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Low-Finesse Fabry–Pérot Interferometers Applied in the Study of the Relation between the Optical Path Difference and Poles Location

Interferometry sensors are frequently analyzed by applying the Fourier transform because the transformation separates all frequency components of its signal, making its study on a complex plane feasible. In this work, we study the relation between the optical path difference (OPD) and poles location...

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Autores principales: Guillen Bonilla, José Trinidad, Guillen Bonilla, Héctor, Rodríguez Betancourtt, Verónica María, Sánchez Morales, María Eugenia, Reyes Gómez, Juan, Casillas Zamora, Antonio, Guillen Bonilla, Alex
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7013768/
https://www.ncbi.nlm.nih.gov/pubmed/31941162
http://dx.doi.org/10.3390/s20020453
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author Guillen Bonilla, José Trinidad
Guillen Bonilla, Héctor
Rodríguez Betancourtt, Verónica María
Sánchez Morales, María Eugenia
Reyes Gómez, Juan
Casillas Zamora, Antonio
Guillen Bonilla, Alex
author_facet Guillen Bonilla, José Trinidad
Guillen Bonilla, Héctor
Rodríguez Betancourtt, Verónica María
Sánchez Morales, María Eugenia
Reyes Gómez, Juan
Casillas Zamora, Antonio
Guillen Bonilla, Alex
author_sort Guillen Bonilla, José Trinidad
collection PubMed
description Interferometry sensors are frequently analyzed by applying the Fourier transform because the transformation separates all frequency components of its signal, making its study on a complex plane feasible. In this work, we study the relation between the optical path difference (OPD) and poles location theoretically and experimentally, using the Laplace transform and a pole-zero map. Theory and experiments are in concordance. For our study, only the cosine function was considered, which is filtered from the interference pattern. In experimental work, two unperturbed low-finesse Fabry–Pérot interferometers were used. First, a Fabry–Pérot interferometer that has a cavity length of [Formula: see text] 1.6 mm was used. Its optical path difference was 2.33 mm and the poles were localized at points [Formula: see text]. rad/nm. Secondly, a Fabry–Pérot interferometer with a cavity length of [Formula: see text] 5.2 mm was used, and its optical path difference was 7.59 mm and the poles were localized at points [Formula: see text] rad/nm. Experimental results confirmed the theoretical analysis. Our proposal finds practical application for interferometer analysis, signal processing of optical fiber sensors, communication system analysis, and multiplexing systems based on interferometers.
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spelling pubmed-70137682020-03-09 Low-Finesse Fabry–Pérot Interferometers Applied in the Study of the Relation between the Optical Path Difference and Poles Location Guillen Bonilla, José Trinidad Guillen Bonilla, Héctor Rodríguez Betancourtt, Verónica María Sánchez Morales, María Eugenia Reyes Gómez, Juan Casillas Zamora, Antonio Guillen Bonilla, Alex Sensors (Basel) Article Interferometry sensors are frequently analyzed by applying the Fourier transform because the transformation separates all frequency components of its signal, making its study on a complex plane feasible. In this work, we study the relation between the optical path difference (OPD) and poles location theoretically and experimentally, using the Laplace transform and a pole-zero map. Theory and experiments are in concordance. For our study, only the cosine function was considered, which is filtered from the interference pattern. In experimental work, two unperturbed low-finesse Fabry–Pérot interferometers were used. First, a Fabry–Pérot interferometer that has a cavity length of [Formula: see text] 1.6 mm was used. Its optical path difference was 2.33 mm and the poles were localized at points [Formula: see text]. rad/nm. Secondly, a Fabry–Pérot interferometer with a cavity length of [Formula: see text] 5.2 mm was used, and its optical path difference was 7.59 mm and the poles were localized at points [Formula: see text] rad/nm. Experimental results confirmed the theoretical analysis. Our proposal finds practical application for interferometer analysis, signal processing of optical fiber sensors, communication system analysis, and multiplexing systems based on interferometers. MDPI 2020-01-13 /pmc/articles/PMC7013768/ /pubmed/31941162 http://dx.doi.org/10.3390/s20020453 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Guillen Bonilla, José Trinidad
Guillen Bonilla, Héctor
Rodríguez Betancourtt, Verónica María
Sánchez Morales, María Eugenia
Reyes Gómez, Juan
Casillas Zamora, Antonio
Guillen Bonilla, Alex
Low-Finesse Fabry–Pérot Interferometers Applied in the Study of the Relation between the Optical Path Difference and Poles Location
title Low-Finesse Fabry–Pérot Interferometers Applied in the Study of the Relation between the Optical Path Difference and Poles Location
title_full Low-Finesse Fabry–Pérot Interferometers Applied in the Study of the Relation between the Optical Path Difference and Poles Location
title_fullStr Low-Finesse Fabry–Pérot Interferometers Applied in the Study of the Relation between the Optical Path Difference and Poles Location
title_full_unstemmed Low-Finesse Fabry–Pérot Interferometers Applied in the Study of the Relation between the Optical Path Difference and Poles Location
title_short Low-Finesse Fabry–Pérot Interferometers Applied in the Study of the Relation between the Optical Path Difference and Poles Location
title_sort low-finesse fabry–pérot interferometers applied in the study of the relation between the optical path difference and poles location
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7013768/
https://www.ncbi.nlm.nih.gov/pubmed/31941162
http://dx.doi.org/10.3390/s20020453
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