激光诱导击穿光谱是表征激光改性复合材料的有力工具

Y. Zheng, H. Seifert, P. Smyrek, Wilhelm Pfleging
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引用次数: 1

摘要

采用激光诱导击穿光谱(LIBS)研究了激光改性电池材料的元素组成。在第一种方法中,厚膜电极-都含有相同的活性材料(锂镍锰钴氧化物(Li(Ni1/3Mn1/3Co1/3)O2, NMC)) -使用带铸造技术制造。在进一步的方法中,飞秒(fs)激光辐射被用于生成三维(3D)微结构。利用波长为515 nm的fs激光,将三维微网格成功地实现在厚膜电极上。在高充放电电流下,通过恒流循环测试了未经处理和激光修饰的NMC电极在锂离子电池中的电化学性能。最后,利用LIBS作为一种强大的表征工具,研究了不同健康状态下电化学循环后锂分布的变化。锂分布的评估将用于分析降解机制,并找到最合适的3D电极结构。为此,未经处理和激光结构的NMC厚膜的电化学循环和LIBS测量结果必须相互关联。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laser-induced breakdown spectroscopy as a powerful tool for characterization of laser modified composite materials
Laser-Induced Breakdown Spectroscopy (LIBS) was applied in order to investigate the elemental composition in laser modified battery materials. In a first approach, thick film electrodes — all incorporating the same active material (lithium nickel manganese cobalt oxide (Li(Ni1/3Mn1/3Co1/3)O2, NMC)) — were manufactured using the tape-casting technique. In a further approach, femtosecond (fs) laser radiation was used for the generation of three dimensional (3D) micro-structures. 3D micro-grids were successfully implemented into thick film electrodes applying a fs-laser wavelength of 515 nm. The electrochemical performance in lithium-ion cells with untreated and laser-modified NMC electrodes was determined by galvanostatic cycling at high charging- and discharging currents. Finally, LIBS was used as a powerful characterization tool in order to investigate the change in lithium distribution after electrochemical cycling at different State-of-Health. Evaluation of lithium distribution will be used to analyze degradation mechanisms and to find the most appropriate 3D electrode architecture. For this purpose, results of electrochemical cycling and LIBS measurements of untreated and laser-structured NMC thick films have to be correlated.
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