Effect of epitaxial strain on the electronic structure and magnetic correlations in infinite-layer (Nd,Sr)NiO$_2$
I. Leonov, S. Y. Savrasov

TL;DR
This study uses density functional+dynamical mean-field theory to analyze how epitaxial strain and Sr doping influence the electronic structure and magnetic correlations in infinite-layer (Nd,Sr)NiO$_2$, revealing orbital-dependent correlations and magnetic frustration.
Contribution
It provides a detailed theoretical analysis of strain and doping effects on (Nd,Sr)NiO$_2$, highlighting the role of orbital correlations and magnetic frustration, which was not previously understood.
Findings
Sr doping induces a Lifshitz transition and magnetic correlation reconstruction.
Magnetic order is suppressed near Sr x=0.2 due to frustration.
Epitaxial strain controls the bandwidth and electron correlations in Ni $x^2-y^2$ orbitals.
Abstract
We present a theoretical study of the effect of electron-electron interactions and Sr doping on the electronic structure of infinite-layer (Nd,Sr)NiO using the density functional+dynamical mean-field theory approach. In particular, we explore the impact of epitaxial compressive strain that experience (Nd,Sr)NiO films on the electronic properties, magnetic correlations, and exchange couplings. Our results reveal the crucial importance of orbital-dependent correlation effects in the Ni shell of Sr-doped NdNiO. Upon doping with Sr, it undergoes a Lifshitz transition which is accompanied by a reconstruction of magnetic correlations: For Sr (Nd,Sr)NiO adopts the N\'eel antiferromagnetic (AFM) order, while for the -type AFM sets in the unstrained (Nd,Sr)NiO, with a highly frustrated region at , all within DFT+DMFT at…
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Taxonomy
TopicsMagnetic and transport properties of perovskites and related materials · Transition Metal Oxide Nanomaterials
