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Femtosecond laser ablation dynamics of fused silica extracted from oscillation of time-resolved reflectivity

机译:从时间分辨反射率振荡中提取的熔融石英飞秒激光烧蚀动力学

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摘要

Femtosecond laser ablation dynamics of fused silica is examined via time-resolved reflectivity measurements. After optical breakdown was caused by irradiation of a pump pulse with fluence F_(pump) = 3.3-14.9 J/cm~2, the reflectivity oscillated with a period of 63 ± 2 ps for a wavelength λ = 795 nm. The period was reduced by half for λ = 398 nm. We ascribe the oscillation to the interference between the probe pulses reflected from the front and rear surfaces of the photo-excited molten fused silica layer. The time-resolved reflectivity agrees closely with a model comprising a photo-excited layer which expands due to the formation of voids, and then separates into two parts, one of which is left on the sample surface and the other separated as a molten thin layer from the surface by the spallation mechanism. Such oscillations were not observed in the reflectivity of soda-lime glass. Whether the reflectivity oscillates or not probably depends on the layer viscosity while in a molten state. Since viscosity of the molten fused silica is several orders of magnitude higher than that of the soda-lime glass at the same temperature, fused silica forms a molten thin layer that reflects the probe pulse, whereas the soda-lime glass is fragmented into clusters.
机译:通过时间分辨的反射率测量来检查熔融石英的飞秒激光烧蚀动力学。在通量F_(泵)= 3.3-14.9 J / cm〜2的泵浦脉冲的照射引起光击穿之后,对于波长λ= 795 nm,反射率以63±2 ps的周期振荡。对于λ= 398 nm,该周期减少了一半。我们将振荡归因于从光激发熔融石英玻璃层的前表面和后表面反射的探测脉冲之间的干扰。时间分辨的反射率与包含光激发层的模型非常吻合,该模型由于形成空隙而膨胀,然后分成两部分,其中一部分留在样品表面,另一部分作为熔融薄层分开从表面剥落的机制。在钠钙玻璃的反射率中未观察到这种振荡。反射率是否振荡可能取决于熔融状态下的层粘度。由于在相同温度下熔融石英玻璃的粘度比钠钙玻璃的粘度高几个数量级,因此熔融石英形成了反映探针脉冲的熔融薄层,而钠钙玻璃则碎裂成团。

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  • 来源
    《Journal of Applied Physics》 |2014年第10期|103504.1-103504.9|共9页
  • 作者单位

    Quantum Beam Science Directorate, Kansai Photon Science Institute, Japan Atomic Energy Agency, Kizugawa, Kyoto 619-0215, Japan;

    Quantum Beam Science Directorate, Kansai Photon Science Institute, Japan Atomic Energy Agency, Kizugawa, Kyoto 619-0215, Japan;

    Quantum Beam Science Directorate, Kansai Photon Science Institute, Japan Atomic Energy Agency, Kizugawa, Kyoto 619-0215, Japan;

    Quantum Beam Science Directorate, Kansai Photon Science Institute, Japan Atomic Energy Agency, Kizugawa, Kyoto 619-0215, Japan;

    Quantum Beam Science Directorate, Kansai Photon Science Institute, Japan Atomic Energy Agency, Kizugawa, Kyoto 619-0215, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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