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一种双盐/双溶剂电解质可实现水系电池锌金属负极的超高利用率。

A Dual Salt/Dual Solvent Electrolyte Enables Ultrahigh Utilization of Zinc Metal Anode for Aqueous Batteries.

作者信息

Guan Kailin, Chen Wenshu, Yang Yunting, Ye Fei, Hong Ye, Zhang Jian, Gu Qinfen, Wu Yuping, Hu Linfeng

机构信息

School of Materials Science and Engineering, Southeast University, Nanjing, 211189, P. R. China.

Industrial Training Center, Guangdong Polytechnic Normal University, Guangzhou, 510665, China.

出版信息

Adv Mater. 2024 Sep;36(38):e2405889. doi: 10.1002/adma.202405889. Epub 2024 Jul 26.

Abstract

Rechargeable aqueous zinc batteries are promising in next-generation sustainable energy storage. However, the low zinc (Zn) metal anode reversibility and utilization in aqueous electrolytes due to Zn corrosion and poor Zn deposition kinetics significantly hinder the development of Zn-ion batteries. Here, a dual salt/dual solvent electrolyte composed of Zn(BF)/Zn(Ac) in water/TEGDME (tetraethylene glycol dimethyl ether) solvents to achieve reversible Zn anode at an ultrahigh depth of discharge (DOD) is developed. An "inner co-salt and outer co-solvent" synergistic effect in this unique dual salt/dual solvent system is revealed. Experimental results and theoretical calculations provide evidence that the ether co-solvent inhibits water activity by forming hydrogen bonding with the water and coordination effects with the proton in the outer Zn solvation structure. Meanwhile, the anion of zinc acetate co-salt enters the inner Zn solvation structure, thereby accelerating the desolvation kinetics. Strikingly, based on the electrolyte design, the zinc anode shows high reversibility at an ultrahigh utilization of 60% DOD with 99.80% Coulombic efficiency and 9.39 mAh cm high capacity. The results far exceed the performance reported in electrolyte design work recently. The work provides fundamental insights into inner co-salt and outer co-solvent synergistic regulation in multifunctional electrolytes for reversible aqueous metal-ion batteries.

摘要

可充电水系锌电池在下一代可持续储能领域颇具前景。然而,由于锌腐蚀和较差的锌沉积动力学,锌金属负极在水系电解质中的可逆性和利用率较低,这严重阻碍了锌离子电池的发展。在此,开发了一种由水/四甘醇二甲醚(TEGDME)溶剂中的Zn(BF)/Zn(Ac)组成的双盐/双溶剂电解质,以在超高放电深度(DOD)下实现可逆锌负极。揭示了这种独特的双盐/双溶剂体系中的“内共盐和外共溶剂”协同效应。实验结果和理论计算表明,醚类共溶剂通过与水形成氢键以及与外层锌溶剂化结构中的质子产生配位作用来抑制水的活性。同时,醋酸锌共盐的阴离子进入内层锌溶剂化结构,从而加速去溶剂化动力学。引人注目的是,基于该电解质设计,锌负极在60% DOD的超高利用率下表现出高可逆性,库仑效率为99.80%,容量高达9.39 mAh cm 。该结果远远超过了近期电解质设计工作中报道的性能。这项工作为可逆水系金属离子电池多功能电解质中的内共盐和外共溶剂协同调控提供了基本见解。

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