结构图案类型对锂离子电池用超厚 NMC 622电极电化学性能的影响

P. Zhu, Benjamin Ebert, P. Smyrek, Wilhelm Pfleging
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引用次数: 0

摘要

通过结合厚膜电极和三维电池概念,可以在保持高功率密度的同时提高电池的能量密度。我们研究了不同图案类型的激光结构对电化学性能的影响。为此,使用 PVDF 粘合剂制备了 LiNi0.6Mn0.2Co0.2O2 (NMC 622) 厚膜阴极,然后使用超快激光烧蚀技术对其进行了结构化处理。共实现了八种不同的图案类型,即线条、网格、孔洞、六边形结构及其各自的组合。此外,无论图案类型如何,激光烧蚀造成的质量损失都保持不变。激光结构电极被组装到纽扣电池中,随后进行了电化学表征。研究发现,当电池放电持续时间少于 2 小时时,激光图案化对电化学电池的性能有显著的积极影响。例如,在放电 1 小时时,含有不同结构类型激光图案电极的电池与参考电池相比,比容量最多可增加 70 mAh/g。虽然在速率能力分析中,带有孔图案电极的电池容量增幅最小,但将孔与线条、网格或六边形组合在一起可进一步提高容量。此外,长期循环分析表明了激光图案化对电池寿命的益处,而循环伏安法则突显了含有六边形图案电极的电池中锂离子扩散动力学的增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Impact of Structural Pattern Types on the Electrochemical Performance of Ultra-Thick NMC 622 Electrodes for Lithium-Ion Batteries
An increase in the energy density on the cell level while maintaining a high power density can be realized by combining thick-film electrodes and the 3D battery concept. The effect of laser structuring using different pattern types on the electrochemical performance was studied. For this purpose, LiNi0.6Mn0.2Co0.2O2 (NMC 622) thick-film cathodes were prepared with a PVDF binder and were afterward structured using ultrafast laser ablation. Eight different pattern types were realized, which are lines, grids, holes, hexagonal structures, and their respective combinations. In addition, the mass loss caused by laser ablation was kept the same regardless of the pattern type. The laser-structured electrodes were assembled in coin cells and subsequently electrochemically characterized. It was found that when discharging the cells for durations of less than 2 h, a significant, positive impact of laser patterning on the electrochemical cell performance was observed. For example, when discharging was performed for one hour, cells containing laser-patterned electrodes with different structure types exhibited a specific capacity increase of up to 70 mAh/g in contrast to the reference ones. Although cells with a hole-patterned electrode exhibited a minimum capacity increase in the rate capability analysis, the combination of holes with lines, grids, or hexagons led to further capacity increases. In addition, long-term cycle analyses demonstrated the benefits of laser patterning on the cell lifetime, while cyclic voltammetry highlighted an increase in the Li-ion diffusion kinetics in cells containing hexagonal-patterned electrodes.
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