TY - JOUR
T1 - State of the Art of Low-Frequency Acoustic Modulation
T2 - Intensity Enhancement and Directional Control
AU - Xu, Jingsong
AU - Ye, Yunfeng
AU - Dong, Tao
AU - Yang, Zhaochu
AU - Pires, Nuno Miguel Matos
AU - Zhou, Yu
AU - Tao, Fuyu
AU - Wang, Jin
AU - Zhang, Junshan
AU - Luo, Guoxi
AU - Zhao, Libo
AU - Mao, Qi
AU - Wang, Yangtao
AU - Jiang, Zhuangde
N1 - Publisher Copyright:
© 2025 The Author(s). Advanced Science published by Wiley-VCH GmbH.
PY - 2025/7/17
Y1 - 2025/7/17
N2 - High-intensity low-frequency acoustic sources with directivity play a significant role in various fields such as medical treatment, underwater communication, and environmental monitoring. However, the long wavelengths, strong penetration, and their tendency to easily diffract of low-frequency acoustic waves make it challenging to achieve directional control and intensity enhancement. Thanks to the development of acoustic metamaterials, acoustic devices can now effectively manipulate low-frequency acoustic waves at subwavelength scales with excellent acoustic performance. Currently, the directional control and intensity enhancement of low-frequency acoustic waves mainly concentrate on source design and the modulation of propagation processes. These techniques employ acoustic resonance, focusing, and other phase control methods to achieve energy concentration and directional control of low-frequency acoustic waves. Nevertheless, existing low-frequency acoustic wave control techniques still face issues such as low energy efficiency, poor directional control, and limited controllable bandwidth. This paper systematically reviews methods for achieving high-intensity emission and directional control of low-frequency acoustic waves, comprehensively compares the advantages and disadvantages of various technologies, and discusses how to extend these methods to lower acoustic frequency bands, aiming to provide new insights for the development of miniaturized, efficient, and accurately directional ultra-low frequency acoustic devices.
AB - High-intensity low-frequency acoustic sources with directivity play a significant role in various fields such as medical treatment, underwater communication, and environmental monitoring. However, the long wavelengths, strong penetration, and their tendency to easily diffract of low-frequency acoustic waves make it challenging to achieve directional control and intensity enhancement. Thanks to the development of acoustic metamaterials, acoustic devices can now effectively manipulate low-frequency acoustic waves at subwavelength scales with excellent acoustic performance. Currently, the directional control and intensity enhancement of low-frequency acoustic waves mainly concentrate on source design and the modulation of propagation processes. These techniques employ acoustic resonance, focusing, and other phase control methods to achieve energy concentration and directional control of low-frequency acoustic waves. Nevertheless, existing low-frequency acoustic wave control techniques still face issues such as low energy efficiency, poor directional control, and limited controllable bandwidth. This paper systematically reviews methods for achieving high-intensity emission and directional control of low-frequency acoustic waves, comprehensively compares the advantages and disadvantages of various technologies, and discusses how to extend these methods to lower acoustic frequency bands, aiming to provide new insights for the development of miniaturized, efficient, and accurately directional ultra-low frequency acoustic devices.
KW - acoustic metamaterials
KW - directional control
KW - high sound intensity
KW - low-frequency acoustic waves
UR - https://www.scopus.com/pages/publications/105002718276
U2 - 10.1002/advs.202410695
DO - 10.1002/advs.202410695
M3 - 文献综述
C2 - 40244919
AN - SCOPUS:105002718276
SN - 2198-3844
VL - 12
JO - Advanced Science
JF - Advanced Science
IS - 27
M1 - 2410695
ER -