Hydrogenated V2O5 Nanosheets for Superior Lithium Storage Properties

Xiang Peng, Xuming Zhang, Lei Wang, Liangsheng Hu, Samson Ho-Sum Cheng, Chao Huang, Biao Gao, Fei Ma, Kaifu Huo*, Paul K. Chu*

*Corresponding author for this work

    Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

    167 Citations (Scopus)

    Abstract

    V2O5 is a promising cathode material for lithium ion batteries boasting a large energy density due to its high capacity as well as abundant source and low cost. However, the poor chemical diffusion of Li+, low conductivity, and poor cycling stability limit its practical application. Herein, oxygen-deficient V2O5 nanosheets prepared by hydrogenation at 200 °C with superior lithium storage properties are described. The hydrogenated V2O5 (H-V2O5) nanosheets deliver an initial discharge capacity as high as 259 mAh g-1 and it remains 55% when the current density is increased 20 times from 0.1 to 2 A g-1. The H-V2O5 electrode has excellent cycling stability with only 0.05% capacity decay per cycle after stabilization. The effects of oxygen defects mainly at bridging O(II) sites on Li+ diffusion and overall electrochemical lithium storage performance are revealed. The results reveal here a simple and effective strategy to improve the capacity, rate capability, and cycling stability of V2O5 materials which have large potential in energy storage and conversion applications. Oxygen-deficient V2O5 nanosheets with pre-compressed stress are prepared by low-temperature hydrogenation. The H-V2O5 nanosheets possess superior electrochemical properties, such as high capacity, improved conductivity, reduced stress in Li+ insertion/depletion, and
    Original languageEnglish
    Pages (from-to)784-791
    JournalAdvanced Functional Materials
    Volume26
    Issue number5
    Online published7 Dec 2015
    DOIs
    Publication statusPublished - 2 Feb 2016

    Research Keywords

    • 2D nanosheets
    • hydrogenate
    • lithium ion battery cathodes
    • oxygen vacancy
    • V2O5

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