Enhancing the absorption of 1-chloro-1,2,2,2-tetrafluoroethane on carbon nanotubes

an ab initio study

Journal Article (2021)
Author(s)

Mohsen Doust Mohammadi (University of Tehran)

Hewa Y. Abdullah (Tishk International University)

George Biskos (TU Delft - Atmospheric Remote Sensing, The Cyprus Institute)

Somnath Bhowmick (The Cyprus Institute)

Research Group
Atmospheric Remote Sensing
Copyright
© 2021 Mohsen Doust Mohammadi, Hewa Y. Abdullah, G. Biskos, Somnath Bhowmick
DOI related publication
https://doi.org/10.1007/s12034-021-02472-9
More Info
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Publication Year
2021
Language
English
Copyright
© 2021 Mohsen Doust Mohammadi, Hewa Y. Abdullah, G. Biskos, Somnath Bhowmick
Research Group
Atmospheric Remote Sensing
Issue number
3
Volume number
44
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Abstract

We have investigated the possibility of utilizing various single-walled pristine and doped carbon nanotubes as adsorbents for the 1-chloro-1,2,2,2-tetrafluoroethane (HCFC-124) gaseous molecule. Three candidates, including pristine carbon nanotube (CNT), silicon carbide nanotube (SiCNT) and germanium-doped SiCNT (SiCGeNT) are identified and evaluated theoretically. The quantum simulations have been performed at the density functional theory (DFT) level with four different functionals (i.e., M06-2X, ωB97XD, CAM-B3LYP and B3LYP-D3) with a split-valence triple-zeta basis set (6-311G(d)). We found that adsorption on the SiCGeNT is most favourable, while that on the pristine CNT yields the lowest adsorption energy. Adsorption on these nanotubes is not accompanied by an active charge-transfer phenomenon; instead, it is driven by weak van der Waals forces. The HOMO–LUMO energy gaps drastically change when the dopant atom is added to the SiCNT, thereby improving their overall adsorption capability. Among all of the adsorbents investigated here, SiCGeNT shows the most favourable for designing effective HCFC-124 nanosensors.

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