4.5 Article

Spin-orbit coupling effect on electronic, linear and nonlinear optical properties of Bi2S3 and the ternary bismuth sulfide Bi2S2.75Se0.25: Ab-initio calculations

期刊

OPTICAL AND QUANTUM ELECTRONICS
卷 54, 期 1, 页码 -

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SPRINGER
DOI: 10.1007/s11082-021-03411-y

关键词

Electronic structure; Optical properties; Spin-orbit coupling; Bismuth sulfide

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This study investigates the structural, electronic, and optical properties of Se-doped bismuth sulfide (Bi2S2.75Se0.25) using first-principle calculations. The results show that Se doping significantly enhances the electro-optical properties of bismuth sulfide. It is found that Bi2S2.75Se0.25 exhibits a narrow direct band gap and high electron mobility after including spin-orbit coupling (SOC). The optical absorption coefficient in the visible range is increased and red-shifted by Se doping. The study also discusses the nonlinear optical parameters and suggests that Se-doped bismuth sulfide has potential applications in photonic switching.
Although the relevant properties of the bismuthinite Bi2S3, it was recently approved that the substitution of Se atoms in the Bi2S3 lattice can significantly enhance its electro-optical properties. In the present work, a detailed study on the structural, electronic and optical properties of Bi2S2.75Se0.25 has been carried out based on first principle calculations. The simultaneous effect of Se-doping and spin-orbit coupling (SOC) on bismuth sulfide Bi2S3 was investigated. Our calculations show that Bi2S2.75Se0.25 exhibits a narrow direct band gap of 1.062 eV after inclusion of the (SOC). The calculation of the carrier effective masses indicates that Bi2S2.75Se0.25 may possess a high electron mobility material which is in accordance with experimental studies. The linear absorption optical spectra for both Bi2S3 and Bi2S2.75Se0.25 show that doping bismuthinite with (Se) increases the optical absorption coefficient in the visible range and takes a value up to 1010(5) cm(-1). In addition, the dielectric function, optical conductivity and the energy loss function of Bi2S3 and Bi2S2.75Se0.25 were also derived. The addition of the (Se) content induces a red shift in agreement with experimental studies. A noticeable effect of the (SOC) on the linear optical parameters was observed. The stability of the excitons was also studied by the estimation of the binding energy value. The dispersion energy parameters of Bi2S3 and Bi2S2.75Se0.25 were estimated using a single oscillator model. Some nonlinearities have been computed with and without inclusion of (SOC) showing that Bi2S2.75Se0.25 with large nonlinear optical parameters is promising candidate in photonic switching applications.

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