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dc.contributor.authorMurillo-García W
dc.contributor.authorGómez-Urrea H.A
dc.contributor.authorMora-Ramos M.E
dc.contributor.authorDuque C.A.
dc.date.accessioned2023-10-24T19:24:23Z
dc.date.available2023-10-24T19:24:23Z
dc.date.created2023
dc.identifier.issn24103896
dc.identifier.urihttp://hdl.handle.net/11407/7941
dc.description.abstractWe report the transmission spectra and electric field amplitudes of electromagnetic modes propagating in hybrid periodic/quasiperiodic multilayer photonic structures in one dimension (1D). We consider the case of the combination of biperiodic Bragg mirror and triperiodic Bragg mirrors with quasiregular (FB, Fibonacci) layered components. The corresponding hybrid structure (HB) is formed by concatenating BM(N)-FB(M)-BM(N), where N (M) means the number of periods (sequence order) used for the Bragg mirrors (FB) structure. A single defect layer (D) is considered in the middle of two HBs (HB-D-HB). Optimizing the parameters (the order of sequence, number of Bragg mirror layers, thickness, and the refractive index of D) allows us to obtain narrowband filters. The manipulation of these parameters fixes the number of photonic band gaps as well as the position of transmission peaks. The existence of the selectively localized behavior of some optical modes in the structures is discussed. © 2023 by the authors.eng
dc.language.isoeng
dc.publisherMDPI
dc.relation.isversionofhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85163679169&doi=10.3390%2fcondmat8020050&partnerID=40&md5=2e372adfd0619789afe8fd95d7b0a841
dc.sourceCondens. Matter
dc.sourceCondensed Mattereng
dc.subjectDefectseng
dc.subjectHybrid periodic/Fibonacci multilayerseng
dc.subjectNarrowband filteringeng
dc.subjectPhotonic dielectric structureseng
dc.titleNarrowband Filters Designed from Hybrid One-Dimensional Periodic/Quasiperiodic Photonic Crystals with a Single Defect Layereng
dc.typeArticle
dc.rights.accessrightsinfo:eu-repo/semantics/restrictedAccess
dc.publisher.programCiencias Básicasspa
dc.type.spaArtículo
dc.identifier.doi10.3390/condmat8020050
dc.relation.citationvolume8
dc.relation.citationissue2
dc.publisher.facultyFacultad de Ciencias Básicasspa
dc.affiliationMurillo-García, W., Grupo de Materia Condensada-UdeA, Instituto de Física, Facultad de Ciencias Exactas y Naturales, Universidad de Antioquia UdeA, Calle 70 No. 52-21, Medellín, 050010, Colombia
dc.affiliationGómez-Urrea, H.A., Facultad de Ciencias Básicas, Universidad de Medellín, Medellín, 050026, Colombia
dc.affiliationMora-Ramos, M.E., Centro de Investigación en Ciencias-IICBA, Universidad Autónoma del Estado de Morelos, Av. Universidad 1001, Morelos, Cuernavaca, CP 62209, Mexico
dc.affiliationDuque, C.A., Grupo de Materia Condensada-UdeA, Instituto de Física, Facultad de Ciencias Exactas y Naturales, Universidad de Antioquia UdeA, Calle 70 No. 52-21, Medellín, 050010, Colombia
dc.relation.referencesZhang, C., Qiao, F., Wan, J., Enlargement of nontransmission frequency range in photonic crystals by using multiple heterostructures (2000) J. Appl. Phys, 87, p. 3174
dc.relation.referencesKanzari, M., Rezig, B., Optical polychromatic filter by the combination of periodic and quasi-periodic one-dimensional, dielectric photonic bandgap structures (2001) J. Opt. A Pure Appl. Opt, 3, p. S201
dc.relation.referencesPeng, R.W., Huang, X.Q., Qiu, F., Wang, M., Hu, A., Jiang, S.S., Mazzer, M., Symmetry-induced perfect transmission of light waves in quasiperiodic dielectric multilayers (2002) Appl. Phys. Lett, 80, p. 3063
dc.relation.referencesWen, D.J., Peng, H., Zhou, W.H., Broad Omnidirectional Reflection Band Forming using the Combination of Fibonacci Quasi-Periodic and Periodic One-Dimensional Photonic Crystals (2003) Chin. Phys. Lett, 20, p. 1963
dc.relation.referencesPeng, R.W., Liu, Y.M., Huang, X.Q., Qiu, F., Wang, M., Hu, A., Jiang, S.S., Zou, J., Dimerlike positional correlation and resonant transmission of electromagnetic waves in aperiodic dielectric multilayers (2004) Phys. Rev. B, 69, p. 165109
dc.relation.referencesMaciá Barber, E., (2009) Aperiodic Structures in Condensed Matter. Fundamentals and Applications, , CRC Press, Boca Raton, FL, USA
