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◆ Metals Advances2026-02-18· Aqueous solution

Solvation structure regulation via combined H2O-polar molecule and H2O-anion interactions toward stable zinc metal electrodes in aqueous batteries

Hui Tang, Zheng Qian, Deyu Wang, Huilin Pan, Ping Cui, Zhenlian Chen, Xiayin Yao, Zhe Peng

原始摘要(英文原文)· Original abstract
Aqueous zinc (Zn) batteries (AZBs) possessing low cost and high safety offer a prominent solution for large-scale energy storage. However, the application of AZBs is still plagued by the corrosion of Zn electrode due to hydrogen evolution reactions (HERs) in aqueous electrolytes. Herein, the combination of H 2 O-polar molecule and H 2 O-anion interactions is proposed as an efficient approach to alter the solvation structure of aqueous electrolyte for stable AZBs. Using dimethyl sulfoxide (DMSO) with a high polarity as a model molecule, its interaction with H 2 O can weaken the Zn 2+ -H 2 O interaction in Zn 2+ solvation sheath, thereby suppressing HERs while at the expense of Zn 2+ mobility. By fixing the DMSO content at a compromising value to balance the Zn 2+ transport and HER suppression, a supplementary H 2 O-anion interaction is further experienced in the solvation structure by using bis(fluorosulfonyl)imide anion (FSI − ), where the interaction between FSI − and the bipolar H 2 O molecules enables additional force to reduce the H 2 O number of the Zn 2+ solvation sheath. Based on the combined H 2 O-DMSO and H 2 O-FSI − interactions, the HERs and Zn corrosions are significantly suppressed for stable AZBs.
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Solvation structure regulation via combined H2O-polar molecule and H2O-anion interactions toward stable zinc metal electrodes in aqueous batteries — 科研速览 Science Skim