Giant In-Particle Field Concentration and Fano Resonances at Light Scattering by High-Refractive Index Particles
arXiv:1511.02931 · doi:10.1103/PhysRevA.93.053837
Abstract
A detailed analytical inspection of light scattering by a particle with high refractive index m+iκand small dissipative constant κis presented. We have shown that there is a dramatic difference in the behavior of the electromagnetic field within the particle (inner problem) and the scattered field outside it (outer problem). With an increase in m at fix values of the other parameters, the field within the particle asymptotically converges to a periodic function of m. The electric and magnetic type Mie resonances of different orders overlap substantially. It may lead to a giant concentration of the electromagnetic energy within the particle. At the same time, we demonstrate that identical transformations of the solution for the outer problem allow to present each partial scattered wave as a sum of two partitions. One of them corresponds to the m-independent wave, scattered by a perfectly reflecting particle and plays the role of a background, while the other is associated with the excitation of a sharply-m-dependent resonant Mie mode. The interference of the partitions brings about a typical asymmetric Fano profile. The explicit expressions for the parameters of the Fano profile have been obtained "from the first principles" without any additional assumptions and/or fitting. In contrast to the inner problem, at an increase in m the resonant modes of the outer problem die out, and the scattered field converges to the universal, m-independent profile of the perfectly reflecting sphere. Numerical estimates of the discussed effects for a gallium phosphide particle are presented.
18 pages, 10 figures
References in corpus (2)
Cited by in corpus (22)
- Bound states in the continuum and Fano resonances in the strong mode coupling regime
- Pushing the Limit of High-Q Mode of a Single Subwavelength Dielectric Nanocavity
- Giant field enhancement in high-index dielectric subwavelength particles
- The ultimate absorption at light scattering by a single obstacle
- Bound states in the continuum in strong-coupling and weak-coupling regimes under the cylinder-ring transition
- Fano resonances and fluorescence enhancement of a dipole emitter near a plasmonic nanoshell
- Switchable invisibility of dielectric resonators
- Q-factor enhancement in all-dielectric anisotropic nanoresonators
- On the ubiquity of Beutler-Fano profiles: from scattering to dissipative processes
- Dynamic Fano resonances: From toy model to resonant Mie scattering
- Tunable Unidirectional Nonlinear Emission from Transition-Metal-Dichalcogenide Metasurfaces
- Two-dimensional Fano lineshapes: Excited-state absorption contributions
- Magnetic hot-spots generation at optical frequencies in all-dielectric mesoscale Janus particles
- Fano Resonance between Stokes and Anti-Stokes Brillouin Scattering
- Giant enhancement and sign inversion of optical Kerr nonlinearity in random high index nanocomposites near Mie resonances
- Theory, observation and ultrafast response of novel hybrid anapole states
- Quasinormal mode as a foundational framework for all electromagnetic Fano resonances
- Super-resonances in microspheres: extreme effects in field localization
- Nontrivial Pure Zero-Scattering Regime Delivered by a Hybrid Anapole State
- Past and present trends in the development of the pattern-formation theory: domain walls and quasicrystals
- Gain-controlled directional scattering in core-shell nanoparticles mediated by magnetic toroidal dipoles
- Suppression of scattering for small dielectric particles: an anapole mode and invisibility