Haupttitel:
Impact of dark excitons on Förster-type resonant energy transfer between dye molecules and atomically thin semiconductors
Autor*in:
Katzer, Manuel; Kovalchuk, Sviatoslav; Greben, Kyrylo; Bolotin, Kirill; Selig, Malte; Knorr, Andreas
Datum der Freigabe:
2024-04-10T12:13:17Z
Abstract:
Interfaces of dye molecules and two-dimensional transition metal dichalcogenides (TMDCs) combine strong molecular dipole excitations with high carrier mobilities in semiconductors. Förster type energy transfer is one key mechanism for the coupling between both constituents. We report microscopic calculations of a spectrally resolved Förster induced transition rate from dye molecules to a TMDC layer. Our approach is based on microscopic Bloch equations which are solved self-consistently together with Maxwell's equations. This approach allows to incorporate the dielectric environment of a TMDC semiconductor, sandwiched between donor molecules and a substrate. Our analysis reveals transfer rates in the meV range for typical dye molecules in closely stacked structures, with a nontrivial dependence of the Förster rate on the molecular transition energy resulting from unique signatures of dark, momentum forbidden TMDC excitons.
Teil des Identifiers:
ISSN (print): 2469-9969
e-ISSN (online): 2469-9969
Freie Schlagwörter:
Carrier generation & recombination
Composite bosons
Dielectric properties
Electric polarization
Electronic structure of atoms & molecules
Excitons
Lifetimes & widths
Luminescence
Valleytronics
0-dimensional systems
Layered semiconductors
Multilayer thin films
Thin films
Transition metal dichalcogenides
Classical electromagnetism
Fluorescence spectroscopy
Maxwell's equations
Optical techniques
DDC-Klassifikation:
539 Moderne Physik
Publikationstyp:
Wissenschaftlicher Artikel
Jahrgang/Volume:
107 (2023)
Zeitschrift:
Physical review B
Verlag:
American Physical Society
Verlagsort:
College Park, MD
Fachbereich/Einrichtung:
Physik
Institut für Experimentalphysik