Institut de Chimie et Procédés pour l'Energie, l'Environnement et la Santé, UMR 7515 CNRS-UdS , 25 Rue Becquerel, 67087 Strasbourg, France.
Chemical Process and Energy Resources Institute/CERTH , 6th km Charilaou-Thermi Road, 57001 Thessaloniki, Greece.
ACS Appl Mater Interfaces. 2017 Aug 2;9(30):25265-25277. doi: 10.1021/acsami.7b05721. Epub 2017 Jul 20.
Understanding the surface chemistry of electrode materials under gas environments is important in order to control their performance during electrochemical and catalytic applications. This work compares the surface reactivity of Ni/YSZ and LaSrCrFeO, which are commonly used types of electrodes in solid oxide electrochemical devices. In situ synchrotron-based near-ambient pressure photoemission and absorption spectroscopy experiments, assisted by theoretical spectral simulations and combined with microscopy and electrochemical measurements, are used to monitor the effect of the gas atmosphere on the chemical state, the morphology, and the electrical conductivity of the electrodes. It is shown that the surface of both electrode types readjusts fast to the reactive gas atmosphere and their surface composition is notably modified. In the case of Ni/YSZ, this is followed by evident changes in the oxidation state of nickel, while for LaSrCrFeO, a fine adjustment of the Cr valence and strong Sr segregation is observed. An important difference between the two electrodes is their capacity to maintain adsorbed hydroxyl groups on their surface, which is expected to be critical for the electrocatalytic properties of the materials. The insight gained from the surface analysis may serve as a paradigm for understanding the effect of the gas environment on the electrochemical performance and the electrical conductivity of the electrodes.
了解电极材料在气体环境下的表面化学性质对于控制其在电化学和催化应用中的性能至关重要。本工作比较了 Ni/YSZ 和 LaSrCrFeO 这两种常用的固体氧化物电化学器件电极材料的表面反应性。通过同步辐射原位近常压光电发射和吸收光谱实验,结合显微镜和电化学测量,监测气体环境对电极化学状态、形貌和电导率的影响。结果表明,两种电极类型的表面都能快速适应反应性气体气氛,并显著改变其表面组成。在 Ni/YSZ 的情况下,镍的氧化态明显发生变化,而对于 LaSrCrFeO,则观察到 Cr 价态的微调以及强烈的 Sr 偏析。这两种电极的一个重要区别是它们在表面保持吸附羟基的能力,这对于材料的电催化性能至关重要。从表面分析中获得的见解可以作为理解气体环境对电极电化学性能和电导率影响的范例。