Electron Confinement, Orbital Ordering, and Orbital Moments in $d^0$-$d^1$ Oxide Heterostructures
Abstract
The (SrTiO)/(SrVO) multilayer system is studied with first principles methods through the observed insulator-to-metal transition with increasing thickness of the SrVO layer. When correlation effects with reasonable magnitude are included, crystal field splittings from the structural relaxations together with spin-orbit coupling (SOC) determines the behavior of the electronic and magnetic structures. These confined slabs of SrVO prefer =() orbital ordering of and () orbitals within the plane, accompanied by =(0,0) spin order (ferromagnetic alignment). The result is a SOC-driven ferromagnetic Mott insulator. The orbital moment of 0.75 strongly compensates the spin moment on the sublattice. The insulator-metal transition for (occurring between =4 and =5) is reproduced. Unlike in the isoelectronic TiO/VO (rutile structure) system and in spite of some similarities in orbital ordering, no semi-Dirac point [{\it Phys. Rev. Lett.} {\bf 102}, 166803 (2009)] is encountered, but the insulator-to-metal transition occurs through a different type of unusual phase. For n=5 this system is very near (or at) a unique semimetallic state in which the Fermi energy is topologically determined and the Fermi surface consists of identical electron and hole Fermi circles centered at =0. The dispersion consists of what can be regarded as a continuum of radially-directed Dirac points, forming a "Dirac circle".
Keywords
Cite
@article{arxiv.1005.2484,
title = {Electron Confinement, Orbital Ordering, and Orbital Moments in $d^0$-$d^1$ Oxide Heterostructures},
author = {Victor Pardo and Warren E. Pickett},
journal= {arXiv preprint arXiv:1005.2484},
year = {2015}
}
Comments
9 pages, 8 figures