电解质
氯
三元运算
共晶体系
自由水
铝
化学工程
材料科学
离子
无机化学
化学
冶金
环境科学
环境工程
计算机科学
工程类
有机化学
电极
物理化学
程序设计语言
合金
作者
Zhigan Yao,Yining Xu,Yihang Duan,Zhaohui Yang,Tianshuo Zhao,Wenqi Tang,Jiao Zhang,Chaopeng Fu
标识
DOI:10.1021/acssuschemeng.5c02536
摘要
Aluminum-ion batteries (AIBs) have garnered significant attention as promising candidates for large-scale energy storage systems. However, the widespread adoption of AIBs has been impeded by the limitations of conventional AlCl 3 -based ionic liquid electrolytes, which are characterized by high cost, corrosiveness, and sensitivity to moisture. In this study, we present a novel ternary eutectic electrolyte system for AIBs that addresses these challenges, offering enhanced stability, reduced corrosivity, and cost efficiency. The proposed electrolyte is composed of aluminum trifluoromethanesulfonate, ethylene glycol (EG), and N -methylacetamide (NMA) with an optimized ratio. Through comprehensive spectroscopic analyses, we demonstrate that the coordination structure of metal cations in the electrolyte is effectively modulated by interactions with EG and NMA molecules, and the synergistic combination of EG and NMA with Al 3+ can reduce hydrogen evolution corrosion and side reaction of free ligands, effectively promoting the reaction kinetics and enhancing the stability of the Al electrode. Furthermore, the assembled AIB achieves a remarkable discharge capacity of 91 mAh g –1 while exhibiting exceptional cycling stability. Moreover, the energy storage mechanism of the AIBs has been systematically investigated and elucidated. This study provides fundamental insights into the design of efficient AIB systems and offers valuable guidance for developing next-generation metal-ion batteries.
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