4.7 Article

Dendrite-free Zn anode supported with 3D carbon nanofiber skeleton towards stable zinc ion batteries

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 623, Issue -, Pages 1181-1189

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2022.05.058

Keywords

Zn ion battery; Zn anode; 3D skeleton; Flexible energy storage device

Funding

  1. National Key Research and Development Program of China [2019YFE0198000]
  2. China Postdoctoral Science Foundation [2019M662955]
  3. Science and Technology Program of Guangzhou [2019050001, 202102021000]
  4. Medical Scientific Research Foundation of Guangdong Province of China [A2022200]
  5. Guang-Dong Basic and Applied Basic Research Foundation [2021A1515111062]
  6. National Natural Science Foundation of China [81671742]
  7. Start-Up Grant of Jining Medical University [600768001]
  8. Guangdong Province Basic and Applied Research Fund [2019B1515120037]
  9. Department of Education of Guangdong Province [2019KZDXM014]
  10. SCNU Outstanding Young Scholar Project [8S0256]
  11. Start-Up Grant of the Southern Medical University [G620522046]
  12. High-End Foreign Experts Project [G2021030016L]
  13. Pearl River Talent Program [2019QN01L951]

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Zn-ion battery (ZIB) is a promising energy storage device, but the formation of Zn dendrites at the anode hampers its performance. In this study, a 3D structured Zn anode coated in carbon nanofiber framework was developed to inhibit Zn dendrites and improve battery performance. The resulting Zn@CC-CNF anode demonstrated long-term cycling stability and great potential for flexible energy storage applications.
Zn-ion battery (ZIB) is a promising electrochemical energy storage device because of the high performance, safety, and economic benefits, etc. However, the formation of Zn dendrites at anodes is seriously depressed their cycling life, Coulombic efficiency, safety, and capacity. Inhibition of Zn dendrites is considered as an efficient solution to improving the performance of ZIB. Herein, we demonstrate a 3D structured Zn anode coated in carbon nanofiber framework with carbon cloth as substrate (Zn@CCCNF), which has the abundant Zn nucleation sites and homogeneous electrical field distribution for uniform Zn deposition, low nucleation/deposition energy barrier, and the capacity of alleviating side reactions. Thus, the Zn@CC-CNF based symmetric cells is stability operated over 400 h, which is over 400% longer than that of bare Zn coated on carbon cloth (Zn@CC). The impressive performance of the Zn@CC-CNF anode also endows the assembled Zn-MnO2 full cell with long-term cycling stability. Better yet, the intrinsic flexibility of the carbon substrate enables the fabrication of flexible Zn-MnO2 cell with gratifying mechanical deformation tolerance, illustrating their great application potential in flexible energy storage.

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