Open Journal of Physical Chemistry

Volume 10, Issue 4 (November 2020)

ISSN Print: 2162-1969   ISSN Online: 2162-1977

Google-based Impact Factor: 1.83  Citations  

DFT Investigation of the Hydrogen Adsorption on Graphene and Graphene Sheet Doped with Osmium and Tungsten

HTML  XML Download Download as PDF (Size: 597KB)  PP. 197-204  
DOI: 10.4236/ojpc.2020.104012    693 Downloads   2,132 Views  Citations

ABSTRACT

Significant interest has been focused on graphene materials for their unique properties as Hydrogen storage materials. The development of their abilities by modifying their configuration with doped or decorated transition metals was also of great interest. In this work, using the DFT/B3LYP/6-31G/LanL2DZ level of theory, graphene sheet (GS) as one of the materials of interest was doped with two transition metals, Osmium (Os) and Tungsten (W). Two active sites on the GS were tested (C4 and C16) resulted into adsorbed systems, H2@C4-GS and H2@C16-GS. C16 position showed the largest adsorption energy compared to that at C4. Therefore, C4 was replaced by the two metals and two adsorbed systems were formed: H2@Os-GS and H2@W-GS. The binding energy of H2@Os-GS was found to be greater than that of H2@W-GS.

Share and Cite:

Alshareef, B. (2020) DFT Investigation of the Hydrogen Adsorption on Graphene and Graphene Sheet Doped with Osmium and Tungsten. Open Journal of Physical Chemistry, 10, 197-204. doi: 10.4236/ojpc.2020.104012.

Cited by

[1] Density functional theory-based approaches to improving hydrogen storage in graphene-based materials
Martínez, B García-Hilerio, F Montejo-Alvaro… - Molecules, 2024
[2] Enhanced hydrogen gas adsorption properties of B, N, and Au co-doped graphene in o-, m-, and p-configurations: DFT study
Diamond and Related Materials, 2022
[3] Enhancement in hydrogen storage capabilities of Cr, Mo, and W-embedded graphitic carbon nitride nanosheets: A DFT investigation
Yangjeh, H Basharnavaz, SH Kamali - Chemical Physics Letters, 2022
[4] Selective and tunable H2 adsorption/sensing performance of W-doped graphene under external electric fields: A DFT study
International Journal of …, 2022
[5] DFT study of Se-doped nanocones as highly efficient hydrogen storage carrier
Barbary, MA Alkhateeb - Graphene, 2021

Copyright © 2025 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.