English

Pure circularly polarized light emission from waveguide microring resonators

Optics 2022-09-20 v1

Abstract

Circularly polarized light plays a key role in many applications including spectroscopy, microscopy, and control of atomic systems. Particularly in the latter, high polarization purity is often required. Integrated technologies for atomic control are progressing rapidly, but while integrated photonics can generate fields with pure linear polarization, integrated generation of highly pure circular polarization states has not been addressed. Here, we show that waveguide microring resonators, perturbed with azimuthal gratings and thereby emitting beams carrying optical orbital angular momentum, can generate radiated fields of high circular polarization purity. We achieve this in a passive device by taking advantage of symmetries of the structure and radiated modes, and directly utilizing both transverse and longitudinal field components of the guided modes. On the axis of emission and at maximum intensity, we measure an average polarization impurity of 1.0×1031.0 \times 10^{-3} in relative intensity across the resonance FWHM, and observe impurities below 10410^{-4} in this range. This constitutes a significant improvement over the 102{\sim}10^{-2} impurity demonstrated in previous work on integrated devices. Photonic structures allowing high circular polarization purity may assist in realizing high-fidelity control and measurement in atomic quantum systems.

Keywords

Cite

@article{arxiv.2207.02895,
  title  = {Pure circularly polarized light emission from waveguide microring resonators},
  author = {Leonardo Massai and Tom Schatteburg and Jonathan P. Home and Karan K. Mehta},
  journal= {arXiv preprint arXiv:2207.02895},
  year   = {2022}
}
R2 v1 2026-06-24T12:16:25.253Z