Microscopic magnetization distribution of Bloch lines in a uniaxial magnet
arXiv:1907.00819 · doi:10.1063/1.5042678
Abstract
Bloch lines are formed to reduce the magnetostatic energy generated by the Bloch walls in uniaxial magnets. Recently, it is reported that Bloch lines play important roles in the emergence and helicity reversal of magnetic bubbles in Sc-substitute M-type hexaferrites (BaFeScMgO). Although Bloch lines have been discussed on the basis of micromagnetic simulations, the detailed structure was not observed directly. In this study, we investigated the microscopic structures of Bloch lines in BaFeScMgO uniaxial magnets. Differential-phase contrast scanning transmission microscopy (DPC-STEM) directly revealed that the edges of the Bloch walls were misaligned in the Bloch lines of BaFeScMgO. From the micromagnetic simulations based on the Monte-Carlo technique, we showed that the misaligned Bloch walls were caused by the dipole-dipole interactions in the hexaferrite. Our results will help to understand the microstructures of Bloch lines at nanometer scale.
18 pages, 5 figures
References in corpus (6)
- Lorentz microscopy and small-angle electron diffraction study of magnetic textures in LaSrMnO (0.15 0.30): the role of magnetic anisotropy
- Formation mechanisms of magnetic bubbles in an M-type hexaferrite: the role of chirality reversals at domain walls
- Formation process of skyrmion lattice domain boundaries: The role of grain boundaries
- Observation of magnetic domain and bubble structures in magnetoelectric SrCoFeO
- Electron diffraction covering a wide angular range from Bragg diffraction to small-angle diffraction
- Magnetic bubbles in FePd thin films near saturation