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Near-Unity Efficiency Energy Transfer from Colloidal Semiconductor Quantum Wells of CdSe/CdS Nanoplatelets to a Monolayer of MoS 2 .

Authors :
Taghipour N
Hernandez Martinez PL
Ozden A
Olutas M
Dede D
Gungor K
Erdem O
Perkgoz NK
Demir HV
Source :
ACS nano [ACS Nano] 2018 Aug 28; Vol. 12 (8), pp. 8547-8554. Date of Electronic Publication: 2018 Jul 13.
Publication Year :
2018

Abstract

A hybrid structure of the quasi-2D colloidal semiconductor quantum wells assembled with a single layer of 2D transition metal dichalcogenides offers the possibility of highly strong dipole-to-dipole coupling, which may enable extraordinary levels of efficiency in Förster resonance energy transfer (FRET). Here, we show ultrahigh-efficiency FRET from the ensemble thin films of CdSe/CdS nanoplatelets (NPLs) to a MoS <subscript>2</subscript> monolayer. From time-resolved fluorescence spectroscopy, we observed the suppression of the photoluminescence of the NPLs corresponding to the total rate of energy transfer from ∼0.4 to 268 ns <superscript>-1</superscript> . Using an Al <subscript>2</subscript> O <subscript>3</subscript> separating layer between CdSe/CdS and MoS <subscript>2</subscript> with thickness tuned from 5 to 1 nm, we found that FRET takes place 7- to 88-fold faster than the Auger recombination in CdSe-based NPLs. Our measurements reveal that the FRET rate scales down with d <superscript>-2</superscript> for the donor of CdSe/CdS NPLs and the acceptor of the MoS <subscript>2</subscript> monolayer, d being the center-to-center distance between this FRET pair. A full electromagnetic model explains the behavior of this d <superscript>-2</superscript> system. This scaling arises from the delocalization of the dipole fields in the ensemble thin film of the NPLs and full distribution of the electric field across the layer of MoS <subscript>2</subscript> . This d <superscript>-2</superscript> dependency results in an extraordinarily long Förster radius of ∼33 nm.

Details

Language :
English
ISSN :
1936-086X
Volume :
12
Issue :
8
Database :
MEDLINE
Journal :
ACS nano
Publication Type :
Academic Journal
Accession number :
29965729
Full Text :
https://doi.org/10.1021/acsnano.8b04119