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Effect of Nonlinearity Between Raman Shift and Laser Power on the Thermal Conductivity of Graphene Measured by Micro-Raman Spectroscopy

机译:拉曼位移和激光功率之间的非线性关系对微拉曼光谱法测量石墨烯导热系数的影响

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Confocal micro-Raman spectroscopy has been demonstrated to be an efficient method for the measurement of the thermal conductivity of graphene. It relies on the experimentally established near-linear dependence of the Raman peak shift on temperature. In earlier literature studies, the magnitude of the thermal conductivity was determined directly from the experimental data of the Raman peak shift as a function of the power of the laser. On the basis of the general principles of heat transfer at the continuum level we suggest that as the direct result of graphene's strongly negative temperature-dependent thermal conductivity, the temperature and associated Raman peak shift at the sample's center where the measurements are made should exhibit a strongly nonlinear, rather than a linear, dependence on the power of the laser. Such non-linearity was demonstrated analytically for the general experimental conditions encountered in practice. A reassessment of a set of literature data to take this effect into account indicated that the thermal conductivity values for single-layer graphene at or near ambient temperatures could be some 40% higher than those originally reported.
机译:共焦显微拉曼光谱已被证明是测量石墨烯导热系数的有效方法。它依赖于实验建立的拉曼峰移对温度的近线性依赖性。在较早的文献研究中,直接根据拉曼峰位移的实验数据确定热导率的大小,该实验数据是激光器功率的函数。根据连续量级传热的一般原理,我们建议,作为石墨烯强烈依赖于温度的导热系数的直接结果,在进行测量的样品中心温度和相关的拉曼峰位移应显示出强烈依赖于激光功率,而不是线性。对于实践中遇到的一般实验条件,通过分析证明了这种非线性。对一组文献数据进行重新评估以考虑到这种影响,表明在或接近环境温度时,单层石墨烯的导热系数可能比最初报道的导热系数高约40%。

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