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Probing buried recombination pathways in perovskite structures using 3D photoluminescence tomography

Perovskite solar cells and light-emission devices are yet to achieve their full potential owing in part to microscale inhomogeneities and defects that act as non-radiative loss pathways. These sites have been revealed using local photoluminescence mapping techniques but the short absorption depth of...

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Autores principales: Stavrakas, Camille, Zhumekenov, Ayan A., Brenes, Roberto, Abdi-Jalebi, Mojtaba, Bulović, Vladimir, Bakr, Osman M., Barnard, Edward S., Stranks, Samuel D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6333269/
https://www.ncbi.nlm.nih.gov/pubmed/30713582
http://dx.doi.org/10.1039/c8ee00928g
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author Stavrakas, Camille
Zhumekenov, Ayan A.
Brenes, Roberto
Abdi-Jalebi, Mojtaba
Bulović, Vladimir
Bakr, Osman M.
Barnard, Edward S.
Stranks, Samuel D.
author_facet Stavrakas, Camille
Zhumekenov, Ayan A.
Brenes, Roberto
Abdi-Jalebi, Mojtaba
Bulović, Vladimir
Bakr, Osman M.
Barnard, Edward S.
Stranks, Samuel D.
author_sort Stavrakas, Camille
collection PubMed
description Perovskite solar cells and light-emission devices are yet to achieve their full potential owing in part to microscale inhomogeneities and defects that act as non-radiative loss pathways. These sites have been revealed using local photoluminescence mapping techniques but the short absorption depth of photons with energies above the bandgap means that conventional one-photon excitation primarily probes the surface recombination. Here, we use two-photon time-resolved confocal photoluminescence microscopy to explore the surface and bulk recombination properties of methylammonium lead halide perovskite structures. By acquiring 2D maps at different depths, we form 3D photoluminescence tomography images to visualise the charge carrier recombination kinetics. The technique unveils buried recombination pathways in both thin film and micro-crystal structures that aren’t captured in conventional one-photon mapping experiments. Specifically, we reveal that light-induced passivation approaches are primarily surface-sensitive and that nominal single crystals still contain heterogeneous defects that impact charge-carrier recombination. Our work opens a new route to sensitively probe defects and associated non-radiative processes in perovskites, highlighting additional loss pathways in these materials that will need to be addressed through improved sample processing or passivation treatments.
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spelling pubmed-63332692019-02-01 Probing buried recombination pathways in perovskite structures using 3D photoluminescence tomography Stavrakas, Camille Zhumekenov, Ayan A. Brenes, Roberto Abdi-Jalebi, Mojtaba Bulović, Vladimir Bakr, Osman M. Barnard, Edward S. Stranks, Samuel D. Energy Environ Sci Chemistry Perovskite solar cells and light-emission devices are yet to achieve their full potential owing in part to microscale inhomogeneities and defects that act as non-radiative loss pathways. These sites have been revealed using local photoluminescence mapping techniques but the short absorption depth of photons with energies above the bandgap means that conventional one-photon excitation primarily probes the surface recombination. Here, we use two-photon time-resolved confocal photoluminescence microscopy to explore the surface and bulk recombination properties of methylammonium lead halide perovskite structures. By acquiring 2D maps at different depths, we form 3D photoluminescence tomography images to visualise the charge carrier recombination kinetics. The technique unveils buried recombination pathways in both thin film and micro-crystal structures that aren’t captured in conventional one-photon mapping experiments. Specifically, we reveal that light-induced passivation approaches are primarily surface-sensitive and that nominal single crystals still contain heterogeneous defects that impact charge-carrier recombination. Our work opens a new route to sensitively probe defects and associated non-radiative processes in perovskites, highlighting additional loss pathways in these materials that will need to be addressed through improved sample processing or passivation treatments. Royal Society of Chemistry 2018-10-01 2018-08-23 /pmc/articles/PMC6333269/ /pubmed/30713582 http://dx.doi.org/10.1039/c8ee00928g Text en This journal is © The Royal Society of Chemistry 2018 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Stavrakas, Camille
Zhumekenov, Ayan A.
Brenes, Roberto
Abdi-Jalebi, Mojtaba
Bulović, Vladimir
Bakr, Osman M.
Barnard, Edward S.
Stranks, Samuel D.
Probing buried recombination pathways in perovskite structures using 3D photoluminescence tomography
title Probing buried recombination pathways in perovskite structures using 3D photoluminescence tomography
title_full Probing buried recombination pathways in perovskite structures using 3D photoluminescence tomography
title_fullStr Probing buried recombination pathways in perovskite structures using 3D photoluminescence tomography
title_full_unstemmed Probing buried recombination pathways in perovskite structures using 3D photoluminescence tomography
title_short Probing buried recombination pathways in perovskite structures using 3D photoluminescence tomography
title_sort probing buried recombination pathways in perovskite structures using 3d photoluminescence tomography
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6333269/
https://www.ncbi.nlm.nih.gov/pubmed/30713582
http://dx.doi.org/10.1039/c8ee00928g
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