University of Wollongong
Browse

Simply mixed commercial red phosphorus and carbon nanotube composite with exceptionally reversible sodium-ion storage

Download (2.67 MB)
journal contribution
posted on 2024-11-16, 01:58 authored by Wei-Jie Li, Shulei Chou, Jia-zhao Wang, Hua LiuHua Liu, Shi DouShi Dou
Recently, sodium ion batteries (SIBs) have been given intense attention because they are the most promising alternative to lithium ion batteries for application in renewable power stations and smart grid, owing to their low cost, their abundant natural resources, and the similar chemistry of sodium and lithium. Elemental phosphorus (P) is the most promising anode materials for SIBs with the highest theoretical capacity of 2596 mA h g-1, but the commercially available red phosphorus cannot react with Na reversibly. Here, we report that simply hand-grinding commercial microsized red phosphorus and carbon nanotubes (CNTs) can deliver a reversible capacity of 1675 mA h g-1 for sodium ion batteries (SIBs), with capacity retention of 76.6% over 10 cycles. Our results suggest that the simply mixed commercial red phosphorus and CNTs would be a promising anode candidate for SIBs with a high capacity and low cost.

Funding

A novel hybrid electrochemical energy system for both high energy and high power

Australian Research Council

Find out more...

Development of novel composite anode materials combined with new binders for high energy, high power and long life lithium-ion batteries

Australian Research Council

Find out more...

History

Citation

Li, W., Chou, S., Wang, J., Liu, H. & Dou, S. (2013). Simply mixed commercial red phosphorus and carbon nanotube composite with exceptionally reversible sodium-ion storage. Nano Letters: a journal dedicated to nanoscience and nanotechnology, 13 (11), 5480-5484.

Journal title

Nano Letters

Volume

13

Issue

11

Pagination

5480-5484

Language

English

RIS ID

85096

Usage metrics

    Categories

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC