Coupling and decoupling between translational and rotational dynamics in a tetrahedral molecular liquid
arXiv:2609.06613 · doi:10.1088/1572-9494/ae77c3
Abstract
The translational dynamics usually decouples earlier than the rotational in supercooled liquids as the temperature decreases, whereas the inverted scenario remains scarce reported. In this work, starting from the coarse-grained ortho-terphenyl model, we build a rigid tetrahedral structure model. It exhibits an earlier decoupling in rotation than in translation. The Stokes-Einstein-Debye relation breaks down while the Stokes-Einstein relation remains intact. The decoupling happens at approximately 2Tg similar as that observed in supercooled water. The rotation shows more heterogeneous dynamics than the translation at all temperatures. Our results suggest that the steric hindrance plays an important role in determining the decoupling between the translational and rotational dynamics.
References in corpus (6)
- Theoretical perspective on the glass transition and amorphous materials
- Fractional Stokes-Einstein and Debye-Stokes-Einstein relations in a network forming liquid
- Coupling/decoupling between translational and rotational dynamics in a supercooled molecular liquid
- Computational probes of molecular motion in the Lewis and Whanstrom model for ortho-terphenyl
- Thermodynamic and Dynamic Anomalies for Dumbbell Molecules Interacting with a Repulsive Ramp-Like Potential
- Decoupling of translational and rotational diffusion in quasi-2D colloidal fluids