dc.relation.referencesMaciá, E., Exploiting aperiodic designs in nanophotonic devices (2012) Rep. Prog. Phys, 75, p. 036502
dc.relation.referencesMaciá, E., Exploiting quasiperiodic order in the design of optical devices (2001) Phys. Rev. B, 63, p. 205421
dc.relation.referencesVardeny, Z., Nahata, A., Agrawal, A., Optics of photonic quasicrystals (2013) Nat. Photon, 7, p. 177
dc.relation.referencesEscorcia-García, J., Mora-Ramos, M.E., Study of optical propagation in hybrid periodic/quasiregular structures based on porous silicon (2009) PIERS Online, 5, p. 36
dc.relation.referencesBen Ali, N., Kanzari, M., Designing of omni-directional high reflectors by using one-dimensional modified hybrid Fibonacci/Cantor band-gap structures at optical telecommunication wavelength band (2010) J. Mod. Opt, 57, p. 287
dc.relation.referencesEscorcia-García, J., Duque, C.A., Mora-Ramos, M.E., Optical properties of hybrid periodic/quasiregular dielectric multilayers (2011) Superlattice Microstruct, 40, p. 203
dc.relation.referencesBen Ali, N., Kanzari, M., Designing of stop band filters using hybrid periodic/quasi-periodic one-dimensional photonic crystals in microwave domain (2011) Phys. Status Solidi A, 208, p. 161
dc.relation.referencesZaghdoudi, J., Maaloul, N., Kanzari, M., Studies of optical properties of symmetrical quasi-periodic photonic crystals (2012) Opt. Photon. J, 2, p. 270
dc.relation.referencesBouazzi, Y., Kanzari, M., Optical Fabry–Perot filter based on photonic band gap quasi-periodic one-dimensional multilayer according to the definite Rudin–Shapiro distribution (2012) Opt. Commun, 285, p. 2774
dc.relation.referencesEscorcia-García, J., Mora-Ramos, M.E., Propagation and confinement of electric field waves along one-dimensional porous silicon hybrid periodic/quasiperiodic structure (2013) Opt. Photon. J, 3, p. 1
dc.relation.referencesBaraket, Z., Zaghdoudi, J., Kanzari, M., Study of optical responses in hybrid symmetrical quasi-periodic photonic crystals (2016) Prog. Electromagn. Res. M, 46, p. 29
dc.relation.referencesAsmi, R., Ben Ali, N., Kanzari, M., Enhancement of light localization in hybrid Thue–Morse/Periodic Photonic crystals (2016) J. Mater, 2016, p. 9471312
dc.relation.referencesTrabelsi, Y., Bouazzi, Y., Benali, N., Kanzari, M., Narrow stop band optical filter using one-dimensional regular Fibonacci/Rudin Shapiro photonic quasicrystals (2016) Opt. Quant. Electron, 48, p. 54
dc.relation.referencesVyunishev, A., Pankin, P., Svyakhovskiy, S., Timofeev, I., Vetrov, S., Quasiperiodic one-dimensional photonic crystals with adjustable multiple photonic bandgaps (2017) Opt. Lett, 42, p. 3602
dc.relation.referencesElsayed, H.A., Sharma, A., Segovia-Chaves, F., Sabra, W., Multi passbands filter for THz applications based on the one-dimensional photonic crystals heterostructure (2021) Optik, 248, p. 168056
dc.relation.referencesTrabelsi, Y., Belhadj, W., Ben Ali, N., Aly, A.H., Theoretical Study of Tunable Optical Resonators in Periodic and Quasiperiodic One-Dimensional Photonic Structures Incorporating a Nematic Liquid Crystal (2021) Photonics, 8
dc.relation.referencesSegovia-Chaves, F., Vinck-Posada, H., Tunability of multiple transmission channels in quasiperiodic one-dimensional photonic crystals (2022) Rom. J. Phys, 67, p. 201
dc.relation.referencesSreekanth, K.V., Zeng, S., Yong, K.-T., Yu, T., Sensitivity enhanced biosensor using graphene-based one-dimensional photonic crystal (2013) Sens. Actuators B Chem, 182, p. 424
dc.relation.referencesAly, A.H., Mohamed, D., Mohaseb, M.A., Abd El-Gawaad, N.S., Trabelsi, Y., Biophotonic sensor for the detection of creatinine concentration in blood serum based on 1D photonic crystal (2020) RSC Adv, 10, p. 31765. , 35518172
dc.relation.referencesNouman, W.M., Abd El-Ghany, S.E.S., Sallam, S.M., Dawood, A.-F.B., Aly, A.H., Biophotonic sensor for rapid detection of brain lesions using 1D photonic crystal (2020) Opt. Quant. Electron, 52, p. 287
dc.relation.referencesAly, A.H., Zaky, Z.A., Shalaby, A.S., Ahmed, A.M., Vigneswaran, D., Theoretical study of hybrid multifunctional one-dimensional photonic crystal as a flexible blood sugar sensor (2020) Phys. Scr, 95, p. 035510
