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Computational Studies of Transition Metal Nanoalloys [electronic resource] / by Lauro Oliver Paz Borbón.

By: Contributor(s): Series: Springer Theses ; 1Publisher: Berlin, Heidelberg : Springer Berlin Heidelberg, 2011Description: XVI, 156 p. online resourceContent type:
  • text
Media type:
  • computer
Carrier type:
  • online resource
ISBN:
  • 9783642180125
Subject(s): Genre/Form: Additional physical formats: Printed edition:: No titleDDC classification:
  • 541.2 23
LOC classification:
  • QD450-801
Online resources:
Contents:
Introduction -- Theoretical Background and Methodology -- 34-atom Pd-Pt Clusters -- 98 atom Pd-Pt nanoalloys -- 38-atom binary clusters -- Chemical ordering of 34-atom Pd-Pt nanoalloys -- Theoretical study of Pd-Au clusters -- Chemisorption on metal clusters and nanoalloys -- Conclusions and Future Work.
In: Springer eBooksSummary: The focus of this thesis is the computational modelling of transition metal bimetallic (nanoalloy) clusters. More specifically, the study of Pd-Pt, Ag-Pt, Au-Au and Pd-Au as a few tens of atoms in the gas phase. The author used a combination of global optimization techniques - coupled with a Gupta-type empirical many-body potential - and Density Functional Theory (DFT) calculations to study the structures, bonding and chemical ordering, as well as investigate the chemisorptions of hydrogen and carbon monoxide on bimetallic clusters. This research is highly relevant to experimental catalytic studies and has resulted in more than seven publications in international journals.
Item type: eBooks
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Introduction -- Theoretical Background and Methodology -- 34-atom Pd-Pt Clusters -- 98 atom Pd-Pt nanoalloys -- 38-atom binary clusters -- Chemical ordering of 34-atom Pd-Pt nanoalloys -- Theoretical study of Pd-Au clusters -- Chemisorption on metal clusters and nanoalloys -- Conclusions and Future Work.

The focus of this thesis is the computational modelling of transition metal bimetallic (nanoalloy) clusters. More specifically, the study of Pd-Pt, Ag-Pt, Au-Au and Pd-Au as a few tens of atoms in the gas phase. The author used a combination of global optimization techniques - coupled with a Gupta-type empirical many-body potential - and Density Functional Theory (DFT) calculations to study the structures, bonding and chemical ordering, as well as investigate the chemisorptions of hydrogen and carbon monoxide on bimetallic clusters. This research is highly relevant to experimental catalytic studies and has resulted in more than seven publications in international journals.

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