Nanostructured SiO -based anodes synthesized by a scalable micelle assisted method for high-performance lithium-ion battery

阳极 材料科学 电池(电) 胶束 锂(药物) 锂离子电池 离子 可扩展性 化学工程 纳米技术 计算机科学 化学 有机化学 电极 物理化学 心理学 水溶液 工程类 功率(物理) 物理 精神科 数据库 量子力学
作者
Kuihua Han,Hanyang Gao,Guo-Xin Hu,Qinghua Zhang
出处
期刊:Materials Chemistry and Physics [Elsevier]
卷期号:291: 126721-126721
标识
DOI:10.1016/j.matchemphys.2022.126721
摘要

Nanostructured silicon-based particles have been widely developed as a promising anode material for lithium-ion batteries. However, nanostructuring usually requires complicated procedures and huge environmental pollution, which seriously hinder the commercialization of silicon-based anodes. Here, a scalable micelle-assisted method is developed to generate nanostructured SiO X -based particles by preventing the condensation between the reactive silanol groups. Benefiting from the scalable nanostructuring procedure, the hydrophilic polyethylene oxide segment of F127 is anchored on the surface of graphene oxide (GO) by hydrogen bonding, and the micelle formed by F127 with the silane precursor can further prevent the aggregation of GO sheets during the reduction process, leading to the nanostructured SiO X /C particles are attached to the surface of reduced graphite oxide (rGO). The nanostructured SiO X /C and rGO composites can reduce the crack risk of SiO X during (de)lithiation processes and decrease the diffusion length for Li + , while the uniformly distributed graphene network limits the agglomeration of nanoparticles during cycling and helps to improve electronic conductivity. As a result, the synthesized SiO X -based anode shows excellent cycling stability (>90% capacity retention from the 3rd to 500th) and fast Li + transport performance. This strategy provides a new scalable method to generate nanostructured SiO X -based particles for high-performance batteries. • Scalable micelle-assisted method for preparing nano-scale SiO X -based anodes. • SiO X -based particles can be uniformly anchored on the surface of graphene oxide. • The uniformly distributed graphene network limits nanoparticles agglomeration. • The designed SiO X -based anode shows high capacity, excellent cycling stability.

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