Hydrogen adsorption on calcium-decorated planar aluminene using density functional theory

With the rising demand for clean energy, the concept of hydrogen economy has grown more popular, and with this popularity the need for better hydrogen storage materials increases. Decorated surface materials such as planar hexagonal aluminene are being studied to determine their potential as good hy...

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Main Authors: Bayasen, D. S., Villagracia, Al Rey C., Jr., Pedrosa, Gian Ross, Lin, H., Ong, Hui Lin, David, Melanie Y., Arboleda, Nelson B., Jr.
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Published: Animo Repository 2020
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/1612
https://animorepository.dlsu.edu.ph/context/faculty_research/article/2611/type/native/viewcontent
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-26112022-08-30T02:26:29Z Hydrogen adsorption on calcium-decorated planar aluminene using density functional theory Bayasen, D. S. Villagracia, Al Rey C., Jr. Pedrosa, Gian Ross Lin, H. Ong, Hui Lin David, Melanie Y. Arboleda, Nelson B., Jr. With the rising demand for clean energy, the concept of hydrogen economy has grown more popular, and with this popularity the need for better hydrogen storage materials increases. Decorated surface materials such as planar hexagonal aluminene are being studied to determine their potential as good hydrogen storage materials. This study theoretically investigates hydrogen adsorption on aluminene decorated with calcium, where calcium is binded on the top, bridge and hollow sites of aluminene using density functional theory. Results on decoration adsorption have shown that calcium can easily bind a distance of 1.80 Å to 2.80 Å on the top, bridge and hollow sites with binding energies of 1.85 eV, 2.01 eV, and 3.32 eV, respectively. The density of states of the calcium-decorated surface show that its electronic property is generally maintained with zero magnetization. Small amount of charges were adsorbed from the aluminium atoms to the calcium atom based on the charge difference. This leads to hydrogen molecule adsorption with low adsorption energies ranging from 34.13 meV to 80.51 meV. In addition, minimal broadening of energy levels were shown by the density of states. With these results, it can be concluded that planar hexagonal aluminene with low concentration of calcium atoms may lower the hydrogen capacity of aluminene. © 2020 Institute of Physics Publishing. All rights reserved. 2020-04-06T07:00:00Z text text/html https://animorepository.dlsu.edu.ph/faculty_research/1612 https://animorepository.dlsu.edu.ph/context/faculty_research/article/2611/type/native/viewcontent Faculty Research Work Animo Repository Hydrogen—Storage Hydrogen—Absorption and adsorption Density functionals Physics
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
topic Hydrogen—Storage
Hydrogen—Absorption and adsorption
Density functionals
Physics
spellingShingle Hydrogen—Storage
Hydrogen—Absorption and adsorption
Density functionals
Physics
Bayasen, D. S.
Villagracia, Al Rey C., Jr.
Pedrosa, Gian Ross
Lin, H.
Ong, Hui Lin
David, Melanie Y.
Arboleda, Nelson B., Jr.
Hydrogen adsorption on calcium-decorated planar aluminene using density functional theory
description With the rising demand for clean energy, the concept of hydrogen economy has grown more popular, and with this popularity the need for better hydrogen storage materials increases. Decorated surface materials such as planar hexagonal aluminene are being studied to determine their potential as good hydrogen storage materials. This study theoretically investigates hydrogen adsorption on aluminene decorated with calcium, where calcium is binded on the top, bridge and hollow sites of aluminene using density functional theory. Results on decoration adsorption have shown that calcium can easily bind a distance of 1.80 Å to 2.80 Å on the top, bridge and hollow sites with binding energies of 1.85 eV, 2.01 eV, and 3.32 eV, respectively. The density of states of the calcium-decorated surface show that its electronic property is generally maintained with zero magnetization. Small amount of charges were adsorbed from the aluminium atoms to the calcium atom based on the charge difference. This leads to hydrogen molecule adsorption with low adsorption energies ranging from 34.13 meV to 80.51 meV. In addition, minimal broadening of energy levels were shown by the density of states. With these results, it can be concluded that planar hexagonal aluminene with low concentration of calcium atoms may lower the hydrogen capacity of aluminene. © 2020 Institute of Physics Publishing. All rights reserved.
format text
author Bayasen, D. S.
Villagracia, Al Rey C., Jr.
Pedrosa, Gian Ross
Lin, H.
Ong, Hui Lin
David, Melanie Y.
Arboleda, Nelson B., Jr.
author_facet Bayasen, D. S.
Villagracia, Al Rey C., Jr.
Pedrosa, Gian Ross
Lin, H.
Ong, Hui Lin
David, Melanie Y.
Arboleda, Nelson B., Jr.
author_sort Bayasen, D. S.
title Hydrogen adsorption on calcium-decorated planar aluminene using density functional theory
title_short Hydrogen adsorption on calcium-decorated planar aluminene using density functional theory
title_full Hydrogen adsorption on calcium-decorated planar aluminene using density functional theory
title_fullStr Hydrogen adsorption on calcium-decorated planar aluminene using density functional theory
title_full_unstemmed Hydrogen adsorption on calcium-decorated planar aluminene using density functional theory
title_sort hydrogen adsorption on calcium-decorated planar aluminene using density functional theory
publisher Animo Repository
publishDate 2020
url https://animorepository.dlsu.edu.ph/faculty_research/1612
https://animorepository.dlsu.edu.ph/context/faculty_research/article/2611/type/native/viewcontent
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