Publication:
Inverse engineering of optical constants in photochromic micron-scale hybrid films

dc.contributor.coauthorDanis, B. S.
dc.contributor.coauthorMohseni, A. T.
dc.contributor.coauthorKarazhanov, S.
dc.contributor.coauthorZayim, E.
dc.date.accessioned2026-08-31T12:31:08Z
dc.date.issued2026
dc.description.abstractPhotochromic materials enable dynamic optical modulation through reversible transitions between distinct absorption states, with broad potential for smart windows, adaptive optics, and reconfigurable photonic devices. Micron-scale photochromic hybrid films present a particularly attractive platform for these applications, combining straightforward preparation with substantial optical modulation and scalability for high-volume fabrication. However, rational design of such films remains fundamentally constrained by the absence of well-defined optical constants. Unlike homogeneous thin films, micron-scale hybrid photochromic materials comprise active particles dispersed nonuniformly within polymer matrices. Conventional first-principles electromagnetic simulations face substantial computational costs and discrepancies between simulated and experimental particle distributions. Here, we introduce a data-driven framework that extracts effective optical constants directly from minimal experimental transmittance measurements. Our dual-state effective model approximates the complex inhomogeneous photochromic layer as a compressed homogeneous medium characterized by pseudorefractive indices and pseudoextinction coefficients for both pristine and UV-irradiated states. Through systematic optimization against experimental data from tungsten oxide-polyvinylpyrrolidone hybrid films, we determine wavelength-dependent pseudooptical constants and compression ratios that enable accurate prediction of optical modulation within the tested thickness range. Our methodology establishes a framework for engineering hybrid photochromic systems and demonstrates how data-driven modeling can overcome limitations in characterizing complex nanostructured materials.
dc.description.harvestedfromManual
dc.description.indexedbyWOS
dc.description.publisherscopeInternational
dc.description.readpublishN/A
dc.description.sponsoredbyTubitakEuEU - TÜBİTAK
dc.description.sponsorshipThis work was supported by the Istanbul Technical University Scientific Research Projects Coordination Unit under Project No. MGA-2017-40594, and by the Scientific and Technological Research Council of Turkiye (TUBITAK) under the 2209-A Research Project Support Programme for Undergraduate Students, 2022 First-Term Call. Financial support was provided by the Latvian Council of Science Project No. lzp-2024/1-0632. Also, S.K. acknowledges funding from the European Commission under the Horizon Europe Framework Programme, Grant Agreement No. 101087367 (SWEB project, HORIZON-WIDERA-2022-TALENTS-01-01 call) .
dc.description.versionPublished Version
dc.identifier.ScopusPercentileN/A
dc.identifier.ScopusQuartileN/A
dc.identifier.WoSPercentile81,1
dc.identifier.WoSQuartileQ1
dc.identifier.doi10.1103/kmw2-2tx1
dc.identifier.eissn2470-0053
dc.identifier.embargoN/A
dc.identifier.grantno101087367
dc.identifier.issn2470-0045
dc.identifier.issue2
dc.identifier.urihttp://dx.doi.org/10.1103/kmw2-2tx1
dc.identifier.urihttps://hdl.handle.net/20.500.14288/34762
dc.identifier.volume114
dc.identifier.wos001848797200001
dc.keywordsPhotochromism
dc.keywordsInverse
dc.keywordsInverse problem
dc.keywordsConstant (computer programming)
dc.keywordsOptical materials
dc.languageeng
dc.publisherAmerican Physical Society
dc.relation.affiliationKoç University
dc.relation.collectionKoç University Institutional Repository
dc.relation.ispartofPhysical Review E
dc.subjectPhysics, fluids and plasmas
dc.subjectPhysics, mathematical
dc.titleInverse engineering of optical constants in photochromic micron-scale hybrid films
dc.typeJournal Article
dspace.entity.typePublication

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