Optical Magnetic Multipolar Resonances in Large Dynamic Metamolecules
Omar Ibrahim, Sunghee Lee, Sung Wook Kim, Seung Beom Pyun, Connor Woods, Eun Chul Cho, So-Jung Park, Zahra Fakhraai

TL;DR
This paper investigates the magnetic multipole resonances in large dynamic metamolecules composed of dielectric cores and plasmonic beads, using a T-matrix approach to analyze experimental and simulated optical scattering properties.
Contribution
It introduces a detailed characterization of high-order magnetic multipole modes in DMMs and explores their experimental detection and potential applications.
Findings
High-order multipole resonances become prominent with larger bead and structure sizes.
Mode mixing among high-order magnetic multipoles increases with decreased inter-bead gaps.
Angular scattering spectra reveal Fano-like interference patterns for higher-order magnetic modes.
Abstract
Dynamic metamolecules (DMMs) are composed of a dielectric core made of hydrogel surrounded by randomly-packed plasmonic beads that can display magnetic resonances when excited by light at optical frequencies. Their optical properties can be controlled by controlling their core diameter through temperature variations. We have recently shown that DMMs display strong optical magnetism, including magnetic dipole and magnetic quadrupole resonances, offering significant potential for novel applications. Here, we use a T-matrix approach to characterize the magnetic multipole resonance modes of model metamolecules and explore their presence in experimental data. We show that high-order multipole resonances become prominent as the bead size and the overall structure sizes are increased, and when the the inter-bead gap is decreased. In this limit, mode mixing among high-order magnetic multipole…
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