Real-time holographic camera for obtaining real 3D scene hologram

IF 23.4 Q1 OPTICS Light-Science & Applications Pub Date : 2025-02-08 DOI:10.1038/s41377-024-01730-9
Zhao-Song Li, Chao Liu, Xiao-Wei Li, Yi Zheng, Qian Huang, Yi-Wei Zheng, Ye-Hao Hou, Chen-Liang Chang, Da-Wei Zhang, Song-Lin Zhuang, Di Wang, Qiong-Hua Wang
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Abstract

As a frontier technology, holography has important research values in fields such as bio-micrographic imaging, light field modulation and data storage. However, the real-time acquisition of 3D scenes and high-fidelity reconstruction technology has not yet made a breakthrough, which has seriously hindered the development of holography. Here, a novel holographic camera is proposed to solve the above inherent problems completely. The proposed holographic camera consists of the acquisition end and the calculation end. At the acquisition end of the holographic camera, specially configured liquid materials and liquid lens structure based on voice-coil motor-driving are used to produce the liquid camera, so that the liquid camera can quickly capture the focus stack of the real 3D scene within 15 ms. At the calculation end, a new structured focus stack network (FS-Net) is designed for hologram calculation. After training the FS-Net with the focus stack renderer and learnable Zernike phase, it enables hologram calculation within 13 ms. As the first device to achieve real-time incoherent acquisition and high-fidelity holographic reconstruction of a real 3D scene, our proposed holographic camera breaks technical bottlenecks of difficulty in acquiring the real 3D scene, low quality of the holographic reconstructed image, and incorrect defocus blur. The experimental results demonstrate the effectiveness of our holographic camera in the acquisition of focal plane information and hologram calculation of the real 3D scene. The proposed holographic camera opens up a new way for the application of holography in fields such as 3D display, light field modulation, and 3D measurement.

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实时全息相机,用于获取真实的三维场景全息图
全息技术作为一项前沿技术,在生物显微成像、光场调制和数据存储等领域具有重要的研究价值。然而,三维场景的实时采集和高保真重建技术尚未取得突破,严重阻碍了全息技术的发展。本文提出了一种新型全息相机,彻底解决了上述固有问题。该全息相机由采集端和计算端组成。在全息相机的采集端,采用特殊配置的液体材料和基于音圈电机驱动的液体镜头结构来制作液体相机,使液体相机能够在15ms内快速捕获真实3D场景的焦点堆栈。在计算端,设计了一种新的用于全息图计算的结构化焦点堆栈网络(FS-Net)。在使用焦点堆栈渲染器和可学习的Zernike相位对FS-Net进行训练后,它可以在13 ms内实现全息图计算。作为首个实现真实三维场景实时非相干采集和高保真全息重建的设备,我们所提出的全息相机突破了真实三维场景获取困难、全息重建图像质量不高、离焦模糊不正确等技术瓶颈。实验结果证明了全息相机在真实三维场景的焦平面信息采集和全息图计算方面的有效性。所提出的全息相机为全息技术在三维显示、光场调制、三维测量等领域的应用开辟了一条新的途径。
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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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