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Updated: Feb 15, 2026

Fiber Optic Distributed Sensors for High-resolution Temperature Field Mapping
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LSPR and Interferometric Sensor Modalities Combined Using a Double-Clad Optical Fiber.

Harald Ian Muri1, Andon Bano2, Dag Roar Hjelme3

  • 1Department of Electronic Systems, Norwegian University of Science and Technology, Gunnerus Gate 1, 7012 Trondheim, Norway. harald.muri@ntnu.no.

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Summary

This study presents a novel optical fiber sensor that combines localized surface plasmon resonance (LSPR) and interferometric sensing for multi-parameter detection. The sensor utilizes a hydrogel with gold nanorods for simultaneous measurement of swelling and refractive index changes, enabling label-free biosensing.

Keywords:
FP interferometerLSPRdouble-clad optical fibergold nanorodsmultiparameter sensorreflection-based OF sensorsingle-point sensorsmart hydrogel

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Area of Science:

  • Optoelectronics
  • Nanotechnology
  • Biomedical Engineering

Background:

  • Developing advanced optical fiber sensors for multi-parameter detection is crucial for various applications.
  • Localized Surface Plasmon Resonance (LSPR) and interferometric sensing offer distinct advantages for signal transduction.
  • Stimuli-responsive hydrogels provide a platform for sensing local environmental changes.

Purpose of the Study:

  • To characterize a novel optical fiber-based sensor concept integrating LSPR and interferometric sensing.
  • To investigate the sensor's response to hydrogel swelling and variations in bulk solution refractive index.
  • To demonstrate the feasibility of label-free biosensing using immobilized gold nanorods in a hydrogel.

Main Methods:

  • Fabrication of a micro-Fabry-Perot sensor using a stimuli-responsive hydrogel with immobilized gold nanorods on a double-clad optical fiber.
  • Interferometric measurement of hydrogel swelling via the single-mode inner core.
  • LSPR signal acquisition using the multi-mode inner cladding.
  • Characterization of LSPR peak wavelength shifts in response to pH-induced swelling and bulk refractive index changes (glycerol, sucrose).
  • Demonstration of label-free biosensing via biotin-streptavidin recombination.

Main Results:

  • The interferometric signal quality was comparable to previous hydrogel micro-Fabry-Perot sensors.
  • Hydrogel swelling induced minor LSPR redshifts, while increased bulk refractive index caused significant blueshifts.
  • LSPR response to biotin-streptavidin recombination (7.6 nm redshift) was distinguishable from bulk refractive index effects.
  • Successful label-free biosensing was demonstrated using the LSPR signal from gold nanorods embedded in the hydrogel.

Conclusions:

  • The developed optical fiber sensor effectively integrates LSPR and interferometric sensing for multi-parameter detection.
  • The sensor shows potential for distinguishing between local refractive index changes (e.g., binding events) and bulk refractive index variations.
  • Immobilizing gold nanorods within a hydrogel on a double-clad optical fiber facet is a viable strategy for advanced biosensing applications.