Original Research
Effect of reduced graphene oxide hybridization on ZnO nanoparticles sensitivity to NO2 gas: A DFT study
M. A. Abdulsattar
a
M. T. Hussein
c
M. U. Kahaly
d

aDepartment of Pharmacy, Al-Rasheed University College, Baghdad, Iraq

bMinistry of Science and Technology, Baghdad, Iraq

cDepartment of Physics, College of Science, University of Baghdad, Baghdad,

Iraq

dELI-ALPS, ELI-HU Non-Profit Ltd., Szeged, Hungary

eInstitute of Physics, University of Szeged, Dóm tér 9, Szeged, 6720, Hungary


Journal of Ovonic Research 2023, 19(2),153-163; https://doi.org/10.15251/JOR.2023.192.153
Submitted:Dec 20, 2022
Accepted:Mar 04, 2023
Published:Mar 01, 2023
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Cite This Article
M. A. Abdulsattar ,M. T. Hussein ,M. U. Kahaly . (2023). Journal of Ovonic Research. Effect of reduced graphene oxide hybridization on ZnO nanoparticles sensitivity to NO2 gas: A DFT study, 19(2), ,153-163. https://doi.org/10.15251/JOR.2023.192.153
Abstract

In the present work, a density functional theory (DFT) calculation to simulate reduced graphene oxide (rGO) hybrid with zinc oxide (ZnO) nanoparticle's sensitivity to NO2 gas is performed. In comparison with the experiment, DFT calculations give acceptable results to available bond lengths, lattice parameters, X-ray photoelectron spectroscopy (XPS), energy gaps, Gibbs free energy, enthalpy, entropy, etc. to ZnO, rGO, and ZnO/rGO hybrid. ZnO and rGO show n-type and p-type semiconductor behavior, respectively. The formed p-n heterojunction between rGO and ZnO is of the staggering gap type. Results show that rGO increases the sensitivity of ZnO to NO2 gas as they form a hybrid.

ZnO/rGO hybrid has a higher number of vacancies that can be used to attract oxygen atoms from NO2 and change the resistivity of the hybrid. The combined reduction of oxygen from NO2 and NO can give a very high value of the Gibbs free energy of reaction that explains the ppb level sensitivity of the ZnO/rGO hybrid. The dissociation of NO2 in the air reduces the sensitivity of the ZnO/rGO hybrid at temperatures higher than 300 ̊C.

©2026 by the authors. Submitted for possible open access publication under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
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