Abstract
We propose an extrinsic Fabry-Perot interferometer (EFPI)-based optical fiber sensor with a novel mechanical design for nano-scale strain measurement. In our proposed sensor, a designed mechanical structure consists of a cylinder and a square column attached to a stainless steel substrate. This simple and compact structure along with a fiber ceramic ferrule and a gold-coated reflective mirror as a packaged EFPI sensor can resolve nano-scale strain with temperature self-compensation. In comparison with the existing nanostrain sensing methods, no reference sensors and complicated configurations are needed. The strain measured by our proposed sensor ranges from 0 to 677 nε with a measurement accuracy of ±5 nε. This robust and easy-to-build geometry-based nano-scale strain sensor has great potential in nanotechnology, geophysical research, seismic monitoring, and other practical applications.
| Original language | American English |
|---|---|
| Article number | 7964764 |
| Pages (from-to) | 1348-1351 |
| Number of pages | 4 |
| Journal | IEEE Photonics Technology Letters |
| Volume | 29 |
| Issue number | 16 |
| DOIs | |
| State | Published - Aug 1 2017 |
Keywords
- Capacitive sensors
- Cavity resonators
- Composite structures
- Fabry-Perot interferometers
- Fiber optic sensors
- Fiber optics
- Fibers
- Gold coatings
- Interferometers
- Nanotechnology
- Optical fibers
- Stainless steel
- Strain
- Strain measurement
- Temperature measurement
- Extrinsic Fabry Perot interferometer
- Geophysical researches
- mechanical
- Nanostrain
- Optical fiber interferometers
- Stainless steel substrates
- Strain sensors
- Temperature self-compensation
- Nanosensors
- Extrinsic Fabry-Perot interferometer
- Mechanical
Disciplines
- Electrical and Computer Engineering
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