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Crosstalk-Mitigated OAM Recovery Through Strong Scattering via Sparsity-Regularized LG-TM

  • Guangdong Ma
  • , Shupeng Zhao
  • , Xiao Wang
  • , Min An
  • , Shaoke Chen
  • , Jingjing Zhang
  • , Hong Gao
  • , Ruifeng Liu
  • , Rongqian Wu
  • , Pei Zhang
  • , Fuli Li
  • The First Affiliated Hospital of Xi’an Jiaotong University
  • School of Physics
  • Laboratoire Kastler Brossel
  • University of California at Los Angeles

科研成果: 期刊稿件文章同行评审

摘要

Light beams carrying orbital angular momentum (OAM) provide an unbounded set of mutually orthogonal spatial modes, enabling high-dimensional information encoding for optical communication and sensing. However, strong scattering severely distorts the helical phase structure of OAM beams, introducing inter-modal crosstalk that fundamentally limits practical unit-interval OAM-encoded systems. Here, we introduce a sparsity-regularized framework for OAM recovery through strongly scattering media by exploiting the intrinsic sparse representation of OAM states in the Laguerre–Gaussian basis. Compared with the conventional Gerchberg–Saxton algorithm, the resulting sparsity-regularized framework improves both the accuracy and robustness of modal reconstruction, particularly under noisy and challenging scattering conditions. Experimentally, we faithfully recover OAM modes across (Formula presented.) at unit spacing with fidelities above 99% and a maximum crosstalk of (Formula presented.) dB, achieving a fourfold expansion of the usable OAM bandwidth and an approximately 12.6-fold reduction in linear crosstalk over previous methods. We further demonstrate error-free grayscale image transmission through strong scattering, together with high-fidelity reconstruction of complex, random, and Gaussian OAM spectra, highlighting the robustness and versatility of our scheme. The proposed design offers a scalable and practical pathway toward high-capacity communication systems by fully leveraging adjacent low-order OAM modes, benefiting both classical and quantum high-dimensional OAM-based communications, even under strong scattering conditions.

源语言英语
期刊Laser and Photonics Reviews
DOI
出版状态已接受/待刊 - 2026
已对外发布

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