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构建分级 MoSe 空心结构及其对电化学储能和转换的影响。

Construction of Hierarchical MoSe Hollow Structures and Its Effect on Electrochemical Energy Storage and Conversion.

机构信息

Key Laboratory of Catalysis and Materials Science of the State Ethnic Affairs Commission & Ministry of Education, Hubei Province , South-Central University for Nationalities , Wuhan 430074 , People's Republic of China.

Institute for Superconducting & Electronic Materials, School of Mechanical, Materials, Mechatronics & Biomedical Engineering, Faculty of Engineering and Information Sciences , University of Wollongong , Wollongong , New South Wales 2500 , Australia.

出版信息

ACS Appl Mater Interfaces. 2018 Aug 1;10(30):25483-25492. doi: 10.1021/acsami.8b09410. Epub 2018 Jul 19.

Abstract

Metal selenides have attracted increased attention as promising electrode materials for electrochemical energy storage and conversion systems including metal-ion batteries and water splitting. However, their practical application is greatly hindered by collapse of the microstructure, thus leading to performance fading. Tuning the structure at nanoscale of these materials is an effective strategy to address the issue. Herein, we craft MoSe with hierarchical hollow structures via a facile bubble-assisted solvothermal method. The temperature-related variations of the hollow interiors are studied, which can be presented as solid, yolk-shell, and hollow spheres, respectively. Under the simultaneous action of the distinctive hollow structures and interconnections among the nanosheets, more intimate contacts between MoSe and electrolyte can be achieved, thereby leading to superior electrochemical properties. Consequently, the MoSe hollow nanospheres prepared under optimum conditions exhibit optimal electrochemical activities, which hold an initial specific capacity of 1287 mA h g and maintain great capacity even after 100 cycles as anode for Li-ion battery. Moreover, the Tafel slope of 58.9 mV dec for hydrogen evolution reaction is also attained.

摘要

金属硒化物作为电化学储能和转换系统(包括金属离子电池和水分解)的有前途的电极材料,引起了越来越多的关注。然而,其实际应用受到微结构崩溃的严重阻碍,从而导致性能下降。调整这些材料的纳米结构是解决该问题的有效策略。本文通过简便的气泡辅助溶剂热法制备了具有分级空心结构的 MoSe。研究了空心内部的温度相关变化,其可以分别呈现为固体、蛋黄壳和空心球体。在独特的空心结构和纳米片之间的相互连接的共同作用下,MoSe 与电解质之间可以实现更紧密的接触,从而具有优异的电化学性能。因此,在最佳条件下制备的 MoSe 空心纳米球作为锂离子电池的阳极具有最佳的电化学活性,初始比容量为 1287 mA h g ,即使在 100 次循环后仍保持较大的容量。此外,还获得了 58.9 mV dec 的析氢反应的塔菲尔斜率。

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