Aerophilic Surfaces for Sustained Corrosion Protection of Metals Underwater

Author:

Prado Lucia H.1,Hayek Samer1,Mazare Anca1,Erceg Ina2,Sarau George234,Christiansen Silke235,Kamaleev Maksim6,Wurmshuber Michael6,Lohbauer Ulrich7,Goldmann Wolfgang H.8,Virtanen Sannakaisa1,Tesler Alexander B.8ORCID

Affiliation:

1. Department of Materials Science and Engineering Institute for Surface Science and Corrosion Faculty of Engineering Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Martensstraße 7 91058 Erlangen Germany

2. Institute for Nanotechnology and Correlative Microscopy eV INAM Fraunhofer Institute Äußere Nürnberger Str. 62 91301 Forchheim Germany

3. Fraunhofer Institute for Ceramic Technologies and Systems IKTS Äußere Nürnberger Str. 62 91301 Forchheim Germany

4. Max Planck Institute for the Science of Light Staudtstrasse 2 91058 Erlangen Germany

5. Institute for Experimental Physics Freie Universität Berlin Arnimallee 14 14195 Berlin Germany

6. Department of Materials Science and Engineering Chair of General Materials Properties Friedrich‐Alexander‐University of Erlangen‐Nürnberg Martensstraße 5 91058 Erlangen Germany

7. Department of Operative Dentistry and Periodontology Friedrich‐Alexander‐Universität Erlangen‐Nürnberg 91054 Erlangen Germany

8. Department of Physics Biophysics Group Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Henkestrasse 91 91052 Erlangen Germany

Abstract

AbstractCorrosion and biofouling are wetting‐related phenomena that limit the effective use of metals in aqueous media. Nonwettable surfaces can mitigate the adverse effects of wetting by minimizing contact with water. However, current achievements in this field fall short of meeting industrial requirements due to the short lifetime of plastrons. This study proposes a method to measure the protective sustainability of plastron. Superhydrophobic (SHS) and aerophilic (APhS) surfaces are constructed on lightweight aluminum and are initially analyzed by conventional goniometry, which show comparable values. However, the plastron that develops underwater is substantially different. While SHS exhibit unevenly broken plastron, APhS show uniform, continuous plastron. As an example of the sustained protective performance of plastron, the corrosion resistance of SHS and APhS is presented. Potentiodynamic polarization, impedance spectroscopy, and long‐term immersion in seawater show a drastic enhancement in corrosion resistance, exclusively for APhS. In fact, almost no electrochemical signals are measurable, and no pitting corrosion is observed after 415 days of immersion in seawater. Conversely, SHS show no noticeable improvement and corrode faster than bare Al due to plastron loss. Since goniometric measurements do not provide information on plastron, it is essential to analyze the plastron for any non‐wettable surface utilized underwater.

Funder

Horizon 2020 Framework Programme

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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