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用于碱性介质中高效持久电催化析氧反应的 NiFeXO(X = Fe、Ni、Al、Mo、Co、Cr)熵稳定多组分多孔尖晶石纳米线

Entropy-Stabilized Multicomponent Porous Spinel Nanowires of NiFeXO (X = Fe, Ni, Al, Mo, Co, Cr) for Efficient and Durable Electrocatalytic Oxygen Evolution Reaction in Alkaline Medium.

作者信息

Zhang Qiwen, Hu Yixuan, Wu Haofei, Zhao Xiaoran, Wang Mingliang, Wang Sihong, Feng Ruohan, Chen Qing, Song Fang, Chen Mingwei, Liu Pan

机构信息

Shanghai Key Laboratory of Advanced High-temperature Materials and Precision Forming, Shanghai Jiao Tong University, Shanghai200240, People's Republic of China.

State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai200240, People's Republic of China.

出版信息

ACS Nano. 2023 Jan 11. doi: 10.1021/acsnano.2c10247.

Abstract

Cost-effective electrochemical water splitting technology hinges on the development of efficient and durable catalysts for oxygen evolution reaction (OER). Spinel oxides (formula: ABO) are structurally stable for real applications. Much effort has been devoted to improving the catalytic activity. Here, we report a eutectic dealloying strategy to activate the porous spinel NiFeO nanowires with up to four metal cation substitutions. As-obtained spinel NiFeXO (X = Fe, Ni, Al, Mo, Co, Cr) delivers a benchmark current density of 10 mA·cm at an overpotential of only 195 mV, outperforming most spinel phase OER electrocatalysts and comparable to the state-of-the-art NiFe hydroxides. It is stable for over 115 h of electrolysis. Aberration-corrected transmission electron microscopy, high-resolution electron energy loss spectroscopy, and atomic-scale strain mappings reveal that the multivalent cation substitutions result in substantial lattice distortion and significant electronic coupling of metal 3d and O 2p orbitals for increased covalency. Further theoretical calculations suggest that the NiFeXO are stabilized by the high configurational entropy, and their synergy favors the absorption of HO molecules and lowers the adsorption energy barrier of the OOH* intermediate. The improved intrinsic activity together with the highly nanoporous structures contribute to the appealing apparent catalytic performances. The work demonstrates an effective approach for the synthesis of stable multicomponent spinel oxides and highlights the effectiveness of the multication substitution strategy for producing highly durable and active spinel catalysts, which meet multiplexed structure and superior property requirements in practical applications.

摘要

具有成本效益的电化学水分解技术取决于用于析氧反应(OER)的高效耐用催化剂的开发。尖晶石氧化物(化学式:ABO)在实际应用中结构稳定。人们已经付出了很多努力来提高其催化活性。在此,我们报告了一种共晶脱合金策略,用于激活具有多达四种金属阳离子取代的多孔尖晶石NiFeO纳米线。所制备的尖晶石NiFeXO(X = Fe、Ni、Al、Mo、Co、Cr)在仅195 mV的过电位下就能提供10 mA·cm的基准电流密度,优于大多数尖晶石相OER电催化剂,与最先进的NiFe氢氧化物相当。它在超过115小时的电解过程中保持稳定。像差校正透射电子显微镜、高分辨率电子能量损失谱和原子尺度应变映射表明,多价阳离子取代导致大量晶格畸变以及金属3d和O 2p轨道的显著电子耦合,从而增加了共价性。进一步的理论计算表明,NiFeXO通过高组态熵得以稳定,它们的协同作用有利于HO分子的吸附,并降低了OOH*中间体的吸附能垒。内在活性的提高以及高度多孔的结构共同促成了吸引人的表观催化性能。这项工作展示了一种合成稳定多组分尖晶石氧化物的有效方法,并突出了多阳离子取代策略在制备高度耐用和活性尖晶石催化剂方面的有效性,这些催化剂在实际应用中满足了多重结构和优异性能的要求。

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