The structural relaxation of deeply supercooled liquids appears to have a generic one-over-square-root-of-frequency high-frequency spectrum for single-molecule dynamics, with dielectric deviations caused by dipolar cross-correlations.
Glassy Dynamics from First-Principles Simulations
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abstract
The microscopic understanding of the dramatic increase in viscosity of liquids when cooled towards the glass transition is a major unresolved issue in condensed matter physics. Here, we use machine learning methods to accelerate molecular dynamics simulations with first-principles accuracy for the glass-former toluene. We show that the increase in viscosity is intimately linked to the increasing number of dynamically correlated molecules $N^*$. While certain hallmark features of glassy dynamics, like physical aging, are linked to $N^*$ as well, others, like relaxation stretching, are not.
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On the Spectral Shape of the Structural Relaxation in Deeply Supercooled Liquids
The structural relaxation of deeply supercooled liquids appears to have a generic one-over-square-root-of-frequency high-frequency spectrum for single-molecule dynamics, with dielectric deviations caused by dipolar cross-correlations.