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PULSED LASER ABLATION OF LITHIUM ION BATTERY ELECTRODES

机译:脉冲激光烧蚀锂离子电池电极

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Lithium ion battery electrodes have been exposed to 1064nm nanosecond pulsed laser irradiation with pulse energy in the range 8μJ - 1mJ and fluence in the range 3.2 - 395J/cm~2. Experiments have been executed at translational velocities of 100mm/s and 1m/s, allowing individual characterization of the graphite and lithium metal oxide coatings of the copper anode and aluminum cathode, respectively, as well as that of the complete multi-layer structures. A 3D optical profiler has been utilized to measure the incision depth of all samples and allow observation of the process quality. At high velocity, partial or complete removal of the upper coating layers was achieved with little or no impact on the underlying metallic layers. At low velocity, complete cuts were possible under certain conditions, with process efficiency found to be almost entirely governed by the response of the metallic layers. While the coating layers of each electrode exhibited different responses than the metallic layer, the influence of the latter was found to be dominant for cutting operations. Shorter pulses with fluence in the range 30 - 60J/cm~2 were found to lead to optimum process outcomes with the employed laser source.
机译:锂离子电池电极已受到1064nm纳秒脉冲激光照射,脉冲能量范围为8μJ-1mJ,能量密度范围为3.2-395J / cm〜2。已经在100mm / s和1m / s的平移速度下进行了实验,从而分别表征了铜阳极和铝阴极的石墨和锂金属氧化物涂层以及完整的多层结构。 3D光学轮廓仪已用于测量所有样品的切入深度,并可以观察过程质量。在高速下,可以部分或全部去除上涂层,而对下层金属层的影响很小或没有影响。在低速下,在某些条件下可能会完全切割,发现加工效率几乎完全取决于金属层的响应。尽管每个电极的涂层表现出与金属层不同的响应,但是发现金属层的影响在切割操作中占主导地位。发现使用能量在30-60J / cm〜2范围内的较短脉冲可导致最佳工艺结果。

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