English

Optimal control of a nitrogen-vacancy spin ensemble in diamond for sensing in the pulsed domain

Quantum Physics 2022-08-31 v1 Applied Physics Biological Physics Optics

Abstract

Defects in solid state materials provide an ideal, robust platform for quantum sensing. To deliver maximum sensitivity, a large ensemble of non-interacting defects hosting coherent quantum states are required. Control of such an ensemble is challenging due to the spatial variation in both the defect energy levels and in any control field across a macroscopic sample. In this work we experimentally demonstrate that we can overcome these challenges using Floquet theory and optimal control optimization methods to efficiently and coherently control a large defect ensemble, suitable for sensing. We apply our methods experimentally to a spin ensemble of up to 4 ×\times 109^9 nitrogen vacancy (NV) centers in diamond. By considering the physics of the system and explicitly including the hyperfine interaction in the optimization, we design shaped microwave control pulses that can outperform conventional (π\pi-) pulses when applied to sensing of temperature or magnetic field, with a potential sensitivity improvement between 11 and 78\%. Through dynamical modelling of the behaviour of the ensemble, we shed light on the physical behaviour of the ensemble system and propose new routes for further improvement.

Keywords

Cite

@article{arxiv.2101.10049,
  title  = {Optimal control of a nitrogen-vacancy spin ensemble in diamond for sensing in the pulsed domain},
  author = {Andreas F. L. Poulsen and Joshua D. Clement and James L. Webb and Rasmus H. Jensen and Kirstine Berg-Sørensen and Alexander Huck and Ulrik Lund Andersen},
  journal= {arXiv preprint arXiv:2101.10049},
  year   = {2022}
}