Confinement-driven transitions between topological and Mott phases in (LaNiO3)/(LaAlO3)(111) superlattices
arXiv:1403.2314 · doi:10.1103/PhysRevB.89.121110
Abstract
A set of broken symmetry two-dimensional ground states are predicted in (111)-oriented (LaNiO)/(LaAlO) (/) superlattices, based on density functional theory (DFT) calculations including a Hubbard term. An unanticipated Jahn-Teller distortion with orbital polarization and a FM Mott insulating (and multiferroic) phase emerges in the double perovskite (1/1), that shows strong susceptibility to strain-controlled orbital engineering. The LaNiO bilayer with graphene topology has a switchable multiferroic (ferromagnetic (FM) and ferroelectric) insulating ground state with inequivalent Ni sites. Beyond the confined LaNiO slab undergoes a metal-to-insulator transition through a half-semimetallic phase with conduction originating from the interfaces. Antiferromagnetic arrangements allow combining motifs of the bilayer and single trigonal layer band structures in designed artificial mixed phases.
Physical Review B: Rapid Communications (in press)
References in corpus (7)
- Orbital order and possible superconductivity in LaNiO3/LaMO3 superlattices
- Anisotropy and Magnetism in the LSDA+U Method
- Chemical control of orbital polarization in artificially structured transition-metal oxides: La2NiXO6 (X=B, Al, Ga, In) from first principles
- Electronic structure of (LaNiO)/(LaAlO) heterostructures grown along [111]
- Confinement-induced metal-to-insulator transition in strained LaNiO/LaAlO superlattices
- Orbital-quenching-induced magnetism in Ba_2NaOsO_6
- Ordering and multiple phase transitions in ultra-thin nickelate superlattices
Cited by in corpus (9)
- Physics of ultrathin films and heterostructures of rare earth nickelates
- Topological Crystalline Insulators and Dirac Octets in Anti-perovskites
- Orbital Polarization in Strained LaNiO: Structural Distortions and Correlation Effects
- Complex magnetic order in nickelate slabs
- Geometrical lattice engineering of complex oxide heterostructures: a designer approach to emergent quantum states
- Topological Phases in Oxide Heterostructures with Light and Heavy Transition Metal Ions
- Electronic structure of buried LaNiO3 layers in (111)-oriented LaNiO3/LaMnO3 superlattices probed by soft x-ray ARPES
- Coupling of electronic and structural degrees of freedom in vanadate superlattices
- First Principles Prediction of Topological Phases in Thin Films of Pyrochlore Iridates