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A method for studying pico to microsecond time-resolved core-level spectroscopy used to investigate electron dynamics in quantum dots

Time-resolved photoelectron spectroscopy can give insights into carrier dynamics and offers the possibility of element and site-specific information through the measurements of core levels. In this paper, we demonstrate that this method can access electrons dynamics in PbS quantum dots over a wide t...

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Autores principales: Sloboda, Tamara, Svanström, Sebastian, Johansson, Fredrik O. L., Andruszkiewicz, Aneta, Zhang, Xiaoliang, Giangrisostomi, Erika, Ovsyannikov, Ruslan, Föhlisch, Alexander, Svensson, Svante, Mårtensson, Nils, Johansson, Erik M. J., Lindblad, Andreas, Rensmo, Håkan, Cappel, Ute B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7775430/
https://www.ncbi.nlm.nih.gov/pubmed/33384445
http://dx.doi.org/10.1038/s41598-020-79792-z
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author Sloboda, Tamara
Svanström, Sebastian
Johansson, Fredrik O. L.
Andruszkiewicz, Aneta
Zhang, Xiaoliang
Giangrisostomi, Erika
Ovsyannikov, Ruslan
Föhlisch, Alexander
Svensson, Svante
Mårtensson, Nils
Johansson, Erik M. J.
Lindblad, Andreas
Rensmo, Håkan
Cappel, Ute B.
author_facet Sloboda, Tamara
Svanström, Sebastian
Johansson, Fredrik O. L.
Andruszkiewicz, Aneta
Zhang, Xiaoliang
Giangrisostomi, Erika
Ovsyannikov, Ruslan
Föhlisch, Alexander
Svensson, Svante
Mårtensson, Nils
Johansson, Erik M. J.
Lindblad, Andreas
Rensmo, Håkan
Cappel, Ute B.
author_sort Sloboda, Tamara
collection PubMed
description Time-resolved photoelectron spectroscopy can give insights into carrier dynamics and offers the possibility of element and site-specific information through the measurements of core levels. In this paper, we demonstrate that this method can access electrons dynamics in PbS quantum dots over a wide time window spanning from pico- to microseconds in a single experiment carried out at the synchrotron facility BESSY II. The method is sensitive to small changes in core level positions. Fast measurements at low pump fluences are enabled by the use of a pump laser at a lower repetition frequency than the repetition frequency of the X-ray pulses used to probe the core level electrons: Through the use of a time-resolved spectrometer, time-dependent analysis of data from all synchrotron pulses is possible. Furthermore, by picosecond control of the pump laser arrival at the sample relative to the X-ray pulses, a time-resolution limited only by the length of the X-ray pulses is achieved. Using this method, we studied the charge dynamics in thin film samples of PbS quantum dots on n-type MgZnO substrates through time-resolved measurements of the Pb 5d core level. We found a time-resolved core level shift, which we could assign to electron injection and charge accumulation at the MgZnO/PbS quantum dots interface. This assignment was confirmed through the measurement of PbS films with different thicknesses. Our results therefore give insight into the magnitude of the photovoltage generated specifically at the MgZnO/PbS interface and into the timescale of charge transport and electron injection, as well as into the timescale of charge recombination at this interface. It is a unique feature of our method that the timescale of both these processes can be accessed in a single experiment and investigated for a specific interface.
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spelling pubmed-77754302021-01-07 A method for studying pico to microsecond time-resolved core-level spectroscopy used to investigate electron dynamics in quantum dots Sloboda, Tamara Svanström, Sebastian Johansson, Fredrik O. L. Andruszkiewicz, Aneta Zhang, Xiaoliang Giangrisostomi, Erika Ovsyannikov, Ruslan Föhlisch, Alexander Svensson, Svante Mårtensson, Nils Johansson, Erik M. J. Lindblad, Andreas Rensmo, Håkan Cappel, Ute B. Sci Rep Article Time-resolved photoelectron spectroscopy can give insights into carrier dynamics and offers the possibility of element and site-specific information through the measurements of core levels. In this paper, we demonstrate that this method can access electrons dynamics in PbS quantum dots over a wide time window spanning from pico- to microseconds in a single experiment carried out at the synchrotron facility BESSY II. The method is sensitive to small changes in core level positions. Fast measurements at low pump fluences are enabled by the use of a pump laser at a lower repetition frequency than the repetition frequency of the X-ray pulses used to probe the core level electrons: Through the use of a time-resolved spectrometer, time-dependent analysis of data from all synchrotron pulses is possible. Furthermore, by picosecond control of the pump laser arrival at the sample relative to the X-ray pulses, a time-resolution limited only by the length of the X-ray pulses is achieved. Using this method, we studied the charge dynamics in thin film samples of PbS quantum dots on n-type MgZnO substrates through time-resolved measurements of the Pb 5d core level. We found a time-resolved core level shift, which we could assign to electron injection and charge accumulation at the MgZnO/PbS quantum dots interface. This assignment was confirmed through the measurement of PbS films with different thicknesses. Our results therefore give insight into the magnitude of the photovoltage generated specifically at the MgZnO/PbS interface and into the timescale of charge transport and electron injection, as well as into the timescale of charge recombination at this interface. It is a unique feature of our method that the timescale of both these processes can be accessed in a single experiment and investigated for a specific interface. Nature Publishing Group UK 2020-12-31 /pmc/articles/PMC7775430/ /pubmed/33384445 http://dx.doi.org/10.1038/s41598-020-79792-z Text en © The Author(s) 2020 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Sloboda, Tamara
Svanström, Sebastian
Johansson, Fredrik O. L.
Andruszkiewicz, Aneta
Zhang, Xiaoliang
Giangrisostomi, Erika
Ovsyannikov, Ruslan
Föhlisch, Alexander
Svensson, Svante
Mårtensson, Nils
Johansson, Erik M. J.
Lindblad, Andreas
Rensmo, Håkan
Cappel, Ute B.
A method for studying pico to microsecond time-resolved core-level spectroscopy used to investigate electron dynamics in quantum dots
title A method for studying pico to microsecond time-resolved core-level spectroscopy used to investigate electron dynamics in quantum dots
title_full A method for studying pico to microsecond time-resolved core-level spectroscopy used to investigate electron dynamics in quantum dots
title_fullStr A method for studying pico to microsecond time-resolved core-level spectroscopy used to investigate electron dynamics in quantum dots
title_full_unstemmed A method for studying pico to microsecond time-resolved core-level spectroscopy used to investigate electron dynamics in quantum dots
title_short A method for studying pico to microsecond time-resolved core-level spectroscopy used to investigate electron dynamics in quantum dots
title_sort method for studying pico to microsecond time-resolved core-level spectroscopy used to investigate electron dynamics in quantum dots
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7775430/
https://www.ncbi.nlm.nih.gov/pubmed/33384445
http://dx.doi.org/10.1038/s41598-020-79792-z
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