论文标题
非谐性对无定形二氧化硅导热率的影响
Effect of anharmonicity on the thermal conductivity of amorphous silica
论文作者
论文摘要
正确考虑非谐度对于计算热导率很重要。但是,鼻孔如何影响无定形材料的热传导仍然是一个悬而未决的问题。在这项工作中,我们通过比较了谐波理论和非谐理论预测的热导率,揭示了非谐性对无形二氧化硅(A-SIO2)热导率的作用。此外,我们探讨了非谐性引起的频移对导热率预测的影响。发现通过最近开发的非谐波理论(准谐波绿色kubo近似,QHGK)计算的热导率高于艾伦和费尔德曼开发的谐波理论。与使用谐波振动频率计算的相比,使用非谐波振动频率也导致更高的导热率。非谐性诱导的频移是A-SIO2在较高温度下的热导率正温度依赖性的机制。对模式扩散率的进一步研究表明,尽管非谐调对locon的影响比散射子具有更大的影响,但由于非谐调引起的非谐调引起的引起的散射剂扩散率的增加而导致由于非谐度而增加的导热率。最后,发现分散子和扩散子之间的互相关对A-SIO2的导热性有最大的贡献,而LOCON主要通过与Diffusons的协作促进了热导率。这些结果为A-SIO2中热传导的性质提供了新的见解。
Proper consideration of anharmonicity is important for the calculation of the thermal conductivity. However, how the anharmonicity influences the thermal conduction in amorphous materials is still an open question. In this work, we uncover the role of anharmonicity on the thermal conductivity of amorphous silica (a-SiO2) by comparing the thermal conductivity predicted from the harmonic theory and the anharmonic theory. Moreover, we explore the effect of anharmonicity-induced frequency shift on the prediction of the thermal conductivity. It is found that the thermal conductivity calculated by the recently developed anharmonic theory (quasi-harmonic Green-Kubo approximation, QHGK) is higher than that by the harmonic theory developed by Allen and Feldman. The use of anharmonic vibrational frequencies also leads to a higher thermal conductivity compared with that calculated using harmonic vibrational frequencies. The anharmonicity induced frequency shifts is a mechanism for the positive temperature dependence of the thermal conductivity of a-SiO2 at higher temperatures. Further investigation on mode diffusivity suggests that although anharmonicity has larger influence on locons than diffusons, the increase of the thermal conductivity due to the anharmonicity is mainly contributed by the anharmonicity induced increase of the diffusivity of diffusons. Finally, it is found that the cross-correlations between diffusons and diffusons contribute most to the thermal conductivity of a-SiO2, and the locons contribute to the thermal conductivity mainly through collaboration with diffusons. These results offer new insights into the nature of the thermal conduction in a-SiO2.