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首页> 外文期刊>Nanoscale >Measurement of the thermal conductivities of suspended MoS2 and MoSe2 by nanosecond ET-Raman without temperature calibration and laser absorption evaluation
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Measurement of the thermal conductivities of suspended MoS2 and MoSe2 by nanosecond ET-Raman without temperature calibration and laser absorption evaluation

机译:热导率的测量二硫化钼和纳秒ET-Raman MoSe2暂停没有温度校准和激光吸收评价

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Steady state Raman spectroscopy is the most widely used opto-thermal technique for measuring a 2D atomic-layer material's thermal conductivity. It requires the calibration of temperature coefficients of Raman properties and measurement/calculation of the absolution laser absorption in 2D materials. Such a requirement is very laborious and introduces very large measurement errors (of the order of 100%) and hinders gaining a precise and deep understanding of phonon-structure interactions in 2D materials. In this work, a novel nanosecond energy transport state resolved Raman (ns ET-Raman) technique is developed to resolve these critical issues and achieve unprecedented measurement precision, accuracy and ease of implementation. In ns ET-Raman, two energy transport states are constructed: steady state and nanosecond thermal transport and Raman probing. The ratio of the temperature rise under the two states eliminates the need for Raman temperature calibration and laser absorption evaluation. Four suspended MoS2 (45-115 nm thick) and four suspended MoSe2 (45-140 nm thick) samples are measured and compared using ns ET-Raman. With the increase of the sample thickness, the measured thermal conductivity increases from 40.0 +/- 2.2 to 74.3 +/- 3.2 W m(-1) K-1 for MoS2, and from 11.1 +/- 0.4 to 20.3 +/- 0.9 W m(-1) K-1 for MoSe2. This is attributed to the decreased significance of surface phonon scattering in thicker samples. The ns ET-Raman features the most advanced capability to measure the thermal conductivity of 2D materials and will find broad applications in studying low-dimensional materials.
机译:稳态拉曼光谱是最广泛的opto-thermal技术用于测量一个2 d原子层材料的导热性。需要校准的温度系数和拉曼特性宽恕的激光测量/计算在2 d吸收材料。很费力,介绍非常大测量误差(100%)和阻碍获得一个精确的和深刻的理解phonon-structure相互作用的二维材料。在这项工作中,小说纳秒能源运输州拉曼(ns ET-Raman)技术是解决开发了解决这些关键问题达到前所未有的测量精度,准确性和易于实现。ET-Raman,两个能源运输状态构造:稳态和纳秒热运输和喇曼探测。两种状态下温升消除拉曼温度校准和的必要性激光吸收的评估。(45 - 115 nm厚)和四个MoSe2暂停(45 - 140 nm厚)测量和样品使用ns ET-Raman相比。样品厚度,测量热电导率增加从40.0 + / - 2.2到74.3+ / - 3.2 W m(1)对二硫化钼、k - 1和11.1 + / -0.4到20.3 + / - 0.9 W m (1) MoSe2 k - 1。是由于减少的意义吗表面声子散射厚样本。ns ET-Raman功能最先进的功能测量导热系数的2 d材料,会发现广泛应用研究低维材料。

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