4.8 Article

Unravel the influences of Ni substitution on Co-based electrodes for rechargeable alkaline Zn-Co batteries

期刊

JOURNAL OF POWER SOURCES
卷 483, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jpowsour.2020.229192

关键词

Zn-Co battery; Cobalt oxide; Ni substitution; Electrochemical performance; Decay mechanism

资金

  1. Anhui Provincial Natural Science Foundation [2008085ME155]
  2. CAS Pioneer Hundred Talents Program [KJ2090130001]
  3. USTC Research Funds of the Double FirstClass Initiative [YD2090002006]
  4. Joint Laboratory for USTC and Yanchang Petroleum [ES2090130110]
  5. USTC Tang Scholar
  6. Research Grant Council, University Grants Committee, Hong Kong SAR [PolyU 152214/17E, PolyU 152064/18E]

向作者/读者索取更多资源

This study aims to improve the electrochemical performance of Zn-Co batteries by substituting Ni on the Co3O4 electrode, constructing a novel nanowire-nanosheet structure with high electric conductivity and good valence change-ability. The substituted electrode shows high capacity, energy density, and rate performance, as well as good cycle stability. The role of Ni substitution in capacity decay is investigated, revealing mechanisms such as decreased low valence species and microstructure collapse.
The performance of Zn-Co batteries is hindered by some critical issues, such as the low electric conductivity and poor valence-change ability, restricting the utilization of the active material. This study aims at improving the electrochemical performance of the battery via substituting Ni on the Co3O4 electrode. A novel multiple self-assembled nanowire-nanosheet structure is constructed with the substitution of 10% Ni, the high electric conductivity and decent valence change-ability push the electrode to the top-tier among the reported Zn-Co batteries, including the high capacity of 272 mAh g(-1), high energy density of 448 Wh kg(-1), and excellent rate performance with a capacity retention ratio of 72.5% after even 40-fold increase of the current density. In terms of the cycle stability, it can operate well with a capacity retention ratio of 85.3% before the 1000th cycle, while dramatically decay in the subsequent cycles. More importantly, to illuminate the role of Ni substitution on the capacity decay, a systematic investigation on the Ni substituted Co3O4 electrode is conducted for the first time. The capacity decay mechanism is proposed as the decreased low valence species, microstructure collapse, and irreversible phase transition with an increase of the Ni substitution ratio. This work offers insights to develop high-performance and durable electrodes for Zn-Co batteries.

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