Saranya Aruppukottai M, Morata Alex, Pla Dolors, Burriel Mónica, Chiabrera Francesco, Garbayo Iñigo, Hornés Aitor, Kilner John A, Tarancón Albert
Department of Advanced Materials for Energy Applications, Catalonia Institute for Energy Research (IREC), Jardins de les Dones de Negre 1, 08930 Sant Adrià del Besòs, Barcelona, Spain.
CNRS, LMGP, Univ. Grenoble Alpes, F-38016 Grenoble, France.
Chem Mater. 2018 Aug 28;30(16):5621-5629. doi: 10.1021/acs.chemmater.8b01771. Epub 2018 Aug 1.
Ion transport in solid-state devices is of great interest for current and future energy and information technologies. A superior enhancement of several orders of magnitude of the oxygen diffusivity has been recently reported for grain boundaries in lanthanum-strontium manganites. However, the significance and extent of this unique phenomenon are not yet established. Here, we fabricate a thin film continuous composition map of the LaSr(Mn Co )O family revealing a substantial enhancement of the grain boundary oxygen mass transport properties for the entire range of compositions. Through isotope-exchange depth profiling coupled with secondary ion mass spectroscopy, we show that this excellent performance is not directly linked to the bulk of the material but to the intrinsic nature of the grain boundary. In particular, the great increase of the oxygen diffusion in Mn-rich compositions unveils an unprecedented catalytic performance in the field of mixed ionic-electronic conductors. These results present grain boundaries engineering as a novel strategy for designing highly performing materials for solid-state ionics-based devices.
固态器件中的离子传输对于当前和未来的能源及信息技术而言极具吸引力。最近有报道称,镧锶锰氧化物中的晶界处氧扩散率有几个数量级的显著提高。然而,这一独特现象的重要性和程度尚未确定。在此,我们制备了LaSr(MnCo)O族的薄膜连续成分图,揭示了在整个成分范围内晶界氧质量传输特性的大幅增强。通过结合二次离子质谱的同位素交换深度剖析,我们表明这种优异性能并非直接与材料本体相关,而是与晶界的固有性质有关。特别是,富锰成分中氧扩散的大幅增加揭示了混合离子电子导体领域前所未有的催化性能。这些结果表明晶界工程是一种设计基于固态离子学的高性能器件材料的新策略。