Searcharxiv⌕ Search

arXiv subjects

Mikhail M. Voronov

Publications and source records attributed to Mikhail M. Voronov.

3 recordsLinked to original sources

Application of the generalized Kirchhoff's law to calculation of photoluminescence spectra of one-dimensional photonic crystals

The approach based on the generalized Kirchhoff's law for calculating photoluminescence (PL) spectra of one-dimensional (1D) multi-layered structures, in particular, 1D photonic crystals has been developed. It is valid in the local thermodynamic equilibrium approximation and leads to simple and explicit expression for the photoluminescence intensity. In the framework of the present theory the analytical expression for the spontaneous emission intensity enhancement factor (IEF) for a 1D photonic crystal has been derived. It takes a particularly simple form in the case of a sufficiently large number of the layers and is well suitable for analysis; in particular, it explains the difference in the emission intensity at frequencies near different edges of photonic band-gaps (PBGs), where the intensity is relatively high, and specificity of suppression of the emission in a given frequency range. Also, the developed approach is discussed in connection with the standard method using the Fermi's golden rule and the concept of the local density of (optical) states (LDOS).

physics.optics↗

Optical properties of opaline photonic crystals covered by phase-change material Ge$_2$Sb$_2$Te$_5$

The physical origin of resonant Wood's anomalies in the reflection spectra of three-dimensional (3D) opaline photonic crystals covered with Ge$_2$Sb$_2$Te$_5$ (GST225) is discussed. For this purpose, the optical reflection spectra are studied for different incident angles of light both experimentally and theoretically. The performed eigenmode analysis reveals that the Wood's anomalies originate from the quasiguided modes which appear in the GST225 capping layer. This conclusion is supported by the simulated electromagnetic near-field distributions of incident light at resonant frequencies. The experimental reflection spectra are in a good agreement with theoretical calculations performed by the Fourier modal method in the scattering matrix form.

physics.optics↗

Resonant Wood's anomaly diffraction condition in dielectric and plasmonic grating structures

The general features of the light scattering resulting in the so-called resonant Wood's anomalies in the reflection and transmission spectra are described using the effective parameters of a quasi-guided mode. The expression determining the spectral angular dependence of Wood's anomaly in the case of plasmonic grating structures is given and compared to the analogous expression for dielectric grating structures. Comparison of the resonant Wood's anomalies (RWA) with the surface plasmon-polariton resonances (SPPRs) is discussed as well.

physics.optics↗