Biaxial strain tuned electronic structure, lattice thermal conductivity and thermoelectric properties of MgI2 monolayer

Materials Science in Semiconductor Processing(2022)

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摘要
We systematically investigate the effect of strain engineering on the thermodynamic stability, electronic structure, Seebeck coefficient and other properties of two-dimensional (2D) MgI 2 monolayer on the basis of first-principles. The increasing stress causes the maximum phonon frequency of the MgI 2 monolayer to decrease gradually. With the increase of tensile strain, although the indirect-band structure remains the same from the Perdew-Burke-Eruzerhof (PBE) and Heyd-Scuseria-Ernzerhof (HSE06) levels with considering the spin-orbital coupling, the peaks of conduction band and valence band are closer of the MgI 2 monolayer. In the process of tensile strain from 2% to 4%, the number of band valleys increases, and the multiple valley pockets caused by such strain increase the Seebeck coefficient. It is found that the Seebeck coefficient increased from 140.86 μV/K without strain to 231.58 μV/K under 4% tensile strain. It also makes the power factor reach its peak at 4% strain of the MgI 2 monolayer. However, the lattice thermal conductivity of the MgI 2 monolayer is 0.89 W/mK at 300 K in the case of no strain, and it decreases linearly with the increase of tensile strain. The results showed that the ZT value increased gradually with the increasing tensile strain, and it reaches 1.39 at 300 K for the MgI 2 monolayer under the 9% tensile strain. Greatly stimulated further theoretical and experimental research on strain engineering and wish to improve thermoelectric conversion efficiency of two-dimensional (2D) materials.
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关键词
Strain engineering,Electronic structure,Seebeck coefficient,Lattice thermal conductivity,First-principles
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