Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon

Detalhes bibliográficos
Autor(a) principal: Fantoni, Alessandro
Data de Publicação: 2015
Outros Autores: Fernandes, Miguel, Vygranenko, Yuri, Louro, Paula, Vieira, Manuela
Tipo de documento: Artigo
Idioma: eng
Título da fonte: Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)
Texto Completo: http://hdl.handle.net/10400.21/6024
Resumo: We present results, obtained by means of an analytic study and a numerical simulation, about the resonant condition necessary to produce a Localized Surface Plasmonic Resonance (LSPR) effect at the surface of metal nanospheres embedded in an amorphous silicon matrix. The study is based on a Lorentz dispersive model for a-Si:H permittivity and a Drude model for the metals. Considering the absorption spectra of a-Si:H, the best choice for the metal nanoparticles appears to be aluminium, indium or magnesium. No difference has been observed when considering a-SiC:H. Finite-difference time-domain (FDTD) simulation of an Al nanosphere embedded into an amorphous silicon matrix shows an increased scattering radius and the presence of LSPR induced by the metal/semiconductor interaction under green light (560 nm) illumination. Further results include the effect of the nanoparticles shape (nano-ellipsoids) in controlling the wavelength suitable to produce LSPR. It has been shown that is possible to produce LSPR in the red part of the visible spectrum (the most critical for a-Si:H solar cells applications in terms of light absorption enhancement) with aluminium nano-ellipsoids. As an additional results we may conclude that the double Lorentz-Lorenz model for the optical functions of a-Si:H is numerically stable in 3D simulations and can be used safely in the FDTD algorithm. A further simulation study is directed to determine an optimal spatial distribution of Al nanoparticles, with variable shapes, capable to enhance light absorption in the red part of the visible spectrum, exploiting light trapping and plasmonic effects. © 2015 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.
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spelling Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicona-Si.HFDTDLight absorptionLocalized surface plasmonic resonanceWe present results, obtained by means of an analytic study and a numerical simulation, about the resonant condition necessary to produce a Localized Surface Plasmonic Resonance (LSPR) effect at the surface of metal nanospheres embedded in an amorphous silicon matrix. The study is based on a Lorentz dispersive model for a-Si:H permittivity and a Drude model for the metals. Considering the absorption spectra of a-Si:H, the best choice for the metal nanoparticles appears to be aluminium, indium or magnesium. No difference has been observed when considering a-SiC:H. Finite-difference time-domain (FDTD) simulation of an Al nanosphere embedded into an amorphous silicon matrix shows an increased scattering radius and the presence of LSPR induced by the metal/semiconductor interaction under green light (560 nm) illumination. Further results include the effect of the nanoparticles shape (nano-ellipsoids) in controlling the wavelength suitable to produce LSPR. It has been shown that is possible to produce LSPR in the red part of the visible spectrum (the most critical for a-Si:H solar cells applications in terms of light absorption enhancement) with aluminium nano-ellipsoids. As an additional results we may conclude that the double Lorentz-Lorenz model for the optical functions of a-Si:H is numerically stable in 3D simulations and can be used safely in the FDTD algorithm. A further simulation study is directed to determine an optimal spatial distribution of Al nanoparticles, with variable shapes, capable to enhance light absorption in the red part of the visible spectrum, exploiting light trapping and plasmonic effects. © 2015 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.Wiley-VCH VerlagRCIPLFantoni, AlessandroFernandes, MiguelVygranenko, YuriLouro, PaulaVieira, Manuela2016-04-18T17:12:06Z2015-122015-12-01T00:00:00Zinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/articleapplication/pdfhttp://hdl.handle.net/10400.21/6024engFANTONI, Alessandro; [et al] - Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon. Physica Status Solidi (C) Current Topics in Solid State Physics. ISSN 1862-6351. Vol. 12, N.º 12 (2015), pp. 1349-13541862-635110.1002/pssc.201510080metadata only accessinfo:eu-repo/semantics/openAccessreponame:Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)instname:Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãoinstacron:RCAAP2023-08-03T09:50:17Zoai:repositorio.ipl.pt:10400.21/6024Portal AgregadorONGhttps://www.rcaap.pt/oai/openaireopendoar:71602024-03-19T20:15:14.258461Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos) - Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãofalse
