论文标题

二聚体嘎嘎作用模式在出色的声音导体中诱导低导热率

Dimer rattling mode induced low thermal conductivity in an excellent acoustic conductor

论文作者

Qi, Ji, Dong, Baojuan, Zhang, Zhe, Zhang, Zhao, Chen, Yanna, Zhang, Qiang, Danilkin, Sergey, Chen, Xi, Fu, Liangwei, Jiang, Xiaoming, Chai, Guozhi, Hiroi, Satoshi, Ohara, Koji, Zhang, Zongteng, Ren, Weijun, Yang, Teng, Zhou, Jianshi, Osami, Sakata, He, Jiaqing, Yu, Dehong, Li, Bing, Zhang, Zhidong

论文摘要

具有较大声速的实心表现出更高的晶格导热率(K_ {LAT})。 Diamond是一个突出的实例,其平均音速为14400 M S-1,K_ {LAT}为2300 W M-1 K-1。在这里,我们报告了一个极端的例外,Cup2的平均声速为4155 M S-1,与GAAS相当,但是单晶在室温下显示出非常低的晶格导热率,约为4 W M-1 K-1,比GAAS小的数量级。为了理解这种令人困惑的热运输行为,我们通过将中子散射技术与第一原理模拟结合在一起,对原子结构和晶格动力学进行了彻底研究。 Cu原子形成二聚体夹在分层的P原子网络之间,二聚体振动为嘎嘎声模式,频率约为11 MeV。该模式表现为非常昂贵的声音,并且强烈散布了声音声子,以达到低k_ {lat}。这种分层结构中的这种二聚体嘎嘎作用可能会提供前所未有的策略,用于抑制热传导而无需涉及原子障碍。

A solid with larger sound speeds exhibits higher lattice thermal conductivity (k_{lat}). Diamond is a prominent instance where its mean sound speed is 14400 m s-1 and k_{lat} is 2300 W m-1 K-1. Here, we report an extreme exception that CuP2 has quite large mean sound speeds of 4155 m s-1, comparable to GaAs, but the single crystals show a very low lattice thermal conductivity of about 4 W m-1 K-1 at room temperature, one order of magnitude smaller than GaAs. To understand such a puzzling thermal transport behavior, we have thoroughly investigated the atomic structure and lattice dynamics by combining neutron scattering techniques with first-principles simulations. Cu atoms form dimers sandwiched in between the layered P atomic networks and the dimers vibrate as a rattling mode with frequency around 11 meV. This mode is manifested to be remarkably anharmonic and strongly scatters acoustic phonons to achieve the low k_{lat}. Such a dimer rattling behavior in layered structures might offer an unprecedented strategy for suppressing thermal conduction without involving atomic disorder.

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