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Probing Thermomechanics at the Nanoscale: Impulsively Excited Pseudosurface Acoustic Waves in Hypersonic Phononic Crystals

机译:纳米尺度的热力学研究:高超声速声子晶体中的脉冲激发伪表面声波

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摘要

High-frequency surface acoustic waves can be generated by ultrafast laser excitation of nanoscale patterned surfaces. Here we study this phenomenon in the hypersonic frequency limit. By modeling the thermomechanics from first-principles, we calculate the system’s initial heat-driven impulsive response and follow its time evolution. A scheme is introduced to quantitatively access frequencies and lifetimes of the composite system’s excited eigenmodes. A spectral decomposition of the calculated response on the eigemodes of the system reveals asymmetric resonances that result from the coupling between surface and bulk acoustic modes. This finding allows evaluation of impulsively excited pseudosurface acoustic wave frequencies and lifetimes and expands our understanding of the scattering of surface waves in mesoscale metamaterials. The model is successfully benchmarked against time-resolved optical diffraction measurements performed on one-dimensional and two-dimensional surface phononic crystals, probed using light at extreme ultraviolet and near-infrared wavelengths.
机译:可以通过超快激光激发纳米级图案化表面来生成高频表面声波。在这里,我们在高超音速频率极限中研究这种现象。通过根据第一性原理对热力学进行建模,我们计算出系统的初始热驱动脉冲响应并跟踪其时间演变。引入了一种方案来定量访问复合系统的激发本征模式的频率和寿命。在系统的本征模上计算得到的响应的频谱分解表明,由于表面声模与体声模之间的耦合而导致的非对称共振。这一发现可以评估脉冲激发的伪表面声波的频率和寿命,并扩展了我们对中尺度超材料中表面波散射的理解。该模型已成功针对使用一维和二维表面声子晶体进行的时间分辨光学衍射测量进行了基准测试,并使用了极紫外和近红外波长的光进行了探测。

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