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一种具有氢键融合功能的双功能电解质添加剂可实现高度可逆的水系锌离子电池。

A dual-functional electrolyte additive displaying hydrogen bond fusion enables highly reversible aqueous zinc ion batteries.

作者信息

Zhang Qiuxia, Gao Xuan, Liu Kejiang, Gao Nan, Cheng Shaoheng, Dai Yuhang, Dong Haobo, Liu Junsong, He Guanjie, Li Hongdong

机构信息

State Key Laboratory of Superhard Materials, College of Physics, Jilin University, Jilin, Changchun, 130012, PR China.

Christopher Ingold Laboratory, Department of Chemistry, University College London, 20 Gordon Street, London, WC1H 0AJ, UK.

出版信息

Commun Chem. 2024 Aug 8;7(1):173. doi: 10.1038/s42004-024-01259-3.

Abstract

In recent years, aqueous zinc-ion batteries (AZIBs) have attracted significant attention in energy storage due to their notable advantages, including high safety, low cost, high capacity, and environmental friendliness. However, side reactions like hydrogen evolution and zinc (Zn) dendrites can significantly impact their Coulombic efficiency (CE) and lifespan. Effectively addressing these issues has become a focus of research in this field. In our study, dimethyl sulfoxide (DMSO) and nanodiamonds (NDs) were used to optimize the electrolyte of AZIBs. Benefiting from the hydrogen bond fusion of DMSO and NDs, which regulates the Zn deposition behavior, effectively inhibiting the growth of Zn dendrites, hydrogen evolution, and corrosion. The Zn | |Zn symmetric cells using NDs-DMSO-ZS demonstrate exceptional cycling stability for over 1500 h at 1 mA cm, while the Zn//Cu asymmetric cells achieve up to 99.8% CE at 2 mA cm. This study not only shows the application prospects of electrolyte optimization in enhancing AZIBs performance, but also provides a reference for the advancement of electrolyte technology in advanced AZIBs technology.

摘要

近年来,水系锌离子电池(AZIBs)因其显著优势,包括高安全性、低成本、高容量和环境友好性等,在能量存储领域引起了广泛关注。然而,析氢和锌(Zn)枝晶等副反应会显著影响其库仑效率(CE)和寿命。有效解决这些问题已成为该领域的研究重点。在我们的研究中,二甲基亚砜(DMSO)和纳米金刚石(NDs)被用于优化AZIBs的电解质。得益于DMSO和NDs的氢键融合,其调节了锌的沉积行为,有效抑制了锌枝晶的生长、析氢和腐蚀。使用NDs-DMSO-ZS的Zn | |Zn对称电池在1 mA cm下表现出超过1500 h的优异循环稳定性,而Zn//Cu不对称电池在2 mA cm下的CE高达99.8%。本研究不仅展示了电解质优化在提升AZIBs性能方面的应用前景,也为先进AZIBs技术中电解质技术的进步提供了参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d79a/11310298/5ced69f56f72/42004_2024_1259_Fig1_HTML.jpg

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