Hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis

The variety of physical and electrical properties of electronics devices utilising advanced material can be seen from the energy band structure. This paper investigates Carbon-doped Boron Nitride Nanoribbon (BC2NNR) energy band structure through computational simulation. This is to see how the energ...

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Main Authors: Taib, Ainun Khairiyah, Johari, Zaharah, Abd. Rahman, Shaharin Fadzli, Mohd. Yusoff, Mohd. Fairus, Hamzah, Muhammad Afiq
Format: Conference or Workshop Item
Published: 2022
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Online Access:http://eprints.utm.my/id/eprint/98818/
http://dx.doi.org/10.1109/ICSE56004.2022.9863205
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Institution: Universiti Teknologi Malaysia
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spelling my.utm.988182023-02-02T09:17:39Z http://eprints.utm.my/id/eprint/98818/ Hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis Taib, Ainun Khairiyah Johari, Zaharah Abd. Rahman, Shaharin Fadzli Mohd. Yusoff, Mohd. Fairus Hamzah, Muhammad Afiq TK Electrical engineering. Electronics Nuclear engineering The variety of physical and electrical properties of electronics devices utilising advanced material can be seen from the energy band structure. This paper investigates Carbon-doped Boron Nitride Nanoribbon (BC2NNR) energy band structure through computational simulation. This is to see how the energy band gap of BC2NNR varies when the width, n is changing. Subsequently, hydrogen gas is attached at three different positions on BC2NNR and the shifting of the sub-bands is observed in the energy band structure. For both pristine BC2NNR, and hydrogen-BC2NNR cases, the density of state (DOS), as well adsorption energy and charge transfer are evaluated to study the sensing performances. From the simulation, a notable reduction in the energy band gap by over 50% is found for pristine BC2NNR with width, n=4 compared to BNNR. The three different positions of hydrogen show significant changes in the charge transfer and infinitesimal changes in the adsorption energy, indicating there is no favourable binding site for H2 gas on BC2NNR. The result presented here provides compelling evidence for using BC2NNR for gas sensing applications. 2022 Conference or Workshop Item PeerReviewed Taib, Ainun Khairiyah and Johari, Zaharah and Abd. Rahman, Shaharin Fadzli and Mohd. Yusoff, Mohd. Fairus and Hamzah, Muhammad Afiq (2022) Hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis. In: 2022 IEEE International Conference on Semiconductor Electronics, ICSE 2022, 15 August 2022 - 17 August 2022, Virtual, Kuala Lumpur. http://dx.doi.org/10.1109/ICSE56004.2022.9863205
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Taib, Ainun Khairiyah
Johari, Zaharah
Abd. Rahman, Shaharin Fadzli
Mohd. Yusoff, Mohd. Fairus
Hamzah, Muhammad Afiq
Hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis
description The variety of physical and electrical properties of electronics devices utilising advanced material can be seen from the energy band structure. This paper investigates Carbon-doped Boron Nitride Nanoribbon (BC2NNR) energy band structure through computational simulation. This is to see how the energy band gap of BC2NNR varies when the width, n is changing. Subsequently, hydrogen gas is attached at three different positions on BC2NNR and the shifting of the sub-bands is observed in the energy band structure. For both pristine BC2NNR, and hydrogen-BC2NNR cases, the density of state (DOS), as well adsorption energy and charge transfer are evaluated to study the sensing performances. From the simulation, a notable reduction in the energy band gap by over 50% is found for pristine BC2NNR with width, n=4 compared to BNNR. The three different positions of hydrogen show significant changes in the charge transfer and infinitesimal changes in the adsorption energy, indicating there is no favourable binding site for H2 gas on BC2NNR. The result presented here provides compelling evidence for using BC2NNR for gas sensing applications.
format Conference or Workshop Item
author Taib, Ainun Khairiyah
Johari, Zaharah
Abd. Rahman, Shaharin Fadzli
Mohd. Yusoff, Mohd. Fairus
Hamzah, Muhammad Afiq
author_facet Taib, Ainun Khairiyah
Johari, Zaharah
Abd. Rahman, Shaharin Fadzli
Mohd. Yusoff, Mohd. Fairus
Hamzah, Muhammad Afiq
author_sort Taib, Ainun Khairiyah
title Hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis
title_short Hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis
title_full Hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis
title_fullStr Hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis
title_full_unstemmed Hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis
title_sort hydrogen gas on carbon-doped boron nitride nanoribbon performance analysis
publishDate 2022
url http://eprints.utm.my/id/eprint/98818/
http://dx.doi.org/10.1109/ICSE56004.2022.9863205
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