dc.relation.referencesSurdo, S., Barillaro, G., Impact of Fabrication and Bioassay Surface Roughness on the Performance of Label-Free Resonant Biosensors Based on One-Dimensional Photonic Crystal Microcavities (2020) ACS Sens, 5, p. 2894
dc.relation.referencesPanda, A., Pukhrambam, P.D., Ayyanar, N., Nguyen, T.K., Investigation of transmission properties in defective one dimensional superconductive photonic crystal for ultralow level bioethanol detection (2021) Optik, 245, p. 167733
dc.relation.referencesShalaby, A.S., Alamri, S., Mohamed, D., Aly, A.H., Awasthi, S.K., Matar, Z.S., Tammam, M.T., Theoretical study of one-dimensional defect photonic crystal as a high-performance sensor for water-borne bacteria (2021) Opt. Quant. Electron, 53, p. 660
dc.relation.referencesZaky, Z.A., Moustafa, B., Aly, A.H., Plasma cell sensor using photonic crystal cavity (2021) Opt. Quant. Electron, 53, p. 591
dc.relation.referencesZaky, Z.A., Sharma, A., Alamri, S., Aly, A.H., Theoretical evaluation of the refractive index sensing capability using the coupling of Tamm–Fano resonance in one-dimensional photonic crystals (2021) Appl. Nanosci, 11, p. 2261
dc.relation.referencesMalek, C., Al-Dossari, M., Awasthi, S.K., Matar, Z.S., Abd El-Gawaad, N.S., Sabra, W., Aly, A.H., Employing the Defective Photonic Crystal Composed of Nanocomposite Superconducting Material in Detection of Cancerous Brain Tumors Biosensor: Computational Study (2022) Crystals, 12
dc.relation.referencesMatar, Z.S., Al-Dossari, M., Awasthi, S.K., Mohamed, D., Abd El-Gawaad, N.S., Aly, A.H., Conventional Biophotonic Sensing Approach for Sensing and Detection of Normal and Infected Samples Containing Different Blood Components (2022) Crystals, 12
dc.relation.referencesTaya, S.A., Alhamss, D.N., Colak, I., Patel, S.K., Sensitivity enhancement of an optical sensor based on a binary photonic crystal for the detection of Escherichia coli by controlling the central wavelength and the angle of incidence (2022) Opt. Quant. Electron, 54, p. 127
dc.relation.referencesMalitson, I.H., Interspecimen Comparison of the Refractive Index of Fused Silica (1965) J. Opt. Soc. Am, 55, pp. 1205-1209
dc.relation.referencesDeVore, J.R., Refractive Indices of Rutile and Sphalerite (1951) J. Opt. Soc. Am, 41, pp. 416-419
dc.relation.referencesWood, D.L., Nassau, K., Refractive index of cubic zirconia stabilized with yttria (1982) Appl. Opt, 21, pp. 2978-2981
dc.relation.references(2021) COMSOL Multiphysics, , v. 5.6, COMSOL AB, Stockholm, Sweden
dc.relation.references(2012) COMSOL Multiphysics Reference Guide, , COMSOL AB, Stockholm, Sweden
dc.relation.references(2012) COMSOL Multiphysics Users Guide, , COMSOL AB, Stockholm, Sweden
dc.relation.referencesWaikar, S.S., Betensky, R.A., Bonventre, J.V., Creatinine as the gold standard for kidney injury biomarker studies (2009) Nephrol. Dial. Transplant, 24, p. 3263
dc.relation.referencesParvesh, M., Ohlsson, P., BjOrkhem, I., Combined enzymic- Jaffe method for determination of creatinine in serum (1981) Clin. Chem, 27, pp. 8-21
dc.relation.referencesAwad, M.A., Aly, A.H., Experimental and theoretical studies of hybrid multifunctional TiO2/TiN/TiO2 (2015) Ceram. Int, 45, pp. 19036-19043
dc.relation.referencesElBeheiry, M., Liu, V., Fan, S., Levi, O., Sensitivity enhancement in photonic crystal slab biosensors (2010) Opt. Express, 18, pp. 22702-22714. , 21164609
dc.relation.referencesYang, D., Li, C., Wang, C., Ji, Y., Quan, Q., High figure of merit fano resonance in 2-D defect-free pillar array photonic crystal for refractive index sensing (2016) IEEE Photonics J, 8, p. 4502414
dc.relation.referencesGandhi, S., Awasthi, S.K., Aly, A.H., Biophotonic sensor design using a 1D defective annular photonic crystal for the detection of creatinine concentration in blood serum (2021) RSC Adv, 11, pp. 26655-26665. , 35479998
dc.type.versioninfo:eu-repo/semantics/publishedVersion
dc.identifier.reponamereponame:Repositorio Institucional Universidad de Medellín
dc.identifier.repourlrepourl:https://repository.udem.edu.co/
dc.identifier.instnameinstname:Universidad de Medellín


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