Seyf Hamid Reza, Lv Wei, Rohskopf Andrew, Henry Asegun
George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia, 30332, USA.
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia, 30332, USA.
Sci Rep. 2018 Feb 8;8(1):2627. doi: 10.1038/s41598-018-20704-7.
Current understanding of phonons is based on the phonon gas model (PGM), which is best rationalized for crystalline materials. However, most of the phonons/modes in disordered materials have a different character and thus may contribute to heat conduction in a fundamentally different way than is described by PGM. For the modes in crystals, which have sinusoidal character, one can separate the modes into two primary categories, namely acoustic and optical modes. However, for the modes in disordered materials, such designations may no longer rigorously apply. Nonetheless, the phase quotient (PQ) is a quantity that can be used to evaluate whether a mode more so shares a distinguishing property of acoustic vibrations manifested as a positive PQ, or a distinguishing property of an optical vibrations manifested as negative PQ. In thinking about this characteristic, there is essentially no intuition regarding the role of positive vs. negative PQ vibrational modes in disordered solids. Given this gap in understanding, herein we studied the respective contributions to thermal conductivity for several disordered solids as a function of PQ. The analysis sheds light on the importance of optical like/negative PQ modes in structurally/compositionally disordered solids, whereas in crystalline materials, the contributions of optical modes are usually small.
目前对声子的理解基于声子气体模型(PGM),该模型对晶体材料最为合理。然而,无序材料中的大多数声子/模式具有不同的特性,因此可能以与PGM所描述的方式根本不同的方式对热传导做出贡献。对于具有正弦特性的晶体中的模式,可以将这些模式分为两大类,即声学模式和光学模式。然而,对于无序材料中的模式,这样的分类可能不再严格适用。尽管如此,相位商(PQ)是一个可以用来评估一个模式更倾向于具有表现为正PQ的声学振动的区别特性,还是具有表现为负PQ的光学振动的区别特性的量。在思考这一特性时,对于无序固体中正负PQ振动模式的作用基本上没有直观认识。鉴于这种理解上的差距,在此我们研究了几种无序固体中作为PQ函数的热导率的各自贡献。该分析揭示了在结构/成分无序的固体中类光学/负PQ模式的重要性,而在晶体材料中,光学模式的贡献通常较小。