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December 13, 2025Nature Communications10 citationsOpen Access

Deep-subwavelength ultra-low and ultra-broadband acoustic-black-hole metamaterials

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YZYanni ZhangShanghai Lixin University of Accounting and FinanceWCWenjie CheHQHailiang QinNorth China University of Science and Technology

Key Points

  • This research aims to improve the performance of acoustic black holes by reducing frequency limitations and enhancing wave manipulation capabilities.
  • Developed a density-tailored composite called ρ-ABH.
  • Conducted analytical derivation and wave-energy analysis.
  • Utilized coupled-system modeling to evaluate performance.
  • Achieved reduction of cut-on and threshold frequencies to one-fifth compared to conventional ABHs.
  • Demonstrated efficient wave absorption at ultra-low and -broadband frequencies from 25-1200 Hz.
  • Showed a threshold frequency of 24.5 Hz with reduced fatigue and fracture risks.

Abstract

Acoustic black holes (ABHs) offer broadband wave-manipulation capabilities beyond conventional acoustic metamaterials (AMs) but are fundamentally limited by compromised structural stiffness, high-precision machining requirements and high cut-on frequencies. Here, we break these limitations by adopting a power-law density-tailored composite, ρ-ABH. Analytical derivation, wave-energy analysis, and coupled-system modeling demonstrate that both the cut-on and threshold frequencies of ρ-ABHs are reduced to one-fifth of those in conventional ABHs, enabling operation at deep-subwavelength scales (λ/11). This breakthrough arises from a remarkable wavelength compression and energy density amplification. The inertial-grading-induced amplitude decay also mitigates the fatigue and fracture risks inherent to conventional ABHs. The device experimentally entails efficient wave absorption at ultra-low and -broadband frequencies (25-1200 Hz) and with a 24.5 Hz threshold. Our approach overcomes fundamental frequency-scale constraint in AMs and vibroacoustic engineering, and circumvents manufacturing challenges via controllable material synthesis, offering a pathway for next-generation noise and vibration mitigation technology.

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Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/6941aaa70f5af7fd17df4c15https://doi.org/10.1038/s41467-025-66172-2
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