材料科学
热导率
声子
热传导
无定形固体
各向同性
热的
制作
离子键合
复合材料
化学物理
热力学
凝聚态物理
离子
结晶学
病理
物理
化学
医学
量子力学
替代医学
作者
Jeffrey L. Braun,Christina M. Rost,Mina Lim,Ashutosh Giri,David H. Olson,George N. Kotsonis,Gheorghe Stan,Donald W. Brenner,Jon Paul Maria,Patrick E. Hopkins
标识
DOI:10.1002/adma.201805004
摘要
Manipulating a crystalline material's configurational entropy through the introduction of unique atomic species can produce novel materials with desirable mechanical and electrical properties. From a thermal transport perspective, large differences between elemental properties such as mass and interatomic force can reduce the rate at which phonons carry heat and thus reduce the thermal conductivity. Recent advances in materials synthesis are enabling the fabrication of entropy-stabilized ceramics, opening the door for understanding the implications of extreme disorder on thermal transport. Measuring the structural, mechanical, and thermal properties of single-crystal entropy-stabilized oxides, it is shown that local ionic charge disorder can effectively reduce thermal conductivity without compromising mechanical stiffness. These materials demonstrate similar thermal conductivities to their amorphous counterparts, in agreement with the theoretical minimum limit, resulting in this class of material possessing the highest ratio of elastic modulus to thermal conductivity of any isotropic crystal.
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