Quantitative phase imaging based on holography: trends and new perspectives

IF 20.6 Q1 OPTICS Light-Science & Applications Pub Date : 2024-06-27 DOI:10.1038/s41377-024-01453-x
Zhengzhong Huang, Liangcai Cao
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Abstract

In 1948, Dennis Gabor proposed the concept of holography, providing a pioneering solution to a quantitative description of the optical wavefront. After 75 years of development, holographic imaging has become a powerful tool for optical wavefront measurement and quantitative phase imaging. The emergence of this technology has given fresh energy to physics, biology, and materials science. Digital holography (DH) possesses the quantitative advantages of wide-field, non-contact, precise, and dynamic measurement capability for complex-waves. DH has unique capabilities for the propagation of optical fields by measuring light scattering with phase information. It offers quantitative visualization of the refractive index and thickness distribution of weak absorption samples, which plays a vital role in the pathophysiology of various diseases and the characterization of various materials. It provides a possibility to bridge the gap between the imaging and scattering disciplines. The propagation of wavefront is described by the complex amplitude. The complex-value in the complex-domain is reconstructed from the intensity-value measurement by camera in the real-domain. Here, we regard the process of holographic recording and reconstruction as a transformation between complex-domain and real-domain, and discuss the mathematics and physical principles of reconstruction. We review the DH in underlying principles, technical approaches, and the breadth of applications. We conclude with emerging challenges and opportunities based on combining holographic imaging with other methodologies that expand the scope and utility of holographic imaging even further. The multidisciplinary nature brings technology and application experts together in label-free cell biology, analytical chemistry, clinical sciences, wavefront sensing, and semiconductor production.

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基于全息技术的定量相位成像:趋势与新视角
1948 年,丹尼斯-加博尔(Dennis Gabor)提出了全息概念,为定量描述光学波面提供了开创性的解决方案。经过 75 年的发展,全息成像已成为光学波前测量和定量相位成像的强大工具。这项技术的出现为物理学、生物学和材料科学注入了新的活力。数字全息(DH)具有宽视场、非接触、精确和动态测量复杂波的量化优势。通过测量光散射的相位信息,数字全息技术具有独特的光场传播能力。它能定量显示弱吸收样品的折射率和厚度分布,这在各种疾病的病理生理学和各种材料的表征中起着至关重要的作用。它为缩小成像和散射学科之间的差距提供了可能。波阵面的传播由复数振幅描述。复域中的复值由相机在实域中测量的强度值重建。在此,我们将全息记录和重构过程视为复域和实域之间的转换,并讨论重构的数学和物理原理。我们回顾了 DH 的基本原理、技术方法和应用范围。最后,我们介绍了在将全息成像与其他方法相结合的基础上出现的挑战和机遇,这些方法进一步扩大了全息成像的范围和实用性。多学科性质汇集了无标记细胞生物学、分析化学、临床科学、波前传感和半导体生产领域的技术和应用专家。
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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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803
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2.1 months
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