Electron holography observation of individual ferrimagnetic lattice planes

成果类型:
Article
署名作者:
Tanigaki, Toshiaki; Akashi, Tetsuya; Yoshida, Takaho; Harada, Ken; Ishizuka, Kazuo; Ichimura, Masahiko; Mitsuishi, Kazutaka; Tomioka, Yasuhide; Yu, Xiuzhen; Shindo, Daisuke; Tokura, Yoshinori; Murakami, Yasukazu; Shinada, Hiroyuki
署名单位:
Hitachi Limited; RIKEN; National Institute for Materials Science; National Institute of Advanced Industrial Science & Technology (AIST); Tohoku University; University of Tokyo; University of Tokyo; Kyushu University
刊物名称:
Nature
ISSN/ISSBN:
0028-6262
DOI:
10.1038/s41586-024-07673-w
发表日期:
2024-07-18
关键词:
magnetic circular-dichroism diffraction patterns aberration microscopy tem spectroscopy computation crystal SYSTEM FIELDS
摘要:
Atomic-scale observations of a specific local area would be considerably beneficial when exploring new fundamental materials and devices. The development of hardware-type aberration correction1,2 in electron microscopy has enabled local structural observations with atomic resolution3-5 as well as chemical and vibration analysis6-8. In magnetic imaging, however, atomic-level spin configurations are analysed by electron energy-loss spectroscopy by placing samples in strong magnetic fields9-11, which destroy the nature of the magnetic ordering in the samples. Although magnetic-field-free observations can visualize the intrinsic magnetic fields of an antiferromagnet by unit-cell averaging12, directly observing the magnetic field of an individual atomic layer of a non-uniform structure is challenging. Here we report that the magnetic fields of an individual lattice plane inside materials with a non-uniform structure can be observed under magnetic-field-free conditions by electron holography with a hardware-type aberration corrector assisted by post-digital aberration correction. The magnetic phases of the net magnetic moments of (111) lattice planes formed by opposite spin orderings between Fe3+ and Mo5+ in a ferrimagnetic double-perovskite oxide (Ba2FeMoO6) were successfully observed. This result opens the door to direct observations of the magnetic lattice in local areas, such as interfaces and grain boundaries, in many materials and devices. The magnetic fields of an individual lattice plane inside materials with a non-uniform structure were observed under magnetic-field-free conditions by electron holography.