TY - JOUR
T1 - All-in-one modular metasurfaces enabling multiparameter manipulation and function switching
AU - Song, Kun
AU - Yuan, Hao
AU - Zhao, Yidan
AU - Wang, Yuan
AU - Chen, Qiang
AU - Li, Zhenfei
AU - Liu, Yahong
AU - Wang, Min
AU - Zhao, Xiaopeng
AU - Ji, Ruonan
AU - Zhao, Qian
N1 - Publisher Copyright:
© 2026 American Physical Society.
PY - 2026/2
Y1 - 2026/2
N2 - Controlling the amplitude, phase, and polarization of electromagnetic waves is essential for multifunctional metasurfaces; however, conventional designs become exponentially more complex as additional functionalities are added. Here, we present a modular approach to a universal, multifunctional polarization controller that combines wavefront, phase, and polarization manipulation. First, we propose a set of chiral enantiomer metasurfaces for polarization conversion, and these are then combined with phase-gradient metasurfaces to construct dual-functional modules. These modules enable simultaneous wavefront shaping and polarization conversion with over 95% efficiency across a 27.6% relative bandwidth from 9.7 to 12.8 GHz. Our experimental results demonstrate that cascading the modules at optimized distances with mechanical rotations achieves broadband control over the wavefront, polarization, and amplitude. This includes linear and circular polarization beam splitters with a conversion efficiency greater than 90% and an axis ratio below 3 dB, neutral-density-filter-like devices with tunable transmittance ranging from 0% to 90%, and arbitrary polarization rotators spanning from 0° to 180°. The architecture enables reconfigurable functionality without active components, relying on Fabry-Pérot interference and spatial arrangement. This work establishes a paradigm for compact electromagnetic systems with applications in beam steering and adaptive optics and paves the way for industrial adoption through simplified fabrication.
AB - Controlling the amplitude, phase, and polarization of electromagnetic waves is essential for multifunctional metasurfaces; however, conventional designs become exponentially more complex as additional functionalities are added. Here, we present a modular approach to a universal, multifunctional polarization controller that combines wavefront, phase, and polarization manipulation. First, we propose a set of chiral enantiomer metasurfaces for polarization conversion, and these are then combined with phase-gradient metasurfaces to construct dual-functional modules. These modules enable simultaneous wavefront shaping and polarization conversion with over 95% efficiency across a 27.6% relative bandwidth from 9.7 to 12.8 GHz. Our experimental results demonstrate that cascading the modules at optimized distances with mechanical rotations achieves broadband control over the wavefront, polarization, and amplitude. This includes linear and circular polarization beam splitters with a conversion efficiency greater than 90% and an axis ratio below 3 dB, neutral-density-filter-like devices with tunable transmittance ranging from 0% to 90%, and arbitrary polarization rotators spanning from 0° to 180°. The architecture enables reconfigurable functionality without active components, relying on Fabry-Pérot interference and spatial arrangement. This work establishes a paradigm for compact electromagnetic systems with applications in beam steering and adaptive optics and paves the way for industrial adoption through simplified fabrication.
UR - https://www.scopus.com/pages/publications/105031906965
U2 - 10.1103/38dd-6qfd
DO - 10.1103/38dd-6qfd
M3 - 文章
AN - SCOPUS:105031906965
SN - 2331-7019
VL - 25
JO - Physical Review Applied
JF - Physical Review Applied
IS - 2
M1 - 024087
ER -