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Uporaba topološke optimizacije v optičnih filtrih
ID Černe, Žiga (Author), ID Ravnik, Miha (Mentor) More about this mentor... This link opens in a new window

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Abstract
Topološka optimizacija se je uveljavila kot učinkovita in zmogljiva metoda za načrtovanje fotonskih naprav. V magistrskem delu pokažem uporabo topološke optimizacije za načrtovanje širokopasovnih optičnih filtrov iz mehke snovi, prilagojene za doseganje različnih transmisijskih spektrov. Filtri so zasnovani za različna območja valovnih dolžin in jih je mogoče uporabiti kot samostojne fotonske elemente, ali pa kot integrirane dele v optičnih valovodih. Strukture optičnih filtrov so modelirane kot plasti s kontinuirano spreminjajočim lomnim količnikom, ter kot dvolomni materiali iz mehke snovi, kot so tekoči kristali, pri katerih se orientacija optične osi spreminja vzdolž filtra. Rezultati kažejo, da je predlagani pristop, ki temelji na tekočih kristalih, učinkovita metoda za načrtovanje širokopasovnih optičnih filtrov z raznolikimi in nastavljivimi transmisijskimi spektri.

Language:Slovenian
Keywords:fotonika, topološka optimizacija, mehka snov, tekoči kristali, filtri
Work type:Master's thesis/paper
Typology:2.09 - Master's Thesis
Organization:FMF - Faculty of Mathematics and Physics
Year:2025
PID:20.500.12556/RUL-172983 This link opens in a new window
COBISS.SI-ID:248761603 This link opens in a new window
Publication date in RUL:12.09.2025
Views:371
Downloads:140
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Secondary language

Language:English
Title:Topological optimization in optical filters
Abstract:
Topology optimization has emerged as a powerful and efficient approach for the systematic design of photonic devices. In this master’s thesis, topology optimization is employed to design broadband optical filters using soft matter materials, with tailored transmission spectra across multiple wavelength ranges. These filters can operate either as standalone photonic components or as integrated elements within waveguide systems. The optical filter structures are modeled using layers with continuously varying refractive indices, characteristic of soft matter, as well as with birefringent soft matter materials, specifically liquid crystals, where the orientation of the optical axis changes along the length of the filter. The results demonstrate that the proposed liquid crystal-based approach is an effective strategy for designing broadband optical filters with diverse and tunable transmission spectra.

Keywords:photonics, topology optimization, soft matter, liquid crystals, filters

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