arXiv · 2605.11588
Telecom quantum memory over one microsecond in nanophotonic lithium niobate
Abstract
Nanophotonic quantum memory is a vital component for scalable quantum information processing for quantum computing, networking, and sensing applications. We store single-photon-level telecom-band optical pulses for more than a microsecond using an atomic frequency comb in erbium-doped thin-film lithium niobate, well beyond what is practically feasible via propagation in even the best nanophotonic devices due to propagation losses. We verify the quantum nature of this storage by demonstrating the phase coherence and sub-single-photon noise upon retrieval. We also show the flexibility of our platform by storing up to 20 temporal modes and demonstrating an acceptance bandwidth up to 2.2 GHz. These results establish erbium-doped thin-film lithium niobate as a practical platform for on-chip quantum memory at telecom wavelengths, a key missing element for photonic quantum computing and quantum networking.
Explore related subjects
Keep this discovery
Priyash Barya, Daren Chen, Ashwith Prabhu, Laura Heller, Edmond Chow, Hansol Kim, Joshua Akin, Vasileios Niaouris, Jiefei Zhang, Alan M. Dibos, Pengjie Wang, Elizabeth A. Goldschmidt. 2026-05-12. Telecom quantum memory over one microsecond in nanophotonic lithium niobate. https://arxiv.org/abs/2605.11588
Cite the original work for its findings. Save a collection to share your selection of sources.