热容
热导率
热扩散率
体积热容
材料科学
非谐性
热力学
热发射率
热的
热电效应
比热
大气温度范围
凝聚态物理
传热
热阻
复合材料
传热系数
热接触电导
物理
作者
Matthias T. Agne,Kazuki Imasato,Shashwat Anand,Kathleen Lee,Sabah K. Bux,Alex Zevalkink,Alexander J. E. Rettie,Duck Young Chung,Mercouri G. Kanatzidis,G. Jeffrey Snyder
标识
DOI:10.1016/j.mtphys.2018.10.001
摘要
The thermoelectric figure of merit reported for n-type Mg3(Sb,Bi)2 compounds has made these materials of great engineering significance, increasing the need for accurate evaluations of their thermal conductivity. Thermal conductivity is typically derived from measurements of thermal diffusivity and determination of the specific heat capacity. The uncertainty in this method (often 10% or more) is frequently attributed to measurement of heat capacity such that estimated values are often more accurate. Inconsistencies between reported thermal conductivity of Mg3(Sb,Bi)2 compounds may be attributed to the different values of heat capacity measured or used to calculate thermal conductivity. The high anharmonicity of these materials can lead to significant deviations at high temperatures from the Dulong-Petit heat capacity, which is often a reasonable substitute for measurements at high temperatures. Herein, a physics-based model is used to assess the magnitude of the heat capacity over the entire temperature range up to 800 K. The model agrees in magnitude with experimental low-temperature values and reproduces the linear slope observed in high-temperature data. Owing to the large scatter in experimental values of high-temperature heat capacity, the model is likely more accurate (within ±3%) than a measurement of a new sample even for doped or alloyed materials. It is found that heat capacity for the solid solution series can be simply described (for temperatures: 200K≤T≤800K) by the polynomial equation:cp[Jg−1K−1]=3NRMW(1+1.3×10−4T−4×103T−2),where 3NR=124.71Jmol−1K−1, MW is the molecular weight [gmol−1] of the formula unit being considered, and T is temperature in K. This heat capacity is recommended to be a standard value for reporting and comparing the thermal conductivity of Mg3(Sb,Bi)2 including doped or alloyed derivatives. A general form of the equation is given which can be used for other material systems.
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