English

Robust Higher-Order Hamiltonian Engineering for Quantum Sensing with Strongly Interacting Systems

Quantum Physics 2024-01-15 v1 Disordered Systems and Neural Networks

Abstract

Dynamical decoupling techniques constitute an integral part of many quantum sensing platforms, often leading to orders-of-magnitude improvements in coherence time and sensitivity. Most AC sensing sequences involve a periodic echo-like structure, in which the target signal is synchronized with the echo period. We show that for strongly interacting systems, this construction leads to a fundamental sensitivity limit associated with imperfect interaction decoupling. We present a simple physical picture demonstrating the origin of this limitation, and further formalize these considerations in terms of concise higher-order decoupling rules. We then show how these limitations can be surpassed by identifying a novel sequence building block, in which the signal period matches twice the echo period. Using these decoupling rules and the resulting sequence building block, we experimentally demonstrate significant improvements in dynamical decoupling timescales and magnetic field sensitivity, opening the door for new applications in quantum sensing and quantum many-body physics.

Keywords

Cite

@article{arxiv.2303.07363,
  title  = {Robust Higher-Order Hamiltonian Engineering for Quantum Sensing with Strongly Interacting Systems},
  author = {Hengyun Zhou and Leigh S. Martin and Matthew Tyler and Oksana Makarova and Nathaniel Leitao and Hongkun Park and Mikhail D. Lukin},
  journal= {arXiv preprint arXiv:2303.07363},
  year   = {2024}
}

Comments

5 pages, 3 figures, see accompanying paper "Higher-Order Methods for Hamiltonian Engineering Pulse Sequence Design" for details on Hamiltonian engineering techniques

R2 v1 2026-06-28T09:14:49.886Z