Super-Arrhenius temperature dependent viscosity due to liquid-liquid phase separation in the super-cooled Kob-Andersen model

In this study, a recently introduced order parameter called the weighted coordination number (WCN) is used to study the liquid-liquid (LL) phase separation, indicating temperature-dependent coarsening of the LL interface as a possible mechanism for the glass transition. The well-established glass-forming Kob-Andersen binary Lennard-Jones system was used for this study. The gas-liquid binodal line was reconstructed using the WCNs, and the same approach is extended to study the liquid-liquid binodal line. Systems of various densities are instantaneously quenched from high to low temperatures where a liquid-liquid separation is observed. Densities and the composition of each liquid state are used to check the level rule, along with density and pressure profiles, demonstrating local equilibrium of liquid-liquid phase separation.The transition from the liquid-liquid phase separation in the supercooled region to the glass transition region is modeled by adopting a Markov Network Model to estimate the temperature dependent viscosity using liquid-liquid interfacial information from the classification.

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Publication Details

Journal
Journal of Physics Condensed Matter
Published
2026-09-17
DOI
https://doi.org/10.1088/1361-648x/aea95b
Primary Topic
Material Dynamics and Properties
Type
article
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Super-Arrhenius temperature dependent viscosity due to liquid-liquid phase separation in the super-cooled Kob-Andersen model

Jayme Brickley, Xueyu Song
Journal of Physics Condensed Matter
Material Dynamics and Properties
article

Super-Arrhenius temperature dependent viscosity due to liquid-liquid phase separation in the super-cooled Kob-Andersen model

Jayme Brickley, Xueyu Song
article en

Abstract

In this study, a recently introduced order parameter called the weighted coordination number (WCN) is used to study the liquid-liquid (LL) phase separation, indicating temperature-dependent coarsening of the LL interface as a possible mechanism for the glass transition. The well-established glass-forming Kob-Andersen binary Lennard-Jones system was used for this study. The gas-liquid binodal line was reconstructed using the WCNs, and the same approach is extended to study the liquid-liquid binodal line. Systems of various densities are instantaneously quenched from high to low temperatures where a liquid-liquid separation is observed. Densities and the composition of each liquid state are used to check the level rule, along with density and pressure profiles, demonstrating local equilibrium of liquid-liquid phase separation.The transition from the liquid-liquid phase separation in the supercooled region to the glass transition region is modeled by adopting a Markov Network Model to estimate the temperature dependent viscosity using liquid-liquid interfacial information from the classification.

Journal of Physics Condensed Matter
Iowa State University (US)
Openalex Percentile: Top 91%
Material Dynamics and Properties
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Super-Arrhenius temperature dependent viscosity due to liquid-liquid phase separation in the super-cooled Kob-Andersen model — Jayme Brickley, Xueyu Song · Journal of Physics Condensed Matter (2026) | TGRS Research Map | TGRS