English

Quantum memory on a nanophotonic silicon chip

Quantum Physics 2026-04-02 v1 Other Condensed Matter

Abstract

Integrated photonic circuits offer great promise for quantum technologies. However, due to the rapid propagation of light, many envisioned applications require efficient on-chip quantum memories with a programmable delay, compact footprint, and high fidelity. Implementing this based on standard semiconductor processing technology is an outstanding challenge. Here, we realize such memories using erbium-doped silicon waveguides, fabricated as part of a multi-wafer project by a nanophotonic foundry. We demonstrate light storage with a 44.2(9) MHz44.2(9)\ \text{MHz} bandwidth and a programmable delay exceeding 1 μs1\ \mu \text{s} in a device with a footprint of only 1.5×102 mm21.5\times 10^{-2}\ \text{mm}^2, outperforming on-chip delay lines by many orders of magnitude. The phase of the read-out light field is preserved with a visibility of 91.3(30) %91.3(30)\ \%. The efficiency of 1.89(28)×1081.89(28)\times 10^{-8} can be improved in future devices through resonator enhancement and higher dopant concentrations. With this, the demonstrated approach will pave the way towards applications in photonic quantum computing based on scalable silicon processing technology.

Keywords

Cite

@article{arxiv.2604.00138,
  title  = {Quantum memory on a nanophotonic silicon chip},
  author = {Stephan Rinner and Jonas Schmitt and Kilian Sandholzer and Andreas Reiserer},
  journal= {arXiv preprint arXiv:2604.00138},
  year   = {2026}
}

Comments

11 pages, 4 figures

R2 v1 2026-07-01T11:47:04.126Z