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粘结剂极性对锂离子电池水相加工正负极性能的影响。

The impact of binder polarity on the properties of aqueously processed positive and negative electrodes for lithium-ion batteries.

作者信息

Weber Andreas, Keim Noah, Koch Pirmin, Müller Marcus, Bauer Werner, Ehrenberg Helmut

机构信息

Karlsruhe Institute of Technology, Institute for Applied Materials, Karlsruhe, 76021, Germany.

出版信息

Sci Rep. 2025 Mar 23;15(1):10024. doi: 10.1038/s41598-025-93813-9.

Abstract

The surface free energy of materials plays a crucial role in defining the interactions between interfaces. In this study, we introduce the theory behind surface free energy and extend its application to solvent-based manufacturing processes of positive (cathode) and negative (anode) electrodes for lithium-ion batteries. By employing binders, namely polyvinylidene difluoride latices and sodium carboxymethyl cellulose, with differing surface free energy compositions, we systematically investigate how surface free energy influences key electrode properties. The binder properties are shown to affect adhesion strength, electrical resistance, and water retention in electrodes, with analogous effects observed in both cathodes and anodes. For cathodes, these differences translate to measurable impacts on cell performance, particularly in terms of rate capability and long-term cycling stability. We also explore how binder induced variations in water retention influence the formation and stability of the solid electrolyte interphase. The findings highlight the critical role of the binder's surface free energy composition in optimizing electrode manufacturing and provide new insights into the interplay between electrode surface chemistry, microstructure, and electrochemical performance.

摘要

材料的表面自由能在定义界面间相互作用方面起着关键作用。在本研究中,我们介绍了表面自由能背后的理论,并将其应用扩展到锂离子电池正(阴极)负(阳极)电极的溶剂基制造工艺中。通过使用具有不同表面自由能组成的粘结剂,即聚偏二氟乙烯胶乳和羧甲基纤维素钠,我们系统地研究了表面自由能如何影响关键电极性能。结果表明,粘结剂性能会影响电极的粘附强度、电阻和保水性,在阴极和阳极中均观察到类似的影响。对于阴极,这些差异转化为对电池性能的可测量影响,特别是在倍率性能和长期循环稳定性方面。我们还探讨了粘结剂引起的保水性变化如何影响固体电解质界面的形成和稳定性。这些发现突出了粘结剂表面自由能组成在优化电极制造中的关键作用,并为电极表面化学、微观结构和电化学性能之间的相互作用提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51c0/11930974/e09d2c3abeed/41598_2025_93813_Fig1_HTML.jpg

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