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Unravelling the ultrafast charge dynamics in PbS quantum dots through resonant Auger mapping of the sulfur K-edge

There is a great fundamental interest in charge dynamics of PbS quantum dots, as they are promising for application in photovoltaics and other optoelectronic devices. The ultrafast charge transport is intriguing, offering insight into the mechanism of electron tunneling processes within the material...

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Autores principales: Sloboda, Tamara, Johansson, Fredrik O. L., Kammlander, Birgit, Berggren, Elin, Svanström, Sebastian, Fernández, Alberto García, Lindblad, Andreas, Cappel, Ute B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9634717/
https://www.ncbi.nlm.nih.gov/pubmed/36380927
http://dx.doi.org/10.1039/d2ra06091d
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author Sloboda, Tamara
Johansson, Fredrik O. L.
Kammlander, Birgit
Berggren, Elin
Svanström, Sebastian
Fernández, Alberto García
Lindblad, Andreas
Cappel, Ute B.
author_facet Sloboda, Tamara
Johansson, Fredrik O. L.
Kammlander, Birgit
Berggren, Elin
Svanström, Sebastian
Fernández, Alberto García
Lindblad, Andreas
Cappel, Ute B.
author_sort Sloboda, Tamara
collection PubMed
description There is a great fundamental interest in charge dynamics of PbS quantum dots, as they are promising for application in photovoltaics and other optoelectronic devices. The ultrafast charge transport is intriguing, offering insight into the mechanism of electron tunneling processes within the material. In this study, we investigated the charge transfer times of PbS quantum dots of different sizes and non-quantized PbS reference materials by comparing the propensity of localized or delocalized decays of sulfur 1s core hole states excited by X-rays. We show that charge transfer times in PbS quantum dots decrease with excitation energy and are similar at high excitation energy for quantum dots and non-quantized PbS. However, at low excitation energies a distinct difference in charge transfer time is observed with the fastest charge transfer in non-quantized PbS and the slowest in the smallest quantum dots. Our observations can be explained by iodide ligands on the quantum dots creating a barrier for charge transfer, which reduces the probability of interparticle transfer at low excitation energies. The probability of intraparticle charge transfer is limited by the density of available states which we describe according to a wave function in a quantum well model. The stronger quantum confinement effect in smaller PbS quantum dots is manifested as longer charge transfer times relative to the larger quantum dots at low excitation energies.
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spelling pubmed-96347172022-11-14 Unravelling the ultrafast charge dynamics in PbS quantum dots through resonant Auger mapping of the sulfur K-edge Sloboda, Tamara Johansson, Fredrik O. L. Kammlander, Birgit Berggren, Elin Svanström, Sebastian Fernández, Alberto García Lindblad, Andreas Cappel, Ute B. RSC Adv Chemistry There is a great fundamental interest in charge dynamics of PbS quantum dots, as they are promising for application in photovoltaics and other optoelectronic devices. The ultrafast charge transport is intriguing, offering insight into the mechanism of electron tunneling processes within the material. In this study, we investigated the charge transfer times of PbS quantum dots of different sizes and non-quantized PbS reference materials by comparing the propensity of localized or delocalized decays of sulfur 1s core hole states excited by X-rays. We show that charge transfer times in PbS quantum dots decrease with excitation energy and are similar at high excitation energy for quantum dots and non-quantized PbS. However, at low excitation energies a distinct difference in charge transfer time is observed with the fastest charge transfer in non-quantized PbS and the slowest in the smallest quantum dots. Our observations can be explained by iodide ligands on the quantum dots creating a barrier for charge transfer, which reduces the probability of interparticle transfer at low excitation energies. The probability of intraparticle charge transfer is limited by the density of available states which we describe according to a wave function in a quantum well model. The stronger quantum confinement effect in smaller PbS quantum dots is manifested as longer charge transfer times relative to the larger quantum dots at low excitation energies. The Royal Society of Chemistry 2022-11-04 /pmc/articles/PMC9634717/ /pubmed/36380927 http://dx.doi.org/10.1039/d2ra06091d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Sloboda, Tamara
Johansson, Fredrik O. L.
Kammlander, Birgit
Berggren, Elin
Svanström, Sebastian
Fernández, Alberto García
Lindblad, Andreas
Cappel, Ute B.
Unravelling the ultrafast charge dynamics in PbS quantum dots through resonant Auger mapping of the sulfur K-edge
title Unravelling the ultrafast charge dynamics in PbS quantum dots through resonant Auger mapping of the sulfur K-edge
title_full Unravelling the ultrafast charge dynamics in PbS quantum dots through resonant Auger mapping of the sulfur K-edge
title_fullStr Unravelling the ultrafast charge dynamics in PbS quantum dots through resonant Auger mapping of the sulfur K-edge
title_full_unstemmed Unravelling the ultrafast charge dynamics in PbS quantum dots through resonant Auger mapping of the sulfur K-edge
title_short Unravelling the ultrafast charge dynamics in PbS quantum dots through resonant Auger mapping of the sulfur K-edge
title_sort unravelling the ultrafast charge dynamics in pbs quantum dots through resonant auger mapping of the sulfur k-edge
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9634717/
https://www.ncbi.nlm.nih.gov/pubmed/36380927
http://dx.doi.org/10.1039/d2ra06091d
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