Microwave-optical coupling via Rydberg excitons in cuprous oxide
Abstract
We report exciton-mediated coupling between microwave and optical fields in cuprous oxide (CuO) at low temperatures. Rydberg excitonic states with principal quantum number up to were observed at 4~K using both one-photon (absorption) and two-photon (second harmonic generation) spectroscopy. Near resonance with an excitonic state, the addition of a microwave field significantly changed the absorption lineshape, and added sidebands at the microwave frequency to the coherent second harmonic. Both effects showed a complex dependence on and angular momentum, . All of these features are in semi-quantitative agreement with a model based on intraband electric dipole transitions between Rydberg exciton states. With a simple microwave antenna we already reach a regime where the microwave coupling (Rabi frequency) is comparable to the nonradiatively broadened linewidth of the Rydberg excitons. The results provide a new way to manipulate excitonic states, and open up the possibility of a cryogenic microwave to optical transducer based on Rydberg excitons.
Cite
@article{arxiv.2109.09614,
title = {Microwave-optical coupling via Rydberg excitons in cuprous oxide},
author = {Liam A. P. Gallagher and Joshua P. Rogers and Jon D. Pritchett and Rajan A. Mistry and Danielle Pizzey and Charles S. Adams and Matthew P. A Jones and Peter Grünwald and Valentin Walther and Chris Hodges and Wolfgang Langbein and Stephen A. Lynch},
journal= {arXiv preprint arXiv:2109.09614},
year = {2022}
}
Comments
18 pages, 8 figures