Thermodynamics and kinetics of CO and benzene adsorption on Pt(111) studied with pulsed molecular beams and microcalorimetry
The adsorption and desorption of the system CO/Pt(111) and C 6H 6/Pt(111) at 300 K has been investigated with a pulsed molecular beam method in combination with a microcalorimeter. For benzene the sticking probability has been measured in dependence of the coverage θ. For coverages θ > 0.8 transi...
Gespeichert in:
Veröffentlicht in: | Surface science 2010-11, Vol.604 (23), p.2098-2105 |
---|---|
Hauptverfasser: | , , |
Format: | Artikel |
Sprache: | eng |
Schlagworte: | |
Online-Zugang: | Volltext |
Tags: |
Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
|
Zusammenfassung: | The adsorption and desorption of the system CO/Pt(111) and C
6H
6/Pt(111) at 300
K has been investigated with a pulsed molecular beam method in combination with a microcalorimeter. For benzene the sticking probability has been measured in dependence of the coverage
θ. For coverages
θ
>
0.8 transient adsorption is observed. From an analysis of the time-dependence of the molecular beam pulses the rate constant for desorption is determined to be 5.6
s
−
1
. With a precursor-mediated kinetic adsorption model this allows to obtain also the hopping rate constant of 95.5
s
−
1
. The measured adsorption enthalpies could be best described by (199
−
77
θ
−
51
θ
2) kJ/mol, in good agreement with the literature values. For CO on Pt(111) also transient adsorption has been observed for
θ
>
0.95 at 300
K. The kinetic analysis yields rate constants for desorption and hopping of 20
s
−1 and 51
s
−1, respectively. The heats of adsorption show a linear dependence on coverage (131
−
38
θ) kJ/mol between 0
≤
θ
≤
0.3, which is consistent with the desorption data from the literature. For higher coverage (up to
θ
=
0.9ML) a slope of −63
kJ/mol describes the decrease of the differential heat of adsorption best. This result is only compatible with desorption experiments, if the pre-exponential factor decreases strongly at higher coverage. We found good agreement with recent quantum chemical calculations made for (
θ
=
0.5ML). |
---|---|
ISSN: | 0039-6028 1879-2758 |
DOI: | 10.1016/j.susc.2010.09.001 |