论文标题

通过迭代波前优化,通过散射培养基的高忠诚生成复杂的光场

High fidelity generation of complex optical field through scattering medium with iterative wavefront optimization

论文作者

Liu, Hui, Zhu, Xiangyu, Zhang, Xiaoxue, Chen, Xudong, Lin, Zhili

论文摘要

散射介质中的光散射给光传输带来了重大障碍。当相干光通过强散射介质传播时,观察到具有随机振幅和相分布的斑点图案。幸运的是,在散射培养基(例如尖锐的焦点或指定的二维模式)之后,已成功使用了空间光调节器来恢复强度目标。但是,很少有研究试图单独操纵聚焦场的幅度和相位。在本文中,我们提出了一种基于反馈的波前塑形方法,以通过散射介质生成复杂的光场。引入了可靠的相位检索方法,以提供复杂的反馈信息,即聚焦场的幅度和相位。因此,为了将斑点场调节到所需的复合结构化光场中,多目标遗传算法用于找到最佳的相位图。为了证明该方法的高性能,已经进行了实验测试。在幅度和相位的各种复杂光场的产生中都证明了高保真度。我们的发现可能有助于通过散射培养基操纵光场,并有望进一步促进未来的应用,例如光遗传学,涡流光学通信和通过散射介质的光学诱捕。

Light scattering within scattering media presents a substantial obstacle to optical transmission. A speckle pattern with random amplitude and phase distribution is observed when coherent light travels through strong scattering media. Fortunately, wavefront shaping has been successfully employed with a spatial light modulator to recover intensity targets after scattering media, such as a sharp focus point or specified two-dimensional patterns. There have, however, been few studies that attempted to separately manipulate the amplitude and phase of the focusing field. In this paper, we propose a feedback-based wavefront shaping method to generate complex optical fields through scattering medium. A reliable phase retrieval approach is introduced to provide the complex feedback information, i.e., the amplitude and phase of the focusing field. Accordingly, in order to modulate the speckle field into a desired complex structured optical field, a multi-objective genetic algorithm is used to find the best phase map. To demonstrate the proposed method's high performance, experimental tests have been carried out. High fidelity is demonstrated in the generation of diverse complex light fields, both in amplitude and phase. Our findings may facilitate the manipulation of light field through scattering medium, and are anticipated to further promote future applications such as optogenetics, vortex optical communication, and optical trapping through scattering media.

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