English

Nano-scale visualization of magnetic vortices in metal nanoparticles

Materials Science 2026-08-05 v1

Abstract

Magnetic vortices in individual nanoparticles are fundamental spin structures that govern the properties of next-generation magnetic devices and biomedical applications. However, directly imaging their complete structure, from the circulating in-plane magnetization to the nanometer scale out-of-plane core, remains challenging. Here, direct and quantitative visualization of magnetic vortex structures in individual cobalt nanoparticles is achieved by integrating a time-reversal methodology with tilt-scan-averaged differential phase contrast scanning transmission electron microscopy in a magnetic-field-free environment. This approach enables magnetic imaging in conjunction with atomic-scale analysis and reveals a correlation between particle geometry and internal demagnetizing fields. In addition, dynamic evolution of the vortex under in situ magnetic-field application is tracked, enabling unambiguous determination of the out-of-plane core polarity. This approach provides a powerful platform for correlating atomic-scale structure and magnetism within individual nanoparticles and for understanding the origins of nanoscale magnetic properties, thereby supporting the rational design of advanced nanomagnetic materials and devices.

Keywords

Cite

@article{arxiv.2608.04490,
  title  = {Nano-scale visualization of magnetic vortices in metal nanoparticles},
  author = {Satoko Toyama and Yoshiki O. Murakami and Ayako Nishikawa and Takehito Seki and Akihito Kumamoto and Yuichi Ikuhara and Naoya Shibata},
  journal= {arXiv preprint arXiv:2608.04490},
  year   = {2026}
}