Mechanistic Parameters of Electrocatalytic Water Oxidation on LiMn2 O4 in Comparison to Natural Photosynthesis

2017 | journal article; research paper. A publication with affiliation to the University of Göttingen.

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​Mechanistic Parameters of Electrocatalytic Water Oxidation on LiMn2 O4 in Comparison to Natural Photosynthesis​
Köhler, L. ; Abrishami, M. E. ; Roddatis, V. ; Geppert, J.   & Risch, M. ​ (2017) 
ChemSusChem10(22) pp. 4479​-4490​.​ DOI: https://doi.org/10.1002/cssc.201701582 

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Authors
Köhler, Lennart ; Abrishami, Majid Ebrahimizadeh ; Roddatis, Vladimir ; Geppert, Janis ; Risch, Marcel 
Abstract
Targeted improvement of the low efficiency of water oxidation during the oxygen evolution reaction (OER) is severely hindered by insufficient knowledge of the electrocatalytic mechanism on heterogeneous surfaces. We chose LiMn2 O4 as a model system for mechanistic investigations as it shares the cubane structure with the active site of photosystem II and the valence of Mn3.5+ with the dark-stable S1 state in the mechanism of natural photosynthesis. The investigated LiMn2 O4 nanoparticles are electrochemically stable in NaOH electrolytes and show respectable activity in any of the main metrics. At low overpotential, the key mechanistic parameters of Tafel slope, Nernst slope, and reaction order have constant values on the RHE scale of 62(1) mV dec-1 , 1(1) mV pH-1 , -0.04(2), respectively. These values are interpreted in the context of the well-studied mechanism of natural photosynthesis. The uncovered difference in the reaction sequence is important for the design of efficient bio-inspired electrocatalysts.
Issue Date
2017
Journal
ChemSusChem 
Project
SFB 1073: Kontrolle von Energiewandlung auf atomaren Skalen 
SFB 1073 | Topical Area C | C05 Kontrolle Elektronen-getriebener Chemie durch Interkalation 
SFB 1073 | Topical Area Z | Z02 Hochauflösende Charakterisierung von Grenzflächen 
Organization
Fakultät für Physik ; Institut für Materialphysik 
eISSN
1864-564X
Language
English

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