Single Photons for a Modular Ion Trap Quantum Network

POSTER

Abstract

Trapped atomic ions of different species are an ideal candidate for a modular quantum computing network partially due to low crosstalk between memory and communication qubits. A dual species Yb+/Ba+ ion trap is used to create entanglement between memory spin qubits and photonic qubits. The flying qubits are emitted via the 6S1/2 ↔ 6P1/2 transition in 138Ba+. It is advantageous to excite the atom on the 5D3/2 ↔ 6P1/2 transition at 650 nm, while still collecting 493 nm photons. This removes the excitation light as a source of noise and reduces double excitation errors. Most significantly, the D ↔ P transition allows us to use a slower excitation, such that instead of requiring a picosecond pulsed laser, we can gate a CW laser using AO modulators. We demonstrate a single photon source for quantum networking based on a trapped barium ion subject to pulsed excitation with a second-order coherence of g(2)(0) = (8.1 ± 2.3) × 10-5 without background subtraction, a state-of-the-art result for replicable single photon sources.

*This work is supported by the ARO with funding from the IARPA LogiQ program, the AFOSR, the ARO MURI on Modular Quantum Circuits, the AFOSR MURI on Quantum Transduction, and the ARL Center for Distributed Quantum Information.

Presenters

  • Sophia Scarano

    • Physics, Joint Quantum Institute at the University of Maryland

Authors

  • Sophia Scarano

    • Physics, Joint Quantum Institute at the University of Maryland
  • Martin Lichtman

    • Physics, Joint Quantum Institute at the University of Maryland
  • Clayton Crocker

    • Physics, Joint Quantum Institute at the University of Maryland
  • Ksenia Sosnova

    • Physics, Joint Quantum Institute at the University of Maryland
  • Allison Carter

    • Physics, Joint Quantum Institute at the University of Maryland
  • Christopher Roy Monroe

    • University of Maryland
    • Physics, Joint Quantum Institute at the University of Maryland