Experimental observation of localized interfacial phonon modes

被引:0
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作者
Zhe Cheng
Ruiyang Li
Xingxu Yan
Glenn Jernigan
Jingjing Shi
Michael E. Liao
Nicholas J. Hines
Chaitanya A. Gadre
Juan Carlos Idrobo
Eungkyu Lee
Karl D. Hobart
Mark S. Goorsky
Xiaoqing Pan
Tengfei Luo
Samuel Graham
机构
[1] George W. Woodruff School of Mechanical Engineering,Department of Aerospace and Mechanical Engineering
[2] Georgia Institute of Technology,Department of Materials Science and Engineering
[3] University of Notre Dame,Irvine Materials Research Institute
[4] University of California,Materials Science and Engineering
[5] University of California,Department of Physics and Astronomy
[6] U.S. Naval Research Laboratory,Center for Nanophase Materials Sciences
[7] University of California,Department of Electronic Engineering
[8] Los Angeles,Department of Materials Science and Engineering
[9] University of California,undefined
[10] Oak Ridge National Laboratory,undefined
[11] Kyung Hee University,undefined
[12] University of Illinois at Urbana-Champaign,undefined
来源
Nature Communications | / 12卷
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摘要
Interfaces impede heat flow in micro/nanostructured systems. Conventional theories for interfacial thermal transport were derived based on bulk phonon properties of the materials making up the interface without explicitly considering the atomistic interfacial details, which are found critical to correctly describing thermal boundary conductance. Recent theoretical studies predicted the existence of localized phonon modes at the interface which can play an important role in understanding interfacial thermal transport. However, experimental validation is still lacking. Through a combination of Raman spectroscopy and high-energy-resolution electron energy-loss spectroscopy in a scanning transmission electron microscope, we report the experimental observation of localized interfacial phonon modes at ~12 THz at a high-quality epitaxial Si-Ge interface. These modes are further confirmed using molecular dynamics simulations with a high-fidelity neural network interatomic potential, which also yield thermal boundary conductance agreeing well with that measured in time-domain thermoreflectance experiments. Simulations find that the interfacial phonon modes have an obvious contribution to the total thermal boundary conductance. Our findings significantly contribute to the understanding of interfacial thermal transport physics and have impact on engineering thermal boundary conductance at interfaces in applications such as electronics thermal management and thermoelectric energy conversion.
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