Towards Long Range Spin-Spin Interactions via Mechanical Resonators

POSTER

Abstract

Nitrogen vacancy centers (NVs) are promising candidates for quantum computation, with room temperature optical spin read-out and initialization, microwave manipulability, and weak coupling to the environment resulting in long spin coherence times. The major outstanding challenge involves engineering coherent interactions between the spin states of spatially separated NV centers. To address this challenge, we are working towards the experimental realization of mechanical spin transducers. We have successfully fabricated magnetized high quality factor (Q\textgreater 10$^{\mathrm{5}})$, doubly-clamped silicon nitride mechanical resonators integrated close to a diamond surface, and report on experimental progress towards achieving the coherent coupling of the motion of these resonators with the electronic spin states of individual NV centers under cryogenic conditions. Such a system is expected to provide a scalable platform for mediating effective interactions between isolated spin qubits.

Authors

  • Aaron Kabcenell

    Department of Physics, Harvard University

  • Jan Gieseler

    Department of Physics, Harvard University

  • Arthur Safira

    Department of Physics, Harvard University

  • Shimon Kolkowitz

    JILA, University of Colorado, Boulder, JILA/University of Colorado-Boulder

  • Alexander Zibrov

    Department of Physics, Harvard University

  • Jack Harris

    Departments of Physics and Applied Physics, Yale University

  • Mikhail Lukin

    Harvard Univ, Harvard University, Harvard University, Department of Physics, Department of Physics, Harvard University, Cambridge, Massachusetts 02138, USA, Physics Department, Harvard University, Department of Physics, Harvard University