| Literature DB >> 36134002 |
Shikhar Misra1, Leigang Li1, Xingyao Gao1, Jie Jian1, Zhimin Qi1, Dmitry Zemlyanov2, Haiyan Wang1,3.
Abstract
Morphological control in oxide nanocomposites presents enormous opportunities for tailoring the physical properties. Here, we demonstrate the strong tunability of the magnetic and optical properties of Bi-based layered supercell (LSC) multiferroic structures, i.e., BiAl1-x Mn x O3, by varying the Al : Mn molar ratio. The microstructure of the LSC structure evolves from a supercell structure to Al-rich pillars in the supercell structure as the Al molar ratio increases. The LSC structures present excellent multiferroic properties with preferred in-plane magnetic anisotropy, a tunable band gap and anisotropic dielectric permittivity, all attributed to the microstructure evolution and their anisotropic microstructure. Three different strain relaxation mechanisms are identified that are active during thin film growth. This study provides opportunities for microstructure and physical property tuning which can also be explored in other Bi-based LSC materials with tailorable multiferroic and optical properties. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 36134002 PMCID: PMC9417154 DOI: 10.1039/c9na00566h
Source DB: PubMed Journal: Nanoscale Adv ISSN: 2516-0230
Fig. 1(a) XRD θ–2θ scans of the BA1−MO thin films, indicating the highly (001) textured growth for all the compositions deposited on the SrTiO3 (001) substrate and (b) increase in the out-of-plane d-spacing of the layered supercell structures with the increase in the Mn content.
Fig. 2Microstructural characterization. (a) Cross-sectional STEM HAADF image of the BA1−MO (x = 0.8) thin film obtained along the STO[001] zone axis. (b) HR-STEM image of the marked region in (a). The inset shows the selected area electron diffraction (SAED) pattern. (c) HR-STEM image of the marked region in (a) showing the Al-rich region along with two-atomic layer thick and three-atomic layer thick Bi-based slabs. (d)–(h) Cross-sectional STEM image of a BA1−MO (x = 0.67) thin film with the corresponding EDS maps.
Fig. 3Cross-sectional STEM image of the BA1−MO thin film. (a) x = 0.55 and (c) x = 0.4 and their corresponding elemental EDS maps, (b) and (d).
Fig. 4Tunable optical properties. (a) Real part of the in-plane permittivity and (b) out-of-plane permittivity for the four different film compositions. (c) Transmittance spectra and the (d) corresponding band gaps calculated using the Tauc plot for the four different film compositions.
Fig. 5Multiferroic properties. (a) In-plane (IP) and (b) out-of-plane (OP) magnetization hysteresis (M–H) loops for the four different film compositions. (c) IP and OP coercive field along with (d) saturation magnetization as a function of the increasing Mn%. (e) PFM vertical phase map of BA1−MO (x = 0.8) obtained after poling with +5 V (bright contrast) and −5 V (dark contrast) over an area of 5 × 5 μm2. (f) Phase and amplitude switching behavior as a function of tip bias.