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从液态金属自动态结构因子的模态展开得到的态密度。

Density of states from mode expansion of the self-dynamic structure factor of a liquid metal.

机构信息

Dipartimento di Fisica e Astronomia, Università degli Studi di Firenze, via G. Sansone 1, I-50019 Sesto Fiorentino, Italy.

Consiglio Nazionale delle Ricerche, Istituto dei Sistemi Complessi, via Madonna del Piano 10, I-50019 Sesto Fiorentino, Italy.

出版信息

Phys Rev E. 2017 Jan;95(1-1):012141. doi: 10.1103/PhysRevE.95.012141. Epub 2017 Jan 23.

Abstract

We show that by exploiting multi-Lorentzian fits of the self-dynamic structure factor at various wave vectors it is possible to carefully perform the Q→0 extrapolation required to determine the spectrum Z(ω) of the velocity autocorrelation function of a liquid. The smooth Q dependence of the fit parameters makes their extrapolation to Q=0 a simple procedure from which Z(ω) becomes computable, with the great advantage of solving the problems related to resolution broadening of either experimental or simulated self-spectra. Determination of a single-particle property like the spectrum of the velocity autocorrelation function turns out to be crucial to understanding the whole dynamics of the liquid. In fact, we demonstrate a clear link between the collective mode frequencies and the shape of the frequency distribution Z(ω). In the specific case considered in this work, i.e., liquid Au, analysis of Z(ω) revealed the presence, along with propagating sound waves, of lower frequency modes that were not observed before by means of dynamic structure factor measurements. By exploiting ab initio simulations for this liquid metal we could also calculate the transverse current-current correlation spectra and clearly identify the transverse nature of the above mentioned less energetic modes. Evidence of propagating transverse excitations has actually been reported in various works in the recent literature. However, in some cases, like the present one, these modes are difficult to detect in density fluctuation spectra. We show here that the analysis of the single-particle dynamics is able to unveil their presence in a very effective way. The properties here shown to characterize Z(ω), and the information in it contained therefore allow us to identify it with the density of states (DoS) of the liquid. We demonstrate that only nonhydrodynamic modes contribute to the DoS, thus establishing its purely microscopic origin. Finally, as a by-product of this work, we provide our estimate of the self-diffusion coefficient of liquid gold just above melting.

摘要

我们表明,通过在各种波矢下对自动态结构因子进行多洛伦兹拟合,可以仔细进行 Q→0 外推,以确定液体速度自相关函数的谱 Z(ω)。拟合参数的平滑 Q 依赖性使得它们向 Q=0 的外推成为一个简单的过程,从而可以计算出 Z(ω),这具有解决实验或模拟自谱分辨率展宽相关问题的巨大优势。确定像速度自相关函数的谱这样的单个粒子性质对于理解液体的整体动力学至关重要。事实上,我们证明了集体模式频率与频率分布 Z(ω)的形状之间存在明显的联系。在这项工作中考虑的特定情况下,即液态金,对 Z(ω)的分析表明,除了传播声波之外,还存在以前通过动态结构因子测量未观察到的较低频率模式。通过对这种液态金属进行从头算模拟,我们还可以计算横向电流-电流相关谱,并清楚地识别出上述能量较低模式的横向性质。在最近的文献中,实际上已经有报道传播横向激发的证据。然而,在某些情况下,如本例中,这些模式在密度波动谱中很难检测到。我们在这里表明,对单粒子动力学的分析能够以非常有效的方式揭示它们的存在。这里显示的用于描述 Z(ω)的特性以及其中包含的信息使我们能够将其识别为液体的态密度 (DoS)。我们证明只有非流体动力学模式对 DoS 有贡献,从而确立了其纯粹的微观起源。最后,作为这项工作的副产品,我们提供了对液态金在熔点以上的自扩散系数的估计。

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