English

Temperature tunability of quantum emitter - cavity coupling in a photonic wire microcavity with shielded sidewall loss

Optics 2016-01-22 v1

Abstract

Recent technological advancements have allowed to implement in solid-state cavity-based devices phenomena of quantum nature such as vacuum Rabi splitting, controllable single photon emission and quantum entanglement. For a sufficiently strong coupling between a quantum emitter and a cavity, large quality factors (QQ) along with small modal volume (VeffV_{eff}) are essential. Here we show that by applying a 5nm Al coating to the sidewalls of a submicrometer-sized Fabry-P\'{e}rot microcavity, the cavity QQ can be temperature-tuned from few hundreds at room temperatures to 2×\times105^5 below 30~K. This is achieved by, first, a complete shielding of the sidewall loss with ideally reflecting lateral metallic mirrors and, secondly, a dramatic decrease of the cavity's axial loss for small-sized devices due to the largely off-axis wavevector within the multilayered structure. Our findings offer a novel temperature-tunable platform to study quantum electrodynamical phenomena of emitter-cavity coupling. We demonstrate that a Rabi splitting of 2g=24~GHz (0.142~nm) can be readily achieved at 40~K in a 0.8μ\mum-sized device, which has an Veff0.0845 μV_{eff}\approx0.0845~\mum3^3, comparable to best 2D photonic crystal (PhC) nanocavities.

Keywords

Cite

@article{arxiv.1601.05451,
  title  = {Temperature tunability of quantum emitter - cavity coupling in a photonic wire microcavity with shielded sidewall loss},
  author = {M. Bernard and M. Ghulinyan},
  journal= {arXiv preprint arXiv:1601.05451},
  year   = {2016}
}

Comments

6 pages, 6 figures