Monodisperse silicon nanocavities and photonic crystals with magnetic response in the optial region

dc.contributor.affiliationInstituto Universitario Mixto de Tecnología Química
dc.contributor.authorShi, Leies_ES
dc.contributor.authorHarris, Justin T.es_ES
dc.contributor.authorFenollosa Esteve, Roberto
dc.contributor.authorIsabelle Rodriguez
dc.contributor.authorLu, Xiaotanges_ES
dc.contributor.authorKorgel, Brianes_ES
dc.contributor.authorMESEGUER RICO, FRANCISCO JAVIER
dc.contributor.funderMinisterio de Ciencia e Innovaciónes_ES
dc.contributor.funderMinisterio de Educación y Cienciaes_ES
dc.contributor.funderGeneralitat Valencianaes_ES
dc.date.accessioned2017-07-03T11:33:29Z
dc.date.available2017-07-03T11:33:29Z
dc.date.issued2013-05
dc.description.abstract[EN] It is generally accepted that the magnetic component of light has a minor role in the light-matter interaction. The recent discovery of metamaterials has broken this traditional understanding, as both the electric and the magnetic field are key ingredients in metamaterials. The top-down technology used so far employs noble metals with large intrinsic losses. Here we report on a bottom-up approach for processing metamaterials based on suspensions of monodisperse full dielectric silicon nanocavities with a large magnetic response in the near-infrared region. Experimental results and theory show that silicon-colloid-based liquid suspensions and photonic crystals made of two-dimensional arrays of particles have strong magnetic response in the near-infrared region with small optical losses. Our findings might have important implications in the bottom-up processing of large-area low-loss metamaterials working in the near-infrared region.en_EN
dc.description.accrualMethodSes_ES
dc.description.bibliographicCitationShi, L.; Harris, JT.; Fenollosa Esteve, R.; Rodríguez, M.; Lu, X.; Korgel, B.; Meseguer Rico, FJ. (2013). Monodisperse silicon nanocavities and photonic crystals with magnetic response in the optial region. Nature Communications. 4:419041-419047. https://doi.org/10.1038/ncomms2934es_ES
dc.description.referencesLandau, L. D. & Lifshitz, E. M. . Electrodynamics of Continuous Media Oxford, UK (1960) .es_ES
dc.description.referencesSmith, D. R., Pendry, J. B. & Wiltshire, M. C. K. . Metamaterials and negative refractive index. Science 305, 788–792 (2004) .es_ES
dc.description.referencesSoukoulis, C. M., Kafesaki, M. & Economou, E. N. . Negative-index materials: new frontiers in optics. Adv. Mater. 18, 1941–1952 (2006) .es_ES
dc.description.referencesSoukoulis, C. M. & Wegener, M. . Past achievements and future challenges in the development of three-dimensional photonic metamaterials. Nat. Photon. 5, 523–531 (2011) .es_ES
dc.description.referencesLinden, S., Enkrich, C., Wegener, M., Zhou, J., Koschny, T. & Soukoulis, C. M. . Magnetic response of metamaterials at 100 Terahertz. Science 306, 1351–1353 (2004) .es_ES
dc.description.referencesEnkrich, C. et al. Focused-Ion-Beam nanofabrication of near-infrared magnetic metamaterials. Adv. Mater. 17, 2547–2549 (2005) .es_ES
dc.description.referencesLiu, N., Guo, H., Fu, L., Kaiser, S., Schweizer, H. & Giessen, H. . Three dimensional photonic metamaterials at optical frequencies. Nat. Mater. 7, 31–37 (2008) .es_ES
dc.description.referencesGrigorenko, A. N. et al. Nanofabricated media with negative permeability at visible frequencies. Nature 438, 335–338 (2005) .es_ES
dc.description.referencesLiu, N., Fu, L., Kaiser, S., Schweizer, H. & Giessen, H. . Plasmonic building blocks for magnetic molecules in three dimensional optical metamaterials. Adv. Mater. 20, 3859–3865 (2008) .es_ES
