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  4. Quantum state-resolved CH4 dissociation on Pt(111): coverage dependent barrier heights from experiment and density functional theory
 
research article

Quantum state-resolved CH4 dissociation on Pt(111): coverage dependent barrier heights from experiment and density functional theory

Ueta, Hirokazu  
•
Chen, Li  
•
Beck, Rainer D.  
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2013
Physical Chemistry Chemical Physics

The dissociative chemisorption of CH4 on Pt(111) was studied using quantum state-resolved methods at a surface temperature (Ts) of 150 K where the nascent reaction products CH3(ads) and H(ads) are stable and accumulate on the surface. Most previous experimental studies of methane chemisorption on transition metal surfaces report only the initial sticking coefficients S0 on a clean surface. Reflection absorption infrared spectroscopy (RAIRS), used here for state resolved reactivity measurements, enables us to monitor the CH3(ads) uptake during molecular beam deposition as a function of incident translational energy (Et) and vibrational state (n3 anti-symmetric C–H stretch of CH4) to obtain the initial sticking probability S0, the coverage dependence of the sticking probability S(y) and the CH3(ads) saturation coverage ysat. We observe that both S0 and ysat increase with increasing Et as well as upon n3 excitation of the incident CH4 which indicates a coverage dependent dissociation barrier height for the dissociation of CH4 on Pt(111) at low surface temperature. This interpretation is supported by density functional calculations of barrier heights for dissociation, using large supercells containing one or more H and/or methyl adsorbates. We find a significant increase in the activation energies with coverage. These energies are used to construct simple models that reasonably reproduce the uptake data and the observed saturation coverages.

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Type
research article
DOI
10.1039/c3cp52244j
Web of Science ID

WOS:000327249700014

Author(s)
Ueta, Hirokazu  
Chen, Li  
Beck, Rainer D.  
Colon-Diaz, Inara
Jackson, Bret
Date Issued

2013

Publisher

Royal Society of Chemistry

Published in
Physical Chemistry Chemical Physics
Volume

15

Start page

20526

End page

20535

Subjects

methane chemisorption

•

molecular beam

•

sticking coefficient

•

Pt(111)

•

density function theory

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LCPM  
Available on Infoscience
November 15, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/97052
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