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Lead-Free LiNbO(3) Thick Film MEMS Kinetic Cantilever Beam Sensor/Energy Harvester

In this paper, we present integrated lead-free energy converters based on a suitable MEMS fabrication process with an embedded layer of LiNbO(3). The fabrication technology has been developed to realize micromachined self-generating transducers to convert kinetic energy into electrical energy. The p...

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Autores principales: Barrientos, Gabriel, Clementi, Giacomo, Trigona, Carlo, Ouhabaz, Merieme, Gauthier-Manuel, Ludovic, Belharet, Djaffar, Margueron, Samuel, Bartasyte, Ausrine, Malandrino, Graziella, Baglio, Salvatore
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8779148/
https://www.ncbi.nlm.nih.gov/pubmed/35062520
http://dx.doi.org/10.3390/s22020559
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author Barrientos, Gabriel
Clementi, Giacomo
Trigona, Carlo
Ouhabaz, Merieme
Gauthier-Manuel, Ludovic
Belharet, Djaffar
Margueron, Samuel
Bartasyte, Ausrine
Malandrino, Graziella
Baglio, Salvatore
author_facet Barrientos, Gabriel
Clementi, Giacomo
Trigona, Carlo
Ouhabaz, Merieme
Gauthier-Manuel, Ludovic
Belharet, Djaffar
Margueron, Samuel
Bartasyte, Ausrine
Malandrino, Graziella
Baglio, Salvatore
author_sort Barrientos, Gabriel
collection PubMed
description In this paper, we present integrated lead-free energy converters based on a suitable MEMS fabrication process with an embedded layer of LiNbO(3). The fabrication technology has been developed to realize micromachined self-generating transducers to convert kinetic energy into electrical energy. The process proposed presents several interesting features with the possibility of realizing smaller scale devices, integrated systems, miniaturized mechanical and electromechanical sensors, and transducers with an active layer used as the main conversion element. When the system is fabricated in the typical cantilever configuration, it can produce a peak-to-peak open-circuit output voltage of 0.208 V, due to flexural deformation, and a power density of 1.9 nW·mm(−3)·g(−2) at resonance, with values of acceleration and frequency of 2.4 g and 4096 Hz, respectively. The electromechanical transduction capability is exploited for sensing and power generation/energy harvesting applications. Theoretical considerations, simulations, numerical analyses, and experiments are presented to show the proposed LiNbO(3)-based MEMS fabrication process suitability. This paper presents substantial contributions to the state-of-the-art, proposing an integral solution regarding the design, modelling, simulation, realization, and characterization of a novel transducer.
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spelling pubmed-87791482022-01-22 Lead-Free LiNbO(3) Thick Film MEMS Kinetic Cantilever Beam Sensor/Energy Harvester Barrientos, Gabriel Clementi, Giacomo Trigona, Carlo Ouhabaz, Merieme Gauthier-Manuel, Ludovic Belharet, Djaffar Margueron, Samuel Bartasyte, Ausrine Malandrino, Graziella Baglio, Salvatore Sensors (Basel) Communication In this paper, we present integrated lead-free energy converters based on a suitable MEMS fabrication process with an embedded layer of LiNbO(3). The fabrication technology has been developed to realize micromachined self-generating transducers to convert kinetic energy into electrical energy. The process proposed presents several interesting features with the possibility of realizing smaller scale devices, integrated systems, miniaturized mechanical and electromechanical sensors, and transducers with an active layer used as the main conversion element. When the system is fabricated in the typical cantilever configuration, it can produce a peak-to-peak open-circuit output voltage of 0.208 V, due to flexural deformation, and a power density of 1.9 nW·mm(−3)·g(−2) at resonance, with values of acceleration and frequency of 2.4 g and 4096 Hz, respectively. The electromechanical transduction capability is exploited for sensing and power generation/energy harvesting applications. Theoretical considerations, simulations, numerical analyses, and experiments are presented to show the proposed LiNbO(3)-based MEMS fabrication process suitability. This paper presents substantial contributions to the state-of-the-art, proposing an integral solution regarding the design, modelling, simulation, realization, and characterization of a novel transducer. MDPI 2022-01-12 /pmc/articles/PMC8779148/ /pubmed/35062520 http://dx.doi.org/10.3390/s22020559 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Barrientos, Gabriel
Clementi, Giacomo
Trigona, Carlo
Ouhabaz, Merieme
Gauthier-Manuel, Ludovic
Belharet, Djaffar
Margueron, Samuel
Bartasyte, Ausrine
Malandrino, Graziella
Baglio, Salvatore
Lead-Free LiNbO(3) Thick Film MEMS Kinetic Cantilever Beam Sensor/Energy Harvester
title Lead-Free LiNbO(3) Thick Film MEMS Kinetic Cantilever Beam Sensor/Energy Harvester
title_full Lead-Free LiNbO(3) Thick Film MEMS Kinetic Cantilever Beam Sensor/Energy Harvester
title_fullStr Lead-Free LiNbO(3) Thick Film MEMS Kinetic Cantilever Beam Sensor/Energy Harvester
title_full_unstemmed Lead-Free LiNbO(3) Thick Film MEMS Kinetic Cantilever Beam Sensor/Energy Harvester
title_short Lead-Free LiNbO(3) Thick Film MEMS Kinetic Cantilever Beam Sensor/Energy Harvester
title_sort lead-free linbo(3) thick film mems kinetic cantilever beam sensor/energy harvester
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8779148/
https://www.ncbi.nlm.nih.gov/pubmed/35062520
http://dx.doi.org/10.3390/s22020559
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