Constructing sheet-assembled hollow CuSe nanocubes to boost the rate capability of rechargeable magnesium batteries

Changliang Du, Waqar Younas, Zhitao Wang, Xinyu Yang, Erchao Meng, Liqin Wang, Jiaqin Huang, Xilan Ma, Youqi Zhu*, Chuanbao Cao

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

70 Citations (Scopus)
Plum Print visual indicator of research metrics
  • Citations
    • Citation Indexes: 68
  • Captures
    • Readers: 12
see details

Abstract

Copper selenide has been considered as a much more promising conversion-type cathode material for rechargeable magnesium batteries than copper sulfide because of its better conductivity. However, the magnesium ion diffusion in the lattice of the CuSe host is subject to a great coulombic resistance due to the relatively high charge density and ion polarization of the divalent Mg2+, leading to undesired rate capability and low reversible capacity. Herein, a morphology engineering strategy is presented to construct sheet-assembled hollow CuSe nanocubes by a simple template-directed selenation reaction at room temperature. Electrochemical measurements suggest that the CuSe nanocubes could exhibit an ultra-high initial discharge capacity of 596 mA h g−1and maximum specific capacity of 252 mA h g−1and maintain a relatively high reversible capacity of 170 mA h g−1after 100 cycles at 200 mA g−1. Furthermore, a remarkable rate capability could be obtained with 77.6 mA h g−1discharge capacity at 5 A g−1. Additionally, the CuSe nanocubes exhibit excellent compatibility with Mg(BH4)2/(CF3)2CHOH/DME electrolyte and follow a two-step conversion mechanism. Such superior magnesium storage properties demonstrate that constructing a hierarchical hollow structure could be one of the effective methods to promote the magnesium storage kinetics of CuSe cathode materials.

Original languageEnglish
Pages (from-to)3648-3656
Number of pages9
JournalJournal of Materials Chemistry A
Volume9
Issue number6
DOIs
Publication statusPublished - 14 Feb 2021

Fingerprint

Dive into the research topics of 'Constructing sheet-assembled hollow CuSe nanocubes to boost the rate capability of rechargeable magnesium batteries'. Together they form a unique fingerprint.

Cite this

Du, C., Younas, W., Wang, Z., Yang, X., Meng, E., Wang, L., Huang, J., Ma, X., Zhu, Y., & Cao, C. (2021). Constructing sheet-assembled hollow CuSe nanocubes to boost the rate capability of rechargeable magnesium batteries. Journal of Materials Chemistry A, 9(6), 3648-3656. https://doi.org/10.1039/d0ta10708e