On the Role of Internal Degrees of Freedom in Structural Relaxation of Ring-Tail Structured Liquids Across Temperature Regimes

Fuente: arXiv
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Auteurs principaux: Zeißler, Rolf, Krüger, Sandra, Horstmann, Robin, Böhmer, Till, Vogel, Michael, Blochowicz, Thomas
Format: Preprint
Publié: 2025
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author Zeißler, Rolf
Krüger, Sandra
Horstmann, Robin
Böhmer, Till
Vogel, Michael
Blochowicz, Thomas
author_facet Zeißler, Rolf
Krüger, Sandra
Horstmann, Robin
Böhmer, Till
Vogel, Michael
Blochowicz, Thomas
contents We investigate how anisotropic molecular rotation and internal molecular flexibility influence liquid dynamics in 1-phenylalkanes. To this end, we combine depolarized dynamic light scattering, nuclear magnetic resonance spectroscopy and molecular dynamics simulations. Our results show that anisotropic rotations and internal molecular flexibility substantially contribute to structural relaxation in the liquid state. However, their influence diminishes on entering the supercooled-liquid regime, where the relaxation behavior develops towards the previously identified generic relaxation shape, likely due to the increasing cooperativity of rotational dynamics. Because 1-phenylalkanes are simple model systems with similarities to many other molecular liquids, this study suggests that effects of anisotropic rotation and internal flexibility are relevant in various liquids with similar molecular complexity, and provides a proof of concept for how these effects can be identified.
format Preprint
id arxiv_https___arxiv_org_abs_2512_19863
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle On the Role of Internal Degrees of Freedom in Structural Relaxation of Ring-Tail Structured Liquids Across Temperature Regimes
Zeißler, Rolf
Krüger, Sandra
Horstmann, Robin
Böhmer, Till
Vogel, Michael
Blochowicz, Thomas
Soft Condensed Matter
We investigate how anisotropic molecular rotation and internal molecular flexibility influence liquid dynamics in 1-phenylalkanes. To this end, we combine depolarized dynamic light scattering, nuclear magnetic resonance spectroscopy and molecular dynamics simulations. Our results show that anisotropic rotations and internal molecular flexibility substantially contribute to structural relaxation in the liquid state. However, their influence diminishes on entering the supercooled-liquid regime, where the relaxation behavior develops towards the previously identified generic relaxation shape, likely due to the increasing cooperativity of rotational dynamics. Because 1-phenylalkanes are simple model systems with similarities to many other molecular liquids, this study suggests that effects of anisotropic rotation and internal flexibility are relevant in various liquids with similar molecular complexity, and provides a proof of concept for how these effects can be identified.
title On the Role of Internal Degrees of Freedom in Structural Relaxation of Ring-Tail Structured Liquids Across Temperature Regimes
topic Soft Condensed Matter
url https://arxiv.org/abs/2512.19863