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Au-Decorated graphene as a sensing platform for O adsorption and desorption kinetics
The adsorption and desorption kinetics of molecules is of significant fundamental and applied interest. In this paper, we present a new method to quantify the energy barriers for the adsorption and desorption of gas molecules on few-atom clusters, by exploiting reaction induced changes of the doping...
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Published in: | Nanoscale 2022-09, Vol.14 (34), p.12437-12446 |
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Main Authors: | , , , , , , , , , , , , |
Format: | Article |
Language: | |
Online Access: | Get full text |
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Summary: | The adsorption and desorption kinetics of molecules is of significant fundamental and applied interest. In this paper, we present a new method to quantify the energy barriers for the adsorption and desorption of gas molecules on few-atom clusters, by exploiting reaction induced changes of the doping level of a graphene substrate. The method is illustrated for oxygen adsorption on Au
3
clusters. The gold clusters were deposited on a graphene field effect transistor and exposed to O
2
. From the change in graphene's electronic properties during adsorption, the energy barrier for the adsorption of O
2
on Au
3
is estimated to be 0.45 eV. Electric current pulses increase the temperature of the graphene strip in a controlled way and provide the required thermal energy for oxygen desorption. The oxygen binding energy on Au
3
/graphene is found to be 1.03 eV and the activation entropy is 1.4 meV K
−1
. The experimental values are compared and interpreted on the basis of density functional theory calculations of the adsorption barrier, the binding energy and the activation entropy. The large value of the activation entropy is explained by the hindering effect that the adsorbed O
2
has on the fluxional motion of the Au
3
cluster.
A new approach to sensitively measure the sorption kinetics of molecules on few-atom clusters, by making use of a graphene sensor, is proposed. The approach is illustrated for the reaction of O
2
with Au
3
clusters. |
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ISSN: | 2040-3364 2040-3372 |
DOI: | 10.1039/d2nr03076d |