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Precision Tailoring Quasi-BIC Resonance of a-Si:H Metasurfaces

The capability of tailoring the resonance wavelength of metasurfaces is important as it can alleviate the manufacturing precision required to produce the exact structure according to the design of the nanoresonators. Tuning of Fano resonances by applying heat has been theoretically predicted in the...

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Autores principales: Kuppadakkath, Athira, Barreda, Ángela, Ghazaryan, Lilit, Bucher, Tobias, Koshelev, Kirill, Pertsch, Thomas, Szeghalmi, Adriana, Choi, Duk, Staude, Isabelle, Eilenberger, Falk
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10255339/
https://www.ncbi.nlm.nih.gov/pubmed/37299713
http://dx.doi.org/10.3390/nano13111810
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author Kuppadakkath, Athira
Barreda, Ángela
Ghazaryan, Lilit
Bucher, Tobias
Koshelev, Kirill
Pertsch, Thomas
Szeghalmi, Adriana
Choi, Duk
Staude, Isabelle
Eilenberger, Falk
author_facet Kuppadakkath, Athira
Barreda, Ángela
Ghazaryan, Lilit
Bucher, Tobias
Koshelev, Kirill
Pertsch, Thomas
Szeghalmi, Adriana
Choi, Duk
Staude, Isabelle
Eilenberger, Falk
author_sort Kuppadakkath, Athira
collection PubMed
description The capability of tailoring the resonance wavelength of metasurfaces is important as it can alleviate the manufacturing precision required to produce the exact structure according to the design of the nanoresonators. Tuning of Fano resonances by applying heat has been theoretically predicted in the case of silicon metasurfaces. Here, we experimentally demonstrate the permanent tailoring of quasi-bound states in the continuum (quasi-BIC) resonance wavelength in an a-Si:H metasurface and quantitatively analyze the modification in the Q-factor with gradual heating. A gradual increment in temperature leads to a spectral shift in the resonance wavelength. With the support of ellipsometry measurements, the spectral shift resulting from the short-duration (ten minutes) heating is identified to be due to refractive index variations in the material rather than a geometric effect or amorphous/polycrystalline phase transition. In the case of quasi-BIC modes in the near-infrared, resonance wavelength could be adjusted from T = 350 °C to T = 550 °C without affecting the Q-factor considerably. Apart from the temperature-induced resonance trimming, large Q-factors can be attained at the highest analyzed temperature (T = 700 °C) in the near-infrared quasi-BIC modes. Resonance tailoring is just one of the possible applications of our results. We expect that our study is also insightful in the design of a-Si:H metasurfaces where large Q-factors are required at high temperatures.
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spelling pubmed-102553392023-06-10 Precision Tailoring Quasi-BIC Resonance of a-Si:H Metasurfaces Kuppadakkath, Athira Barreda, Ángela Ghazaryan, Lilit Bucher, Tobias Koshelev, Kirill Pertsch, Thomas Szeghalmi, Adriana Choi, Duk Staude, Isabelle Eilenberger, Falk Nanomaterials (Basel) Article The capability of tailoring the resonance wavelength of metasurfaces is important as it can alleviate the manufacturing precision required to produce the exact structure according to the design of the nanoresonators. Tuning of Fano resonances by applying heat has been theoretically predicted in the case of silicon metasurfaces. Here, we experimentally demonstrate the permanent tailoring of quasi-bound states in the continuum (quasi-BIC) resonance wavelength in an a-Si:H metasurface and quantitatively analyze the modification in the Q-factor with gradual heating. A gradual increment in temperature leads to a spectral shift in the resonance wavelength. With the support of ellipsometry measurements, the spectral shift resulting from the short-duration (ten minutes) heating is identified to be due to refractive index variations in the material rather than a geometric effect or amorphous/polycrystalline phase transition. In the case of quasi-BIC modes in the near-infrared, resonance wavelength could be adjusted from T = 350 °C to T = 550 °C without affecting the Q-factor considerably. Apart from the temperature-induced resonance trimming, large Q-factors can be attained at the highest analyzed temperature (T = 700 °C) in the near-infrared quasi-BIC modes. Resonance tailoring is just one of the possible applications of our results. We expect that our study is also insightful in the design of a-Si:H metasurfaces where large Q-factors are required at high temperatures. MDPI 2023-06-05 /pmc/articles/PMC10255339/ /pubmed/37299713 http://dx.doi.org/10.3390/nano13111810 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
Kuppadakkath, Athira
Barreda, Ángela
Ghazaryan, Lilit
Bucher, Tobias
Koshelev, Kirill
Pertsch, Thomas
Szeghalmi, Adriana
Choi, Duk
Staude, Isabelle
Eilenberger, Falk
Precision Tailoring Quasi-BIC Resonance of a-Si:H Metasurfaces
title Precision Tailoring Quasi-BIC Resonance of a-Si:H Metasurfaces
title_full Precision Tailoring Quasi-BIC Resonance of a-Si:H Metasurfaces
title_fullStr Precision Tailoring Quasi-BIC Resonance of a-Si:H Metasurfaces
title_full_unstemmed Precision Tailoring Quasi-BIC Resonance of a-Si:H Metasurfaces
title_short Precision Tailoring Quasi-BIC Resonance of a-Si:H Metasurfaces
title_sort precision tailoring quasi-bic resonance of a-si:h metasurfaces
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10255339/
https://www.ncbi.nlm.nih.gov/pubmed/37299713
http://dx.doi.org/10.3390/nano13111810
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