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Implications of Testing a Zinc–Oxygen Battery with Zinc Foil Anode Revealed by Operando Gas Analysis

[Image: see text] Zinc–oxygen batteries are seen as promising energy storage devices for future mobile and stationary applications. Introducing them as secondary battery is hindered by issues at both the anode and cathode. Research efforts were intensified during the past two decades, mainly focusin...

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Autores principales: Dongmo, Saustin, Stock, Daniel, Alexander Kreissl, Julian Jakob, Groß, Martin, Weixler, Sophie, Hagen, Markus, Miyazaki, Kohei, Abe, Takeshi, Schröder, Daniel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6964293/
https://www.ncbi.nlm.nih.gov/pubmed/31956811
http://dx.doi.org/10.1021/acsomega.9b03224
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author Dongmo, Saustin
Stock, Daniel
Alexander Kreissl, Julian Jakob
Groß, Martin
Weixler, Sophie
Hagen, Markus
Miyazaki, Kohei
Abe, Takeshi
Schröder, Daniel
author_facet Dongmo, Saustin
Stock, Daniel
Alexander Kreissl, Julian Jakob
Groß, Martin
Weixler, Sophie
Hagen, Markus
Miyazaki, Kohei
Abe, Takeshi
Schröder, Daniel
author_sort Dongmo, Saustin
collection PubMed
description [Image: see text] Zinc–oxygen batteries are seen as promising energy storage devices for future mobile and stationary applications. Introducing them as secondary battery is hindered by issues at both the anode and cathode. Research efforts were intensified during the past two decades, mainly focusing on catalyst materials for the cathode. Thereby, zinc foil was almost exclusively used as the anode in electrochemical testing in the lab-scale as it is easy to apply and shall yield reproducible results. However, it is well known that zinc metal reacts with water within the electrolyte to form hydrogen. It is not yet clear how the evolution of hydrogen is affecting the performance results obtained thereof. Herein, we extend the studies and the understanding about the evolution of hydrogen at zinc by analyzing the zinc–oxygen battery during operation. By means of electrochemical measurements, operando gas analysis, and anode surface analysis, we elucidate that the rate of the evolution of hydrogen scales with the current density applied, and that the roughness of the anode surface, that is, the pristine state of the zinc foil surface, affects the rate as well. In the end, we propose a link between the evolution of hydrogen and the unwanted impact on the actual electrochemical performance that might go unnoticed during testing. Thereof, we elucidate the consequences that arise for the working principle and the testing of materials for this battery type.
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spelling pubmed-69642932020-01-17 Implications of Testing a Zinc–Oxygen Battery with Zinc Foil Anode Revealed by Operando Gas Analysis Dongmo, Saustin Stock, Daniel Alexander Kreissl, Julian Jakob Groß, Martin Weixler, Sophie Hagen, Markus Miyazaki, Kohei Abe, Takeshi Schröder, Daniel ACS Omega [Image: see text] Zinc–oxygen batteries are seen as promising energy storage devices for future mobile and stationary applications. Introducing them as secondary battery is hindered by issues at both the anode and cathode. Research efforts were intensified during the past two decades, mainly focusing on catalyst materials for the cathode. Thereby, zinc foil was almost exclusively used as the anode in electrochemical testing in the lab-scale as it is easy to apply and shall yield reproducible results. However, it is well known that zinc metal reacts with water within the electrolyte to form hydrogen. It is not yet clear how the evolution of hydrogen is affecting the performance results obtained thereof. Herein, we extend the studies and the understanding about the evolution of hydrogen at zinc by analyzing the zinc–oxygen battery during operation. By means of electrochemical measurements, operando gas analysis, and anode surface analysis, we elucidate that the rate of the evolution of hydrogen scales with the current density applied, and that the roughness of the anode surface, that is, the pristine state of the zinc foil surface, affects the rate as well. In the end, we propose a link between the evolution of hydrogen and the unwanted impact on the actual electrochemical performance that might go unnoticed during testing. Thereof, we elucidate the consequences that arise for the working principle and the testing of materials for this battery type. American Chemical Society 2019-12-31 /pmc/articles/PMC6964293/ /pubmed/31956811 http://dx.doi.org/10.1021/acsomega.9b03224 Text en Copyright © 2019 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Dongmo, Saustin
Stock, Daniel
Alexander Kreissl, Julian Jakob
Groß, Martin
Weixler, Sophie
Hagen, Markus
Miyazaki, Kohei
Abe, Takeshi
Schröder, Daniel
Implications of Testing a Zinc–Oxygen Battery with Zinc Foil Anode Revealed by Operando Gas Analysis
title Implications of Testing a Zinc–Oxygen Battery with Zinc Foil Anode Revealed by Operando Gas Analysis
title_full Implications of Testing a Zinc–Oxygen Battery with Zinc Foil Anode Revealed by Operando Gas Analysis
title_fullStr Implications of Testing a Zinc–Oxygen Battery with Zinc Foil Anode Revealed by Operando Gas Analysis
title_full_unstemmed Implications of Testing a Zinc–Oxygen Battery with Zinc Foil Anode Revealed by Operando Gas Analysis
title_short Implications of Testing a Zinc–Oxygen Battery with Zinc Foil Anode Revealed by Operando Gas Analysis
title_sort implications of testing a zinc–oxygen battery with zinc foil anode revealed by operando gas analysis
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6964293/
https://www.ncbi.nlm.nih.gov/pubmed/31956811
http://dx.doi.org/10.1021/acsomega.9b03224
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