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Updated: Sep 16, 2025

Fabrication of Schottky Diodes on Zn-polar BeMgZnO/ZnO Heterostructure Grown by Plasma-assisted Molecular Beam Epitaxy
Published on: October 23, 2018
Simultaneous Manipulation of Electric Double Layer and Zn (100) Deposition Enabled by Anions for Highly Stable Zn
Xinlong Tian1, Si Tang1, Qingyi Wei1
1School of Marine Science and Engineering, School of Chemistry and Chemical Engineering, State Key Laboratory of Tropic Ocean Engineering Materials and Materials Evaluation, Hainan University, Haikou, 570228, China.
Abstract:
Controlling the growth orientation of zinc (Zn) is an effective method of stabilizing Zn anodes. Although Zn (100) exhibits faster Zn electroplating/stripping kinetics than Zn (002), its high chemical reactivity results in susceptibility to water-induced side reactions. Herein, a two-pronged electrolyte engineering strategy is proposed to enhance the reversibility of Zn anodes, that is, modulating vertically oriented Zn (100) plating while simultaneously constructing a water-poor electrical double layer (EDL). Mechanistic studies revealed that the difluoro(oxalato)borate (DFOB-) anions of sodium-difluoro(oxalato)borate (NaDFOB) function as a Zn2+ trapping agent at the inner Helmholtz layer, displacing active water molecules and inducing the preferential deposition of Zn on the Zn (100) crystal facets, thus effectively inhibiting both side reactions and dendrite growth. Consequently, a symmetrical cell with the ZnSO4/NaDFOB electrolyte exhibited a long lifetime of over 950 h under severe conditions of 10 mA cm-2 and 5 mAh cm-2. Furthermore, a practical Zn||NH4V4O10 pouch cell could achieves a high capacity of 156 mAh at industrial-level mass loading of 16.6 mg cm-2. This work provides insights for achieving stable Zn anodes via electrolyte engineering-triggered crystallographic orientation and EDL regulation.
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