Evaluating the electronic structure and stability of epitaxially grown Sr-doped LaFeO3 perovskite alkaline O2 evolution model electrocatalysts†

Chuanmu Tian, Clément Maheu, Xiaochun Huang, Freddy E. Oropeza, Márton Major, Joachim Brötz, Marcus Einert, Wolfgang Donner, Kelvin Hongliang Zhang and Jan P. Hofmann
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Abstract

In this work, we have investigated the relationships between surface stability, electronic structure and O2 evolution reaction (OER) activity for epitaxial thin film La1−xSrxFeO3 (x = 0, 0.33, 0.8) model electrocatalysts before and after different electrochemical treatments. Cyclic voltammetry (CV) between +1.22 V and +1.92 V vs. RHE results in the continuous enhancement of OER performance of LaFeO3, while for La0.67Sr0.33FeO3 and La0.2Sr0.8FeO3 a gradual decrease of OER performance with increasing number of CV cycles was observed. A combination of atomic force microscopy, X-ray diffraction and X-ray reflectivity reveals that the surfaces of La1−xSrxFeO3 (x = 0, 0.33, 0.8) undergo surface morphology changes during OER treatment. Synchrotron ex situ X-ray photoemission spectroscopy data show a gradual down-shift of the Fermi level (EF) of LaFeO3 with increasing number of CV cycles, while near edge X-ray absorption fine structure spectroscopy (NEXAFS) at the Fe L-edge and O K-edge shows the presence of surface Fe4+ species as well as new hole states near the conduction band minimum upon electrochemical treatment, leading to a further enhancement of the electrochemical activity of LaFeO3. The newly formed hole state in LaFeO3 that appeared after 3 CV cycles remained constant upon progressing OER treatment. On the contrary, the decrease of OER performance of La0.67Sr0.33FeO3 and La0.2Sr0.8FeO3 with increasing CV cycles is attributed to an up-shift of EF along with a decrease of Fe4+ and hole state content after OER treatment. Furthermore, we found that the stability of the OER performance of La1−xSrxFeO3 is closely related to the leaching of Sr during OER, and the stability deteriorates with increasing Sr doping concentration in the pristine samples.

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评价外延生长锶掺杂LaFeO3钙钛矿碱性氧析出模型电催化剂的电子结构和稳定性
在这项工作中,我们研究了外延薄膜La1−xSrxFeO3 (x = 0,0.33, 0.8)模型电催化剂在不同电化学处理前后的表面稳定性,电子结构和O2析出反应(OER)活性之间的关系。循环伏安(CV)在+1.22 V和+1.92 V与RHE之间,LaFeO3的OER性能持续增强,而对于La0.67Sr0.33FeO3和La0.2Sr0.8FeO3, OER性能随着CV循环次数的增加而逐渐降低。原子力显微镜、x射线衍射和x射线反射率的综合分析表明,La1−xSrxFeO3 (x = 0,0.33, 0.8)的表面形貌在OER处理过程中发生了变化。同步加速器非原位x射线光发射光谱数据显示,随着CV循环次数的增加,LaFeO3的费米能级(EF)逐渐下降,而在Fe l边和O k边的近边缘x射线吸收精细结构光谱(NEXAFS)显示,电化学处理后,LaFeO3表面存在Fe4+物质,并在导带最小值附近出现新的空穴态,导致LaFeO3的电化学活性进一步增强。经过3个CV循环后,LaFeO3中新形成的空穴态在OER处理过程中保持不变。相反,La0.67Sr0.33FeO3和La0.2Sr0.8FeO3的OER性能随着CV循环次数的增加而下降,这是由于OER处理后EF上升,Fe4+和空穴态含量减少。此外,我们发现La1−xSrxFeO3的OER性能的稳定性与OER过程中Sr的浸出密切相关,并且随着原始样品中Sr掺杂浓度的增加,稳定性逐渐恶化。
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