Modeling the ternary chalcogenide Na 2 MoSe 4 from first-principles.

JOURNAL OF PHYSICS-CONDENSED MATTER(2021)

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摘要
In the ongoing pursuit of inorganic compounds suitable for solid-state devices, transition metal chalcogenides have received heightened attention due to their physical and chemical properties. Recently, alkali-ion transition metal chalcogenides have been explored as promising candidates to be applied in optoelectronics, photovoltaics and energy storage devices. In this work, we present a theoretical study of sodium molybdenum selenide (Na2MoSe4). First-principles computations were performed on a set of hypothetical crystal structures to determine the ground state and electronic properties of Na2MoSe4. We find that the equilibrium structure of Na(2)MoSe(4)is a simple orthorhombic (oP) lattice, with space groupPnma, as evidenced by thermodynamics. Finally, meta-GGA computations were performed to model the band structure ofoPNa(2)MoSe(4)at a predictive level. We employ the Tran-Blaha modified Becke-Johnson potential to demonstrate thatoPNa(2)MoSe(4)has a direct bandgap at the Gamma point that is suitable for optoelectronics. Our results provide a foundation for future studies concerned with the modeling of inorganic and hybrid organic-inorganic materials chemically analogous to Na2MoSe4.
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关键词
transition metal chalcogenides,electronic structure,modified Becke-Johnson potential,alkali metal chalcogenides,density functional theory,TB09,semiconductor
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