Imaging Anisotropic Waveguide Exciton Polaritons in Tin Sulfide
arXiv:2301.11381 · doi:10.1021/acs.nanolett.1c03833
Abstract
In recent years, novel materials supporting in-plane anisotropic polaritons have attracted a lot of research interest due to their capability of shaping nanoscale field distributions and controlling nanophotonic energy flows. Here we report a nano-optical imaging study of waveguide exciton polaritons (EPs) in tin sulfide (SnS) in the near-infrared (IR) region using the scattering-type scanning near-field optical microscopy (s-SNOM). With s-SNOM, we mapped in real space the propagative EPs in SnS, which show sensitive dependence on the excitation energy and sample thickness. Moreover, we found that both the polariton wavelength and propagation length are anisotropic in the sample plane. In particular, in a narrow spectral range from 1.32 to 1.44 eV, the EPs demonstrate quasi-one-dimensional propagation, which is rarely seen in natural polaritonic materials. Further analysis indicates that the observed polariton anisotropy is originated from the different optical bandgaps and exciton binding energies along the two principal crystal axes of SnS.
21 pages
References in corpus (11)
- Strong light-matter coupling in two-dimensional atomic crystals
- Observation of topological polaritons and photonic magic angles in twisted van der Waals bi-layers
- Infrared hyperbolic metasurface based on nanostructured van der Waals materials
- Configure polaritons in twisted -MoO3
- Imaging exciton-polariton transport in MoSe2 waveguides
- Black Phosphorus Plasmonics: Anisotropic Elliptical Propagation and Nonlocality-Induced Canalization
- Hybridized hyperbolic surface phonon polaritons at α-MoO3 and polar dielectric interfaces
- The Optical Properties and Plasmonics of Anisotropic 2-Dimensional Materials
- Enabling propagation of anisotropic polaritons along forbidden directions via a topological transition
- Anisotropy and controllable band structure in supra-wavelength polaritonic metasurfaces
- Strong exciton-photon coupling with colloidal quantum dots in a tuneable microcavity