Optics of Plasmon-Exciton Nanostructures: Theoretical Models and Physical Phenomena in Metal/J-aggregate Systems
arXiv:2502.20198 · doi:10.3367/UFNe.2024.08.039742
Abstract
We review the studies of a wide range of optical phenomena resulting from near-field coupling between excitons and localized surface plasmon-polaritons in hybrid nanostructures. Modern physical approaches and theoretical models reported here for the description of light absorption, scattering, and extinction spectra are appropriate for interpreting physical effects in nanosystems containing metals and various excitonic materials, such as molecular aggregates of organic dyes or inorganic quantum-confined semiconductor structures. Using the example of hybrid nanosystems composed of a metal core and an outer shell of dye J-aggregate, we perform a theoretical analysis of the optical spectra behavior in the regimes of weak, strong, and ultrastrong plasmon--exciton coupling. We consider resonance and antiresonance phenomena induced by the coupling of an exciton with dipole and multipole plasmons, including a pronounced dip in light absorption, as well as the spectral band replication effect of plexcitonic nanoparticles and their dimers. We discuss the significant roles of the size-dependent permittivity of the metal core, the effects of anisotropy and chirality of the excitonic J-aggregate shell, and the influence of an intermediate passive layer on the formation of the optical spectra of bilayer, trilayer, and multilayer nanoparticles. The review outlines the experimental and theoretical results for hybrid nanosystems of various geometrical shapes, sizes, and compositions, broadens our understanding of the physical phenomena caused by the plasmon--exciton coupling, and represents the current state of research in the optics of metalorganic nanostructures.
References in corpus (12)
- Strong coupling between surface plasmon polaritons and emitters
- Strong light-matter coupling in two-dimensional atomic crystals
- Realizing strong light-matter interactions between single nanoparticle plasmons and molecular excitons at ambient conditions
- What is- and what is not- Electromagnetically-Induced-Transparency in Whispering-Gallery-Microcavities
- Quantum Plasmonic Sensors
- Optical Memory, Switching, and Neuromorphic Functionality in Metal Halide Perovskite Materials and Devices
- Intrinsic optical bistability of thin films of linear molecular aggregates: The one-exciton approximation
- The Control of the Elementary Quantum Systems Radiation Using Metamaterials and Nanometaparticles
- Surface-Enhanced Raman Scattering from Au Nanorods, Nanotriangles, and Nanostars with Tuned Plasmon Resonances
- Intrinsic optical bistability of thin films of linear molecular aggregates: The two-exciton approximation
- Near-field Analysis of Strong Coupling between Localized Surface Plasmons and Excitons
- Gain-compensated cavities for the dynamic control of light-matter interactions