TY - JOUR
T1 - Polarization-Encrypted Orbital Angular Momentum Multiplexed Metasurface Holography
AU - Zhou, Hongqiang
AU - Sain, Basudeb
AU - Wang, Yongtian
AU - Schlickriede, Christian
AU - Zhao, Ruizhe
AU - Zhang, Xue
AU - Wei, Qunshuo
AU - Li, Xiaowei
AU - Huang, Lingling
AU - Zentgraf, Thomas
N1 - Publisher Copyright:
© 2020 American Chemical Society.
PY - 2020/5/26
Y1 - 2020/5/26
N2 - Metasurface holography has the advantage of realizing complex wavefront modulation by thin layers together with the progressive technique of computer-generated holographic imaging. Despite the well-known light parameters, such as amplitude, phase, polarization, and frequency, the orbital angular momentum (OAM) of a beam can be regarded as another degree of freedom. Here, we propose and demonstrate orbital angular momentum multiplexing at different polarization channels using a birefringent metasurface for holographic encryption. The OAM selective holographic information can only be reconstructed with the exact topological charge and a specific polarization state. By using an incident beam with different topological charges as erasers, we mimic a super-resolution case for the reconstructed image, in analogy to the well-known STED technique in microscopy. The combination of multiple polarization channels together with the orbital angular momentum selectivity provides a higher security level for holographic encryption. Such a technique can be applied for beam shaping, optical camouflage, data storage, and dynamic displays.
AB - Metasurface holography has the advantage of realizing complex wavefront modulation by thin layers together with the progressive technique of computer-generated holographic imaging. Despite the well-known light parameters, such as amplitude, phase, polarization, and frequency, the orbital angular momentum (OAM) of a beam can be regarded as another degree of freedom. Here, we propose and demonstrate orbital angular momentum multiplexing at different polarization channels using a birefringent metasurface for holographic encryption. The OAM selective holographic information can only be reconstructed with the exact topological charge and a specific polarization state. By using an incident beam with different topological charges as erasers, we mimic a super-resolution case for the reconstructed image, in analogy to the well-known STED technique in microscopy. The combination of multiple polarization channels together with the orbital angular momentum selectivity provides a higher security level for holographic encryption. Such a technique can be applied for beam shaping, optical camouflage, data storage, and dynamic displays.
KW - all-dielectric metasurface
KW - metasurface holography
KW - multiplexing
KW - orbital angular momentum
KW - polarization-encryption
KW - vortex beam array
UR - http://www.scopus.com/inward/record.url?scp=85085586251&partnerID=8YFLogxK
U2 - 10.1021/acsnano.9b09814
DO - 10.1021/acsnano.9b09814
M3 - Article
C2 - 32348122
AN - SCOPUS:85085586251
SN - 1936-0851
VL - 14
SP - 5553
EP - 5559
JO - ACS Nano
JF - ACS Nano
IS - 5
ER -