Probing single unit-cell resolved electronic structure modulations in oxide superlattices with standing-wave photoemission
arXiv:1901.03778 · doi:10.1103/PhysRevB.100.125119
Abstract
Control of structural couplings at the complex-oxide interfaces is a powerful platform for creating new ultrathin layers with electronic and magnetic properties unattainable in the bulk. However, with the capability to design and control the electronic structure of such buried layers and interfaces at a unit-cell level, a new challenge emerges to be able to probe these engineered emergent phenomena with depth-dependent atomic resolution as well as element- and orbital selectivity. Here, we utilize a combination of core-level and valence-band soft x-ray standing-wave photoemission spectroscopy, in conjunction with scanning transmission electron microscopy, to probe the depth-dependent and single-unit-cell resolved electronic structure of an isovalent manganite superlattice [Eu0.7Sr0.3MnO3/La0.7Sr0.3MnO3]x15 wherein the electronic-structural properties are intentionally modulated with depth via engineered oxygen octahedra rotations/tilts and A-site displacements. Our unit-cell resolved measurements reveal significant transformations in the local chemical and electronic valence-band states, which are consistent with the layer-resolved first-principles theoretical calculations, thus opening the door for future depth-resolved studies of a wide variety of hetero-engineered material systems.
References in corpus (8)
- Coexistence of Magnetic Order and Two-dimensional Superconductivity at LaAlO/SrTiO Interfaces
- Enhancement of ferroelectricity at metal/oxide interfaces
- First principles approach to the electronic structure of strongly correlated systems: combining GW and DMFT
- Suppression of Octahedral Tilts and Associated Changes of Electronic Properties at Epitaxial Oxide Heterostructure Interfaces
- Proving the Perdew-Burke-Ernzerhof density functional designed for metallic bulk and surface systems
- Interfacial Ferromagnetism in LaNiO3/CaMnO3 Superlattices
- Momentum-resolved electronic structure at a buried interface from soft x-ray standing-wave angle-resolved photoemission
- Interface properties and built-in potential profile of a LaCrO/SrTiO superlattice determined by standing-wave excited photoemission spectroscopy