Multi-moded high-index contrast optical waveguide for super-contrast high-resolution label-free microscopy

Author:

Jayakumar Nikhil1ORCID,Dullo Firehun T.2,Dubey Vishesh1,Ahmad Azeem1,Ströhl Florian1,Cauzzo Jennifer3,Guerreiro Eduarda Mazagao4,Snir Omri4,Skalko-Basnet Natasa3,Agarwal Krishna1,Ahluwalia Balpreet Singh15

Affiliation:

1. Department of Physics and Technology , UiT The Arctic University of Norway , Tromsø 9037 , Norway

2. Department of Microsystems and Nanotechnology , SINTEF Digital , Gaustadalleen 23C, 0373 Oslo , Norway

3. Department of Pharmacy, Faculty of Health Sciences , UiT The Arctic University of Norway , Tromsø 9037 , Norway

4. Department of Clinical Medicine , UiT The Arctic University of Norway , Tromsø 9037 , Norway

5. Department of Clinical Science , Intervention and Technology, Karolinska Insitute , 17177 Stockholm , Sweden

Abstract

Abstract The article elucidates the physical mechanism behind the generation of superior-contrast and high-resolution label-free images using an optical waveguide. Imaging is realized by employing a high index contrast multi-moded waveguide as a partially coherent light source. The modes provide near-field illumination of unlabeled samples, thereby repositioning the higher spatial frequencies of the sample into the far-field. These modes coherently scatter off the sample with different phases and are engineered to have random spatial distributions within the integration time of the camera. This mitigates the coherent speckle noise and enhances the contrast (2–10) × as opposed to other imaging techniques. Besides, the coherent scattering of the different modes gives rise to fluctuations in intensity. The technique demonstrated here is named chip-based Evanescent Light Scattering (cELS). The concepts introduced through this work are described mathematically and the high-contrast image generation process using a multi-moded waveguide as the light source is explained. The article then explores the feasibility of utilizing fluctuations in the captured images along with fluorescence-based techniques, like intensity-fluctuation algorithms, to mitigate poor-contrast and diffraction-limited resolution in the coherent imaging regime. Furthermore, a straight waveguide is demonstrated to have limited angular diversity between its multiple modes and therefore, for isotropic sample illumination, a multiple-arms waveguide geometry is used. The concepts introduced are validated experimentally via high-contrast label-free imaging of weakly scattering nanosized specimens such as extra-cellular vesicles (EVs), liposomes, nanobeads and biological cells such as fixed and live HeLa cells.

Funder

Marie Sklodowska-Curie Actions

H2020 European Research Council

H2020 Marie Skłodowska-Curie Actions

Research Council of Norway

BIOTEK 2021

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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