| Literature DB >> 29403052 |
Zechao Wang1, Amir H Tavabi2, Lei Jin2, Ján Rusz3, Dmitry Tyutyunnikov3, Hanbo Jiang1, Yutaka Moritomo4, Joachim Mayer2,5, Rafal E Dunin-Borkowski2, Rong Yu1, Jing Zhu1, Xiaoyan Zhong6.
Abstract
In order to obtain a fundamental understanding of the interplay between charge, spin, orbital and lattice degrees of freedom in magnetic materials and to predict and control their physical properties1-3, experimental techniques are required that are capable of accessing local magnetic information with atomic-scale spatial resolution. Here, we show that a combination of electron energy-loss magnetic chiral dichroism 4 and chromatic-aberration-corrected transmission electron microscopy, which reduces the focal spread of inelastically scattered electrons by orders of magnitude when compared with the use of spherical aberration correction alone, can achieve atomic-scale imaging of magnetic circular dichroism and provide element-selective orbital and spin magnetic moments atomic plane by atomic plane. This unique capability, which we demonstrate for Sr2FeMoO6, opens the door to local atomic-level studies of spin configurations in a multitude of materials that exhibit different types of magnetic coupling, thereby contributing to a detailed understanding of the physical origins of magnetic properties of materials at the highest spatial resolution.Entities:
Year: 2018 PMID: 29403052 DOI: 10.1038/s41563-017-0010-4
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841