Renewable Energy Conversion and Storage Center (RECAST), Haihe Laboratory of Sustainable Chemical Transformations, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), College of Chemistry, Nankai University, Tianjin, 300071, China.
Chem Soc Rev. 2023 Apr 24;52(8):2713-2763. doi: 10.1039/d2cs00873d.
Electrolytes that can ensure the movement of ions and regulate interfacial chemistries for fast mass and charge transfer are essential in many types of electrochemical energy storage devices. However, in the emerging energy-dense lithium-based batteries, the uncontrollable side-reactions and consumption of the electrolyte result in poor electrochemical performances and severe safety concerns. In this case, fluorination has been demonstrated to be one of the most effective strategies to overcome the above-mentioned issues without significantly contributing to engineering and technical difficulties. Herein, we present a comprehensive overview of the fluorinated solvents that can be employed in lithium-based batteries. Firstly, the basic parameters that dictate the properties of solvents/electrolytes are elaborated, including physical properties, solvation structure, interface chemistry, and safety. Specifically, we focus on the advances and scientific challenges associated with different solvents and the enhancement in their performance after fluorination. Secondly, we discuss the synthetic methods for new fluorinated solvents and their reaction mechanisms in depth. Thirdly, the progress, structure-performance relationship, and applications of fluorinated solvents are reviewed. Subsequently, we provide suggestions on the solvent selection for different battery chemistries. Finally, the existing challenges and further efforts on fluorinated solvents are summarized. The combination of advanced synthesis and characterization approaches with the assistance of machine learning will enable the design of new fluorinated solvents for advanced lithium-based batteries.
电解质可以确保离子的移动,并调节界面化学,从而实现快速的质量和电荷转移,这对于许多类型的电化学储能设备至关重要。然而,在新兴的高能量密度锂电池中,不可控的副反应和电解质的消耗导致了较差的电化学性能和严重的安全问题。在这种情况下,氟化已被证明是克服上述问题的最有效策略之一,而不会显著增加工程和技术难度。本文全面综述了可用于锂电池的氟化溶剂。首先,阐述了决定溶剂/电解质性质的基本参数,包括物理性质、溶剂化结构、界面化学和安全性。具体而言,我们重点介绍了不同溶剂的进展和与之相关的科学挑战,以及氟化后其性能的提高。其次,深入讨论了新型氟化溶剂的合成方法及其反应机制。然后,综述了氟化溶剂的进展、结构-性能关系和应用。随后,我们就不同电池化学体系的溶剂选择提出了建议。最后,总结了氟化溶剂存在的挑战和进一步的研究方向。通过将先进的合成和表征方法与机器学习相结合,将能够设计出用于先进锂电池的新型氟化溶剂。