The Influence of Absorption and Gain on Photonic Density of States
arXiv:1705.00406
Abstract
The photonic density of states (PDS) of the eigen polarizations (EPs) in cholesteric liquid crystal (CLC) cells are calculated. The exact analytic expressions for the reflection and transmission matrices for the finite thickness CLC layer are used. We obtained the dependences for the PDS on the parameters characterizing absorption and gain, as well as the CLC cell thickness, CLC local dielectric anisotropy and refractive index of CLC layer surrounding. The possibility of connections between the PDS and the density of the light energy accumulated in the medium are investigated and it was shown that these characteristics have analogous spectra and, besides, the influences of the problem parameters on these characteristics also were analogous. We have shown, that the decrement of the refractive index of CLC layer surroundings leads to a sharp increase of the maximum PDS and, consequently, leads to a sharp decrement of the laser excitation threshold. The PDS dependence on the refraction coefficients of the substrates of the Fabry-Perot resonator filled with a CLC planar layer was investigated, too. It is shown that the subject system can work as a low threshold laser or a multi-position trigger.
28 pages, 13 figures
References in corpus (13)
- The Amplification in FEL with Inhomogeneous Magnetic Field
- Infrared Radiation from Rough Surface
- Composite Cell from Nematic and Cholesteric Liquid Crystals as an Rotator of Electrically Tunable Polarization Plane
- Radiation Peculiarities in Chiral Photonic Crystals
- Polarization Properties of the Cholesteric Liquid Crystals
- Undulator radiation in the THz range
- How Magnetic Field Inhomogeneity of Plane Wiggler Affects Spontaneous Radiation of Electrons
- Radiated Energy Calculation in FELWI
- Physics of Chiral Photonic Crystals with Defect
- Electrons for Detection of Casimir Photons
- Threshold behavior of free electron lasers without inversion
- Permanent Magnets Undulator for Terahertz FEL
- The Role of Hypersound in Stimulation of Resonant Transitions in Positronium Atom