dc.description.referencesShelby, R. A., Smith, D. R. & Schultz, S. . Experimental verification of a negative index of refraction. Science 292, 77–79 (2001) .es_ES
dc.description.referencesZhang, X. & Liu, Z. . Superlenses to overcome the diffraction limit. Nat. Mater. 7, 435–441 (2008) .es_ES
dc.description.referencesSchurig, D. et al. Metamaterials electromagnetic cloak at microwave frequencies. Science 314, 977–980 (2006) .es_ES
dc.description.referencesZheludev, N. I. . The road ahead of metamaterials. Science 328, 582–583 (2010) .es_ES
dc.description.referencesZheludev, N. I. . A roadmap of metamaterials. Opt. Photon. News 22, 30–35 (2011) .es_ES
dc.description.referencesZhao, Q., Zhou, J., Zhang, F. & Lippens, D. . Mie resonance-based dielectric metamaterials. Mater. Today 12, 60–69 (2009) .es_ES
dc.description.referencesO’Brien, S. & Pendry, J. B. . Photonic band-gap effects and magnetic activity in dielectric composites. J. Phys. Condens. Mater. 14, 4035–4044 (2002) .es_ES
dc.description.referencesGansel, J. K. et al. Gold helix photonic metamaterials as broadband circular polarizer. Science 325, 1513–1515 (2009) .es_ES
dc.description.referencesRadke, A., Gissibl, T., Klotzbucher, T., Braun, P. V. & Giessen, H. . Three-dimensional bichiral plasmonic crystals fabricated by direct laser writing and electroless silver plating. Adv. Mater. 23, 3018–3021 (2011) .es_ES
dc.description.referencesChanda, D. et al. Large-are flexible 3D optical negative index metamaterial formed by nanotransfer printing. Nat. Nanotech. 6, 402–407 (2011) .es_ES
dc.description.referencesBlanco, A. et al. Large scale synthesis of a silicon photonic crystal with a complete three dimensional band gap near 1.5 microns. Nature 405, 437–440 (2000) .es_ES
dc.description.referencesXia, Y., Gates, B., Yin, Y. & Lu, Y. . Monodispersed colloidal spheres: old materials with new applications. Adv. Mater. 12, 693–713 (2000) .es_ES
dc.description.referencesGarcia-Etxarri, A. et al. Strong magnetic response of submicron silicon particles in the infrared. Opt. Express 19, 4815–4826 (2011) .es_ES
dc.description.referencesMiroshnichenko, A. E., Lukyanchuk, B. L., Maier, S. A. & Kivshar, Y. S. . Optically induced interaction of magnetic moments in hybrid metamaterials. ACS Nano 6, 837–842 (2012) .es_ES
dc.description.referencesShi, L., Xifre-Perez, E., Garcia de Abajo, F. J. & Meseguer, F. . Looking through the mirror: optical microcavity-mirror image photonic interaction. Opt. Express 20, 11247–11255 (2012) .es_ES
dc.description.referencesShi, L. & Meseguer, F. . Magnetic interaction in all silicon waveguide spherical coupler device. Opt. Express 20, 22617–22626 (2012) .es_ES
dc.description.referencesShi, L., Tuzer, T. U., Fenollosa, R. & Meseguer, F. . A new dielectric metamaterial building block with a strong magnetic response below 1.5 micrometers region. Silicon colloids nanocavities. Adv. Mater. 20, 5934–5938 (2012) .es_ES
dc.description.referencesEvlyukhin, A. B., Reinhardt, C., Seidel, A., Lukyanchuk, B. S. & Chichkov, B. . Optical response features of Si-nanoparticle arrays. Phys. Rev. B 82, 045404 (2010) .es_ES
dc.description.referencesKrasnok, A. E., Miroshnichenko, A. E., Belov, P. A. & Kivshar, Y. S. . Huygens optical elements and Yagi-Uda nanoantennas based on dielectric nanoparticles. JETP Lett. 94, 593–598 (2011) .es_ES
dc.description.referencesKrasnok, A. E., Miroshnichenko, A. E., Belov, P. A. & Kivshar, Y. S. . All-dielectric optical nanoantennas. Opt. Express 20, 20599 (2012) .es_ES
