Deterministic Preparation of Non-Gaussian Quantum States: Applications
in Quantum Information Protocols
- URL: http://arxiv.org/abs/2110.03191v1
- Date: Thu, 7 Oct 2021 05:42:27 GMT
- Title: Deterministic Preparation of Non-Gaussian Quantum States: Applications
in Quantum Information Protocols
- Authors: Anindya Banerji, Graciana Puentes
- Abstract summary: We present a scheme that can prepare non-Gaussian quantum states on-demand, by applying a unitary transformation.
The resulting state exhibits a quantum vortex structure in quadrature space, confirming its non-Gaussian nature.
Such non-Gaussian quantum state also reveals increased entanglement content, as quantified by the Logarithmic Negativity and the Wigner function negative volume.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We report a scheme for deterministic preparation of non-Gaussian quantum
states on-demand. In contrast to probabilistic approaches for preparation of
non-Gaussian quantum states, conditioned on photon subtraction or addition, we
present a scheme that can prepare non-Gaussian quantum states on-demand, by
applying a unitary transformation which removes the Gaussianity of measurement
statistics of field quadratures, namely a quadrature rotation via transmission
through a beam-splitter, using a two-mode photon-number squeezed state as
input. The resulting state exhibits a quantum vortex structure in quadrature
space, confirming its non-Gaussian nature. Such non-Gaussian quantum state also
reveals increased entanglement content, as quantified by the Logarithmic
Negativity and the Wigner function negative volume, therefore displaying high
potential for applications in quantum information protocols, in particular for
applications in entanglement distillation schemes.
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