Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/111419
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Title: Control of thermodynamic liquid-liquid phase transition in a fragility-tunable glassy model
Authors: Qin, HR
Lee, CS 
Lü, YJ
Issue Date: Nov-2023
Source: Physical review E : covering statistical, nonlinear, biological, and soft matter physics, Nov. 2023, v. 108, no. 5, 055301
Abstract: We propose a distinguishable-particle glassy model suitable for the molecular dynamics simulation of structural glasses. This model can sensitively tune the kinetic fragility of supercooled liquids in a wide range by simply changing the distribution of particle interactions. In the model liquid, we observe the occurrence of thermodynamic liquid-liquid phase transitions above glass transition. The phase transition is facilitated by lowering fragility. Prior to the liquid-liquid phase transition, our simulations verify the existence of a constant-volume heat capacity maximum varying with fragility. We reveal the characteristics of the equilibrium potential energy landscape in liquids with different fragility. Within the Gaussian excitation model, the liquid-liquid transition as well as the response to fragility is reasonably interpreted in configuration space.
Publisher: American Physical Society
Journal: Physical review E : covering statistical, nonlinear, biological, and soft matter physics 
EISSN: 2470-0045
DOI: 10.1103/PhysRevE.108.055301
Rights: ©2023 American Physical Society
The following publication Qin, H.-R., Lee, C.-S., & Lü, Y.-J. (2023). Control of thermodynamic liquid-liquid phase transition in a fragility-tunable glassy model. Physical Review E, 108(5), 055301 is available at https://doi.org/10.1103/PhysRevE.108.055301.
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