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Get Free AccessWe present fiber Bragg grating (FBG)-based hydrostatic pressure sensing with highly birefringent microstructured optical fibers. Since small deformations of the microstructure can have a large influence on the material birefringence and pressure sensitivity of the fiber, we have evaluated two microstructured fibers that were made from comparable fiber preforms, but fabricated using different temperature and pressure conditions. The magnitude and sign of the pressure sensitivity are found to be different for both fibers. We have simulated the corresponding change of the Bragg peak separation with finite-element models and experimentally verified our results. We achieve very high experimental sensitivities of -15 and 33 pm/MPa for both sensors. To our knowledge, these are the highest sensitivities ever reported for birefringent FBG-based hydrostatic pressure sensing.
Sanne Sulejmani, Camille Sonnenfeld, Thomas Geernaert, Paweł Mergo, Mariusz Makara, Krzysztof Poturaj, Krzysztof Skorupski, Tadeusz Martynkien, Gabriela Statkiewicz-Barabach, Jacek Olszewski, Wacław Urbańczyk, Christophe Caucheteur, Karima Chah, Patrice Mégret, Herman Terryn, J. Van Roosbroeck, Francis Berghmans, Hugo Thienpont (2012). Control Over the Pressure Sensitivity of Bragg Grating-Based Sensors in Highly Birefringent Microstructured Optical Fibers. IEEE Photonics Technology Letters, 24(6), pp. 527-529, DOI: 10.1109/lpt.2012.2183120.
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Type
Article
Year
2012
Authors
18
Datasets
0
Total Files
0
Language
English
Journal
IEEE Photonics Technology Letters
DOI
10.1109/lpt.2012.2183120
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