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Dual-additive-based electrolyte design for aqueous zinc ion batteries with high plating/stripping efficiency.

Le LiYihua XieMenglei YaoRui CaoXinyu MaiYun JiLong ChenXiaoli DongYong-Yao Xia
Published in: Chemical communications (Cambridge, England) (2024)
A dual-additive-based aqueous electrolyte was designed with a pH-buffering additive (Zn(OAc) 2 ) and an electrostatic shielding additive (TMAOAc) for high Zn plating/stripping efficiency. The buffering pair, OAc - /HOAc, can stabilize the pH value to suppress side hydrogen evolution reactions. Meanwhile, TMA + acts as a competitive cation being preferentially adsorbed on the uneven surface of the Zn anode and exerts an electrostatic shielding effect to facilitate flat Zn deposition. Such a dual-additive-based electrolyte promotes an ultra-high Zn plating/stripping efficiency of 99.9% at 1 mA cm -2 and long-term cycling stability for 3600 h at 0.5 mA cm -2 , offering valuable insights for advanced aqueous batteries.
Keyphrases
  • ion batteries
  • ionic liquid
  • heavy metals
  • molecular dynamics simulations
  • high resolution
  • solid state
  • risk assessment
  • high intensity