Tuning the Magnetic Properties of Kitaev Materials via the Antiferromagnetic Proximity Effect: Novel Phases and Application to an α -RuCl3/MnPS3 Bilayer
Abstract
Abstract In recent years, the increasing level of control over van der Waals (vdW) heterostructures has opened new routes to tune the properties of quantum materials. Motivated by these developments, we examine the potential consequences of interfacing a Kitaev honeycomb magnet, such as α-RuCl3, with a nearly lattice-matched vdW antiferromagnet. By combining perturbation theory, exact diagonalization, and a classical energy-minimization method, we show that an effective staggered magnetic field originating from the vdW antiferromagnet can drive a monolayer of a Kitaev material into various novel phases, including an antichiral Kitaev spin liquid, a nonmagnetic nematic phase, and different types of skyrmion crystals. We then apply first-principles simulations to assess the prospect of concretely realizing this setup in a heterobilayer of α-RuCl3 and the easy-axis antiferromagnet MnPS3.
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Authors: Pedro M. Cônsoli, Ezra Day-Roberts, Johannes Knolle, A. S. BOTANA, Onur Erten
Institutions: Imperial College London, Arizona State University, Technical University of Munich, Munich Center for Quantum Science and Technology