Please use this identifier to cite or link to this item: https://hdl.handle.net/1959.11/54980
Title: Ultrahigh hydrogen storage using metal-decorated defected biphenylene
Contributor(s): Kaewmaraya, T (author); Thatsami, N (author); Tangpakonsab, P (author); Kinkla, R (author); Kotmool, K (author); Menendez, C (author); Aguey-Zinsou, K-F (author); Hussain, T  (author)orcid 
Publication Date: 2023-08-30
Early Online Version: 2023-05-03
DOI: 10.1016/j.apsusc.2023.157391
Handle Link: https://hdl.handle.net/1959.11/54980
Abstract: 

Hydrogen (H2) energy has emerged as a principal contender for renewable green energy applications because of the ultra-high energy density and natural abundance. The implementation of this prospective technology necessitates the ultra-high capacity of H2 storage mediums. This work reports the exceptional H2 storage capacities of two-dimensional (2D) carbon allotrope biphenylene (BPL) functionalized by Li, Na, K, and Ca. The combined theoretical approaches including the density functional theory (DFT), ab-initio molecular dynamics (AIMD), maximally localized Wannier functions (MLWFs), and thermodynamic analysis were employed to elucidate the storage efficiencies at operationally practical conditions. The findings reveal that pristine BPL decorated by the selected metals are all inefficient for H2 storage because of the sensitive crystal instability caused by the energetic aggregation of the metallic dopants. On the other hand, point-defected BPL resolves this issue because it adequately magnifies the binding energies with all the decorated metals via the highly ionic bonds. Crucially, these binding energies exceed the cohesive counterparts of the parental metal bulks, consequently stabilizing the crystal integrity. Intriguingly, the Li- and Na-decorated divacancy BPL retain the ultimate H2 storage capacities of 6.76 wt% and 6.66 wt% at the practical temperature and pressure, respectively, surpassing the goal value of 5.50 wt% to be achieved by 2025. Hence, metal-functionalized BPL are conclusively the promising carbon materials for the H2 storage functionality.

Publication Type: Journal Article
Source of Publication: Applied Surface Science, v.629, p. 1-9
Publisher: Elsevier BV
Place of Publication: The Netherlands
ISSN: 1873-5584
0169-4332
Fields of Research (FoR) 2020: 340799 Theoretical and computational chemistry not elsewhere classified
Socio-Economic Objective (SEO) 2020: 170304 Energy storage (excl. hydrogen and batteries)
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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