期刊文献+

圆燕尾光束在大气湍流中的传输调控

Propagation Control of Circular Swallowtail Beams in Atmospheric Turbulence
原文传递
导出
摘要 光吸收和光散射给大气光通信以及生物活体光操控等应用带来极大的挑战。探索受光散射影响小的光束一直是光场调控研究的难点。本文设计了具有自会聚特性的圆燕尾光束,并研究其在大气湍流中的传输特性。通过分析光束在复杂环境中的畸变和强度波动发现,在湍流增强时,燕尾光束的传输质量下降,并伴随漂移和闪烁。通过对光束的尺寸因子和初始横向位置进行优化,可以提高其自会聚稳定性。模拟发现,自会聚能力强的圆燕尾光束,在湍流中表现更优越。这些研究显示圆燕尾光束在抗湍流散射方面具有优势,为复杂环境中的光通信、光捕获和光操纵技术提供了重要的选择。 Objective Light absorption and scattering pose great challenges to applications such as atmospheric optical communication and biological optical manipulation.Exploring special beams with minimal influence has been a research hotspot in light field manipulation.Currently,a mainstream method is to shape the beam by wavefront shaping to restore its light field.However,this method is quite complex and requires pre-calibration of the scattering process and restoration via complex algorithms,which increases the difficulty.Therefore,we directly look for a more robust beam that can reduce the light field distortion in complex environments.Meanwhile,we investigate the propagation characteristics of circular swallowtail beams with autofocusing properties in atmospheric turbulence.By analyzing the distortion and intensity fluctuations of the beam in complex environments,we study circular swallowtail beams propagation in resisting turbulence scattering.Finally,theoretical support is provided for selecting beams that are stable and have high focal intensity and effective propagation in complex environments.Methods We utilize the Kolmogorov turbulence theory to model turbulence strength,and employ a modified power spectral density and the multi-phase screen method to simulate turbulence.The turbulence magnitude indicates the level of turbulent disturbance.Initially,we adopt the multi-phase screen method to simulate the propagation of beams in turbulence.Then,we observe the propagation process and perform statistical analysis of instantaneous intensity at the focal point.In experiments,an alcohol lamp and tin foil are leveraged to mimic turbulence conditions.The beam passes above the tin foil during monitoring beam disturbance via a CCD camera.Additionally,we calculate the scintillation index(SI)of the circular swallowtail beam using simulations to observe intensity fluctuations.Finally,we analyze variations in SI and autofocusing factor with parameters of the circular swallowtail beam,providing a quantitative analysis for selecting appropriate parameters.Results and Discussions As turbulence increases,the propagation quality of the swallowtail beam decreases,leading to beam drift and scintillation.By optimizing the beam scale factor and initial transverse position,the autofocusing stability can be improved.Theoretical studies have shown that circular swallowtail beams with strong autofocusing ability perform better in turbulence.This characteristic is attributed to the self-healing ability of swallowtail beams,which allows the beams to quickly restore their intensity distribution to a state close to the original after encountering obstacles.Specifically,based on catastrophe diffraction theory,the self-accelerating propagation properties of swallowtail and Airy beams arise from catastrophe caustics.Catastrophe caustics are regions where light intensity reaches the maximum,and are closely associated with stable“singularities”,also known as caustics.The structural stability of caustics is an inherent feature of catastrophe beams.The results demonstrate that circular swallowtail beams have advantages in resisting turbulence scattering,providing important options for optical communication,optical trapping,and light field manipulation in complex environments.Conclusions We analyze the propagation of beams after passing through turbulence,the longitudinal offset at the focal point,and the statistical distribution of the focal intensity position.The results indicate that circular swallowtail beams with strong self-healing abilities exhibit excellent robustness,with relatively small intensity distortion and fluctuations.Furthermore,by studying the SI variation with propagation distance,it is observed that circular swallowtail beams with strong autofocusing abilities are less disturbed,with lighter scintillation and advantages in intensity stability.Finally,by parameter scanning,a series of circular swallowtail beams with the same focal length but different size factors w and control radius parameters r0 are identified.The autofocusing factor and SI are calculated for these beams.It is observed that the SI initially decreases and then increases with w and r0,while the autofocusing factor(K)simultaneously increases and then decreases.The research results not only provide a solid basis for regulating the propagation characteristics of circular swallowtail beams in turbulence but also theoretical support for selecting stable,high focal intensity,thus effectively propagating beams in complex environments.
作者 刘娜娜 洪佩龙 任煜轩 梁毅 Liu Nana;Hong Peilong;Ren Yuxuan;Liang Yi(School of Physical Science and Technology,Guangxi University,Nanning 530004,Guangxi,China;School of Mathematics and Physics,Anqing Normal University,Anqing 246133,Anhui,China;Institute for Translational Brain Research,Fudan University,Shanghai 200032,China)
出处 《光学学报》 EI CAS CSCD 北大核心 2024年第10期436-442,共7页 Acta Optica Sinica
基金 国家自然科学基金(11604058) 广西自然科学基金(2020GXNSFAA297041) 广西研究生教育创新计划(YCSW2023083)。
关键词 物理光学 圆燕尾光束 自会聚 大气湍流 传输 physical optics circular swallowtail beams autofocusing atmosphere turbulence propagation
  • 相关文献

参考文献6

二级参考文献14

共引文献53

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部