Effects of dilution in a two-dimensional topological magnon insulator

Miguel S. Oliveira*, T. V.C. Antão, Eduardo V. Castro, Nuno Peres

*Corresponding author for this work

Research output: Contribution to journalJournal articleResearchpeer-review

Abstract

We study the effect of diluting a two-dimensional ferromagnetic insulator hosting a topological phase in the clean limit. By considering the ferromagnetic Heisenberg model in the honeycomb lattice with second-nearest-neighbor Dzyaloshinskii-Moriya interaction, and working in the linear spin-wave approximation, we establish the topological phase diagram as a function of the fraction p of diluted magnetic atoms. The topological phase with Chern number C=1 is robust up to a moderate dilution p1∗, while above a higher dilution p2∗>p1∗ the system becomes trivial. Interestingly, both p1∗ and p2∗ are below the classical percolation threshold pc for the honeycomb lattice, which gives physical significance to the obtained phases. In the topological phase for p<p1∗, the magnon spectrum is gapless but the states filling the topological, clean-limit gap region are spatially localized. For energies above and below the region of localized states, there are windows composed of extended states. This is at odds with standard Chern insulators, where extended states occur only at single energies. For dilutions p1∗<p<p2∗, the two regions of extended states merge and a continuum of delocalized states appears around the middle of the magnon spectrum. For this range of dilutions the Chern number seems to be ill defined in the thermodynamic limit, and only for p>p2∗, when all states become localized, the system shows C=0 as expected for a trivial phase. Replacing magnetic with nonmagnetic atoms in a system hosting a magnon Chern insulator in the clean limit puts all the three phases within experimental reach.

Original languageEnglish
Article number014204
JournalPhysical Review B
Volume111
Issue number1
Number of pages10
ISSN2469-9950
DOIs
Publication statusPublished - 1. Jan 2025

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© 2025 American Physical Society.

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