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High‐Refractive‐Index Chip with Periodically Fine‐Tuning Gratings for Tunable Virtual‐Wavevector Spatial Frequency Shift Universal Super‐Resolution Imaging

Continued research in fields such as materials science and biomedicine requires the development of a super‐resolution imaging technique with a large field of view (FOV) and deep subwavelength resolution that is compatible with both fluorescent and nonfluorescent samples. Existing on‐chip super‐resol...

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Autores principales: Tang, Mingwei, Han, Yubing, Ye, Dehao, Zhang, Qianwei, Pang, Chenlei, Liu, Xiaowei, Shen, Weidong, Ma, Yaoguang, Kaminski, Clemens F., Liu, Xu, Yang, Qing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8948578/
https://www.ncbi.nlm.nih.gov/pubmed/35332700
http://dx.doi.org/10.1002/advs.202103835
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author Tang, Mingwei
Han, Yubing
Ye, Dehao
Zhang, Qianwei
Pang, Chenlei
Liu, Xiaowei
Shen, Weidong
Ma, Yaoguang
Kaminski, Clemens F.
Liu, Xu
Yang, Qing
author_facet Tang, Mingwei
Han, Yubing
Ye, Dehao
Zhang, Qianwei
Pang, Chenlei
Liu, Xiaowei
Shen, Weidong
Ma, Yaoguang
Kaminski, Clemens F.
Liu, Xu
Yang, Qing
author_sort Tang, Mingwei
collection PubMed
description Continued research in fields such as materials science and biomedicine requires the development of a super‐resolution imaging technique with a large field of view (FOV) and deep subwavelength resolution that is compatible with both fluorescent and nonfluorescent samples. Existing on‐chip super‐resolution methods exclusively focus on either fluorescent or nonfluorescent imaging, and, as such, there is an urgent requirement for a more general technique that is capable of both modes of imaging. In this study, to realize labeled and label‐free super‐resolution imaging on a single scalable photonic chip, a universal super‐resolution imaging method based on the tunable virtual‐wavevector spatial frequency shift (TVSFS) principle is introduced. Using this principle, imaging resolution can be improved more than threefold over the diffraction limit of a linear optical system. Here, diffractive units are fabricated on the chip's surface to provide wavevector‐variable evanescent wave illumination, enabling tunable spatial frequency shifts in the Fourier space. A large FOV and resolutions of λ/4.7 and λ/7.1 were achieved for label‐free and fluorescently labeled samples using a gallium phosphide (GaP) chip. With its large FOV, compatibility with different imaging modes, and monolithic integration, the proposed TVSFS chip may advance fields such as cell engineering, precision industry inspection, and chemical research.
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spelling pubmed-89485782022-03-29 High‐Refractive‐Index Chip with Periodically Fine‐Tuning Gratings for Tunable Virtual‐Wavevector Spatial Frequency Shift Universal Super‐Resolution Imaging Tang, Mingwei Han, Yubing Ye, Dehao Zhang, Qianwei Pang, Chenlei Liu, Xiaowei Shen, Weidong Ma, Yaoguang Kaminski, Clemens F. Liu, Xu Yang, Qing Adv Sci (Weinh) Research Articles Continued research in fields such as materials science and biomedicine requires the development of a super‐resolution imaging technique with a large field of view (FOV) and deep subwavelength resolution that is compatible with both fluorescent and nonfluorescent samples. Existing on‐chip super‐resolution methods exclusively focus on either fluorescent or nonfluorescent imaging, and, as such, there is an urgent requirement for a more general technique that is capable of both modes of imaging. In this study, to realize labeled and label‐free super‐resolution imaging on a single scalable photonic chip, a universal super‐resolution imaging method based on the tunable virtual‐wavevector spatial frequency shift (TVSFS) principle is introduced. Using this principle, imaging resolution can be improved more than threefold over the diffraction limit of a linear optical system. Here, diffractive units are fabricated on the chip's surface to provide wavevector‐variable evanescent wave illumination, enabling tunable spatial frequency shifts in the Fourier space. A large FOV and resolutions of λ/4.7 and λ/7.1 were achieved for label‐free and fluorescently labeled samples using a gallium phosphide (GaP) chip. With its large FOV, compatibility with different imaging modes, and monolithic integration, the proposed TVSFS chip may advance fields such as cell engineering, precision industry inspection, and chemical research. John Wiley and Sons Inc. 2022-01-27 /pmc/articles/PMC8948578/ /pubmed/35332700 http://dx.doi.org/10.1002/advs.202103835 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Tang, Mingwei
Han, Yubing
Ye, Dehao
Zhang, Qianwei
Pang, Chenlei
Liu, Xiaowei
Shen, Weidong
Ma, Yaoguang
Kaminski, Clemens F.
Liu, Xu
Yang, Qing
High‐Refractive‐Index Chip with Periodically Fine‐Tuning Gratings for Tunable Virtual‐Wavevector Spatial Frequency Shift Universal Super‐Resolution Imaging
title High‐Refractive‐Index Chip with Periodically Fine‐Tuning Gratings for Tunable Virtual‐Wavevector Spatial Frequency Shift Universal Super‐Resolution Imaging
title_full High‐Refractive‐Index Chip with Periodically Fine‐Tuning Gratings for Tunable Virtual‐Wavevector Spatial Frequency Shift Universal Super‐Resolution Imaging
title_fullStr High‐Refractive‐Index Chip with Periodically Fine‐Tuning Gratings for Tunable Virtual‐Wavevector Spatial Frequency Shift Universal Super‐Resolution Imaging
title_full_unstemmed High‐Refractive‐Index Chip with Periodically Fine‐Tuning Gratings for Tunable Virtual‐Wavevector Spatial Frequency Shift Universal Super‐Resolution Imaging
title_short High‐Refractive‐Index Chip with Periodically Fine‐Tuning Gratings for Tunable Virtual‐Wavevector Spatial Frequency Shift Universal Super‐Resolution Imaging
title_sort high‐refractive‐index chip with periodically fine‐tuning gratings for tunable virtual‐wavevector spatial frequency shift universal super‐resolution imaging
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8948578/
https://www.ncbi.nlm.nih.gov/pubmed/35332700
http://dx.doi.org/10.1002/advs.202103835
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