Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8153396 | Journal of Magnetism and Magnetic Materials | 2018 | 18 Pages |
Abstract
The structural, mechanical, electronic and magnetic properties of Fe8âxCrxB4 (xâ¯=â¯0, 0.25, 0.5, 1, 2, 3, 4, 5, 6, 7 and 8) have been investigated by first-principles calculation. It was found that the calculated structural parameters are well consistent with available experimental data. Moreover, all studied compounds are thermodynamically stable phases. On the whole, the moduli of the compounds firstly increase and then decrease with the increase of Cr concentration, whereas the variation of hardness exhibits more fluctuations. All Cr-doped Fe2B have better ductility than Fe2B except Fe2Cr6B4 and Fe5Cr3B4. Interestingly, Fe4Cr4B4 is of not only the slightly larger hardness, but also much better ductility than Fe2B. As the Cr concentration is lower than 20â¯wt%, the hardness of Cr-doped Fe2B slightly decreases with increasing Cr, whereas the sharply increased hardness of (Fe, Cr)2B in Fe-B alloys or boriding layer should be attributed to the multiple alloying effects resulting from Cr and the other alloying elements. The electronic structures revealed that the Fe-B and/or Cr-B bonds are mainly responsible for their mechanical properties, and the M-N (Mâ¯=â¯Fe or Cr, Nâ¯=â¯Fe or Cr) bonds inâ¯ã2â¯2â¯0ã andâ¯ã1â¯1â¯3ã orientations show covalent character. Additionally, the magnetic moments (Ms) of the compounds do not monotonically decrease with increasing Cr.
Related Topics
Physical Sciences and Engineering
Physics and Astronomy
Condensed Matter Physics
Authors
Xiang Wei, Zhiguo Chen, Jue Zhong, Li Wang, Yipeng Wang, Zhongliang Shu,