Using the concepts of slow sound and of critical coupling, an ultra-thin acoustic metamaterial panel for perfect and omnidirectional absorption is theoretically and experimentally conceived in this work. The system is made of a rigid panel with a periodic distribution of thin closed slits, the upper wall of which is loaded by Helmholtz Resonators (HRs). The presence of resonators produces a slow sound propagation shifting the resonance frequency of the slit to the deep sub-wavelength regime (λ/88). By controlling the geometry of the slit and the HRs, the intrinsic visco-thermal losses can be tuned in order to exactly compensate the energy leakage of the system and fulfill the critical coupling condition to create the perfect absorption of sound in a large range of incidence angles due to the deep subwavelength behavior.
@article{arxiv.1606.07776,
title = {Ultra-thin metamaterial for perfect and omnidirectional sound absorption},
author = {Noé Jiménez and Weichun Huang and Vicent Romero-García and Vincent Pagneux and Jean-Philippe Groby},
journal= {arXiv preprint arXiv:1606.07776},
year = {2019}
}