Development of an embedded-atom method potential of Ni-Mo alloys for electrocatalysis / surface compositional studies

Fuente: arXiv
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Autores principales: Gupta, Ambesh, Dahale, Chinmay, Maiti, Soumyadipta, Srinivasan, Sriram Goverapet, Rai, Beena
Formato: Preprint
Publicado: 2024
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author Gupta, Ambesh
Dahale, Chinmay
Maiti, Soumyadipta
Srinivasan, Sriram Goverapet
Rai, Beena
author_facet Gupta, Ambesh
Dahale, Chinmay
Maiti, Soumyadipta
Srinivasan, Sriram Goverapet
Rai, Beena
contents Ni-Mo superalloys have emerged as materials of choice for a diverse array of applications owing to their superior mechanical properties, exceptional corrosion and oxidation resistance, electrocatalytic behavior, and surface stability. Understanding and optimizing the surface composition of Ni-Mo alloys is critical for enhancing their performance in practical applications. Traditional experimental surface analysis techniques, while informative, are often prohibitive in terms of cost and time. Likewise, theoretical approaches such as first-principle calculations demand substantial computational resources and it is difficult to simulate large structures. This study introduces an alternative approach utilizing hybrid Monte-Carlo / Molecular Dynamics (MC/MD) simulations to investigate the surface composition of Ni-Mo alloys. We report the development of an optimized Embedded-Atom Method (EAM) potential specifically for Ni-Mo alloys, carefully parameterized using empirical lattice constants and formation energies of elemental and face-centered cubic (FCC) Ni-Mo solid solution alloys. The reliability of the EAM potential is corroborated via the evaluation of equations of state, with a particular focus on reproducing structural properties. Utilizing this validated potential, MC/MD simulations were performed to understand the depth-wise variations in the compositions of Ni-Mo alloy nanoparticles and extended surfaces. These simulations reveal a preferential segregation of nickel on surface, and molybdenum in sub-surface layer. Due to this preferential segregation, it is imperative to consider surface segregation while tailoring the surface properties for targeted applications.
format Preprint
id arxiv_https___arxiv_org_abs_2409_07320
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Development of an embedded-atom method potential of Ni-Mo alloys for electrocatalysis / surface compositional studies
Gupta, Ambesh
Dahale, Chinmay
Maiti, Soumyadipta
Srinivasan, Sriram Goverapet
Rai, Beena
Materials Science
Mesoscale and Nanoscale Physics
Ni-Mo superalloys have emerged as materials of choice for a diverse array of applications owing to their superior mechanical properties, exceptional corrosion and oxidation resistance, electrocatalytic behavior, and surface stability. Understanding and optimizing the surface composition of Ni-Mo alloys is critical for enhancing their performance in practical applications. Traditional experimental surface analysis techniques, while informative, are often prohibitive in terms of cost and time. Likewise, theoretical approaches such as first-principle calculations demand substantial computational resources and it is difficult to simulate large structures. This study introduces an alternative approach utilizing hybrid Monte-Carlo / Molecular Dynamics (MC/MD) simulations to investigate the surface composition of Ni-Mo alloys. We report the development of an optimized Embedded-Atom Method (EAM) potential specifically for Ni-Mo alloys, carefully parameterized using empirical lattice constants and formation energies of elemental and face-centered cubic (FCC) Ni-Mo solid solution alloys. The reliability of the EAM potential is corroborated via the evaluation of equations of state, with a particular focus on reproducing structural properties. Utilizing this validated potential, MC/MD simulations were performed to understand the depth-wise variations in the compositions of Ni-Mo alloy nanoparticles and extended surfaces. These simulations reveal a preferential segregation of nickel on surface, and molybdenum in sub-surface layer. Due to this preferential segregation, it is imperative to consider surface segregation while tailoring the surface properties for targeted applications.
title Development of an embedded-atom method potential of Ni-Mo alloys for electrocatalysis / surface compositional studies
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2409.07320