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热解对称三核镍簇中的非晶态转变引发三功能电催化剂。

Amorphous conversion in pyrolytic symmetric trinuclear nickel clusters trigger trifunctional electrocatalysts.

作者信息

Li Li, Zhao Hui-Feng, Gan Mei-Xing, Zhang Tao, Li Jia-Ning, Tao Shi, Peng Jing, Yu Hai-Bin, Peng Xu

机构信息

Wuhan National High Magnetic Field Center, School of Physic, Huazhong University of Science and Technology Wuhan 430074 China

College of Chemistry and Chemical Engineering, Hubei University Wuhan 430062 China

出版信息

Chem Sci. 2024 Apr 16;15(20):7689-7697. doi: 10.1039/d4sc01696c. eCollection 2024 May 22.

Abstract

The pursuit of multifunctional electrocatalysts holds significant importance due to their comprehension of material chemistry. Amorphous materials are particularly appealing, yet they pose challenges in terms of rational design due to their structural disorder and thermal instability. Herein, we propose a strategy that entails the tandem (low-temperature/250-350 °C) pyrolysis of molecular clusters, enabling preservation of the local short-range structures of the precursor Schiff base nickel (Ni[2(CHNNiO)]). The temperature-dependent residuals demonstrate exceptional activity and stability for at least three distinct electrocatalytic processes, including the oxygen evolution reaction ( = 197 mV), urea oxidation reaction ( = 1.339 V), and methanol oxidation reaction (1358 mA cm at 0.56 V). Three distinct nickel atom motifs are discovered for three efficient electrocatalytic reactions (Ni1 and Ni1' are preferred for UOR/MOR, while Ni2 is preferred for OER). Our discoveries pave the way for the potential development of multifunctional electrocatalysts through disordered engineering in molecular clusters under tandem pyrolysis.

摘要

由于对材料化学的理解,对多功能电催化剂的追求具有重要意义。非晶态材料特别有吸引力,但由于其结构无序和热不稳定,在合理设计方面存在挑战。在此,我们提出一种策略,即对分子簇进行串联(低温/250 - 350°C)热解,从而能够保留前体席夫碱镍(Ni[2(CHNNiO)])的局部短程结构。温度依赖性残余物对至少三种不同的电催化过程表现出优异的活性和稳定性,包括析氧反应( = 197 mV)、尿素氧化反应( = 1.339 V)和甲醇氧化反应(在0.56 V时为1358 mA cm)。对于三种高效电催化反应发现了三种不同的镍原子基序(UOR/MOR优选Ni1和Ni1',而OER优选Ni2)。我们的发现为通过串联热解下分子簇中的无序工程潜在开发多功能电催化剂铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f2bd/11110135/5e345ead6d8c/d4sc01696c-s1.jpg

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