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Coherence in ultrafast laser-induced periodic surface structures

机译:超快激光诱导的周期性表面结构中的相干性

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摘要

Ultrafast laser irradiation can trigger anisotropically structured nanoscaled gratinglike arrangements of matter, the laser-induced periodic surface structures (LIPSSs). We demonstrate here that the formation of LIPSS is intrinsically related to the coherence of the laser field. Employing several test materials that allow large optical excursions, we observe the effect of randomizing spatial phase in generating finite domains of ripples. Using three-dimensional finite-difference time-domain methods, we evaluate energy deposition patterns below a material's rough surface and show that modulated pattern, i.e., a spatially ordered electromagnetic solution, results from the coherent superposition of waves. By separating the field scattered from a surface rough topography from the total field, the inhomogeneous energy absorption problem is reduced to a simple interference equation. We further distinguish the contribution of the scattered near field and scattered far field on various types of inhomogeneous energy absorption features. It is found that the inhomogeneous energy absorption which could trigger the low-spatial-frequency LIPSSs (LSFLs) and high-spatial-frequency LIPSSs (HSFLs) of periodicity A > k/Re(n) are due to coherent superposition between the scattered far field (propagation) and the refracted field, while HSFLs of A < X/Re(n) are triggered by coherent superposition between the scattered near field (evanescent) and the refracted field. This is a general scenario that involves a topography-induced scattering phenomenon and stationary evanescent fields, being applied to two model case materials that exhibit large optical excursions upon excitation (W, Si) and nonplasmonic to plasmonic transitions. We indicate the occurrence of a general light interference phenomenon that does not necessarily involve wavelike surface plasmonic excitation. Finally, we discuss the role of interference field and scattered field on the enhancement of LIPSSs by simulating interpulse feedback effects and provide the electromagnetic origin of grooves (A > X) related to a feedback-driven topography evolution. Those results strongly suggest the electromagnetic interpretation of LIPSSs in interplay with an evolving surface topography.
机译:超快激光辐照可以触发物质的各向异性结构的纳米尺度光栅状排列,即激光诱导的周期性表面结构(LIPSSs)。我们在这里证明,LIPSS的形成与激光场的相干性本质上相关。使用几种允许较大光学偏移的测试材料,我们观察到随机空间相位在生成有限的纹波域中的作用。使用三维有限差分时域方法,我们评估了材料粗糙表面以下的能量沉积模式,并显示出调制模式(即空间有序的电磁解)是由波的相干叠加产生的。通过将来自表面粗糙地形的散射场与整个场分开,将非均匀能量吸收问题简化为一个简单的干扰方程。我们进一步区分了散射近场和散射远场对各种类型的非均匀能量吸收特征的贡献。研究发现周期性的A> k / Re(n)的低空间LIPSS(LSFLs)和高空间LIPSS(HSFLs)的非均匀能量吸收是由于散射远距离之间的相干叠加造成的。场(传播)和折射场,而A <X / Re(n)的HSFL是由散射近场(渐逝)和折射场之间的相干叠加触发的。这是一个一般情况,涉及地形诱发的散射现象和固定的渐逝场,将其应用于两种模型案例材料,这些材料在激发(W,Si)和非等离子至等离子转变时会表现出较大的光学偏移。我们指出发生了一般的光干扰现象,该现象不一定涉及波状表面等离子体激元激发。最后,我们通过模拟脉冲间反馈效应,讨论了干扰场和散射场在增强LIPSS方面的作用,并提供了与反馈驱动的地形演变有关的沟槽的电磁起源(A> X)。这些结果有力地说明了LIPSS与不断发展的表面形貌相互作用的电磁学解释。

著录项

  • 来源
    《Physical review》 |2015年第17期|174109.1-174109.14|共14页
  • 作者单位

    Laboratoire Hubert Curien, UMR 5516 CNRS, Universite de Lyon, Universite Jean Monnet, 42000 St. Etienne, France;

    Laboratoire Hubert Curien, UMR 5516 CNRS, Universite de Lyon, Universite Jean Monnet, 42000 St. Etienne, France;

    Laboratoire Hubert Curien, UMR 5516 CNRS, Universite de Lyon, Universite Jean Monnet, 42000 St. Etienne, France,State Key Laboratory of Transient Optics and Photonics, Xian Institute of Optics and Precision Mechanics, CAS, 710119 Xian, Shaanxi, China,University of Chinese Academy of Science, 10049 Beijing, China;

    Laboratoire Hubert Curien, UMR 5516 CNRS, Universite de Lyon, Universite Jean Monnet, 42000 St. Etienne, France;

    State Key Laboratory of Transient Optics and Photonics, Xian Institute of Optics and Precision Mechanics, CAS, 710119 Xian, Shaanxi, China;

    Laboratoire Hubert Curien, UMR 5516 CNRS, Universite de Lyon, Universite Jean Monnet, 42000 St. Etienne, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    laser-beam impact phenomena; coherence;

    机译:激光束冲击现象;连贯性;

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