Low-temperature infrared dielectric function of hyperbolic -quartz
arXiv:1902.03072 · doi:10.1103/PhysRevB.99.144308
Abstract
We report the infrared dielectric properties of -quartz in the temperature range from to . Using an infrared free-electron laser, far-infrared reflectivity spectra of a single crystal -cut were acquired along both principal axes, under two different incidence angles, in S- and P-polarization. These experimental data have been fitted globally for each temperature with a multioscillator model, allowing to extract frequencies and damping rates of the ordinary and extraordinary, transverse and longitudinal optic phonon modes, and hence the temperature-dependent dispersion of the infrared dielectric function. The results are in line with previous high-temperature studies, allowing for a parametrized description of all temperature-dependent phonon parameters and the resulting dielectric function from up to the --phase transition temperature, . Using these data, we predict remarkably high quality factors for polaritons in -quartz's hyperbolic spectral region at low temperatures.
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