4.7 Article

Regulating Zn Deposition via an Artificial Solid-Electrolyte Interface with Aligned Dipoles for Long Life Zn Anode

Journal

NANO-MICRO LETTERS
Volume 13, Issue 1, Pages -

Publisher

SHANGHAI JIAO TONG UNIV PRESS
DOI: 10.1007/s40820-021-00599-2

Keywords

Regulated Zn deposition; Artificial solid-electrolyte interface; Perovskite type dielectric material; Zn anode; Zn ion battery

Funding

  1. National Natural Science Foundation of China [21935003, 21805182]
  2. National Key Research and Development Plan [2016YFB0901503]
  3. Shanghai Pujiang Program [18PJ1403800]
  4. Hundreds of Talents program of Sun Yat-sen University

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The research suggests that the engineered BaTiO3 artificial solid-electrolyte interface helps regulate zinc deposition, leading to even zinc stripping/plating and limited zinc dendrite growth. This technology not only enhances the cycling stability of the battery, but also achieves nearly 100% Coulombic efficiency at 2 A g(-1).
Aqueous zinc ion batteries show prospects for next-generation renewable energy storage devices. However, the practical applications have been limited by the issues derived from Zn anode. As one of serious problems, Zn dendrite growth caused from the uncontrollable Zn deposition is unfavorable. Herein, with the aim to regulate Zn deposition, an artificial solid-electrolyte interface is subtly engineered with a perovskite type material, BaTiO3, which can be polarized, and its polarization could be switched under the external electric field. Resulting from the aligned dipole in BaTiO3 layer, zinc ions could move in order during cycling process. Regulated Zn migration at the anode/electrolyte interface contributes to the even Zn stripping/plating and confined Zn dendrite growth. As a result, the reversible Zn plating/stripping processes for over 2000 h have been achieved at 1 mA cm(-2) with capacity of 1 mAh cm(-2). Furthermore, this anode endowing the electric dipoles shows enhanced cycling stability for aqueous Zn-MnO2 batteries. The battery can deliver nearly 100% Coulombic efficiency at 2 A g(-1) after 300 cycles.

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