English

High--N00N State Generation: N00N State Output of Floquet Engineering

Quantum Physics 2024-01-02 v1

Abstract

Here, we review some quantum architectures designed for the engineering of the N00N state, a bipartite maximally entangled state crucial in quantum metrology applications. The fundamental concept underlying these schemes is the transformation of the initial state N0|N\rangle \otimes |0\rangle to the N00N state 12(N0+0N)\frac{1}{\sqrt{2}} (|N\rangle \otimes|0\rangle +|0\rangle \otimes|N\rangle), where N|N\rangle and 0|0\rangle are the Fock states with NN and 00 excitations. We show that this state can be generated as a superposition of modes of quantum light, a combination of light and motion, or a superposition of two spin ensembles. The approach discussed here can generate mesoscopic and macroscopic entangled states, such as entangled coherent and squeezed states, as well. We show that a large class of maximally entangled states can be achieved in such an architecture. The extension of these state engineering methods to the multi-mode setting is also discussed.

Keywords

Cite

@article{arxiv.2401.00111,
  title  = {High--N00N State Generation: N00N State Output of Floquet Engineering},
  author = {Yusef Maleki},
  journal= {arXiv preprint arXiv:2401.00111},
  year   = {2024}
}

Comments

31 pages, 6 figures