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Dynamics of spallation during femtosecond laser ablation studied by time-resolved reflectivity with double pump pulses

机译:飞秒激光烧蚀过程中的散裂动力学,通过双泵脉冲的时间分辨反射率研究

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摘要

The dynamics of photomechanical spallation during femtosecond laser ablation of fused silica was studied by time-resolved reflectivity with double pump pulses. Oscillation of reflectivity was caused by interference between the probe pulses reflected at the sample surface and the spallation layer, and was enhanced when the surface was irradiated with the second pump pulse within a time interval, △τ, of several picoseconds after the first pump pulse. However, as △τ was increased, the oscillation amplitude decreased with an exponential decay time of 10 ps. The oscillation disappeared when △τ exceeded 20 ps. This result suggests that the formation time of the spallation layer is approximately 10 ps. A second pump pulse with △τ shorter than 10 ps excites the bulk sample. The spallation layer that is photo-excited by the first and second pump pulses is separated afterward. In contrast, a pulse with △τ longer than the formation time excites and breaks up the spallation layer that has already been separated from the bulk. The formation time of the spallation layer, as determined in this experiment, is attributed to the characteristic time of the mechanical equilibration corresponding to the thickness divided by the sound velocity of the photo-excited layer.
机译:通过时间分辨反射率和双泵浦脉冲研究了飞秒激光烧蚀熔融石英过程中的光机械剥落动力学。反射率的振荡是由样品表面上反射的探测脉冲与剥落层之间的干扰引起的,当在第一个泵浦脉冲后几皮秒的时间间隔△τ内用第二个泵浦脉冲对表面进行照射时,反射率的振荡会增强。 。但是,随着△τ的增加,振荡幅度以10 ps的指数衰减时间减小。当△τ超过20 ps时,振荡消失。该结果表明,剥落层的形成时间约为10ps。 △τ小于10 ps的第二个泵浦脉冲激发大量样品。之后,由第一和第二泵浦脉冲光激发的散裂层被分离。相反,△τ长于形成时间的脉冲会激发并破坏已经从主体中分离的剥落层。如该实验中所确定的,剥落层的形成时间归因于机械平衡的特征时间,该时间相当于厚度除以光激发层的声速。

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  • 来源
    《Applied Physics Letters》 |2016年第1期|011102.1-011102.4|共4页
  • 作者单位

    Kansai Photon Science Institute, Japan Atomic Energy Agency, 8-1-7 Umemidai, Kizugawa, Kyoto 619-0215, Japan,Nuclear Science and Research Institute, Japan Atomic Energy Agency, 2-4 Shirakata, Tokai, Ibaraki 319-1195, Japan;

    Kansai Photon Science Institute, Japan Atomic Energy Agency, 8-1-7 Umemidai, Kizugawa, Kyoto 619-0215, Japan;

    Kansai Photon Science Institute, Japan Atomic Energy Agency, 8-1-7 Umemidai, Kizugawa, Kyoto 619-0215, Japan;

    Kansai Photon Science Institute, Japan Atomic Energy Agency, 8-1-7 Umemidai, Kizugawa, Kyoto 619-0215, Japan;

    Department of Mechanical Engineering, Faculty of Engineering, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, 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);
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  • 正文语种 eng
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