Adsorption of surface active elements on the iron (100) surface : A study based on ab initio calculations

In the present work, the structural, electronic properties, thermodynamic stability and adatom surface movements of oxygen and sulfur adsorption on the Fe surface were studied based on the ab initio method. Firstly, the oxygen adsorbed on the iron (100) surface is investigated at the three adsorptio...

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Main Author: Cao, Weimin
Format: Others
Language:English
Published: KTH, Materialvetenskap 2009
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-11234
http://nbn-resolving.de/urn:isbn:978-91-7415-438-2
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spelling ndltd-UPSALLA1-oai-DiVA.org-kth-112342013-01-08T13:10:40ZAdsorption of surface active elements on the iron (100) surface : A study based on ab initio calculationsengCao, WeiminKTH, MaterialvetenskapStockholm : KTH2009sulfuroxygensurface adsorptioniron surfaceab initio calculationsadsorption energywork functiondifference charge densitythermodynamic stabilityaverage velocityMaterials scienceTeknisk materialvetenskapIn the present work, the structural, electronic properties, thermodynamic stability and adatom surface movements of oxygen and sulfur adsorption on the Fe surface were studied based on the ab initio method. Firstly, the oxygen adsorbed on the iron (100) surface is investigated at the three adsorption sites top, bridge and hollow sites, respectively. Adsorption energy, work function and surface geometries were calculated, the hollow site was found to be the most stable adsorption site, Which is in agreement with the experiments. In addition, the difference charge density of the different adsorption systems was calculated to analyze the interaction and bonding properties between Fe and O. It can be found out that the charge redistribution was related to the geometry relaxation. Secondly, the sulfur coverage is considered from a quarter of one monolayer (1ML) to a full monolayer. Our calculated results indicate that the most likely site for S adsorption is the hollow site on Fe (100). We find that the work function and its change Df increased with S coverage, in very good agreement with experiments. Due to a recent discussion regarding the influence of charge transfer on Df, we show that the increase in Df can be explained by the increasing surface dipole moment as a function of S coverage. In addition, the Fe-S bonding was analyzed. Finally, the thermodynamic stabilities of the different structures were evaluated as a function the sulfur chemical potential. Finally, a two dimensional (2D) gas model was proposed to simulate the surface active elements, oxygen and sulfur atoms, movement on the Fe (100) surface. The average velocity of oxygen and sulfur atoms was found out to be related to the vibration frequencies and energy barrier in the final expression developed. The calculated results were based on the density function and thermodynamics & statistical physics theories. In addition, this 2D gas model can be used to simulate and give an atomic view of the complex interfacial phenomena in the steelmaking refining process. Licentiate thesis, comprehensive summaryinfo:eu-repo/semantics/masterThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-11234urn:isbn:978-91-7415-438-2application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic sulfur
oxygen
surface adsorption
iron surface
ab initio calculations
adsorption energy
work function
difference charge density
thermodynamic stability
average velocity
Materials science
Teknisk materialvetenskap
spellingShingle sulfur
oxygen
surface adsorption
iron surface
ab initio calculations
adsorption energy
work function
difference charge density
thermodynamic stability
average velocity
Materials science
Teknisk materialvetenskap
Cao, Weimin
Adsorption of surface active elements on the iron (100) surface : A study based on ab initio calculations
description In the present work, the structural, electronic properties, thermodynamic stability and adatom surface movements of oxygen and sulfur adsorption on the Fe surface were studied based on the ab initio method. Firstly, the oxygen adsorbed on the iron (100) surface is investigated at the three adsorption sites top, bridge and hollow sites, respectively. Adsorption energy, work function and surface geometries were calculated, the hollow site was found to be the most stable adsorption site, Which is in agreement with the experiments. In addition, the difference charge density of the different adsorption systems was calculated to analyze the interaction and bonding properties between Fe and O. It can be found out that the charge redistribution was related to the geometry relaxation. Secondly, the sulfur coverage is considered from a quarter of one monolayer (1ML) to a full monolayer. Our calculated results indicate that the most likely site for S adsorption is the hollow site on Fe (100). We find that the work function and its change Df increased with S coverage, in very good agreement with experiments. Due to a recent discussion regarding the influence of charge transfer on Df, we show that the increase in Df can be explained by the increasing surface dipole moment as a function of S coverage. In addition, the Fe-S bonding was analyzed. Finally, the thermodynamic stabilities of the different structures were evaluated as a function the sulfur chemical potential. Finally, a two dimensional (2D) gas model was proposed to simulate the surface active elements, oxygen and sulfur atoms, movement on the Fe (100) surface. The average velocity of oxygen and sulfur atoms was found out to be related to the vibration frequencies and energy barrier in the final expression developed. The calculated results were based on the density function and thermodynamics & statistical physics theories. In addition, this 2D gas model can be used to simulate and give an atomic view of the complex interfacial phenomena in the steelmaking refining process.
author Cao, Weimin
author_facet Cao, Weimin
author_sort Cao, Weimin
title Adsorption of surface active elements on the iron (100) surface : A study based on ab initio calculations
title_short Adsorption of surface active elements on the iron (100) surface : A study based on ab initio calculations
title_full Adsorption of surface active elements on the iron (100) surface : A study based on ab initio calculations
title_fullStr Adsorption of surface active elements on the iron (100) surface : A study based on ab initio calculations
title_full_unstemmed Adsorption of surface active elements on the iron (100) surface : A study based on ab initio calculations
title_sort adsorption of surface active elements on the iron (100) surface : a study based on ab initio calculations
publisher KTH, Materialvetenskap
publishDate 2009
url http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-11234
http://nbn-resolving.de/urn:isbn:978-91-7415-438-2
work_keys_str_mv AT caoweimin adsorptionofsurfaceactiveelementsontheiron100surfaceastudybasedonabinitiocalculations
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