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3D features of modified photostructurable glass-ceramic with infrared femtosecond laser pulses

机译:红外飞秒激光脉冲对改性光可构筑玻璃陶瓷的3D特性

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摘要

The exclusive ability of laser radiation to be focused inside transparent materials makes lasers a unique tool to process inner parts of them unreachable with other techniques. Hence, laser direct-write can be used to create 3D structures inside bulk materials. Infrared femtosecond lasers are especially indicated for this purpose because a multiphoton process is usually required for absorption and high resolution can be attained. This work studies the modifications produced by 450 fs laser pulses at 1027 nm wavelength focused inside a photostructurable glass-ceramic (Foturan®) at different depths. Irradiated samples were submitted to standard thermal treatment and subsequent soaking in HF solution to form the buried microchannels and thus unveil the modified material. The voxel dimensions of modified material depend on the laser pulse energy and the depth at which the laser is focused. Spherical aberration and selffocusing phenomena are required to explain the observed results.
机译:激光辐射具有聚焦在透明材料内部的独特能力,使激光成为处理其他技术无法达到的内部零件的独特工具。因此,激光直写可用于在块状材料内部创建3D结构。红外飞秒激光器特别用于此目的,因为通常需要多光子过程进行吸收并且可以获得高分辨率。这项工作研究了在1027 nm波长处的450 fs激光脉冲在不同深度的可光结构化玻璃陶瓷(Foturan®)内聚焦产生的变化。辐照过的样品要经过标准热处理,然后浸泡在HF溶液中以形成掩埋的微通道,从而露出改性材料。改性材料的体素尺寸取决于激光脉冲能量和激光聚焦的深度。需要球差和自聚焦现象来解释观察到的结果。

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