paper

Fundamental difference in the electronic reconstruction of infinite-layer vs. perovskite neodymium nickelate films on SrTiO(001)

arXiv:2001.03762 · doi:10.1103/PhysRevB.102.020502

Abstract

Motivated by recent reports of superconductivity in Sr-doped NdNiO films on SrTiO(001) [Nature (London) 572, 624 (2019)], we explore the role of the polar interface on the structural and electronic properties of NdNiO/SrTiO(001) () by performing first-principles calculations including a Coulomb repulsion term. For infinite-layer nickelate films (), electronic reconstruction drives the surprising emergence of a two-dimensional electron gas (2DEG) at the interface involving a strong occupation of the Ti states. This effect is more pronounced than in LaAlO/SrTiO(001) and accompanied by a substantial reconstruction of the Fermi surface: a depletion of the self-doping Nd states and an enhanced Ni orbital polarization reaching up to at the surface, reflecting a single hole in the states, i.e., cuprate-like behavior. In contrast, no 2DEG forms for perovskite films () or if a single perovskite layer persists at the interface. We show that the topotactic reaction from the perovskite to the infinite-layer phase is confined to the nickelate film, whereas the SrTiO substrate remains intact.

5 pages, 4 figures