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. 2021 Apr 26;33(19).
doi: 10.1088/1361-648X/abf198.

Mathematical modelling of the conductivity in CZTiS-CZSnS as a function of synthesis temperature

Affiliations

Mathematical modelling of the conductivity in CZTiS-CZSnS as a function of synthesis temperature

M Patarroyo Mesa et al. J Phys Condens Matter. .

Abstract

The electrical behavior of photovoltaic materials related with Cu2ZnTiS4and Cu2ZnSnS4materials were analyzed as function of synthesis temperature in accordance with a new mathematical model based on the Kramers-Kronig equations with a high reliability. The samples were obtained through a hydrothermal route and a subsequent thermal treatment of solids at 550 °C for 1 h under nitrogen flow (50 ml min-1). The characterization was done by x-ray diffraction, ultraviolet spectroscopy (UV), Raman spectroscopy, atomic force microscopy (AFM) and solid state impedance spectroscopy (IS) techniques. The structural characterization, confirm the obtention of a tetragonal material with spatial groupI-42m, oriented along (1 1 2) facet, with nanometric crystal sizes (5-6 nm). The AFM and Raman analysis confirm a high level of chemical homogeneity and correlation with the synthesis temperature, associated with the roughness of the samples. The UV spectroscopy confirm a band gap around 1.4-1.5 eV, evidencing the effectiveness of the synthesis process. The IS results at room temperature with a probability of 95%, confirm a high consistency of data with respect to values of real and imaginary impedance, allowing to obtain information of the conductance, reactance and inductance, achieving conductivity values around 10-5and 10-3Ω-1 m-1in comparison with traditional mathematical models used for this purpose.

Keywords: Nyquist; Raman; impedance; photovoltaics.

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