Decoupling the effects of geometry and nature of strain in LaMnO$_3$: Interplay of dynamic correlations and uniaxial strain driving magnetic phase transitions
Florian P. Lindner, Markus Aichhorn, and Hrishit Banerjee

TL;DR
This study uses advanced ab-initio dynamical mean-field theory to explore how uniaxial strain uniquely influences magnetic phase transitions in LaMnO$_3$, revealing strain-dependent magnetic states driven by Jahn-Teller distortions.
Contribution
It demonstrates the distinct effects of uniaxial versus biaxial strain on LaMnO$_3$, emphasizing the importance of local dynamic correlations in predicting magnetic phases.
Findings
Uniaxial compressive strain induces a ferromagnetic insulating state.
Uniaxial tensile strain maintains an antiferromagnetic insulating state.
Strain type critically affects Jahn-Teller distortions and magnetic ordering.
Abstract
Recent years have seen tremendous progress in experimental techniques to create uniaxial strain. Motivated by these advances we investigate the effect of uniaxial strain on LaMnO employing ab-initio dynamical mean-field theory, and put it in contrast to biaxial strain that occurs in epitaxial systems. Projecting on the low-energy subspace of Mn states, and solving multi-impurity problems, our approach emphasizes on local dynamic correlations at Mn sites. At ambient pressures, LaMnO crystallizes in an orthorhombic unit cell, with in-plane lattice constants , and shows an A-type antiferromagnetic ground state. If we apply uniaxial compressive strain such that the in-plane lattice becomes square with lattice constant , we find a ferromagnetic insulating state. This is in sharp contrast to DFT results using various functionals like PBE, PBE+, and hybrid functionals…
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Taxonomy
TopicsMagnetic and transport properties of perovskites and related materials · Electronic and Structural Properties of Oxides · Advanced Condensed Matter Physics
