We propose networking superconducting quantum circuits by transducing their excitations (typically 4-8 GHz) to 100-500 MHz photons for transmission via cryogenic coaxial cables. Counter-intuitively, this frequency downconversion reduces noise and transmission losses. We introduce a multi-octave asymmetrically threaded SQUID circuit (MOATS) capable of the required efficient, high-rate transduction. For a 100-meter cable with Qi=105 at 10 mK, our approach achieves single-photon fidelities of 0.962 at 200 MHz versus 0.772 at 8 GHz, and triples the lower bound on quantum channel capacity. This method enables kilometer-scale quantum links while maintaining high fidelities, combining improved performance with the practical advantages of flexible, compact coaxial cables.
@article{arxiv.2407.20943,
title = {Proposal for Superconducting Quantum Networks Using Multi-Octave Transduction to Lower Frequencies},
author = {Takuma Makihara and Wentao Jiang and Amir H. Safavi-Naeini},
journal= {arXiv preprint arXiv:2407.20943},
year = {2024}
}