JOURNAL ARTICLE

Flower-like C@SnO X @C hollow nanostructures with enhanced electrochemical properties for lithium storage

Abstract

Hollow nanostructures have attracted considerable attention owing to their large surface area, tunable cavity, and low density. In this study, a unique flower-like C@SnO X @C hollow nanostructure (denoted as C@SnO X @C-1) was synthesized through a novel one-pot approach. The C@SnO X @C-1 had a hollow carbon core and interlaced petals on the shell. Each petal was a SnO2 nanosheet coated with an ultrathin carbon layer ~2 nm thick. The generation of the hollow carbon core, the growth of the SnO2 nanosheets, and the coating of the carbon layers were simultaneously completed via a hydrothermal process using resorcinol-formaldehyde resin-coated SiO2 nanospheres, tin chloride, urea, and glucose as precursors. The resultant architecture with a large surface area exhibited excellent lithium-storage performance, delivering a high reversible capacity of 756.9 mA·h·g–1 at a current density of 100 mA·g–1 after 100 cycles.

Keywords:
Materials science Nanostructure Nanosheet Chemical engineering Lithium (medication) Electrochemistry Carbon fibers Tin Nanotechnology Current density Coating Hydrothermal circulation Non-blocking I/O Electrode Composite material Catalysis Chemistry Composite number Organic chemistry Metallurgy

Metrics

41
Cited By
3.57
FWCI (Field Weighted Citation Impact)
51
Refs
0.94
Citation Normalized Percentile
Is in top 1%
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Citation History

Topics

Advancements in Battery Materials
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
Supercapacitor Materials and Fabrication
Physical Sciences →  Materials Science →  Electronic, Optical and Magnetic Materials
Advanced Battery Materials and Technologies
Physical Sciences →  Engineering →  Electrical and Electronic Engineering

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