| Literature DB >> 28374476 |
Jianping Yang1, Yunxiao Wang2, Wei Li3, Lianjun Wang1, Yuchi Fan1, Wan Jiang1, Wei Luo1, Yang Wang4, Biao Kong4, Cordelia Selomulya4, Hua Kun Liu2, Shi Xue Dou2, Dongyuan Zhao3,4.
Abstract
Smart surface coatings of silicon (Si) nanoparticles are shown to be good examples for dramatically improving the cyclability of lithium-ion batteries. Most coating materials, however, face significant challenges, including a low initial Coulombic efficiency, tedious processing, and safety assessment. In this study, a facile sol-gel strategy is demonstrated to synthesize commercial Si nanoparticles encapsulated by amorphous titanium oxide (TiO2 ), with core-shell structures, which show greatly superior electrochemical performance and high-safety lithium storage. The amorphous TiO2 shell (≈3 nm) shows elastic behavior during lithium discharging and charging processes, maintaining high structural integrity. Interestingly, it is found that the amorphous TiO2 shells offer superior buffering properties compared to crystalline TiO2 layers for unprecedented cycling stability. Moreover, accelerating rate calorimetry testing reveals that the TiO2 -encapsulated Si nanoparticles are safer than conventional carbon-coated Si-based anodes.Entities:
Keywords: core-shell structures; lithium-ion batteries; silicon nanoparticles; sol-gel coatings; titanium oxide
Year: 2017 PMID: 28374476 DOI: 10.1002/adma.201700523
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849