successful construction of low-spin state Ni2+ (dxz2dyz2dxy2dx2−y22dz20) in NiCoFe-LDH (LS-NCF) through oxygen defect engineering. LS-NCF exhibits a splendid OER activity with an ultra-low overpotential of 241 mV at the current density of 1 A cm−2, which is 79 mV lower than the conventional NiCoFe-LDH with high-spin Ni2+ (HS-NCF) and significantly outperforming previously reported transition metal-based catalysts. Comprehensive studies reveal that LS Ni2+ with reduced dz2 orbital occupancy effectively enhances oxygen intermediates adsorption through reinforcing the orbital hybridization between Ni 3d and O 2p. Moreover, the d-band center of LS Ni2+ is closer to the Fermi level compared to HS Ni2+, thus accelerating electron transfer. Consequently, the strengthened adsorption of *O intermediate and accelerated electron transfer in LS-NCF efficiently lower the reaction energy barrier of the rate-determining step (*O→*OOH), thereby greatly boosting its OER performance. This work provides valuable insights into designing high-performance Ni-based electrocatalysts via spintronic-level engineering.
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