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◆ Advanced Functional Materials2025-11-02· Solvation

Electrostatic Engineering of Loose and H <sub>2</sub> O‐Poor Solvation Structure for Practical High‐Areal‐Capacity Aqueous Zinc Ion Batteries

Lijun Zhou, Xin Shi, Shilei Xie, Min Zhang, Faliang Cheng, Xihong Lu

原始摘要(英文原文)· Original abstract
Abstract Aqueous Zn‐ion batteries (AZIBs) suffer from irreversible Zn anodes due to solvated H 2 O‐induced dendrite growth and side reactions. Herein, a loose and H 2 O‐poor solvation structure of Zn 2+ via electrostatic engineering using a low dielectric constant ( ɛ ≈ 7) co‐solvent 1, 3‐dioxolane (DOL) is designed. The DOL weakens the shielding effect on the cation–anion electrostatic interactions, driving anion‐rich Zn 2+ solvation structure ([Zn 2+ (H 2 O) 2.7 (OTf − ) 2.2 DOL 1.1 ]) while elongating the bond length of Zn 2+ −H 2 O via steric hindrance. These features effectively decrease the reducibility of H 2 O, accelerate Zn 2+ desolvation kinetics ( E a : 17.93 vs 32.21 kJ mol −1 ) and foster a robust inorganic‐rich solid electrolyte interphase (SEI). Consequently, the Zn anodes achieve an impressive cycling stability under triple‐high conditions (50 mA cm −2 , 50 mAh cm −2 , 68.9% depth of discharge (DOD)) for 1300 h, with a record cumulative plated capacity of 32.5 Ah cm −2 . Furthermore, the Zn/NaV 3 O 8 ·1.5H 2 O full cell retains 95.2% capacity after 2000 cycles. The universality of this strategy is validated by alternative co‐solvent with comparable ɛ , DN and steric hindrance properties to DOL, including 1,2‐dimethoxyethane (DME), benzyl alcohol (BA) and tetrahydrofuran (THF). This work establishes a general design guideline for stable aqueous metal anodes through solvation electrostatic modulation.
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Electrostatic Engineering of Loose and H <sub>2</sub> O‐Poor Solvation Structure for Practical High‐Areal‐Capacity Aqueous Zinc Ion Batteries — 科研速览 Science Skim