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铱诱导的钴镍层状双氢氧化物电催化剂上的局部电荷和电子自旋调控用于高效析氧反应

Ir-Induced Local Charge and Electron-Spin Regulation on CoNi LDH Electrocatalyst for Efficient Oxygen Evolution Reaction.

作者信息

Xu Wentao, Altaf Qamroosh, Chen Leyi, Zhao Jun, Shang Chaoqun, Peng Xiang, Hu Liuyong, Ma Haibo, Wen Jing

机构信息

Hubei Key Laboratory of Plasma Chemistry and Advanced Materials, School of Materials Science and Engineering, Wuhan Institute of Technology, Wuhan, 430205, PR China.

Jiangsu Provincial Engineering Research Center of Low Dimensional Physics and New Energy & School of Science, Nanjing University of Posts and Telecommunications, Nanjing 210023, PR China.

出版信息

J Phys Chem Lett. 2025 Jul 24;16(29):7313-7321. doi: 10.1021/acs.jpclett.5c01646. Epub 2025 Jul 11.

Abstract

Nonprecious metal CoNi layered double hydroxides (LDHs) have received extensive attention as binary LDH-type catalysts with the lowest overpotential in the oxygen evolution reaction (OER). However, its relatively low electrical conductivity and strong adsorption on oxygen-containing intermediates limit the OER reaction rate. Therefore, we doped the iridium element containing 5d orbitals into CoNi LDH and obtained the ternary CoNiIr ZLDH (ZIF-67 derived LDH) electrocatalyst with an efficient OER performance. This strategy reduces the initial overpotential of the OER reaction. Only low overpotentials of 202 mV and 280 mV are needed to achieve current densities of 10 mA cm and 100 mA cm, respectively. Furthermore, this electrode exhibits strong electrochemical stability and maintains the minimum degradation for nearly 24 h under the harsh OER conditions with a high current density of 60 mA cm. These characteristics make CoNiIr ZLDH one of the most efficient CoNi-based LDH catalysts reported to date. Density functional theory calculations indicate that the high catalytic activity of CoNiIr ZLDH mainly results from the spin-orbit coupling effect of the wide 5d-orbital containing element Ir, which alters the electron charge and electron spin distribution near the Fermi energy of the catalyst. This modification enhances the electrical conductivity, reduces the adsorption energy of oxygen species, and promotes the transfer of electrons and substances, thereby lowering the reaction overpotential and improving the reaction efficiency. This research is expected to provide new ideas for the practical design of OER electrodes in electrochemical water splitting.

摘要

非贵金属钴镍层状双氢氧化物(LDHs)作为析氧反应(OER)中过电位最低的二元LDH型催化剂受到了广泛关注。然而,其相对较低的电导率以及对含氧化合物中间体的强吸附作用限制了OER反应速率。因此,我们将含有5d轨道的铱元素掺杂到CoNi LDH中,得到了具有高效OER性能的三元CoNiIr ZLDH(源自ZIF-67的LDH)电催化剂。这种策略降低了OER反应的初始过电位。分别仅需202 mV和280 mV的低过电位就能实现10 mA cm²和100 mA cm²的电流密度。此外,该电极表现出很强的电化学稳定性,在60 mA cm²的高电流密度这一苛刻的OER条件下,近24小时内保持最小程度的降解。这些特性使CoNiIr ZLDH成为迄今为止报道的最有效的钴镍基LDH催化剂之一。密度泛函理论计算表明,CoNiIr ZLDH的高催化活性主要源于含5d轨道的元素Ir的自旋轨道耦合效应,这改变了催化剂费米能级附近的电子电荷和电子自旋分布。这种修饰提高了电导率,降低了氧物种的吸附能,并促进了电子和物质的转移,从而降低了反应过电位并提高了反应效率。该研究有望为电化学水分解中OER电极的实际设计提供新思路。

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