Orbital selective switching of ferromagnetism in an oxide quasi two-dimensional electron gas

Published in npj quantum materials, 2022-04-08

Recommended citation: Di Capua, R., Verma, M., Radovic, M. et al. Orbital selective switching of ferromagnetism in an oxide quasi two-dimensional electron gas. npj Quantum Mater. 7, 41 (2022). Orbital selective switching of ferromagnetism in an oxide quasi two-dimensional electron gas

Multi-orbital physics in quasi-two-dimensional electron gases (q2DEGs) triggers intriguing phenomena not observed in bulk materials, such as unconventional superconductivity and magnetism. Here, we investigate the mechanism of orbital selective switching of the spin-polarization in the oxide q2DEG formed at the (001) interface between the LaAlO3, EuTiO3 and SrTiO3 band insulators. By using density functional theory calculations, transport, magnetic and x-ray spectroscopy measurements, we find that the filling of titanium-bands with 3dxz/3dyz orbital character in the EuTiO3 layer and at the interface with SrTiO3 induces an antiferromagnetic to ferromagnetic switching of the exchange interaction between Eu-4f7 magnetic moments. The results explain the observation of the carrier density-dependent ferromagnetic correlations and anomalous Hall effect in this q2DEG, and demonstrate how combined theoretical and experimental approaches can lead to a deeper understanding of emerging electronic phases and serve as a guide for the materials design of advanced electronic applications.

Recommended citation: Di Capua, R., Verma, M., Radovic, M. et al. Orbital selective switching of ferromagnetism in an oxide quasi two-dimensional electron gas. [npj Quantum Mater. 7, 41 (2022).] (https://doi.org/10.1038/s41535-022-00448-4)