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Winding feature and thermal evolution of the gapped Dirac magnons in CrI3

Weiliang Yao1,2,*, Matthew B. Stone3, Colin L. Sarkis3, Yi Li4, Ruixian Liu4, Xingye Lu4, and Pengcheng Dai1,2,†

  • *Contact author: weiliangyao@outlook.com
  • †Contact author: pdai@rice.edu

Phys. Rev. B 114, 134413 – Published 10 September, 2026

DOI: https://doi.org/10.1103/1rmh-8msr

Abstract

Two-dimensional honeycomb lattice ferromagnet chromium tri-iodide (CrI3) has attracted tremendous interest because it retains ferromagnetism down to the monolayer limit and hosts intriguing topological magnons. As a prototypical van der Waals magnet, CrI3 provides an ideal platform for exploring the interplay between reduced dimensionality, magnetic order, and nontrivial spin excitations. Here, using inelastic neutron scattering together with improved sample quality, we uncover the magnon winding feature around the K-point of the hexagonal Brillouin zone, a key signature of Dirac magnons. In addition, we find that the magnon energy follows a T2-renormalization behavior at elevated temperatures, consistent with magnon-magnon interactions. These results provide previously missing information on the magnon spectrum of CrI3 and further consolidate the topological nature of its spin excitations.

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