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首页> 外文期刊>RSC Advances >Structural investigations of La0.6Sr0.4FeO3-delta under reducing conditions: kinetic and thermodynamic limitations for phase transformations and iron exsolution phenomena
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Structural investigations of La0.6Sr0.4FeO3-delta under reducing conditions: kinetic and thermodynamic limitations for phase transformations and iron exsolution phenomena

机译:降低条件下LA0.6SR0.4FEO3-DELTA的结构研究:相变和铁输出现象的动力学和热力学限制

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摘要

The crystal structure changes and iron exsolution behavior of a series of oxygen-deficient lanthanum strontium ferrite (La0.6Sr0.4FeO3-delta, LSF) samples under various inert and reducing conditions up to a maximum temperature of 873 K have been investigated to understand the role of oxygen and iron deficiencies in both processes. Iron exsolution occurs in reductive environments at higher temperatures, leading to the formation of Fe rods or particles at the surface. Utilizing multiple ex situ and in situ methods (in situ X-ray diffraction (XRD), in situ thermogravimetric analysis (TGA), and scanning X-ray absorption near-edge spectroscopy (XANES)), the thermodynamic and kinetic limitations are accordingly assessed. Prior to the iron exsolution, the perovskite undergoes a nonlinear shift of the diffraction peaks to smaller 2q angles, which can be attributed to a rhombohedral-to-cubic (R (3) over barc to Pm (3) over barm) structural transition. In reducing atmospheres, the cubic structure is stabilized upon cooling to room temperature, whereas the transition is suppressed under oxidizing conditions. This suggests that an accumulation of oxygen vacancies in the lattice stabilize the cubic phase. The exsolution itself is shown to exhibit a diffusion-limited Avrami-like behavior, where the transport of iron to the Fe-depleted surface-near region is the rate- limiting step.
机译:已经研究了各种惰性镧系锶铁素体(La0.6SR0.4FeO3-Delta,LSF)的晶体结构变化和铁exolution行为在各种惰性和减少最高温度为873 k的最高温度下的氧气缺氧型锶铁素体(La0.6SR0.4FeO3-Delta,LSF)样品,以了解氧气和铁缺乏在两种过程中的作用。在更高温度下的还原环境中发生铁ex展示,导致表面形成Fe棒或颗粒。利用多个EX原位和原位方法(原位X射线衍射(XRD),原位热重分析(TGA)和扫描X射线吸收近边谱(XANES)),相应地评估了热力学和动力学限制。在铁灭火之前,Perovskite经历衍射峰的非线性偏移至较小的2Q角度,其可归因于BARM结构转变的菱形到立方(R(3)至PM(3)。在减少气氛中,立方结构在冷却至室温时稳定,而过渡在氧化条件下被抑制。这表明晶格中的氧空位累积稳定了立方相。 exsolution本身被示出表现出扩散限制的AVRAMI样行为,其中铁到Fe耗尽的表面近区域的运输是速率限制步骤。

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  • 来源
    《RSC Advances》 |2018年第6期|共12页
  • 作者单位

    Univ Innsbruck Inst Phys Chem A-6020 Innsbruck Austria;

    Tech Univ Berlin Fachgebiet Keram Werkstoffe Inst Werkstoffwissensch &

    Technol D-10623 Berlin Germany;

    Tech Univ Berlin Fachgebiet Keram Werkstoffe Inst Werkstoffwissensch &

    Technol D-10623 Berlin Germany;

    Lawrence Berkeley Natl Lab Adv Light Source Berkeley CA 94720 USA;

    Univ Innsbruck Inst Phys Chem A-6020 Innsbruck Austria;

    Univ Innsbruck Inst Phys Chem A-6020 Innsbruck Austria;

    Nagoya Univ Grad Sch Sci Dept Chem Chikusa Ku Furo Cho Nagoya Aichi 4648601 Japan;

    Nagoya Univ Grad Sch Sci Dept Chem Chikusa Ku Furo Cho Nagoya Aichi 4648601 Japan;

    RIKEN SPring 8 Ctr Sayo Hyogo 6795148 Japan;

    Tech Univ Berlin Fachgebiet Keram Werkstoffe Inst Werkstoffwissensch &

    Technol D-10623 Berlin Germany;

    Univ Innsbruck Inst Phys Chem A-6020 Innsbruck Austria;

    Univ Innsbruck Inst Phys Chem A-6020 Innsbruck Austria;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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