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April 5, 2026Nano Research0 citationsOpen Access

An in-situ zincophilic and water-shielding interface for durable aqueous zinc ion battery

LXLei XuHLHong LuoYLYi Lin

Key Points

  • The research aims to address the instability in aqueous zinc-ion batteries by developing a stable interface.
  • Utilized sodium perfluorononyloxybenzenesulfonate (OBS) and bismuth potassium citrate (BPC) as additives
  • Employed a zinc anode to test the water-shielding interface
  • Analyzed the effects on cycling stability and capacity retention in zinc-ion batteries
  • Achieved over 6600 hours of cycling stability at specific current and capacity rates
  • Demonstrated over 1000 hours of lifespan under high current density
  • Attained 95.54% capacity retention after 500 cycles at 1 A g-1, significantly outperforming baseline conditions

Abstract

Aqueous zinc-ion batteries (AZIBs) are plagued by water-rich and unstable electrolyte/electrode interface, which resulting poor reversibility and short lifespan. Herein, trace sodium perfluorononyloxybenzenesulfonate (OBS) and bismuth potassium citrate (BPC) additives, collaboratively construct a zincophilic and water-shielding interface. Both OBS and BPC molecules preferentially adsorb on the Zn anode, forming a H2O-blocking layer to suppress water-induced side reactions. Concurrently, upon cycling, OBS decomposes and forms ZnF2 with high ionic conductivity, while Bi3+ derived from BPC is electrochemically reduced to metallic Bi0, serving as zincophilic nucleation sites. This in-situ formed ZnF2/Bi-modified interface, synergistically regulates Zn2+ flux and homogenizes the interfacial electric field. Consequently, the Zn||Zn symmetric cell achieves exceptional cycling stability over 6600 h at 1 mA cm-2 and 1 mAh cm-2, and a lifespan over 1000 h at high current density and areal capacity (3 mA cm-2 and 3 mAh cm-2). The full cell paired with NH4V4O10 cathode delivers a capacity retention of 95.54% after 500 cycles at 1 A g-1, substantially outperforming the baseline electrolyte. This streamlined strategy in-situ constructs a multifunctional hybrid interphase, paving a new way for durable and high-performance AZIBs.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69d1fd3da79560c99a0a3130https://doi.org/10.26599/nr.2026.94908690
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