首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Defects and Phase Formation in Non-Stoichiometric LaFeO3: a Combined Theoretical and Experimental Study
【24h】

Defects and Phase Formation in Non-Stoichiometric LaFeO3: a Combined Theoretical and Experimental Study

机译:非化学计量LaFeO3的缺陷和相形成:理论与实验相结合的研究

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

The defect chemistry of perovskite compounds is directly related to the stoichiometry and to the valence states of the transition-metal ions. Defect engineering has become increasingly popular as it offers the possibility to influence the catalytic properties of perovskites for applications in energy storage and conversion devices such as solid-oxide fuel and electrolyzer cells. LaFe03 (LFO) can be regarded as a base compound of the family of catalytically active perovskites La_(1-x)AxFe_(1-y) ByO_(3-δ), for which the defect chemistry as well as the electronic and ionic conductivity can be tuned by substitution on cationic sites. Combining theoretical and experimental approaches, we explore the suitability for A-site vacancy engineering, namely, the feasibility of actively manipulating the valence state of Fe and the concentration of point defects by synthesizing La-deficient LFO. In the theoretical part, formation energies and concentrations of point defects were determined as a function of processing conditions by first-principles density functional theory calculations with a Hubbard-U correction (DFT + U). Based on the DFT + U results, significant compositional deviations from stoichiometric LFO cannot be expected by providing rich or poor conditions of the oxidic precursor compounds (Fe2O3 and La2O3) in a solid-state processing route. In the experimental part, LFO was synthesized with a targeted La-site deficiency. We analyze the resulting phases in detail by X-ray diffraction and dedicated microscopy methods, namely, scanning electron microscopy and (scanning) transmission electron microscopy in combination with energy-dispersive X-ray spectroscopy and electron energy-loss spectrometry. Instead of a variation of the La/Fe ratio, a mixture of the two phases LFO and Fe2O3 was observed, resulting in an invariant charge state of Fe, which is in line with the theoretical results. We discuss our findings with respect to partly differing assumptions made in previously published studies on this material system.
机译:钙钛矿化合物的缺陷化学性质与化学计量和过渡金属离子的价态直接相关。缺陷工程变得越来越流行,因为它提供了影响钙钛矿催化性能的可能性,用于能量存储和转换设备,如固体氧化物燃料和电解槽电池。LaFe03(LFO)是催化活性钙钛矿La_(1-x)AxFe_(1-y)ByO_(3-δ)家族的基础化合物,其缺陷化学性质以及电子和离子电导率可以通过阳离子位点的取代来调节。结合理论和实验方法,探讨了A位空位工程的适用性,即通过合成缺LaLFO主动调控Fe的价态和点缺陷集中的可行性。在理论部分,通过第一性原理密度泛函理论计算和Hubbard-U校正(DFT + U)确定点缺陷的形成能量和浓度作为加工条件的函数。根据 DFT + U 结果,通过在固态加工路线中提供氧化前体化合物(Fe2O3 和 La2O3)的丰富或贫乏条件,无法预期与化学计量 LFO 的显着成分偏差。在实验部分,LFO与靶向La位点缺陷合成。我们通过X射线衍射和专用显微镜方法,即扫描电子显微镜和(扫描)透射电子显微镜结合能量色散X射线光谱和电子能量损失光谱法,详细分析了所得相。观察到 LFO 和 Fe2O3 两相的混合物,而不是 La/Fe 比的变化,导致 Fe 的电荷态不变,这与理论结果一致。我们讨论了我们的发现,这些发现涉及以前发表的关于该物质系统的研究中所做的部分不同的假设。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号