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The Influence of the External Signal Modulation Waveform and Frequency on the Performance of a Photonic Forced Oscillator

Photonic crystals have been an object of interest because of their properties to inhibit certain wavelengths and allow the transmission of others. Using these properties, we designed a photonic structure known as photodyne formed by two porous silicon one-dimensional photonic crystals with an air de...

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Autores principales: Sánchez-Castro, Noemi, Palomino-Ovando, Martha Alicia, Estrada-Wiese, Denise, Valladares, Nydia Xcaret, del Río, Jesus Antonio, de la Mora, Maria Beatriz, Doti, Rafael, Faubert, Jocelyn, Lugo, Jesus Eduardo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5978231/
https://www.ncbi.nlm.nih.gov/pubmed/29883393
http://dx.doi.org/10.3390/ma11050854
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author Sánchez-Castro, Noemi
Palomino-Ovando, Martha Alicia
Estrada-Wiese, Denise
Valladares, Nydia Xcaret
del Río, Jesus Antonio
de la Mora, Maria Beatriz
Doti, Rafael
Faubert, Jocelyn
Lugo, Jesus Eduardo
author_facet Sánchez-Castro, Noemi
Palomino-Ovando, Martha Alicia
Estrada-Wiese, Denise
Valladares, Nydia Xcaret
del Río, Jesus Antonio
de la Mora, Maria Beatriz
Doti, Rafael
Faubert, Jocelyn
Lugo, Jesus Eduardo
author_sort Sánchez-Castro, Noemi
collection PubMed
description Photonic crystals have been an object of interest because of their properties to inhibit certain wavelengths and allow the transmission of others. Using these properties, we designed a photonic structure known as photodyne formed by two porous silicon one-dimensional photonic crystals with an air defect between them. When the photodyne is illuminated with appropriate light, it allows us to generate electromagnetic forces within the structure that can be maximized if the light becomes localized inside the defect region. These electromagnetic forces allow the microcavity to oscillate mechanically. In the experiment, a chopper was driven by a signal generator to modulate the laser light that was used. The driven frequency and the signal modulation waveform (rectangular, sinusoidal or triangular) were changed with the idea to find optimal conditions for the structure to oscillate. The microcavity displacement amplitude, velocity amplitude and Fourier spectrum of the latter and its frequency were measured by means of a vibrometer. The mechanical oscillations are modeled and compared with the experimental results and show good agreement. For external frequency values of 5 Hz and 10 Hz, the best option was a sinusoidal waveform, which gave higher photodyne displacements and velocity amplitudes. Nonetheless, for an external frequency of 15 Hz, the best option was the rectangular waveform.
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spelling pubmed-59782312018-05-31 The Influence of the External Signal Modulation Waveform and Frequency on the Performance of a Photonic Forced Oscillator Sánchez-Castro, Noemi Palomino-Ovando, Martha Alicia Estrada-Wiese, Denise Valladares, Nydia Xcaret del Río, Jesus Antonio de la Mora, Maria Beatriz Doti, Rafael Faubert, Jocelyn Lugo, Jesus Eduardo Materials (Basel) Article Photonic crystals have been an object of interest because of their properties to inhibit certain wavelengths and allow the transmission of others. Using these properties, we designed a photonic structure known as photodyne formed by two porous silicon one-dimensional photonic crystals with an air defect between them. When the photodyne is illuminated with appropriate light, it allows us to generate electromagnetic forces within the structure that can be maximized if the light becomes localized inside the defect region. These electromagnetic forces allow the microcavity to oscillate mechanically. In the experiment, a chopper was driven by a signal generator to modulate the laser light that was used. The driven frequency and the signal modulation waveform (rectangular, sinusoidal or triangular) were changed with the idea to find optimal conditions for the structure to oscillate. The microcavity displacement amplitude, velocity amplitude and Fourier spectrum of the latter and its frequency were measured by means of a vibrometer. The mechanical oscillations are modeled and compared with the experimental results and show good agreement. For external frequency values of 5 Hz and 10 Hz, the best option was a sinusoidal waveform, which gave higher photodyne displacements and velocity amplitudes. Nonetheless, for an external frequency of 15 Hz, the best option was the rectangular waveform. MDPI 2018-05-21 /pmc/articles/PMC5978231/ /pubmed/29883393 http://dx.doi.org/10.3390/ma11050854 Text en © 2018 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
Sánchez-Castro, Noemi
Palomino-Ovando, Martha Alicia
Estrada-Wiese, Denise
Valladares, Nydia Xcaret
del Río, Jesus Antonio
de la Mora, Maria Beatriz
Doti, Rafael
Faubert, Jocelyn
Lugo, Jesus Eduardo
The Influence of the External Signal Modulation Waveform and Frequency on the Performance of a Photonic Forced Oscillator
title The Influence of the External Signal Modulation Waveform and Frequency on the Performance of a Photonic Forced Oscillator
title_full The Influence of the External Signal Modulation Waveform and Frequency on the Performance of a Photonic Forced Oscillator
title_fullStr The Influence of the External Signal Modulation Waveform and Frequency on the Performance of a Photonic Forced Oscillator
title_full_unstemmed The Influence of the External Signal Modulation Waveform and Frequency on the Performance of a Photonic Forced Oscillator
title_short The Influence of the External Signal Modulation Waveform and Frequency on the Performance of a Photonic Forced Oscillator
title_sort influence of the external signal modulation waveform and frequency on the performance of a photonic forced oscillator
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5978231/
https://www.ncbi.nlm.nih.gov/pubmed/29883393
http://dx.doi.org/10.3390/ma11050854
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