Design and Optimization of All-Dielectric Fluorescence Enhancing Metasurfaces: Towards Advanced Metasurface-Assisted Optrodes.

all-dielectric metasurfaces fluorescence enhancement lab-on-fiber labelled biosensing

Journal

Biosensors
ISSN: 2079-6374
Titre abrégé: Biosensors (Basel)
Pays: Switzerland
ID NLM: 101609191

Informations de publication

Date de publication:
21 Apr 2022
Historique:
received: 22 03 2022
revised: 15 04 2022
accepted: 19 04 2022
entrez: 28 5 2022
pubmed: 29 5 2022
medline: 1 6 2022
Statut: epublish

Résumé

The need for miniaturized biological sensors which can be easily integrated into medical needles and catheters for in vivo liquid biopsies with ever-increasing performances has stimulated the interest of researchers in lab-on-fiber (LOF) technology. LOF devices arise from the integration of functional materials at the nanoscale on the tip of optical fibers, thus endowing a simple optical fiber with advanced functionalities and enabling the realization of high-performance LOF biological sensors. Consequently, in 2017, we demonstrated the first optical fiber meta-tip (OFMT), consisting of the integration of plasmonic metasurfaces (MSs) on the optical fiber end-face which represented a major breakthrough along the LOF technology roadmap. Successively, we demonstrated that label-free biological sensors based on the plasmonic OFMT are able to largely overwhelm the performance of a standard plasmonic LOF sensor, in view of the extraordinary light manipulation capabilities of plasmonic array exploiting phase gradients. To further improve the overall sensitivity, a labelled sensing strategy is here suggested. To this end, we envision the possibility to realize a novel class of labelled LOF optrodes based on OFMT, where an all-dielectric MS, designed to enhance the fluorescence emission by a labelled target molecule, is integrated on the end-face of a multimode fiber (MMF). We present a numerical environment to compute the fluorescence enhancement factor collected by the MMF, when on its tip a Silicon MS is laid, consisting of an array of cylindrical nanoantennas, or of dimers or trimers of cylindrical nanoantennas. According to the numerical results, a suitable design of the dielectric MS allows for a fluorescence enhancement up to three orders of magnitudes. Moreover, a feasibility study is carried out to verify the possibility to fabricate the designed MSs on the termination of multimode optical fibers using electron beam lithography followed by reactive ion etching. Finally, we analyze a real application scenario in the field of biosensing and evaluate the degradation in the fluorescence enhancement performances, taking into account the experimental conditions. The present work, thus, provides the main guidelines for the design and development of advanced LOF devices based on the fluorescence enhancement for labelled biosensing applications.

Identifiants

pubmed: 35624565
pii: bios12050264
doi: 10.3390/bios12050264
pmc: PMC9138857
pii:
doi:

Substances chimiques

Polymers 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

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Auteurs

Hiba Alhalaby (H)

Optoelectronic Division, Department of Engineering, University of Sannio, 82100 Benevento, Italy.
Multi-Disciplinary Physics Laboratory, Optics and Fiber Optics Group, Faculty of Sciences, Lebanese University, Beirut 1500, Lebanon.

Maria Principe (M)

Optoelectronic Division, Department of Engineering, University of Sannio, 82100 Benevento, Italy.

Haitham Zaraket (H)

Multi-Disciplinary Physics Laboratory, Optics and Fiber Optics Group, Faculty of Sciences, Lebanese University, Beirut 1500, Lebanon.

Patrizio Vaiano (P)

Optoelectronic Division, Department of Engineering, University of Sannio, 82100 Benevento, Italy.

Anna Aliberti (A)

Optoelectronic Division, Department of Engineering, University of Sannio, 82100 Benevento, Italy.

Giuseppe Quero (G)

Optoelectronic Division, Department of Engineering, University of Sannio, 82100 Benevento, Italy.

Alessio Crescitelli (A)

Institute of Applied Sciences and Intelligent Systems, Unit of Naples, National Research Council, 80131 Naples, Italy.

Valentina Di Meo (V)

Institute of Applied Sciences and Intelligent Systems, Unit of Naples, National Research Council, 80131 Naples, Italy.

Emanuela Esposito (E)

Institute of Applied Sciences and Intelligent Systems, Unit of Naples, National Research Council, 80131 Naples, Italy.

Marco Consales (M)

Optoelectronic Division, Department of Engineering, University of Sannio, 82100 Benevento, Italy.

Andrea Cusano (A)

Optoelectronic Division, Department of Engineering, University of Sannio, 82100 Benevento, Italy.

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