4.8 Article

Dendrite-Free Flexible Fiber-Shaped Zn Battery with Long Cycle Life in Water and Air

Journal

ADVANCED ENERGY MATERIALS
Volume 9, Issue 41, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/aenm.201901434

Keywords

Co3O4 nanowires array; dendrite free; fiber-shaped Zn batteries; high energy density; waterproof

Funding

  1. National Natural Science Foundation of China [21875226]
  2. Science Foundation for Distinguished Young Scholars of Sichuan Province [2017JQ0036, 2016JQ0025]
  3. Chengdu Rongpiao Talent plan
  4. QianYingBaiTuan Plan of China Mianyang Science City
  5. Science Foundation of Institute of Chemical Materials [011100301]
  6. Global Recruit Plan
  7. U.S. Department of Energy (DOE), Office of Energy Efficiency and Renewable Energy, Vehicle Technologies Office
  8. DOE Office of Science [DE-AC02-06CH11357]

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Fiber-shaped aqueous rechargeable Zn batteries (FARZBs) show flexibility, good reliability, cost-effectiveness, high energy/power densities, and high safety that have attracted increasing attention as promising energy storage devices for future wearable applications. However, the development of FARZB is limited by its poor cycling life and inferior charge-discharge performance, mainly suffering from zinc dendrite growth and increasing electrode irreversibility. In this work, dendrite-free fiber-shaped Zn//Co3O4 rechargeable batteries with a long cycle life tested in water and air, are obtained via tuning the surface binding energy of Zn on the anode using the zincophilic N,O-functional carbon fiber, as well as engineering the Co3O4 cathode with a nanowire array structure. The fiber-shaped Zn//Co3O4 full battery demonstrates remarkable long cycle life in water and air with high energy density, impressive flexibility, and excellent waterproof ability (fully immersed and charged/discharged under water for more than 33 h for 3000 cycles with capacity retention of approximate to 80%). The reversible electrochemical mechanisms of the FARZBs, without obvious zinc dendrite deposits and structural change of Co3O4 nanowires, are confirmed by a series of characterizations. These results demonstrate that the FARZBs are promising power sources for emerging wearable electronics.

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