Shi Mangmang, Das Pratteek, Wu Zhong-Shuai, Liu Tie-Gen, Zhang Xiaoyan
Department of Chemistry and Chemical Engineering, Chalmers University of Technology, Kemigården 4, Göteborg, SE-412 96, Sweden.
School of physics, Xi'an Jiaotong University, Xi'an, 710049, China.
Adv Mater. 2023 Oct;35(42):e2302199. doi: 10.1002/adma.202302199. Epub 2023 Sep 15.
Benefiting from the merits of low cost, nonflammability, and high operational safety, aqueous rechargeable batteries have emerged as promising candidates for large-scale energy-storage applications. Among various metal-ion/non-metallic charge carriers, the proton (H ) as a charge carrier possesses numerous unique properties such as fast proton diffusion dynamics, a low molar mass, and a small hydrated ion radius, which endow aqueous proton batteries (APBs) with a salient rate capability, a long-term life span, and an excellent low-temperature electrochemical performance. In addition, redox-active organic molecules, with the advantages of structural diversity, rich proton-storage sites, and abundant resources, are considered attractive electrode materials for APBs. However, the charge-storage and transport mechanisms of organic electrodes in APBs are still in their infancy. Therefore, finding suitable electrode materials and uncovering the H -storage mechanisms are significant for the application of organic materials in APBs. Herein, the latest research progress on organic materials, such as small molecules and polymers for APBs, is reviewed. Furthermore, a comprehensive summary and evaluation of APBs employing organic electrodes as anode and/or cathode is provided, especially regarding their low-temperature and high-power performances, along with systematic discussions for guiding the rational design and the construction of APBs based on organic electrodes.
受益于低成本、不可燃和高操作安全性等优点,水系可充电电池已成为大规模储能应用中很有前景的候选者。在各种金属离子/非金属电荷载体中,质子(H⁺)作为电荷载体具有许多独特的性质,如快速的质子扩散动力学、低摩尔质量和小的水合离子半径,这些特性赋予水系质子电池(APB)出色的倍率性能、长寿命和优异的低温电化学性能。此外,氧化还原活性有机分子具有结构多样、丰富的质子存储位点和丰富的资源等优点,被认为是APB有吸引力的电极材料。然而,APB中有机电极的电荷存储和传输机制仍处于起步阶段。因此,寻找合适的电极材料并揭示氢存储机制对于有机材料在APB中的应用具有重要意义。在此,综述了用于APB的有机材料(如小分子和聚合物)的最新研究进展。此外,还对以有机电极作为阳极和/或阴极的APB进行了全面总结和评估,特别是关于它们的低温和高功率性能,并进行了系统讨论,以指导基于有机电极的APB的合理设计和构建。