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Published on: February 3, 2023
Highly versatile fiber-based optical Fabry-Pérot gas sensor
Jing Liu1, Yuze Sun, Xudong Fan
1Biological Engineering Department, University of Missouri, 240D Bond Life Sciences Center, 1201 E. Rollins Street, Columbia, Missouri 65211, USA.
Optics Express
|February 17, 2009
Summary
We created a compact fiber-based optical gas sensor using a versatile polymer layer. This novel sensor demonstrates high sensitivity for detecting various gas analytes, offering a detection limit on the order of 1-10 ppm.
Area of Science:
- Materials Science
- Chemical Sensing
- Optical Engineering
Background:
- Fiber-based optical sensors offer advantages in remote and harsh environment sensing.
- Fabry-Pérot (FP) interferometers are sensitive optical structures for various measurements.
- Developing versatile gas sensors requires adaptable sensing materials and robust optical designs.
Purpose of the Study:
- To develop a compact, versatile, and sensitive fiber-based optical Fabry-Pérot gas sensor.
- To demonstrate the sensor's capability to utilize various polymers for gas detection.
- To evaluate the sensor's performance with different volatile organic compounds.
Main Methods:
- Fabrication of an FP cavity by sequentially depositing silver and polymer layers on a fiber endface.
- Utilizing the spectral shift of the interference pattern in response to gas analyte exposure.
- Testing sensor response with polyethylene glycol (PEG) 400 and Norland Optical Adhesive (NOA) 81 polymers.
- Analyzing sensor performance for methanol, acetone, and hexanol vapors in continuous and pulsed modes.
Main Results:
- The fiber-based FP sensor demonstrated sensitivity to different gas analytes based on the polymer used.
- Sensitivity for methanol vapor was measured as 3.5 pm/ppm for PEG 400 and 0.1 pm/ppm for NOA 81.
- Detection limits were found to be on the order of 1-10 ppm for the tested analytes.
- The sensor showed distinct responses to methanol, acetone, and hexanol, highlighting its selectivity.
Conclusions:
- The developed fiber-based FP gas sensor is versatile, allowing the use of various polymers irrespective of their refractive index.
- The sensor exhibits high sensitivity and a low detection limit for volatile organic compounds.
- This technology holds promise for sensitive and adaptable gas sensing applications.

