Interlayer Dzyaloshinskii-Moriya interactions induced via non-linear phononics in bilayer van der Waals materials
Ze-Xun Lin, Bowen Ma, Wesley Roberts, Martin Rodriguez-Vega, and, Gregory A. Fiete

TL;DR
This paper demonstrates how high-intensity light-driven nonlinear phononics can induce interlayer Dzyaloshinskii-Moriya interactions in bilayer van der Waals materials, enabling control over magnetic states and topological magnon bands.
Contribution
It introduces a theoretical framework for manipulating magnetic interactions via nonlinear phononics, specifically inducing Dzyaloshinskii-Moriya interactions in bilayer van der Waals systems.
Findings
Light-driven structural changes lower lattice symmetry.
Induction of interlayer Dzyaloshinskii-Moriya interactions.
Potential for engineering topological magnon bands.
Abstract
We theoretically study the impact of light-driven structural changes via nonlinear phononics on the magnetic order of untwisted bilayer van der Waals materials. We consider an illustrative example of the AA-stacked bilayer honeycomb lattice and show that high-intensity light in resonance with selected phonons induces large amplitude phonon displacements that modify the magnetic Hamiltonian of the system. We performed a group theory analysis to identify the vibrational modes of the honeycomb bilayer and the nonlinear couplings among them in the strongly driven regime. We find that the structural changes in the strongly driven regime lower the symmetry relative to the equilibrium lattice and produce changes in the magnetic interactions between the local moments. In particular, the lattice symmetry changes permit a non-zero interlayer Dzyaloshinskii-Moriya interaction that induces a…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsMechanical and Optical Resonators · Topological Materials and Phenomena · Quantum optics and atomic interactions
