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  4. Molecular Adsorption Changes the Quantum Structure of Oxide-Supported Gold Nanoparticles: Chemisorption versus Physisorption
 
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research article

Molecular Adsorption Changes the Quantum Structure of Oxide-Supported Gold Nanoparticles: Chemisorption versus Physisorption

Stiehler, Christian
•
Calaza, Florencia
•
Schneider, Wolf-Dieter  
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2015
Physical Review Letters

STM conductance spectroscopy and mapping has been used to analyze the impact of molecular adsorption on the quantized electronic structure of individual metal nanoparticles. For this purpose, isophorone and CO2, as prototype molecules for physisorptive and chemisorptive binding, were dosed onto monolayer Au islands grown on MgO thin films. The molecules attach exclusively to the metal-oxide boundary, while the interior of the islands remains pristine. The Au quantum well states are perturbed due to the adsorption process and increase their mutual energy spacing in the CO2 case but move together in isophorone-covered islands. The shifts disclose the nature of the molecule-Au interaction, which relies on electron exchange for the CO2 ligands but on dispersive forces for the organic species. Our experiments reveal how molecular adsorption affects individual quantum systems, a topic of utmost relevance for heterogeneous catalysis.

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Type
research article
DOI
10.1103/PhysRevLett.115.036804
Web of Science ID

WOS:000357864800020

Author(s)
Stiehler, Christian
•
Calaza, Florencia
•
Schneider, Wolf-Dieter  
•
Nilius, Niklas
•
Freund, Hans-Joachim
Date Issued

2015

Publisher

American Physical Society

Published in
Physical Review Letters
Volume

115

Issue

3

Article Number

036804

Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
LPS  
Available on Infoscience
September 28, 2015
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/118938
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