材料科学
热导率
凝聚态物理
合金
立方晶系
热力学
散射
高熵合金
晶体结构
热传导
电导率
电子
冶金
结晶学
物理
化学
物理化学
复合材料
光学
量子力学
作者
Michael J. Abere,Elbara Ziade,Ping Lu,Christopher B. Saltonstall,Xiaojun Gu,Wendelin J. Wright,Nicolas Argibay,Andrew Kustas
标识
DOI:10.1016/j.scriptamat.2021.114330
摘要
A predictive analytical model for the thermal conductivity of Aluminum/transition metal based high-entropy alloys based on contributions from the electron and lattice subsystems is presented. Lattice conductivity is modeled as an oscillator damped by electron-phonon and defect scattering. Electron subsystem conductivity is dominated by scattering from the aperiodic crystal potential arising from alloying atom induced lattice disorder; its effect was quantitatively calculated using a virtual crystal approximation. We show that model predictions agree with published values and for an exemplar high-entropy alloy largely based on transition (i.e., non-refractory) elements, AlxCoCrCuyFeNi. Within this alloy system, the crystal structure varies between face centered cubic and body centered cubic depending on composition and temperature, and it was found that thermal conductivity behaves as a weighted-average composite of the multiple phases.
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