4.8 Article

Transverse Kerker Effect for Dipole Sources

Journal

PHYSICAL REVIEW LETTERS
Volume 128, Issue 19, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.128.193901

Keywords

-

Funding

  1. Guangdong Introducing Innovative and Entrepreneurial Teams of The Pearl River Talent Recruitment Program [2019ZT08X340]
  2. National Natural Science Foundation of China [91750110]

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This study introduces the concept of transverse Kerker effect for dipole sources using a subwavelength dielectric antenna, which enables the redirection of radiation power along the dipole moments with suppression of perpendicular radiation. The analytical conditions for magnetic, electric, and chiral dipole emitters are derived, and microwave experiments validate the effect.
Transverse Kerker effect is known by the directional scattering of an electromagnetic plane wave perpendicular to the propagation direction with nearly suppression of both forward and backward scattering. Compared with plane waves, localized electromagnetic emitters are more general sources in modern nanophotonics. As a typical example, manipulating the emission direction of a quantum dot is of vital importance for the investigation of on-chip quantum optics and quantum information processing. Herein, we introduce the concept of transverse Kerker effect for dipole sources utilizing a subwavelength dielectric antenna, where the radiative power of magnetic, electric, and more general chiral dipole emitters can be dominantly redirected along their dipole moments with nearly suppression of radiation perpendicular to the dipole moments. This type of transverse Kerker effect is also associated with Purcell enhancement mediated by electromagnetic multipolar resonances induced in the dielectric antenna. Analytical conditions of transverse Kerker effect are derived for the magnetic, electric, and chiral dipole emitters. We further provide microwave experiment validation for the magnetic dipole emitter. Our results provide new physical mechanisms to manipulate the emission properties of localized electromagnetic source which might facilitate the on-chip quantum optics and beyond.

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