An integrated diamond nanophotonics platform for quantum optics

ORAL

Abstract

Solid-state quantum-emitters with long spin coherence times and strong interactions with single-photons could form the building blocks of a quantum network. Unique among solid-state systems, silicon-vacancy (SiV) color centers in diamond can address both of these challenges. First, we place single SiV centers in diamond nanophotonic crystal cavities and demonstrate a single-atom cooperativity greater than 10, realizing strong atom-photon interactions that are nonlinear at the single-photon level. Using this platform, we demonstrate entanglement generation and two-SiV interactions mediated by the cavity mode. Finally, we improve the spin coherence time to greater than 13 milliseconds by cooling the system to below 100 mK. These results enable the realization of gates between multiple atoms and optical photons in solid-state devices.

Presenters

  • Ruffin Evans

    • Physics, Harvard Univ

Authors

  • Ruffin Evans

    • Physics, Harvard Univ
  • Denis Sukachev

    • Physics, Harvard Univ
  • Christian Nguyen

    • Physics, Harvard Univ
  • Mihir Bhaskar

    • Physics, Harvard Univ
  • Alp Sipahigil

    • Physics, Harvard Univ
  • Bartholomeus Machielse

    • Physics, Harvard Univ
  • Grace Zhang

    • Department of Physics, Massachusetts Institute of Technology
    • Physics, Harvard Univ
    • Physics, Massachusetts Inst of Tech-MIT
  • Michael Burek

    • Physics, Harvard Univ
    • Harvard University
  • Marko Loncar

    • Harvard
    • Physics, Harvard Univ
    • Harvard University
  • Mikhail Lukin

    • Harvard University
    • Physics, Harvard Univ
    • Harvard Univ
    • Department of Physics, Harvard University
    • Physics, Harvard University