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Biaxial Piezoelectric MEMS Mirrors with Low Absorption Coating for 1550 nm Long-Range LIDAR

This paper presents the fabrication and characterization of a biaxial MEMS (MicroElectroMechanical System) scanner based on PZT (Lead Zirconate Titanate) which incorporates a low-absorption dielectric multilayer coating, i.e., a Bragg reflector. These 2 mm square MEMS mirrors, developed on 8-inch si...

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Detalles Bibliográficos
Autores principales: Mollard, L., Riu, J., Royo, S., Dieppedale, C., Hamelin, A., Koumela, A., Verdot, T., Frey, L., Le Rhun, G., Castellan, G., Licitra, C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10221218/
https://www.ncbi.nlm.nih.gov/pubmed/37241642
http://dx.doi.org/10.3390/mi14051019
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author Mollard, L.
Riu, J.
Royo, S.
Dieppedale, C.
Hamelin, A.
Koumela, A.
Verdot, T.
Frey, L.
Le Rhun, G.
Castellan, G.
Licitra, C.
author_facet Mollard, L.
Riu, J.
Royo, S.
Dieppedale, C.
Hamelin, A.
Koumela, A.
Verdot, T.
Frey, L.
Le Rhun, G.
Castellan, G.
Licitra, C.
author_sort Mollard, L.
collection PubMed
description This paper presents the fabrication and characterization of a biaxial MEMS (MicroElectroMechanical System) scanner based on PZT (Lead Zirconate Titanate) which incorporates a low-absorption dielectric multilayer coating, i.e., a Bragg reflector. These 2 mm square MEMS mirrors, developed on 8-inch silicon wafers using VLSI (Very Large Scale Integration) technology are intended for long-range (>100 m) LIDAR (LIght Detection And Ranging) applications using a 2 W (average power) pulsed laser at 1550 nm. For this laser power, the use of a standard metal reflector leads to damaging overheating. To solve this problem, we have developed and optimised a physical sputtering (PVD) Bragg reflector deposition process compatible with our sol-gel piezoelectric motor. Experimental absorption measurements, performed at 1550 nm and show up to 24 times lower incident power absorption than the best metallic reflective coating (Au). Furthermore, we validated that the characteristics of the PZT, as well as the performance of the Bragg mirrors in terms of optical scanning angles, were identical to those of the Au reflector. These results open up the possibility of increasing the laser power beyond 2W for LIDAR applications or other applications requiring high optical power. Finally, a packaged 2D scanner was integrated into a LIDAR system and three-dimensional point cloud images were obtained, demonstrating the scanning stability and operability of these 2D MEMS mirrors.
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spelling pubmed-102212182023-05-28 Biaxial Piezoelectric MEMS Mirrors with Low Absorption Coating for 1550 nm Long-Range LIDAR Mollard, L. Riu, J. Royo, S. Dieppedale, C. Hamelin, A. Koumela, A. Verdot, T. Frey, L. Le Rhun, G. Castellan, G. Licitra, C. Micromachines (Basel) Article This paper presents the fabrication and characterization of a biaxial MEMS (MicroElectroMechanical System) scanner based on PZT (Lead Zirconate Titanate) which incorporates a low-absorption dielectric multilayer coating, i.e., a Bragg reflector. These 2 mm square MEMS mirrors, developed on 8-inch silicon wafers using VLSI (Very Large Scale Integration) technology are intended for long-range (>100 m) LIDAR (LIght Detection And Ranging) applications using a 2 W (average power) pulsed laser at 1550 nm. For this laser power, the use of a standard metal reflector leads to damaging overheating. To solve this problem, we have developed and optimised a physical sputtering (PVD) Bragg reflector deposition process compatible with our sol-gel piezoelectric motor. Experimental absorption measurements, performed at 1550 nm and show up to 24 times lower incident power absorption than the best metallic reflective coating (Au). Furthermore, we validated that the characteristics of the PZT, as well as the performance of the Bragg mirrors in terms of optical scanning angles, were identical to those of the Au reflector. These results open up the possibility of increasing the laser power beyond 2W for LIDAR applications or other applications requiring high optical power. Finally, a packaged 2D scanner was integrated into a LIDAR system and three-dimensional point cloud images were obtained, demonstrating the scanning stability and operability of these 2D MEMS mirrors. MDPI 2023-05-09 /pmc/articles/PMC10221218/ /pubmed/37241642 http://dx.doi.org/10.3390/mi14051019 Text en © 2023 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 Article
Mollard, L.
Riu, J.
Royo, S.
Dieppedale, C.
Hamelin, A.
Koumela, A.
Verdot, T.
Frey, L.
Le Rhun, G.
Castellan, G.
Licitra, C.
Biaxial Piezoelectric MEMS Mirrors with Low Absorption Coating for 1550 nm Long-Range LIDAR
title Biaxial Piezoelectric MEMS Mirrors with Low Absorption Coating for 1550 nm Long-Range LIDAR
title_full Biaxial Piezoelectric MEMS Mirrors with Low Absorption Coating for 1550 nm Long-Range LIDAR
title_fullStr Biaxial Piezoelectric MEMS Mirrors with Low Absorption Coating for 1550 nm Long-Range LIDAR
title_full_unstemmed Biaxial Piezoelectric MEMS Mirrors with Low Absorption Coating for 1550 nm Long-Range LIDAR
title_short Biaxial Piezoelectric MEMS Mirrors with Low Absorption Coating for 1550 nm Long-Range LIDAR
title_sort biaxial piezoelectric mems mirrors with low absorption coating for 1550 nm long-range lidar
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10221218/
https://www.ncbi.nlm.nih.gov/pubmed/37241642
http://dx.doi.org/10.3390/mi14051019
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