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Tunable hydrophilicity in a surface nano-textured stainless steel thin film deposited by DC magnetron sputtering.

Authors :
Yiu, Pakman
You, Jhen-De
Wang, Sung-Tsun
Chu, Jinn P.
Source :
Applied Surface Science. Jul2021, Vol. 555, pN.PAG-N.PAG. 1p.
Publication Year :
2021

Abstract

[Display omitted] • SUS316 stainless steel sputter target was used to deposit Fe-Cr-Ni thin film. • Deposition pressure was varied to create a nano-pyramid surface structure. • The growth of such texture can be explained by Thronton's structural zone diagram. • From low to high working pressure there was a drastic change in the grain growth morphology. • Fine-tuning of surface texture by deposition pressure allows manipulation of surface wetting property. In this article a series of Stainless steel thin films are fabricated by DC power magnetron sputtering of a SUS316 stainless steel target at various argon working pressure. The sample film compositions retain that of an austenitic stainless steel, while XRD spectra reveal that all films possess a single phase, body-centered cubic ferrite crystal structure. At working pressure 6 mTorr and above, the film exhibits a textured surface morphology made up of nano-sized pyramids. Cross-sectional images show that increasing argon pressure cause a microstructural evolution from dense, fibrous grain to coarse tapered grains. This observation agrees with the prediction by Thornton's structural zone model and causes a drastic reduction in static water contact angle (WCA) from ~65° to ~17°. With further increase of argon pressure, a minimum WCA of 11° at 8 mTorr can be achieved. In addition, our textured film deposited at 12 mTorr exhibits both excellent hydrophilicity and low contact angle hysteresis (CAH) at the same time. In summary, this work reports a convenient way of depositing a stainless steel-like hydrophilic coating, in which the wetting properties are tunable via working pressure control. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
555
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
150081671
Full Text :
https://doi.org/10.1016/j.apsusc.2021.149705