Optical nanoimaging of highly-confined phonon polaritons in atomically-thin nanoribbons of α-MoO 3

  • Zeng Y
  • Sun T
  • Chen R
  • et al.
7Citations
Citations of this article
10Readers
Mendeley users who have this article in their library.
Get full text

Abstract

Phonon polaritons (PhPs), collective modes hybridizing photons with lattice vibrations in polar insulators, enable nanoscale control of light. In recent years, the exploration of in-plane anisotropic PhPs has yielded new levels of confinement and directional manipulation of nano-light. However, the investigation of in-plane anisotropic PhPs at the atomic layer limit is still elusive. Here, we report the optical nanoimaging of highly-confined phonon polaritons in atomically-thin nanoribbons of α-MoO 3 (5 atomic layers). We show that narrow α-MoO 3 nanoribbons as thin as a few atomic layers can support anisotropic PhPs modes with a high confinement ratio (∼133 times smaller wavelength than that of light). The anisotropic PhPs interference fringe patterns in atomic layers are tunable depending on the PhP wavelength via changing the illumination frequency. Moreover, spatial control over the PhPs interference patterns is also achieved by varying the nanostructures’ shape or nanoribbon width of atomically-thin α-MoO 3 . Our work may serve as an empirical reference point for other anisotropic PhPs that approach the thickness limit and pave the way for applications such as atomically integrated nano-photonics and sensing.

Cite

CITATION STYLE

APA

Zeng, Y., Sun, T., Chen, R., Ma, W., Yan, Q., Lu, D., … Li, P. (2023). Optical nanoimaging of highly-confined phonon polaritons in atomically-thin nanoribbons of α-MoO 3. Optics Express, 31(17), 28010. https://doi.org/10.1364/oe.492369

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free