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Coupled Resonator Acoustic Waveguides‐Based Acoustic Interferometers Designed within 2D Phononic Crystals: Experiment and Theory

Authors :
David Martínez‐Esquivel
Rafael Alberto Méndez‐Sánchez
Hyeonu Heo
Angel Marbel Martínez‐Argüello
Miguel Mayorga‐Rojas
Arup Neogi
Delfino Reyes‐Contreras
Source :
Advanced Physics Research, Vol 3, Iss 3, Pp n/a-n/a (2024)
Publication Year :
2024
Publisher :
Wiley-VCH, 2024.

Abstract

Abstract The acoustic response of defect‐based acoustic interferometer‐like designs, known as Coupled Resonator Acoustic Waveguides (CRAWs), in 2D phononic crystals (PnCs) is reported. The PnC is composed of steel cylinders arranged in a square lattice within a water matrix with defects induced by selectively removing cylinders to create Mach‐Zehnder‐like (MZ) defect‐based interferometers. Two defect‐based acoustic interferometers of MZ‐type are fabricated, one with arms oriented horizontally and another one with arms oriented diagonally, and their transmission features are experimentally characterized using ultrasonic spectroscopy. The experimental data are compared with finite element method (FEM) simulations and with tight‐binding (TB) calculations in which each defect is treated as a resonator coupled to its neighboring ones. Significantly, the results exhibit excellent agreement indicating the reliability of the proposed approach. This comprehensive match is of paramount importance for accurately predicting and optimizing resonant modes supported by defect arrays, thus enabling the tailoring of phononic structures and defect‐based waveguides to meet specific requirements. This successful implementation of FEM and TB calculations in investigating CRAWs systems within PnCs paves the way for designing advanced acoustic devices with desired functionalities for various practical applications, demonstrating the application of solid‐state electronics principles to underwater acoustic devices description.

Details

Language :
English
ISSN :
27511200
Volume :
3
Issue :
3
Database :
Directory of Open Access Journals
Journal :
Advanced Physics Research
Publication Type :
Academic Journal
Accession number :
edsdoj.2880d45003f64cee9539ceb6a4c2ba4a
Document Type :
article
Full Text :
https://doi.org/10.1002/apxr.202300093