English

A photonic platform for donor spin qubits in silicon

Quantum Physics 2016-06-14 v1 Mesoscale and Nanoscale Physics

Abstract

Donor impurity spins in silicon-28 are highly competitive qubits for upcoming solid-state quantum technologies, yet a proven scalable strategy for multi-qubit devices remains conspicuously absent. These CMOS-compatible, atomically identical qubits offer significant advantages including 3-hour coherence (T2T_2) lifetimes, as well as simultaneous qubit initialization, manipulation and readout fidelities near  ⁣99.9%\sim\!99.9\%. These properties meet the requirements for many modern quantum error correction protocols, which are essential for constructing large-scale universal quantum technologies. However, a method of reliably coupling spatially-separated qubits, which crucially does not sacrifice qubit quality and is robust to manufacturing imperfections, has yet to be identified. Here we present such a platform for donor qubits in silicon, by exploiting optically-accessible `deep' chalcogen donors. We show that these donors emit highly uniform light, can be optically initialized, and offer long-lived spin qubit ground states without requiring milliKelvin temperatures. These combined properties make chalcogen donors uniquely suitable for incorporation into silicon photonic architectures for single-shot single-qubit readout as well as for multi-qubit coupling. This unlocks clear pathways for silicon-based quantum computing, spin to photon conversion, photonic memories, silicon-integrated triggered single photon sources and all-optical silicon switches.

Keywords

Cite

@article{arxiv.1606.03488,
  title  = {A photonic platform for donor spin qubits in silicon},
  author = {Kevin J. Morse and Rohan J. S. Abraham and Helge Riemann and Nikolai V. Abrosimov and Peter Becker and Hans-Joachim Pohl and Michael L. W. Thewalt and Stephanie Simmons},
  journal= {arXiv preprint arXiv:1606.03488},
  year   = {2016}
}

Comments

7 pages, 4 figures

R2 v1 2026-06-22T14:22:54.752Z