Free energy and configurational entropy of liquid silica: fragile-to-strong crossover and polyamorphism
Ivan Saika-Voivod, Francesco Sciortino, Peter H. Poole

TL;DR
This study uses molecular dynamics simulations to connect the fragile-to-strong crossover in liquid silica to changes in its potential energy landscape and configurational entropy, providing insights into polyamorphism and the Kauzmann paradox.
Contribution
It demonstrates how the fragile-to-strong transition in liquid silica relates to PES properties and entropy changes, offering a thermodynamic perspective on polyamorphism.
Findings
FSC linked to inflection in inherent structure energy with temperature
Configurational entropy behavior suggests avoidance of Kauzmann paradox
PES changes related to potential liquid-liquid phase transition
Abstract
Recent molecular dynamics (MD) simulations of liquid silica, using the ``BKS'' model [Van Beest, Kramer and van Santen, Phys. Rev. Lett. {\bf 64}, 1955 (1990)], have demonstrated that the liquid undergoes a dynamical crossover from super-Arrhenius, or ``fragile'' behavior, to Arrhenius, or ``strong'' behavior, as temperature is decreased. From extensive MD simulations, we show that this fragile-to-strong crossover (FSC) can be connected to changes in the properties of the potential energy landscape, or surface (PES), of the liquid. To achieve this, we use thermodynamic integration to evaluate the absolute free energy of the liquid over a wide range of density and . We use this free energy data, along with the concept of ``inherent structures'' of the PES, to evaluate the absolute configurational entropy of the liquid. We find that the temperature dependence of the diffusion…
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