Underwater Superoleophobicity Induced by the Thickness of the Thermally Grown Porous Oxide Layer on C84400 Copper Alloy

The underwater contact angle behavior on oxide layers of varying thicknesses was studied. These oxide layers were grown by thermally oxidizing C84400 copper alloys in N2-0.75 wt.% O2 and N2-5 wt.% O2 gas mixtures at 650 °C. Characterization of the oxidized specimens was effected using X-ray diffract...

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Main Authors: Aniedi Nyong, Pradeep Rohatgi
Format: Article
Language:English
Published: MDPI AG 2014-02-01
Series:Applied Sciences
Subjects:
Online Access:http://www.mdpi.com/2076-3417/4/1/42
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author Aniedi Nyong
Pradeep Rohatgi
author_facet Aniedi Nyong
Pradeep Rohatgi
author_sort Aniedi Nyong
collection DOAJ
description The underwater contact angle behavior on oxide layers of varying thicknesses was studied. These oxide layers were grown by thermally oxidizing C84400 copper alloys in N2-0.75 wt.% O2 and N2-5 wt.% O2 gas mixtures at 650 °C. Characterization of the oxidized specimens was effected using X-ray diffraction, scanning electron microscope (SEM) and contact angle goniometer. The results from the X-ray diffraction analyses confirmed the formation of CuO, ZnO and PbO. The average sizes of the oxide granules were in the range of 70 nm to 750 nm, with the average thickness of the oxide layer increasing with the increase in the weight percent of oxygen in the N2-O2 gas mixtures. The results showed that the oxide layer growth followed the parabolic law. The underwater oil contact angles increased, due to the change in the surface morphology and porosity of the oxide layer. The small sizes and irregular packing of the oxide granules cause hierarchical rough surface layers with pores. The estimated pore sizes, in the range of 88 ± 40 to 280 ± 76, were predominant on the oxide layers of the samples processed in the N2-5 wt.% O2 gas mixture. The presence of these pores caused an increase in the porosities as the thickness of the oxide layers increased. At oxide layer thickness above 25 microns, the measured contact angle exceeded 150° as underwater superoleophobicity was recorded.
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spelling doaj.art-313a1e14661248ab9bb54758787dd4222022-12-21T19:01:06ZengMDPI AGApplied Sciences2076-34172014-02-0141425410.3390/app4010042app4010042Underwater Superoleophobicity Induced by the Thickness of the Thermally Grown Porous Oxide Layer on C84400 Copper AlloyAniedi Nyong0Pradeep Rohatgi1Department of Materials Engineering, University of Wisconsin-Milwaukee, Milwaukee 53211, WI, USADepartment of Materials Engineering, University of Wisconsin-Milwaukee, Milwaukee 53211, WI, USAThe underwater contact angle behavior on oxide layers of varying thicknesses was studied. These oxide layers were grown by thermally oxidizing C84400 copper alloys in N2-0.75 wt.% O2 and N2-5 wt.% O2 gas mixtures at 650 °C. Characterization of the oxidized specimens was effected using X-ray diffraction, scanning electron microscope (SEM) and contact angle goniometer. The results from the X-ray diffraction analyses confirmed the formation of CuO, ZnO and PbO. The average sizes of the oxide granules were in the range of 70 nm to 750 nm, with the average thickness of the oxide layer increasing with the increase in the weight percent of oxygen in the N2-O2 gas mixtures. The results showed that the oxide layer growth followed the parabolic law. The underwater oil contact angles increased, due to the change in the surface morphology and porosity of the oxide layer. The small sizes and irregular packing of the oxide granules cause hierarchical rough surface layers with pores. The estimated pore sizes, in the range of 88 ± 40 to 280 ± 76, were predominant on the oxide layers of the samples processed in the N2-5 wt.% O2 gas mixture. The presence of these pores caused an increase in the porosities as the thickness of the oxide layers increased. At oxide layer thickness above 25 microns, the measured contact angle exceeded 150° as underwater superoleophobicity was recorded.http://www.mdpi.com/2076-3417/4/1/42thermal oxidationsuperoleophobicityoxide layerporosity
spellingShingle Aniedi Nyong
Pradeep Rohatgi
Underwater Superoleophobicity Induced by the Thickness of the Thermally Grown Porous Oxide Layer on C84400 Copper Alloy
Applied Sciences
thermal oxidation
superoleophobicity
oxide layer
porosity
title Underwater Superoleophobicity Induced by the Thickness of the Thermally Grown Porous Oxide Layer on C84400 Copper Alloy
title_full Underwater Superoleophobicity Induced by the Thickness of the Thermally Grown Porous Oxide Layer on C84400 Copper Alloy
title_fullStr Underwater Superoleophobicity Induced by the Thickness of the Thermally Grown Porous Oxide Layer on C84400 Copper Alloy
title_full_unstemmed Underwater Superoleophobicity Induced by the Thickness of the Thermally Grown Porous Oxide Layer on C84400 Copper Alloy
title_short Underwater Superoleophobicity Induced by the Thickness of the Thermally Grown Porous Oxide Layer on C84400 Copper Alloy
title_sort underwater superoleophobicity induced by the thickness of the thermally grown porous oxide layer on c84400 copper alloy
topic thermal oxidation
superoleophobicity
oxide layer
porosity
url http://www.mdpi.com/2076-3417/4/1/42
work_keys_str_mv AT aniedinyong underwatersuperoleophobicityinducedbythethicknessofthethermallygrownporousoxidelayeronc84400copperalloy
AT pradeeprohatgi underwatersuperoleophobicityinducedbythethicknessofthethermallygrownporousoxidelayeronc84400copperalloy