Coverage dependence of oxygen decomposition and surface diffusion on rhodium 111: a DFT study.

A systematic study of oxygen adsorption, decomposition and diffusion on Rh111 and its dependence on coadsorbed oxygen molecules has been performed using density functional theory calculations. First, the bonding strength between metal surface and adsorbed oxygen molecules has been studied as a funct...

Full description

Bibliographic Details
Main Authors: Inderwildi, O, Lebiedz, D, Deutschmann, O, Warnatz, J
Format: Journal article
Language:English
Published: 2005
_version_ 1826259091243139072
author Inderwildi, O
Lebiedz, D
Deutschmann, O
Warnatz, J
author_facet Inderwildi, O
Lebiedz, D
Deutschmann, O
Warnatz, J
author_sort Inderwildi, O
collection OXFORD
description A systematic study of oxygen adsorption, decomposition and diffusion on Rh111 and its dependence on coadsorbed oxygen molecules has been performed using density functional theory calculations. First, the bonding strength between metal surface and adsorbed oxygen molecules has been studied as a function of initial oxygen coverage. The bonding strength decreases with increasing oxygen coverage, which points towards a self-inhibition of the adsorption process. The potential energy hypersurface (PES) for the dissociation of oxygen molecules adsorbed on a threefold fcc position perpendicular to the surface was calculated using a combined linear/quadratic synchronous transit method with conjugate gradient refinements. The results indicate that a minor amount of oxygen on the surface enhances the decomposition of further oxygen molecules, while this process is inhibited at higher coverage. Moreover, PES calculations of a single site jump of atomic oxygen on rhodium 111 indicate that the activation energy increases as well with increasing oxygen coverage. All results are discussed with respect to a rhodium based catalytic NOx reduction/decomposition system proposed by Nakatsuji, which decomposes nitrogen oxides in oxygen excess.
first_indexed 2024-03-06T18:44:23Z
format Journal article
id oxford-uuid:0e014945-7c47-409f-8c11-30f53dc00538
institution University of Oxford
language English
last_indexed 2024-03-06T18:44:23Z
publishDate 2005
record_format dspace
spelling oxford-uuid:0e014945-7c47-409f-8c11-30f53dc005382022-03-26T09:43:31ZCoverage dependence of oxygen decomposition and surface diffusion on rhodium 111: a DFT study.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:0e014945-7c47-409f-8c11-30f53dc00538EnglishSymplectic Elements at Oxford2005Inderwildi, OLebiedz, DDeutschmann, OWarnatz, JA systematic study of oxygen adsorption, decomposition and diffusion on Rh111 and its dependence on coadsorbed oxygen molecules has been performed using density functional theory calculations. First, the bonding strength between metal surface and adsorbed oxygen molecules has been studied as a function of initial oxygen coverage. The bonding strength decreases with increasing oxygen coverage, which points towards a self-inhibition of the adsorption process. The potential energy hypersurface (PES) for the dissociation of oxygen molecules adsorbed on a threefold fcc position perpendicular to the surface was calculated using a combined linear/quadratic synchronous transit method with conjugate gradient refinements. The results indicate that a minor amount of oxygen on the surface enhances the decomposition of further oxygen molecules, while this process is inhibited at higher coverage. Moreover, PES calculations of a single site jump of atomic oxygen on rhodium 111 indicate that the activation energy increases as well with increasing oxygen coverage. All results are discussed with respect to a rhodium based catalytic NOx reduction/decomposition system proposed by Nakatsuji, which decomposes nitrogen oxides in oxygen excess.
spellingShingle Inderwildi, O
Lebiedz, D
Deutschmann, O
Warnatz, J
Coverage dependence of oxygen decomposition and surface diffusion on rhodium 111: a DFT study.
title Coverage dependence of oxygen decomposition and surface diffusion on rhodium 111: a DFT study.
title_full Coverage dependence of oxygen decomposition and surface diffusion on rhodium 111: a DFT study.
title_fullStr Coverage dependence of oxygen decomposition and surface diffusion on rhodium 111: a DFT study.
title_full_unstemmed Coverage dependence of oxygen decomposition and surface diffusion on rhodium 111: a DFT study.
title_short Coverage dependence of oxygen decomposition and surface diffusion on rhodium 111: a DFT study.
title_sort coverage dependence of oxygen decomposition and surface diffusion on rhodium 111 a dft study
work_keys_str_mv AT inderwildio coveragedependenceofoxygendecompositionandsurfacediffusiononrhodium111adftstudy
AT lebiedzd coveragedependenceofoxygendecompositionandsurfacediffusiononrhodium111adftstudy
AT deutschmanno coveragedependenceofoxygendecompositionandsurfacediffusiononrhodium111adftstudy
AT warnatzj coveragedependenceofoxygendecompositionandsurfacediffusiononrhodium111adftstudy