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Dissolution of β-C(2)S Cement Clinker: Part 1 Molecular Dynamics (MD) Approach for Different Crystal Facets

A major concern in the modern cement industry is considering how to minimize the CO(2) footprint. Thus, cements based on belite, an impure clinker mineral (CaO)(2)SiO(2) (C(2)S in cement chemistry notation), which forms at lower temperatures, is a promising solution to develop eco-efficient and sust...

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Autores principales: Salah Uddin, Khondakar Mohammad, Izadifar, Mohammadreza, Ukrainczyk, Neven, Koenders, Eduardus, Middendorf, Bernhard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9500962/
https://www.ncbi.nlm.nih.gov/pubmed/36143700
http://dx.doi.org/10.3390/ma15186388
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author Salah Uddin, Khondakar Mohammad
Izadifar, Mohammadreza
Ukrainczyk, Neven
Koenders, Eduardus
Middendorf, Bernhard
author_facet Salah Uddin, Khondakar Mohammad
Izadifar, Mohammadreza
Ukrainczyk, Neven
Koenders, Eduardus
Middendorf, Bernhard
author_sort Salah Uddin, Khondakar Mohammad
collection PubMed
description A major concern in the modern cement industry is considering how to minimize the CO(2) footprint. Thus, cements based on belite, an impure clinker mineral (CaO)(2)SiO(2) (C(2)S in cement chemistry notation), which forms at lower temperatures, is a promising solution to develop eco-efficient and sustainable cement-based materials, used in enormous quantities. The slow reactivity of belite plays a critical role, but the dissolution mechanisms and kinetic rates at the atomistic scale are not known completely yet. This work aims to understand the dissolution behavior of different facets of β-C(2)S providing missing input data and an upscaling modeling approach to connect the atomistic scale to the sub-micro scale. First, a combined ReaxFF and metadynamics-based molecular dynamic approach are applied to compute the atomistic forward reaction rates (R(D)) of calcium (Ca) and silicate species of (100) facet of β-C(2)S considering the influence of crystal facets and crystal defects. To minimize the huge number of atomistic events possibilities, a generalized approach is proposed, based on the systematic removal of nearest neighbors’ crystal sites. This enables us to tabulate data on the forward reaction rates of most important atomistic scenarios, which are needed as input parameters to implement the Kinetic Monte Carlo (KMC) computational upscaling approach. The reason for the higher reactivity of the (100) facet compared to the (010) is explained.
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spelling pubmed-95009622022-09-24 Dissolution of β-C(2)S Cement Clinker: Part 1 Molecular Dynamics (MD) Approach for Different Crystal Facets Salah Uddin, Khondakar Mohammad Izadifar, Mohammadreza Ukrainczyk, Neven Koenders, Eduardus Middendorf, Bernhard Materials (Basel) Article A major concern in the modern cement industry is considering how to minimize the CO(2) footprint. Thus, cements based on belite, an impure clinker mineral (CaO)(2)SiO(2) (C(2)S in cement chemistry notation), which forms at lower temperatures, is a promising solution to develop eco-efficient and sustainable cement-based materials, used in enormous quantities. The slow reactivity of belite plays a critical role, but the dissolution mechanisms and kinetic rates at the atomistic scale are not known completely yet. This work aims to understand the dissolution behavior of different facets of β-C(2)S providing missing input data and an upscaling modeling approach to connect the atomistic scale to the sub-micro scale. First, a combined ReaxFF and metadynamics-based molecular dynamic approach are applied to compute the atomistic forward reaction rates (R(D)) of calcium (Ca) and silicate species of (100) facet of β-C(2)S considering the influence of crystal facets and crystal defects. To minimize the huge number of atomistic events possibilities, a generalized approach is proposed, based on the systematic removal of nearest neighbors’ crystal sites. This enables us to tabulate data on the forward reaction rates of most important atomistic scenarios, which are needed as input parameters to implement the Kinetic Monte Carlo (KMC) computational upscaling approach. The reason for the higher reactivity of the (100) facet compared to the (010) is explained. MDPI 2022-09-14 /pmc/articles/PMC9500962/ /pubmed/36143700 http://dx.doi.org/10.3390/ma15186388 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Salah Uddin, Khondakar Mohammad
Izadifar, Mohammadreza
Ukrainczyk, Neven
Koenders, Eduardus
Middendorf, Bernhard
Dissolution of β-C(2)S Cement Clinker: Part 1 Molecular Dynamics (MD) Approach for Different Crystal Facets
title Dissolution of β-C(2)S Cement Clinker: Part 1 Molecular Dynamics (MD) Approach for Different Crystal Facets
title_full Dissolution of β-C(2)S Cement Clinker: Part 1 Molecular Dynamics (MD) Approach for Different Crystal Facets
title_fullStr Dissolution of β-C(2)S Cement Clinker: Part 1 Molecular Dynamics (MD) Approach for Different Crystal Facets
title_full_unstemmed Dissolution of β-C(2)S Cement Clinker: Part 1 Molecular Dynamics (MD) Approach for Different Crystal Facets
title_short Dissolution of β-C(2)S Cement Clinker: Part 1 Molecular Dynamics (MD) Approach for Different Crystal Facets
title_sort dissolution of β-c(2)s cement clinker: part 1 molecular dynamics (md) approach for different crystal facets
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9500962/
https://www.ncbi.nlm.nih.gov/pubmed/36143700
http://dx.doi.org/10.3390/ma15186388
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