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Flow cell for operando X-ray photon-in-photon-out studies on photo-electrochemical thin film devices

Background: Photo-electro-chemical (PEC) water splitting represents a promising technology towards an artificial photosynthetic device but many fundamental electronic processes, which govern long-term stability and energetics, are not yet fully understood. X-ray absorption spectroscopy (XAS), and pa...

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Autores principales: Jäker, Philipp, Aegerter, Dino, Kyburz, Till, Städler, Roman, Fonjallaz, Rea, Detlefs, Blanka, Koziej, Dorota
Formato: Online Artículo Texto
Lenguaje:English
Publicado: F1000 Research Limited 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10446061/
https://www.ncbi.nlm.nih.gov/pubmed/37645301
http://dx.doi.org/10.12688/openreseurope.14433.2
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author Jäker, Philipp
Aegerter, Dino
Kyburz, Till
Städler, Roman
Fonjallaz, Rea
Detlefs, Blanka
Koziej, Dorota
author_facet Jäker, Philipp
Aegerter, Dino
Kyburz, Till
Städler, Roman
Fonjallaz, Rea
Detlefs, Blanka
Koziej, Dorota
author_sort Jäker, Philipp
collection PubMed
description Background: Photo-electro-chemical (PEC) water splitting represents a promising technology towards an artificial photosynthetic device but many fundamental electronic processes, which govern long-term stability and energetics, are not yet fully understood. X-ray absorption spectroscopy (XAS), and particularly its high energy resolution fluorescence-detected (HERFD) mode, emerges as a powerful tool to study photo-excited charge carrier behavior under operating conditions. The established thin film device architecture of PEC cells provides a well-defined measurement geometry, but it puts many constraints on conducting operando XAS experiments. It remains a challenge to establish a standardized thin film exchange procedure and concurrently record high-quality photoelectrochemical and X‑ray absorption spectroscopy data that is unperturbed by bubble formation. Here we address and overcome these instrumental limitations for photoelectrochemical operando HERFD-XAS. Methods: We constructed a novel operando photo-electro-chemical cell by computer numerical control milling, guided by the materials’ X‑ray and visible light absorption properties to optimize signal detection. To test the cell’s functionality, semiconducting thin film photoelectrodes have been fabricated via solution deposition and their photoelectrochemical responses under simulated solar light were studied using a commercial potentiostat in a three-electrode configuration during HERFD-XAS experiments at a synchrotron. Results: We demonstrate the cell’s capabilities to measure and control potentiostatically and in open‑circuit, to detect X‑ray signals unperturbed by bubbles and to fluently exchange different thin film samples by collecting high-resolution Fe K-edge spectra of hematite ( α -Fe (2)O (3)) and ferrite thin film ( MFe (2)O (4), M= Zn, Ni) photoelectrodes during water oxidation. Conclusions: Our cell establishes a measurement routine that will provide experimental access of photo-electro-chemical operando HERFD-XAS experiments to a broader scientific community, particularly due to the ease of sample exchange. We believe to enable a broad range of experiments which acquired fundamental insights will spur further photoelectrochemical research and commercialization of water splitting technologies
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spelling pubmed-104460612023-08-29 Flow cell for operando X-ray photon-in-photon-out studies on photo-electrochemical thin film devices Jäker, Philipp Aegerter, Dino Kyburz, Till Städler, Roman Fonjallaz, Rea Detlefs, Blanka Koziej, Dorota Open Res Eur Method Article Background: Photo-electro-chemical (PEC) water splitting represents a promising technology towards an artificial photosynthetic device but many fundamental electronic processes, which govern long-term stability and energetics, are not yet fully understood. X-ray absorption spectroscopy (XAS), and particularly its high energy resolution fluorescence-detected (HERFD) mode, emerges as a powerful tool to study photo-excited charge carrier behavior under operating conditions. The established thin film device architecture of PEC cells provides a well-defined measurement geometry, but it puts many constraints on conducting operando XAS experiments. It remains a challenge to establish a standardized thin film exchange procedure and concurrently record high-quality photoelectrochemical and X‑ray absorption spectroscopy data that is unperturbed by bubble formation. Here we address and overcome these instrumental limitations for photoelectrochemical operando HERFD-XAS. Methods: We constructed a novel operando photo-electro-chemical cell by computer numerical control milling, guided by the materials’ X‑ray and visible light absorption properties to optimize signal detection. To test the cell’s functionality, semiconducting thin film photoelectrodes have been fabricated via solution deposition and their photoelectrochemical responses under simulated solar light were studied using a commercial potentiostat in a three-electrode configuration during HERFD-XAS experiments at a synchrotron. Results: We demonstrate the cell’s capabilities to measure and control potentiostatically and in open‑circuit, to detect X‑ray signals unperturbed by bubbles and to fluently exchange different thin film samples by collecting high-resolution Fe K-edge spectra of hematite ( α -Fe (2)O (3)) and ferrite thin film ( MFe (2)O (4), M= Zn, Ni) photoelectrodes during water oxidation. Conclusions: Our cell establishes a measurement routine that will provide experimental access of photo-electro-chemical operando HERFD-XAS experiments to a broader scientific community, particularly due to the ease of sample exchange. We believe to enable a broad range of experiments which acquired fundamental insights will spur further photoelectrochemical research and commercialization of water splitting technologies F1000 Research Limited 2022-12-23 /pmc/articles/PMC10446061/ /pubmed/37645301 http://dx.doi.org/10.12688/openreseurope.14433.2 Text en Copyright: © 2022 Jäker P et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Method Article
Jäker, Philipp
Aegerter, Dino
Kyburz, Till
Städler, Roman
Fonjallaz, Rea
Detlefs, Blanka
Koziej, Dorota
Flow cell for operando X-ray photon-in-photon-out studies on photo-electrochemical thin film devices
title Flow cell for operando X-ray photon-in-photon-out studies on photo-electrochemical thin film devices
title_full Flow cell for operando X-ray photon-in-photon-out studies on photo-electrochemical thin film devices
title_fullStr Flow cell for operando X-ray photon-in-photon-out studies on photo-electrochemical thin film devices
title_full_unstemmed Flow cell for operando X-ray photon-in-photon-out studies on photo-electrochemical thin film devices
title_short Flow cell for operando X-ray photon-in-photon-out studies on photo-electrochemical thin film devices
title_sort flow cell for operando x-ray photon-in-photon-out studies on photo-electrochemical thin film devices
topic Method Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10446061/
https://www.ncbi.nlm.nih.gov/pubmed/37645301
http://dx.doi.org/10.12688/openreseurope.14433.2
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