固态钠基电池:进展、挑战、展望

Arianna Massaro , Lorenzo Squillantini , Francesca De Giorgio , Francesca A. Scaramuzzo , Mauro Pasquali , Sergio Brutti
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摘要

本文探讨了固态钠基电池技术的最新进展,特别关注电化学性能和开发高效固体电解质相关的挑战。用固态替代传统的液体电解质有很多好处,包括提高安全性和环境可持续性,因为固态系统减少了易燃性和苛刻的化学品处理。这项工作强调了固体电解质的结构和界面特性的重要性,它们对离子电导率和整体电池性能起着至关重要的作用。研究了各种类型的固体电解质,如钠基反钙钛矿和硫化物电解质,强调了它们独特的离子传输机制和促进稳定循环的机械性能。本文还讨论了提高阳极和固体电解质之间界面稳定性的策略,以减轻电池运行过程中的性能下降。此外,电极配方的进步和新材料的集成被认为是优化充放电过程的关键,从而提高钠电池的能量和功率密度。钠基固态电池的未来前景强调了它们在满足新兴能源存储需求方面的潜力,同时利用了与锂相比钠的丰富可用性。这篇全面的综述旨在为固态钠基电池的商业化提供正在进行的研究和前景方向的见解,将其定位为可再生能源领域的可行替代品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Solid-state sodium-based batteries: Advances, challenges, perspectives
This manuscript explores recent advancements in solid-state sodium-based battery technology, particularly focusing on electrochemical performance and the challenges associated with developing efficient solid electrolytes. The replacement of conventional liquid electrolytes with solid-state alternatives offers numerous benefits, including enhanced safety and environmental sustainability, as solid-state systems reduce flammability and harsh chemical handling. The work emphasizes the importance of structure and interface characteristics in solid electrolytes, which play a critical role in ionic conductivity and overall battery performance. Various classes of solid electrolytes, such as sodium-based anti-perovskites and sulfide electrolytes, are examined, highlighting their unique ionic transport mechanisms and mechanical properties that facilitate stable cycling. The manuscript also discusses strategies to enhance interfacial stability between the anode and the solid electrolyte to mitigate performance degradation during battery operation. Furthermore, advancements in electrode formulations and the integration of novel materials are considered pivotal in optimizing the charging and discharging processes, thus improving the energy and power densities of sodium batteries. The outlook on the future of sodium-based solid-state batteries underscores their potential to meet emerging energy storage demands while leveraging the abundant availability of sodium compared to lithium. This comprehensive review aims to provide insights into ongoing research and prospective directions for the commercialization of solid-state sodium-based batteries, positioning them as viable alternatives in the renewable energy landscape.
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