Wang Peng, Chu Wei, Li Wenbo, Tan Yuanxin, Liu Fang, Wang Min, Qi Jia, Lin Jintian, Zhang Fangbo, Wang Zhanshan, Cheng Ya
School of Physics Science and Engineering, Tongji University, Shanghai 200092, China.
State Key Laboratory of High Field Laser Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China.
Micromachines (Basel). 2019 Aug 26;10(9):565. doi: 10.3390/mi10090565.
Three-dimensional (3D) printing has allowed for the production of geometrically complex 3D objects with extreme flexibility, which is currently undergoing rapid expansion in terms of materials, functionalities, as well as areas of application. When attempting to print 3D microstructures in glass, femtosecond laser-induced chemical etching (FLICE)-which is a subtractive 3D printing technique-has proved itself a powerful approach. Here, we demonstrate the fabrication of macro-scale 3D glass objects of large heights up to ~3.8 cm with an identical lateral and longitudinal feature size of ~20 μm. The remarkable accomplishment is achieved by revealing an unexplored regime in the interaction of ultrafast laser pulses with fused silica, which results in depth-insensitive focusing of the laser pulses inside fused silica.
三维(3D)打印能够生产出具有极高灵活性的几何形状复杂的3D物体,目前该技术在材料、功能以及应用领域方面正经历快速发展。在尝试打印玻璃中的3D微观结构时,飞秒激光诱导化学蚀刻(FLICE)——一种减法3D打印技术——已证明是一种强大的方法。在此,我们展示了高度达约3.8厘米的宏观尺度3D玻璃物体的制造,其横向和纵向特征尺寸相同,约为20微米。这一显著成果是通过揭示超快激光脉冲与熔融石英相互作用中一个未被探索的区域而实现的,该区域导致激光脉冲在熔融石英内部实现深度不敏感聚焦。