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dc.creatorDjurišić, Ivana
dc.creatorDražić, Miloš
dc.creatorTomović, Aleksandar
dc.creatorJovanović, Vladimir P.
dc.creatorŽikić, Radomir
dc.date.accessioned2022-04-05T15:32:37Z
dc.date.available2022-04-05T15:32:37Z
dc.date.issued2021
dc.identifier.issn1388-0764
dc.identifier.urihttp://rimsi.imsi.bg.ac.rs/handle/123456789/1412
dc.description.abstractThe requirement for controllable frontier orbital energy shift in single-molecule devices based on electronic (tunneling) transport yielded several rules for device design that lean on molecular level pinning to the electrochemical potential of nano-electrodes. We previously found that the pinning (designated as the strong pinning) was the consequence of the bias-induced molecular charge accumulation related to the hybridization of the highest occupied molecular orbital (HOMO) with one of the electrodes. However, in the wide bias range, only "partial" pinning (designated as the weak pinning) happens. In this work, we address the bias-induced shift of molecular orbitals in a weak pinning regime, where no hybridization or covalent bonds with electrodes exist. We found using density functional theory coupled with non-equilibrium Green's functions that the energy shift of frontier molecular orbitals of benzene and nicotine, placed between H-terminated (3, 3) CNTs, in weak pinning regime, is driven only by the electrostatic potential energy of an empty gap. For nicotine, whose HOMO and LUMO (lowest unoccupied molecular orbital) are located on different sides of the gap center, we show that the HOMO-LUMO energy gap changes with bias. We developed a theoretical model of a dielectric in a gap to depict this behavior. Application-wise, we expect that the weak pinning effect would be observable in novel single-molecule sensors based on electronic transport and molecular rectifying as long as the system exhibits a non-resonant behavior, and could serve for molecular gap tuning in single-molecule readout such as DNA, RNA and protein sequencing, or harmful single-molecule detection in gas phase.en
dc.publisherSpringer, Dordrecht
dc.relationinfo:eu-repo/grantAgreement/MESTD/inst-2020/200053/RS//
dc.relationSwiss National Science Foundation (SCOPES project)Swiss National Science Foundation (SNSF) [152406]
dc.relationFP7-NMP, project acronym nanoDNAsequencing [GA214840]
dc.rightsrestrictedAccess
dc.sourceJournal of Nanoparticle Research
dc.subjectSingle-moleculeen
dc.subjectMolecular level pinningen
dc.subjectModeling and simulationen
dc.subjectElectrostatic potentialen
dc.subjectElectronic transporten
dc.subjectDFT plus NEGFen
dc.subjectCarbon nanotubesen
dc.titleElectrostatically driven energy shift of molecular orbitals of benzene and nicotine in carbon nanotube gapsen
dc.typearticle
dc.rights.licenseARR
dc.citation.issue1
dc.citation.other23(1): -
dc.citation.rankM22
dc.citation.volume23
dc.identifier.doi10.1007/s11051-021-05139-y
dc.identifier.scopus2-s2.0-85100211702
dc.identifier.wos000616413500010
dc.type.versionpublishedVersion


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Приказ основних података о документу