• Advanced Photonics
  • Vol. 5, Issue 5, 056002 (2023)
Lang Li1、2、3, Yingchi Guo1、2、3, Zhichao Zhang1、2、3, Zijun Shang1、2、3, Chen Li1、2、3, Jiaqi Wang1、2、3, Liliang Gao1、2、3, Lan Hai1、2、3, Chunqing Gao1、2、3, and Shiyao Fu1、2、3、*
Author Affiliations
  • 1Beijing Institute of Technology, School of Optics and Photonics, Beijing, China
  • 2Ministry of Education of the People’s Republic of China, Key Laboratory of Photoelectronic Imaging Technology and System, Beijing, China
  • 3Ministry of Industry and Information Technology of the People’s Republic of China, Key Laboratory of Information Photonics Technology, Beijing, China
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    DOI: 10.1117/1.AP.5.5.056002 Cite this Article Set citation alerts
    Lang Li, Yingchi Guo, Zhichao Zhang, Zijun Shang, Chen Li, Jiaqi Wang, Liliang Gao, Lan Hai, Chunqing Gao, Shiyao Fu. Photon total angular momentum manipulation[J]. Advanced Photonics, 2023, 5(5): 056002 Copy Citation Text show less

    Abstract

    As an inherent degree of freedom, total angular momentum (TAM) of photons consisting of spin angular momentum and orbital angular momentum has inspired many advanced applications and attracted much attention in recent years. Probing TAM and tailoring beam’s TAM spectrum on demand are of great significance for TAM-based scenarios. We propose both theoretically and experimentally a TAM processor enabling tunable TAM manipulation. Such a processor consists of a set of quasi-symmetric units, and each unit is composed of a couple of diffraction optical elements fabricated through polymerized liquid crystals. Forty-two single TAM states are experimentally employed to prove the concept. The favorable results illustrate good TAM state selection performance, which makes it particularly attractive for high-speed large-capacity data transmission, optical computing, and high-security photon encryption systems.
    Supplementary Materials
    Lang Li, Yingchi Guo, Zhichao Zhang, Zijun Shang, Chen Li, Jiaqi Wang, Liliang Gao, Lan Hai, Chunqing Gao, Shiyao Fu. Photon total angular momentum manipulation[J]. Advanced Photonics, 2023, 5(5): 056002
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