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Please use this identifier to cite or link to this item: https://elib.bsu.by/handle/123456789/288061
Title: Tuning trion binding energy and oscillator strength in a laterally finite 2D system: CdSe nanoplatelets as a model system for trion properties
Authors: Ayari, S.
Quick, M.T.
Owschimikow, N.
Christodoulou, S.
Bertrand, G. H. V.
Artemyev, M.
Moreels, I.
Woggon, U.
Jaziria, S.
Achtstein, A. W.
Keywords: ЭБ БГУ::ТЕХНИЧЕСКИЕ И ПРИКЛАДНЫЕ НАУКИ. ОТРАСЛИ ЭКОНОМИКИ::Электроника. Радиотехника
ЭБ БГУ::ЕСТЕСТВЕННЫЕ И ТОЧНЫЕ НАУКИ::Химия
Issue Date: 2020
Publisher: Royal Society of Chemistry
Citation: Nanoscale 2020;12(27):14448-14458
Abstract: We present a theoretical study combined with experimental validations demonstrating that CdSe nanoplatelets are a model system to investigate the tunability of trions and excitons in laterally finite 2D semiconductors. Our results show that the trion binding energy can be tuned from 36 meV to 18 meV with the lateral size and decreasing aspect ratio, while the oscillator strength ratio of trions to excitons decreases. In contrast to conventional quantum dots, the trion oscillator strength in a nanoplatelet at low temperature is smaller than that of the exciton. The trion and exciton Bohr radii become lateral size tunable, e.g. from ∼3.5 to 4.8 nm for the trion. We show that dielectric screening has strong impact on these properties. By theoretical modeling of transition energies, binding energies and oscillator strength of trions and excitons and comparison with experimental findings, we demonstrate that these properties are lateral size and aspect ratio tunable and can be engineered by dielectric confinement, allowing to suppress e.g. detrimental trion emission in devices. Our results strongly impact further in-depth studies, as the demonstrated lateral size tunable trion and exciton manifold is expected to influence properties like gain mechanisms, lasing, quantum efficiency and transport even at room temperature due to the high and tunable trion binding energies.
URI: https://elib.bsu.by/handle/123456789/288061
DOI: 10.1039/d0nr03170d
Scopus: 85088271076
Sponsorship: A. W. A. acknowledges funding by DFG projects AC290/2-1 and AC290/2-2 and I. M. by the European Research Council (ERC) Horizon 2020 research and innovation programme (grant no. 714876 PHOCONA)
Licence: info:eu-repo/semantics/openAccess
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