The electrical response to O3 of 150-nm-thick carbon nanotube ~CNT! thin films prepared by radio frequency-plasma enhanced chemical vapor deposition has been investigated at different operating temperatures starting from the room temperature. The interaction between ozone molecules and a carbon nanotube film is studied by means of first-principles calculations. Experiments show that CNT films are responsive to O3 with a decrease of the resistance similar to that observed for NO2 . Our theoretical results suggest the interaction to be pretty strong, as shown by a relatively short equilibrium molecule-tube distance, as well as by an appreciable binding energy and charge transfer from the tube to the adsorbed molecule. The analysis of the density of states shows that a peak in proximity of the nanotube Fermi level is induced by the ozone adsorption. This effect enhances the p-type character of the nanotube and, therefore, the conductivity of the whole film increases, in excellent consistency with the experimentally observed resistance decrease upon O3 exposure.

Ozone adsorption on carbon nanotubes: Ab initio calculations and experiments

SANTUCCI, Sandro;L, . LOZZI;CANTALINI, Carlo;
2004-01-01

Abstract

The electrical response to O3 of 150-nm-thick carbon nanotube ~CNT! thin films prepared by radio frequency-plasma enhanced chemical vapor deposition has been investigated at different operating temperatures starting from the room temperature. The interaction between ozone molecules and a carbon nanotube film is studied by means of first-principles calculations. Experiments show that CNT films are responsive to O3 with a decrease of the resistance similar to that observed for NO2 . Our theoretical results suggest the interaction to be pretty strong, as shown by a relatively short equilibrium molecule-tube distance, as well as by an appreciable binding energy and charge transfer from the tube to the adsorbed molecule. The analysis of the density of states shows that a peak in proximity of the nanotube Fermi level is induced by the ozone adsorption. This effect enhances the p-type character of the nanotube and, therefore, the conductivity of the whole film increases, in excellent consistency with the experimentally observed resistance decrease upon O3 exposure.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11697/2449
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