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Caged-Sphere Optofluidic Sensors: Whispering Gallery Resonators in Wicking Microfluidics

The rapid development of optofluidic technologies in recent years has seen the need for sensing platforms with ease-of-use, simple sample manipulation, and high performance and sensitivity. Herein, an integrated optofluidic sensor consisting of a pillar array-based open microfluidic chip and caged d...

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Autores principales: Riesen, Nicolas, Peterkovic, Zane Q., Guan, Bin, François, Alexandre, Lancaster, David G., Priest, Craig
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9185560/
https://www.ncbi.nlm.nih.gov/pubmed/35684755
http://dx.doi.org/10.3390/s22114135
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author Riesen, Nicolas
Peterkovic, Zane Q.
Guan, Bin
François, Alexandre
Lancaster, David G.
Priest, Craig
author_facet Riesen, Nicolas
Peterkovic, Zane Q.
Guan, Bin
François, Alexandre
Lancaster, David G.
Priest, Craig
author_sort Riesen, Nicolas
collection PubMed
description The rapid development of optofluidic technologies in recent years has seen the need for sensing platforms with ease-of-use, simple sample manipulation, and high performance and sensitivity. Herein, an integrated optofluidic sensor consisting of a pillar array-based open microfluidic chip and caged dye-doped whispering gallery mode microspheres is demonstrated and shown to have potential for simple real-time monitoring of liquids. The open microfluidic chip allows for the wicking of a thin film of liquid across an open surface with subsequent evaporation-driven flow enabling continuous passive flow for sampling. The active dye-doped whispering gallery mode microspheres placed between pillars, avoid the use of cumbersome fibre tapers to couple light to the resonators as is required for passive microspheres. The performance of this integrated sensor is demonstrated using glucose solutions (0.05–0.3 g/mL) and the sensor response is shown to be dynamic and reversible. The sensor achieves a refractive index sensitivity of ~40 nm/RIU, with Q-factors of ~5 × 10(3) indicating a detection limit of ~3 × 10(−3) RIU (~20 mg/mL glucose). Further enhancement of the detection limit is expected by increasing the microsphere Q-factor using high-index materials for the resonators, or alternatively, inducing lasing. The integrated sensors are expected to have significant potential for a host of downstream applications, particularly relating to point-of-care diagnostics.
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spelling pubmed-91855602022-06-11 Caged-Sphere Optofluidic Sensors: Whispering Gallery Resonators in Wicking Microfluidics Riesen, Nicolas Peterkovic, Zane Q. Guan, Bin François, Alexandre Lancaster, David G. Priest, Craig Sensors (Basel) Communication The rapid development of optofluidic technologies in recent years has seen the need for sensing platforms with ease-of-use, simple sample manipulation, and high performance and sensitivity. Herein, an integrated optofluidic sensor consisting of a pillar array-based open microfluidic chip and caged dye-doped whispering gallery mode microspheres is demonstrated and shown to have potential for simple real-time monitoring of liquids. The open microfluidic chip allows for the wicking of a thin film of liquid across an open surface with subsequent evaporation-driven flow enabling continuous passive flow for sampling. The active dye-doped whispering gallery mode microspheres placed between pillars, avoid the use of cumbersome fibre tapers to couple light to the resonators as is required for passive microspheres. The performance of this integrated sensor is demonstrated using glucose solutions (0.05–0.3 g/mL) and the sensor response is shown to be dynamic and reversible. The sensor achieves a refractive index sensitivity of ~40 nm/RIU, with Q-factors of ~5 × 10(3) indicating a detection limit of ~3 × 10(−3) RIU (~20 mg/mL glucose). Further enhancement of the detection limit is expected by increasing the microsphere Q-factor using high-index materials for the resonators, or alternatively, inducing lasing. The integrated sensors are expected to have significant potential for a host of downstream applications, particularly relating to point-of-care diagnostics. MDPI 2022-05-29 /pmc/articles/PMC9185560/ /pubmed/35684755 http://dx.doi.org/10.3390/s22114135 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Riesen, Nicolas
Peterkovic, Zane Q.
Guan, Bin
François, Alexandre
Lancaster, David G.
Priest, Craig
Caged-Sphere Optofluidic Sensors: Whispering Gallery Resonators in Wicking Microfluidics
title Caged-Sphere Optofluidic Sensors: Whispering Gallery Resonators in Wicking Microfluidics
title_full Caged-Sphere Optofluidic Sensors: Whispering Gallery Resonators in Wicking Microfluidics
title_fullStr Caged-Sphere Optofluidic Sensors: Whispering Gallery Resonators in Wicking Microfluidics
title_full_unstemmed Caged-Sphere Optofluidic Sensors: Whispering Gallery Resonators in Wicking Microfluidics
title_short Caged-Sphere Optofluidic Sensors: Whispering Gallery Resonators in Wicking Microfluidics
title_sort caged-sphere optofluidic sensors: whispering gallery resonators in wicking microfluidics
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9185560/
https://www.ncbi.nlm.nih.gov/pubmed/35684755
http://dx.doi.org/10.3390/s22114135
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