微尺度化学
斑点图案
相位成像
材料科学
光学
医学影像学
生物医学工程
临床前影像学
计算机科学
显微镜
人工智能
体内
医学
物理
生物
数学教育
生物技术
数学
作者
Jiawei Sun,Jiachen Wu,Song Wu,Ruchi Goswami,Salvatore Girardo,Liangcai Cao,Jochen Guck,Nektarios Koukourakis,Jürgen Czarske
标识
DOI:10.1038/s41377-022-00898-2
摘要
Abstract Quantitative phase imaging (QPI) is a label-free technique providing both morphology and quantitative biophysical information in biomedicine. However, applying such a powerful technique to in vivo pathological diagnosis remains challenging. Multi-core fiber bundles (MCFs) enable ultra-thin probes for in vivo imaging, but current MCF imaging techniques are limited to amplitude imaging modalities. We demonstrate a computational lensless microendoscope that uses an ultra-thin bare MCF to perform quantitative phase imaging with microscale lateral resolution and nanoscale axial sensitivity of the optical path length. The incident complex light field at the measurement side is precisely reconstructed from the far-field speckle pattern at the detection side, enabling digital refocusing in a multi-layer sample without any mechanical movement. The accuracy of the quantitative phase reconstruction is validated by imaging the phase target and hydrogel beads through the MCF. With the proposed imaging modality, three-dimensional imaging of human cancer cells is achieved through the ultra-thin fiber endoscope, promising widespread clinical applications.
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