English

Engineering multifunctionality at oxide interfaces by multimode coupling

Materials Science 2022-02-07 v1

Abstract

We employed first-principles density functional theory calculations guided by group-theoretical analysis and demonstrated the control of insulator-metal-insulator transition, polarization and two sublattice magnetization in (LaFeO3_3)1_1/(CaFeO3_3)1_1 superlattice via. multi structural mode coupling i.e., 'multimode coupling'. We have discovered a polar A-type charge disproportionation mode, QACD_{ACD} (analogous to the A-type antiferromagnetic ordering), and found that it couples with the trilinear coupling, QTriQ_{Tri} mode (common in PnmaPnma perovskite oxides and involves three structural modes), and lowers the symmetry further. By tuning the strength of the coupling between the participating modes, the polar metallic phase, polar zero bandgap semiconducting, and polar insulating phases can be obtained. Here, QTriQ_{Tri} switches the polarization direction, whereas, QACD_{ACD} can trigger insulator-metal-insulator transition along with the polarization switching. The mechanism is true for any transition metal superlattices constituted with PnmaPnma building blocks and with partially filled ege_g or t2gt_{2g} electron(s) at the transition metal sites.

Keywords

Cite

@article{arxiv.2202.02027,
  title  = {Engineering multifunctionality at oxide interfaces by multimode coupling},
  author = {Monirul Shaikh and Saurabh Ghosh},
  journal= {arXiv preprint arXiv:2202.02027},
  year   = {2022}
}
R2 v1 2026-06-24T09:19:30.670Z