The effect of electronic entropy on temperature peculiarities of the frequency characteristics of two interacting anharmonic vibrational modes in Zr
arXiv:cond-mat/0603287 · doi:10.1103/PhysRevB.73.214302
Abstract
A 2D temperature-dependent effective potential is calculated for the interacting longitudinal and transverse phonons of zirconium in the frozen-phonon model. The effective potentials obtained for different temperatures are used for the numerical solution of a set of stochastic differential equations with a thermostat of the white-noise type. Analysis of the spectral density of transverse vibrations allows one to determine the temperature at which -Zr becomes unstable with respect to the longitudinal vibrations. The obtained temperature value practically coincides with the experimental temperature of the structural transition in zirconium. The role of electronic entropy in the Zr stability is discussed.
9 pages, 10 figures (submitted in Phys.Rev.)