dc.description.referencesEvlyukhin, A. B. et al. Demonstration of magnetic dipole resonances of dielectric nanospheres in the visible region. Nano. Lett. 12, 3749–3755 (2012) .es_ES
dc.description.referencesKuznetsov, A. I., Miroshnichenko, A. E., Fu, Y. H., Zhang, J. & Lukyanchuk, B. . Magnetic light. Sci. Rep. 2, 492 (2012) .es_ES
dc.description.referencesMiroshnichenko, A. E. et al. Magnetic light: optical magnetism of dielectric nanoparticles. Opt. Photon. News 23, 35 (2012) .es_ES
dc.description.referencesFu, Y. H., Kuznetsov, A. I., Miroshnichenko, A. E., Yu, Y. F. & Lukyanchuk, B. . Directional visible light scattering by silicon nanoparticles. Nat. Commun. 4, 1527 (2013) .es_ES
dc.description.referencesPerson, S., Jain, M., Lapin, Z., Saenz, J. J., Wicks, G. & Novotny, L. . Demonstration of zero optical backscattering from single nanoparticles. Nano. Lett. 13, 1806–1809 (2013) .es_ES
dc.description.referencesGeffrin, J. M. et al. Magnetic and electric coherenece in forward- and back-scattered electromagnetic waves by a single dielectric subwavelength sphere. Nat. Commun. 3, 1171 (2012) .es_ES
dc.description.referencesPell, L. E., Schricker, A. D., Mikulec, F. V. & Korgel, B. A. . Synthesis of amorphous silicon colloids by trisilane thermolysis in high temperature supercritical solvents. Langmuir 20, 6546–6548 (2004) .es_ES
dc.description.referencesHarris, J. T., Hueso, J. L. & Korgel, B. A. . Hydrogenated amorphous silicon (a-Si:H) colloids. Chem. Mater. 22, 6378–6383 (2010) .es_ES
dc.description.referencesAlvarez-Puebla, R., Liz-Marzan, L. M. & Garcia de Abajo, F. J. . Light concentration at the nanometer scale. J. Phys. Chem. Lett. 1, 2428–2434 (2010) .es_ES
dc.description.referencesMeseguer, F. . Colloidal crystals as photonic crystals. Colloids Surfaces A. 270, 1–7 (2005) .es_ES
dc.description.referencesZhan, P. et al. The anomalous infrared transmission of gold films on two-dimensional colloidal crystals. Adv. Mater. 18, 1612–1616 (2006) .es_ES
dc.description.referencesSplinelli, P., Verschuuren, M. A. & Polman, A. . Broadband omnidirectional antireflection coating based on subwavelength surface Mie resonators. Nat. Commun. 3, 692 (2012) .es_ES
dc.description.referencesPalik E. D. (ed.) Handbook of Optical Constants of Solids Academic Press: USA, (1998) .es_ES
dc.description.referencesDoicu, A., Wriedt, T. & Eremin, Y. A. . Light Scattering by Systems of Particles Springer: Berlin, (2006) .es_ES
dc.description.sponsorshipWe acknowledge financial support from the following projects FIS2009-07812, Consolider 2007-0046 Nanolight, the PROMETEO/2010/043 and the Robert A. Welch Foundation (F-1464). L.S. thanks the financial support from the MINECO (Estancias de profesores e investigadores extranjeros en centros espanoles) fellowship program.en_EN
dc.description.upvformatpfin419047es_ES
dc.description.upvformatpinicio419041es_ES
dc.description.volume4es_ES
dc.identifier.doi10.1038/ncomms2934
dc.identifier.issn2041-1723
dc.identifier.pmid23695698
dc.identifier.urihttps://riunet.upv.es/handle/10251/84343
dc.languageIngléses_ES
dc.publisherNature Publishing Groupes_ES
dc.relation.ispartofNature Communicationses_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/MICINN//FIS2009-07812/ES/Coloides De Silicio. Sintesis, Caracterizacion Y Aplicaciones Tecnologicas./es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/MEC//CSD2007-00046/ES/NanoLight.es - Light Control on the Nanoscale/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/GVA//PROMETEO%2F2010%2F043/ES/TRANSMISIÓN Y LOCALIZACIÓN DE ONDAS EN METAMATERIALES/es_ES
