离子液体及其衍生物用于锂电池:作用、设计策略和观点

Matteo Palluzzi, Akiko Tsurumaki, Henry Adenusi, Maria Assunta Navarra, Stefano Passerini
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引用次数: 0

摘要

锂离子电池(lib)是便携式电子设备的主要电源,近年来,锂离子电池的使用已扩展到更高能量和更大的设备。然而,为了满足严格的安全性和能量密度要求,需要进一步的材料进步。由于有机溶剂基液体电解质与高能器件中使用的材料固有的易燃性和不相容性,有必要过渡到替代导电介质。重点从分子材料转移到一类基于离子的材料,包括离子液体(il)及其衍生物,如两性离子il、聚合il和溶剂化il,它们具有高水平的安全性、稳定性、兼容性,并且能够为特定应用合理设计il。离子设计对于实现阳极和阴极表面的电极/电解质界面(eei)的卓越控制至关重要,从而实现更安全、更高能量的锂金属电池(lmb)。这篇综述总结了il在lmb电解质(液体和固体)中的不同用途,报告了近年来获得的最有希望的结果,并强调了它们在形成合适的eei中的作用。此外,还对深共晶溶剂的使用进行了讨论,深共晶溶剂是一类与聚合物具有相似性能的材料,从可持续性的角度来看是一种重要的替代材料。最后,总结了il基电解质的优化前景,从离子结构的功能设计到具有特定特征的纳米相的实现。
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Ionic liquids and their derivatives for lithium batteries: role, design strategy, and perspectives
Lithium-ion batteries (LIBs) are the predominant power source for portable electronic devices, and in recent years, their use has extended to higher-energy and larger devices. However, to satisfy the stringent requirements of safety and energy density, further material advancements are required. Due to the inherent flammability and incompatibility of organic solvent-based liquid electrolytes with materials utilized in high energy devices, it is necessary to transition to alternative conductive mediums. The focus is shifting from molecular materials to a class of materials based on ions, including ionic liquids (ILs) and their derivatives such as zwitterionic ILs, polymerized ILs, and solvated ILs, which possess high levels of safety, stability, compatibility, and the ability to rationally design ILs for specific applications. Ion design is crucial to achieve superior control of electrode/electrolyte interphases (EEIs) both on anode and cathode surfaces to realize safer and higher-energy lithium-metal batteries (LMBs). This review summarizes the different uses of ILs in electrolytes (both liquid and solids) for LMBs, reporting the most promising results obtained during the last years and highlighting their role in the formation of suitable EEIs. Furthermore, a discussion on the use of deep-eutectic solvents is also provided, which is a class of material with similar properties to ILs and an important alternative from the viewpoint of sustainability. Lastly, future prospects for the optimization of IL-based electrolytes are summarized, ranging from the functional design of ionic structures to the realization of nanophases with specific features.
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