Cold atomic ensembles as quantum antennas for distributed networks of single-atom arrays
Abstract
Single neutral atoms in optical tweezer arrays offer a promising platform for high-fidelity quantum computing at local nodes. Nonetheless, creating entanglement between remote nodes in a distributed quantum network remains challenging due to inherently weak atom-light coupling. Here, we design a distributed quantum network architecture in which cold atomic ensembles with strong atom-light interactions act as quantum antennas, interfacing single-atom qubits with flying photons to enable high-efficiency atom-photon entanglement generation -- analogous to the role of antennas in classical communication. Using realistic experimental parameters, we estimate an efficiency of for generating atom-photon entanglement, a probability of for generating atom-atom entanglement, and a remote entanglement generation rate of kHz. This performance not only surpasses that of state-of-the-art cavity-based or high-numerical-aperture-lens-based architectures but also offers notable advantages in simplicity, tunability, and experimental accessibility. Our scheme also integrates a long-lived quantum memory, providing a storage advantage for quantum repeater design. By leveraging the complementary strengths of single-atom qubits for local operations and cold atomic ensembles for networking, this approach paves the way for scalable distributed quantum computing and sensing.
Keywords
Cite
@article{arxiv.2508.08439,
title = {Cold atomic ensembles as quantum antennas for distributed networks of single-atom arrays},
author = {Xiaoshui Lin and Yefeng Mei and Chuanwei Zhang},
journal= {arXiv preprint arXiv:2508.08439},
year = {2025}
}
Comments
7+11 pages, 2+3 figures