arXiv · 2605.11661
Probe- and Substrate-Dependent Visibility of Mie Resonances in Silicon Nanospheres
Abstract
Silicon nanospheres are high-quality optical resonators and promising building blocks for Mie-tronic devices. While the Mie resonances of an isolated sphere are well understood, practical implementations require substrates that inevitably modify the measured optical response. Here, we investigate how substrates alter the observable spectrum of individual nanospheres, focusing on three fundamentally different cases: a thin silicon nitride membrane, that emulates a free-standing particle, bulk silicon, which is common in experiments, and gold, where mirror charges lead to hybrid optical modes. Cathodoluminescence and dark-field spectroscopy, combined with electrodynamic simulations, show that the measured resonances are not intrinsic to the particle but depend strongly on the environment and the excitation mechanism. We find that substrate-induced effects and probe-specific selection rules can suppress, enhance, or even invert the spectral signatures of electric and magnetic modes. These results provide practical guidelines for interpreting and designing substrate-supported dielectric resonators for Mie-tronic applications.
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Yonas Lebsir, Huatian Hu, P. A. D. Gonçalves, Hiroshi Sugimoto, Minoru Fujii, N. Asger Mortensen, Christos Tserkezis, Sergii Morozov. 2026-05-12. Probe- and Substrate-Dependent Visibility of Mie Resonances in Silicon Nanospheres. https://arxiv.org/abs/2605.11661
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