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Thermodynamics, formation dynamics, and structural correlations in the bulk amorphous phase of the phase-field crystal model

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posted on 2022-12-13, 09:13 authored by Shaho Abdalla, Andrew ArcherAndrew Archer, Laszlo Granasy, Gyula Toth

We investigate bulk thermodynamic and microscopic structural properties of amorphous solids in the framework of the phase-field crystal (PFC) model. These are metastable states with a non-uniform density distribution having no long-range order. From extensive numerical simulations we determine the distribution of free energy density values in varying size amorphous systems and also the point-to-set correlation length, which is the radius of the largest volume of amorphous one can take while still having the particle arrangements within the volume determined by the particle ordering at the surface of the chosen volume. We find that in the thermodynamic limit, the free energy density of the amorphous tends to a value that has a slight dependence on the initial state from which it was formed – i.e. it has a formation history dependence. The amorphous phase is observed to form on both sides of the liquid linear-stability limit, showing that the liquid to amorphous transition is first order, with an associated finite free energy barrier when the liquid is metastable. In our simulations this is demonstrated when noise in the initial density distribution is used to induce nucleation events from the metastable liquid. Depending on the strength of the initial noise, we observe a variety of nucleation pathways, in agreement with previous results for the PFC model, and which show that amorphous precursor mediated multi-step crystal nucleation can occur in colloidal systems.

Funding

Quasicrystals: how and why do they form?

Engineering and Physical Sciences Research Council

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National Agency for Research, Development, and Innovation (NKFIH), Hungary under contract No. KKP-126749

History

School

  • Science

Department

  • Mathematical Sciences

Published in

The Journal of Chemical Physics

Volume

157

Issue

16

Publisher

AIP Publishing

Version

  • VoR (Version of Record)

Rights holder

© The Authors

Publisher statement

This is an Open Access article published by AIP Publishing. All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

Acceptance date

2022-09-11

Publication date

2022-10-24

Copyright date

2022

ISSN

0021-9606

eISSN

1089-7690

Language

  • en

Depositor

Prof Andrew Archer. Deposit date: 12 September 2022

Article number

164502

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