Three-channel robust optical encryption via engineering coherence Stokes vector of partially coherent light

IF 15.7 Q1 OPTICS PhotoniX Pub Date : 2024-04-03 DOI:10.1186/s43074-024-00126-7
Yonglei Liu, Zhen Dong, Yimeng Zhu, Haiyun Wang, Fei Wang, Yahong Chen, Yangjian Cai
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Abstract

Optical encryption strategies utilizing fully coherent light have been widely explored but often face challenges such as speckle noise and beam instabilities. In this work, we introduce a novel protocol for multi-channel optical information encoding and encryption using vectorial spatial coherence engineering of a partially coherent light beam. By characterizing the beam’s spatial coherence structure with a $$2 \times 2$$ coherence matrix, we demonstrate independent control over the three components of the coherence Stokes vector. This allows for three-channel optical information encoding and encryption, with applications in color image representation. Unlike existing methods based on fully coherent light modulations, our approach utilizes a two-point dependent coherence Stokes vector, proving resilient to random noise in experimental scenarios. Our findings provide a robust foundation for higher-dimensional optical encoding and encryption, addressing limitations associated with partially coherent light in complex environments.

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通过部分相干光的工程相干斯托克斯矢量实现三信道稳健光学加密
利用全相干光的光学加密策略已被广泛探索,但往往面临斑点噪声和光束不稳定性等挑战。在这项工作中,我们介绍了一种利用部分相干光束的矢量空间相干工程进行多通道光信息编码和加密的新型协议。通过用 2 次 2 元相干矩阵描述光束的空间相干结构,我们展示了对相干斯托克斯矢量三个分量的独立控制。这使得三通道光学信息编码和加密成为可能,并可应用于彩色图像表示。与基于全相干光调制的现有方法不同,我们的方法利用了两点相关相干斯托克斯矢量,在实验中证明了对随机噪声的适应能力。我们的研究成果为更高维度的光学编码和加密奠定了坚实的基础,解决了复杂环境中部分相干光的局限性。
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来源期刊
CiteScore
25.70
自引率
0.00%
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0
审稿时长
13 weeks
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