A room temperature single-photon source based on strongly interacting Rydberg atoms
Abstract
Tailored quantum states of light can be created via a transfer of collective quantum states of matter to light modes. Such collective quantum states emerge in interacting many-body systems if thermal fluctuations are overcome by sufficient interaction strengths. Therefore, typically ultracold temperatures or strong confinement are required. We show that the exaggerated interactions between giant Rydberg atoms allow for collective quantum states even above room temperature. The emerging Rydberg blockade allows then only for a single Rydberg excitation. We experimentally implement a four-wave mixing scheme to demonstrate an on-demand single-photon source. The combination of glass cell technology, identical atoms, and operation around room temperature promises scalability and integrability. This approach has the potential for various applications in quantum information processing and communication.
Cite
@article{arxiv.1806.02120,
title = {A room temperature single-photon source based on strongly interacting Rydberg atoms},
author = {F. Ripka and H. Kübler and R. Löw and T. Pfau},
journal= {arXiv preprint arXiv:1806.02120},
year = {2018}
}
Comments
12 pages, 5 figures total, supplementary information