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Piezo-Potential Generation in Capacitive Flexible Sensors Based on GaN Horizontal Wires

We report an example of the realization of a flexible capacitive piezoelectric sensor based on the assembly of horizontal [Formula: see text]-polar long Gallium nitride (GaN) wires grown by metal organic vapour phase epitaxy (MOVPE) with the Boostream(®) technique spreading wires on a moving liquid...

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Autores principales: El Kacimi, Amine, Pauliac-Vaujour, Emmanuelle, Delléa, Olivier, Eymery, Joël
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6027467/
https://www.ncbi.nlm.nih.gov/pubmed/29895755
http://dx.doi.org/10.3390/nano8060426
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author El Kacimi, Amine
Pauliac-Vaujour, Emmanuelle
Delléa, Olivier
Eymery, Joël
author_facet El Kacimi, Amine
Pauliac-Vaujour, Emmanuelle
Delléa, Olivier
Eymery, Joël
author_sort El Kacimi, Amine
collection PubMed
description We report an example of the realization of a flexible capacitive piezoelectric sensor based on the assembly of horizontal [Formula: see text]-polar long Gallium nitride (GaN) wires grown by metal organic vapour phase epitaxy (MOVPE) with the Boostream(®) technique spreading wires on a moving liquid before their transfer on large areas. The measured signal (<0.6 V) obtained by a punctual compression/release of the device shows a large variability attributed to the dimensions of the wires and their in-plane orientations. The cause of this variability and the general operating mechanisms of this flexible capacitive device are explained by finite element modelling simulations. This method allows considering the full device composed of a metal/dielectric/wires/dielectric/metal stacking. We first clarify the mechanisms involved in the piezo-potential generation by mapping the charge and piezo-potential in a single wire and studying the time-dependent evolution of this phenomenon. GaN wires have equivalent dipoles that generate a tension between metallic electrodes only when they have a non-zero in-plane projection. This is obtained in practice by the conical shape occurring spontaneously during the MOVPE growth. The optimal aspect ratio in terms of length and conicity (for the usual MOVPE wire diameter) is determined for a bending mechanical loading. It is suggested to use 60–120 µm long wires (i.e., growth time less than 1 h). To study further the role of these dipoles, we consider model systems with in-plane 1D and 2D regular arrays of horizontal wires. It is shown that a strong electrostatic coupling and screening occur between neighbouring horizontal wires depending on polarity and shape. This effect, highlighted here only from calculations, should be taken into account to improve device performance.
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spelling pubmed-60274672018-07-13 Piezo-Potential Generation in Capacitive Flexible Sensors Based on GaN Horizontal Wires El Kacimi, Amine Pauliac-Vaujour, Emmanuelle Delléa, Olivier Eymery, Joël Nanomaterials (Basel) Article We report an example of the realization of a flexible capacitive piezoelectric sensor based on the assembly of horizontal [Formula: see text]-polar long Gallium nitride (GaN) wires grown by metal organic vapour phase epitaxy (MOVPE) with the Boostream(®) technique spreading wires on a moving liquid before their transfer on large areas. The measured signal (<0.6 V) obtained by a punctual compression/release of the device shows a large variability attributed to the dimensions of the wires and their in-plane orientations. The cause of this variability and the general operating mechanisms of this flexible capacitive device are explained by finite element modelling simulations. This method allows considering the full device composed of a metal/dielectric/wires/dielectric/metal stacking. We first clarify the mechanisms involved in the piezo-potential generation by mapping the charge and piezo-potential in a single wire and studying the time-dependent evolution of this phenomenon. GaN wires have equivalent dipoles that generate a tension between metallic electrodes only when they have a non-zero in-plane projection. This is obtained in practice by the conical shape occurring spontaneously during the MOVPE growth. The optimal aspect ratio in terms of length and conicity (for the usual MOVPE wire diameter) is determined for a bending mechanical loading. It is suggested to use 60–120 µm long wires (i.e., growth time less than 1 h). To study further the role of these dipoles, we consider model systems with in-plane 1D and 2D regular arrays of horizontal wires. It is shown that a strong electrostatic coupling and screening occur between neighbouring horizontal wires depending on polarity and shape. This effect, highlighted here only from calculations, should be taken into account to improve device performance. MDPI 2018-06-12 /pmc/articles/PMC6027467/ /pubmed/29895755 http://dx.doi.org/10.3390/nano8060426 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
El Kacimi, Amine
Pauliac-Vaujour, Emmanuelle
Delléa, Olivier
Eymery, Joël
Piezo-Potential Generation in Capacitive Flexible Sensors Based on GaN Horizontal Wires
title Piezo-Potential Generation in Capacitive Flexible Sensors Based on GaN Horizontal Wires
title_full Piezo-Potential Generation in Capacitive Flexible Sensors Based on GaN Horizontal Wires
title_fullStr Piezo-Potential Generation in Capacitive Flexible Sensors Based on GaN Horizontal Wires
title_full_unstemmed Piezo-Potential Generation in Capacitive Flexible Sensors Based on GaN Horizontal Wires
title_short Piezo-Potential Generation in Capacitive Flexible Sensors Based on GaN Horizontal Wires
title_sort piezo-potential generation in capacitive flexible sensors based on gan horizontal wires
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6027467/
https://www.ncbi.nlm.nih.gov/pubmed/29895755
http://dx.doi.org/10.3390/nano8060426
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