Heisenberg Scaling in Many-Body Kinetic Uncertainty Relation via Quantum Feedback

Published
Source
arXiv
Paper number
622
Field
Research
arXiv ID
2607.12264

Key points

  • It analyzes the counting precision of a superradiant spin ensemble using a many-body kinetic uncertainty relation and mean-field equations incorporating feedback.
  • Feedback after quantum jumps sustains transient superradiant activity, maintaining collective effects that depend on the particle number N.
  • Both analytical results and numerical simulations showed Heisenberg-like scaling, with the variance of the counting observable decreasing as 1/N².
  • It proposes a design principle for turning collective dissipation from noise into a resource for precision in quantum clocks and counting devices.
  • The results are based on theory and numerical simulations of a specific superradiant spin model, and no experimental validation on actual devices was presented.

Paper links

External research summaries. These are not HDATF publications or measured product results.

Read original (opens in a new tab)