TY - JOUR
T1 - Multiplexing near- and far-field functionalities with high-efficiency bi-channel metasurfaces
AU - Dai, Changhong
AU - Liu, Tong
AU - Wang, Dongyi
AU - Zhou, Lei
N1 - This work was funded by National Key Research and Development Program of China (Grant No. 2022YFA1404701), National Natural Science Foundation of China (Grant Nos. 12221004, 62192771) and Natural Science Foundation of Shanghai (Grant No. 23dz2260100).
Publisher Copyright:
© The Author(s) 2024.
PY - 2024/4/15
Y1 - 2024/4/15
N2 - Propagating waves and surface waves are two distinct types of light-transporting modes, the free control of which are both highly desired in integration photonics. However, previously realized devices are bulky in sizes, inefficient, and/or can only achieve one type of light-manipulation functionality with a single device. Here, we propose a generic approach to design bi-channel meta-devices, constructed by carefully selected meta-atoms possessing reflection phases of both structural-resonance and geometric origins, which can exhibit two distinct light-manipulation functionalities in near-field (NF) and far-field (FF) channels, respectively. After characterizing the scattering properties of basic meta-atoms and briefly stating the theoretical strategy, we design/fabricate three different meta-devices and experimentally characterize their bi-channel wave-control functionalities in the telecom regime. Our experiments show that the first two devices can multiplex the generations of NF and FF optical vortices with different topological charges, while the third one exhibits anomalous surface plasmon polariton focusing in the NF and hologram formation in the FF simultaneously. Our results expand the wave-control functionalities of metasurfaces to all wave-transporting channels, which may inspire many exciting applications in integration optics.
AB - Propagating waves and surface waves are two distinct types of light-transporting modes, the free control of which are both highly desired in integration photonics. However, previously realized devices are bulky in sizes, inefficient, and/or can only achieve one type of light-manipulation functionality with a single device. Here, we propose a generic approach to design bi-channel meta-devices, constructed by carefully selected meta-atoms possessing reflection phases of both structural-resonance and geometric origins, which can exhibit two distinct light-manipulation functionalities in near-field (NF) and far-field (FF) channels, respectively. After characterizing the scattering properties of basic meta-atoms and briefly stating the theoretical strategy, we design/fabricate three different meta-devices and experimentally characterize their bi-channel wave-control functionalities in the telecom regime. Our experiments show that the first two devices can multiplex the generations of NF and FF optical vortices with different topological charges, while the third one exhibits anomalous surface plasmon polariton focusing in the NF and hologram formation in the FF simultaneously. Our results expand the wave-control functionalities of metasurfaces to all wave-transporting channels, which may inspire many exciting applications in integration optics.
KW - Bi-channel metasurfaces
KW - Near-field (NF) channels
KW - Far-field (FF) channels
KW - Integration photonics
KW - Structural-resonance
KW - Geometric phase
KW - Optical vortice
KW - Surface plasmon polariton
KW - Hologram
UR - http://www.scopus.com/inward/record.url?scp=85190390973&partnerID=8YFLogxK
U2 - 10.1186/s43074-024-00128-5
DO - 10.1186/s43074-024-00128-5
M3 - Journal article
AN - SCOPUS:85190390973
SN - 2662-1991
VL - 5
JO - PhotoniX
JF - PhotoniX
M1 - 11
ER -