Density functional studies relevant to methanol steam reforming

In this study, methanol steam reforming (MSR) on different catalytic surfaces (Cu, PdZn, Ir, Pd and Pt) have been systematically studied by density functional methods. The adsorption studies of relevant species for MSR indicate that adsorptions on Ir (100) surface are the most stable compared to the...

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Main Author: Li, Xiang
Other Authors: Lim Kok Hwa
Format: Theses and Dissertations
Language:English
Published: 2013
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Online Access:http://hdl.handle.net/10356/51256
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-512562023-03-03T16:08:00Z Density functional studies relevant to methanol steam reforming Li, Xiang Lim Kok Hwa School of Chemical and Biomedical Engineering DRNTU::Engineering::Chemical engineering In this study, methanol steam reforming (MSR) on different catalytic surfaces (Cu, PdZn, Ir, Pd and Pt) have been systematically studied by density functional methods. The adsorption studies of relevant species for MSR indicate that adsorptions on Ir (100) surface are the most stable compared to the other studied surfaces with an exception for OH. The stepped Cu(221) surface facilitates the adsorption of OH, CH2O and HCOO. And the adsorption characteristics on (100) surfaces of Ir, Pt and Pd are very similar for most species. The effects of O, N, C, and CO impurities with intermediates involved in methanol steam reforming have been systematically studied on (100) surfaces of Cu and PdZn. The impurities can change the charges of adjacent surface atoms locally on the surface. Generally, only COOH and HCOOH adsorption are affected compared to other intermediates due to hydrogen bonding. For the kinetics studies on formaldehyde steam reforming, we found that the dominant process on Ir (100) is the dehydrogenation of formaldehyde. While the CH2O desorption is more favorable on Cu and PdZn based catalytic surfaces. The effects of strains for methoxide decomposition were studied on PdZn (100) surface. For thermodynamics study, our results demonstrate that the most thermodynamically favorable adsorption structures for all studied adsorbates are on the slightly compressed (ΔLC=-1%) surface. According to our investigation on activation energies for strain effects, we found that expansive strain can increase the activity of the PdZn(100) surface, but reduces its selectivity at the same time. Doctor of Philosophy (SCBE) 2013-03-15T07:42:13Z 2013-03-15T07:42:13Z 2013 2013 Thesis http://hdl.handle.net/10356/51256 en 112 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Chemical engineering
spellingShingle DRNTU::Engineering::Chemical engineering
Li, Xiang
Density functional studies relevant to methanol steam reforming
description In this study, methanol steam reforming (MSR) on different catalytic surfaces (Cu, PdZn, Ir, Pd and Pt) have been systematically studied by density functional methods. The adsorption studies of relevant species for MSR indicate that adsorptions on Ir (100) surface are the most stable compared to the other studied surfaces with an exception for OH. The stepped Cu(221) surface facilitates the adsorption of OH, CH2O and HCOO. And the adsorption characteristics on (100) surfaces of Ir, Pt and Pd are very similar for most species. The effects of O, N, C, and CO impurities with intermediates involved in methanol steam reforming have been systematically studied on (100) surfaces of Cu and PdZn. The impurities can change the charges of adjacent surface atoms locally on the surface. Generally, only COOH and HCOOH adsorption are affected compared to other intermediates due to hydrogen bonding. For the kinetics studies on formaldehyde steam reforming, we found that the dominant process on Ir (100) is the dehydrogenation of formaldehyde. While the CH2O desorption is more favorable on Cu and PdZn based catalytic surfaces. The effects of strains for methoxide decomposition were studied on PdZn (100) surface. For thermodynamics study, our results demonstrate that the most thermodynamically favorable adsorption structures for all studied adsorbates are on the slightly compressed (ΔLC=-1%) surface. According to our investigation on activation energies for strain effects, we found that expansive strain can increase the activity of the PdZn(100) surface, but reduces its selectivity at the same time.
author2 Lim Kok Hwa
author_facet Lim Kok Hwa
Li, Xiang
format Theses and Dissertations
author Li, Xiang
author_sort Li, Xiang
title Density functional studies relevant to methanol steam reforming
title_short Density functional studies relevant to methanol steam reforming
title_full Density functional studies relevant to methanol steam reforming
title_fullStr Density functional studies relevant to methanol steam reforming
title_full_unstemmed Density functional studies relevant to methanol steam reforming
title_sort density functional studies relevant to methanol steam reforming
publishDate 2013
url http://hdl.handle.net/10356/51256
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