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Get Free AccessThe oxide layer, present between an organic coating and the substrate, guarantees adhesion of the coating and plays a determinating role in the delamination rate of the organic coating. The purpose of this study is to compare the resistive and semiconducting properties of thermal oxides formed on steel in two different atmospheres at 250°C: an oxygen rich atmosphere, air, and an oxygen deficient atmosphere, N2. In N2, a magnetite layer grows while in air a duplex oxide film forms composed by an inner magnetite layer and a thin outer hematite scale. The heat treatment for different amounts of time at high temperature was used as method to sample the thickness variation and change in electronic and semiconducting properties of the thermal oxide layers. Firstly, linear voltammetric measurements were performed to have a first insight in the electrochemical behavior of the thermal oxides in a borate buffer solution. Electrochemical impedance spectroscopy in the same buffer combined with the Mott–Schottky analysis were used to determine the semiconducting properties of the thermal oxides. By spectroscopic ellipsometry (SE) and atomic force microscopy (AFM), respectively, the thickness and roughness of the oxide layers were determined supporting the physical interpretation of the voltammetric and EIS data. These measurements clearly showed that oxide layers with different constitution, oxide resistance, flatband potential and doping concentration can be grown by changing the atmosphere.
Jan Wielant, V. Goossens, René Hausbrand, Herman Terryn (2007). Electronic properties of thermally formed thin iron oxide films. Electrochimica Acta, 52(27), pp. 7617-7625, DOI: 10.1016/j.electacta.2006.12.041.
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Type
Article
Year
2007
Authors
4
Datasets
0
Total Files
0
Language
English
Journal
Electrochimica Acta
DOI
10.1016/j.electacta.2006.12.041
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