In-plane anisotropic and ultra-low-loss polaritons in a natural van der Waals crystal.
basic_science · Level V
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- Record sourced from PubMed, PMID 30356185.
- Also identified by DOI 10.1038/s41586-018-0618-9.
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Abstract
Polaritons-hybrid light-matter excitations-enable nanoscale control of light. Particularly large polariton field confinement and long lifetimes can be found in graphene and materials consisting of two-dimensional layers bound by weak van der Waals forces<sup>1,2</sup> (vdW materials). These polaritons can be tuned by electric fields<sup>3,4</sup> or by material thickness<sup>5</sup>, leading to applications including nanolasers<sup>6</sup>, tunable infrared and terahertz detectors<sup>7</sup>, and molecular sensors<sup>8</sup>. Polaritons with anisotropic propagation along the surface of vdW materials have been predicted, caused by in-plane anisotropic structural and electronic properties<sup>9</sup>. In such materials, elliptic and hyperbolic in-plane polariton dispersion can be expected (for example, plasmon polaritons in black phosphorus<sup>9</sup>), the latter leading to an enhanced density of optical states and ray-like directional propagation along the surface. However, observation of anisotropic polariton propagation in natural materials has so far remained elusive. Here we report anisotropic polariton propagation along the surface of α-MoO<sub>3</sub>, a natural vdW material. By infrared nano-imaging and nano-spectroscopy of semiconducting α-MoO<sub>3</sub> flakes and disks, we visualize and verify phonon polaritons with elliptic and hyperbolic in-plane dispersion, and with wavelengths (up to 60 times smaller than the corresponding photon wavelengths) comparable to those of graphene plasmon polaritons and boron nitride phonon polaritons<sup>3-5</sup>. From signal oscillations in real-space images we measure polariton amplitude lifetimes of 8 picoseconds, which is more than ten times larger than that of graphene plasmon polaritons at room temperature<sup>10</sup>. They are also a factor of about four larger than the best values so far reported for phonon polaritons in isotopically engineered boron nitride<sup>11</sup> and for graphene plasmon polaritons at low temperatures<sup>12</sup>. In-plane anisotropic and ultra-low-loss polaritons in vdW materials could enable directional and strong light-matter interactions, nanoscale directional energy transfer and integrated flat optics in applications ranging from bio-sensing to quantum nanophotonics.