论文标题

单像素相干衍射成像

Single-pixel coherent diffraction imaging

论文作者

Li, Meng, Bian, Liheng, Zheng, Guoan, Maiden, Andrew, Liu, Yang, Li, Yiming, Dai, Qionghai, Zhang, Jun

论文摘要

对于从X射线到THZ的波长的众多应用,复杂场成像是必不可少的,幅度描述了透射率(或反射率)和相位揭示目标对象的内在结构。相干衍射成像(CDI)采用迭代相检索算法来处理衍射测量,并且是图像复杂场的主要非交流方法。但是,CDI的工作频谱非常狭窄,因为它所依赖的衍射测量需要具有超高动态范围的密集阵列检测。在这里,我们报告了一种适用于宽波带的单像素CDI技术。在远场中使用单像素检测器而不是数组传感器进行检测。它反复记录从物体散射的衍射波前的仅DC组件,因为它被二进制调制模式序列照亮。这将测量的动态范围降低了几个数量级。我们采用有效的单像素相位回答算法来共同从仅1D强度测量值中恢复对象的2D振幅和相位图。恢复过程中不需要先验对象信息。我们使用校准的相对物体和生物样品验证了技术的定量相成像性质,并以488 nm可见光和980 nm的近边缘光线展示了其广泛的工作频谱。我们的方法为在不可用的2D检测器阵列的更广泛波段中为复杂场成像铺平了道路,在生命和物质科学中具有广泛的应用。

Complex-field imaging is indispensable for numerous applications at wavelengths from X-ray to THz, with amplitude describing transmittance (or reflectivity) and phase revealing intrinsic structure of the target object. Coherent diffraction imaging (CDI) employs iterative phase retrieval algorithms to process diffraction measurements and is the predominant non-interferometric method to image complex fields. However, the working spectrum of CDI is quite narrow, because the diffraction measurements on which it relies require dense array detection with ultra-high dynamic range. Here we report a single-pixel CDI technique that works for a wide waveband. A single-pixel detector instead of an array sensor is employed in the far field for detection. It repeatedly records the DC-only component of the diffracted wavefront scattered from an object as it is illuminated by a sequence of binary modulation patterns. This decreases the measurements' dynamic range by several orders of magnitude. We employ an efficient single-pixel phase-retrieval algorithm to jointly recover the object's 2D amplitude and phase maps from the 1D intensity-only measurements. No a priori object information is needed in the recovery process. We validate the technique's quantitative phase imaging nature using both calibrated phase objects and biological samples, and demonstrate its wide working spectrum with both 488-nm visible light and 980-nm near-infrared light. Our approach paves the way for complex-field imaging in a wider waveband where 2D detector arrays are not available, with broad applications in life and material sciences.

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