dc.relation.publisherversionhttp://doi.org/10.1038/ncomms2934es_ES
dc.relation.references10.1126/science.1096796es_ES
dc.relation.references10.1002/adma.200600106es_ES
dc.relation.references10.1038/nphoton.2011.154es_ES
dc.relation.references10.1126/science.1105371es_ES
dc.relation.references10.1002/adma.200500804es_ES
dc.relation.references10.1038/nmat2072es_ES
dc.relation.references10.1038/nature04242es_ES
dc.relation.references10.1002/adma.200702950es_ES
dc.relation.references10.1126/science.1058847es_ES
dc.relation.references10.1038/nmat2141es_ES
dc.relation.references10.1126/science.1133628es_ES
dc.relation.references10.1126/science.1186756es_ES
dc.relation.references10.1364/OPN.22.3.000030es_ES
dc.relation.references10.1016/S1369-7021(09)70318-9es_ES
dc.relation.references10.1088/0953-8984/14/15/317es_ES
dc.relation.references10.1126/science.1177031es_ES
dc.relation.references10.1002/adma.201100543es_ES
dc.relation.references10.1038/nnano.2011.82es_ES
dc.relation.references10.1038/35013024es_ES
dc.relation.references10.1002/(SICI)1521-4095(200005)12:10<693::AID-ADMA693>3.0.CO;2-Jes_ES
dc.relation.references10.1364/OE.19.004815es_ES
dc.relation.references10.1021/nn204348jes_ES
dc.relation.references10.1364/OE.20.011247es_ES
dc.relation.references10.1002/adma.201201987es_ES
dc.relation.references10.1103/PhysRevB.82.045404es_ES
dc.relation.references10.1134/S0021364011200070es_ES
dc.relation.references10.1364/OE.20.020599es_ES
dc.relation.references10.1021/nl301594ses_ES
dc.relation.references10.1038/srep00492es_ES
dc.relation.references10.1364/OPN.23.12.000035es_ES
dc.relation.references10.1038/ncomms2538es_ES
dc.relation.references10.1021/nl4005018es_ES
dc.relation.references10.1038/ncomms2167es_ES
dc.relation.references10.1021/la048671oes_ES
dc.relation.references10.1021/cm102486wes_ES
dc.relation.references10.1021/jz100820mes_ES
dc.relation.references10.1016/j.colsurfa.2005.05.038es_ES
dc.relation.references10.1002/adma.200502588es_ES
dc.relation.references10.1038/ncomms1691es_ES
dc.relation.references10.1007/978-3-540-33697-6es_ES
dc.relation.senia259078es_ES
dc.rightsReserva de todos los derechoses_ES
dc.rights.accessRightsAbiertoes_ES
dc.subjectNegative indexes_ES
dc.subjectDielectric nanoparticleses_ES
dc.subjectColloidal crystalses_ES
dc.subjectMetamaterialses_ES
dc.subjectLightes_ES
dc.subjectFrequencieses_ES
dc.subjectNanoantennases_ES
dc.subjectScalees_ES
dc.titleMonodisperse silicon nanocavities and photonic crystals with magnetic response in the optial regiones_ES
dc.typeArtículoes_ES
dc.type.versioninfo:eu-repo/semantics/publishedVersiones_ES
dspace.entity.typePublication
person.identifier10528
person.identifier246932
person.identifier244210
person.identifier.orcid0000-0003-2758-9823
person.identifier.orcid0000-0001-5479-2494
person.identifier.orcid0000-0002-5541-9912
relation.isAuthorOfPublicatione5e5cb1d-31e4-413b-abd9-08eb357e3536
relation.isAuthorOfPublicationf87f2758-7379-4386-8069-5cc8e3384b34
relation.isAuthorOfPublication895a8891-9e79-47c4-9bd0-6c07bd2cdac4
relation.isAuthorOfPublication.latestForDiscoverye5e5cb1d-31e4-413b-abd9-08eb357e3536
relation.isOrgUnitOfPublicationb97c2806-5147-442a-a1a8-a2c75cc2a941
relation.isOrgUnitOfPublication.latestForDiscoveryb97c2806-5147-442a-a1a8-a2c75cc2a941
upv.uuid3ac83cee-31a9-4ca9-9e2d-b2f6fe088ff8es_ES

Archivos

Bloque original

Mostrando 1 - 1 de 1
Cargando...
Miniatura
Nombre:
Nat Comm-1904-2013.pdf
Tamaño:
5.42 MB
Formato:
Adobe Portable Document Format
Descripción:
Versión editorial