Frontiers in Chemistry (Sep 2020)

Contribution of Cation Addition to MnO2 Nanosheets on Stable Co3O4 Nanowires for Aqueous Zinc-Ion Battery

  • Nengze Wang,
  • Gaochen Yang,
  • Yi Gan,
  • Houzhao Wan,
  • Xu Chen,
  • Cong Wang,
  • Qiuyang Tan,
  • Jie Ji,
  • Xiaojuan Zhao,
  • Pengcheng Liu,
  • Jun Zhang,
  • Xiaoniu Peng,
  • Hanbin Wang,
  • Yi Wang,
  • Guokun Ma,
  • Peter A. van Aken,
  • Hao Wang

DOI
https://doi.org/10.3389/fchem.2020.00793
Journal volume & issue
Vol. 8

Abstract

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Zinc-based electrochemistry attracts significant attention for practical energy storage owing to its uniqueness in terms of low cost and high safety. In this work, we propose a 2.0-V high-voltage Zn–MnO2 battery with core@shell Co3O4@MnO2 on carbon cloth as a cathode, an optimized aqueous ZnSO4 electrolyte with Mn2+ additive, and a Zn metal anode. Benefitting from the architecture engineering of growing Co3O4 nanorods on carbon cloth and subsequently deposited MnO2 on Co3O4 with a two-step hydrothermal method, the binder-free zinc-ion battery delivers a high power of 2384.7 W kg−1, a high capacity of 245.6 mAh g−1 at 0.5 A g−1, and a high energy density of 212.8 Wh kg−1. It is found that the Mn2+ cations are in situ converted to Mn3O4 during electrochemical operations followed by a phase transition into electroactive MnO2 in our battery system. The charge-storage mechanism of the MnO2-based cathode is Zn2+/Zn and H+ insertion/extraction. This work shines light on designing multivalent cation-based battery devices with high output voltage, safety, and remarkable electrochemical performances.

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