The Tauc–Lorentz–Urbach (TLU) dispersion model allows us to build a dielectric function from only a few parameters. However, this dielectric function is non-analytic and presents some mathematical drawbacks. As a consequence of this issue, the model becomes inaccurate. In the present work, we will adopt a procedure to conveniently transform the TLU model into a self-consistent dispersion model. The transformation involves the integration of the original TLU imaginary dielectric function (Formula presented.) by using a Lorentzian-type function of semi-width, (Formula presented.). This novel model is analytic and obeys the other necessary mathematical requirements of the optical constants of solid-state materials. The main difference with the...
Analytic representations of the complex dielectric function, which describe various types of materia...
Optical dielectric function model of Ozaki and Adachi [J. Appl. Phys. 78, 3380 (1995)] is augmented ...
Determination of the so-called optical constants (complex refractive index N, which is usually a fun...
Tauc-Lorentz model is commonly used to describe the dielectric constant of amorphous semiconductors ...
We explore inherent characteristics of Tauc-Lorentz (TL) dielectric function model [Appl. Phys. Lett...
We have developed a Kramers-Kronig consistent analytical expression to fit the dielectric functions ...
The development of empirical expressions for the spectral dependence of the real and imaginary compo...
We explore inherent characteristics of Tauc-Lorentz (TL) dielectric function model [Appl. Phys. Let...
We have developed a Kramers-Kronig consistent analytical expression to fit the measured optical func...
This contribution addresses the relevant question of retrieving, from transmittance data, the optica...
In this work, we propose a method to retrieve the thickness and optical constants of dielectric thin...
In this work, we propose a method to retrieve the thickness and optical constants of dielectric thin...
Models for the spectral dependence of the real and imaginary components of the dielectric function, ...
In contrast with crystalline solids, the quasimomentum conservation is relaxed for amorphous semicon...
International audienceWe have developed a Kramers-Kronig consistent analytical expression to fit the...
Analytic representations of the complex dielectric function, which describe various types of materia...
Optical dielectric function model of Ozaki and Adachi [J. Appl. Phys. 78, 3380 (1995)] is augmented ...
Determination of the so-called optical constants (complex refractive index N, which is usually a fun...
Tauc-Lorentz model is commonly used to describe the dielectric constant of amorphous semiconductors ...
We explore inherent characteristics of Tauc-Lorentz (TL) dielectric function model [Appl. Phys. Lett...
We have developed a Kramers-Kronig consistent analytical expression to fit the dielectric functions ...
The development of empirical expressions for the spectral dependence of the real and imaginary compo...
We explore inherent characteristics of Tauc-Lorentz (TL) dielectric function model [Appl. Phys. Let...
We have developed a Kramers-Kronig consistent analytical expression to fit the measured optical func...
This contribution addresses the relevant question of retrieving, from transmittance data, the optica...
In this work, we propose a method to retrieve the thickness and optical constants of dielectric thin...
In this work, we propose a method to retrieve the thickness and optical constants of dielectric thin...
Models for the spectral dependence of the real and imaginary components of the dielectric function, ...
In contrast with crystalline solids, the quasimomentum conservation is relaxed for amorphous semicon...
International audienceWe have developed a Kramers-Kronig consistent analytical expression to fit the...
Analytic representations of the complex dielectric function, which describe various types of materia...
Optical dielectric function model of Ozaki and Adachi [J. Appl. Phys. 78, 3380 (1995)] is augmented ...
Determination of the so-called optical constants (complex refractive index N, which is usually a fun...