Department of Mechanical Engineering, University of Delaware , Newark, Delaware 19716, United States.
ACS Nano. 2014 Mar 25;8(3):3049-59. doi: 10.1021/nn500585g. Epub 2014 Feb 28.
Polymer binders such as poly(vinylidene fluoride) (PVDF) and conductive additives such as carbon black (CB) are indispensable components for manufacturing battery electrodes in addition to active materials. The concept of adhesive conductors employing fragmented carbon nanotube macrofilms (FCNTs) is demonstrated by constructing composite electrodes with a typical active material, LiMn2O4. The adhesive FCNT conductors provide not only a high electrical conductivity but also a strong adhesive force, functioning simultaneously as both the conductive additives and the binder materials for lithium-ion batteries. Such composite electrodes exhibit superior high-rate and retention capabilities compared to the electrodes using a conventional binder (PVDF) and a conductive additive (CB). An in situ tribology method combining wear track imaging and force measurement is employed to evaluate the adhesion strength of the adhesive FCNT conductors. The adhesive FCNT conductors exhibit higher adhesion strength than PVDF. It has further been confirmed that the adhesive FCNT conductor can be used in both cathodes and anodes and is proved to be a competent substitute for polymer binders to maintain mechanical integrity and at the same time to provide electrical connectivity of active materials in the composite electrodes. The organic-solvent-free electrode manufacturing offers a promising strategy for the battery industry.
除了活性材料外,聚合物粘合剂(如聚偏二氟乙烯(PVDF))和导电添加剂(如炭黑(CB))也是制造电池电极不可或缺的组成部分。通过用典型的活性材料 LiMn2O4 构建复合电极,展示了采用断裂碳纳米管宏观薄膜(FCNTs)的粘合导体的概念。粘合 FCNT 导体不仅提供了高导电性,而且还提供了强大的粘合力,同时充当锂离子电池的导电添加剂和粘合剂材料。与使用传统粘合剂(PVDF)和导电添加剂(CB)的电极相比,这种复合电极表现出优异的高倍率和保持能力。采用原位摩擦学方法结合磨损轨迹成像和力测量来评估粘合 FCNT 导体的粘附强度。粘合 FCNT 导体表现出比 PVDF 更高的粘附强度。进一步证实,粘合 FCNT 导体可用于阴极和阳极,并且被证明是聚合物粘合剂的一种有前途的替代品,以维持机械完整性,同时为复合电极中的活性材料提供电连接。无有机溶剂的电极制造为电池行业提供了一种有前途的策略。