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Fundamental processes of refractive index modifications during femtosecond laser waveguide writing

机译:飞秒激光波导写入过程中折射率修改的基本过程

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摘要

By using focused ultrashort pulsed laser radiation refractive index modifications are induced in glass in order to generate optical components. The understanding of physically fundamental processes induced by laser radiation is the basis for the systematic control and maximization of the refractive index change for the realization of three-dimensional, optical components for integrated optics like in-volume waveguides. In this paper fundamental processes which are induced by focused laser radiation in the volume of borosilicate glass D263 and fused silica are investigated. The glass materials are structured by laser radiation in the infrared spectral range (λ=1045nm). By using femtosecond laser pulses with high repetition rates (f = 500 kHz), thermal processes like heat accumulation effects are induced leading to heat affected zones and thus waveguide cross sections with dimensions larger than the focal spot. The absorptivity during modification in relation to the applied pulse energy is measured for different repetition rates in both glass materials. Furthermore, the laser induced structural change in the glass matrix by the increase of three- and four-membered ring structures is proved with Raman spectroscopy.
机译:通过使用聚焦的超短脉冲激光辐射,在玻璃中引起折射率的改变,以产生光学组件。对由激光辐射引起的物理基本过程的理解是系统控制和最大程度地实现折射率变化的基础,以实现用于集成光学器件(如批量波导)的三维光学组件。本文研究了聚焦激光辐射在硼硅玻璃D263和熔融石英的体积中引起的基本过程。玻璃材料由红外光谱范围(λ= 1045nm)中的激光辐射构成。通过使用具有高重复频率(f = 500 kHz)的飞秒激光脉冲,会引发诸如热累积效应的热过程,从而导致热影响区,从而导致波导横截面的尺寸大于焦点。在两种玻璃材料中,对于不同的重复率,测量了在改性过程中相对于施加的脉冲能量的吸收率。此外,通过拉曼光谱证明了通过增加三元和四元环结构而引起的玻璃基体中激光诱导的结构变化。

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