Theory Department
Max Planck Institute of Microstructure Physics
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Takahashi, Y., Miyamachi, T., Nakashima, S., Kawamura, N., Takagi, Y., Uozumi, M., Antonov, V. N., Tokoyama, T., Ernst, A., Komori, F.

Thickness-dependent electronic and magnetic properties of γ′-Fe4N atomic layers on Cu(001)
Physical Review B 95, (22),pp 224417/1-8 (2017)
Growth, electronic, and magnetic properties of γ′-Fe4N atomic layers on Cu(001) are studied by scanning tunneling microscopy/spectroscopy and x-ray absorption spectroscopy/magnetic circular dichroism. A continuous film of ordered trilayer γ′-Fe4N is obtained by Fe deposition under N2 atmosphere onto monolayer Fe2N/Cu(001), while the repetition of a bombardment with 0.5 keV N+ ions during growth cycles results in imperfect bilayer γ′-Fe4N. The increase in the sample thickness causes the change in the surface electronic structure, as well as the enhancement in the spin magnetic moment of Fe atoms reaching  ∼  1.4 μB/atom in the trilayer sample. The observed thickness-dependent properties of the system are well interpreted by the layer-resolved density of states calculated using first principles, which demonstrates the strongly layer dependent electronic states within each surface, subsurface, and interfacial plane of the γ′-Fe4N atomic layers on Cu(001).

TH-2017-21