
周石杰, 吴锋, 龙博, 王怀志, 白莹, 吴川
收稿日期:2025-11-28
修回日期:2026-01-24
录用日期:2026-03-05
通讯作者:
吴川
E-mail:chuanwu@bit.edu.cn
基金资助:Shijie Zhou, Feng Wu, Bo Long, Huaizhi Wang, Ying Bai, Chuan Wu
Received:2025-11-28
Revised:2026-01-24
Accepted:2026-03-05
Contact:
Chuan Wu
E-mail:chuanwu@bit.edu.cn
摘要: 铝二次电池具有比容量高、资源分布广和安全性高的优势,是下一代电化学储能的重要候选体系之一。铝二次电池正极的储能机理较为多样,其载流子包括Al3+、AlCl4-、AlCl2+、AlCl2+和Cl-等离子,电化学反应机理包括嵌入型、转化型和配位型等类型。丰富的机理为各类正极赋予了不同的性能,使电池具有多样的优势。然而,各类正极材料也面临着不同的挑战。因此,采用一定的改性策略以提高其比容量、加快其动力学、提高其循环稳定性,是提升铝二次电池性能的重要途径之一。本文从铝二次电池正极材料的储能机理入手,归纳了不同储能机理的反应步骤以及典型的材料类型,具体分析了材料的性能特点。基于对储能机理的分析和对离子存储状态及各种副反应的梳理,进一步总结了正极材料的主要问题以及现有的应对策略,并展望了正极材料的设计与改性的发展方向。
周石杰, 吴锋, 龙博, 王怀志, 白莹, 吴川. 铝二次电池正极材料:从储能机理到改性策略[J]. 物理化学学报 2026, (), 100282. doi: 10.1016/j.actphy.2026.100282
Shijie Zhou, Feng Wu, Bo Long, Huaizhi Wang, Ying Bai, Chuan Wu. Cathode materials for rechargeable aluminum batteries: from energy storage mechanisms to modification strategies[J]. Acta Phys. -Chim. Sin. 2026, (), 100282. doi: 10.1016/j.actphy.2026.100282
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