Literature DB >> 29087722

Ballistic Phonon Penetration Depth in Amorphous Silicon Dioxide.

Lin Yang1, Qian Zhang1, Zhiguang Cui2, Matthew Gerboth1, Yang Zhao1, Terry T Xu2, D Greg Walker1, Deyu Li1.   

Abstract

Thermal transport in amorphous silicon dioxide (a-SiO2) is traditionally treated as random walks of vibrations owing to its greatly disordered structure, which results in a mean free path (MFP) approximately the same as the interatomic distance. However, this picture has been debated constantly and in view of the ubiquitous existence of thin a-SiO2 layers in nanoelectronic devices, it is imperative to better understand this issue for precise thermal management of electronic devices. Different from the commonly used cross-plane measurement approaches, here we report on a study that explores the in-plane thermal conductivity of double silicon nanoribbons with a layer of a-SiO2 sandwiched in-between. Through comparing the thermal conductivity of the double ribbon samples with that of corresponding single ribbons, we show that thermal phonons can ballistically penetrate through a-SiO2 of up to 5 nm thick even at room temperature. Comprehensive examination of double ribbon samples with various oxide layer thicknesses and van der Waals bonding strengths allows for extraction of the average ballistic phonon penetration depth in a-SiO2. With solid experimental data demonstrating ballistic phonon transport through a-SiO2, this work should provide important insight into thermal management of electronic devices.

Entities:  

Keywords:  Thermal conductivity; amorphous silicon dioxide; ballistic phonon transport; silicon nanoribbon; van der Waals interface

Year:  2017        PMID: 29087722     DOI: 10.1021/acs.nanolett.7b02380

Source DB:  PubMed          Journal:  Nano Lett        ISSN: 1530-6984            Impact factor:   11.189


  6 in total

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5.  Modulation of Morphology and Optical Property of Multi-Metallic PdAuAg and PdAg Alloy Nanostructures.

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6.  Probing thermal transport across amorphous region embedded in a single crystalline silicon nanowire.

Authors:  Yunshan Zhao; Xiangjun Liu; Ashutosh Rath; Jing Wu; Baowen Li; WuXing Zhou; Guofeng Xie; Gang Zhang; John T L Thong
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  6 in total

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