Audible enclaves crafted by nonlinear self-bending ultrasonic beams

J Jia-Xin Zhong (Graduate Program in Acoustics, College of Engineering) J Jun Ji (Graduate Program in Acoustics, College of Engineering) X Xiaoxing Xia H Hyeonu Heo (Graduate Program in Acoustics, College of Engineering) Y Yun Jing (Molecular Vista Inc.)

Abstract

Delivering audible content to a targeted listener without disturbing others is paramount in audio engineering. However, achieving this goal has long been challenging due to the diffraction of low-frequency (long-wavelength) audio waves in linear acoustics. Here, we introduce an approach for creating remote audio spots, dubbed audible enclaves, by harnessing the local nonlinear interaction of two self-bending ultrasonic beams with distinct spectra. The self-bending ultrasonic beams created by acoustic metasurfaces, though inaudible, can bypass obstacles such as human heads. At their intersection behind obstacles, highly localized audible enclaves are formed due to the local nonlinear interactions. Additionally, we demonstrate the ultrabroadband capabilities of our metasurface-based implementation both numerically and experimentally, spanning from 125 Hz to 4 kHz (6 octave bands), covering the majority of the audible frequency range. The practicality of our proposed technique is underscored by its compact implementation size (0.16 m, equivalent to 0.06 wavelengths at 125 Hz), as well as its robust performance under wideband transient audio signal excitation and in a common room with reverberations. Our proposed audible enclaves hold significant potential for various applications in advanced audio engineering, including private speech communications, immersive spatial audio reproduction, and high-resolution sound/quiet zone control.

Article Details

Volume / Issue Vol. 122, Issue 12
Published March 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (5)

J

Jia-Xin Zhong

Graduate Program in Acoustics, College of Engineering

J

Jun Ji

Graduate Program in Acoustics, College of Engineering

X

Xiaoxing Xia

H

Hyeonu Heo

Graduate Program in Acoustics, College of Engineering

Y

Yun Jing

Molecular Vista Inc.