Hydrogen adsorption on boron nitride nanotubes functionalized with transition metals

The implementation and effectiveness of the adsorption of H2 on Transition Metal-doped boron nitride nanotubes (TM/BNNT) with B[sbnd]N defects was evaluated with the aide of spin-unrestricted Density Functional Theory formalism. The results indicate that due to the formation of non-hexagonal rings i...

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Main Authors: Mananghaya, Michael, Yu, Dennis, Santos, Gil Nonato
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Published: Animo Repository 2016
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/1418
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-24172021-06-28T01:20:25Z Hydrogen adsorption on boron nitride nanotubes functionalized with transition metals Mananghaya, Michael Yu, Dennis Santos, Gil Nonato The implementation and effectiveness of the adsorption of H2 on Transition Metal-doped boron nitride nanotubes (TM/BNNT) with B[sbnd]N defects was evaluated with the aide of spin-unrestricted Density Functional Theory formalism. The results indicate that due to the formation of non-hexagonal rings in the defective BNNT model arising from the removal of a B[sbnd]N bond, the TM preferentially occupies the nitrogen over the boron site of the defect. Among nanotubes doped with TMs, Titanium and Vanadium exhibits qualities appropriate to act as a media for hydrogen storage. Hybridization of the 3d of both Ti and V orbital with the H-1s orbital contributes to the hydrogen adsorption. Ti and V clustering was suppressed by preferential binding of Ti/V atoms on BNNT defects. Finally, the proposed Ti/BNNT as a hydrogen storage substrate is better than the recently predicted Nitrogen doped Carbon Nanotube with divacancy due to its superior heteropolar binding nature such that each Ti can hold up to seven hydrogen molecules near its vicinity that corresponds to a 7.17 wt% H2 with reversible adsorption energy at room temperature. © 2016 Hydrogen Energy Publications LLC 2016-08-17T07:00:00Z text text/html https://animorepository.dlsu.edu.ph/faculty_research/1418 https://animorepository.dlsu.edu.ph/context/faculty_research/article/2417/type/native/viewcontent Faculty Research Work Animo Repository Hydrogen—Absorption and adsorption Computer simulation Nanostructures Chemical Engineering
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—Absorption and adsorption
Computer simulation
Nanostructures
Chemical Engineering
spellingShingle Hydrogen—Absorption and adsorption
Computer simulation
Nanostructures
Chemical Engineering
Mananghaya, Michael
Yu, Dennis
Santos, Gil Nonato
Hydrogen adsorption on boron nitride nanotubes functionalized with transition metals
description The implementation and effectiveness of the adsorption of H2 on Transition Metal-doped boron nitride nanotubes (TM/BNNT) with B[sbnd]N defects was evaluated with the aide of spin-unrestricted Density Functional Theory formalism. The results indicate that due to the formation of non-hexagonal rings in the defective BNNT model arising from the removal of a B[sbnd]N bond, the TM preferentially occupies the nitrogen over the boron site of the defect. Among nanotubes doped with TMs, Titanium and Vanadium exhibits qualities appropriate to act as a media for hydrogen storage. Hybridization of the 3d of both Ti and V orbital with the H-1s orbital contributes to the hydrogen adsorption. Ti and V clustering was suppressed by preferential binding of Ti/V atoms on BNNT defects. Finally, the proposed Ti/BNNT as a hydrogen storage substrate is better than the recently predicted Nitrogen doped Carbon Nanotube with divacancy due to its superior heteropolar binding nature such that each Ti can hold up to seven hydrogen molecules near its vicinity that corresponds to a 7.17 wt% H2 with reversible adsorption energy at room temperature. © 2016 Hydrogen Energy Publications LLC
format text
author Mananghaya, Michael
Yu, Dennis
Santos, Gil Nonato
author_facet Mananghaya, Michael
Yu, Dennis
Santos, Gil Nonato
author_sort Mananghaya, Michael
title Hydrogen adsorption on boron nitride nanotubes functionalized with transition metals
title_short Hydrogen adsorption on boron nitride nanotubes functionalized with transition metals
title_full Hydrogen adsorption on boron nitride nanotubes functionalized with transition metals
title_fullStr Hydrogen adsorption on boron nitride nanotubes functionalized with transition metals
title_full_unstemmed Hydrogen adsorption on boron nitride nanotubes functionalized with transition metals
title_sort hydrogen adsorption on boron nitride nanotubes functionalized with transition metals
publisher Animo Repository
publishDate 2016
url https://animorepository.dlsu.edu.ph/faculty_research/1418
https://animorepository.dlsu.edu.ph/context/faculty_research/article/2417/type/native/viewcontent
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