Laurenz Kremeyer, Tristan L. Britt, Bradley J. Siwick, Samuel C. Huberman
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引用次数: 0
摘要
50 多年前,人们就在液氦中观测到了像秒声这样的流体动力声子传输现象。最近,利用瞬态热光栅(TG)技术在 200 K 以上的石墨中观测到了秒声。在这项工作中,我们探索了超快电子漫散射模式中的声子流体动力传输和秒声振荡的特征,这可以提供时间、动量和分支分辨的声子系统激发状态信息,而非 TG 实验所能提供的信息。我们使用密度泛函理论并求解玻尔兹曼输运方程来确定时间分辨的非平衡声子群,并建立石墨中的声子输运模型。该模型还提供了计算单声子结构因子和扩散散射模式在热传输过程中的时间演化所需的信息,这些信息涵盖弹道、扩散和流体动力状态,在这些状态下可以观察到二次声子振荡对声子分布的影响。直接测量声子分布在各种热传输机制中的时间和空间变化情况,将为了解基本过程的基本物理原理提供新的视角。
Ultrafast electron diffuse scattering as a tool for studying phonon transport: Phonon hydrodynamics and second sound oscillations
Hydrodynamic phonon transport phenomena, like second sound, have been observed in liquid helium more than 50 years ago. More recently second sound has been observed in graphite at over 200 K using transient thermal grating (TG) techniques. In this work, we explore signatures of phonon hydrodynamic transport and second sound oscillations in ultrafast electron diffuse scattering patterns, which can provide time, momentum, and branch resolved information on the state-of-excitation of the phonon system beyond that available through TG experiments. We use the density functional theory and solve the Boltzmann transport equation to determine time-resolved non-equilibrium phonon populations and model phonon transport in graphite. This model also provides the information necessary to calculate the time evolution of one-phonon structure factors and diffuse scattering patterns during thermal transport covering ballistic, diffusive, and hydrodynamic regimes where the effect of a second sound oscillation on the phonon distribution is observed. Direct measurements of how the phonon distribution varies in time and space in various thermal transport regimes should yield new insights into the fundamental physics of the underlying processes.