Emergence of interfacial magnetism in strongly-correlated nickelate-titanate superlattices
arXiv:2403.00728 · doi:10.1002/adma.202310668
Abstract
Strongly-correlated transition-metal oxides are widely known for their various exotic phenomena. This is exemplified by rare-earth nickelates such as LaNiO, which possess intimate interconnections between their electronic, spin, and lattice degrees of freedom. Their properties can be further enhanced by pairing them in hybrid heterostructures, which can lead to hidden phases and emergent phenomena. An important example is the LaNiO/LaTiO superlattice, where an interlayer electron transfer has been observed from LaTiO into LaNiO leading to a high-spin state. However, macroscopic emergence of magnetic order associated with this high-spin state has so far not been observed. Here, by using muon spin rotation, x-ray absorption, and resonant inelastic x-ray scattering, we present direct evidence of an emergent antiferromagnetic order with high magnon energy and exchange interactions at the LaNiO/LaTiO interface. As the magnetism is purely interfacial, a single LaNiO/LaTiO interface can essentially behave as an atomically thin strongly-correlated quasi-two-dimensional antiferromagnet, potentially allowing its technological utilisation in advanced spintronic devices. Furthermore, its strong quasi-two-dimensional magnetic correlations, orbitally-polarized planar ligand holes, and layered superlattice design make its electronic, magnetic, and lattice configurations resemble the precursor states of superconducting cuprates and nickelates, but with an spin state instead.
41 pages, 14 figures
References in corpus (12)
- Magnetic effects at the interface between nonmagnetic oxides
- Emergent Phenomena Induced by Spin-Orbit Coupling at Surfaces and Interfaces
- Superconductivity near 80 Kelvin in single crystals of La3Ni2O7 under pressure
- Orbital order and possible superconductivity in LaNiO3/LaMO3 superlattices
- Ground state oxygen holes and the metal-insulator transition in the negative charge transfer rare-earth nickelates
- Hybridization-controlled charge transfer and induced magnetism at correlated oxide interfaces
- Bond disproportionation and dynamical charge fluctuations in the perovskite rare earth nickelates
- Determination of the orbital moment and crystal field splitting in LaTiO
- A magnetic analog of the isotope effect in cuprates
- Paramagnons and high-temperature superconductivity in mercury-based cuprates
- Observation of an antiferromagnetic quantum critical point in high-purity LaNiO
- Sudden collapse of magnetic order in oxygen deficient nickelate films