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Current–Voltage Characteristics of the Aziridine-Based Nano-Molecular Wires: a Light-Driven Molecular Switch

Author:
محمد وکیلی
,
Ayoub Kanaani
,
Mohamad Vakili
,
Davood Ajloo
,
Mehdi Nekoei
Year
: 2018
Abstract: Using nonequilibrium Green's function formalism combined first-principles density functional theory, we analyze the transport properties of a 4,4-dimethyl-6-(4-nitrophenyl)-2-phenyl-3,5-diaza-bicyclo[3.1.0]hex-2-ene molecular optical switch. The title molecule can convert between closed and open forms by visible or ultraviolet irradiation. The [Math Processing Error]–[Math Processing Error] characteristics, differential conductance, on-off ratio, electronic transmission coefficients, spatial distribution of molecular projected self-consistent Hamiltonian orbitals, HOMO-LUMO gaps, effect of electrode materials [Math Processing Error](111) ([Math Processing Error]Au, Ag and Pt) on electronic transport and different molecular geometries corresponding to the closed and open forms through the molecular device are discussed in detail. Based on the results, as soon as possible the open form translates to the closed form, and there is a switch from the ON state to the OFF state (low resistance switches to high resistance). Theoretical results show that the donor/acceptor substituent plays an important role in the electronic transport of molecular devices. The switching performance can be improved to some extent through suitable donor and acceptor substituents.
URI: http://libsearch.um.ac.ir:80/fum/handle/fum/3363907
Keyword(s): Current–Voltage Characteristics,Nano-Molecular Wire,Molecular Switch,4,4-dimethyl-6-(4-nitrophenyl)-2-phenyl-3,5-diaza-bicyclo[3,1,0]hex-2-ene
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    Current–Voltage Characteristics of the Aziridine-Based Nano-Molecular Wires: a Light-Driven Molecular Switch

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contributor authorمحمد وکیلیen
contributor authorAyoub Kanaanifa
contributor authorMohamad Vakilifa
contributor authorDavood Ajloofa
contributor authorMehdi Nekoeifa
date accessioned2020-06-06T13:39:35Z
date available2020-06-06T13:39:35Z
date issued2018
identifier urihttp://libsearch.um.ac.ir:80/fum/handle/fum/3363907?locale-attribute=en
description abstractUsing nonequilibrium Green's function formalism combined first-principles density functional theory, we analyze the transport properties of a 4,4-dimethyl-6-(4-nitrophenyl)-2-phenyl-3,5-diaza-bicyclo[3.1.0]hex-2-ene molecular optical switch. The title molecule can convert between closed and open forms by visible or ultraviolet irradiation. The [Math Processing Error]–[Math Processing Error] characteristics, differential conductance, on-off ratio, electronic transmission coefficients, spatial distribution of molecular projected self-consistent Hamiltonian orbitals, HOMO-LUMO gaps, effect of electrode materials [Math Processing Error](111) ([Math Processing Error]Au, Ag and Pt) on electronic transport and different molecular geometries corresponding to the closed and open forms through the molecular device are discussed in detail. Based on the results, as soon as possible the open form translates to the closed form, and there is a switch from the ON state to the OFF state (low resistance switches to high resistance). Theoretical results show that the donor/acceptor substituent plays an important role in the electronic transport of molecular devices. The switching performance can be improved to some extent through suitable donor and acceptor substituents.en
languageEnglish
titleCurrent–Voltage Characteristics of the Aziridine-Based Nano-Molecular Wires: a Light-Driven Molecular Switchen
typeJournal Paper
contenttypeExternal Fulltext
subject keywordsCurrent–Voltage Characteristicsen
subject keywordsNano-Molecular Wireen
subject keywordsMolecular Switchen
subject keywords4en
subject keywords4-dimethyl-6-(4-nitrophenyl)-2-phenyl-3en
subject keywords5-diaza-bicyclo[3en
subject keywords1en
subject keywords0]hex-2-eneen
journal titleChinese Physics Lettersfa
pages48501-48501
journal volume35
journal issue4
identifier linkhttps://profdoc.um.ac.ir/paper-abstract-1067896.html
identifier articleid1067896
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