Theoretical study on hydrogen interaction with calcium decorated silicon carbide nanotube

Hydrogen storage poses limitations in maximizing the use of hydrogen as an energy source for industrial applications. The search and realization of lightweight materials which can store significant amount of hydrogen in its condensed form, at ambient conditions, is still a continuing challenge for r...

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Main Author: Gueriba, Jessiel S.
Format: text
Language:English
Published: Animo Repository 2015
Online Access:https://animorepository.dlsu.edu.ph/etd_masteral/4837
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Institution: De La Salle University
Language: English
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spelling oai:animorepository.dlsu.edu.ph:etd_masteral-116752021-02-07T01:14:15Z Theoretical study on hydrogen interaction with calcium decorated silicon carbide nanotube Gueriba, Jessiel S. Hydrogen storage poses limitations in maximizing the use of hydrogen as an energy source for industrial applications. The search and realization of lightweight materials which can store significant amount of hydrogen in its condensed form, at ambient conditions, is still a continuing challenge for researchers today. A first principles study on the viability of calcium decorated silicon carbide nanotube (SiCNT) as a hydrogen storage material was conducted. Silicon carbide strongly enabled Ca decoration, evident on calciums large binding energy of -2.83 eV on the hollow site of the nanotube. Calciums low cohesive energy and strong binding with SiCNT may prevent the metal decoration to form clusters with other adsorbates. Bader charge analysis also revealed that there is a charge transfer of 1.45e from Ca to SiCNT resulting to calcium's cationic state that may induce charge polarization to a nearby molecule such as hydrogen. Hydrogen molecule was then allowed to interact with the metal adsorbate where it indeed exhibits charge polarization, induced by the electric field emanating from calciums cationic state. This resulted to a significant binding energy of -0.22 eV. Multiple hydrogen was placed on the remaining adsorption sites near the calcium adatom with and without van der Waals correction. Results show that one Ca adatom can hold up to 6 hydrogen molecules without van der Waals correction while it can hold up to 7 hydrogen molecules with van der Waals correction with a much enhanced binding energy. Results reveal that Ca on SiCNT can be a promising candidate for a hydrogen storage material. 2015-01-01T08:00:00Z text https://animorepository.dlsu.edu.ph/etd_masteral/4837 Master's Theses English Animo Repository
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
language English
description Hydrogen storage poses limitations in maximizing the use of hydrogen as an energy source for industrial applications. The search and realization of lightweight materials which can store significant amount of hydrogen in its condensed form, at ambient conditions, is still a continuing challenge for researchers today. A first principles study on the viability of calcium decorated silicon carbide nanotube (SiCNT) as a hydrogen storage material was conducted. Silicon carbide strongly enabled Ca decoration, evident on calciums large binding energy of -2.83 eV on the hollow site of the nanotube. Calciums low cohesive energy and strong binding with SiCNT may prevent the metal decoration to form clusters with other adsorbates. Bader charge analysis also revealed that there is a charge transfer of 1.45e from Ca to SiCNT resulting to calcium's cationic state that may induce charge polarization to a nearby molecule such as hydrogen. Hydrogen molecule was then allowed to interact with the metal adsorbate where it indeed exhibits charge polarization, induced by the electric field emanating from calciums cationic state. This resulted to a significant binding energy of -0.22 eV. Multiple hydrogen was placed on the remaining adsorption sites near the calcium adatom with and without van der Waals correction. Results show that one Ca adatom can hold up to 6 hydrogen molecules without van der Waals correction while it can hold up to 7 hydrogen molecules with van der Waals correction with a much enhanced binding energy. Results reveal that Ca on SiCNT can be a promising candidate for a hydrogen storage material.
format text
author Gueriba, Jessiel S.
spellingShingle Gueriba, Jessiel S.
Theoretical study on hydrogen interaction with calcium decorated silicon carbide nanotube
author_facet Gueriba, Jessiel S.
author_sort Gueriba, Jessiel S.
title Theoretical study on hydrogen interaction with calcium decorated silicon carbide nanotube
title_short Theoretical study on hydrogen interaction with calcium decorated silicon carbide nanotube
title_full Theoretical study on hydrogen interaction with calcium decorated silicon carbide nanotube
title_fullStr Theoretical study on hydrogen interaction with calcium decorated silicon carbide nanotube
title_full_unstemmed Theoretical study on hydrogen interaction with calcium decorated silicon carbide nanotube
title_sort theoretical study on hydrogen interaction with calcium decorated silicon carbide nanotube
publisher Animo Repository
publishDate 2015
url https://animorepository.dlsu.edu.ph/etd_masteral/4837
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