Orientation-controlled nonradiative energy transfer to colloidal nanoplatelets: engineering dipole orientation factor

buir.contributor.authorErdem, Onur
buir.contributor.authorGüngör, Kıvanç
buir.contributor.authorGüzeltürk, Burak
buir.contributor.authorTanrıöver, İbrahim
buir.contributor.authorSak, Mustafa
buir.contributor.authorOlutaş, Murat
buir.contributor.authorDede, Didem
buir.contributor.authorKelestemur, Yusuf
buir.contributor.authorDemir, Hilmi Volkan
buir.contributor.orcidDemir, Hilmi Volkan|0000-0003-1793-112X
dc.citation.epage4305en_US
dc.citation.issueNumber7en_US
dc.citation.spage4297en_US
dc.citation.volumeNumber19en_US
dc.contributor.authorErdem, Onuren_US
dc.contributor.authorGüngör, Kıvançen_US
dc.contributor.authorGüzeltürk, Buraken_US
dc.contributor.authorTanrıöver, İbrahimen_US
dc.contributor.authorSak, Mustafaen_US
dc.contributor.authorOlutaş, Muraten_US
dc.contributor.authorDede, Didemen_US
dc.contributor.authorKelestemur, Yusufen_US
dc.contributor.authorDemir, Hilmi Volkanen_US
dc.date.accessioned2020-02-17T09:44:57Z
dc.date.available2020-02-17T09:44:57Z
dc.date.issued2019
dc.departmentDepartment of Electrical and Electronics Engineeringen_US
dc.departmentDepartment of Physicsen_US
dc.departmentInstitute of Materials Science and Nanotechnology (UNAM)en_US
dc.description.abstractWe proposed and showed strongly orientation-controlled Förster resonance energy transfer (FRET) to highly anisotropic CdSe nanoplatelets (NPLs). For this purpose, we developed a liquid–air interface self-assembly technique specific to depositing a complete monolayer of NPLs only in a single desired orientation, either fully stacked (edge-up) or fully nonstacked (face-down), with near-unity surface coverage and across large areas over 20 cm2. These NPL monolayers were employed as acceptors in an energy transfer working model system to pair with CdZnS/ZnS core/shell quantum dots (QDs) as donors. We found the resulting energy transfer from the QDs to be significantly accelerated (by up to 50%) to the edge-up NPL monolayer compared to the face-down one. We revealed that this acceleration of FRET is accounted for by the enhancement of the dipole–dipole interaction factor between a QD-NPL pair (increased from 1/3 to 5/6) as well as the closer packing of NPLs with stacking. Also systematically studying the distance-dependence of FRET between QDs and NPL monolayers via varying their separation (d) with a dielectric spacer, we found out that the FRET rate scales with d–4 regardless of the specific NPL orientation. Our FRET model, which is based on the original Förster theory, computes the FRET efficiencies in excellent agreement with our experimental results and explains well the enhancement of FRET to NPLs with stacking. These findings indicate that the geometrical orientation of NPLs and thereby their dipole interaction strength can be exploited as an additional degree of freedom to control and tune the energy transfer rate.en_US
dc.identifier.doi10.1021/acs.nanolett.9b00681en_US
dc.identifier.issn1530-6984
dc.identifier.urihttp://hdl.handle.net/11693/53387
dc.language.isoEnglishen_US
dc.publisherAmerican Chemical Societyen_US
dc.relation.isversionofhttps://dx.doi.org/10.1021/acs.nanolett.9b00681en_US
dc.source.titleNano Lettersen_US
dc.subjectSemiconductor nanocrystalsen_US
dc.subjectNanoplateletsen_US
dc.subjectLiquid−air interface self-assemblyen_US
dc.subjectStackingen_US
dc.subjectEnergy transferen_US
dc.subjectDipole orientationen_US
dc.titleOrientation-controlled nonradiative energy transfer to colloidal nanoplatelets: engineering dipole orientation factoren_US
dc.typeArticleen_US

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