dc.title.none.fl_str_mv Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon
title Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon
spellingShingle Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon
Fantoni, Alessandro
a-Si.H
FDTD
Light absorption
Localized surface plasmonic resonance
title_short Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon
title_full Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon
title_fullStr Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon
title_full_unstemmed Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon
title_sort Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon
author Fantoni, Alessandro
author_facet Fantoni, Alessandro
Fernandes, Miguel
Vygranenko, Yuri
Louro, Paula
Vieira, Manuela
author_role author
author2 Fernandes, Miguel
Vygranenko, Yuri
Louro, Paula
Vieira, Manuela
author2_role author
author
author
author
dc.contributor.none.fl_str_mv RCIPL
dc.contributor.author.fl_str_mv Fantoni, Alessandro
Fernandes, Miguel
Vygranenko, Yuri
Louro, Paula
Vieira, Manuela
dc.subject.por.fl_str_mv a-Si.H
FDTD
Light absorption
Localized surface plasmonic resonance
topic a-Si.H
FDTD
Light absorption
Localized surface plasmonic resonance
description We present results, obtained by means of an analytic study and a numerical simulation, about the resonant condition necessary to produce a Localized Surface Plasmonic Resonance (LSPR) effect at the surface of metal nanospheres embedded in an amorphous silicon matrix. The study is based on a Lorentz dispersive model for a-Si:H permittivity and a Drude model for the metals. Considering the absorption spectra of a-Si:H, the best choice for the metal nanoparticles appears to be aluminium, indium or magnesium. No difference has been observed when considering a-SiC:H. Finite-difference time-domain (FDTD) simulation of an Al nanosphere embedded into an amorphous silicon matrix shows an increased scattering radius and the presence of LSPR induced by the metal/semiconductor interaction under green light (560 nm) illumination. Further results include the effect of the nanoparticles shape (nano-ellipsoids) in controlling the wavelength suitable to produce LSPR. It has been shown that is possible to produce LSPR in the red part of the visible spectrum (the most critical for a-Si:H solar cells applications in terms of light absorption enhancement) with aluminium nano-ellipsoids. As an additional results we may conclude that the double Lorentz-Lorenz model for the optical functions of a-Si:H is numerically stable in 3D simulations and can be used safely in the FDTD algorithm. A further simulation study is directed to determine an optimal spatial distribution of Al nanoparticles, with variable shapes, capable to enhance light absorption in the red part of the visible spectrum, exploiting light trapping and plasmonic effects. © 2015 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.
publishDate 2015
dc.date.none.fl_str_mv 2015-12
2015-12-01T00:00:00Z
2016-04-18T17:12:06Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/article
format article
status_str publishedVersion
dc.identifier.uri.fl_str_mv http://hdl.handle.net/10400.21/6024
url http://hdl.handle.net/10400.21/6024
dc.language.iso.fl_str_mv eng
language eng
dc.relation.none.fl_str_mv FANTONI, Alessandro; [et al] - Visible range plasmonic effect produced by aluminium nanoparticles embedded in amorphous silicon. Physica Status Solidi (C) Current Topics in Solid State Physics. ISSN 1862-6351. Vol. 12, N.º 12 (2015), pp. 1349-1354
1862-6351
10.1002/pssc.201510080
dc.rights.driver.fl_str_mv metadata only access
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rights_invalid_str_mv metadata only access
eu_rights_str_mv openAccess
dc.format.none.fl_str_mv application/pdf
dc.publisher.none.fl_str_mv Wiley-VCH Verlag
publisher.none.fl_str_mv Wiley-VCH Verlag
dc.source.none.fl_str_mv reponame:Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)
instname:Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informação
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instname_str Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informação
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reponame_str Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)
collection Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)
repository.name.fl_str_mv Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos) - Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informação
repository.mail.fl_str_mv
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