Computational study of noble metal alloys

The elastic constants, phase stability, heat of formation and the Debye temperature of various noble metal compounds in the stoichiometry A3B (where A = Pt, Ir, Rh, Ru, Pd and B = Al, Hf, Zr, Sc) were studied using the ab initio Density Functional Theory - Projector Augmented Wave method. A total...

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Main Author: Popoola, Adewumi Isaac
Format: Others
Language:en
Published: 2014
Subjects:
Online Access:http://hdl.handle.net10539/14037
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spelling ndltd-netd.ac.za-oai-union.ndltd.org-wits-oai-wiredspace.wits.ac.za-10539-140372019-05-11T03:42:05Z Computational study of noble metal alloys Popoola, Adewumi Isaac Precious metals. Precious metals - Experiments. The elastic constants, phase stability, heat of formation and the Debye temperature of various noble metal compounds in the stoichiometry A3B (where A = Pt, Ir, Rh, Ru, Pd and B = Al, Hf, Zr, Sc) were studied using the ab initio Density Functional Theory - Projector Augmented Wave method. A total of 24 compositions was investigated, of which 16 compounds were predicted to be thermodynamically stable. The remaining eight compounds were found not energetically favorable, due to positive or low heats of formation. According to the Density of States studies, the L12 structure was predicted in 8 compounds while four compounds had the D024 structure. Among compounds with the L12 structure, the hardest phase predicted was L12-Ir3Hf. L12-Pd3Sc was predicted as the least hard and most ductile compound. In compounds with the D024 structure, Pt3Zr was predicted having highest hardness and highest melting point. In all the compounds, the strongest interaction was found between hafnium and the noble metals and least interaction was with aluminum. The melting points from ab initio and molecular dynamics calculations slightly over-predicted experimental values, but showed the same trends. Both the fracture toughnesses and the melting points deduced using the Sutton-Chen potentials had similar trends to ab initio results, suggesting that the Sutton-Chen potentials is adequate for simulating metallic phases. 2014-03-06T07:05:31Z 2014-03-06T07:05:31Z 2014-03-06 Thesis http://hdl.handle.net10539/14037 en application/pdf application/pdf application/pdf
collection NDLTD
language en
format Others
sources NDLTD
topic Precious metals.
Precious metals - Experiments.
spellingShingle Precious metals.
Precious metals - Experiments.
Popoola, Adewumi Isaac
Computational study of noble metal alloys
description The elastic constants, phase stability, heat of formation and the Debye temperature of various noble metal compounds in the stoichiometry A3B (where A = Pt, Ir, Rh, Ru, Pd and B = Al, Hf, Zr, Sc) were studied using the ab initio Density Functional Theory - Projector Augmented Wave method. A total of 24 compositions was investigated, of which 16 compounds were predicted to be thermodynamically stable. The remaining eight compounds were found not energetically favorable, due to positive or low heats of formation. According to the Density of States studies, the L12 structure was predicted in 8 compounds while four compounds had the D024 structure. Among compounds with the L12 structure, the hardest phase predicted was L12-Ir3Hf. L12-Pd3Sc was predicted as the least hard and most ductile compound. In compounds with the D024 structure, Pt3Zr was predicted having highest hardness and highest melting point. In all the compounds, the strongest interaction was found between hafnium and the noble metals and least interaction was with aluminum. The melting points from ab initio and molecular dynamics calculations slightly over-predicted experimental values, but showed the same trends. Both the fracture toughnesses and the melting points deduced using the Sutton-Chen potentials had similar trends to ab initio results, suggesting that the Sutton-Chen potentials is adequate for simulating metallic phases.
author Popoola, Adewumi Isaac
author_facet Popoola, Adewumi Isaac
author_sort Popoola, Adewumi Isaac
title Computational study of noble metal alloys
title_short Computational study of noble metal alloys
title_full Computational study of noble metal alloys
title_fullStr Computational study of noble metal alloys
title_full_unstemmed Computational study of noble metal alloys
title_sort computational study of noble metal alloys
publishDate 2014
url http://hdl.handle.net10539/14037
work_keys_str_mv AT popoolaadewumiisaac computationalstudyofnoblemetalalloys
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