Ni Qiao, Kim Byunghoon, Wu Chuan, Kang Kisuk
Department of Materials Science and Engineering, Seoul National University, 1 Gwanak-ro, Gwanak-gu, Seoul, 08826, Republic of Korea.
School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, P.R. China.
Adv Mater. 2022 May;34(20):e2108206. doi: 10.1002/adma.202108206. Epub 2022 Mar 25.
Rechargeable aqueous zinc batteries (AZBs) are one of the promising options for large-scale electrical energy storage owing to their safety, affordability and environmental friendliness. During the past decade, there have been remarkable advancements in the AZBs technology, which are achieved through intensive efforts not only in the area of electrode materials but also in the fundamental understandings of non-electrode components such as electrolytes, solid electrolyte interphase (SEI), current collectors, binders, and separators. In particular, the breakthroughs in the non-electrode components should not be underestimated in having enabled the AZBs to attain a higher energy and power density beyond that of the conventional AZBs, proving their critical role. In this article, the recent research progress is comprehensively reviewed with respect to non-electrode components in AZBs, covering the new-type of electrolytes that have been introduced, attempts for the tailoring of SEI, and the design efforts for multi-functional current collectors, binders and separators, along with the remaining challenges associated with these non-electrode components. Finally, perspectives are discussed toward future research directions in this field. This extensive overview on the non-electrode components is expected to guide and spur further development of high-performance AZBs.
可充电水系锌电池(AZB)因其安全性、经济性和环境友好性,是大规模电能存储的有前景的选择之一。在过去十年中,AZB技术取得了显著进展,这不仅是通过在电极材料领域的深入努力,还通过对电解质、固体电解质界面(SEI)、集流体、粘结剂和隔膜等非电极组件的基本认识取得的。特别是,非电极组件的突破在使AZB能够获得比传统AZB更高的能量和功率密度方面不应被低估,这证明了它们的关键作用。在本文中,全面综述了AZB中非电极组件的最新研究进展,涵盖了引入的新型电解质、SEI定制的尝试以及多功能集流体、粘结剂和隔膜的设计努力,以及与这些非电极组件相关的剩余挑战。最后,讨论了该领域未来研究方向的展望。对非电极组件的这一广泛概述有望指导和推动高性能AZB的进一步发展。