Combined atomic-scale modelling and experimental studies of nucleation in the solid state.

The process of solid-state nucleation in highly supersaturated solid solutions has been investigated on the atomic scale by a combination of three-dimensional atom probe analysis and atomistic modelling using dynamical Ising models. In binary Cu-Co alloys, a simple atom-exchange model with a single...

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Main Authors: Cerezo, A, Hirosawa, S, Rozdilsky, I, Smith, G
Format: Journal article
Language:English
Published: 2003
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author Cerezo, A
Hirosawa, S
Rozdilsky, I
Smith, G
author_facet Cerezo, A
Hirosawa, S
Rozdilsky, I
Smith, G
author_sort Cerezo, A
collection OXFORD
description The process of solid-state nucleation in highly supersaturated solid solutions has been investigated on the atomic scale by a combination of three-dimensional atom probe analysis and atomistic modelling using dynamical Ising models. In binary Cu-Co alloys, a simple atom-exchange model with a single thermodynamic parameter derived from phase-diagram data was able to reproduce the atomic-scale microstructures observed in the atom probe, and also match the measured peak precipitate density. Modelling solute effects in complex copper-bearing steels required a more sophisticated model based on a vacancy-hopping mechanism and a larger number of thermodynamic and kinetic parameters derived from independent experimental data and theoretical calculations. The model gave an excellent match to the experimentally observed microstructures, and it reproduced features such as the clustering of Ni and Mn before the precipitation of Cu. The model also allowed time-dependent behaviour to be investigated, and it showed that solute clustering of Ni and Mn occurs during the cooling of the alloy. These clusters then act as heterogeneous nucleation sites for the formation of copper precipitates. Understanding such complex solute interaction effects through combined experiment and modelling is an essential step to controlling nucleation and hence the fine-scale microstructures in advanced engineering alloys.
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spelling oxford-uuid:1134fded-0585-4df7-aa32-474c972965912022-03-26T10:00:59ZCombined atomic-scale modelling and experimental studies of nucleation in the solid state.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:1134fded-0585-4df7-aa32-474c97296591EnglishSymplectic Elements at Oxford2003Cerezo, AHirosawa, SRozdilsky, ISmith, GThe process of solid-state nucleation in highly supersaturated solid solutions has been investigated on the atomic scale by a combination of three-dimensional atom probe analysis and atomistic modelling using dynamical Ising models. In binary Cu-Co alloys, a simple atom-exchange model with a single thermodynamic parameter derived from phase-diagram data was able to reproduce the atomic-scale microstructures observed in the atom probe, and also match the measured peak precipitate density. Modelling solute effects in complex copper-bearing steels required a more sophisticated model based on a vacancy-hopping mechanism and a larger number of thermodynamic and kinetic parameters derived from independent experimental data and theoretical calculations. The model gave an excellent match to the experimentally observed microstructures, and it reproduced features such as the clustering of Ni and Mn before the precipitation of Cu. The model also allowed time-dependent behaviour to be investigated, and it showed that solute clustering of Ni and Mn occurs during the cooling of the alloy. These clusters then act as heterogeneous nucleation sites for the formation of copper precipitates. Understanding such complex solute interaction effects through combined experiment and modelling is an essential step to controlling nucleation and hence the fine-scale microstructures in advanced engineering alloys.
spellingShingle Cerezo, A
Hirosawa, S
Rozdilsky, I
Smith, G
Combined atomic-scale modelling and experimental studies of nucleation in the solid state.
title Combined atomic-scale modelling and experimental studies of nucleation in the solid state.
title_full Combined atomic-scale modelling and experimental studies of nucleation in the solid state.
title_fullStr Combined atomic-scale modelling and experimental studies of nucleation in the solid state.
title_full_unstemmed Combined atomic-scale modelling and experimental studies of nucleation in the solid state.
title_short Combined atomic-scale modelling and experimental studies of nucleation in the solid state.
title_sort combined atomic scale modelling and experimental studies of nucleation in the solid state
work_keys_str_mv AT cerezoa combinedatomicscalemodellingandexperimentalstudiesofnucleationinthesolidstate
AT hirosawas combinedatomicscalemodellingandexperimentalstudiesofnucleationinthesolidstate
AT rozdilskyi combinedatomicscalemodellingandexperimentalstudiesofnucleationinthesolidstate
AT smithg combinedatomicscalemodellingandexperimentalstudiesofnucleationinthesolidstate