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Bolstered Interfacial Field Chemistry for Deep Fast-Charging Aqueous Zinc Metal Batteries.

Created on 29 Jul 2026

Authors

Minxi Sun, Yining Chen, Congge Lu, Jingkang Ma, Qiuyuan Feng, Shaoxing Li, Tao Zhang, Shuang Zhou, Anqiang Pan

Published in

Nano-micro letters. Volume 19. Issue 1. Jul 29, 2026. Epub Jul 29, 2026.

Abstract

Deep fast-charging capability has become the core pursuit for practical applications of aqueous zinc metal batteries, yet it is critically impeded by unfavorable interfacial field evolution at the electrode/electrolyte interface under high-current-density conditions. The coexistence of sluggish Zn2+ desolvation, competitive H2O reduction corrosion, uneven electric field, and concentration field collectively leads to poor rate performance. To tackle these issues, a bolstered interfacial field chemistry strategy was developed via sulfosuccinic acid to precisely regulate the physicochemical and electrochemical properties within the inner Helmholtz plane. The tuned interfacial field comprises a homogeneous distribution of interfacial ions and electric fields, promoting fast desolvation and interfacial electron transfer. Consequently, the modified Zn||Cu asymmetric cells deliver an outstanding average Coulombic efficiency of 99.48% over 1600 cycles at 2 mA cm-2 and 1 mAh cm-2. Furthermore, the modified Zn||Zn symmetric cells demonstrate exceptional stability under challenging conditions of 5 mA cm-2, 2 mAh cm-2 (over 1600 h), and 10 mA cm-2, 10 mAh cm-2 (over 675 h, depth of discharge = 17.08%). Impressively, a substantial cumulative capacity of 3500 mAh cm-2 is attained at 10 mAh cm-2 and a 56.93% Zn utilization rate. Besides, the enhanced Zn (10 µm) ||I2 (10.87 mg cm-2) full cell sustains over 1490 cycles at 1 A g-1 with 77.13% capacity retention and a harsh N/P ratio of 2.31. Remarkably, the Zn (10 µm) ||I2 pouch cell achieves over 680 cycles with an ultralow N/P ratio of 2.04.

PMID:
42525361
Bibliographic data and abstract were imported from PubMed on 29 Jul 2026.

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