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Plasmonic enhancement of electroluminescence
Author(s) -
Д. В. Гузатов,
С. В. Гапоненко,
Hilmi Volkan Demir
Publication year - 2018
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.5019778
Subject(s) - electroluminescence , quantum yield , plasmon , auger effect , quantum efficiency , photoluminescence , optoelectronics , auger , spontaneous emission , radiative transfer , common emitter , materials science , quantum dot , physics , atomic physics , optics , nanotechnology , laser , layer (electronics) , fluorescence
Here plasmonic effect specifically on electroluminescence (EL) is studied in terms of radiative and nonradiative decay rates for a dipole near a metal spherical nanoparticle (NP). Contribution from scattering is taken into account and is shown to play a decisive role in EL enhancement owing to pronounced size-dependent radiative decay enhancement and weak size effect on non-radiative counterpart. Unlike photoluminescence where local incident field factor mainly determines the enhancement possibility and level, EL enhancement is only possible by means of quantum yield rise, EL enhancement being feasible only for an intrinsic quantum yield Q0 < 1. The resulting plasmonic effect is independent of intrinsic emitter lifetime but is exclusively defined by the value of Q0, emission spectrum, NP diameter and emitter-metal spacing. For 0.1< Q0 < 0.25, Ag nanoparticles are shown to enhance LED/OLED intensity by several times over the whole visible whereas Au particles feature lower effect within the red-orange rang...

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