| Literature DB >> 31332345 |
Nils Lundt1, Łukasz Dusanowski1, Evgeny Sedov2,3, Petr Stepanov4, Mikhail M Glazov5, Sebastian Klembt1, Martin Klaas1, Johannes Beierlein1, Ying Qin6, Sefaattin Tongay6, Maxime Richard4, Alexey V Kavokin7,8,9, Sven Höfling1,10, Christian Schneider11.
Abstract
Spin-orbit coupling is a fundamental mechanism that connects the spin of a charge carrier with its momentum. In the optical domain, an analogous synthetic spin-orbit coupling is accessible by engineering optical anisotropies in photonic materials. Both yield the possibility of creating devices that directly harness spin and polarization as information carriers. Atomically thin transition metal dichalcogenides promise intrinsic spin-valley Hall features for free carriers, excitons and photons. Here we demonstrate spin- and valley-selective propagation of exciton-polaritons in a monolayer of MoSe2 that is strongly coupled to a microcavity photon mode. In a wire-like device we trace the flow and helicity of exciton-polaritons expanding along its channel. By exciting a coherent superposition of K and K' tagged polaritons, we observe valley-selective expansion of the polariton cloud without either an external magnetic field or coherent Rayleigh scattering. The observed optical valley Hall effect occurs on a macroscopic scale, offering the potential for applications in spin-valley-locked photonic devices.Entities:
Year: 2019 PMID: 31332345 DOI: 10.1038/s41565-019-0492-0
Source DB: PubMed Journal: Nat Nanotechnol ISSN: 1748-3387 Impact factor: 39.213