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A Silicon-tipped Fiber-optic Sensing Platform with High Resolution and Fast Response
Published on: January 7, 2019
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Temperature-insensitive refractive index sensor based on tilted moiré FBG with high resolution.
Optics Express
|August 10, 2017
Summary
A novel tilted moiré fiber Bragg grating (TMFBG) sensor achieves ultra-high refractive index resolution of 2 × 10-7 RIU. This advanced sensor also demonstrates excellent temperature-insensitivity for precise measurements.
Area of Science:
- Optoelectronics
- Fiber Optic Sensors
- Nanotechnology
Background:
- Fiber Bragg gratings (FBGs) are widely used in sensing applications.
- Tilted FBGs (TFBGs) offer enhanced sensitivity by coupling light into cladding modes.
- Existing TFBGs have limitations in resolution and temperature cross-sensitivity.
Purpose of the Study:
- To propose and fabricate a novel tilted moiré FBG (TMFBG) sensor.
- To enhance the resolution and temperature-insensitivity of FBG-based refractive index sensors.
- To investigate the performance of the TMFBG for high-precision refractive index detection.
Main Methods:
- Fabrication of a TMFBG sensor consisting of two consecutive scribed TFBGs.
- Adjustment of Bragg wavelengths and tilt angles of the TFBGs to achieve non-overlapping cladding mode combs.
- Utilizing the TMFBG for refractive index detection and evaluating its resolution and temperature performance.
Main Results:
- The fabricated TMFBG exhibits non-overlapping cladding mode combs in its transmission spectrum.
- The TMFBG sensor achieves a refractive index resolution of 2 × 10-7 RIU.
- The sensor demonstrates an order of magnitude improvement in resolution compared to single TFBGs.
- The TMFBG shows good performance regarding temperature-insensitivity.
Conclusions:
- The proposed TMFBG is a highly effective sensor for ultra-high resolution refractive index detection.
- The TMFBG sensor offers significant advantages over conventional TFBGs in terms of resolution and stability.
- This technology holds promise for advanced applications requiring precise refractive index measurements.

