Oxygen migration and proton diffusivity in transition-metal (Mn, Fe, Co, and Cu) doped Ruddlesden–Popper oxides

Layered Ruddlesden–Popper oxides La 2 NiO 4 /La 3 Ni 2 O 7 ( n = 1, 2) are considered as promising electrode candidates for electrochemical devices due to their excellent mixed ionic–electronic conducting properties. In this study, we systematically investigate both oxygen migration and proton diffu...

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Published inJournal of materials chemistry. A, Materials for energy and sustainability Vol. 7; no. 31; pp. 18558 - 18567
Main Authors Zhang, Lifang, Yao, Fen, Meng, Junling, Zhang, Wenwen, Wang, Haocong, Liu, Xiaojuan, Meng, Jian, Zhang, Hongjie
Format Journal Article
LanguageEnglish
Published Cambridge Royal Society of Chemistry 2019
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Summary:Layered Ruddlesden–Popper oxides La 2 NiO 4 /La 3 Ni 2 O 7 ( n = 1, 2) are considered as promising electrode candidates for electrochemical devices due to their excellent mixed ionic–electronic conducting properties. In this study, we systematically investigate both oxygen migration and proton diffusivity for transition-metal (Mn, Fe, Co and Cu) doped La 2 NiO 4 /La 3 Ni 2 O 7 using first-principles calculations. The results show that the double-layered La 3 Ni 2 O 7 exhibits better transport behavior than single-layered La 2 NiO 4 , which consistently corresponds to the experimental results. Transition-metal doping has a remarkable influence on the oxygen/proton transport of La 2 NiO 4 /La 3 Ni 2 O 7 . Furthermore, according to the in-depth electronic analysis, direct links between the barriers of oxygen/proton migration and the microelectronic properties have been established: the migration activity of oxygen ions is closely related to the degree of metal–O bonding and the charge difference gradient formed along the oxygen migration pathway, and the faster proton diffusion in the Co/Cu doped La 2 NiO 4 and Mn/Fe/Co/Cu doped La 3 Ni 2 O 7 is attributed to their weak dopant–proton association and the large capacity of the ‘electron pocket’ around the Fermi level. Therefore, our study presents a microscopic understanding of oxygen/proton migration in La 2 NiO 4 /La 3 Ni 2 O 7 -based perovskites and provides the design principle for high performance cathode materials.
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ISSN:2050-7488
2050-7496
2050-7496
DOI:10.1039/C9TA05893A