Meng Alan, Huang Tianqi, Li Huanyu, Cheng He, Lin Yusheng, Zhao Jian, Li Zhenjiang
State Key Laboratory Base of Eco-chemical Engineering, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao 266042, Shandong, PR China.
College of Materials Science and Engineering, Qingdao University of Science and Technology, Qingdao 266042, Shandong, PR China.
J Colloid Interface Sci. 2021 May;589:147-156. doi: 10.1016/j.jcis.2020.12.124. Epub 2021 Jan 5.
Creating rich vacancies and designing distinct micro-morphology are considered as effective strategies for boosting the electrochemical performances of sodium ion battery (SIB) electrode materials. In this paper, a variety of MoS nanostructures with different sulfur vacancies concentration and morphologies are successfully constructed by a hydrothermal method combined with various-temperature calcination treatment in a Ar/H mixed atmosphere. Employed as a free-standing anode for SIBs, the flower-like MoS microspheres assembled by the intertwined nanosheet arrays (MoS-800) delivers highest specific capacity of 525.3 mAh g and rate capability, as well as extraordinarily stable cycle life with almost no loss of capacity after 420 cycles. The favorable sodium storage properties are mainly ascribed to the cooperated effects of superior intrinsic conductivity and richer active sites generated by sulfur vacancies, and numerous interspace achieved by the intersection of neighbouring nanosheets. Meanwhile, through ex situ analyses, the reversible charge/discharge mechanism of the obtained MoS-800 is revealed reasonably. This work not only brings new insights into the design of high-performance electrode materials for SIBs, but also makes a great step forward in the practical applications of transition metal sulfides in energy storage systems.
创造丰富的空位和设计独特的微观形貌被认为是提高钠离子电池(SIB)电极材料电化学性能的有效策略。本文通过水热法结合在Ar/H混合气氛中的不同温度煅烧处理,成功构建了具有不同硫空位浓度和形貌的多种MoS纳米结构。作为SIBs的独立阳极,由相互缠绕的纳米片阵列组装而成的花状MoS微球(MoS-800)具有525.3 mAh g的最高比容量和倍率性能,以及超长的循环寿命,在420次循环后容量几乎没有损失。良好的储钠性能主要归因于优异的本征电导率和硫空位产生的更丰富活性位点的协同效应,以及相邻纳米片交叉形成的大量间隙。同时,通过非原位分析,合理揭示了所得MoS-800的可逆充/放电机理。这项工作不仅为SIBs高性能电极材料的设计带来了新的见解,也在过渡金属硫化物在储能系统中的实际应用方面迈出了重要一步。