In this work, we present an ethanol sensor based on a D-shaped optical fiber functionalized with a nanostructured layer of gold nanostars (AuNSs). The functionalization was achieved via a seed-mediated growth method, enabling uniform and controlled nanoparticle deposition on the fiber surface. The sensor was integrated into a custom-designed microfluidic chip, allowing precise control of analyte delivery and ensuring highly reproducible measurements. The sensing mechanism relies on the interaction between the evanescent field of the D-shaped fiber and the AuNSs, which enhances light–matter interaction and increases sensitivity to refractive index variations induced by ethanol concentration changes. The device exhibited a highly linear response (R² = 99.960) over a concentration range of 0–40%, with a detection limit of 0.07% and a response time of approximately 10 s. The combination of nanostructured plasmonic materials and microfluidic integration results in improved sensitivity, repeatability, and response speed. These results demonstrate the potential of D-shaped fiber platforms functionalized with gold nanostructures for the development of compact and efficient chemical sensing systems.

Gold Nanostars based Microfluidic Optical Fiber Sensor for Enhanced Ethanol Detection / Russo, S., Boetti, N.G., Giardino, M., Chiavaioli, F., Janner, D.. - In: IEEE SENSORS JOURNAL. - ISSN 1530-437X. - (2026), pp. 1-1. [10.1109/JSEN.2026.3724806]

Gold Nanostars based Microfluidic Optical Fiber Sensor for Enhanced Ethanol Detection

Russo S.;Boetti N. G.;Giardino M.;Janner D.
2026

Abstract

In this work, we present an ethanol sensor based on a D-shaped optical fiber functionalized with a nanostructured layer of gold nanostars (AuNSs). The functionalization was achieved via a seed-mediated growth method, enabling uniform and controlled nanoparticle deposition on the fiber surface. The sensor was integrated into a custom-designed microfluidic chip, allowing precise control of analyte delivery and ensuring highly reproducible measurements. The sensing mechanism relies on the interaction between the evanescent field of the D-shaped fiber and the AuNSs, which enhances light–matter interaction and increases sensitivity to refractive index variations induced by ethanol concentration changes. The device exhibited a highly linear response (R² = 99.960) over a concentration range of 0–40%, with a detection limit of 0.07% and a response time of approximately 10 s. The combination of nanostructured plasmonic materials and microfluidic integration results in improved sensitivity, repeatability, and response speed. These results demonstrate the potential of D-shaped fiber platforms functionalized with gold nanostructures for the development of compact and efficient chemical sensing systems.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/3016181
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