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◆ Nano-micro letters2026-08-10

Decoupling Ion-Dipole Interactions via Competitive Coordination for Durable Dendrite-Free Zinc Metal Batteries.

Bixian Chen, Xiaomin Cheng, Xiang Li, Qinghua Guan, Hao Li, Yongzheng Zhang, Shuang Cheng, Huihua Li, Yunjian Liu, Jing Zhang, Hongzhen Lin, Jian Wang

原始摘要(英文原文)· Original abstract
The aqueous zinc metal batteries (AZMBs) are famous for high-safety and high-energy-density, but limited by severe challenges around the Helmholtz plane layer such as the strong ion-dipole interactions between Zn2+ and H2O, resulting in slow desolvation processes and limited transport kinetics as well as corresponding higher barriers. To reconstruct the ion-dipole surroundings, the interface chemistry of employing a high permanent dipole moment of L-Carnosine (L-CN) has been proposed, weakening the interactions between Zn2+ and H2O to realize a crowded Zn2+-conductive structure, accelerating the desolvation kinetics. As revealed, the strong affinity between L-CN and Zn2+ enables the L-CN molecules to repulse H2O, reconfiguring the inner Helmholtz plane layer, thereby inhibiting the active water molecular to form hydrogen evolution reactions. Consequently, the Zn//Zn symmetric cells with Helmholtz plane modulation achieve a long lifespan up to 7000 h, a high Coulombic efficiency of 99.72%, and a high stabilization at high depth of discharge (85.4%). The assembled Zn//V2O5-x full cell with optimal electrolyte delivers the capacity of 289 mAh g-1 after 500 cycles at 1 A g-1 under an N/P ratio of 3.98. Impressively, the large-scale pouch cell with optimal electrolyte stabilizes for 200 cycles, offering the bright future of reconstructing Helmholtz plane for achieving high-performance AZMBs.
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Decoupling Ion-Dipole Interactions via Competitive Coordination for Durable Dendrite-Free Zinc Metal Batteries. — 科研速览 Science Skim