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用于电化学析氧的掺杂Ni(Fe)OH催化剂中Fe的原位表征

Operando Characterization of Fe in Doped Ni(Fe)OH Catalysts for Electrochemical Oxygen Evolution.

作者信息

Halldin Stenlid Joakim, Görlin Mikaela, Diaz-Morales Oscar, Davies Bernadette, Grigorev Vladimir, Degerman David, Kalinko Aleksandr, Börner Mia, Shipilin Mikhail, Bauer Matthias, Gallo Alessandro, Abild-Pedersen Frank, Bajdich Michal, Nilsson Anders, Koroidov Sergey

机构信息

Department of Physics, Alba Nova Research Center, Stockholm University, Stockholm SE-106 91 Sweden.

SUNCAT Center for Interface Science and Catalysis, SLAC National Accelerator Laboratory, 2575 Sandhill Road, Menlo Park, California 94025, United States.

出版信息

J Am Chem Soc. 2025 Feb 5;147(5):4120-4134. doi: 10.1021/jacs.4c13417. Epub 2025 Jan 25.

Abstract

Iron-doped nickel oxyhydroxides, Ni(Fe)OH, are among the most promising oxygen evolution reaction (OER) electrocatalysts in alkaline environments. Although iron (Fe) significantly enhances the catalytic activity, there is still no clear consensus on whether Fe directly participates in the reaction or merely acts as a promoter. To elucidate the Fe's role, we performed X-ray spectroscopy studies supported by DFT on Ni(Fe)OH electrocatalysts. We probed the reversible changes in the structure and electronic character of Ni(Fe)OH as the electrode potential is cycled between the resting (here at 1.10 ) and operational states (1.66 ). DFT calculations and XAS simulations on a library of Fe structures in various NiOH environments are in favor of a distorted local octahedral Fe(III)O(OH) configuration at the resting state with the NiOH scaffold going from α-Ni(OH) to γ-NiOOH as the potential is increased. Under catalytic conditions, EXAFS and HERFD spectra reveal changes in - mixing (covalency) relative to the resting state between O/OH ligands and Fe leading to a shift from octahedral to square pyramidal coordination at the Fe site. XES measurements and theoretical simulations further support that the Fe equilibrium structure remains in a formal Fe(III) state under both resting and operational conditions. These spectral changes are attributed to potential dependent structural rearrangements around Fe. The results suggest that ligand dissociation leads to the symmetry as the most stable intermediate of the Fe during OER. This implies that Fe has a weakly coordinated or easily dissociable ligand that could serve to coordinate the O-O bond formation and, tentatively, play an active role in the Ni(Fe)OH electrocatalyst.

摘要

铁掺杂的羟基氧化镍(Ni(Fe)OH)是碱性环境中最具前景的析氧反应(OER)电催化剂之一。尽管铁(Fe)显著提高了催化活性,但关于Fe是直接参与反应还是仅作为促进剂,目前仍没有明确的共识。为了阐明Fe的作用,我们对Ni(Fe)OH电催化剂进行了由密度泛函理论(DFT)支持的X射线光谱研究。我们探究了在静止状态(此处为1.10)和工作状态(1.66)之间循环电极电位时,Ni(Fe)OH的结构和电子特性的可逆变化。对各种NiOH环境中的一系列Fe结构进行的DFT计算和X射线吸收光谱(XAS)模拟表明,在静止状态下,局部八面体Fe(III)O(OH)构型发生畸变,随着电位升高,NiOH支架从α-Ni(OH)转变为γ-NiOOH。在催化条件下,扩展X射线吸收精细结构(EXAFS)和高能量分辨率荧光检测(HERFD)光谱揭示了相对于静止状态,O/OH配体与Fe之间的混合(共价性)变化,导致Fe位点的配位从八面体转变为四方锥。X射线发射光谱(XES)测量和理论模拟进一步支持,在静止和工作条件下,Fe的平衡结构均保持在形式上的Fe(III)状态。这些光谱变化归因于Fe周围与电位相关的结构重排。结果表明,配体解离导致对称性成为OER过程中Fe最稳定的中间体。这意味着Fe具有弱配位或易于解离的配体,可用于配位O-O键的形成,并初步推断在Ni(Fe)OH电催化剂中发挥积极作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1fff/11803719/66d397c7fb32/ja4c13417_0001.jpg

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