Quasi-Babinet principle in dielectric resonators and Mie voids
Date
Authors
Hamidi, Masoud
Koshelev, Kirill
Gladyshev, Sergei
Valero, Adrià Canós
Hentschel, Mario
Giessen, Harald
Kivshar, Yuri
Weiss, Thomas
Journal Title
Journal ISSN
Volume Title
Publisher
Access Statement
Abstract
Advancing resonant nanophotonics requires novel building blocks. Recently, cavities in high-index dielectrics have been shown to resonantly confine light inside a lower-index region. These so-called Mie voids represent a counterpart to solid high-index dielectric Mie resonators, offering novel functionality such as resonant behavior in the ultraviolet spectral region. However, the well-known and highly useful Babinet's principle, which relates the scattering of solid and inverse structures, is not strictly applicable for this dielectric case as it is only valid for infinitesimally thin perfect electric conductors. Here, we show that Babinet's principle can be generalized to dielectric and magnetodielectric systems within certain boundaries, which we refer to as the quasi-Babinet principle and demonstrate for spherical and more generically shaped Mie resonators. Limitations arise due to geometry-dependent terms as well as material frequency dispersion and losses. Thus, our work not only offers deeper physical insight into the working mechanism of these systems but also establishes simple design rules for constructing dielectric resonators with complex functionalities from their complementary counterparts.
Description
Keywords
Citation
Collections
Source
Physical Review Research
Type
Book Title
Entity type
Publication
Access Statement
License Rights
Restricted until
Downloads
File
Description