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跨越二硫化钼薄膜的准弹道热输运。

Quasi-Ballistic Thermal Transport Across MoS Thin Films.

作者信息

Sood Aditya, Xiong Feng, Chen Shunda, Cheaito Ramez, Lian Feifei, Asheghi Mehdi, Cui Yi, Donadio Davide, Goodson Kenneth E, Pop Eric

机构信息

Department of Electrical Engineering , Stanford University , Stanford , California 94305 , United States.

Department of Mechanical Engineering , Stanford University , Stanford , California 94305 , United States.

出版信息

Nano Lett. 2019 Apr 10;19(4):2434-2442. doi: 10.1021/acs.nanolett.8b05174. Epub 2019 Mar 7.

DOI:10.1021/acs.nanolett.8b05174
PMID:30808167
Abstract

Layered two-dimensional (2D) materials have highly anisotropic thermal properties between the in-plane and cross-plane directions. Conventionally, it is thought that cross-plane thermal conductivities (κ ) are low, and therefore c-axis phonon mean free paths (MFPs) are small. Here, we measure κ across MoS films of varying thickness (20-240 nm) and uncover evidence of very long c-axis phonon MFPs at room temperature in these layered semiconductors. Experimental data obtained using time-domain thermoreflectance (TDTR) are in good agreement with first-principles density functional theory (DFT). These calculations suggest that ∼50% of the heat is carried by phonons with MFP > 200 nm, exceeding kinetic theory estimates by nearly 2 orders of magnitude. Because of quasi-ballistic effects, the κ of nanometer-thin films of MoS scales with their thickness and the volumetric thermal resistance asymptotes to a nonzero value, ∼10 m K GW. This contributes as much as 30% to the total thermal resistance of a 20 nm thick film, the rest being limited by thermal interface resistance with the SiO substrate and top-side aluminum transducer. These findings are essential for understanding heat flow across nanometer-thin films of MoS for optoelectronic and thermoelectric applications.

摘要

层状二维(2D)材料在面内和面外方向具有高度各向异性的热性能。传统上,人们认为面外热导率(κ)较低,因此c轴声子平均自由程(MFP)较小。在此,我们测量了不同厚度(20 - 240 nm)的MoS薄膜的κ,并发现这些层状半导体在室温下存在非常长的c轴声子MFP的证据。使用时域热反射(TDTR)获得的实验数据与第一性原理密度泛函理论(DFT)高度吻合。这些计算表明,约50%的热量由MFP > 200 nm的声子携带,比动力学理论估计值高出近2个数量级。由于准弹道效应,MoS纳米薄膜的κ随其厚度变化,体积热阻渐近于一个非零值,约为10 mK·GW。这对20 nm厚薄膜的总热阻贡献高达30%,其余部分受与SiO₂衬底和顶部铝换能器的热界面电阻限制。这些发现对于理解MoS纳米薄膜在光电子和热电应用中的热流至关重要。

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