Real-Time Charge Initialization of Diamond Nitrogen-Vacancy Centers for Enhanced Spin Readout
arXiv:1907.08741 · doi:10.1103/PhysRevApplied.13.024016
Abstract
A common impediment to qubit performance is imperfect state initialization. In the case of the diamond nitrogen-vacancy (NV) center, the initialization fidelity is limited by fluctuations in the defect's charge state during optical pumping. Here, we use real-time control to deterministically initialize the NV center's charge state at room temperature. We demonstrate a maximum charge initialization fidelity of 99.40.1% and present a quantitative model of the initialization process that allows for systems-level optimization of the spin-readout signal-to-noise ratio. Even accounting for the overhead associated with the initialization sequence, increasing the charge initialization fidelity from the steady-state value of 75% near to unity allows for a factor-of-two speedup in experiments while maintaining the same signal-to-noise-ratio. In combination with high-fidelity readout based on spin-to-charge conversion, real-time initialization enables a factor-of-20 speedup over traditional methods, resulting in an ac magnetic sensitivity of 1.3 nT/Hz for our single NV-center spin. The real-time control method is immediately beneficial for quantum sensing applications with NV centers as well as probing charge-dependent physics, and it will facilitate protocols for quantum feedback control over multi-qubit systems.
21 pages including supplementary information
References in corpus (18)
- Deterministic delivery of remote entanglement on a quantum network
- A 10-qubit solid-state spin register with quantum memory up to one minute
- Sub-millihertz magnetic spectroscopy with a nanoscale quantum sensor
- Detection and control of individual nuclear spins using a weakly coupled electron spin
- Real-space imaging of non-collinear antiferromagnetic order with a single spin magnetometer
- Quantum sensing with arbitrary frequency resolution
- Spin dynamics in the optical cycle of single nitrogen-vacancy centres in diamond
- Efficient readout of a single spin state in diamond via spin-to-charge conversion
- Identifying and mitigating charge instabilities in shallow diamond nitrogen-vacancy centers
- Imaging the local charge environment of nitrogen-vacancy centers in diamond
- Spin Readout Techniques of the Nitrogen-Vacancy Center in Diamond
- Imaging a Nitrogen-Vacancy Center with a Diamond Immersion Metalens
- Nanoscale electrical conductivity imaging using a nitrogen-vacancy center in diamond
- Microscopic diamond Solid-Immersion-Lenses fabricated around single defect ceneters by focussed ion beam milling
- Charge State Dynamics During Excitation and Depletion of the Nitrogen Vacancy Center in Diamond
- Two-dimensional nanoscale imaging of gadolinium spins via scanning probe relaxometry with a single spin in diamond
- Improved quantum sensing with a single solid-state spin via spin-to-charge conversion
- Nuclear Quantum-Assisted Magnetometer