Robust Textile‐Based Electromagnetic Audio Interfaces

X Xiao Guan (Department of Electromechanical Engineering University of Macau Avenida da Universidade Taipa Macau 999078 China) T Tianjun Lan (Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China) D Dazhe Zhao Z Zhe Liu K Kaijun Zhang Y Yexi Zhou (Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China) Y Yu Zhao Y Yucong Pi (Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China) C Chengyue Lu (Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China) H Hanran Yu (Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China) R Rongyao Pan (Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China) H Haipeng Xia (Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China) B Bingpu Zhou J Junwen Zhong

Abstract

Abstract Textiles with inherently porous architectures are commonly employed for acoustic absorption. Although recent advances in textile‐based audio interfaces have enabled sound emission, they lack robustness under unstructured conditions. Therefore, this study introduces a strategy that integrates textile structures with a durable actuation mechanism to overcome these limitations. Through optimized theoretical modeling, this study enhances the vibration amplitudes, effectively compensating for the intrinsic acoustic damping losses of textiles, achieving a relatively high and flat sound pressure level of 71.7 ± 3.3 dB. Notably, the audio interface maintains stable performance under various mechanical deformations, including stretching, compression, bending, and twisting. Furthermore, this audio interface preserves the essential characteristics of textiles, such as washability and breathability, and remains fully functional even in extremely humid conditions, such as heavy perspiration. The versatility of this approach is demonstrated through three practical applications: sound‐beanie, talking‐cloth, and sound‐sofa. In each case, this audio interface delivers high‐quality acoustic performance and robustness to unstructured conditions. The proposed strategy is anticipated to enhance the design of wearable audio interfaces for real‐world applications.

Article Details

Volume / Issue Vol. 38, Issue 1
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

X

Xiao Guan

Department of Electromechanical Engineering University of Macau Avenida da Universidade Taipa Macau 999078 China

T

Tianjun Lan

Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China

D

Dazhe Zhao

Z

Zhe Liu

K

Kaijun Zhang

Y

Yexi Zhou

Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China

Y

Yu Zhao

Y

Yucong Pi

Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China

C

Chengyue Lu

Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China

H

Hanran Yu

Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China

R

Rongyao Pan

Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China

H

Haipeng Xia

Department of Electromechanical Engineering and Centre for Artificial Intelligence and Robotics University of Macau Macau SAR 999078 China

B

Bingpu Zhou

J

Junwen Zhong