Intelligent Acousto‐Electrical Metamaterials (IAM) for Sound Source Detection

V Victor Couëdel (Department of Material Sciences and Engineering University of California Berkeley California USA) H Haotian Lu J Jiayan Zhang (Faculty of Biology, Medicine and Health, The University of Manchester, UK (O.F., R.R., C.R., S.R.G., J.Z., K.K., A.R.-V., N.K., X.C., Z.Z., X.Z., E.S., M.R.P., T.W., L.V., C.P., M.K.R., B.D.K., E.J.C., T.M.A.M., W.L.).) D Desheng Yao (Guangxi Medical University Cancer Hospital Nanning China) A Ananya Bhardwaj (George W. Woodruff School of Mechanical Engineering Georgia Institute of Technology Atlanta Georgia USA) R Ramiro Contreras (Department of Material Sciences and Engineering University of California Berkeley California USA) K Karim Sabra (George W. Woodruff School of Mechanical Engineering Georgia Institute of Technology Atlanta Georgia USA) X Xiaoyu (Rayne) Zheng

Abstract

ABSTRACT Acoustic transducers are essential for object localization and environmental sensing. Conventional transducers rely on piezoelectric crystals, whose acoustic‐electric response is fixed by the crystal lattice's inherent asymmetry and orientation. This results in static coupling behavior, necessitating bulky arrays of rigid elements with complex wiring and high computational demands for directional sensing. Here, we report a fundamentally new class of acoustic‐electric coupling that emerges from topology‐governed charge transport in 3D micro‐architected piezoelectric metamaterials. Unlike single crystals, these architected materials exhibit dynamic, geometry‐driven electromechanical responses. Acoustic waves excite multiple coupled vibration modes, enabling selective amplification, suppression, or reversal of charge flow based on the incident wave's frequency, direction, and the material's topology. This tunable, symmetry‐breaking response is encoded not in the chemistry but in the architecture—representing a shift from crystal‐defined to structure‐programmed piezoelectricity. We further demonstrate that a single metamaterial transducer can perform frequency‐dependent beam shaping without changing aperture size or requiring mechanical adjustment. Combined with machine learning and 3D printing, these intelligent acousto‐electrical metamaterials (IAM) enable real‐time localization of multiple moving sound sources. This approach lays the foundation for compact, adaptive, and intelligent acoustic sensing systems across a range of applications—from autonomous vehicles to medical imaging and underwater robotics.

Article Details

Volume / Issue Vol. 38, Issue 36
Published June 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

V

Victor Couëdel

Department of Material Sciences and Engineering University of California Berkeley California USA

H

Haotian Lu

J

Jiayan Zhang

Faculty of Biology, Medicine and Health, The University of Manchester, UK (O.F., R.R., C.R., S.R.G., J.Z., K.K., A.R.-V., N.K., X.C., Z.Z., X.Z., E.S., M.R.P., T.W., L.V., C.P., M.K.R., B.D.K., E.J.C., T.M.A.M., W.L.).

D

Desheng Yao

Guangxi Medical University Cancer Hospital Nanning China

A

Ananya Bhardwaj

George W. Woodruff School of Mechanical Engineering Georgia Institute of Technology Atlanta Georgia USA

R

Ramiro Contreras

Department of Material Sciences and Engineering University of California Berkeley California USA

K

Karim Sabra

George W. Woodruff School of Mechanical Engineering Georgia Institute of Technology Atlanta Georgia USA

X

Xiaoyu (Rayne) Zheng