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Hyperspectral mapping of nanoscale photophysics and degradation processes in hybrid perovskite at the single grain level

With solar cells reaching 26.1% certified efficiency, hybrid perovskites are now the most efficient thin film photovoltaic material. Though substantial effort has focussed on synthesis approaches and device architectures to further improve perovskite-based solar cells, more work is needed to correla...

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Autores principales: Taylor, Ethan J., Iyer, Vasudevan, Dhami, Bibek S., Klein, Clay, Lawrie, Benjamin J., Appavoo, Kannatassen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10496886/
https://www.ncbi.nlm.nih.gov/pubmed/37705772
http://dx.doi.org/10.1039/d3na00529a
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author Taylor, Ethan J.
Iyer, Vasudevan
Dhami, Bibek S.
Klein, Clay
Lawrie, Benjamin J.
Appavoo, Kannatassen
author_facet Taylor, Ethan J.
Iyer, Vasudevan
Dhami, Bibek S.
Klein, Clay
Lawrie, Benjamin J.
Appavoo, Kannatassen
author_sort Taylor, Ethan J.
collection PubMed
description With solar cells reaching 26.1% certified efficiency, hybrid perovskites are now the most efficient thin film photovoltaic material. Though substantial effort has focussed on synthesis approaches and device architectures to further improve perovskite-based solar cells, more work is needed to correlate physical properties of the underlying film structure with device performance. Here, using cathodoluminescence microscopy coupled with unsupervised machine learning, we quantify how nanoscale heterogeneity globally builds up within a large morphological grain of hybrid perovskite when exposed to extrinsic stimuli such as charge accumulation from electron beams or milder environmental factors like humidity. The converged electron-beam excitation allows us to map PbI(2) and the emergence of other intermediate phases with high spatial and energy resolution. In contrast with recent reports of hybrid perovskite cathodoluminescence, we observe no significant change in the PbI(2) signatures, even after high-energy electron beam excitation. In fact, we can exploit the stable PbI(2) signatures to quantitatively map how hybrid perovskites degrade. Moreover, we show how our methodology allows disentangling of the photophysics associated with photon recycling and band-edge emission with sub-micron resolution using a fundamental understanding of electron interactions in hybrid perovskites.
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spelling pubmed-104968862023-09-13 Hyperspectral mapping of nanoscale photophysics and degradation processes in hybrid perovskite at the single grain level Taylor, Ethan J. Iyer, Vasudevan Dhami, Bibek S. Klein, Clay Lawrie, Benjamin J. Appavoo, Kannatassen Nanoscale Adv Chemistry With solar cells reaching 26.1% certified efficiency, hybrid perovskites are now the most efficient thin film photovoltaic material. Though substantial effort has focussed on synthesis approaches and device architectures to further improve perovskite-based solar cells, more work is needed to correlate physical properties of the underlying film structure with device performance. Here, using cathodoluminescence microscopy coupled with unsupervised machine learning, we quantify how nanoscale heterogeneity globally builds up within a large morphological grain of hybrid perovskite when exposed to extrinsic stimuli such as charge accumulation from electron beams or milder environmental factors like humidity. The converged electron-beam excitation allows us to map PbI(2) and the emergence of other intermediate phases with high spatial and energy resolution. In contrast with recent reports of hybrid perovskite cathodoluminescence, we observe no significant change in the PbI(2) signatures, even after high-energy electron beam excitation. In fact, we can exploit the stable PbI(2) signatures to quantitatively map how hybrid perovskites degrade. Moreover, we show how our methodology allows disentangling of the photophysics associated with photon recycling and band-edge emission with sub-micron resolution using a fundamental understanding of electron interactions in hybrid perovskites. RSC 2023-08-24 /pmc/articles/PMC10496886/ /pubmed/37705772 http://dx.doi.org/10.1039/d3na00529a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Taylor, Ethan J.
Iyer, Vasudevan
Dhami, Bibek S.
Klein, Clay
Lawrie, Benjamin J.
Appavoo, Kannatassen
Hyperspectral mapping of nanoscale photophysics and degradation processes in hybrid perovskite at the single grain level
title Hyperspectral mapping of nanoscale photophysics and degradation processes in hybrid perovskite at the single grain level
title_full Hyperspectral mapping of nanoscale photophysics and degradation processes in hybrid perovskite at the single grain level
title_fullStr Hyperspectral mapping of nanoscale photophysics and degradation processes in hybrid perovskite at the single grain level
title_full_unstemmed Hyperspectral mapping of nanoscale photophysics and degradation processes in hybrid perovskite at the single grain level
title_short Hyperspectral mapping of nanoscale photophysics and degradation processes in hybrid perovskite at the single grain level
title_sort hyperspectral mapping of nanoscale photophysics and degradation processes in hybrid perovskite at the single grain level
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10496886/
https://www.ncbi.nlm.nih.gov/pubmed/37705772
http://dx.doi.org/10.1039/d3na00529a
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