From directional to omnidirectional: meta-devices for ultrabroadband sound absorption with near-causality-limit performance

Abstract

Traditional microperforated panel (MPP)-cavity absorbers and metamaterial-based sound absorbers rely on local resonances or multi-resonator designs, which limit their bandwidth, angular applicability, and ease of fabrication. Leveraging the reciprocity theorem and cavity resonances, we introduce a robust class of MPP absorbers, termed meta-MPPs, capable of achieving ultrabroadband near-total sound absorption across a range of 0.37 to 10 kHz. These absorbers demonstrate average performance exceeding that of traditional MPP-cavity absorbers, approaching the theoretical causality limit. Notably, their absorption performance can be tuned between angularly asymmetric and omnidirectional modes and remains highly robust to variations in MPP parameters and geometrical configurations. Validated through simulations and experiments, our findings present a simpler, more robust, and highly adaptable solution for noise control.

Graphical abstract: From directional to omnidirectional: meta-devices for ultrabroadband sound absorption with near-causality-limit performance

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Article information

Article type
Communication
Submitted
06 Mar 2025
Accepted
23 Jul 2025
First published
24 Jul 2025

Mater. Horiz., 2025, Advance Article

From directional to omnidirectional: meta-devices for ultrabroadband sound absorption with near-causality-limit performance

J. Shi, J. Luo, C. Liu, H. Chu, Y. Jing, C. Xu, X. Liu, J. Li and Y. Lai, Mater. Horiz., 2025, Advance Article , DOI: 10.1039/D5MH00404G

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