4. Conclusions
Using the all-electron FLAPW method within the GGA and GGA+U schemes, the electronic
structures, magnetism and half-metallicity of quaternary Heusler compounds FeMnCrZ (Z = Ga and
In) were investigated. For the compounds, the type-I, II, and III phases with different atomic
orderings in the unit cell were considered. The equilibrium lattice constants of FeMnCrGa (In) in the
type-I, II, and III phases are 5.699 (6.191), 5.847 (6.164), 5.869 (6.191) Å, respectively. FeMnCrGa
has a ground state in the type-I phase, whereas the ground state of FeMnCrIn is in the type-II phase.
The ground states of FeMnCrGa and FeMnCrIn are paramagnetic and ferrimagnetic, respectively.
For FeMnCrGa and FeMnCrIn compounds with the type-II phase, the Fermi levels are located at the
edges of minority-spin band gaps, and the compounds are nearly half-metals. The minority-spin band
gap (0.272 eV within GGA and 0.352 eV within GGA+U) of FeMnCrGa with the type-II phase is
larger than that (0.094 eV within GGA and 0.115 eV within GGA+U) of FeMnCrIn with the type-II
phase, suggesting that FeMnCrGa is more suitable than FeMnCrIn as a spin-injection electrode. The
total magnetic moments follow the Slater-Pauling rule of Mt = Zt – 24 (μB). FeMnCrGa in the type-
III phase and FeMnCrIn in the type-I, III phases are conventional ferrimagnets. It is shown that the
GGA+U calculation increases the magnetic moments and the spin-splitting of the transition metal
atoms for the compounds.
Acknowledgement
This work was supported by the National Nature Science Foundation of China under Grant no.
11264041.
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