TY - JOUR
T1 - Bioinspired acoustic metasurface for simultaneous bilateral wave manipulation
AU - Xiao, Heye
AU - Yu, Jiaqi
AU - Yan, Ming
AU - Song, Xiang
AU - Xu, Jingjian
AU - Bai, Junqiang
AU - Zhou, Jie
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/12
Y1 - 2026/12
N2 - Acoustic metasurfaces have been widely studied due to their thin thickness in low frequency and extraordinary manipulation of sound waves in the past few years. Full-space wavefront control can enrich the functionality of metasurfaces, however, most metasurfaces are constrained by unidirectional incidence, which is not conducive to their spatial adaptability. To fulfill this gap, we proposed a bioinspired metasurface unit consisting of coiling slits and Helmholtz transmission tunnels, which can independently modulate reflected and transmitted sound waves, and the transmitted and reflected phases can be combined arbitrarily within a range of structural parameters. Moreover, benefiting from its symmetrical configuration, this metasurface can work under forward or backward incidence conditions. To illustrate the presented acoustic metasurface, the acoustic impedance model of this unit was established theoretically, and a variety of acoustic functions are realized simultaneously in reflection and transmission modes, such as generating Bessel beams, focusing sound waves, and converting surface waves. Both numerical and experimental results demonstrate the extraordinary wave-manipulation performance of the metasurfaces. This finding provides new ideas for expanding the acoustic function of metasurfaces.
AB - Acoustic metasurfaces have been widely studied due to their thin thickness in low frequency and extraordinary manipulation of sound waves in the past few years. Full-space wavefront control can enrich the functionality of metasurfaces, however, most metasurfaces are constrained by unidirectional incidence, which is not conducive to their spatial adaptability. To fulfill this gap, we proposed a bioinspired metasurface unit consisting of coiling slits and Helmholtz transmission tunnels, which can independently modulate reflected and transmitted sound waves, and the transmitted and reflected phases can be combined arbitrarily within a range of structural parameters. Moreover, benefiting from its symmetrical configuration, this metasurface can work under forward or backward incidence conditions. To illustrate the presented acoustic metasurface, the acoustic impedance model of this unit was established theoretically, and a variety of acoustic functions are realized simultaneously in reflection and transmission modes, such as generating Bessel beams, focusing sound waves, and converting surface waves. Both numerical and experimental results demonstrate the extraordinary wave-manipulation performance of the metasurfaces. This finding provides new ideas for expanding the acoustic function of metasurfaces.
KW - Bidirectional
KW - Full-space
KW - Metasurface
UR - https://www.scopus.com/pages/publications/105037897546
U2 - 10.1186/s11671-026-04558-x
DO - 10.1186/s11671-026-04558-x
M3 - 文章
AN - SCOPUS:105037897546
SN - 2731-9229
VL - 21
JO - Discover Nano
JF - Discover Nano
IS - 1
M1 - 166
ER -