过电位
电催化剂
密度泛函理论
析氧
自旋态
材料科学
催化作用
掺杂剂
自旋(空气动力学)
配体(生物化学)
旋转交叉
过渡金属
吸附
化学
化学物理
磁矩
分解水
自旋跃迁
自旋电子学
纳米技术
自旋极化
热液循环
无机化学
氧气
氧化态
氢
工作(物理)
碳纤维
氧化还原
凝聚态物理
金属有机骨架
铁磁性
化学工程
旋转阀
电子结构
作者
Yi Zhang (9093),Habib Ullah (1567255),Linfeng Li (281571),Hsiao-Chien Chen (1694311),Xia Zhang (41398),Qiangli Lv (22332994),Xuefei Xu (1280472),Shaowei Zhang (1415611),Chao Hu (293389),Zhishan Li (4448395),Muhammad Humayun (1435891),Mohamed Bououdina (17384453),Hussein A. Younus (8067899),Deli Wang (7249),Chundong Wang (1665493)
出处
期刊:
[Figshare (United Kingdom)]
日期:2025-09-30
标识
DOI:10.1021/acscatal.5c03901.s001
摘要
The design and development of highly efficient, stable, and low-cost electrocatalysts for the oxygen evolution reaction (OER) is crucial for green hydrogen production. Metal–organic frameworks (MOFs), with the merits of structural diversity and tunable organic ligand nature, have significant potential. Herein, a Co-based MOF (CoMnFcMOF) electrocatalyst was fabricated under hydrothermal conditions using Mn as a dopant and a ferrocene-based dicarboxylate linker. The as-prepared CoMnFcMOF enables a current density of 100 mA·cm–2 with an overpotential of 238 mV under an alkaline condition. The well-addressed OER activity is attributed to the spin state modulation of Co induced by Mn incorporation, as verified experimentally and from density functional theory calculations. The total effective magnetic moment (μeff) considerably decreases from 3.992 μB/f.u. in CoFcMOF to 1.974 μB/f.u. in CoMnFcMOF, indicating a spin transition from a high spin (HS) to an intermediate spin (IS) state. This spin modulation facilitates the adsorption of the O* intermediates, thereby accelerating the reaction kinetics. This work establishes a design paradigm for high-performance transition metal-based catalysts through spin state engineering.
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