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Normal Phonon-Phonon Scattering Processes and the Thermal Conductivity of Germanium Crystals with Isotope Disorder

机译:正常声子-声子的散射过程和锗晶体的无序热导率

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The influence of the normal phonon-phonon scattering processes on the thermal conductivity was theoretically studied for germanium crystals with various degrees of the isotope disorder. The theory takes into account redistribution of the phonon momentum in the normal scattering processes both inside each oscillation branch (Simons mechanism) and between various phonon oscillation branches (Herring mechanism). Contributions to the thermal conductivity due to the drift mobility of the longitudinal and transverse phonons are analyzed. It is shown that the momentum redistribution between longitudinal and transverse phonons according to the Herring relaxation mechanism leads to a significant suppression of the drift motions (and to the corresponding drop in contribution to the thermal conductivity) of the longitudinal phonons in isotopically pure germanium crystals. The results of the thermal conductivity calculations involving the Herring relaxation mechanism agree well with the experimental data available for germanium crystals with various degrees of the isotope disorder.
机译:从理论上研究了正常的声子-声子散射过程对热导率的影响,研究了不同程度的同位素无序的锗晶体。该理论考虑了在正常散射过程中声子动量的重新分布,该散射过程既在每个振荡分支内部(西蒙斯机制),又在各个声子振荡分支之间(赫林机制)。分析了由于纵向和横向声子的漂移迁移率对热导率的贡献。结果表明,根据鲱鱼弛豫机理,纵向和横向声子之间的动量重新分布会导致对同位素纯锗晶体中纵向声子的漂移运动的显着抑制(以及对导热系数的相应下降)。涉及鲱鱼弛豫机制的热导率计算结果与具有不同程度的同位素无序的锗晶体的实验数据非常吻合。

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