Journal of Advanced Dielectrics, Volume. 12, Issue 1, 2160013(2022)
Studying of dielectric spectra of MnO solid solution with the use of complex conductivity
A. V. Nazarenko1、*, A. V. Pavlenko1,2, and Y. I. Yurasov1,2
Author Affiliations
1Federal Research Centre The Southern Scientific Centre of the Russian Academy of Sciences (SSC RAS), 41 Chekhova Street, Rostov-on-Don 344006, Russia2Research Institute of Physics, Southern Federal University, 105/42 Bolshaya Sadovaya Street, Rostov-on-Don 344006, Russiashow less
This work presents the results of studying the electrophysical properties of the O3 solid solution in the range of temperatures of = 26–400C and frequency range of = 102–105 Hz. A model description of the revealed dispersion of dielectric parameters in the material is made. The nonclassical modified Havriliak–Negami model written for complex electrical conductivity was used as an approximation model. It is shown that the application of this model almost exactly describes the frequency behavior of the dielectric constant /( , the dielectric loss tangent tg( as well as the real and imaginary parts of complex conductivity ( and ( . The results of this work are an important step in identifying the opportunities and understanding the applications of this model.This work presents the results of studying the electrophysical properties of the O3 solid solution in the range of temperatures of = 26–400C and frequency range of = 102–105 Hz. A model description of the revealed dispersion of dielectric parameters in the material is made. The nonclassical modified Havriliak–Negami model written for complex electrical conductivity was used as an approximation model. It is shown that the application of this model almost exactly describes the frequency behavior of the dielectric constant /( , the dielectric loss tangent tg( as well as the real and imaginary parts of complex conductivity ( and ( . The results of this work are an important step in identifying the opportunities and understanding the applications of this model.