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Design of a Slab Tamm Plasmon Resonator Coupled to a Multistrip Array Waveguide for the Mid Infrared

In this work, we present and analyze a design of an absorber–waveguide system combining a highly sensitive waveguide array concept with a resonant selective absorber. The waveguide part is composed of an array of coupled strip waveguides and is therefore called a coupled strip array (CSA). The CSA i...

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Autores principales: Pühringer, Gerald, Consani, Cristina, Jannesari, Reyhaneh, Fleury, Clement, Dubois, Florian, Spettel, Jasmin, Dao, Thang Duy, Stocker, Gerald, Grille, Thomas, Jakoby, Bernhard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9029879/
https://www.ncbi.nlm.nih.gov/pubmed/35458953
http://dx.doi.org/10.3390/s22082968
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author Pühringer, Gerald
Consani, Cristina
Jannesari, Reyhaneh
Fleury, Clement
Dubois, Florian
Spettel, Jasmin
Dao, Thang Duy
Stocker, Gerald
Grille, Thomas
Jakoby, Bernhard
author_facet Pühringer, Gerald
Consani, Cristina
Jannesari, Reyhaneh
Fleury, Clement
Dubois, Florian
Spettel, Jasmin
Dao, Thang Duy
Stocker, Gerald
Grille, Thomas
Jakoby, Bernhard
author_sort Pühringer, Gerald
collection PubMed
description In this work, we present and analyze a design of an absorber–waveguide system combining a highly sensitive waveguide array concept with a resonant selective absorber. The waveguide part is composed of an array of coupled strip waveguides and is therefore called a coupled strip array (CSA). The CSA is then coupled to the end of a slab Tamm plasmon (STP-) resonator, which is composed of a quasicrystal-like reflector formed by the patterning of a silicon slab and an interfacing tungsten slab. The concept describes an emitter–waveguide or waveguide–detector system featuring selective plasmon-enhanced resonant absorption or emission. These are crucial properties for corresponding optical on-chip integrated devices in context with evanescent field absorption sensing in fluids or gases, for example. Thus, the concept comprises a valuable and more cost-effective alternative to quantum cascade lasers. We designed the lateral dimensions of the STP resonator via a simple quasi-crystal approach and achieved strong narrowband resonances (emittance and Q-factors up to 85% and 88, respectively) for different silicon thicknesses and substrate materials (air and silicon oxide). Moreover, we analyze and discuss the sensitivity of the complete emitter–waveguide system in dependence on the slab thickness. This reveals the crucial correlation between the expected sensitivity assigned to the absorber–waveguide system and field confinement within the silicon.
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spelling pubmed-90298792022-04-23 Design of a Slab Tamm Plasmon Resonator Coupled to a Multistrip Array Waveguide for the Mid Infrared Pühringer, Gerald Consani, Cristina Jannesari, Reyhaneh Fleury, Clement Dubois, Florian Spettel, Jasmin Dao, Thang Duy Stocker, Gerald Grille, Thomas Jakoby, Bernhard Sensors (Basel) Article In this work, we present and analyze a design of an absorber–waveguide system combining a highly sensitive waveguide array concept with a resonant selective absorber. The waveguide part is composed of an array of coupled strip waveguides and is therefore called a coupled strip array (CSA). The CSA is then coupled to the end of a slab Tamm plasmon (STP-) resonator, which is composed of a quasicrystal-like reflector formed by the patterning of a silicon slab and an interfacing tungsten slab. The concept describes an emitter–waveguide or waveguide–detector system featuring selective plasmon-enhanced resonant absorption or emission. These are crucial properties for corresponding optical on-chip integrated devices in context with evanescent field absorption sensing in fluids or gases, for example. Thus, the concept comprises a valuable and more cost-effective alternative to quantum cascade lasers. We designed the lateral dimensions of the STP resonator via a simple quasi-crystal approach and achieved strong narrowband resonances (emittance and Q-factors up to 85% and 88, respectively) for different silicon thicknesses and substrate materials (air and silicon oxide). Moreover, we analyze and discuss the sensitivity of the complete emitter–waveguide system in dependence on the slab thickness. This reveals the crucial correlation between the expected sensitivity assigned to the absorber–waveguide system and field confinement within the silicon. MDPI 2022-04-13 /pmc/articles/PMC9029879/ /pubmed/35458953 http://dx.doi.org/10.3390/s22082968 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 Article
Pühringer, Gerald
Consani, Cristina
Jannesari, Reyhaneh
Fleury, Clement
Dubois, Florian
Spettel, Jasmin
Dao, Thang Duy
Stocker, Gerald
Grille, Thomas
Jakoby, Bernhard
Design of a Slab Tamm Plasmon Resonator Coupled to a Multistrip Array Waveguide for the Mid Infrared
title Design of a Slab Tamm Plasmon Resonator Coupled to a Multistrip Array Waveguide for the Mid Infrared
title_full Design of a Slab Tamm Plasmon Resonator Coupled to a Multistrip Array Waveguide for the Mid Infrared
title_fullStr Design of a Slab Tamm Plasmon Resonator Coupled to a Multistrip Array Waveguide for the Mid Infrared
title_full_unstemmed Design of a Slab Tamm Plasmon Resonator Coupled to a Multistrip Array Waveguide for the Mid Infrared
title_short Design of a Slab Tamm Plasmon Resonator Coupled to a Multistrip Array Waveguide for the Mid Infrared
title_sort design of a slab tamm plasmon resonator coupled to a multistrip array waveguide for the mid infrared
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9029879/
https://www.ncbi.nlm.nih.gov/pubmed/35458953
http://dx.doi.org/10.3390/s22082968
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