论文标题

液体中能量和动量扩散的通用下限

Universal lower bounds on energy and momentum diffusion in liquids

论文作者

Trachenko, K., Baggioli, M., Behnia, K., Brazhkin, V. V.

论文摘要

热能可以通过不同的机制来进行,包括单个颗粒或集体激发。导热率是系统特异性的,并且显示了当前在不同系统中探索的各种行为,包括绝缘体,奇怪的金属和库层超导体。在这里,我们表明,尽管热传输似乎具有复杂性,但液体和超临界液的热扩散率$α$具有下限,每个系统的基本物理常数为$α_m= \ frac {1}} {1} {1} {4π} {4π} {4π} \ frac {\ hbar} $ _ $}是电子和分子质量。新引入的基本热扩散率仅取决于$ \ hbar $和质子与电子质量比的绝对下限。我们通过广泛的实验数据备份了这一结果。我们还表明,$α$的理论最小值与运动粘度的基本下限$ν_m$相吻合。与实验一致,这表明了两种不同特性的通用下限,即能量和动量扩散,以及在其最小值处的两个传输机制之间存在令人惊讶的相关性。我们观察到$α_m$在相图上给出了最小值,除了临界点附近,而$ν_m$给出了整个相图的最低限度。

Thermal energy can be conducted by different mechanisms including by single particles or collective excitations. Thermal conductivity is system-specific and shows a richness of behaviors currently explored in different systems including insulators, strange metals and cuprate superconductors. Here, we show that despite the seeming complexity of thermal transport, the thermal diffusivity $α$ of liquids and supercritical fluids has a lower bound which is fixed by fundamental physical constants for each system as $α_m=\frac{1}{4π}\frac{\hbar}{\sqrt{m_em}}$, where $m_e$ and $m$ are electron and molecule masses. The newly introduced elementary thermal diffusivity has an absolute lower bound dependent on $\hbar$ and the proton-to-electron mass ratio only. We back up this result by a wide range of experimental data. We also show that theoretical minima of $α$ coincide with the fundamental lower limit of kinematic viscosity $ν_m$. Consistent with experiments, this points to a universal lower bound for two distinct properties, energy and momentum diffusion, and a surprising correlation between the two transport mechanisms at their minima. We observe that $α_m$ gives the minimum on the phase diagram except in the vicinity of the critical point, whereas $ν_m$ gives the minimum on the entire phase diagram.

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