Depth-Resolved Composition and Electronic Structure of Buried Layers and Interfaces in a LaNiO$_3$/SrTiO$_3$ Superlattice from Soft- and Hard- X-ray Standing-Wave Angle-Resolved Photoemission
D. Eiteneer, G. K. P\'alsson, S. Nem\v{s}\'ak, A. X. Gray, A. M., Kaiser, J. Son, J. LeBeau, G. Conti, A. A. Greer, A. Keqi, A. Rattanachata,, A. Y. Saw, A. Bostwick, E. Rotenberg, E. M. Gullikson, S. Ueda, K. Kobayashi,, A. Janotti, C. G. Van de Walle, A. Blanca-Romero

TL;DR
This study uses advanced x-ray photoemission techniques combined with theoretical calculations to analyze the electronic structure of a LaNiO$_3$/SrTiO$_3$ superlattice, revealing interface-specific electronic behaviors relevant to its metal-insulator transition.
Contribution
It introduces a comprehensive approach combining soft- and hard-x-ray standing-wave ARPES with DFT calculations to probe buried interfaces in complex oxide superlattices.
Findings
Interface-specific electronic structure changes identified
Momentum-resolved Ni 3d states characterized near Fermi level
Validation of experimental approach through comparison with related superlattice studies
Abstract
LaNiO (LNO) is an intriguing member of the rare-earth nickelates in exhibiting a metal-insulator transition for a critical film thickness of about 4 unit cells [Son et al., Appl. Phys. Lett. 96, 062114 (2010)]; however, such thin films also show a transition to a metallic state in superlattices with SrTiO (STO) [Son et al., Appl. Phys. Lett. 97, 202109 (2010)]. In order to better understand this transition, we have studied a strained LNO/STO superlattice with 10 repeats of [4 unit-cell LNO/3 unit-cell STO] grown on an (LaAlO)(SrAlTaO) substrate using soft x-ray standing-wave-excited angle-resolved photoemission (SWARPES), together with soft- and hard- x-ray photoemission measurements of core levels and densities-of-states valence spectra. The experimental results are compared with state-of-the-art density functional theory (DFT) calculations of band…
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