First principles study of edge carboxylated graphene quantum dots

Abdelsalam, Hazem; Prof. Dr. Hanan Gouda Abdelwahab Ahmed Elhaes; Ibrahim, Medhat A.;

Abstract


© 2018 Elsevier B.V. The structure stability and electronic properties of edge carboxylated hexagonal and triangular graphene quantum dots are investigated using density functional theory. The calculated binding energies show that the hexagonal clusters with armchair edges have the highest stability among all the quantum dots. The binding energy of carboxylated graphene quantum dots increases by increasing the number of carboxyl groups. Our study shows that the total dipole moment significantly increases by adding COOH with the highest value observed in triangular clusters. The edge states in triangular graphene quantum dots with zigzag edges produce completely different energy spectrum from other dots: (a) the energy gap in triangular zigzag is very small as compared to other clusters and (b) the highest occupied molecular orbital is localized at the edges which is in contrast to other clusters where it is distributed over the cluster surface. The enhanced reactivity and the controllable energy gap by shape and edge termination make graphene quantum dots ideal for various nanodevice applications such as sensors. The infrared spectra are presented to confirm the stability of the quantum dots.


Other data

Title First principles study of edge carboxylated graphene quantum dots
Authors Abdelsalam, Hazem; Prof. Dr. Hanan Gouda Abdelwahab Ahmed Elhaes ; Ibrahim, Medhat A.
Keywords Physics - Mesoscopic Systems and Quantum Hall Effect;Graphene quantum dots;HOMO/LUMO;Density of states;Density functional theory;COOH;Stability;Physics - Mesoscopic Systems and Quantum Hall Effect
Issue Date 15-May-2018
Publisher ELSEVIER
Journal Physica B: Condensed Matter 
ISSN 09214526
DOI 10.1016/j.physb.2018.02.001
Scopus ID 2-s2.0-85041853023
Web of science ID WOS:000428261200013

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