Magnonic Floquet Quantum Spin Hall Insulator in Bilayer Collinear Antiferromagnets

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Abstract

We study irradiated two-dimensional insulating bilayer honeycomb ferromagnets and antiferromagnets coupled antiferromagnetically with a zero net magnetization. The former is realized in the recently synthesized bilayer honeycomb chromium triiodide CrI 3 . In both systems, we show that circularly-polarized electric field breaks time-reversal symmetry and induces a dynamical Dzyaloshinskii-Moriya interaction in each honeycomb layer. However, the resulting bilayer antiferromagnetic system still preserves a combination of time-reversal and space-inversion (PT) symmetry. We show that the magnon topology of the bilayer antiferromagnetic system is characterized by a Z 2 Floquet topological invariant. Therefore, the system realizes a magnonic Floquet quantum spin Hall insulator with spin filtered magnon edge states. This leads to a non-vanishing Floquet magnon spin Nernst effect, whereas the Floquet magnon thermal Hall effect vanishes due to PT symmetry. We study the rich Z 2 Floquet topological magnon phase diagram of the system as a function of the light amplitudes and polarizations. We further discuss the great impact of the results on future experimental realizations.

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Owerre, S. A. (2019). Magnonic Floquet Quantum Spin Hall Insulator in Bilayer Collinear Antiferromagnets. Scientific Reports, 9(1). https://doi.org/10.1038/s41598-019-43702-9

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