Zwitterionic materials for aqueous Zn-based energy storage devices: Current developments and perspective

Huaming Yu , Zhongqian He , Dongping Chen , Peidong Liu , Hanwei He , Liangliang Jiang , Yuejiao Chen , Libao Chen
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Abstract

Aqueous Zn-based energy storage (AZES) devices are promising candidates for large-scale energy storage systems. Nevertheless, AZES devices still face some critical bottlenecks and challenges, including poor chemical stability of Zn anode and a narrow operating voltage window of aqueous electrolyte. Zwitterions are typically organic salts in which cations and anions are covalently bonded. Zwitterionic materials have garnered considerable research attention in the field of electrochemical energy storage due to their solubility in polar solvents, strong hydration ability, and dipole formation for the transfer of carriers. Zwitterionic materials have been shown to achieve excellent effects on addressing the issues in AZES devices, yet the explorations with limited understanding of the functional mechanism and design basis of the zwitterionic materials. Accordingly, this review discusses the unique structure and characteristics of zwitterionic materials and summaries the applications and mechanisms of zwitterionic materials in AZES devices. Finally, the challenges and perspectives of zwitterionic materials working in the AZES devices optimization are offered for future research.
用于锌基水性储能装置的两性离子材料:发展现状与前景
锌基水基储能(AZES)装置是大规模储能系统的理想候选装置。然而,AZES 设备仍然面临一些关键瓶颈和挑战,包括锌阳极化学稳定性差和水基电解质工作电压窗口狭窄。齐聚物通常是阳离子和阴离子共价键合的有机盐。由于其在极性溶剂中的溶解性、较强的水合能力以及在载流子转移过程中形成的偶极作用,共聚物材料在电化学储能领域引起了广泛的研究关注。在解决 AZES 器件中的问题方面,已证明共聚物材料具有出色的效果,但人们对共聚物材料的功能机理和设计基础的了解还很有限。因此,本综述讨论了齐聚物的独特结构和特性,并总结了齐聚物在 AZES 器件中的应用和机理。最后,为未来研究提供了在 AZES 器件优化中使用齐聚物材料的挑战和前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
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