| Literature DB >> 29344742 |
Fei Zhang1,2, Biao Wu1,2,3, Guowei Zhou1,2, Zhi-Yong Quan4,5, Xiao-Hong Xu1,2.
Abstract
Recent theoretical studies indicated that the Curie temperature of perovskite manganite thin films can be increased by more than an order of magnitude by applying appropriate interfacial strain to control orbital ordering. In this work, we demonstrate that the regular intercalation of BaTiO3 layers between La0.67Sr0.33MnO3 layers effectively enhances ferromagnetic order and increases the Curie temperature of La0.67Sr0.33MnO3/BaTiO3 superlattices. The preferential orbital occupancy of eg(x 2 -y 2 ) in La0.67Sr0.33MnO3 layers induced by the tensile strain of BaTiO3 layers is identified by X-ray linear dichroism measurements. Our results reveal that controlling orbital ordering can effectively improve the Curie temperature of La0.67Sr0.33MnO3 films and that in-plane orbital occupancy is beneficial to the double exchange ferromagnetic coupling of thin-film samples. These findings create new opportunities for the design and control of magnetism in artificial structures and pave the way to a variety of novel magnetoelectronic applications that operate far above room temperature.Entities:
Keywords: High Curie temperature; La0.67Sr0.33MnO3/BaTiO3 superlattices; Orbital ordering; Tensile strain
Year: 2018 PMID: 29344742 PMCID: PMC5772345 DOI: 10.1186/s11671-018-2441-5
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1a RHEED intensity oscillations for the growth of the SL-3 sample. b XRD patterns for three different SL-n samples (n = 3, 4, 10). c Raman spectra for the SL-10 and LSMO(40) samples measured at 300 K. d AFM image of a BHF-etched, bare (001) SrTiO3 substrate. The inset shows the RHEED diffraction pattern of the SL-3 sample
Fig. 2a A cross-section HRTEM image of the SL-3 sample. The inset shows the corresponding FFT patterns. b The enlarged blue rectangle drawing with the interfaces between the LSMO and BTO layers indicated by red arrows
Fig. 3a Temperature-dependent magnetization of different SL-n samples (n = 3, 4, 10) and an ultrathin LSMO film with a 3-u.c. thickness. The magnetic field of 3000 Oe was applied in-plane along the SrTiO3 substrates. The inset shows cycle number dependence on the TC. b The corresponding magnetic hysteresis loops of four samples measured at 5 K
Fig. 4a, b Normalized XAS and XLD curves for samples SL-3 and SL-10 measured at room temperature. c Temperature-dependent resistivity measured in the temperature range from 20 to 365 K for (001)-oriented SL-n samples where n = 3 and 10. d Experimental configuration schematic diagram for XAS measurements with different X-ray incident angles. e Schematic representation of the electronic orbital occupancy of manganese eg in (001)-oriented LSMO/BTO superlattices. f Proposed double exchange coupling mechanism along the in-plane direction