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Thermoplasmonic Controlled Optical Absorber Based on a Liquid Crystal Metasurface

[Image: see text] Metasurfaces can be realized by organizing subwavelength elements (e.g., plasmonic nanoparticles) on a reflective surface covered with a dielectric layer. Such an array of resonators, acting collectively, can completely absorb the resulting resonant wavelength. Unfortunately, despi...

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Autores principales: Petronella, Francesca, Madeleine, Tristan, De Mei, Vincenzo, Zaccagnini, Federica, Striccoli, Marinella, D’Alessandro, Giampaolo, Rumi, Mariacristina, Slagle, Jonathan, Kaczmarek, Malgosia, De Sio, Luciano
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10614192/
https://www.ncbi.nlm.nih.gov/pubmed/37816211
http://dx.doi.org/10.1021/acsami.3c09896
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author Petronella, Francesca
Madeleine, Tristan
De Mei, Vincenzo
Zaccagnini, Federica
Striccoli, Marinella
D’Alessandro, Giampaolo
Rumi, Mariacristina
Slagle, Jonathan
Kaczmarek, Malgosia
De Sio, Luciano
author_facet Petronella, Francesca
Madeleine, Tristan
De Mei, Vincenzo
Zaccagnini, Federica
Striccoli, Marinella
D’Alessandro, Giampaolo
Rumi, Mariacristina
Slagle, Jonathan
Kaczmarek, Malgosia
De Sio, Luciano
author_sort Petronella, Francesca
collection PubMed
description [Image: see text] Metasurfaces can be realized by organizing subwavelength elements (e.g., plasmonic nanoparticles) on a reflective surface covered with a dielectric layer. Such an array of resonators, acting collectively, can completely absorb the resulting resonant wavelength. Unfortunately, despite the excellent optical properties of metasurfaces, they lack the tunability to perform as adaptive optical components. To boost the utilization of metasurfaces and realize a new generation of dynamically controlled optical components, we report our recent finding based on the powerful combination of an innovative metasurface-optical absorber and nematic liquid crystals (NLCs). The metasurface consists of self-assembled silver nanocubes (AgNCs) immobilized on a 50 nm thick gold layer by using a polyelectrolyte multilayer as a dielectric spacer. The resulting optical absorbers show a well-defined reflection band centered in the near-infrared of the electromagnetic spectrum (750–770 nm), a very high absorption efficiency (∼60%) at the resonant wavelength, and an elevated photothermal efficiency estimated from the time constant value (34 s). Such a metasurface-based optical absorber, combined with an NLC layer, planarly aligned via a photoaligned top cover glass substrate, shows homogeneous NLC alignment and an absorption band photothermally tunable over approximately 46 nm. Detailed thermographic studies and spectroscopic investigations highlight the extraordinary capability of the active metasurface to be used as a light-controllable optical absorber.
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spelling pubmed-106141922023-10-31 Thermoplasmonic Controlled Optical Absorber Based on a Liquid Crystal Metasurface Petronella, Francesca Madeleine, Tristan De Mei, Vincenzo Zaccagnini, Federica Striccoli, Marinella D’Alessandro, Giampaolo Rumi, Mariacristina Slagle, Jonathan Kaczmarek, Malgosia De Sio, Luciano ACS Appl Mater Interfaces [Image: see text] Metasurfaces can be realized by organizing subwavelength elements (e.g., plasmonic nanoparticles) on a reflective surface covered with a dielectric layer. Such an array of resonators, acting collectively, can completely absorb the resulting resonant wavelength. Unfortunately, despite the excellent optical properties of metasurfaces, they lack the tunability to perform as adaptive optical components. To boost the utilization of metasurfaces and realize a new generation of dynamically controlled optical components, we report our recent finding based on the powerful combination of an innovative metasurface-optical absorber and nematic liquid crystals (NLCs). The metasurface consists of self-assembled silver nanocubes (AgNCs) immobilized on a 50 nm thick gold layer by using a polyelectrolyte multilayer as a dielectric spacer. The resulting optical absorbers show a well-defined reflection band centered in the near-infrared of the electromagnetic spectrum (750–770 nm), a very high absorption efficiency (∼60%) at the resonant wavelength, and an elevated photothermal efficiency estimated from the time constant value (34 s). Such a metasurface-based optical absorber, combined with an NLC layer, planarly aligned via a photoaligned top cover glass substrate, shows homogeneous NLC alignment and an absorption band photothermally tunable over approximately 46 nm. Detailed thermographic studies and spectroscopic investigations highlight the extraordinary capability of the active metasurface to be used as a light-controllable optical absorber. American Chemical Society 2023-10-10 /pmc/articles/PMC10614192/ /pubmed/37816211 http://dx.doi.org/10.1021/acsami.3c09896 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Petronella, Francesca
Madeleine, Tristan
De Mei, Vincenzo
Zaccagnini, Federica
Striccoli, Marinella
D’Alessandro, Giampaolo
Rumi, Mariacristina
Slagle, Jonathan
Kaczmarek, Malgosia
De Sio, Luciano
Thermoplasmonic Controlled Optical Absorber Based on a Liquid Crystal Metasurface
title Thermoplasmonic Controlled Optical Absorber Based on a Liquid Crystal Metasurface
title_full Thermoplasmonic Controlled Optical Absorber Based on a Liquid Crystal Metasurface
title_fullStr Thermoplasmonic Controlled Optical Absorber Based on a Liquid Crystal Metasurface
title_full_unstemmed Thermoplasmonic Controlled Optical Absorber Based on a Liquid Crystal Metasurface
title_short Thermoplasmonic Controlled Optical Absorber Based on a Liquid Crystal Metasurface
title_sort thermoplasmonic controlled optical absorber based on a liquid crystal metasurface
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10614192/
https://www.ncbi.nlm.nih.gov/pubmed/37816211
http://dx.doi.org/10.1021/acsami.3c09896
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