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Unprecedented mechanical wave energy absorption observed in multifunctional bioinspired architected metamaterials

  • Zhendong Li
  • , Xinxin Wang
  • , Kexin Zeng
  • , Zichao Guo
  • , Chong Li
  • , Xiang Yu*
  • , Seeram Ramakrishna
  • , Zhonggang Wang*
  • , Yang Lu*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

171 Downloads (CityUHK Scholars)

Abstract

In practical engineering, noise and impact hazards are pervasive, indicating the pressing demand for materials that can absorb both sound and stress wave energy simultaneously. However, the rational design of such multifunctional materials remains a challenge. Herein, inspired by cuttlebone, we present bioinspired architected metamaterials with unprecedented sound-absorbing and mechanical properties engineered via a weakly-coupled design. The acoustic elements feature heterogeneous multilayered resonators, whereas the mechanical responses are based on asymmetric cambered cell walls. These metamaterials experimentally demonstrated an average absorption coefficient of 0.80 from 1.0 to 6.0 kHz, with 77% of the data points exceeding the desired 0.75 threshold, all with a compact 21 mm thickness. An absorptance-thickness map is devised for assessing the sound-absorption efficiency. The high-fidelity microstructure-based model reveals the air friction damping mechanism, with broadband behavior attributed to multimodal hybrid resonance. Empowered by the cambered design of cell walls, metamaterials shift catastrophic failure toward a progressive deformation mode characterized by stable stress plateaus and ultrahigh specific energy absorption of 50.7 J/g—a 558.4% increase over the straight-wall design. After the deformation mechanisms are elucidated, a comprehensive research framework for burgeoning acousto-mechanical metamaterials is proposed. Overall, our study broadens the horizon for multifunctional material design. © The Author(s) 2024.
Original languageEnglish
Article number45
JournalNPG Asia Materials
Volume16
Online published13 Sept 2024
DOIs
Publication statusPublished - 2024
Externally publishedYes

Funding

This work was supported by, the National Key R&D Program of China (2022YFB4300101), the Science and Technology Innovation Program of Hunan Province (2023RC1011), and the Hunan Provincial Natural Science Foundation of China (2023JJ10074).

Publisher's Copyright Statement

  • This full text is made available under CC-BY 4.0. https://creativecommons.org/licenses/by/4.0/

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