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Theoretical elastic stiffness and thermodynamic properties of zirconium dodecaboride from first principles calculation AITranslate

Institute of Theoretical and Applied Aerodynamics;Institute of Theoretical and Applied Aerodynamics;Institute of Theoretical and Applied Aerodynamics;Institute of Theoretical and Applied Aerodynamics; Harbin Institute of Technology
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Publisher: Elsevier
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Abstract AITranslate

Highlights • Finite-T estimations of elastic and thermodynamics properties of ZrB12 are given. • The tensile stiffness of ZrB12 is superior to its shear stiffness. • CP has experienced stronger pressure dependences than CV. • From 300 to 2000 K, the calculated CTE rise from 1.98 × 10−5 to 6.01 × 10−5 K−1. • Bulk modulus and Debye temperature of ZrB12 are high up to 231.32 GPa and 1190 K. The calculations based on density functional theory have been performed for the cubic zirconium dodecaboride (ZrB12). Structural and elastic properties were obtained using Perdew–Burke–Enzerh (PBE) exchange- correlation functional. The lattice parameters and elastic constants at different pressures (0–30 GPa) have been calculated and total energies were used to determine the equation of state and free energy within the quasi-harmonic approximation. The agreement between the theoretical and experimental properties was found to be satisfactory. The thermodynamic properties including the normalized volume V/V0, bulk modulus B, thermal expansion α, heat capacity CP and CV, Grüneisen constant γ and Debye temperature have been estimated at pressures from 0 to 50 GPa and temperatures from 0 to 2000 K, respectively. We anticipate that the calculated elastic and thermodynamic results can give an important reference especially to those not easy to be experimentally obtained.

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DOI:https://doi.org/10.1016/j.commatsci.2013.09.035

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Citation Information:

Highlights • Finite-T estimations of elastic and thermodynamics properties of ZrB12 are given. • The tensile stiffness of ZrB12 is superior to its shear stiffness. • CP has experienced stronger pressure dependences than CV. • From 300 to 2000 K, the calculated CTE rise from 1.98 × 10−5 to 6.01 × 10−5 K−1. • Bulk modulus and Debye temperature of ZrB12 are high up to 231.32 GPa and 1190 K. The calculations based on density functional theory have been performed for the cubic zirconium dodecaboride (ZrB12). Structural and elastic properties were obtained using Perdew–Burke–Enzerh (PBE) exchange- correlation functional. The lattice parameters and elastic constants at different pressures (0–30 GPa) have been calculated and total energies were used to determine the equation of state and free energy within the quasi-harmonic approximation. The agreement between the theoretical and experimental properties was found to be satisfactory. The thermodynamic properties including the normalized volume V/V0, bulk modulus B, thermal expansion α, heat capacity CP and CV, Grüneisen constant γ and Debye temperature have been estimated at pressures from 0 to 50 GPa and temperatures from 0 to 2000 K, respectively. We anticipate that the calculated elastic and thermodynamic results can give an important reference especially to those not easy to be experimentally obtained.

quote

GB/T 7714-2015 [1] Bangcheng Ai, Xiaoguang Luo, Jijun Yu, et al. Computational Materials Science, 2014(82). DOI:10.1016/j.commatsci.2013.09.035.
MLA [1] Bangcheng Ai, et al., Computational Materials Science, no. 82, 2014, https://doi.org/10.1016/j.commatsci.2013.09.035.
APA [1] Bangcheng Ai, Xiaoguang Luo, Jijun Yu, Wenbo Miao, & Ping Hu. (2014). Computational Materials Science(82). https://doi.org/10.1016/j.commatsci.2013.09.035
IEEE [1] Bangcheng Ai, Xiaoguang Luo, Jijun Yu, Wenbo Miao, and Ping Hu, Computational Materials Science, no. 82, 2014, doi: 10.1016/j.commatsci.2013.09.035.