Effects of reduced dimensionality, crystal field, electron-lattice coupling, and strain on the ground-state of a rare-earth nickelates monolayer
Rodrigo Chavez Zavaleta, Stepan Fomichev, Giniyat Khaliullin, Mona, Berciu

TL;DR
This study investigates how reduced dimensionality, crystal field effects, electron-lattice interactions, and strain influence the electronic and magnetic ground states of monolayer rare-earth nickelates, revealing conditions that favor cuprate-like superconductivity.
Contribution
The paper presents a comprehensive phase diagram of 2D nickelates using a two-band Hubbard model, highlighting the impact of strain and lattice distortions on orbital and magnetic orders, and suggesting pathways to realize cuprate-like superconductivity.
Findings
2D confinement favors planar $d_{x^2-y^2}$ orbital polarization.
Tensile strain enhances cuprate-like phases and orbital polarization.
Compressive stress favors ferromagnetic phases, including out-of-plane $d_{3z^2-r^2}$ FM.
Abstract
Motivated by the potential for cuprate-like superconductivity in monolayer rare-earth nickelate superlattices, we study the effects of crystal field splitting, lattice distortions and strain on the charge, magnetic, and orbital order in undoped two-dimensional (2D) nickelate monolayers NiO. We use a two-band Hubbard model to describe the low-energy electron states, with correlations controlled by a effective Hubbard and Hund's . The electrons are coupled to the octahedral breathing-mode lattice distortions. Treating the lattice semiclassically, we apply the Hartree-Fock approximation to obtain the phase diagram for the ground-state as a function of the various parameters. We find that the 2D confinement leads to strong preference for the planar orbital even in the absence of a crystal-field splitting. The polarization is enhanced by adding a…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Magnetic and transport properties of perovskites and related materials · Advanced Condensed Matter Physics
