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受滑膜启发,在水性电解质中用痕量天然氨基酸β-丙氨酸强化锌阳极:一项实验研究。

Strengthened Zinc Anode by Trace Natural Amino Acid β-Alanine in Aqueous Electrolyte Inspired by Synial Membrane: An Experimental Survey.

作者信息

Jiang Linting, Yang Lu, Yi Xue, Zhang Shengtao, Li Hongru, Wang Zhiyong, Gao Fang

机构信息

College of Chemistry and Chemical Engineering, Chongqing University, Chongqing 400044, China.

出版信息

Langmuir. 2025 Apr 8;41(13):9046-9056. doi: 10.1021/acs.langmuir.5c00525. Epub 2025 Mar 26.

Abstract

Zinc corrosion, hydrogen evolution reaction, uneven deposition, and dendrite growth on the zinc anodes are the key factors restraining the electrochemical performance and cycling stability of the aqueous zinc-ion batteries. In this study, learned from the synial membrane, a tiny amount of natural amino acid β-alanine (β-Ala, 0.089 wt %) was introduced as the additive in ZnSO electrolyte for strengthening the kinetics of the zinc anode as well as enhancing the performance of zinc ions batteries. A number of modern surface techniques and surface electrochemical analyses were employed to reveal the fundamental reasons for the strengthened zinc anode by β-Ala in ZnSO electrolyte. The results show that β-Ala could be adsorbed on zinc electrode surface through intermolecular chelation, which might regulate the chemical environments of the electrolyte and promote uniform deposition of zinc ions. Hence, the β-Ala adsorption film on zinc electrode could suppress the hydrogen evolution reaction and the formation of zinc dendrites, thereby significantly improving the deposition/stripping process of the zinc anode. In particular, the strong hydrogen bonding could restrain the migration of HO molecules approaching the zinc anode surface, preventing the invasion of water to the zinc electrode surface. Therefore, the addition of dilute β-Ala in the ZnSO electrolyte might remarkably prolong the life span of Zn||Zn symmetric batteries to 5000 h under 1 mA cm and 1 mAh cm, and to 450 h under 5 mA cm and 3 mAh cm at 298 K, which is much longer than the zinc-zinc symmetric cells including the bare ZnSO electrolyte (only 95 h at 5 mA cm and 3 mAh cm, and 200 h at 1 mA cm and 1 mAh cm). Furthermore, β-Ala was found to significantly improve the cycling stability of Zn||Cu asymmetric cells and Zn||VO full cells. This study provides an effective method for engineering electrolytes to inspire rechargeable zinc-ion batteries by selecting ideal natural biomolecules as the electrolyte additives.

摘要

锌阳极上的锌腐蚀、析氢反应、不均匀沉积和枝晶生长是限制水系锌离子电池电化学性能和循环稳定性的关键因素。在本研究中,借鉴滑膜,在ZnSO电解液中引入少量天然氨基酸β-丙氨酸(β-Ala,0.089 wt%)作为添加剂,以强化锌阳极的动力学并提高锌离子电池的性能。采用了多种现代表面技术和表面电化学分析方法来揭示β-Ala在ZnSO电解液中强化锌阳极的根本原因。结果表明,β-Ala可通过分子间螯合吸附在锌电极表面,这可能调节电解液的化学环境并促进锌离子的均匀沉积。因此,锌电极上的β-Ala吸附膜可抑制析氢反应和锌枝晶的形成,从而显著改善锌阳极的沉积/剥离过程。特别是,强氢键可抑制HO分子向锌阳极表面的迁移,防止水侵入锌电极表面。因此,在ZnSO电解液中添加稀β-Ala可在298 K下将Zn||Zn对称电池的寿命显著延长至5000 h(1 mA cm和1 mAh cm条件下)以及450 h(5 mA cm和3 mAh cm条件下),这比包括纯ZnSO电解液的锌-锌对称电池长得多(5 mA cm和3 mAh cm条件下仅95 h,1 mA cm和1 mAh cm条件下仅200 h)。此外,发现β-Ala可显著提高Zn||Cu非对称电池和Zn||VO全电池的循环稳定性。本研究提供了一种通过选择理想的天然生物分子作为电解液添加剂来设计电解液以激发可充电锌离子电池的有效方法。

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