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The interaction of molecular oxygen on LaO terminated surfaces of La2NiO4

Authors :
John Druce
Aleksandar Staykov
John A. Kilner
Tatsumi Ishihara
Helena Téllez
Taner Akbay
Source :
Journal of Materials Chemistry A. 4:13113-13124
Publication Year :
2016
Publisher :
Royal Society of Chemistry (RSC), 2016.

Abstract

Rare-earth metal oxides with perovskite-type crystal structures are under consideration for use as air electrode materials for intermediate to high temperature electrochemical device applications. The surface chemistry of these materials plays a critical role in determining the kinetics of oxygen reduction and exchange reactions. Among various perovskite-structured oxides, certain members of the Ruddlesden–Popper series, e.g. La2NiO4, have been identified as significantly active for surface oxygen interactions. However, the challenge remains to be the identification of the structure and composition of active surfaces, as well as the influence of these factors on the mechanisms of surface exchange reactions. In this contribution, the changes in the electronic structure and the energetics of oxygen interactions on the surfaces of La2NiO4 are analysed using first principles calculations in the Density Functional Theory (DFT) formalism. As for the surface chemistry, LaO termination rather than NiO2 termination is presumed due to recent experimental evidence of the surfaces of various perovskite structured oxides after heat treatment in oxidizing environments being transition metal free. Our findings substantiate the fact that the LaO-terminated surface can indeed participate in the formation of surface superoxo species. Detailed charge transfer analyses revealed that it is possible for such a surface to be catalytically active owing to the enhanced electronic configurations on the neighbouring La sites to surface species. In addition, positively charged oxygen vacancies, relative to the crystal lattice, can act as active sites and catalyse the O–O bond cleavage.

Details

ISSN :
20507496 and 20507488
Volume :
4
Database :
OpenAIRE
Journal :
Journal of Materials Chemistry A
Accession number :
edsair.doi.dedup.....cc8ec35c69dbb56a147f7ff42fc4050f
Full Text :
https://doi.org/10.1039/c6ta02715f