| Literature DB >> 34764432 |
S Seki1,2,3,4, M Suzuki5,6, M Ishibashi7, R Takagi8,9,10,11, N D Khanh10, Y Shiota7, K Shibata12, W Koshibae10, Y Tokura8,10,13, T Ono14,15,16.
Abstract
Magnetic skyrmions are topologically stable swirling spin textures that appear as particle-like objects in two-dimensional (2D) systems. Here, utilizing scalar magnetic X-ray tomography under applied magnetic fields, we report the direct visualization of the three-dimensional (3D) shape of individual skyrmion strings in the room-temperature skyrmion-hosting non-centrosymmetric compound Mn1.4Pt0.9Pd0.1Sn. Through the tomographic reconstruction of the 3D distribution of the [001] magnetization component on the basis of transmission images taken at various angles, we identify a skyrmion string running through the entire thickness of the sample, as well as various defect structures, such as the interrupted and Y-shaped strings. The observed point defect may represent the Bloch point serving as an emergent magnetic monopole, as proposed theoretically. Our tomographic approach with a tunable magnetic field paves the way for direct visualization of the structural dynamics of individual skyrmion strings in 3D space, which will contribute to a better understanding of the creation, annihilation and transfer of these topological objects.Entities:
Year: 2021 PMID: 34764432 DOI: 10.1038/s41563-021-01141-w
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841