High-efficiency, large-area lattice light-sheet generation by dielectric metasurfaces

Lattice light-sheet microscopy (LLSM) was developed for long-term live-cell imaging with ultra-fine three-dimensional (3D) spatial resolution, high temporal resolution, and low photo-toxicity by illuminating the sample with a thin lattice-like light-sheet. Currently available schemes for generating...

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Main Authors: Shi Fenghua, Wen Jing, Lei Dangyuan
Format: Article
Language:English
Published: De Gruyter 2020-06-01
Series:Nanophotonics
Subjects:
Online Access:https://doi.org/10.1515/nanoph-2020-0227
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spelling doaj-7c023e8f7ec6437a84fb0641d994b9ec2021-09-06T19:20:36ZengDe GruyterNanophotonics2192-86062192-86142020-06-019124043405110.1515/nanoph-2020-0227High-efficiency, large-area lattice light-sheet generation by dielectric metasurfacesShi Fenghua0Wen Jing1Lei Dangyuan2Anhui Province Key Laboratory of Optoelectric Materials Science and Technology, College of Physics and Electronic Information, Anhui Normal University, Wuhu, 241002, Anhui, PR ChinaEngineering Research Center of Optical Instrument and Systems, Ministry of Education and Shanghai Key Lab of Modern Optical System, University of Shanghai for Science and Technology, No. 516 Jun Gong Road, Shanghai, 200093, PR ChinaDepartment of Materials Science and Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Kowloon, Hong Kong, PR ChinaLattice light-sheet microscopy (LLSM) was developed for long-term live-cell imaging with ultra-fine three-dimensional (3D) spatial resolution, high temporal resolution, and low photo-toxicity by illuminating the sample with a thin lattice-like light-sheet. Currently available schemes for generating thin lattice light-sheets often require complex optical designs. Meanwhile, limited by the bulky objective lens and optical components, the light throughput of existing LLSM systems is rather low. To circumvent the above problems, we utilize a dielectric metasurface of a single footprint to replace the conventional illumination modules used in the conventional LLSM and generate a lattice light-sheet with a ~3-fold broader illumination area and a significantly leveraged illumination efficiency, which consequently leads to a larger field of view with a higher temporal resolution at no extra cost of the spatial resolution. We demonstrate that the metasurface can manipulate spatial frequencies of an input laser beam in orthogonal directions independently to break the trade-off between the field of view and illumination efficiency of the lattice light-sheet. Compared to the conventional LLSM, our metasurface module serving as an ultra-compact illumination component for LLSM at an ease will potentially enable a finer spatial resolution with a larger numerical-aperture detection objective lens.https://doi.org/10.1515/nanoph-2020-0227field of viewillumination efficiencylattice light-sheet microscopyoptical metasurfacespatial frequency manipulation
collection DOAJ
language English
format Article
sources DOAJ
author Shi Fenghua
Wen Jing
Lei Dangyuan
spellingShingle Shi Fenghua
Wen Jing
Lei Dangyuan
High-efficiency, large-area lattice light-sheet generation by dielectric metasurfaces
Nanophotonics
field of view
illumination efficiency
lattice light-sheet microscopy
optical metasurface
spatial frequency manipulation
author_facet Shi Fenghua
Wen Jing
Lei Dangyuan
author_sort Shi Fenghua
title High-efficiency, large-area lattice light-sheet generation by dielectric metasurfaces
title_short High-efficiency, large-area lattice light-sheet generation by dielectric metasurfaces
title_full High-efficiency, large-area lattice light-sheet generation by dielectric metasurfaces
title_fullStr High-efficiency, large-area lattice light-sheet generation by dielectric metasurfaces
title_full_unstemmed High-efficiency, large-area lattice light-sheet generation by dielectric metasurfaces
title_sort high-efficiency, large-area lattice light-sheet generation by dielectric metasurfaces
publisher De Gruyter
series Nanophotonics
issn 2192-8606
2192-8614
publishDate 2020-06-01
description Lattice light-sheet microscopy (LLSM) was developed for long-term live-cell imaging with ultra-fine three-dimensional (3D) spatial resolution, high temporal resolution, and low photo-toxicity by illuminating the sample with a thin lattice-like light-sheet. Currently available schemes for generating thin lattice light-sheets often require complex optical designs. Meanwhile, limited by the bulky objective lens and optical components, the light throughput of existing LLSM systems is rather low. To circumvent the above problems, we utilize a dielectric metasurface of a single footprint to replace the conventional illumination modules used in the conventional LLSM and generate a lattice light-sheet with a ~3-fold broader illumination area and a significantly leveraged illumination efficiency, which consequently leads to a larger field of view with a higher temporal resolution at no extra cost of the spatial resolution. We demonstrate that the metasurface can manipulate spatial frequencies of an input laser beam in orthogonal directions independently to break the trade-off between the field of view and illumination efficiency of the lattice light-sheet. Compared to the conventional LLSM, our metasurface module serving as an ultra-compact illumination component for LLSM at an ease will potentially enable a finer spatial resolution with a larger numerical-aperture detection objective lens.
topic field of view
illumination efficiency
lattice light-sheet microscopy
optical metasurface
spatial frequency manipulation
url https://doi.org/10.1515/nanoph-2020-0227
work_keys_str_mv AT shifenghua highefficiencylargearealatticelightsheetgenerationbydielectricmetasurfaces
AT wenjing highefficiencylargearealatticelightsheetgenerationbydielectricmetasurfaces
AT leidangyuan highefficiencylargearealatticelightsheetgenerationbydielectricmetasurfaces
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