Vertically aligned nanocomposite La0.8Sr0.2CoO3/(La0.5Sr0.5)2CoO4 cathodes – electronic structure, surface chemistry and oxygen reduction kinetics
نویسندگان
چکیده
The hetero-interfaces between the perovskite (La1 xSrx)CoO3 (LSC113) and the Ruddlesden-Popper (La1 xSrx)2CoO4 (LSC214) phases have recently been reported to exhibit fast oxygen exchange kinetics. Vertically aligned nanocomposite (VAN) structures offer the potential for embedding a high density of such special interfaces in the cathode of a solid oxide fuel cell in a controllable and optimized manner. In this work, VAN thin films with hetero-epitaxial interfaces between LSC113 and LSC214 were prepared by pulsed laser deposition. In situ scanning tunneling spectroscopy established that the LSC214 domains in the VAN structure became electronically activated, by charge transfer across interfaces with adjacent LSC113 domains above 250 C in 10 3 mbar of oxygen gas. Atomic force microscopy and X-ray photoelectron spectroscopy analysis revealed that interfacing LSC214 with LSC113 also provides for a more stable cation chemistry at the surface of LSC214 within the VAN structure, as compared to single phase LSC214 films. Oxygen reduction kinetics on the VAN cathode was found to exhibit approximately a 10-fold enhancement compared to either single phase LSC113 and LSC214 in the temperature range of 320–400 C. The higher reactivity of the VAN surface to the oxygen reduction reaction is attributed to enhanced electron availability for charge transfer and the suppression of detrimental cation segregation. The instability of the LSC113/214 hetero-structure surface chemistry at temperatures above 400 C, however, was found to lead to degraded ORR kinetics. Thus, while VAN structures hold great promise for offering highly ORR reactive electrodes, efforts towards the identification of more stable heterostructure compositions for high temperature functionality are warranted.
منابع مشابه
Electronic Activation At Oxide Hetero-structure At Elevated Temperatures – Source Of Markedly Accelerated Oxygen Reduction Kinetics
To understand ultra-fast oxygen reduction reaction kinetics near La0.8Sr0.2CoO3/(La0.5Sr0.5)2CoO4 (LSC113/214) interface, a combination of in-situ scanning tunneling spectroscopy and focused ion beam milling was used to study the local electronic structure near LSC113/214 interface at elevated temperature and in oxygen. The electronic activation of LSC214 by the coupling with LSC113, concurrent...
متن کاملReducibility of Co at the La0.8Sr0.2CoO3/(La0.5Sr0.5)2CoO4 hetero-interface at elevated temperatures
The fast kinetics of oxygen reduction reaction (ORR) at oxide hetero-structures made of La0.8Sr0.2CoO3 and (La0.5Sr0.5)2CoO4 (LSC113/214) attracted great interest to enable high performance cathodes for solid oxide fuel cells. The aim of this work is to uncover the underlying mechanism of fast ORR kinetics at the LSC113/214 system from a defect chemistry and electronic structure perspective. X-...
متن کاملDependence of Defect Chemistry and Surface Composition on the Crystal Orientation of (La0.5Sr0.5)2CoO4 Dense Thin Films
The dependence of oxygen non-stoichiometry on crystal orientation for (La0.5Sr0.5)2CoO4 was investigated by measuring the structure and Co valence state in thin films with (001) and (100) out of plane orientations using X-ray diffraction and X-ray photoelectron spectroscopy. Because of the constraint along the caxis imposed by the substrate, the c-axis lattice parameter and unit cell volume of ...
متن کاملMechanism for enhanced oxygen reduction kinetics at the (La,Sr)CoO3-δ/(La,Sr)2CoO4+δ hetero-interface
The recently reported fast oxygen reduction kinetics at the interface of (La,Sr)CoO3-δ (LSC113) and (La,Sr)2CoO4+δ (LSC214) phases opened up new questions for the potential role of dissimilar interfaces in advanced cathodes for solid oxide fuel cells (SOFCs). Using first-principles based calculations in the framework of density functional theory, we quantitatively probed the possible mechanisms...
متن کاملSegregated Chemistry and Structure on (001) and (100) Surfaces of (La1−xSrx)2CoO4 Override the Crystal Anisotropy in Oxygen Exchange Kinetics
Attaining fast oxygen exchange kinetics on perovskite and related mixed ionic and electronic conducting oxides is critical for enabling their applications in electrochemical energy conversion systems. This study focuses on understanding the relationship between surface chemistry and the surface oxygen exchange kinetics on epitaxial films made of (La1−xSrx)2CoO4, a prototypical Ruddlesden−Popper...
متن کاملذخیره در منابع من
با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید
عنوان ژورنال:
دوره شماره
صفحات -
تاریخ انتشار 2014