University of Wollongong
Browse

3D hierarchical porous graphene aerogel with tunable meso-pores on graphene nanosheets for high-performance energy storage

Download (1.68 MB)
journal contribution
posted on 2024-11-16, 10:15 authored by Long Ren, K N Hui, K S Hui, Yundan Liu, Xiang Qi, Jianxin Zhong, Yi Du, Jianping Yang
New and novel 3D hierarchical porous graphene aerogels (HPGA) with uniform and tunable mesopores (e.g., 21 and 53 nm) on graphene nanosheets (GNS) were prepared by a hydrothermal self-assembly process and an in-situ carbothermal reaction. The size and distribution of the meso-pores on the individual GNS were uniform and could be tuned by controlling the sizes of the Co3O4 NPs used in the hydrothermal reaction. This unique architecture of HPGA prevents the stacking of GNS and promises more electrochemically active sites that enhance the electrochemical storage level significantly. HPGA, as a lithium-ion battery anode, exhibited superior electrochemical performance, including a high reversible specific capacity of 1100 mAh/g at a current density of 0.1 A/g, outstanding cycling stability and excellent rate performance. Even at a large current density of 20 A/g, the reversible capacity was retained at 300 mAh/g, which is larger than that of most porous carbon-based anodes reported, suggesting it to be a promising candidate for energy storage. The proposed 3D HPGA is expected to provide an important platform that can promote the development of 3D topological porous systems in a range of energy storage and generation fields.

Funding

Design and exploration of novel p-block materials for visible light photocatalysis

Australian Research Council

Find out more...

History

Citation

Ren, L., Hui, K. N., Hui, K. S., Liu, Y., Qi, X., Zhong, J., Du, Y. & Yang, J. (2015). 3D hierarchical porous graphene aerogel with tunable meso-pores on graphene nanosheets for high-performance energy storage. Scientific Reports, 5 14229-1-14229-11.

Journal title

Scientific Reports

Volume

5

Language

English

RIS ID

103324

Usage metrics

    Categories

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC