Fully-Quantum-Theoretic Numerical Study on Quantum Phase Sensing and
Ghost Imaging Systems Operating with Multimode N00N States
- URL: http://arxiv.org/abs/2203.11036v1
- Date: Mon, 21 Mar 2022 14:55:17 GMT
- Title: Fully-Quantum-Theoretic Numerical Study on Quantum Phase Sensing and
Ghost Imaging Systems Operating with Multimode N00N States
- Authors: Dong-Yeop Na, Peter Bermel, Weng Cho Chew
- Abstract summary: We present a numerical study on the super-resolution of quantum phase sensing and ghost imaging systems operating with multimode N00N states.
Our computational simulations are based on the canonical quantization via numerical mode-decomposition.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We present a numerical study on the super-resolution of quantum phase sensing
and ghost imaging systems operating with multimode N00N states beyond the
Rayleigh diffraction limit. Our computational simulations are based on the
canonical quantization via numerical mode-decomposition (CQ-NMD) [1,2], in
which normal (eigen) modes of electromagnetic fields in inhomogeneous
dielectric media are numerically found using computational electromagnetics
methods. In the CQ-NMD framework and the Heisenberg picture, the expectation
value of arbitrary observables with respect to initial quantum states of
various non-classical lights can be evaluated with the use of Wick's theorem.
The present numerical framework has a great potential to deal with scattering
problems of entangled photons due to arbitrary dielectric objects.
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