使用衍射处理器的全光学复合场成像。

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy Light, science & applications Pub Date : 2024-05-28 DOI:10.1038/s41377-024-01482-6
Jingxi Li, Yuhang Li, Tianyi Gan, Che-Yung Shen, Mona Jarrahi, Aydogan Ozcan
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引用次数: 0

摘要

复杂场成像可捕捉输入光场或物体的振幅和相位信息,能提供丰富的样品结构信息,如吸收和折射率分布。然而,传统的图像传感器是基于强度的,本质上缺乏直接测量光场相位分布的能力。这一限制可以使用干涉测量或全息方法来克服,通常辅以迭代相位检索算法,从而大大增加了硬件复杂性和计算需求。在这里,我们提出了一种复杂场成像仪设计,利用基于强度的传感器阵列,无需任何数字处理即可对输入场的振幅和定量相位信息进行快照成像。我们的设计利用连续的深度学习优化衍射面,这些衍射面的结构可共同调制输入复场,形成两个独立的成像通道,在一个紧凑的光学设计中,在输入和输出平面之间执行振幅到振幅和相位到强度的变换,轴向跨度约为 100 个波长。传感器平面上这两个通道的输出场强度分布直接对应于输入复场的振幅和定量相位剖面,无需任何数字图像重建算法。我们通过三维打印的原型验证了我们的复场衍射成像仪设计在太赫兹频谱下的功效,输出的振幅和相位通道图像与我们的数字模拟非常吻合。我们设想这种复杂场成像仪将在安全、生物医学成像、传感和材料科学等领域有多种应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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All-optical complex field imaging using diffractive processors.

Complex field imaging, which captures both the amplitude and phase information of input optical fields or objects, can offer rich structural insights into samples, such as their absorption and refractive index distributions. However, conventional image sensors are intensity-based and inherently lack the capability to directly measure the phase distribution of a field. This limitation can be overcome using interferometric or holographic methods, often supplemented by iterative phase retrieval algorithms, leading to a considerable increase in hardware complexity and computational demand. Here, we present a complex field imager design that enables snapshot imaging of both the amplitude and quantitative phase information of input fields using an intensity-based sensor array without any digital processing. Our design utilizes successive deep learning-optimized diffractive surfaces that are structured to collectively modulate the input complex field, forming two independent imaging channels that perform amplitude-to-amplitude and phase-to-intensity transformations between the input and output planes within a compact optical design, axially spanning ~100 wavelengths. The intensity distributions of the output fields at these two channels on the sensor plane directly correspond to the amplitude and quantitative phase profiles of the input complex field, eliminating the need for any digital image reconstruction algorithms. We experimentally validated the efficacy of our complex field diffractive imager designs through 3D-printed prototypes operating at the terahertz spectrum, with the output amplitude and phase channel images closely aligning with our numerical simulations. We envision that this complex field imager will have various applications in security, biomedical imaging, sensing and material science, among others.

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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
期刊最新文献
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