Tuning Multipolar Mie Scattering of Particles on a Dielectric-Covered Mirror
arXiv:2311.06488 · doi:10.1021/acsnano.3c12893
Abstract
Optically resonant particles are key building blocks of many nanophotonic devices such as optical antennas and metasurfaces. Because the functionalities of such devices are largely determined by the optical properties of individual resonators, extending the attainable responses from a given particle is highly desirable. Practically, this is usually achieved by introducing an asymmetric dielectric environment. However, commonly used simple substrates have limited influences on the optical properties of the particles atop. Here, we show that the multipolar scattering of silicon microspheres can be effectively modified by placing the particles on a dielectric-covered mirror, which tunes the coupling between the Mie resonances of microspheres and the standing waves and waveguide modes in the dielectric spacer. This tunability allows selective excitation, enhancement, and suppression of the multipolar resonances and enables scattering at extended wavelengths, providing new opportunities in controlling light-matter interactions for various applications. We further demonstrate with experiments the detection of molecular fingerprints by single-particle mid-infrared spectroscopy, and, with simulations strong optical repulsive forces that could elevate the particles from a substrate.
16 pages, 4 figures
References in corpus (8)
- Mid-Infrared Plasmonic Biosensing with Graphene
- Magnetic light
- Backward Pulling Force from a Forward Propagating Beam
- Electromagnetic multipole theory for optical nanomaterials
- Far-field nanoscale infrared spectroscopy of vibrational fingerprints of molecules with graphene plasmons
- Theory of metasurface based perfect absorbers
- Polarization-controlled selective excitation of Mie resonances of dielectric nanoparticle on a coated substrate
- Resonant binding of dielectric particles to metal surface without plasmonics