Zhang Yuxin, Lv Chaonan, Zhu Yuanxin, Kuang Jialin, Wang Haiyan, Li Yixin, Tang Yougen
Hunan Provincial Key Laboratory of Chemical Power Sources, College of Chemistry and Chemical Engineering, Central South University, Changsha, 410083, P. R. China.
Small Methods. 2024 May;8(5):e2300911. doi: 10.1002/smtd.202300911. Epub 2023 Dec 27.
Aluminum-air battery (AAB) is a promising candidate for next-generation energy storage/conversion systems due to its cost-effectiveness and impressive theoretical energy density of 8100 Wh kg, surpassing that of lithium-ion batteries. Nonetheless, the practical applicability of AABs is hampered by the occurrence of serious self-corrosion side reactions and substantial capacity loss, resulting in suboptimal anode utilization. Consequently, improving the anode utilization to facilitate the construction of high-performance AABs have attracted widespread attention. Herein, the fundamentals and strategies to enhance aluminum anode utilization are reviewed from modifications of aluminum anodes and electrolytes. This comprehensive review may provide a scientific tool for the development of novel AABs in the future.
铝空气电池(AAB)因其成本效益高且理论能量密度高达8100 Wh/kg而令人印象深刻,超过了锂离子电池,是下一代储能/转换系统的一个有潜力的候选者。尽管如此,严重的自腐蚀副反应的发生和大量的容量损失阻碍了AAB的实际应用,导致阳极利用率不理想。因此,提高阳极利用率以促进高性能AAB的构建已引起广泛关注。在此,从铝阳极和电解质的改性方面综述了提高铝阳极利用率的基本原理和策略。这一全面综述可能为未来新型AAB的开发提供一种科学工具。