Femtosecond laser etching of Li1.5Al0.5Ge1.5(PO4)3 glass using the Bessel beam

Weihang Liu, Kaiyong Jiang, Masashi Kotobuki, Binggong Yan
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Abstract

Surface textured materials can exhibit enhanced properties due to their unique morphology, large surface area, and modified surface properties. The laser etching process has garnered significant attention for its capability to create textures on sample surfaces, resulting in a substantial improvement of surface properties. In this study, we investigate the application of femtosecond laser etching on solid electrolytes. To achieve this, an axicon lens is employed to transform the conventional Gaussian beam into a Bessel beam, with an extended focal depth that facilitates the laser etching process. A telescope laser system with a Bessel beam having a focal length of 2 mm is constructed based on finite element analysis. Glassy LAGP [Li1.5Al0.5Ge1.5(PO4)3] with a thickness of 2 mm is successfully etched simultaneously on both surfaces using this approach. Utilization of femtosecond laser pulses effectively prevents sample melting during the process. As predicted by finite element analysis, wider ditches are observed on the surface compared to those on the backside due to higher laser intensity at the surface region. By modifying the parameters of the telescope laser system, size and depth control can be achieved for these ditches.
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利用贝塞尔光束对 Li1.5Al0.5Ge1.5(PO4)3 玻璃进行飞秒激光刻蚀
表面纹理材料因其独特的形态、较大的表面积和改良的表面特性,可显示出更强的性能。激光蚀刻工艺能够在样品表面形成纹理,从而大幅改善表面特性,因此备受关注。在本研究中,我们研究了飞秒激光蚀刻在固体电解质上的应用。为了实现这一目标,我们采用了一个螺旋透镜,将传统的高斯光束转化为贝塞尔光束,其扩展的焦深有利于激光蚀刻过程。基于有限元分析,我们构建了一个焦距为 2 毫米的贝塞尔光束望远镜激光系统。利用这种方法,成功地在两个表面同时蚀刻了厚度为 2 毫米的玻璃状 LAGP [Li1.5Al0.5Ge1.5(PO4)3]。飞秒激光脉冲的使用有效地防止了样品在加工过程中熔化。正如有限元分析所预测的那样,由于表面区域的激光强度较高,因此在表面观察到的沟槽比在背面观察到的沟槽更宽。通过修改望远镜激光系统的参数,可以控制这些沟槽的大小和深度。
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