Engineering energy gap of the carbon saturated nanowire and investigating the ammonia molecule doping effects by using the initial calculations (Ab initio)

In this paper size effects, growth orientation and also doping by Ammonia molecule (NH3) on the carbon nanowire properties with saturated diamond structure by (DNw:H) have been investigated. This study was carried out using DFT theory and Kohn-Sham equation by self-consistent field (SCF) that perfor...

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Main Authors: F marsusi, S M monavari
Format: Article
Language:English
Published: Isfahan University of Technology 2019-09-01
Series:Iranian Journal of Physics Research
Subjects:
Online Access:http://ijpr.iut.ac.ir/article-1-2346-en.html
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spelling doaj-947e5905a45d42afb6d6f8ece348d8c62020-11-25T02:35:13ZengIsfahan University of TechnologyIranian Journal of Physics Research1682-69572345-36642019-09-01192241248Engineering energy gap of the carbon saturated nanowire and investigating the ammonia molecule doping effects by using the initial calculations (Ab initio)F marsusi0S M monavari1 Faculty of Physics, Amirkabir University of Technology (Tehran Polytechnic), Tehran, Iran Faculty of Physics, Amirkabir University of Technology (Tehran Polytechnic), Tehran, Iran In this paper size effects, growth orientation and also doping by Ammonia molecule (NH3) on the carbon nanowire properties with saturated diamond structure by (DNw:H) have been investigated. This study was carried out using DFT theory and Kohn-Sham equation by self-consistent field (SCF) that performed by local density approximation (LDA). The nanowires morphology is cylindrical with [111] growth orientation and their lateral surface was saturated by hydrogen atoms. The results show that band gap of these nanowires is smaller to bulk diamond due to high surface to volume ratio and formation surface level. The results of ammonia molecule doping with carbon surface atoms at saturated diamond nanowire in [100] orientation lead to decrease in band gap until nanowire converted into a n-type semiconductor.http://ijpr.iut.ac.ir/article-1-2346-en.htmldopantAmmoniadiamondcut of energygrowth orientationself-consistent fielddensity of statesquantum confinementband gapnanowiredensity functional theory
collection DOAJ
language English
format Article
sources DOAJ
author F marsusi
S M monavari
spellingShingle F marsusi
S M monavari
Engineering energy gap of the carbon saturated nanowire and investigating the ammonia molecule doping effects by using the initial calculations (Ab initio)
Iranian Journal of Physics Research
dopant
Ammonia
diamond
cut of energy
growth orientation
self-consistent field
density of states
quantum confinement
band gap
nanowire
density functional theory
author_facet F marsusi
S M monavari
author_sort F marsusi
title Engineering energy gap of the carbon saturated nanowire and investigating the ammonia molecule doping effects by using the initial calculations (Ab initio)
title_short Engineering energy gap of the carbon saturated nanowire and investigating the ammonia molecule doping effects by using the initial calculations (Ab initio)
title_full Engineering energy gap of the carbon saturated nanowire and investigating the ammonia molecule doping effects by using the initial calculations (Ab initio)
title_fullStr Engineering energy gap of the carbon saturated nanowire and investigating the ammonia molecule doping effects by using the initial calculations (Ab initio)
title_full_unstemmed Engineering energy gap of the carbon saturated nanowire and investigating the ammonia molecule doping effects by using the initial calculations (Ab initio)
title_sort engineering energy gap of the carbon saturated nanowire and investigating the ammonia molecule doping effects by using the initial calculations (ab initio)
publisher Isfahan University of Technology
series Iranian Journal of Physics Research
issn 1682-6957
2345-3664
publishDate 2019-09-01
description In this paper size effects, growth orientation and also doping by Ammonia molecule (NH3) on the carbon nanowire properties with saturated diamond structure by (DNw:H) have been investigated. This study was carried out using DFT theory and Kohn-Sham equation by self-consistent field (SCF) that performed by local density approximation (LDA). The nanowires morphology is cylindrical with [111] growth orientation and their lateral surface was saturated by hydrogen atoms. The results show that band gap of these nanowires is smaller to bulk diamond due to high surface to volume ratio and formation surface level. The results of ammonia molecule doping with carbon surface atoms at saturated diamond nanowire in [100] orientation lead to decrease in band gap until nanowire converted into a n-type semiconductor.
topic dopant
Ammonia
diamond
cut of energy
growth orientation
self-consistent field
density of states
quantum confinement
band gap
nanowire
density functional theory
url http://ijpr.iut.ac.ir/article-1-2346-en.html
work_keys_str_mv AT fmarsusi engineeringenergygapofthecarbonsaturatednanowireandinvestigatingtheammoniamoleculedopingeffectsbyusingtheinitialcalculationsabinitio
AT smmonavari engineeringenergygapofthecarbonsaturatednanowireandinvestigatingtheammoniamoleculedopingeffectsbyusingtheinitialcalculationsabinitio
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