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EFFECT OF PHONON DISPERSION ON TRANSPORT PROPERTIES OF SINGLE-CRYSTALLINE DIELECTRICS

机译:声子色散对单晶介电体传输特性的影响

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Thermal conductivity modeling using the Debye approximation can significantly reduce the complexity involved in the evaluation of thermal conductivity integral. Nevertheless, there are several compelling reasons (e.g., inconsistency between the estimations of the density of states used for heat capacity and thermal conductivity) that motivate more detailed modeling of the phonon dispersion in silicon or other diamond-like dielectrics. This manuscript presents closed-form expressions for the dispersion of the longitudinal and transverse modes in diamond-like dielectrics, which are then used to estimate the isotopic scattering rate, phonon spectrum and specific heat. The combinations of the above parameters are then used to predict the thermal conductivity of the bulk silicon and germanium with orders of magnitude variation in the mass fluctuation of isotopes and for the temperature range 2 to 1000 K. While this approach offers an elegant and consistent account of the phonon dispersion in diamond-like materials, however, provides no additional insight into the relative contributions of the longitudinal and transverse phonons to the heat transport.
机译:使用Debye逼近进行热导率建模可以显着降低热导率积分评估的复杂性。然而,存在一些令人信服的原因(例如,用于热容和热导率的状态密度的估计之间的不一致)促使对硅或其他类金刚石电介质中的声子分散进行更详细的建模。该手稿提供了封闭形式的表达式,用于纵向和横向模式在类金刚石介质中的分散,然后将其用于估算同位素散射速率,声子谱和比热。然后,将上述参数的组合用于预测大块硅和锗的热导率,并且在2至1000 K的温度范围内,同位素的质量波动会出现数量级的变化。然而,声子在类金刚石材料中的分散情况的研究,没有提供有关纵向和横向声子对热传递的相对贡献的其他见解。

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