English

Quantum entanglement enables single-shot trajectory sensing for weakly interacting particles

Quantum Physics 2024-10-10 v2

Abstract

Sensors for mapping the trajectory of an incoming particle find important utility in experimental high energy physics and searches for dark matter. For a quantum sensing protocol that uses projective measurements on a multi-qubit sensor array to infer the trajectory of an incident particle, we establish that entanglement can dramatically reduce the particle-qubit interaction strength θ\theta required for perfect trajectory discrimination. Within an interval of θ\theta above this reduced threshold, any unentangled sensor requires Θ(log(1/ϵ))\Theta(\log(1/\epsilon)) repetitions of the protocol to estimate a previously unknown particle trajectory with ϵ\epsilon error probability, whereas an entangled sensor can succeed with zero error in a single shot. Furthermore, entanglement can enhance trajectory sensing in realistic scenarios where θ\theta varies continuously over the sensor qubits, exemplified by a Gaussian-profile laser pulse propagating through an array of atoms.

Keywords

Cite

@article{arxiv.2405.05888,
  title  = {Quantum entanglement enables single-shot trajectory sensing for weakly interacting particles},
  author = {Zachary E. Chin and David R. Leibrandt and Isaac L. Chuang},
  journal= {arXiv preprint arXiv:2405.05888},
  year   = {2024}
}

Comments

6 pages (2 figures) + 5 page Supplemental Material

R2 v1 2026-06-28T16:22:20.543Z