paper

Controlling Knot Topology in Magnetic Hopfions via Spin-orbit Torque

arXiv:2511.23027

Abstract

Knots, characterized by topological invariants called the Hopf number , arise from the intertwining of strings and exhibit diverse configurations. The knot structures have recently been observed in condensed matters, as examplified by a magnetic hopfion, sparking interest in controlling their topology. Here, we show that spin-orbit torque (SOT) enables dynamic manipulation of the Hopf number of magnetic hopfions. We investigate the SOT-driven evolution of hopfions, revealing the splitting of a high- hopfion into multiple lower- ones, a process that can be quantified by an effective tension picture. Comparative analysis across different uncovers a hierarchy of instabilities that dictates these dynamical topological transitions. These findings establish SOT as a powerful tool for controlling hopfion topology, paving the way for potential applications in topological memory devices.

6 pages, 3 figures, We also submit an extended version entitled "Nonequilibrium dynamics of magnetic hopfions driven by spin-orbit torque" to Physical Review B as Joint Submission