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液态金属中横向电流自相关函数中单粒子动力学的作用。

Role of the single-particle dynamics in the transverse current autocorrelation function 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 di Fisica Applicata "Nello Carrara," Via Madonna del Piano 10, I-50019 Sesto Fiorentino, Italy.

出版信息

J Chem Phys. 2023 Jun 21;158(23). doi: 10.1063/5.0152090.

Abstract

A recent simulation study of the transverse current autocorrelation of the Lennard-Jones fluid [Guarini et al., Phys. Rev. E 107, 014139 (2023)] revealed that this function can be perfectly described within the exponential expansion theory [Barocchi et al., Phys. Rev. E 85, 022102 (2012)]. However, above a certain wavevector Q, not only transverse collective excitations were found to propagate in the fluid, but a second oscillatory component of unclear origin (therefore called X) must be considered to fully account for the time dependence of the correlation function. Here, we present an extended investigation of the transverse current autocorrelation of liquid Au as obtained by ab initio molecular dynamics in the very wide range of wavevectors 5.7 ≤ Q ≤ 32.8 nm-1 in order to also follow the behavior of the X component, if present, at large Q values. A joint analysis of the transverse current spectrum and its self-portion indicates that the second oscillatory component arises from the longitudinal dynamics, as suggested by its close resemblance with the previously determined component accounting for the longitudinal part of the density of states. We conclude that such a mode, albeit featuring a merely transverse property, fingerprints the effect of longitudinal collective excitations on single-particle dynamics, rather than arising from a possible coupling between transverse and longitudinal acoustic waves.

摘要

最近一项关于 Lennard-Jones 流体横向电流自相关的模拟研究[Guarini 等人,Phys. Rev. E 107, 014139 (2023)]表明,该函数可以在指数展开理论[Barocchi 等人,Phys. Rev. E 85, 022102 (2012)]内得到完美描述。然而,在某个波矢 Q 以上,不仅发现横向集体激发在流体中传播,而且必须考虑第二个来源不明的振荡分量(因此称为 X),以充分说明相关函数的时间依赖性。在这里,我们对通过从头算分子动力学获得的液体 Au 的横向电流自相关进行了扩展研究,波矢范围非常宽,为 5.7≤Q≤32.8nm-1,以便在大 Q 值时也能跟踪 X 分量的行为(如果存在的话)。横向电流谱及其自部分的联合分析表明,第二个振荡分量来自于纵向动力学,正如其与以前确定的用于描述态密度纵向部分的分量非常相似所表明的那样。我们的结论是,这样的模式,尽管具有仅仅是横向的性质,但却能记录纵向集体激发对单粒子动力学的影响,而不是来自横向和纵向声波之间的可能耦合。

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