Zn-based batteries for sustainable energy storage: strategies and mechanisms

储能 电化学储能 背景(考古学) 计算机科学 纳米技术 锂(药物) 持续性 电化学 工艺工程 超级电容器 材料科学 工程类 化学 功率(物理) 电极 物理 量子力学 医学 古生物学 生态学 物理化学 生物 内分泌学
作者
Lei Tang,Huisheng Peng,Jiarui Kang,Chunmao Han,Mingyue Zhang,Yan Liu,Dong Ha Kim,Yijiang Liu,Zhiqun Lin
出处
期刊:Chemical Society Reviews [The Royal Society of Chemistry]
标识
DOI:10.1039/d3cs00295k
摘要

Batteries play a pivotal role in various electrochemical energy storage systems, functioning as essential components to enhance energy utilization efficiency and expedite the realization of energy and environmental sustainability. Zn-based batteries have attracted increasing attention as a promising alternative to lithium-ion batteries owing to their cost effectiveness, enhanced intrinsic safety, and favorable electrochemical performance. In this context, substantial endeavors have been dedicated to crafting and advancing high-performance Zn-based batteries. However, some challenges, including limited discharging capacity, low operating voltage, low energy density, short cycle life, and complicated energy storage mechanism, need to be addressed in order to render large-scale practical applications. In this review, we comprehensively present recent advances in designing high-performance Zn-based batteries and in elucidating energy storage mechanisms. First, various redox mechanisms in Zn-based batteries are systematically summarized, including insertion-type, conversion-type, coordination-type, and catalysis-type mechanisms. Subsequently, the design strategies aiming at enhancing the electrochemical performance of Zn-based batteries are underscored, focusing on several aspects, including output voltage, capacity, energy density, and cycle life. Finally, challenges and future prospects of Zn-based batteries are discussed.
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