Underwater Acoustic Camouflage by Wettability Transition on Laser Textured Superhydrophobic Metasurfaces

Author:

Mezzapesa Francesco P.1ORCID,Gaudiuso Caterina1,Volpe Annalisa12,Ancona Antonio12,Mauro Salvatore3,Buogo Silvano3

Affiliation:

1. Institute for Photonics and Nanotechnologies (IFN) National Research Council (CNR) Via G. Amendola 173 Bari 70125 Italy

2. Intercollegiate Department of Physics “M. Merlin” University of Bari and Polytechnic University of Bari Via G. Amendola 173 Bari 70125 Italy

3. Institute of Marine Engineering (INM) National Research Council (CNR) Via di Vallerano, 139 Roma 00128 Italy

Abstract

AbstractThe superhydrophobicity of submerged surfaces typically pertains to the trapped air film at the liquid–solid interface, subject to wettability transitions from a Cassie–Baxter state to more unstable states that gradually collapse to high retention regimes, which are energetically more favorable. In this work, the dynamic evolution of those transient metastable states is correlated to the underwater acoustic performance of laser textured superhydrophobic surfaces, resolving the dependence of the ultrasound spectral response with the immersion time to capture the genuine contribution of the hierarchical subwavelength morphology, regardless of the air layer effects. Acoustic wave attenuation of the incident ultrasound energy is extensively quantified in transmission, accounting for instantaneous broadband sound blocking (>30 dB) within the spectral range 0.5–1.5 MHz. As a result of the air layer detachment with the immersion time, transmission coefficients increase accordingly, while acoustic fields in reflection unexpectedly evolve toward stealthiness and naïve acoustic camouflage, mostly ascribable to dissipative mechanisms at air layer interfaces. The intrinsic decay of the air layer effect is tentatively determined at different frequencies, since quantitative understanding of the transient lifetime governing underwater surface wettability is critical to design stable superhydrophobic character of laser induced subwavelength metastructures on the most promising acoustic materials – from eco‐friendly natural to artificial.

Publisher

Wiley

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