Semiconductor-based thermal wave crystals

被引:0
作者
Ahmed A. Zul Karnain
Sai Aditya Raman Kuchibhatla
Tiju Thomas
Prabhu Rajagopal
机构
[1] Indian Institute of Technology Madras,Centre for Nondestructive Evaluation, Department of Mechanical Engineering
[2] Indian Institute of Technology Madras,DST Solar Energy Harnessing Center, and Department of Metallurgical and Materials Engineering
关键词
High band gap phononic crystals; Semiconductors; Thermal phonons; Thermal management;
D O I
10.1007/s41683-020-00061-2
中图分类号
学科分类号
摘要
One-dimensional phononic crystals made of silicon (Si) and germanium (Ge), both of which are materials commonly used in semiconductor devices, are shown to be effective in inducing bandgaps in the dispersion of heat flow at the nanoscale. Numerical approaches are used to understand the dispersion and propagation of thermal waves in Si–Ge phononic crystals. The results show for the first time how nanostructuring could yield band gaps in the dispersion of thermal phonons in the GHz range. We arrive at conditions that can yield bandgaps as high as 40 GHz; this is a bandgap that exceeds the value reported thus far. Variations in the unit cell dimensions are studied to understand the corresponding evolution in the bandgap frequencies. The control of heat using such proposed media holds promise for better heat management solutions for modern electronic devices, nanoscale sensing as well as for novel applications including the development of thermal diodes and thermal cloaks.
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页码:181 / 189
页数:8
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