Radiationless anapole states in on-chip photonics

Journal Article (2021)
Author(s)

Evelyn Díaz-Escobar (Universitat Politécnica de Valencia)

Thomas Bauer (TU Delft - QN/Kuipers Lab, TU Delft - QN/Quantum Nanoscience, Kavli institute of nanoscience Delft)

Elena Pinilla-Cienfuegos (Universitat Politécnica de Valencia)

Ángela I. Barreda (Universitat Politécnica de Valencia, Friedrich Schiller University Jena)

Amadeu Griol (Universitat Politécnica de Valencia)

L. Kuipers (TU Delft - QN/Quantum Nanoscience, Kavli institute of nanoscience Delft)

Alejandro Martínez (Universitat Politécnica de Valencia)

Research Group
QN/Kuipers Lab
DOI related publication
https://doi.org/10.1038/s41377-021-00647-x Final published version
More Info
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Publication Year
2021
Language
English
Research Group
QN/Kuipers Lab
Issue number
1
Volume number
10
Article number
204
Pages (from-to)
12
Downloads counter
318
Collections
Institutional Repository
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Abstract

High-index nanoparticles are known to support radiationless states called anapoles, where dipolar and toroidal moments interfere to inhibit scattering to the far field. In order to exploit the striking properties arising from these interference conditions in photonic integrated circuits, the particles must be driven in-plane via integrated waveguides. Here, we address the excitation of electric anapole states in silicon disks when excited on-chip at telecom wavelengths. In contrast to normal illumination, we find that the anapole condition—identified by a strong reduction of the scattering—does not overlap with the near-field energy maximum, an observation attributed to retardation effects. We experimentally verify the two distinct spectral regions in individual disks illuminated in-plane from closely placed waveguide terminations via far-field and near-field measurements. Our finding has important consequences concerning the use of anapole states and interference effects of other Mie-type resonances in high-index nanoparticles for building complex photonic integrated circuitry.