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Home > Press > First real-time observation of two-dimensional melting process: Researchers at Mainz University unveil new insights into magnetic vortex structures

Snapshots of the skyrmion lattice during the melting: an ordered skyrmion lattice on the left while the lattice structure has vanished on the right.

Credit
photo/©: Raphael Gruber
Snapshots of the skyrmion lattice during the melting: an ordered skyrmion lattice on the left while the lattice structure has vanished on the right. Credit photo/©: Raphael Gruber

Abstract:
What occurs during the melting process in two-dimensional systems at the microscopic level? Researchers at Johannes Gutenberg University Mainz (JGU) have explored this phenomenon in thin magnetic layers. "By utilizing skyrmions, i.e., miniature magnetic vortices, we were able to directly observe, for the first time, the transition of a two-dimensional ordered lattice structure into a disordered state at the microscopic level in real time," explained Raphael Gruber, who conducted the research within the working group of Professor Mathias Kläui at the JGU Institute of Physics. The findings, published in Nature Nanotechnology, are fundamental to a deeper understanding of melting processes in two dimensions and the behavior of skyrmions, which may revolutionize future data storage technologies.

First real-time observation of two-dimensional melting process: Researchers at Mainz University unveil new insights into magnetic vortex structures

Mainz, Germany | Posted on August 8th, 2025

Two-step melting of skyrmion lattices

While the concept of ice melting into water is familiar to most from a macroscopic perspective, the microscopic aspects of melting processes remain surprisingly poorly understood. "This phase transition is particularly intriguing in two-dimensional systems, where distinct phenomena emerge, differing from those observed in three-dimensional counterparts," elaborated Gruber. Initially, the researchers generated skyrmions, which are magnetic vortex structures analogous to microscopic hurricanes, by precisely calibrating temperature and magnetic fields. Owing to their remarkable stability, skyrmions can be regarded as individual entities. When densely packed, these magnetic vortices self-organize into a regular lattice structure. "Our primary question was: What happens when we revert this ordered state to a disordered one – in effect, when we melt the system?," said Gruber.

Employing a magneto-optical Kerr microscope, the researchers observed this process in real time for the first time. In contrast to three-dimensional lattice structures, such as ice, the two-dimensional skyrmion lattice melts in a distinctive two-step process. During the initial step, translational order is lost, with individual skyrmions remaining within a lattice, yet exhibiting irregular distances to their nearest neighbors. Only in the subsequent step is the orientation also compromised, culminating in the complete dissolution of the lattice – a melting process. "The elucidation of this melting transition was greatly facilitated by our collaboration with colleagues from the Center for Quantum Spintronics at the Norwegian University of Science and Technology," noted Professor Mathias Kläui.

Magnetic-field-induced melting: a novel approach

A distinctive aspect of this experimental design lies in the method used to induce melting. Typically, one would increase temperature. However, this approach is suboptimal in this context, as it would alter the conditions giving rise to the magnetic vortices. "Instead, we reduced the size of the skyrmions by modulating the magnetic field. This approach afforded the skyrmions greater mobility within the lattice, enabling movement," explained Gruber. "This strategy, akin to increasing temperature, leads to the lattice structure becoming progressively disordered, ultimately resulting in its complete dissolution." These findings pave the way for the potential application of skyrmions in future data storage technologies, offering significantly enhanced data density, rapid read/write access, and exceptional energy efficiency.

"This groundbreaking work was supported by the ERC Synergy Grant 3D MAGiC and, notably, by the TopDyn – Center for Dynamics and Topology research initiative, funded by the Rhineland-Palatinate Research Initiative. Topology and the dynamics of topological properties represent a central research focus for numerous scientists in Mainz, with this study contributing to a growing body of exciting publications in this field," said Kläui, Director of TopDyn.

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Kathrin Voigt
Johannes Gutenberg University Mainz

Office: +49 6131 39-27008

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Professor Dr. Mathias Kläui
Johannes Gutenberg University Mainz -- Institute of Physics

Copyright © Johannes Gutenberg University Mainz

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