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Photon Statistics of Incoherent Cathodoluminescence with Continuous and Pulsed Electron Beams

[Image: see text] Photon bunching in incoherent cathodoluminescence (CL) spectroscopy originates from the fact that a single high-energy electron can generate multiple photons when interacting with a material, thus, revealing key properties of electron–matter excitation. Contrary to previous works b...

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Autores principales: Solà-Garcia, Magdalena, Mauser, Kelly W., Liebtrau, Matthias, Coenen, Toon, Christiansen, Silke, Meuret, Sophie, Polman, Albert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7976602/
https://www.ncbi.nlm.nih.gov/pubmed/33763505
http://dx.doi.org/10.1021/acsphotonics.0c01939
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author Solà-Garcia, Magdalena
Mauser, Kelly W.
Liebtrau, Matthias
Coenen, Toon
Christiansen, Silke
Meuret, Sophie
Polman, Albert
author_facet Solà-Garcia, Magdalena
Mauser, Kelly W.
Liebtrau, Matthias
Coenen, Toon
Christiansen, Silke
Meuret, Sophie
Polman, Albert
author_sort Solà-Garcia, Magdalena
collection PubMed
description [Image: see text] Photon bunching in incoherent cathodoluminescence (CL) spectroscopy originates from the fact that a single high-energy electron can generate multiple photons when interacting with a material, thus, revealing key properties of electron–matter excitation. Contrary to previous works based on Monte Carlo modeling, here we present a fully analytical model describing the amplitude and shape of the second order autocorrelation function (g((2))(τ)) for continuous and pulsed electron beams. Moreover, we extend the analysis of photon bunching to ultrashort electron pulses, in which up to 500 electrons per pulse excite the sample within a few picoseconds. We obtain a simple equation relating the bunching strength (g((2))(0)) to the electron beam current, emitter decay lifetime, pulse duration, in the case of pulsed electron beams, and electron excitation efficiency (γ), defined as the probability that an electron creates at least one interaction with the emitter. The analytical model shows good agreement with the experimental data obtained on InGaN/GaN quantum wells using continuous, ns-pulsed (using beam blanker) and ultrashort ps-pulsed (using photoemission) electron beams. We extract excitation efficiencies of 0.13 and 0.05 for 10 and 8 keV electron beams, respectively, and we observe that nonlinear effects play no compelling role, even after excitation with ultrashort and dense electron cascades in the quantum wells.
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spelling pubmed-79766022021-03-22 Photon Statistics of Incoherent Cathodoluminescence with Continuous and Pulsed Electron Beams Solà-Garcia, Magdalena Mauser, Kelly W. Liebtrau, Matthias Coenen, Toon Christiansen, Silke Meuret, Sophie Polman, Albert ACS Photonics [Image: see text] Photon bunching in incoherent cathodoluminescence (CL) spectroscopy originates from the fact that a single high-energy electron can generate multiple photons when interacting with a material, thus, revealing key properties of electron–matter excitation. Contrary to previous works based on Monte Carlo modeling, here we present a fully analytical model describing the amplitude and shape of the second order autocorrelation function (g((2))(τ)) for continuous and pulsed electron beams. Moreover, we extend the analysis of photon bunching to ultrashort electron pulses, in which up to 500 electrons per pulse excite the sample within a few picoseconds. We obtain a simple equation relating the bunching strength (g((2))(0)) to the electron beam current, emitter decay lifetime, pulse duration, in the case of pulsed electron beams, and electron excitation efficiency (γ), defined as the probability that an electron creates at least one interaction with the emitter. The analytical model shows good agreement with the experimental data obtained on InGaN/GaN quantum wells using continuous, ns-pulsed (using beam blanker) and ultrashort ps-pulsed (using photoemission) electron beams. We extract excitation efficiencies of 0.13 and 0.05 for 10 and 8 keV electron beams, respectively, and we observe that nonlinear effects play no compelling role, even after excitation with ultrashort and dense electron cascades in the quantum wells. American Chemical Society 2021-02-11 2021-03-17 /pmc/articles/PMC7976602/ /pubmed/33763505 http://dx.doi.org/10.1021/acsphotonics.0c01939 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Solà-Garcia, Magdalena
Mauser, Kelly W.
Liebtrau, Matthias
Coenen, Toon
Christiansen, Silke
Meuret, Sophie
Polman, Albert
Photon Statistics of Incoherent Cathodoluminescence with Continuous and Pulsed Electron Beams
title Photon Statistics of Incoherent Cathodoluminescence with Continuous and Pulsed Electron Beams
title_full Photon Statistics of Incoherent Cathodoluminescence with Continuous and Pulsed Electron Beams
title_fullStr Photon Statistics of Incoherent Cathodoluminescence with Continuous and Pulsed Electron Beams
title_full_unstemmed Photon Statistics of Incoherent Cathodoluminescence with Continuous and Pulsed Electron Beams
title_short Photon Statistics of Incoherent Cathodoluminescence with Continuous and Pulsed Electron Beams
title_sort photon statistics of incoherent cathodoluminescence with continuous and pulsed electron beams
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7976602/
https://www.ncbi.nlm.nih.gov/pubmed/33763505
http://dx.doi.org/10.1021/acsphotonics.0c01939
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