Title :
Intrinsic Properties of Fe-Substituted
Magnets
Author :
Manchanda, Priyanka ; Kumar, Pranaw ; Kashyap, Arti ; Lucis, M.J. ; Shield, J.E. ; Mubarok, Arif ; Goldstein, Joseph I. ; Constantinides, S. ; Barmak, Katayun ; Lewis, Laura H. ; Sellmyer, David J. ; Skomski, Ralph
Author_Institution :
Sch. of Basic Sci., Indian Inst. of Technol., Mandi, Mandi, India
Abstract :
First-principle supercell calculations are used to determine how 3d elemental additions, especially Fe additions, modify the magnetization, exchange and anisotropy of L10-ordered ferromagnets. Calculations are performed using the VASP code and partially involve configurational averaging over site disorder. Three isostructural systems are investigated: Fe-Co-Pt, Mn-Al-Fe, and transition metal-doped Fe-Ni. In all three systems the iron strongly influences the magnetic properties of these compounds, but the specific effect depends on the host. In CoPt(Fe) iron enhances the magnetization, with subtle changes in the magnetic moments that depend on the distribution of the Fe and Co atoms. The addition of Fe to MnAl is detrimental to the magnetization, because it creates antiferromagnetic exchange interactions, but it enhances the magnetic anisotropy. The replacement of 50% of Mn by Fe in MnFeAl2 enhances the anisotropy from 1.77 to 2.5 MJ/m3. Further, the substitution of light 3d elements such as Ti, V, Cr into L10-ordered FeNi is shown to substantially reduce the magnetization.
Keywords :
ab initio calculations; aluminium alloys; antiferromagnetic materials; chromium alloys; cobalt alloys; exchange interactions (electron); ferromagnetic materials; iron alloys; magnetic anisotropy; magnetic moments; manganese alloys; nickel alloys; platinum alloys; titanium alloys; vanadium alloys; 3d elemental additions; Fe14Co2Pt16; Fe2Ni; FeNiCo; FeNiCr; FeNiMn; FeNiTi; FeNiV; MnFeAl2; VASP code; antiferromagnetic exchange interactions; configurational averaging; first-principle supercell calculations; intrinsic properties; isostructural systems; magnetic anisotropy; magnetic moments; magnetic properties; magnetization; site disorder; substituted L10-ferromagnets; transition metal doping; Density-functional theory; magnetic alloys; magnetic moment; permanent magnets;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2013.2261821