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Mode and orbital angular momentum controlling of nonlocal solitons by anisotropic diffraction

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【作者】 朱俊英王清魏健宁

【Author】 Junying Zhu;Qing Wang;Jianning Wei;School of Mechanical & Intelligent Manufacturing,Jiujiang University;Institute of Nonlinear Optics,College of Science,Jiujiang University;

【通讯作者】 魏健宁;

【机构】 School of Mechanical & Intelligent Manufacturing,Jiujiang UniversityInstitute of Nonlinear Optics,College of Science,Jiujiang University

【摘要】 This study presents a novel approach to control the mode transform between Laguerre–Gaussian solitons and Hermite–Gaussian solitons by designing anisotropic diffraction in nonlocal medium. The anisotropic diffraction can introduce differential phase shifts and amplitude modulations to the optical field, and then leading to the transform of the soliton mode from one to another, while the accompanying orbital angular momentum exhibits a periodic variation. When the anisotropic diffraction is designed to become isotropic at the desired distance, various mode solitons with different rotation speeds and directions can be generated, which implies that the mode transform process and the change law of orbital angular momentum can be controlled. This finding establishes a versatile platform for nonlinear mode transform, offering new possibilities for applications in optical signal processing, topological photonics, optical micro-manipulation, and so on.

【Abstract】 This study presents a novel approach to control the mode transform between Laguerre–Gaussian solitons and Hermite–Gaussian solitons by designing anisotropic diffraction in nonlocal medium. The anisotropic diffraction can introduce differential phase shifts and amplitude modulations to the optical field, and then leading to the transform of the soliton mode from one to another, while the accompanying orbital angular momentum exhibits a periodic variation. When the anisotropic diffraction is designed to become isotropic at the desired distance, various mode solitons with different rotation speeds and directions can be generated, which implies that the mode transform process and the change law of orbital angular momentum can be controlled. This finding establishes a versatile platform for nonlinear mode transform, offering new possibilities for applications in optical signal processing, topological photonics, optical micro-manipulation, and so on.

【基金】 Project supported by the National Natural Science Foundation of China (Grant No. 12265015)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2026年04期
  • 【分类号】O43
  • 【下载频次】1
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