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Mathematical modelling of light propagation in pohotonic crystal waveguides

dc.contributor.advisor Sözüer, Hüseyin Sami
dc.contributor.author Eti, Neslihan
dc.date.accessioned 2023-11-16T12:04:36Z
dc.date.available 2023-11-16T12:04:36Z
dc.date.issued 2014
dc.department Mathematics en_US
dc.description Thesis (Doctoral)--Izmir Institute of Technology, Mathematics, Izmir, 2014 en_US
dc.description Includes bibliographical references (leaves: 100-103) en_US
dc.description Text in English; Abstract: Turkish and English en_US
dc.description xiii, 103 leaves en_US
dc.description.abstract Photonic crystals are artificially engineered materials where the dielectric constant varies periodically. A photonic band gap can be created by scattering at the dielectric interfaces, which forbids propagation of light in a certain frequency range of light. This property enables us to control light, which is normally impossible with conventional optics. Moreover, by placing a linear defect into the photonic crystal, one can construct a waveguide, which keeps light inside the waveguide in the desired direction. Thus, by using photonic crystal waveguides one can control light propagation in integrated circuit devices. The goal of this work is to provide a comprehensive understanding of how to bend light using photonic crystal waveguides. The purpose is to create a 90◦ bend for line defect photonic crystal assisted waveguides and present fully three-dimensional calculations with optimized geometrical parameters that minimize the bending loss. The scheme uses one-dimensional photonic crystal slab waveguides for straight sections, and a corner element that employs a square photonic crystal with a band gap at the operating frequency.. The two different structures, with either silicon-silica or with silicon-air are used in the guiding photonic crystal layer. Furthermore, the guiding layer is sandwiched between either air on both top and bottom, or between air on top and silica substrate at the bottom, to serve as the ”cladding” medium. Calculations are presented for the transmission values of TE-like modes where the electric field is strongly transverse to the direction of propagation, with and without the photonic crystal corner element for comparison. We find that the bending loss can be reduced to under 2%. en_US
dc.identifier.uri http://standard-demo.gcris.com/handle/123456789/6201
dc.language.iso en en_US
dc.oaire.dateofacceptance 2014-01-01
dc.oaire.impulse 0
dc.oaire.influence 2.9837197E-9
dc.oaire.influence_alt 0
dc.oaire.is_green true
dc.oaire.isindiamondjournal false
dc.oaire.keywords Matematik
dc.oaire.keywords Elektrik ve Elektronik Mühendisliği
dc.oaire.keywords Fizik ve Fizik Mühendisliği
dc.oaire.keywords Physics and Physics Engineering
dc.oaire.keywords Electrical and Electronics Engineering
dc.oaire.keywords Mathematics
dc.oaire.popularity 1.0422565E-9
dc.oaire.popularity_alt 0.0
dc.oaire.publiclyfunded false
dc.publisher Izmir Institute of Technology en_US
dc.relation.publicationcategory Tez en_US
dc.rights info:eu-repo/semantics/openAccess en_US
dc.subject Photonic crystals en_US
dc.subject Waveguide en_US
dc.title Mathematical modelling of light propagation in pohotonic crystal waveguides en_US
dc.title.alternative Işığın fotonik kristal dalga kılavuzunda yayılımının matematiksel modellemesi en_US
dc.type Doctoral Thesis en_US
dspace.entity.type Publication

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