Structural, electronic, and elastic properties of CuFeS2: first-principles study

被引:0
|
作者
Meng Zhou
Xiang Gao
Yan Cheng
Xiangrong Chen
Lingcang Cai
机构
[1] Sichuan University,College of Physical Science and Technology
[2] Arizona State University,School of Electrical, Computer and Energy Engineering
[3] Chinese Academy of Engineering Physics,National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics
来源
Applied Physics A | 2015年 / 118卷
关键词
Elastic Constant; Bulk Modulus; Generalize Gradient Approximation; Debye Temperature; Local Density Approximation;
D O I
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中图分类号
学科分类号
摘要
The structural, electronic, and elastic properties of CuFeS2 have been investigated by using the generalized gradient approximation (GGA), GGA + U (on-site Coulomb repulsion energy), the local density approximation (LDA), and the LDA + U approach in the frame of density functional theory. It is shown that when the GGA + U formalism is selected with a U value of 3 eV for the 3d state of Fe, the calculated lattice constants agree well with the available experimental and other theoretical data. Our GGA + U calculations indicate that CuFeS2 is a semiconductor with a band gap of 0.552 eV and with a magnetic moment of 3.64 µB per Fe atom, which are well consistent with the experimental results. Combined with the density of states, the band structure characteristics of CuFeS2 have been analyzed and their origins have been specified, which reveals a hybridization existing between Fe-3d, Cu-3s, and S-3p, respectively. The charge and Mulliken population analyses indicate that CuFeS2 is a covalent crystal. Moreover, the calculated elastic constants prove that CuFeS2 is mechanically stable but anisotropic. The bulk modulus obtained from elastic constants is 87.1 GPa, which agrees well with the experimental value of 91 ± 15 GPa and better than the theoretical bulk modulus 74 GPa obtained from GGA method by Lazewski et al. The obtained shear modulus and Debye temperature are 21.0 GPa and 287 K, respectively, and the latter accords well with the available experimental value. It is expected that our work can provide useful information to further investigate CuFeS2 from both the experimental and theoretical sides.
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页码:1145 / 1152
页数:7
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