4.6 Article

First-Principles Investigation of the Structural, Elastic, Electronic, and Optical Properties of α- and β-SrZrS3: Implications for Photovoltaic Applications

Journal

MATERIALS
Volume 13, Issue 4, Pages -

Publisher

MDPI
DOI: 10.3390/ma13040978

Keywords

earth-abundant materials; chalcogenide perovskites; Solar cell; Density Functional Theory; Optoelectronic properties

Funding

  1. UK's Engineering and Physical Sciences Research Council (EPSRC) [EP/S001395/1]
  2. EPSRC [EP/S001395/1] Funding Source: UKRI

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Transition metal perovskite chalcogenides are attractive solar absorber materials for renewable energy applications. Herein, we present the first-principles screened hybrid density functional theory analyses of the structural, elastic, electronic and optical properties of the two structure modifications of strontium zirconium sulfide (needle-like alpha-SrZrS3 and distorted beta-SrZrS3 phases). Through the analysis of the predicted electronic structures, we show that both alpha- and beta-SrZrS3 materials are direct band gaps absorbers, with calculated band gaps of 1.38, and 1.95 eV, respectively, in close agreement with estimates from diffuse-reflectance measurements. A strong light absorption in the visible region is predicted for the alpha- and beta-SrZrS3, as reflected in their high optical absorbance (in the order of 10(5) cm(-1)), with the beta-SrZrS3 phase showing stronger absorption than the alpha-SrZrS3 phase. We also report the first theoretical prediction of effective masses of photo-generated charge carriers in alpha- and beta-SrZrS3 materials. Predicted small effective masses of holes and electrons at the valence, and conduction bands, respectively, point to high mobility (high conductivity) and low recombination rate of photo-generated charge carriers in alpha- and beta-SrZrS3 materials, which are necessary for efficient photovoltaic conversion.

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