Back to Search Start Over

Probing single-unit-cell resolved electronic structure modulations in oxide superlattices with standing-wave photoemission

Authors :
Alexander X. Gray
Ravini U. Chandrasena
Steven J. May
R. dos Reis
Eun Ju Moon
James M. Rondinelli
Vladimir N. Strocov
Mingqiang Gu
Marius-Adrian Husanu
Jim Ciston
Weibing Yang
Arian Arab
Eric M. Gullikson
Slavomír Nemšák
Source :
Physical Review B, vol 100, iss 12
Publication Year :
2019
Publisher :
American Physical Society (APS), 2019.

Abstract

Author(s): Yang, W; Chandrasena, RU; Gu, M; Dos Reis, RMS; Moon, EJ; Arab, A; Husanu, MA; Nemsak, S; Gullikson, EM; Ciston, J; Strocov, VN; Rondinelli, JM; May, SJ; Gray, AX | Abstract: Control of structural coupling at complex-oxide interfaces is a powerful platform for creating 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]×15 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 heteroengineered material systems.

Details

ISSN :
24699969 and 24699950
Volume :
100
Database :
OpenAIRE
Journal :
Physical Review B
Accession number :
edsair.doi.dedup.....e9196338c71f5202129aa8256923a1f7
Full Text :
https://doi.org/10.1103/physrevb.100.125119