Cs 3 M 2 X 9 (M = Sb, Bi; X = Cl, Br) perovskites known as two-dimensional (2D) materials crystallize in two structure types, trigonal P 321 and orthorhombic Pnma space groups. These compounds containing less toxic elements have generated enormous research interest due to their inherent photovoltaic properties. In this article, we have studied the structure stability of Cs 3 Sb 2 Cl 9 and the effect of Bi substitution on the structure and optical properties of the above phase. The pure trigonal Cs 3 Sb 2 Cl 9 phase was obtained by reacting metal chlorides at ≤ 85 °C, while the pure orthorhombic phase was obtained at ≥130 °C. Bismuth substitution in Cs 3 Sb 2– x Bi x Cl 9 gives a mixture of trigonal and orthorhombic phases until x < 0.1, and further substitution ( x ≥ 0.1) gives a pure orthorhombic phase. The phase transitions are unequivocally characterized by both powder X-ray diffraction and Raman studies. Single crystal study confirms the orthorhombic Cs 3 Sb 2 Cl 9, Cs 3 Sb 1.94 Bi 0.06 Cl 9, and Cs 3 Bi 2 Cl 9 phases. From both single crystal and Rietveld refinement studies on Cs 3 Sb 1.94 Bi 0.06 Cl 9 and Cs 3 Sb 1.9 Bi 0.1 Cl 9, respectively, it is observed that Bi preferably substitutes at the Sb(1) crystallographic site. A theoretical study using the Vienna Ab initio Simulation Package (VASP) shows that both the trigonal and orthorhombic Cs 3 Sb 2 Cl 9 phases are indirect band gap semiconductors, and their band gap is smaller than orthorhombic Cs 3 Bi 2 Cl 9 . From an optical study, it is observed that the bandgap of the pure orthorhombic (2.86 eV) and trigonal phase (2.89 eV) of Cs 3 Sb 2 Cl 9 is in a similar range, while the Bi analogue compound, orthorhombic Cs 3 Bi 2 Cl 9, shows a higher band gap of 3.0 eV. Further, the band gap of the trigonal Cs 3 Sb 2 Cl 9 phase is successfully reduced by Bi substitution, and it goes through the lowest value of 2.6 eV for x = 0.1 in the Cs 3 Sb 2– x Bi x Cl 9 series.
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Pradhan et al. (2020) studied this question.
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