Harnessing Selective State Space Models to Enhance Semianalytical Design of Fabrication-Ready Multilayered Huygens' Metasurfaces : Part I - Field-based Semianalytical Synthesis

dc.contributor.authorMarcus, Sherman W.
dc.contributor.authorNissan, Natanel
dc.contributor.authorKillamsetty, Vinay K.
dc.contributor.authorYadav, Ravi
dc.contributor.authorRaviv, Dan
dc.contributor.authorGiryes, Raja
dc.contributor.authorEpstein, Ariel
dc.contributor.departmentVerkfræðideild
dc.date.accessioned2026-09-24T13:29:01Z
dc.date.available2026-09-24T13:29:01Z
dc.date.issued2026-03-04
dc.description16 pages, 12 figuresen
dc.description.abstractPlanar metasurfaces can profoundly control electromagnetic scattering. At microwave frequencies, such devices are typically implemented using multilayer cascades of patterned metallic sheets, whose design often requires time-consuming full-wave optimization. Here, we extend analytical models originally developed for sparse loaded-wire metagratings to accurately describe densely packed Jerusalem-cross meta-atoms embedded in standard printed circuit board (PCB) dielectric stacks. The model captures both near- and far-field coupling within and between layers, enabling efficient prediction of the dual-polarized response. Using this framework, we identify highly transmissive meta-atoms whose phase is controlled by the leg lengths of the Jerusalem crosses (microscopic design stage). This (phase)-(leg-length) "lookup table" allows rapid synthesis of Huygens' metasurfaces (macroscopic design stage), demonstrated through a full-wave-validated metalens exhibiting low-reflection beam manipulation. Notably, we implement a judicious scaling method to further extend the model to predict wideband meta-atom responses. In the companion paper (Part II), a hybrid machine-learning approach leverages this semianalytical framework to enhance accuracy without requiring the conventional exhaustive full-wave training, enabling ultrafast inverse design across the full parameter space. Overall, the presented methodology -- the standalone semianlytical scheme (Part I) and the machine-learning enhanced version (Part II) -- establishes an effective open-source toolkit for versatile, rapid, and highly accurate synthesis of fabrication-ready dual-polarized transmissive Huygens' meta-atoms and metasurfaces.en
dc.format.extent5009100
dc.identifier.citationMarcus, S W, Nissan, N, Killamsetty, V K, Yadav, R, Raviv, D, Giryes, R & Epstein, A 2026 'Harnessing Selective State Space Models to Enhance Semianalytical Design of Fabrication-Ready Multilayered Huygens' Metasurfaces : Part I - Field-based Semianalytical Synthesis'.en
dc.identifier.other250849782
dc.identifier.other706bd951-ca99-41c5-8706-02f3f3fd63d0
dc.identifier.otherArXiv: http://arxiv.org/abs/2603.03837v1
dc.identifier.urihttps://hdl.handle.net/20.500.11815/8345
dc.language.iso
dc.rightsinfo:eu-repo/semantics/restrictedAccessen
dc.subjectphysics.app-phen
dc.subjectphysics.opticsen
dc.titleHarnessing Selective State Space Models to Enhance Semianalytical Design of Fabrication-Ready Multilayered Huygens' Metasurfaces : Part I - Field-based Semianalytical Synthesis
dc.type/dk/atira/pure/researchoutput/researchoutputtypes/workingpaper/preprinten

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