He Qiu, Liu Jinshuai, Li Zhaohuai, Li Qi, Xu Lin, Zhang Baoxuan, Meng Jiashen, Wu Yuzhu, Mai Liqiang
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, Hubei, P. R. China.
Department of Chemistry, University of California, Berkeley, CA, 94720, USA.
Small. 2017 Oct;13(37). doi: 10.1002/smll.201701504. Epub 2017 Jul 26.
Tin dioxide (SnO ) has attracted much attention in lithium-ion batteries (LIBs) due to its abundant source, low cost, and high theoretical capacity. However, the large volume variation, irreversible conversion reaction limit its further practical application in next-generation LIBs. Here, a novel solvent-free approach to construct uniform metal-organic framework (MOF) shell-derived carbon confined SnO /Co (SnO /Co@C) nanocubes via a two-step heat treatment is developed. In particular, MOF-coated CoSnO hollow nanocubes are for the first time synthesized as the intermediate product by an extremely simple thermal solid-phase reaction, which is further developed as a general strategy to successfully obtain other uniform MOF-coated metal oxides. The as-synthesized SnO /Co@C nanocubes, when tested as LIB anodes, exhibit a highly reversible discharge capacity of 800 mAh g after 100 cycles at 200 mA g and excellent cycling stability with a retained capacity of 400 mAh g after 1800 cycles at 5 A g . The experimental analyses demonstrate that these excellent performances are mainly ascribed to the delicate structure and a synergistic effect between Co and SnO . This facile synthetic approach will greatly contribute to the development of functional metal oxide-based and MOF-assisted nanostructures in many frontier applications.
二氧化锡(SnO₂)因其来源丰富、成本低和理论容量高,在锂离子电池(LIBs)中备受关注。然而,其较大的体积变化、不可逆的转化反应限制了它在下一代LIBs中的进一步实际应用。在此,通过两步热处理开发了一种新颖的无溶剂方法,以构建均匀的金属有机框架(MOF)壳层衍生碳限制的SnO₂/Co(SnO₂/Co@C)纳米立方体。特别是,首次通过极其简单的热固相反应合成了MOF包覆的CoSnO中空纳米立方体作为中间产物,这进一步发展成为一种通用策略,成功获得了其他均匀的MOF包覆金属氧化物。所合成的SnO₂/Co@C纳米立方体在作为LIB阳极测试时,在200 mA g下循环100次后表现出800 mAh g的高度可逆放电容量,在5 A g下循环1800次后具有400 mAh g的保留容量,展现出优异的循环稳定性。实验分析表明,这些优异性能主要归因于其精细的结构以及Co和SnO₂之间的协同效应。这种简便的合成方法将极大地促进基于功能金属氧化物和MOF辅助的纳米结构在许多前沿应用中的发展。