First-principles studies of <i>Tin</i>+1SiN<sub>n</sub> (<i>n</i>=1, 2, 3) <i>MAX</i> phase
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Date
2020
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Publisher
Taylor & Francis Ltd
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Abstract
In this study, the structural, electronic, mechanical, lattice dynamical and thermodynamic characteristics of ( 1, 2 and 3) phase compounds were investigated using the first principle calculations. These ternary nitride compounds were found to be stable and synthesisable, and the results on the stability nature of them were also evaluated for the possible and phases. -was found to be the most stable one among these new class of layered phases for which limited works are available in the literature. The band structures, that are essential for the electronic properties, were determined along with the partial density of states (PDOS) indicating the metallic behaviour of these compounds. The polycrystalline elastic moduli were calculated based on the single-crystal elastic constants and the mechanical stabilities were verified. Some basic physical parameters, such as bulk modulus, shear modulus, Young's modulus, Poisson's ratio, Debye temperature, and sound velocities, were also predicted. Furthermore, the anisotropic elastic properties were visualised in three dimensions (3D) for Young's modulus, linear compressibility, shear modulus and Poisson's ratio as well as with the calculation of the anisotropic factors. - phase showed the most isotropic characteristics with minimum deviations. These theoretical values were also used to identify the stiffness and ionic characteristics. The phonon dispersion curves and corresponding PDOS indicated that compounds were dynamically stable. Moreover, thermodynamic properties obtained from phonon dispersion curves were investigated in detail.
Description
SURUCU, Gokhan/0000-0002-3910-8575; YILDIZ, BUĞRA/0000-0002-0080-7096; SURUCU, Gokhan/0000-0002-3910-8575; Erkisi, Aytac/0000-0001-7995-7590; Candan, Abdullah/0000-0003-4807-3017; Gullu, Hasan Huseyin/0000-0001-8541-5309
Keywords
Nitride MAX phases, first principles, electronic structures, mechanical properties
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Citation
WoS Q
Q3
Scopus Q
Q3
Source
Volume
100
Issue
17
Start Page
2183
End Page
2204