English

Generating nonlinearities from conditional linear operations, squeezing and measurement for quantum computation and super-Heisenberg sensing

Quantum Physics 2021-06-30 v2

Abstract

Large optical nonlinearities can have numerous applications, ranging from the generation of cat-states for optical quantum computation, through to quantum sensing where the sensitivity exceeds Heisenberg scaling in the resources. However, the generation of ultra-large optical nonlinearities has proved immensely challenging experimentally. We describe a novel protocol where one can effectively generate large optical nonlinearities via the conditional application of a linear operation on an optical mode by an ancilla mode, followed by a measurement of the ancilla and corrective operation on the probe mode. Our protocol can generate high quality optical Schr{\"{o}}dinger cat states useful for optical quantum computing and can be used to perform sensing of an unknown rotation or displacement in phase space, with super-Heisenberg scaling in the resources. We finally describe a potential experimental implementation using atomic ensembles interacting with optical modes via the Faraday effect.

Keywords

Cite

@article{arxiv.2101.12364,
  title  = {Generating nonlinearities from conditional linear operations, squeezing and measurement for quantum computation and super-Heisenberg sensing},
  author = {Mattias T. Johnsson and Pablo M. Poggi and Marco A. Rodríguez and Rafael N. Alexander and Jason Twamley},
  journal= {arXiv preprint arXiv:2101.12364},
  year   = {2021}
}

Comments

18 pages, 9 figures. New in this version: typos fixed. Fixed order of subfigs in Fig. 2

R2 v1 2026-06-23T22:38:37.199Z