Transition between cooperative emission regimes in giant perovskite nanocrystals

Fuente: arXiv
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Autores principales: Kobiyama, Etsuki, Rainò, Gabriele, Berezovska, Yuliia, Zhu, Chenglian, Boehme, Simon C., Bodnarchuk, Maryna I., Mahrt, Rainer F., Kovalenko, Maksym V., Stöferle, Thilo
Formato: Preprint
Publicado: 2024
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author Kobiyama, Etsuki
Rainò, Gabriele
Berezovska, Yuliia
Zhu, Chenglian
Boehme, Simon C.
Bodnarchuk, Maryna I.
Mahrt, Rainer F.
Kovalenko, Maksym V.
Stöferle, Thilo
author_facet Kobiyama, Etsuki
Rainò, Gabriele
Berezovska, Yuliia
Zhu, Chenglian
Boehme, Simon C.
Bodnarchuk, Maryna I.
Mahrt, Rainer F.
Kovalenko, Maksym V.
Stöferle, Thilo
contents Interactions between emitters within an ensemble can give rise to cooperative processes that significantly alter the properties of the emitted light. One such process is superfluorescence (SF), where excited electric dipoles spontaneously couple coherently and effectively radiate as one macroscopic emitter. It requires low energetic disorder, high temporal coherence and oscillator strength, and sub-wavelength volumes of material can be sufficient. Conversely, amplified spontaneous emission (ASE) originates from an avalanche-like stimulated amplification of initially spontaneously emitted photons and does not necessitate temporally coherent interactions among the emitters, but rather requires spatially long enough light propagation within the material to harvest the optical gain. Cesium lead halide perovskite nanocrystals (NCs) are one of the very few materials where both ASE (in disordered films) and SF (in ordered assemblies) were observed, however leaving unclear whether and how these regimes could be connected. Here, we demonstrate that temperature and excitation density can drive the transition between both regimes in a thin film of giant CsPbBr3 perovskite NCs. At temperatures below 45 K, excitonic SF was observed, whereas above a transition range between 45 K and 100 K, ASE prevails, but requires increased optical excitation and emitter density. Our results work out the different collective effects present in lead halide perovskites, providing fundamental insights into cooperative phenomena and important guidance for the development of compact and bright (quantum) light sources.
format Preprint
id arxiv_https___arxiv_org_abs_2410_04938
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Transition between cooperative emission regimes in giant perovskite nanocrystals
Kobiyama, Etsuki
Rainò, Gabriele
Berezovska, Yuliia
Zhu, Chenglian
Boehme, Simon C.
Bodnarchuk, Maryna I.
Mahrt, Rainer F.
Kovalenko, Maksym V.
Stöferle, Thilo
Mesoscale and Nanoscale Physics
Other Condensed Matter
Applied Physics
Optics
Interactions between emitters within an ensemble can give rise to cooperative processes that significantly alter the properties of the emitted light. One such process is superfluorescence (SF), where excited electric dipoles spontaneously couple coherently and effectively radiate as one macroscopic emitter. It requires low energetic disorder, high temporal coherence and oscillator strength, and sub-wavelength volumes of material can be sufficient. Conversely, amplified spontaneous emission (ASE) originates from an avalanche-like stimulated amplification of initially spontaneously emitted photons and does not necessitate temporally coherent interactions among the emitters, but rather requires spatially long enough light propagation within the material to harvest the optical gain. Cesium lead halide perovskite nanocrystals (NCs) are one of the very few materials where both ASE (in disordered films) and SF (in ordered assemblies) were observed, however leaving unclear whether and how these regimes could be connected. Here, we demonstrate that temperature and excitation density can drive the transition between both regimes in a thin film of giant CsPbBr3 perovskite NCs. At temperatures below 45 K, excitonic SF was observed, whereas above a transition range between 45 K and 100 K, ASE prevails, but requires increased optical excitation and emitter density. Our results work out the different collective effects present in lead halide perovskites, providing fundamental insights into cooperative phenomena and important guidance for the development of compact and bright (quantum) light sources.
title Transition between cooperative emission regimes in giant perovskite nanocrystals
topic Mesoscale and Nanoscale Physics
Other Condensed Matter
Applied Physics
Optics
url https://arxiv.org/abs/2410.04938