TY - JOUR
T1 - Orbital angular momentum holography for high-security encryption
AU - Fang, Xinyuan
AU - Ren, Haoran
AU - Gu, Min
N1 - Funding Information:
We thank H.T. Luan and H.C. Yang for technical assistance with the experiment and B.K. Wang, Y. Zhang, C. Xu, T.X. Wang and J.T. Ma for useful discussions. M.G. acknowledges support from the Australian Research Council (ARC) through the Discovery Project (DP180102402). X.F. acknowledges support from a scholarship from the China Scholarship Council (CSC no. 201706190189). H.R. acknowledges funding support from a Victoria Fellowship and a Humboldt Research Fellowship from the Alexander von Humboldt Foundation.
Publisher Copyright:
© 2019, The Author(s), under exclusive licence to Springer Nature Limited.
PY - 2020/2/1
Y1 - 2020/2/1
N2 - Holography has been identified as a vital platform for three-dimensional displays, optical encryption, microscopy and artificial intelligence through different physical dimensions. However, unlike the wavelength and polarization divisions, orbital angular momentum (OAM) of light, despite its helical wavefront being an independent physical dimension, has not been implemented as an information carrier for holography due to the lack of helical mode index selectivity in the Bragg diffraction formula. Here, we demonstrate OAM holography by discovering strong OAM selectivity in the spatial-frequency domain without a theoretical helical mode index limit. As such, OAM holography allows the multiplexing of a wide range of OAM-dependent holographic images with a helical mode index spanning from −50 to 50, leading to a 10 bit OAM-encoded hologram for high-security optical encryption. Our results showing up to 210 OAM-dependent distinctive holographic images mark a new path to achieving ultrahigh-capacity holographic information systems harnessing the previously inaccessible OAM division.
AB - Holography has been identified as a vital platform for three-dimensional displays, optical encryption, microscopy and artificial intelligence through different physical dimensions. However, unlike the wavelength and polarization divisions, orbital angular momentum (OAM) of light, despite its helical wavefront being an independent physical dimension, has not been implemented as an information carrier for holography due to the lack of helical mode index selectivity in the Bragg diffraction formula. Here, we demonstrate OAM holography by discovering strong OAM selectivity in the spatial-frequency domain without a theoretical helical mode index limit. As such, OAM holography allows the multiplexing of a wide range of OAM-dependent holographic images with a helical mode index spanning from −50 to 50, leading to a 10 bit OAM-encoded hologram for high-security optical encryption. Our results showing up to 210 OAM-dependent distinctive holographic images mark a new path to achieving ultrahigh-capacity holographic information systems harnessing the previously inaccessible OAM division.
UR - https://www.scopus.com/pages/publications/85076574542
U2 - 10.1038/s41566-019-0560-x
DO - 10.1038/s41566-019-0560-x
M3 - Article
AN - SCOPUS:85076574542
SN - 1749-4885
VL - 14
SP - 102
EP - 108
JO - Nature Photonics
JF - Nature Photonics
IS - 2
ER -