Density of states and dynamical crossover in a dense fluid revealed by exponential mode analysis of the velocity autocorrelation function
S. Bellissima, M. Neumann, E. Guarini, U. Bafile, F. Barocchi

TL;DR
This study extends the analysis of the velocity autocorrelation function in dense Lennard-Jones fluids, revealing detailed dynamical processes and a transition to propagating excitations through exponential mode analysis.
Contribution
It introduces a novel interpretation of the VAF frequency spectrum as a density of states, linking exponential modes to specific collective dynamics and identifying a dynamical crossover related to transverse modes.
Findings
Identification of long-time tail in VAF
Assignment of spectral components to collective modes
Detection of a dynamical transition at higher densities
Abstract
Extending a previous study of the velocity autocorrelation function (VAF) in a simulated Lennard-Jones fluid to cover higher-density and lower-temperature states, we show that the recently demonstrated multiexponential expansion allows for a full account and understanding of the dynamical processes encompassed by a fundamental quantity as the VAF. In particular, besides obtaining evidence of a persisting long-time tail, we assign specific and unambiguous physical meanings to groups of exponential modes related to the longitudinal and transverse collective dynamics, respectively. We have made this possible by consistently introducing the interpretation of the VAF frequency spectrum as a global density of states in fluids, generalizing a solid-state concept, and by giving to specific spectral components, obtained via the VAF exponential expansion, the corresponding meaning of partial…
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