Tuning the thermal conductivity of Si membrane using nanopillars: from crystalline to amorphous pillars

Fuente: arXiv
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Hauptverfasser: Yang, Lina, Xu, Yixin, Wang, Xianheng, Zhou, Yanguang
Format: Preprint
Veröffentlicht: 2024
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author Yang, Lina
Xu, Yixin
Wang, Xianheng
Zhou, Yanguang
author_facet Yang, Lina
Xu, Yixin
Wang, Xianheng
Zhou, Yanguang
contents Tuning thermal transport in nanostructures is essential for many applications, such as thermal management and thermoelectrics. Nanophononic metamaterials (NPM) have shown great potential for reducing thermal conductivity by introducing local resonant hybridization. In this work, the thermal conductivity of NPM with crystalline Si (c-Si) pillar, crystalline Ge (c-Ge) pillar and amorphous Si (a-Si) pillar are systematically investigated by molecular dynamics method. The analyses of phonon dispersion and spectral energy density show that phonon dispersions of Si membrane are flattened due to local resonant hybridization induced by both crystalline and amorphous pillar. In addition, a-Si pillar can cause larger reduction of thermal conductivity compared with c-Si pillar. Specifically, when increasing the atomic mass of atoms in pillars, the thermal conductivity of NPMs with crystalline pillar is increased because of the weakened phonon hybridization, however, the thermal conductivity of NPMs with amorphous pillar is almost unchanged, which indicates that the phonon transports are mainly affected by the scatterings at the interface between amorphous pillar and Si membrane. The results of this work can provide meaningful insights on controlling thermal transport in NPMs by choosing the materials and atomic mass of pillars for specific applications.
format Preprint
id arxiv_https___arxiv_org_abs_2404_09148
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Tuning the thermal conductivity of Si membrane using nanopillars: from crystalline to amorphous pillars
Yang, Lina
Xu, Yixin
Wang, Xianheng
Zhou, Yanguang
Materials Science
Tuning thermal transport in nanostructures is essential for many applications, such as thermal management and thermoelectrics. Nanophononic metamaterials (NPM) have shown great potential for reducing thermal conductivity by introducing local resonant hybridization. In this work, the thermal conductivity of NPM with crystalline Si (c-Si) pillar, crystalline Ge (c-Ge) pillar and amorphous Si (a-Si) pillar are systematically investigated by molecular dynamics method. The analyses of phonon dispersion and spectral energy density show that phonon dispersions of Si membrane are flattened due to local resonant hybridization induced by both crystalline and amorphous pillar. In addition, a-Si pillar can cause larger reduction of thermal conductivity compared with c-Si pillar. Specifically, when increasing the atomic mass of atoms in pillars, the thermal conductivity of NPMs with crystalline pillar is increased because of the weakened phonon hybridization, however, the thermal conductivity of NPMs with amorphous pillar is almost unchanged, which indicates that the phonon transports are mainly affected by the scatterings at the interface between amorphous pillar and Si membrane. The results of this work can provide meaningful insights on controlling thermal transport in NPMs by choosing the materials and atomic mass of pillars for specific applications.
title Tuning the thermal conductivity of Si membrane using nanopillars: from crystalline to amorphous pillars
topic Materials Science
url https://arxiv.org/abs/2404.09148