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Observation of 2D magnons in atomically thin CrI<sub>3</sub>

ORAL

Abstract

The collective excitations in magnetic materials, i.e. spin waves or magnons, may couple to inelastically scattered light. Despite the recent interest in two-dimensional (2D) van der Waals magnets, a direct observation of magnons in the monolayer limit is lacking. Here, we report the observation of 2D magnons in atomically thin CrI3 by magneto-optical Raman measurements. In monolayer and bilayer CrI3, we observe a sharp one-magnon feature at a zero-field energy of ~.3 meV which blue-shifts with a g factor of 2. However, at the metamagnetic transition from the layered antiferromagnetic to spin-polarized state in bilayer, the magnon exhibits a discontinuous red-shift. This confirms that the magnetic anisotropy is much larger than the interlayer exchange in CrI3. In addition, we observe a magnon feature at ~19 meV (~ 4.6 THz) for bilayer and thicker samples, significantly higher than Γ point magnons in standard ferromagnetic systems, i.e. YIG. Our results establish CrI3 as a potential candidate in miniaturized terahertz magnonic devices.

Presenters

  • John Cenker

    University of Washington, Physics, University of Washington

Authors

  • John Cenker

    University of Washington, Physics, University of Washington

  • Bevin Huang

    University of Washington, Physics, University of Washington

  • Nishchay Suri

    Physics, Carnegie Mellon University, Carnegie Mellon Univ

  • Pearl Thijssen

    Physics, University of Washington

  • Aaron Miller

    Physics, University of Washington

  • Michael McGuire

    Oak Ridge National Laboratory, Materials Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge National Lab, Materials Science Division, Oak Ridge National Laboratory

  • Di Xiao

    Physics, Carnegie Mellon University, Carnegie Mellon University, Carnegie Mellon Univ, Department of Physics, Carnegie Mellon University

  • Xiaodong Xu

    University of Washington, Physics, University of Washington