From Fundamentals to Practice: Electrolyte Strategies for Zinc-Ion Batteries in Extreme Temperature

Tao Xue, Yongbiao Mu, Xiyan Wei, Ziyan Zhou, Yuke Zhou, Zhengchu Zhang, Chao Yang, Jianhui Qiu, Limin Zang, Lin Zeng
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Abstract

In the pursuit of advanced energy storage technologies that promote sustainable energy solutions, zinc-ion batteries (ZIBs) have emerged as a promising alternative to lithium-ion batteries due to their abundance, safety, and environmental advantages. However, the failure mechanisms of ZIBs under extreme temperatures are still not fully understood, presenting significant challenges to their development and commercialization. Therefore, innovative strategies are essential to enhance their adaptability to temperature extremes. In this review, we first explore the thermodynamic and kinetic aspects of performance degradation under extreme temperatures, focusing on key factors such as ion diffusion and redox processes at electrode interfaces. We then comprehensively summarize and discuss the existing approaches for various electrolyte types, including aqueous, nonaqueous, and solid state. Finally, we highlight the key challenges and future prospects for ZIBs operating under extreme temperature conditions. The insights presented in this review are expected to accelerate the advancement of ZIBs and facilitate their practical implementation in large-scale energy storage systems.

Abstract Image

从基础到实践:极端温度下锌离子电池的电解质策略
在追求先进的储能技术以促进可持续能源解决方案的过程中,锌离子电池(zib)由于其丰富、安全和环保的优势,已经成为锂离子电池的一个有前途的替代品。然而,ZIBs在极端温度下的失效机制仍未完全了解,这给其开发和商业化带来了重大挑战。因此,创新策略对于提高它们对极端温度的适应能力至关重要。在这篇综述中,我们首先探讨了极端温度下性能退化的热力学和动力学方面,重点关注离子扩散和电极界面氧化还原过程等关键因素。然后,我们全面总结和讨论了各种电解质类型的现有方法,包括水、非水和固态。最后,我们强调了在极端温度条件下工作的ZIBs的主要挑战和未来前景。本综述中提出的见解有望加速zib的发展,并促进其在大规模储能系统中的实际应用。
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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