Structural, magnetic and dielectric properties in 3-5 based SrFeIrO thin films
arXiv:2008.13385 · doi:10.1088/1361-648X/abb2f5
Abstract
The structural, magnetic and dielectric properties have been investigated in 3-5 based double perovskite SrFeIrO thin films deposited by pulse laser deposition technique. To understand the effect of strain, epitaxial films are grown with varying thickness as well as on different substrates i.e., SrTiO (100) and LaAlO (100). The films with highest thickness are found to be more relaxed. Atomic force microscope images indicate all films are of good quality where grain sizes increase with increase in film thickness. X-ray absorption spectroscopy measurements indicate a Ir charge state in present films while providing a detailed picture of hybridization between Fe/Ir- and O- orbitals. The bulk antiferromagnetic transition is retained in films though the transition temperature shifts to higher temperature. Both dielectric constant () and loss () show change around the magnetic ordering temperatures of bulk SrFeIrO indicating a close relation between dielectric and magnetic behaviors. A Maxwell-Wagner type relaxation is found to follow over whole frequency range down to low temperature in present film. On changing the substrate i.e., LaAlO (100), the and () show almost similar behavior but shows a higher value which is due to an increased strain coming from high mismatch of lattice parameters.
To appear in JPCM, 22 pages, 13 figures
References in corpus (6)
- Novel Jeff = 1/2 Mott State Induced by Relativistic Spin-Orbit Coupling in Sr2IrO4
- Emergent properties hidden in plane view: Strong electronic correlations at oxide interfaces
- Dimensionality Driven Spin-Flop Transition in Layered Iridates
- Observation of Spin-glass-like Behavior in SrRuO3 Epitaxial Thin Films
- Temperature evolution of magnetic and transport behavior in 5\textit{d} Mott insulator SrIrO: Significance of magneto-structural coupling
- Magnetic and transport properties in pyrochlore iridates (YPr)IrO: The role of - exchange interaction and - orbital hybridization