Metasurfaces‐Driven Hyperspectral Imaging via Multiplexed Plasmonic Resonance Energy Transfer

Author:

Kim Inki12ORCID,Kim Hongyoon3,Han Seungyeon4,Kim Joohoon3,Kim Yangkyu12,Eom Seonghyeon4,Barulin Aleksandr1,Choi Inhee45ORCID,Rho Junsuk3678ORCID,Lee Luke P.191011ORCID

Affiliation:

1. Department of Biophysics Institute of Quantum Biophysics Sungkyunkwan University Suwon 16419 Republic of Korea

2. Department of Intelligent Precision Healthcare Convergence Sungkyunkwan University Suwon 16419 Republic of Korea

3. Department of Mechanical Engineering Pohang University of Science and Technology (POSTECH) Pohang 37673 Republic of Korea

4. Department of Life Science University of Seoul Seoul 02504 Republic of Korea

5. Department of Applied Chemistry University of Seoul Seoul 02504 Republic of Korea

6. Department of Chemical Engineering Pohang University of Science and Technology (POSTECH) Pohang 37673 Republic of Korea

7. POSCO‐POSTECH‐RIST Convergence Research Center for Flat Optics and Metaphotonics Pohang 37673 Republic of Korea

8. National Institute of Nanomaterials Technology (NINT) Pohang 37673 Republic of Korea

9. Department of Medicine Harvard Medical School Brigham and Women's Hospital Boston MA 02115 USA

10. Department of Bioengineering University of California at Berkeley Berkeley CA 94720 USA

11. Department of Electrical Engineering and Computer Science University of California at Berkeley Berkeley CA 94720 USA

Abstract

AbstractObtaining single–molecular–level fingerprints of biomolecules and electron–transfer dynamic imaging in living cells are critically demanded in postgenomic life sciences and medicine. However, the possible solution called plasmonic resonance energy transfer (PRET) spectroscopy remains challenging due to the fixed scattering spectrum of a plasmonic nanoparticle and limited multiplexing. Here, multiplexed metasurfaces‐driven PRET hyperspectral imaging, to probe biological light–matter interactions, is reported. Pixelated metasurfaces with engineered scattering spectra are first designed over the entire visible range by the precision nanoengineering of gap plasmon and grating effects of metasurface clusters. Pixelated metasurfaces are created and their full dark‐field coloration is optically characterized with visible color palettes and high‐resolution color printings of the art pieces. Furthermore, three different biomolecules (i.e., chlorophyll a, chlorophyll b, and cytochrome c) are applied on metasurfaces for color palettes to obtain selective molecular fingerprint imaging due to the unique biological light–matter interactions with application‐specific biomedical metasurfaces. This metasurface‐driven PRET hyperspectral imaging will open up a new path for multiplexed real‐time molecular sensing and imaging methods.

Funder

Samsung

National Research Foundation of Korea

Pohang University of Science and Technology

Air Force Office of Scientific Research

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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