University of Wollongong
Browse

Enhanced electrochemical stability of carbon-coated antimony nanoparticles with sodium alginate binder for sodium-ion batteries

Download (2.17 MB)
journal contribution
posted on 2024-11-16, 05:35 authored by Jianmin Feng, Liqun Wang, Dejun Li, Pengyi Lu, Feng Hou, Ji Liang
The poor cycling stability of antimony during a repeated sodium ion insertion and desertion process is the key issue, which leads to an unsatisfactory application as an anode material in a sodium-ion battery. Addressed at this, we report a facile two-step method to coat antimony nanoparticles with an ultrathin carbon layer of few nanometers (denoted Sb@C NPs) for sodium-ion battery anode application. This carbon layer could buffer the volume change of antimony in the charge-discharge process and improve the battery cycle performance. Meanwhile, this carbon coating could also enhance the interfacial stability by firmly connecting the sodium alginate binders through its oxygen-rich surface. Benefitted from these advantages, an improved initial discharge capacity (788.5 mA h g −1 ) and cycling stability capacity (553 mA h g −1 after 50 times cycle) have been obtained in a battery using Sb@C NPs as anode materials at 50 mA g −1 .

Funding

Carbon-based catalysts for polysulphide redox reactions in lithium-sulfur batteries

Australian Research Council

Find out more...

History

Citation

Feng, J., Wang, L., Li, D., Lu, P., Hou, F. & Liang, J. (2018). Enhanced electrochemical stability of carbon-coated antimony nanoparticles with sodium alginate binder for sodium-ion batteries. Progress in Natural Science: Materials International, 28 205-211.

Journal title

Progress in Natural Science: Materials International

Volume

28

Issue

2

Pagination

205-211

Language

English

RIS ID

126702

Usage metrics

    Categories

    Keywords

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC