Please use this identifier to cite or link to this item: https://hdl.handle.net/1959.11/51345
Title: Computational Study on the Adsorption of Sodium and Calcium on Edge-Functionalized Graphene Nanoribbons
Contributor(s): Niaei, Amir H Farokh (author); Roman, Tanglaw (author); Hussain, Tanveer  (author)orcid ; Searles, Debra J (author)
Publication Date: 2019-06-20
Early Online Version: 2019-05-24
DOI: 10.1021/acs.jpcc.9b02003
Handle Link: https://hdl.handle.net/1959.11/51345
Abstract: 

Computational methods are used to show that graphene nanoribbons bind sodium (Na) and calcium (Ca) more strongly than graphene sheets. The binding strength is further enhanced by functionalizing the edge of the nanoribbon with oxygen-containing groups. Strengthening of the binding of these metal atoms to graphitic materials is important for applications including metal-ion batteries. Our results are obtained using density functional theory calculations of the binding of sodium and calcium to hydrogen, hydroxyl, carbonyl, and carboxyl groups at the edge of zigzag and armchair nanoribbons. Both hydrogen passivation and hydroxyl functionalization result in moderate binding of Na and Ca with binding energies varying from -1.0 to -1.9 eV for the nanoribbons considered. An increase in binding compared to graphene does not just occur at the edge, but extends across the nanoribbon. Furthermore, carbonyl and carboxyl groups bound both metal atoms more strongly, with binding energies between -1.6 and -3.1 eV. Increasing the number of these groups at the edge increases the binding strength of the metal adatoms. When there is a high number of oxygen-containing groups at the edge, the effect of the oxygen-containing groups is also evident away from the edge of the nanoribbon for sodium and calcium. It is demonstrated that this is at least partly due to the change in the electronic structure spanning the entire width of the nanoribbons considered.

Publication Type: Journal Article
Grant Details: ARC/LE0882357
ARC/LE160100051
ARC/DP140100193
Source of Publication: The Journal of Physical Chemistry C, 123(24), p. 14895-14908
Publisher: American Chemical Society
Place of Publication: United States of America
ISSN: 1932-7455
1932-7447
Fields of Research (FoR) 2020: 340701 Computational chemistry
510403 Condensed matter modelling and density functional theory
340302 Macromolecular materials
Socio-Economic Objective (SEO) 2020: 170301 Battery storage
170803 Hydro-electric energy
170899 Renewable energy not elsewhere classified
Peer Reviewed: Yes
HERDC Category Description: C1 Refereed Article in a Scholarly Journal
Appears in Collections:Journal Article
School of Science and Technology

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