Imaging through scattering layers using a near-infrared low-spatial-coherence fiber random laser

Anda Shi, Zeyu Wang, Chenxi Duan, Zhao Wang, Weili Zhang
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Abstract

Optical memory effect-based speckle-correlated technology has been developed for reconstructing hidden objects from disordered speckle patterns, achieving imaging through scattering layers. However, the lighting efficiency and field of view of existing speckle-correlated imaging systems are limited. Here, a near-infrared low spatial coherence fiber random laser illumination method is proposed to address the above limitations. Through the utilization of random Rayleigh scattering within dispersion-shifted fibers to provide feedback, coupled with stimulated Raman scattering for amplification, a near-infrared fiber random laser exhibiting a high spectral density and extremely low spatial coherence is generated. Based on the designed fiber random laser, speckle-correlated imaging through scattering layers is achieved, with high lighting efficiency and a large imaging field of view. This work improves the performance of speckle-correlated imaging and enriches the research on imaging through scattering medium.
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利用近红外低空间相干光纤随机激光器进行散射层成像
基于光学记忆效应的斑点相关技术已被开发出来,用于从无序的斑点模式中重建隐藏的物体,通过散射层实现成像。然而,现有斑点相关成像系统的照明效率和视场都受到限制。本文针对上述局限性,提出了一种近红外低空间相干光纤随机激光照明方法。通过利用色散位移光纤内的随机瑞利散射提供反馈,再加上受激拉曼散射进行放大,产生了一种具有高光谱密度和极低空间相干性的近红外光纤随机激光器。基于所设计的光纤随机激光器,通过散射层实现了斑点相关成像,具有高照明效率和大成像视场。这项工作提高了斑点相关成像的性能,丰富了通过散射介质成像的研究。
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