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28 October 2020 Dynamic photonic barcodes for molecular detection based on cavity-enhanced energy transfer
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Abstract

Optical barcodes have demonstrated a great potential in multiplexed bioassays and cell tracking for their distinctive spectral fingerprints. The vast majority of optical barcodes were designed to identify a specific target by fluorescence emission spectra, without being able to characterize dynamic changes in response to analytes through time. To overcome these limitations, the concept of the bioresponsive dynamic photonic barcode was proposed by exploiting interfacial energy transfer between a microdroplet cavity and binding molecules. Whispering-gallery modes resulting from cavity-enhanced energy transfer were therefore converted into photonic barcodes to identify binding activities, in which more than trillions of distinctive barcodes could be generated by a single droplet. Dynamic spectral barcoding was achieved by a significant improvement in terms of signal-to-noise ratio upon binding to target molecules. Theoretical studies and experiments were conducted to elucidate the effect of different cavity sizes and analyte concentrations. Time-resolved fluorescence lifetime was implemented to investigate the role of radiative and non-radiative energy transfer. Finally, microdroplet photonic barcodes were employed in biodetection to exhibit great potential in fulfilling biomedical applications.

CC BY: © The Authors. Published by SPIE under a Creative Commons Attribution 4.0 Unported License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
Yunke Zhou, Zhiyi Yuan, Xuerui Gong, Muhammad D. Birowosuto, Cuong H. Dang, and Yu-Cheng Chen "Dynamic photonic barcodes for molecular detection based on cavity-enhanced energy transfer," Advanced Photonics 2(6), 066002 (28 October 2020). https://doi.org/10.1117/1.AP.2.6.066002
Received: 9 August 2020; Accepted: 2 October 2020; Published: 28 October 2020
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CITATIONS
Cited by 11 scholarly publications.
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KEYWORDS
Energy transfer

Molecules

Molecular photonics

Molecular energy transfer

Luminescence

Fluorescence resonance energy transfer

Rhodamine

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