General modal properties of optical resonances in subwavelength nonspherical dielectric structures
Lujun Huang, Yiling Yu, Linyou Cao

TL;DR
This paper provides a fundamental understanding of optical resonances in subwavelength nonspherical dielectric structures, revealing how leaky modes dictate optical properties and depend on physical features, aiding device design.
Contribution
It introduces a universal framework for analyzing optical resonances in nonspherical dielectric structures, emphasizing the role of leaky modes and their dependence on structure geometry.
Findings
Optical properties are governed by the eigenvalues of leaky modes.
Eigenvalues show size scaling invariance and weak refractive index dependence.
A modified Fabry-Perot model explains the linear size ratio dependence.
Abstract
Subwavelength dielectric structures offer an attractive low loss alternative to plasmonic structures for the development of resonant optics functionality such as metamaterials. Nonspherical like rectangular structures are of most interest from the standpoint of device development due to fabrication convenience. However, no intuitive fundamental understanding of optical resonance in nonspherical structures is available, which has substantially delayed the device development with dielectric materials. Here we elucidate the general fundamentals of optical resonances in nonspherical subwavelength dielectric structures of different shapes (rectangular or triangular) and dimensionalities (1D nanowires and 0D nanoparticles). We demonstrate that the optical properties (i.e. light absorption) of nonspherical structures are dictated by the eigenvalue of the structure's leaky modes. Leaky modes…
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