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用于钠离子电池的电解质:当前从液体到固体及混合体系的转变

Electrolytes for Sodium Ion Batteries: The Current Transition from Liquid to Solid and Hybrid systems.

作者信息

Darjazi Hamideh, Falco Marisa, Colò Francesca, Balducci Leonardo, Piana Giulia, Bella Federico, Meligrana Giuseppina, Nobili Francesco, Elia Giuseppe A, Gerbaldi Claudio

机构信息

GAME Lab, Department of Applied Science and Technology - DISAT, Politecnico di Torino, Corso Duca degli Abruzzi 24, Torino, 10129, Italy.

National Reference Center for Electrochemical Energy Storage (GISEL) - INSTM, Via G. Giusti 9, Firenze, 50121, Italy.

出版信息

Adv Mater. 2024 Aug;36(35):e2313572. doi: 10.1002/adma.202313572. Epub 2024 Jul 2.

DOI:10.1002/adma.202313572
PMID:38809501
Abstract

Sodium-ion batteries (NIBs) have recently garnered significant interest in being employed alongside conventional lithium-ion batteries, particularly in applications where cost and sustainability are particularly relevant. The rapid progress in NIBs will undoubtedly expedite the commercialization process. In this regard, tailoring and designing electrolyte formulation is a top priority, as they profoundly influence the overall electrochemical performance and thermal, mechanical, and dimensional stability. Moreover, electrolytes play a critical role in determining the system's safety level and overall lifespan. This review delves into recent electrolyte advancements from liquid (organic and ionic liquid) to solid and quasi-solid electrolyte (dry, hybrid, and single ion conducting electrolyte) for NIBs, encompassing comprehensive strategies for electrolyte design across various materials, systems, and their functional applications. The objective is to offer strategic direction for the systematic production of safe electrolytes and to investigate the potential applications of these designs in real-world scenarios while thoroughly assessing the current obstacles and forthcoming prospects within this rapidly evolving field.

摘要

钠离子电池(NIBs)最近在与传统锂离子电池一起使用方面引起了极大的关注,特别是在成本和可持续性特别相关的应用中。钠离子电池的快速发展无疑将加速其商业化进程。在这方面,定制和设计电解质配方是首要任务,因为它们对整体电化学性能以及热、机械和尺寸稳定性有着深远的影响。此外,电解质在决定系统的安全水平和整体寿命方面起着关键作用。本综述深入探讨了从液体(有机和离子液体)到固体和准固体电解质(干态、混合态和单离子传导电解质)的钠离子电池电解质的最新进展,涵盖了各种材料、系统及其功能应用的电解质设计综合策略。目的是为安全电解质的系统生产提供战略指导,并研究这些设计在实际场景中的潜在应用,同时全面评估这个快速发展领域当前的障碍和未来的前景。

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