electrode impedance spectroscopy
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2021 ◽  
Vol ahead-of-print (ahead-of-print) ◽  
Author(s):  
Yuanhang Yang ◽  
Gang Feng ◽  
Yanhong Gu ◽  
Jie Zhao ◽  
Jian Liang

Purpose Aluminum alloy is susceptible to chloride ion attack in sea water, resulting in pitting damage and hence serious security risks for the related applications. To improve the corrosion resistance of Al alloy, micro-arc oxidation (MAO) technology has been developed to produce a protective dense oxide layer on top of Al alloy. However, the mechanism of MAO-induced corrosion resistance is still not fully understood, particularly on local corrosion issue. This paper aims to focus on comprehensively studying the corrosion-resistance mechanism by a series of technologies. Design/methodology/approach The corrosion behavior of samples was studied by open circuit potential (OCP), potentiodynamic polarization (PDP), electrode impedance spectroscopy (EIS) and localized electrode impedance spectroscopy (LEIS) tests in NaCl solution. Findings The MAO-coated Al alloy shows a more positive corrosion potential and a higher corrosion current density compared to the untreated counterpart, indicating a significantly enhanced corrosion-resistance. The study of surface morphology and structure also suggest significantly enhanced corrosion-resistance due to the MAO treatment. Originality/value Based on the results, a new corrosion model was proposed to describe the influence of MAO treatment on the corrosion process and corrosion mechanism of Al alloy, providing insights on the design of the corrosion-resistance coating for metallic alloys in marine applications.


ACS Sensors ◽  
2020 ◽  
Vol 5 (11) ◽  
pp. 3392-3397
Author(s):  
Nikolaus Doppelhammer ◽  
Nick Pellens ◽  
Johan Martens ◽  
Christine E. A. Kirschhock ◽  
Bernhard Jakoby ◽  
...  

2020 ◽  
pp. 1-1 ◽  
Author(s):  
Nikolaus Doppelhammer ◽  
Nick Pellens ◽  
Christine E.A. Kirschhock ◽  
Bernhard Jakoby ◽  
Erwin K. Reichel

Author(s):  
Nikolaus Doppelhammer ◽  
Nick Pellens ◽  
Erwin K. Reichel ◽  
Christine E. A. Kirschhock ◽  
Bernhard Jakoby

2018 ◽  
Vol 20 (2) ◽  
pp. 145 ◽  
Author(s):  
M. Ved’ ◽  
N. Sakhnenko ◽  
I. Yermolenko ◽  
G. Yar-Mukhamedova ◽  
R. Atchibayev

Principles of three component Iron-Cobalt-Tungsten alloys electrodeposition from complex Fe (III) based citrate electrolytes are discussed. It is shown, that deposition of ternary alloys proceeds through competitive reduction of cobalt and tungsten with iron. With increasing ligand concentration coatings are enriched with a refractory component; however, increasing current density favors a reverse trend. The effect of both current density and pulse on/off time on the quality, content of alloying metals and surface topography of electrolytic coatings were determined. The application of pulsed electrolysis provides increasing tungsten content up to 13 at.%, at current efficiency of 70–75%. Globular relief of Fe-Co-W coatings is caused by refractory metals incorporation, and crystalline and amorphous parts of structure are visualized by X-ray spectroscopy, including inter-metallic phases Co7W6, Fe7W6 along with α-Fe and Fe3C. The crystallite size of the amorphous part is near 7–8 nm. Corrosion resistance of the coatings is 1.3–2.0 orders of magnitude higher than the substrate parameters as follows from data of polarization resistance method and electrode impedance spectroscopy.


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