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核壳结构普鲁士蓝类似物三元金属磷化物作为用于析氧反应和析氢反应的高效双功能电催化剂

Core-Shell-Structured Prussian Blue Analogues Ternary Metal Phosphides as Efficient Bifunctional Electrocatalysts for OER and HER.

作者信息

Zhou Xiangyang, Zi Youju, Xu Lei, Li Ting, Yang Juan, Tang Jingjing

机构信息

School of Metallurgy and Environment, Central South University, Changsha 410083, China.

出版信息

Inorg Chem. 2021 Aug 2;60(15):11661-11671. doi: 10.1021/acs.inorgchem.1c01694. Epub 2021 Jul 20.

Abstract

Electrochemical water splitting is regarded as the most potential sustainable hydrogen production technology. However, the slow reaction kinetics and high overpotential of this process will result in low energy conversion efficiency. Therefore, it is of great practical value to research low-cost, efficient, and stable transition-metal-based bifunctional electrocatalysts. Herein, Fe-Co Prussian blue analogue (PBA) was coated with Ni-Co PBA to prepare the trimetallic PBA precursor, and the trimetallic phosphate (Fe-Co-Ni-P-1) has been prepared via the low-temperature phosphating process. The effects of metal ratios, the amount of sodium hypophosphite, and phosphating temperature on the catalytic performances were studied. When Fe-Co-Ni-P-1 was used as an electrocatalyst, the overpotential of oxygen evolution reaction and hydrogen evolution reaction was 247 and 215 mV, respectively, at a current density of 10 mA cm. At the same time, Fe-Co-Ni-P-1 showed faster kinetics and better long-term stability in the catalytic process. The catalytic performances of unary metal, binary metal, and ternary metal phosphides, oxides, and sulfides were systematically studied. It is demonstrated that the ternary metal phosphide Fe-Co-Ni-P-1 manifests the best catalytic performance, which is mainly attributed to the monodisperse core-shell structure, low resistance, large electrochemical active area, and the synergistic effect among metals.

摘要

电化学水分解被认为是最具潜力的可持续制氢技术。然而,该过程缓慢的反应动力学和高过电位会导致能量转换效率低下。因此,研究低成本、高效且稳定的过渡金属基双功能电催化剂具有重要的实际价值。在此,将铁 - 钴普鲁士蓝类似物(PBA)包覆镍 - 钴PBA以制备三金属PBA前驱体,并通过低温磷化工艺制备了三金属磷酸盐(Fe - Co - Ni - P - 1)。研究了金属比例、次磷酸钠用量和磷化温度对催化性能的影响。当Fe - Co - Ni - P - 1用作电催化剂时,在电流密度为10 mA cm时,析氧反应和析氢反应的过电位分别为247和215 mV。同时,Fe - Co - Ni - P - 1在催化过程中表现出更快的动力学和更好的长期稳定性。系统研究了一元金属、二元金属和三元金属磷化物、氧化物及硫化物的催化性能。结果表明,三元金属磷化物Fe - Co - Ni - P - 1表现出最佳的催化性能,这主要归因于其单分散核壳结构、低电阻、大电化学活性面积以及金属间的协同效应。

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