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Nanoporous alumina formed by self-organized two-step anodization of Ni_3Al intermetallic alloy in citric acid

机译:Ni_3Al金属间合金在柠檬酸中自组织两步阳极氧化形成的纳米多孔氧化铝

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摘要

Formation of the nanoporous alumina on the surface of N13AI intermetallic alloy has been studied in details and compared with anodization of aluminum. Successful self-organized anodization of this alloy was performed in 0.3 M citric acid at voltages ranging from 2.0 to 12.0 V using a typical two-electrode cell. Current density records revealed different mechanism of the porous oxide growth when compared to the mechanism pertinent for the anodization of aluminum. Electrochemical impedance spectroscopy experiments confirmed the differences in anodic oxide growth. Surface and cross-sections of the Ni_3Al intermetallic alloy with anodic oxide were observed with field-emission scanning electron microscope and characterized with appropriate software. Nanoporous oxide growth rate was estimated from cross-sectional FE-SEM images. The lowest growth rate of 0.14μm/h was found for the anodization at 0℃ and 2.0 V. The highest one - 2.29 μm/h - was noticed for 10.0 V and 30 ℃. Pore diameter was ranging from 18.9nm (2.0V, 0℃) to 32.0nm (12.0V, 0℃). Interpore distance of the nanoporous alumina was ranging from 56.6 nm (2.0V, 0℃) to 177.9 nm (12.0V, 30℃). Pore density (number of pore occupying given area) was decreasing with anodizing voltage increase from 394.5 pores/μm~2 (2.0 V, 0℃) to 94.9 pores/μm~2 (12.0 V, 0℃). All the geometrical features of the anodic alumina formed by two-step self-organized anodization of Ni_3 Al intermetallic alloy are depending on the operating conditions.
机译:已经详细研究了在N13Al金属间合金表面上形成纳米多孔氧化铝,并将其与铝的阳极氧化进行了比较。使用典型的两电极电池,在2.0 M至12.0 V的电压范围内的0.3 M柠檬酸中成功进行了该合金的自组织阳极氧化。电流密度记录显示,与铝阳极氧化相关的机理相比,多孔氧化物的生长机理不同。电化学阻抗谱实验证实了阳极氧化物生长的差异。用场发射扫描电子显微镜观察了Ni_3Al金属间化合物与阳极氧化物的表面和截面,并用适当的软件对其进行了表征。从横截面FE-SEM图像估计纳米孔氧化物的生长速率。在0℃和2.0 V时,阳极氧化的最低增长率为0.14μm/ h。在10.0 V和30℃时,阳极氧化的增长率最高,为2.29μm/ h。孔径为18.9nm(2.0V,0℃)至32.0nm(12.0V,0℃)。纳米多孔氧化铝的孔间距离为56.6nm(2.0V,0℃)至177.9nm(12.0V,30℃)。阳极氧化电压从394.5孔/μm〜2(2.0 V,0℃)升高到94.9孔/μm〜2(12.0 V,0℃),孔密度(占给定面积的孔数)减小。通过Ni_3 Al金属间合金的两步自组织阳极氧化形成的阳极氧化铝的所有几何特征均取决于操作条件。

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  • 来源
    《Applied Surface Science》 |2013年第1期|605-610|共6页
  • 作者单位

    Department of Advanced Materials and Technology, Faculty of New Technologies and Chemistry, Military University of Technology, Kaliskiego 2 Str., 00-908 Warszawa, Poland;

    Department of Advanced Materials and Technology, Faculty of New Technologies and Chemistry, Military University of Technology, Kaliskiego 2 Str., 00-908 Warszawa, Poland;

    Department of Advanced Materials and Technology, Faculty of New Technologies and Chemistry, Military University of Technology, Kaliskiego 2 Str., 00-908 Warszawa, Poland;

    Department of Advanced Materials and Technology, Faculty of New Technologies and Chemistry, Military University of Technology, Kaliskiego 2 Str., 00-908 Warszawa, Poland;

    Department of Advanced Materials and Technology, Faculty of New Technologies and Chemistry, Military University of Technology, Kaliskiego 2 Str., 00-908 Warszawa, Poland;

    Department of Advanced Materials and Technology, Faculty of New Technologies and Chemistry, Military University of Technology, Kaliskiego 2 Str., 00-908 Warszawa, Poland;

    Department of Advanced Materials and Technology, Faculty of New Technologies and Chemistry, Military University of Technology, Kaliskiego 2 Str., 00-908 Warszawa, Poland;

    Department of Advanced Materials and Technology, Faculty of New Technologies and Chemistry, Military University of Technology, Kaliskiego 2 Str., 00-908 Warszawa, Poland;

    Department of Advanced Materials and Technology, Faculty of New Technologies and Chemistry, Military University of Technology, Kaliskiego 2 Str., 00-908 Warszawa, Poland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    nanopores; anodization; self-organization; anodic oxide; electrochemical impedance spectroscopy;

    机译:纳米孔阳极氧化自组织阳极氧化物电化学阻抗谱;

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