Floquet engineering of interlayer couplings: Tuning the magic angle of twisted bilayer graphene at the exit of a waveguide
arXiv:2001.04416 · doi:10.1103/PhysRevB.101.241408
Abstract
We introduce a new approach that allows one complete control over the modulation of the effective twist angle change in few-layer van der Waals heterostructures by irradiating them with longitudinal waves of light at the end of a waveguide. As a specific application, we consider twisted bilayer graphene and show that one can tune the magic angles to be either larger or smaller, allowing in-situ experimental control of the phase diagram of this and other related materials. A waveguide allows one to circumvent the free-space constraints on the absence of longitudinal electric field components of light. We propose to place twisted bilayer graphene at a specific location at the exit of a waveguide, such that it is subjected to purely longitudinal components of a transverse magnetic modes (TM) wave.
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- Floquet engineering of twisted double bilayer graphene
- Floquet-engineering topological transitions in a twisted transition metal dichalcogenide homobilayer
- Light-Tunable Surface State and Hybridization Gap in Magnetic Topological Insulator MnBiTe
- Phonon-mediated dimensional crossover in bilayer CrI3
- Engineering flat bands in twisted-bilayer graphene away from the magic angle with chiral optical cavities
- Valley-selective Floquet Chern Flat Bands in Twisted Multilayer Graphene
- Chiral limits and effect of light on the Hofstadter butterfly in twisted bilayer graphene
- Group theory study of the vibrational modes and magnetic order in the topological antiferromagnet MnBiTe
- Optotwistronic of bilayer graphene
- Tuning of Bilayer Graphene Heterostructure by Horizontally Incident Circular Polarized Light
- Optical Control of Slow Topological Electrons in Moiré Systems
- Tunneling in an anisotropic cubic Dirac semi-metal
- Light driven magnetic transitions in transition metal dichalcogenide heterobilayers
- Floquet Graphene Antidot Lattices
- Band structure and band topology in twisted homotrilayer transition metal dichalcogenides
- Floquet Fractional Chern Insulators and Competing Phases in Twisted Bilayer Graphene
- Topological Floquet Flat Bands in Irradiated Alternating Twist Multilayer Graphene
- Floquet Hofstadter butterfly in trilayer graphene with a twisted top layer
- Low-frequency and Moiré Floquet engineering: a review
- Intervalley Band Crossing and Transition of Fractional Chern Insulators in Floquet Twisted Bilayer MoTe
- Floquet engineering and non-equilibrium topological maps in twisted trilayer graphene