Probing Glass Formation in Perylene Derivatives via Atomic-Scale Simulations and Bayesian Regression
Artikel i vetenskaplig tidskrift, 2025

While the structural dynamics of chromophores are of interest for a range of applications, it is experimentally very challenging to resolve the underlying microscopic mechanisms. At the same time, glassy dynamics are also challenging for atomistic simulations due to the underlying dramatic slowdown over many orders of magnitude. Here, we address this issue by combining atomic scale simulations with autocorrelation function analysis and Bayesian regression, and apply this approach to a set of perylene derivatives as prototypical chromophores. The predicted glass transition temperatures and kinetic fragilities are in semiquantitative agreement with experimental data. We suggest that the remaining error could be caused by an overestimation of the intermolecular cohesion by the force field used in this work. By analyzing the underlying dynamics via the normal vector autocorrelation function, we are able to connect the β and α-relaxation processes in these materials to caged (or librational) dynamics and cooperative rotations of the molecules, respectively. The workflow presented in this work serves as a stepping stone toward understanding glassy dynamics in many-component mixtures of perylene derivatives and is readily extendable to other systems of chromophores.

Hydrocarbons

Glass transition

Diffusion

Aromatic compounds

Transport properties

Författare

Eric Lindgren

Chalmers, Fysik, Kondenserad materie- och materialteori

Jan Swenson

Chalmers, Fysik, Nano- och biofysik

Christian Müller

Chalmers, Kemi och kemiteknik, Tillämpad kemi

Paul Erhart

Chalmers, Fysik, Kondenserad materie- och materialteori

Journal of Physical Chemistry B

1520-6106 (ISSN) 1520-5207 (eISSN)

Vol. 129 26 6613-6619

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Ämneskategorier (SSIF 2025)

Den kondenserade materiens fysik

Fysikalisk kemi

DOI

10.1021/acs.jpcb.5c00837

Mer information

Senast uppdaterat

2025-07-12