高性能氧化钒基锌水电池:有机分子改性、挑战和未来前景

EcoEnergy Pub Date : 2024-10-05 DOI:10.1002/ece2.69
Yueyang Wang, Qi Li, Jiawei Xiong, Linfeng Yu, Qi Li, Yanan Lv, Kovan Khasraw Abdalla, Runze Wang, Xinyu Li, Yi Zhao, Xiaoming Sun
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引用次数: 0

摘要

由于高理论容量、多样的晶体结构和钒氧化物阴极的成本效益,含水锌钒电池一直吸引着人们的极大兴趣。尽管有这些优势,但氧化还原电位低、反应动力学缓慢、钒溶解等挑战导致氧化钒阴极能量密度低、寿命不理想。针对这些问题,鉴于有机化合物中含有丰富的氧化还原基团和灵活的结构,本研究综述了有机修饰钒基氧化物策略的最新进展,特别是有机界面修饰和预插层。这篇综述详细分析了储能机制和多种电子转移反应,这些反应有助于提高电池性能,包括提高氧化还原动力学,提高能量密度和延长寿命。此外,本文还强调了原位表征和理论计算技术的必要性,以进一步研究具有多种储能机制的有机-钒氧化物杂化材料中合适的有机“客体”材料和匹配的氧化还原对。该综述还强调了锌阳极保护和电解质溶剂化调节策略,这对于开发适合大规模储能应用的先进锌钒电池系统至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

High-performance vanadium oxide-based aqueous zinc batteries: Organic molecule modification, challenges, and future prospects

High-performance vanadium oxide-based aqueous zinc batteries: Organic molecule modification, challenges, and future prospects

Aqueous Zn-vanadium batteries have been attracting significant interest due to the high theoretical capacity, diverse crystalline structures, and cost-effectiveness of vanadium oxide cathodes. Despite these advantages, challenges such as low redox potential, sluggish reaction kinetics, and vanadium dissolution lead to inferior energy density and unsatisfactory lifespan of vanadium oxide cathodes. Addressing these issues, given the abundant redox groups and flexible structures in organic compounds, this study comprehensively reviews the latest developments of organic-modified vanadium-based oxide strategies, especially organic interfacial modification, and pre-intercalation. The review presents detailed analyses of the energy storage mechanism and multiple electron transfer reactions that contribute to enhanced battery performance, including boosted redox kinetics, higher energy density, and broadened lifespan. Furthermore, the review emphasizes the necessity of in situ characterization and theoretical calculation techniques for the further investigation of appropriate organic “guest” materials and matched redox couples in the organic-vanadium oxide hybrids with muti-energy storage mechanisms. The review also highlights strategies for Zn anode protection and electrolyte solvation regulation, which are critical for developing advanced Zn-vanadium battery systems suitable for large-scale energy storage applications.

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