Flexible-type ultrathin holographic endoscope for microscopic imaging of unstained biological tissuesopen access
- Authors
- Choi, Wonjun; Kang, Munkyu; Hong, Jin Hee; Katz, Ori; Lee, Byunghak; Kim, Guang Hoon; Choi, Youngwoon; Choi, Wonshik
- Issue Date
- 2-8월-2022
- Publisher
- NATURE PORTFOLIO
- Citation
- NATURE COMMUNICATIONS, v.13, no.1
- Indexed
- SCIE
SCOPUS
- Journal Title
- NATURE COMMUNICATIONS
- Volume
- 13
- Number
- 1
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/143803
- DOI
- 10.1038/s41467-022-32114-5
- ISSN
- 2041-1723
- Abstract
- Lensless fibre endoscopes are minimally invasive, but are often rigid and require calibration and fluorescence labelling. Here, the authors present a flexible endoscope based on a bare fibre bundle and a lensless Fourier holographic imaging configuration to detect weak reflections from unstained biological tissues. Ultrathin lensless fibre endoscopes offer minimally invasive investigation, but they mostly operate as a rigid type due to the need for prior calibration of a fibre probe. Furthermore, most implementations work in fluorescence mode rather than label-free imaging mode, making them unsuitable for general medical diagnosis. Herein, we report a fully flexible ultrathin fibre endoscope taking 3D holographic images of unstained tissues with 0.85-mu m spatial resolution. Using a bare fibre bundle as thin as 200-mu m diameter, we design a lensless Fourier holographic imaging configuration to selectively detect weak reflections from biological tissues, a critical step for label-free endoscopic reflectance imaging. A unique algorithm is developed for calibration-free holographic image reconstruction, allowing us to image through a narrow and curved passage regardless of fibre bending. We demonstrate endoscopic reflectance imaging of unstained rat intestine tissues that are completely invisible to conventional endoscopes. The proposed endoscope will expedite a more accurate and earlier diagnosis than before with minimal complications.
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Collections - College of Science > Department of Physics > 1. Journal Articles
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