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一种通用的金属有机框架介导的由超薄纳米片组成的中空钴铁基三金属磷化物的合成方法,用于促进水氧化电催化。

A general MOF-intermediated synthesis of hollow CoFe-based trimetallic phosphides composed of ultrathin nanosheets for boosting water oxidation electrocatalysis.

作者信息

Wang Cheng, Shang Hongyuan, Wang Yuan, Li Jie, Guo Siyu, Guo Jun, Du Yukou

机构信息

College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, PR China.

出版信息

Nanoscale. 2021 Apr 21;13(15):7279-7284. doi: 10.1039/d1nr00075f. Epub 2021 Apr 12.

Abstract

Engineering an electrode material for boosting reaction kinetics is highly desired for the oxygen evolution reaction (OER) in the anodic half reaction, and is still a grand challenge for energy conversion technologies. By taking inspiration from the catalytic properties of transition metal phosphides (TMPs) and metal-organic frameworks (MOFs), we herein propose a general MOF-intermediated synthesis of a series of hollow CoFeM (M = Bi, Ni, Mn, Cu, Ce, and Zn) trimetallic phosphides composed of ultrathin nanosheets as advanced electrocatalysts for the OER. A dramatic improvement of electrocatalytic performance toward the OER is observed for hollow CoFeM trimetallic phosphides compared to bimetallic CoFe phosphides. Remarkably, composition-optimized CoFeBiP hollow microspheres could deliver superior electrocatalytic performance, achieving a current density of 10 mA cm with an overpotential of only 273 mV. Mechanistic investigations reveal that the Bi and P doping effectively optimizes the electronic structure of Co and Fe by charge redistribution, which significantly lowers the adsorption energy of oxygen intermediates. Moreover, the hollow microsphere structures composed of ultrathin nanosheets also enable them to provide rich surface active sites to boost the electrocatalytic OER.

摘要

设计一种用于加速反应动力学的电极材料对于阳极半反应中的析氧反应(OER)非常重要,并且对于能量转换技术而言仍然是一个巨大的挑战。通过从过渡金属磷化物(TMPs)和金属有机框架(MOFs)的催化特性中获取灵感,我们在此提出一种通用的MOF介导的合成方法,用于制备一系列由超薄纳米片组成的中空CoFeM(M = Bi、Ni、Mn、Cu、Ce和Zn)三金属磷化物,作为OER的先进电催化剂。与双金属CoFe磷化物相比,中空CoFeM三金属磷化物对OER的电催化性能有显著提高。值得注意的是,成分优化的CoFeBiP中空微球能够提供优异的电催化性能,在过电位仅为273 mV时实现10 mA cm的电流密度。机理研究表明,Bi和P掺杂通过电荷重新分布有效地优化了Co和Fe的电子结构,这显著降低了氧中间体的吸附能。此外,由超薄纳米片组成的中空微球结构也使它们能够提供丰富的表面活性位点,以促进电催化OER。

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