4.6 Article

Electrochemical transformation reaction of Cu-MnO in aqueous rechargeable zinc-ion batteries for high performance and long cycle life

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 8, 期 34, 页码 17595-17607

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0ta04175k

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资金

  1. Ministry of Science and Technology (MoST) [108-3116-F-011-001-CC1, 108-2627-M-011-001-, 107-2923-E-011-002, 107-2119-M-002-033, 106-2923-E-011-005, 106-2221-E-011-125-MY3]
  2. Applied Research Center for Thin-Film Metallic Glass from the Featured Areas Research Center Program
  3. Taiwan's Deep Decarbonization Pathways toward a Sustainable Society Project from Academia Sinica [AS-KPQ-106-DDPP]
  4. National Taiwan University of Science and Technology (NTUST)
  5. U2RSC program [MOE 1080059]
  6. National Synchrotron Radiation Research Centre (NSRRC)

向作者/读者索取更多资源

Rechargeable aqueous zinc-ion batteries (ZIBs) are emerging as an alternative to lithium-ion batteries in large-scale energy storage applications due to their safety and environmental friendliness. However, their application is hindered by the lack of suitable cathode materials that provide high capacity and long cycling stability. In this work, we have designed Cu-MnO nanospheres with abundant manganese/oxygen defects as a cathode materialviacalcination and reduction of manganese dioxide (MnO2) in an Ar/H(2)atmosphere. Investigation of the electrochemical mechanism showed that the spinel-type Cu-MnO electrode started to transform into layered-type Cu-MnO2 center dot nH(2)O nanoflowers upon initial charging, and thus, the subsequent Zn(2+)intercalation and H(+)conversion reactions took place in the Cu-MnO2 center dot nH(2)O material. The underlying phase transformation of the Cu-MnO nanospheres and energy storage mechanism of the Cu-MnO2 center dot nH(2)O nanoflowers were systematically investigated using a broad range of characterization techniques. Manganese vacancy was also observed in Cu-MnO2 center dot nH(2)O, which interestingly triggered the lattice oxygen redox reaction. As a result, when employed as a cathode material in zinc-ion batteries, Cu-MnO2 center dot nH(2)O delivered a high specific capacity of 320 mA h g(-1)and long-term cycling stability with a capacity retention of over 70% after 1000 cycles. This work not only provides insight into the design of transition-metal-modified manganese monoxide cathodes but also broadens the horizon for understanding the electrochemical properties and energy-storage mechanism of low-valance manganese-based cathode materials in rechargeable zinc-ion batteries.

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