首页> 外文期刊>Electrochimica Acta >Performance of protective oxide films on Fe-Ni alloy anodes in molten KF-AlF3-Al2O3 salts at 700 degrees C
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Performance of protective oxide films on Fe-Ni alloy anodes in molten KF-AlF3-Al2O3 salts at 700 degrees C

机译:在700摄氏度下熔融KF-Alf3-Al2O3盐中Fe-Ni合金阳极上的保护氧化物膜的性能

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An oxide film containing NiFe2O4 was prepared by oxidizing Fe-Ni alloy in hot air, and the performance of the protective oxide film in molten KF-AlF3-Al2O3 salts at 700 degrees C was characterized by electrochemical methods, including electrochemical impedance spectroscopy, capacitance measurements, linear sweep voltammetry, and chronoamperometry to clarify the breakdown and growth process of the oxide film. For the pre-oxidized 57Fe-43Ni, 50Fe-50Ni, and 43Fe-57Ni alloys, the oxide films, with a thickness of 5 um, are composed of Fe2O3 and NiFe2O4, according to X-ray diffraction and scanning electron microscopy analysis. The transfer resistance of ions in the oxide film increases with increasing nickel content, and reaches its maximum value of 91.39 Omega.cm(2) for the pre-oxidized 43Fe-57Ni alloy based on electrochemical impedance spectroscopy measurements. Moreover, the carrier density in the oxide film determined from Mott-Schottky plots decreases as the nickel content increases. Under anodic polarization, the breakdown of oxide film follows the generation of metal cation vacancies and condensation of excess cation vacancies. Concurrently, a new oxide layer forms along the substrate owing to the annihilation of oxygen vacancies and diffusion of oxygen anion in the oxide film. After oxygen evolution, a new oxide film layer containing NiFe2O4 forms on the alloy substrate, leading to the passivation observed in the anodic polarization curves. The maximum polarization resistance in the passivation region is 4.86 Omega.cm(-2) for the pre-oxidized 43Fe-57Ni alloy, indicating that the pre-oxidized 43Fe-57Ni alloy possesses better corrosion resistance to molten fluorides than the other two preoxidized Fe-Ni alloys. Chronoamperometry measurements show that the oxide film on the 43Fe-57Ni alloy is in a dynamically stable state during oxygen evolution. (C) 2020 Elsevier Ltd. All rights reserved.
机译:通过在热空气中氧化Fe-Ni合金制备含有NiFe2O4的氧化膜,通过电化学方法,包括电化学阻抗谱,电容测量的电化学阻抗谱,包括电化学阻抗谱,包括电化学阻抗谱的熔融Kf-Alf3-Al2O3盐的性能。 ,线性扫描伏安法,并计时澄清氧化膜的击穿和生长过程。对于预氧化的57Fe-43Ni,50Fe-50Ni和43Fe-57Ni合金,厚度为5μm的氧化膜由Fe 2 O 3和NiFe2O4组成,根据X射线衍射和扫描电子显微镜分析。氧化膜中离子的转移电阻随着镍含量的增加而增加,基于电化学阻抗光谱测量,其用于预氧化的43Fe-57Ni合金的最大值为91.39ωcm(2)。此外,随着镍含量的增加,由Mott-Schottky图确定的氧化膜中的载流子密度降低。在阳极偏振下,氧化膜的击穿遵循金属阳离子空位的产生和过量阳离子障碍的凝结。同时,由于氧空位的湮灭和在氧化物膜中的氧阴离子的扩散而沿着基板形成新的氧化物层。在氧气中的进化之后,含有NiFe2O4在合金基板上形成的新氧化膜层,导致在阳极偏振曲线中观察到的钝化。钝化区域中的最大偏振电阻为预氧化的43Fe-57NI合金4.86ωCM(-2),表明预氧化的43Fe-57NI合金具有比其他两个预氧化的Fe更好地耐熔融耐腐蚀性-NI合金。计时率测量表明,在氧进化期间,43Fe-57NI合金上的氧化膜处于动态稳定的状态。 (c)2020 elestvier有限公司保留所有权利。

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