Spin and orbital magnetic moments in perpendicularly magnetized NiCoO epitaxial thin films: Effects of site-dependent cation valence states
arXiv:2004.08104 · doi:10.1103/PhysRevB.101.224434
Abstract
We carried out x-ray absorption spectroscopy (XAS) and x-ray magnetic circular dichroism (XMCD) spectroscopy and investigated cation valence states and spin and orbital magnetic moments in the inverse-spinel ferrimagnet NiCoO (NCO) epitaxial films with the perpendicular magnetic anisotropy. We show that the oxygen pressure P during the film growth by pulsed laser deposition influences not only the cation stoichiometry (site-occupation) but also the cation valence state. Our XAS results show that the Ni in the O-site is in the intermediate valence state between +2 and +3, Ni (0<<1), whose nominal valence state (the value) varies depending on P. On the other hand, the Co in the octahedral (O) and tetrahedral (T) sites respectively have the valence state close to +3 and +2. We also find that the XMCD signals originate mainly from the T-site Co (Co) and O-site Ni (Ni), indicating that these cation valence states are the key in determining the magnetic and transport properties of NCO films. Interestingly, the valence state of Ni that gives rise to the XMCD signal remains unchanged independent of P. The electronic structure of Ni that is responsible for the magnetic moment and electrical conduction differs from those of Ni and Ni. In addition, the orbital magnetic moment originating from Co is as large as 0.14 and parallel to the magnetization while the Ni orbital moment is as small as 0.07 and is rather isotropic. The Co therefore plays the key role in the perpendicular magnetic anisotropy of the films. Our results demonstrate the significance of the site-dependent cations valence states for the magnetic and transport properties of NCO films.