Probing the nucleation of iron in Earth’s core using MD simulations of supercooled liquids
Classical nucleation theory describes the formation of the first solids from supercooled liquids and predicts an average waiting time for a system to freeze as it is cooled below the melting temperature. For systems at low to moderate undercooling, waiting times are too long for freezing to be obser...
Main Authors: | , , , |
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Format: | Journal article |
Language: | English |
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American Physical Society
2021
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_version_ | 1797079681507262464 |
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author | Wilson, AJ Walker, AM Alfè, D Davies, CJ |
author_facet | Wilson, AJ Walker, AM Alfè, D Davies, CJ |
author_sort | Wilson, AJ |
collection | OXFORD |
description | Classical nucleation theory describes the formation of the first solids from supercooled liquids and predicts an average waiting time for a system to freeze as it is cooled below the melting temperature. For systems at low to moderate undercooling, waiting times are too long for freezing to be
observed via simulation. Here a system can be described by estimated thermodynamic properties, or by extrapolation from practical conditions where thermodynamic properties can be fit directly to simulations. In the case of crystallising Earth’s solid iron inner core, these thermodynamic parameters are not well known and waiting times from simulations must be extrapolated over ∼60 orders of magnitude. In this work, we develop a new approach negating the need for freezing to be observed. We collect statistics on solid-like particles in molecular dynamic simulations of supercooled liquids at 320 GPa. This allows estimation of waiting times at temperatures closer to the melting point than is accessible to other techniques and without prior thermodynamic insight or assumption. Our
method describes the behaviour of nucleation at otherwise inaccessible conditions such that the nucleation of any system at small undercooling can be characterised alongside the thermodynamic quantities which define the first formed solids. |
first_indexed | 2024-03-07T00:49:13Z |
format | Journal article |
id | oxford-uuid:85cb6f85-2a41-4e73-9c83-e44b7f82289f |
institution | University of Oxford |
language | English |
last_indexed | 2024-03-07T00:49:13Z |
publishDate | 2021 |
publisher | American Physical Society |
record_format | dspace |
spelling | oxford-uuid:85cb6f85-2a41-4e73-9c83-e44b7f82289f2022-03-26T21:59:50ZProbing the nucleation of iron in Earth’s core using MD simulations of supercooled liquidsJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:85cb6f85-2a41-4e73-9c83-e44b7f82289fEnglishSymplectic ElementsAmerican Physical Society2021Wilson, AJWalker, AM Alfè, DDavies, CJClassical nucleation theory describes the formation of the first solids from supercooled liquids and predicts an average waiting time for a system to freeze as it is cooled below the melting temperature. For systems at low to moderate undercooling, waiting times are too long for freezing to be observed via simulation. Here a system can be described by estimated thermodynamic properties, or by extrapolation from practical conditions where thermodynamic properties can be fit directly to simulations. In the case of crystallising Earth’s solid iron inner core, these thermodynamic parameters are not well known and waiting times from simulations must be extrapolated over ∼60 orders of magnitude. In this work, we develop a new approach negating the need for freezing to be observed. We collect statistics on solid-like particles in molecular dynamic simulations of supercooled liquids at 320 GPa. This allows estimation of waiting times at temperatures closer to the melting point than is accessible to other techniques and without prior thermodynamic insight or assumption. Our method describes the behaviour of nucleation at otherwise inaccessible conditions such that the nucleation of any system at small undercooling can be characterised alongside the thermodynamic quantities which define the first formed solids. |
spellingShingle | Wilson, AJ Walker, AM Alfè, D Davies, CJ Probing the nucleation of iron in Earth’s core using MD simulations of supercooled liquids |
title | Probing the nucleation of iron in Earth’s core using MD simulations of supercooled liquids |
title_full | Probing the nucleation of iron in Earth’s core using MD simulations of supercooled liquids |
title_fullStr | Probing the nucleation of iron in Earth’s core using MD simulations of supercooled liquids |
title_full_unstemmed | Probing the nucleation of iron in Earth’s core using MD simulations of supercooled liquids |
title_short | Probing the nucleation of iron in Earth’s core using MD simulations of supercooled liquids |
title_sort | probing the nucleation of iron in earth s core using md simulations of supercooled liquids |
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