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Published on: November 11, 2013
Large-scale oxygen order phase transitions and fast ordering kinetics at moderate temperatures in Nd2NiO4+ electrodes
Sumit Ranjan Maity1,2, Monica Ceretti3, Ruben De Barros3
1Laboratory for Neutron Scattering and Imaging, Paul Scherrer Institut Villigen CH-5232 Switzerland sumit050491@gmail.com.
Abstract:
Non-stoichiometric 214-nickelates with Ruddlesden-Popper (RP) type frameworks emerged as potential candidates for mixed electronic/ionic conductors in the intermediate temperature range. In this work we investigated structural aspects of the oxygen ion mobility diffusion mechanisms in non-stoichiometric Nd2NiO4+ nickelates by X-ray (laboratory and synchrotron) as well by neutron diffraction. Temperature dependent synchrotron powder diffraction revealed a phase diagram of unprecedented complexity, involving a series of highly organized, 3D modulated phases related to oxygen ordering below 800 K. All phase transitionsimply translational periodicities exceeding 100 Å, and are found to be of 1st order, together with fast ordering kinetics. These surprising structural correlations, induced by the presence of interstitial oxygen atoms, suggest a collective phason-like oxygen diffusion mechanism together with dynamical contributions from the aperiodical lattice creating shallow diffusion pathways down to room temperature.
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