Dynamic observation of manganese adatom mobility at perovskite oxide catalyst interfaces with water

2020 | journal article; research paper. A publication with affiliation to the University of Göttingen.

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​Dynamic observation of manganese adatom mobility at perovskite oxide catalyst interfaces with water​
Lole, G.; Roddatis, V.; Ross, U.; Risch, M. ; Meyer, T. ; Rump, L. & Geppert, J. et al.​ (2020) 
Communications Materials1(1).​ DOI: https://doi.org/10.1038/s43246-020-00070-6 

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Authors
Lole, Gaurav; Roddatis, Vladimir; Ross, Ulrich; Risch, Marcel ; Meyer, Tobias ; Rump, Lukas; Geppert, Janis; Wartner, Garlef; Blöchl, Peter ; Jooss, Christian 
Abstract
Real time in-situ microscopy imaging of surface structure and atom dynamics of heterogeneous catalysts is an important step for understanding reaction mechanisms. Here, using in-situ environmental transmission electron microscopy (ETEM), we directly visualize surface atom dynamics at manganite perovskite catalyst surfaces for oxygen evolution reaction (OER), which are ≥20 times faster in water than in other ambients. Comparing (001) surfaces of La0.6Sr0.4MnO3 and Pr0.67Ca0.33MnO3 with similar initial manganese valence state and OER activity, but very different OER stability, allows us to distinguish between reversible surface adatom dynamics and irreversible surface defect chemical reactions. We observe enhanced reversible manganese adatom dynamics due to partial solvation in adsorbed water for the highly active and stable La0.6Sr0.4MnO3 system, suggesting that aspects of homogeneous catalysis must be included for understanding the OER mechanism in heterogeneous catalysis.
Issue Date
2020
Journal
Communications Materials 
Project
SFB 1073: Kontrolle von Energiewandlung auf atomaren Skalen 
SFB 1073 | Topical Area B | B02 Photonen-getriebener Energietransfer über Grenzflächen zwischen Materialien mit starken Korrelationen 
SFB 1073 | Topical Area C | C02 In situ hochauflösende Untersuchung des aktiven Zustands bei der photo- und elektrochemischen Wasserspaltung 
SFB 1073 | Topical Area C | C03 Vom Elektronentransfer zur chemischen Energiespeicherung: ab-initio Untersuchungen korrelierter Prozesse 
Organization
Institut für Materialphysik 
ISSN
2662-4443
Language
English

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