4.7 Article

Simultaneously Regulating Uniform Zn2+ Flux and Electron Conduction by MOF/rGO Interlayers for High-Performance Zn Anodes

期刊

NANO-MICRO LETTERS
卷 13, 期 1, 页码 -

出版社

SHANGHAI JIAO TONG UNIV PRESS
DOI: 10.1007/s40820-021-00594-7

关键词

Zn-based battery; Zn anode; Janus separator; Metal-organic framework; Reduced graphene oxide

资金

  1. Hong Kong Innovation & Technology Fund [ITS/031/18]
  2. National Key R&D Program of China [2016YFB0700600]
  3. Soft Science Research Project of Guangdong Province [2017B030301013]
  4. Shenzhen Science and Technology Research Grant [ZDSYS201707281026184]

向作者/读者索取更多资源

This study presents a Janus separator based on a Zn-ion conductive metal-organic framework (MOF) and reduced graphene oxide (rGO), which can simultaneously regulate uniform Zn2+ flux and electron conduction during battery operation, effectively improving the stability and corrosion issues of Zn anodes.
Owing to the merits of low cost, high safety and environmental benignity, rechargeable aqueous Zn-based batteries (ZBs) have gained tremendous attention in recent years. Nevertheless, the poor reversibility of Zn anodes that originates from dendrite growth, surface passivation and corrosion, severely hinders the further development of ZBs. To tackle these issues, here we report a Janus separator based on a Zn-ion conductive metal-organic framework (MOF) and reduced graphene oxide (rGO), which is able to regulate uniform Zn2+ flux and electron conduction simultaneously during battery operation. Facilitated by the MOF/rGO bifunctional interlayers, the Zn anodes demonstrate stable plating/stripping behavior (over 500 h at 1 mA cm(-2)), high Coulombic efficiency (99.2% at 2 mA cm(-2) after 100 cycles) and reduced redox barrier. Moreover, it is also found that the Zn corrosion can be effectively retarded through diminishing the potential discrepancy on Zn surface. Such a separator engineering also saliently promotes the overall performance of Zn|MnO2 full cells, which deliver nearly 100% capacity retention after 2000 cycles at 4 A g(-1) and high power density over 10 kW kg(-1). This work provides a feasible route to the high-performance Zn anodes for ZBs.

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