Nanoscale thermal transport and phonon dynamics in ultra-thin Si based nanostructures

M. R. Wagner, E. Chávez‐Ángel, J. Gomis-Bresco, J. Reparaz, A. Shchepetov, M. Prunnila, J. Ahopelto, F. Alzina, C. Sotomayor‐Torres
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Abstract

We study the dynamics of acoustic phonons in ultra-thin free-standing silicon membranes both experimentally and theoretically. We discuss the impact of the lifetimes of the acoustic phonons on the thermal transport properties of the membranes with thicknesses ranging from 8 nm to 1.5 μm. The phonon lifetimes are determined by measuring the dynamic variation of the reflectivity using ultra-fast pump-probe spectroscopy. This is achieved by asynchronous optical sampling (ASOPS) of two actively coupled femto-second laser oscillators. The coherent acoustic phonon lifetime is obtained from the dynamical variations of the reflectivity with a sensitivity of 10-5 and a time resolution of about 50 fs. The experimental results are compared to theoretical calculations considering both intrinsic and extrinsic relaxation scattering processes.
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超薄硅基纳米结构中的纳米尺度热输运和声子动力学
本文从实验和理论两方面研究了超薄独立硅膜中声子的动力学特性。讨论了声子寿命对厚度为8 nm ~ 1.5 μm薄膜热输运特性的影响。利用超快泵浦探测光谱法测量反射率的动态变化来确定声子寿命。这是通过两个主动耦合飞秒激光振荡器的异步光学采样(ASOPS)来实现的。从反射率的动态变化得到相干声子寿命,灵敏度为10-5,时间分辨率约为50 fs。实验结果与理论计算结果进行了比较,同时考虑了本征和本征弛豫散射过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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