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基于沙葱提取物的绿色界面优化策略用于增强碱性铝空气电池性能

Green interface optimization strategy based on allium mongolicum regel extract for enhanced alkaline Al-air battery performance.

作者信息

Zhu Junpeng, Li Yutian, Liu Wenxu, Gao Yunfei, Yin Yue, Wu Jinfang, Qiang Yujie, Wang Wenbo

机构信息

College of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot 010021, PR China.

College of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot 010021, PR China.

出版信息

J Colloid Interface Sci. 2025 Mar 15;682:983-994. doi: 10.1016/j.jcis.2024.12.025. Epub 2024 Dec 9.

Abstract

Aqueous aluminum (Al)-air batteries (AABs) are gaining significant attention due to their excellent theoretical performance. However, the self-corrosion of the aluminum anode reduces anodic efficiency and battery capacity, limiting the broad commercial application of AABs. Herein, we propose the utilizing Allium Mongolicum Regel (AMR) extract as a green electrolyte additive to optimize the Al anode/electrolyte interface in alkaline AABs. Our findings indicate that the incorporation of AMR into NaOH electrolyte offers an effective strategy for preventing the self-corrosion of the Al anode, leading to significant enhancements in battery performance. Electrochemical experiments demonstrate that AMR achieves an inhibition efficiency of 53.9%. Through in-situ optical microscopy and in-situ attenuated total reflection Fourier-transform infrared spectroscopy, it is observed that the introduction of AMR can retard pitting corrosion by adsorbing onto the Al surface. This leads to a significant increase in specific capacity, from 1096 to 1667 mAh g, compared with the electrolyte without AMR for AABs. Further analysis utilizing X-ray photoelectron spectroscopy, quantum chemical calculations, and ab-initio molecular dynamics determine that 4-hydroxycinnamamide (4-HCAA) and flavone molecules, which are the most active components of AMR, can bind with Al atoms through the carbonyl O functional group, forming an O-Al-O bond, thus suppressing the self-corrosion of the Al anode. The incorporation of the AMR extract into the electrolyte of AABs represents a sustainable approach for optimizing battery performance. This innovative strategy addresses a critical issue in the development of AABs, potentially creating new opportunities for their commercialization and widespread utilization as a reliable energy storage technology.

摘要

水系铝空气电池(AABs)因其优异的理论性能而备受关注。然而,铝阳极的自腐蚀降低了阳极效率和电池容量,限制了AABs的广泛商业应用。在此,我们提出利用沙葱提取物作为绿色电解质添加剂来优化碱性AABs中的铝阳极/电解质界面。我们的研究结果表明,将沙葱加入到NaOH电解质中为防止铝阳极的自腐蚀提供了一种有效策略,从而显著提高了电池性能。电化学实验表明,沙葱的缓蚀效率达到53.9%。通过原位光学显微镜和原位衰减全反射傅里叶变换红外光谱观察到,沙葱的引入可以通过吸附在铝表面来抑制点蚀。与不含沙葱的AABs电解质相比,这导致比容量显著增加,从1096 mAh g增加到1667 mAh g。利用X射线光电子能谱、量子化学计算和从头算分子动力学的进一步分析确定,沙葱中最具活性的成分4-羟基肉桂酰胺(4-HCAA)和黄酮分子可以通过羰基O官能团与铝原子结合,形成O-Al-O键,从而抑制铝阳极的自腐蚀。将沙葱提取物加入到AABs的电解质中是一种优化电池性能的可持续方法。这种创新策略解决了AABs开发中的一个关键问题,有可能为其商业化和作为可靠储能技术的广泛应用创造新机会。

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