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◆ eScience2026-05-01· Zinc

Beyond the anion-rich solvation paradigm: anion-mediated ion-pair aggregation enables robust SEI for highly reversible zinc batteries

Xueqing Chen, Mengfan Zhao, Qian Wang, Bao Li, Rujian Fu, Shuai Liu, Lifeng Hou, Hao Huang, Zhong Jin, Shi Wang

原始摘要(英文原文)· Original abstract
Rechargeable zinc batteries are promising candidates for large-scale electrochemical energy storage, owing to their low cost and the abundance of zinc resources. However, their practical application is limited by an unstable electrode/electrolyte interface that leads to issues such as surface corrosion, the hydrogen evolution reaction, and dendritic Zn growth. Herein, we report a new mechanism for interfacial stabilization via anion-mediated ion-pair aggregation, challenging the prevailing anion-rich solvation paradigm. When highly concentrated TFSI – anion is introduced into a conventional 2.0 M Zn(OTF) 2 aqueous electrolyte, it does not convert the Zn 2+ solvation sheath from [Zn(H 2 O) 6 ] 2+ to an anion-rich solvation structure; instead, it promotes the formation of aggregate ion pairs (AGG), which adsorb preferentially onto the Zn surface, effectively suppressing H 2 O-induced side reactions and maintaining high ionic conductivity. At the same time, synergistic Li + cations can assemble into loosely bound solvation clusters surrounding the Zn 2+ solvation sheath, immobilizing active H 2 O molecules and weakening the Zn 2+ –dipole interaction; this not only facilitates the Zn 2+ transport kinetics and desolvation but also preferentially reduces and forms a robust LiF-modified SEI and F-rich SEI layer (only ∼15 nm thick) on the Zn electrode surface, thereby improving the interfacial stability. Thus, Zn||Zn symmetric cells can achieve exceptional cycling stability over 4000 h, and Zn|Cu half-cells can run stably with a high Coulombic efficiency of 99.92% for over 3000 cycles at a current density of 5.0 mA cm –2 , among the best performances reported for zinc batteries. This work provides new insights into electrolyte engineering by leveraging ion-pair aggregation.
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Beyond the anion-rich solvation paradigm: anion-mediated ion-pair aggregation enables robust SEI for highly reversible zinc batteries — 科研速览 Science Skim