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通过构建异质结构的2纳米CoSe-NiSe纳米颗粒实现界面电子/空穴重新分布和超亲水表面以实现高效全解水

Realizing Interfacial Electron/Hole Redistribution and Superhydrophilic Surface through Building Heterostructural 2 nm Co Se-NiSe Nanograins for Efficient Overall Water Splittings.

作者信息

Ye Fei, Zhang Lin, Lu Chengjie, Bao Zhuoheng, Wu Zeyi, Liu Qiang, Shao Zongping, Hu Linfeng

机构信息

School of Materials Science and Engineering, Southeast University, Nanjing, 211189, P. R. China.

Department of Materials Science, Fudan University, Shanghai, 200433, P. R. China.

出版信息

Small Methods. 2022 Jul;6(7):e2200459. doi: 10.1002/smtd.202200459. Epub 2022 May 19.

Abstract

Electrochemical overall water splitting using renewable energy input is highly desirable for large-scale green hydrogen generation, but it is still challenged due to the lack of low-cost, durable, and highly efficient electrocatalysts. Herein, 1D nanowires composed of numerous 2 nm Co Se-NiSe nanograin heterojunctions as efficient precious metal-free bifunctional electrocatalyst are reported for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) in alkaline solution with the merits of high activity, durability, and low cost. The abundant microinterface among the ultrafine nanograins and the presence of lattice distortion around nanograin interface is found to create a superhydrophilic surface of the electrocatalyst, which significantly facilitate the fast diffusion of electrolytes and the release of the formed H and O from the catalyst surface. Furthermore, synergic effect between Co Se and NiSe grain on adjusting the electronic structure is revealed, which enhances electron mobility for fast electron transport during the HER/OER process. Owing to these merits, the rationally designed Co Se-NiSe heterostructures display efficient overall water splitting behavior with a low voltage of 1.54 V at 10 mA cm and remarkable long-term durability for the investigated period of 50 h.

摘要

利用可再生能源输入进行电化学全水解对于大规模绿色制氢非常理想,但由于缺乏低成本、耐用且高效的电催化剂,该技术仍面临挑战。在此,报道了一种由众多2纳米的CoSe-NiSe纳米颗粒异质结组成的一维纳米线,作为高效的无贵金属双功能电催化剂,用于碱性溶液中的析氢反应(HER)和析氧反应(OER),具有高活性、耐用性和低成本的优点。发现超细纳米颗粒之间丰富的微界面以及纳米颗粒界面周围晶格畸变的存在,使得电催化剂具有超亲水表面,这显著促进了电解质的快速扩散以及从催化剂表面释放生成的H和O。此外,揭示了CoSe和NiSe颗粒在调节电子结构方面的协同效应,这增强了电子迁移率,以便在HER/OER过程中实现快速电子传输。由于这些优点,合理设计的CoSe-NiSe异质结构在10 mA cm时具有1.54 V的低电压,表现出高效的全水解行为,并且在50小时的研究期间具有出色的长期耐久性。

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