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声子工程极端热导率材料。

Phonon-engineered extreme thermal conductivity materials.

机构信息

Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.

出版信息

Nat Mater. 2021 Sep;20(9):1188-1202. doi: 10.1038/s41563-021-00918-3. Epub 2021 Mar 8.

Abstract

Materials with ultrahigh or low thermal conductivity are desirable for many technological applications, such as thermal management of electronic and photonic devices, heat exchangers, energy converters and thermal insulation. Recent advances in simulation tools (first principles, the atomistic Green's function and molecular dynamics) and experimental techniques (pump-probe techniques and microfabricated platforms) have led to new insights on phonon transport and scattering in materials and the discovery of new thermal materials, and are enabling the engineering of phonons towards desired thermal properties. We review recent discoveries of both inorganic and organic materials with ultrahigh and low thermal conductivity, highlighting heat-conduction physics, strategies used to change thermal conductivity, and future directions to achieve extreme thermal conductivities in solid-state materials.

摘要

具有超高或超低热导率的材料在许多技术应用中是理想的,例如电子和光子器件、热交换器、能源转换器和隔热的热管理。模拟工具(第一性原理、原子格林函数和分子动力学)和实验技术(泵浦探测技术和微加工平台)的最新进展,导致了对材料中声子输运和散射的新见解,并发现了新的热材料,使声子工程朝着所需的热性能发展成为可能。我们综述了最近发现的具有超高和超低热导率的无机和有机材料,突出了热传导物理、改变热导率所使用的策略,以及在固态材料中实现极端热导率的未来方向。

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