Laser-Controlled Real- and Reciprocal-Space Topology in Multiferroic Insulators.

Phys Rev Lett

Department of Physics, University of Basel, Klingelbergstrasse 82, CH-4056 Basel, Switzerland.

Published: January 2022

AI Article Synopsis

  • Multiferroic insulators have magnetoelectric coupling, allowing for control over magnetic order and excitations with laser fields, making them valuable for new data storage and computing methods.
  • Through careful management of energy from a high-frequency laser and its dissipation, the movement of single skyrmions—unique magnetic structures—can be adjusted in both speed and direction using laser amplitude and polarization.
  • The research also identifies a rapid topological phase transition in a laser-controlled skyrmion crystal and introduces a diagnostic method to detect this transition via magnonic thermal Hall conductivity.

Article Abstract

Magnetic materials in which it is possible to control the topology of their magnetic order in real space or the topology of their magnetic excitations in reciprocal space are highly sought after as platforms for alternative data storage and computing architectures. Here we show that multiferroic insulators, owing to their magnetoelectric coupling, offer a natural and advantageous way to address these two different topologies using laser fields. We demonstrate that via a delicate balance between the energy injection from a high-frequency laser and dissipation, single skyrmions-archetypical topological magnetic textures-can be set into motion with a velocity and propagation direction that can be tuned by the laser field amplitude and polarization, respectively. Moreover, we uncover an ultrafast Floquet magnonic topological phase transition in a laser-driven skyrmion crystal and we propose a new diagnostic tool to reveal it using the magnonic thermal Hall conductivity.

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Source
http://dx.doi.org/10.1103/PhysRevLett.128.037201DOI Listing

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