random selection: Y-Al-Ni (10 entries found)
Displaying 10 entries out of 10 entries found.
Crystallographic data Sstructural stability [Footnotes] Magnetic properties [Footnotes, magnetic units] Methods References
Materials ID Formula Formula units per cell Atomic sites per cell Crystal system Space group [Number] Formation energy (eV/atom) Energy relative to convex hull (eV/atom) Structure search Averaged magnetic moment (μB/atom) Magnetic polarization, Js (T) Magnetic easy axis Magnetic anisotropy constants:
Ka-c, Kb-c, Kb-a, Kd-a (MJ/m3)
Curie temperature, TC (K) Methods References
MMD-997 Mn2Ga5 2 14 tetragonal P4/mbm [127] -0.108 0.034 MP 0.65 0.49 ab plane -1.22 . . . . DFT mp-607225
MMD-1814 Nb3Co5B2 2 20 tetragonal P4/mbm [127] -0.336 . MP 0.00 0.00 . . . . . . DFT mp-1209993
MMD-1808 Y5(Co2Ge5)2 2 38 tetragonal P4/mbm [127] -0.663 0 (stable) MP 0.00 0.00 . . . . . . DFT mp-1207788
MMD-1805 Zr9(CoP2)2 2 30 tetragonal P4/mbm [127] -0.975 0 (stable) MP 0.00 0.00 . . . . . . DFT mp-1207414
MMD-2002 Ti3Co5B2 2 20 tetragonal P4/mbm [127] -0.564 0 (stable) MP 0.00 0.00 . . . . . . DFT mp-504617
MMD-2020 Sc5(Co2Si5)2 2 38 tetragonal P4/mbm [127] -0.742 0 (stable) MP 0.00 0.00 . . . . . . DFT mp-542493
MMD-2085 Nb2FeB2 2 10 tetragonal P4/mbm [127] -0.618 . MP 0.29 0.30 . . . . . . DFT mp-1086660
MMD-2078 Fe(BMo)2 2 10 tetragonal P4/mbm [127] -0.453 0 (stable) MP 0.37 0.41 . . . . . . DFT mp-1078299
MMD-2817 Mn(BMo)2 2 10 tetragonal P4/mbm [127] -0.470 . MP 0.44 0.49 . . . . . . DFT mp-1092278
MMD-3427 Zr9(NiP2)2 2 30 tetragonal P4/mbm [127] -1.005 0 (stable) MP 0.00 0.00 . . . . . . DFT mp-505278

Footnotes:
  1. Formation energy:
    We perform DFT calculations to calculate the total enegies of all the structures. The formation energy is computed with respect to a linear combination of the total energies of reference elemental phases. When the formation energies are plotted as a function of chemical composition, a set of stable compounds forms a convex hull, which represents a boundary (theoretical lower limit) in a compositional phase diagram. Metastable compounds lie above the hull, and the energy relative to the hull (distance to the hull) is a useful quantity to examine the metastability of a new compound. The lower the formation energy above the convex hull, the more likely it is for the material to exist.
  2. Magnetic anisotropy constants:
    Magnetic anisotropy constant, Ka-c, is defined as Ka-c = Ea-Ec, where Ea and Ec are the total energies per volume for the magnetization oriented along the crystallographic a and c axes, respectively. Similarly, Kb-c and Kb-a are defined as Kb-c = Eb-Ec and Kb-a = Eb-Ea, respectively. For cubic crystal systems, magnetic anisotropy constant is calculated as Kd-a = Ed-Ea, where Ed is the total energy per volume for the magnetization oriented along the body-diagonal direction of the unit cell.

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