Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/9190
Title: First principles design of Li functionalized hydrogenated h-BN nanosheet for hydrogen storage
Authors: Pathak, Biswarup
Keywords: Atoms;Binding energy;Bins;Boron nitride;Density functional theory;Design for testability;Hydrogen;Hydrogenation;Lithium;Molecular dynamics;Molecules;Sheet metal;Ab initio molecular dynamics simulation;Alkali metal atoms;Density of state;First-principles density functional theory;Gravimetric density;Hexagonal boron nitride;Hydrogenated h-BN sheet;Storage efficiency;Hydrogen storage
Issue Date: 2016
Publisher: Elsevier Ltd
Citation: Banerjee, P., Pathak, B., Ahuja, R., & Das, G. P. (2016). First principles design of li functionalized hydrogenated h-BN nanosheet for hydrogen storage. International Journal of Hydrogen Energy, 41(32), 14437-14446. doi:10.1016/j.ijhydene.2016.02.113
Abstract: Employing first principles density functional theory (DFT) based approach, the structure, stability and hydrogen storage efficiency of a hydrogenated hexagonal boron nitride sheet (BHNH chair conformer) functionalized by the lightest alkali metal atom Li has been explored here in details. Substituting one hydrogen atom from both B and N sides of BHNH sheet by a Li atom, we have found that Li becomes cationic and acts as a binding site to adsorb hydrogen molecules. The stability of this Li-substituted BHNH sheet has been indicated via Ab-initio Molecular Dynamics (AIMD) simulation upto 400 K. The binding energy (∼0.18–0.3 eV/H2 molecule) and gravimetric density (∼6 wt %) (upto ∼200 K) of the hydrogen molecules fall in the required window for practical hydrogen storage. AIMD simulation indicates complete dehydrogenation from this system occurs at ∼400 K, thereby predicting the suitability of this system from the point of view of efficient hydrogen storage. © 2016 Hydrogen Energy Publications LLC
URI: https://doi.org/10.1016/j.ijhydene.2016.02.113
https://dspace.iiti.ac.in/handle/123456789/9190
ISSN: 0360-3199
Type of Material: Journal Article
Appears in Collections:Department of Chemistry

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