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  4. Characterizing and Understanding Divalent Adsorbates on Carbon Nanotubes with Ab Initio and Classical Approaches: Size, Chirality, and Coverage Effects
 
research article

Characterizing and Understanding Divalent Adsorbates on Carbon Nanotubes with Ab Initio and Classical Approaches: Size, Chirality, and Coverage Effects

Kroes, Jaap M. H.
•
Pietrucci, Fabio  
•
Curioni, Alessandro
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2014
Journal of Chemical Theory and Computation

The study of oxygen chemisorption on single-walled carbon nanotubes generally relies on simple atomistic models and hence hampers the possibility to understand whether nanotube size or adduct concentration have a role in determining the surface adsorbate interaction. Our large-scale DFT-based simulations show that structural and electronic properties as well as diffusion barriers strongly depend on both nanotube diameter and adsorbate concentration. Our atomistic models cover nanotube of different chirality with diameters from 0.6 to 1.5 nm and oxygen concentration from 0.1 to 196. In particular, the tendency to cluster increases with concentration and stabilizes ether (ET) groups but affects hopping barriers only to a minor extent. Significant differences with graphene are found, also for 13 nm diameter nanotubes. Extension to species isoelectronic to oxygen reveals dissimilarities, and especially for sulfur that tends to form epoxides (EP), to diffuse more easily and to rapidly close the energy gap for increasing concentration. The relative ET EP stability can be described in terms of the bare-bond curvature, a concentration-dependent chemical descriptor here introduced. Comparison of these DFT calculations-using different exchange-correlation functionals and our additional investigation with a reactive force-field (ReaxFF) clarifies several similarities but also discrepancies between the predictions of the two schemes.

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Type
research article
DOI
10.1021/ct500701n
Web of Science ID

WOS:000343196300050

Author(s)
Kroes, Jaap M. H.
Pietrucci, Fabio  
Curioni, Alessandro
Andreoni, Wanda  
Date Issued

2014

Publisher

Amer Chemical Soc

Published in
Journal of Chemical Theory and Computation
Volume

10

Issue

10

Start page

4672

End page

4683

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
ITP  
Available on Infoscience
November 13, 2014
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/108677
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