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Undesired Bulk Oxidation of LiMn(2)O(4) Increases Overpotential of Electrocatalytic Water Oxidation in Lithium Hydroxide Electrolytes

Chemical and structural changes preceding electrocatalysis obfuscate the nature of the active state of electrocatalysts for the oxygen evolution reaction (OER), which calls for model systems to gain systematic insight. We investigated the effect of bulk oxidation on the overpotential of ink‐casted L...

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Autores principales: Baumung, Max, Kollenbach, Leon, Xi, Lifei, Risch, Marcel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6899966/
https://www.ncbi.nlm.nih.gov/pubmed/31359564
http://dx.doi.org/10.1002/cphc.201900601
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author Baumung, Max
Kollenbach, Leon
Xi, Lifei
Risch, Marcel
author_facet Baumung, Max
Kollenbach, Leon
Xi, Lifei
Risch, Marcel
author_sort Baumung, Max
collection PubMed
description Chemical and structural changes preceding electrocatalysis obfuscate the nature of the active state of electrocatalysts for the oxygen evolution reaction (OER), which calls for model systems to gain systematic insight. We investigated the effect of bulk oxidation on the overpotential of ink‐casted LiMn(2)O(4) electrodes by a rotating ring‐disk electrode (RRDE) setup and X‐ray absorption spectroscopy (XAS) at the K shell core level of manganese ions (Mn−K edge). The cyclic voltammogram of the RRDE disk shows pronounced redox peaks in lithium hydroxide electrolytes with pH between 12 and 13.5, which we assign to bulk manganese redox based on XAS. The onset of the OER is pH‐dependent on the scale of the reversible hydrogen electrode (RHE) with a Nernst slope of −40(4) mV/pH at −5 μA monitored at the RRDE ring. To connect this trend to catalyst changes, we develop a simple model for delithiation of LiMn(2)O(4) in LiOH electrolytes, which gives the same Nernst slope of delithiation as our experimental data, i. e., 116(25) mV/pH. From this data, we construct an E(RHE)‐pH diagram that illustrates robustness of LiMn(2)O(4) against oxidation above pH 13.5 as also verified by XAS. We conclude that manganese oxidation is the origin of the increase of the OER overpotential at pH lower than 14 and also of the pH dependence on the RHE scale. Our work highlights that vulnerability to transition metal redox may lead to increased overpotentials, which is important for the design of stable electrocatalysts.
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spelling pubmed-68999662019-12-20 Undesired Bulk Oxidation of LiMn(2)O(4) Increases Overpotential of Electrocatalytic Water Oxidation in Lithium Hydroxide Electrolytes Baumung, Max Kollenbach, Leon Xi, Lifei Risch, Marcel Chemphyschem Articles Chemical and structural changes preceding electrocatalysis obfuscate the nature of the active state of electrocatalysts for the oxygen evolution reaction (OER), which calls for model systems to gain systematic insight. We investigated the effect of bulk oxidation on the overpotential of ink‐casted LiMn(2)O(4) electrodes by a rotating ring‐disk electrode (RRDE) setup and X‐ray absorption spectroscopy (XAS) at the K shell core level of manganese ions (Mn−K edge). The cyclic voltammogram of the RRDE disk shows pronounced redox peaks in lithium hydroxide electrolytes with pH between 12 and 13.5, which we assign to bulk manganese redox based on XAS. The onset of the OER is pH‐dependent on the scale of the reversible hydrogen electrode (RHE) with a Nernst slope of −40(4) mV/pH at −5 μA monitored at the RRDE ring. To connect this trend to catalyst changes, we develop a simple model for delithiation of LiMn(2)O(4) in LiOH electrolytes, which gives the same Nernst slope of delithiation as our experimental data, i. e., 116(25) mV/pH. From this data, we construct an E(RHE)‐pH diagram that illustrates robustness of LiMn(2)O(4) against oxidation above pH 13.5 as also verified by XAS. We conclude that manganese oxidation is the origin of the increase of the OER overpotential at pH lower than 14 and also of the pH dependence on the RHE scale. Our work highlights that vulnerability to transition metal redox may lead to increased overpotentials, which is important for the design of stable electrocatalysts. John Wiley and Sons Inc. 2019-08-13 2019-11-19 /pmc/articles/PMC6899966/ /pubmed/31359564 http://dx.doi.org/10.1002/cphc.201900601 Text en © 2019 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Baumung, Max
Kollenbach, Leon
Xi, Lifei
Risch, Marcel
Undesired Bulk Oxidation of LiMn(2)O(4) Increases Overpotential of Electrocatalytic Water Oxidation in Lithium Hydroxide Electrolytes
title Undesired Bulk Oxidation of LiMn(2)O(4) Increases Overpotential of Electrocatalytic Water Oxidation in Lithium Hydroxide Electrolytes
title_full Undesired Bulk Oxidation of LiMn(2)O(4) Increases Overpotential of Electrocatalytic Water Oxidation in Lithium Hydroxide Electrolytes
title_fullStr Undesired Bulk Oxidation of LiMn(2)O(4) Increases Overpotential of Electrocatalytic Water Oxidation in Lithium Hydroxide Electrolytes
title_full_unstemmed Undesired Bulk Oxidation of LiMn(2)O(4) Increases Overpotential of Electrocatalytic Water Oxidation in Lithium Hydroxide Electrolytes
title_short Undesired Bulk Oxidation of LiMn(2)O(4) Increases Overpotential of Electrocatalytic Water Oxidation in Lithium Hydroxide Electrolytes
title_sort undesired bulk oxidation of limn(2)o(4) increases overpotential of electrocatalytic water oxidation in lithium hydroxide electrolytes
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6899966/
https://www.ncbi.nlm.nih.gov/pubmed/31359564
http://dx.doi.org/10.1002/cphc.201900601
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