操纵水锌电池化学性质的热力学和动力学见解:面向未来的电网规模可再生能源存储系统

IF 42.9 Q1 ELECTROCHEMISTRY
Yajun Zhao , Yueyang Wang , Jinze Li , Jiawei Xiong , Qi Li , Kovan Khasraw Abdalla , Yi Zhao , Zhao Cai , Xiaoming Sun
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引用次数: 0

摘要

水锌电池(AZBs)的发明可以追溯到18世纪。然而,最近,由于对本质上安全、廉价和环保的可再生能源存储设备的迫切需求,azb正在经历复兴。对高能、快速充电的azb的需求不断增长,特别是在电网规模的储能系统中,需要对电极化学的基本方面进行深入的探索。特别是,从热力学和动力学的角度全面理解是至关重要的,以推进具有高功率和能量密度的下一代azb的发展。然而,关于AZB化学的基本问题的澄清尚未实现。本文对阳极和阴极的热力学和动力学机制进行了深入的探讨,旨在帮助研究人员实现高性能azb。总结了电极热力学和动力学优化的内在挑战和相应的策略,并展望了高能、快速充电azb的未来发展方向。最后,我们考虑了azb的未来前景,并提出了在发现新的氧化还原化学物质、优化电极结构和实现集成电池设计方面取得进一步进展的建议,所有这些都被认为是实现高能量、快速充电和耐用的azb的必要和时间敏感的现实。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Thermodynamic and kinetic insights for manipulating aqueous Zn battery chemistry: Towards future grid-scale renewable energy storage systems

Thermodynamic and kinetic insights for manipulating aqueous Zn battery chemistry: Towards future grid-scale renewable energy storage systems
The invention of aqueous Zn batteries (AZBs) traces back to the eighteenth century. Recently, however, AZBs have been undergoing a renaissance due to the urgent need for renewable energy storage devices that are intrinsically safe, inexpensive, and environmentally benign. The escalating demand for high-energy, fast-charging AZBs, particularly in grid-scale energy storage systems, necessitates a profound exploration of the fundamental aspects of electrode chemistries. In particular, a comprehensive understanding from the viewpoints of thermodynamics and kinetics is crucial, with the aim of advancing the development of next-generation AZBs that have high power and energy densities. However, clarification about the fundamental issues in AZB chemistry has yet to be achieved. This review offers a thorough exploration of the thermodynamics and dynamic mechanisms at the anode and cathode, with the aim of helping researchers achieve high-performance AZBs. The inherent challenges and corresponding strategies related to electrode thermodynamic and dynamic optimization are summarized, followed by insights into future directions for developing high-energy, fast-charging AZBs. We conclude by considering the future prospects for AZBs and offering recommendations for making further advancements in discovering new redox chemistries, optimizing electrode architectures, and achieving integrated battery designs, all of which are considered essential and time-sensitive for making high-energy, fast-charging, and durable AZBs a reality.
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