材料科学
微尺度化学
激光器
飞秒
电介质
拉曼光谱
复合材料
脆性
压力(语言学)
光学
悬臂梁
光电子学
语言学
哲学
物理
数学教育
数学
作者
Yunpeng Song,Jian Xu,Xiaolong Li,Aodong Zhang,Ya Cheng
标识
DOI:10.1016/j.optlastec.2024.110901
摘要
Due to the importance of stress control in the laser processing of brittle transparent dielectrics such as glass and crystal, investigating the evolution of laser-induced stress state and its manipulation mechanism is highly desirable for ensuring high-performance crack-free laser micro/nanostructuring of dielectrics. Herein, the internal stress state of a femtosecond laser-modified fused silica glass sample at a broad range of pulse energy from 0.34 to 3.5 μJ was evaluated using a cantilever displacement method. Two obvious transition zones in the variation of microscale displacement were identified and analyzed by polarized optical microscopy, scanning electronic microscopy, and confocal micro-Raman spectroscopy. A strong energy-dependent correlation between the evolution of the micro/nano-scale morphology and stress state in laser-induced structures has been investigated and discussed. The analyzed result is beneficial for developing high-efficiency and high-quality manufacturing of 3D large-scale and high-precision glass microstructures.
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