Single- and two-mode quantumness at a beam splitter
arXiv:1502.04996 · doi:10.1103/PhysRevA.91.062315
Abstract
In the context of bipartite bosonic systems, two notions of classicality of correlations can be defined: P-classicality, based on the properties of the Glauber-Sudarshan P-function; and C-classicality, based on the entropic quantum discord. It has been shown that these two notions are maximally inequivalent in a static (metric) sense -- as they coincide only on a set of states of zero measure. We extend and reinforce quantitatively this inequivalence by addressing the dynamical relation between these types of non-classicality in a paradigmatic quantum-optical setting: the linear mixing at a beam splitter of a single-mode Gaussian state with a thermal reference state. Specifically, we show that almost all P-classical input states generate outputs that are not C-classical. Indeed, for the case of zero thermal reference photons, the more P-classical resources at the input the less C-classicality at the output. In addition, we show that the P-classicality at the input -- as quantified by the non-classical depth -- does instead determine quantitatively the potential of generating output entanglement. This endows the non-classical depth with a new operational interpretation: it gives the maximum number of thermal reference photons that can be mixed at a beam splitter without destroying the output entanglement.
13 pages, 10 figures
References in corpus (9)
- A computable measure of nonclassicality for light
- Symplectic invariants, entropic measures and correlations of Gaussian states
- Operational Significance of Discord Consumption: Theory and Experiment
- Quantifying decoherence in continuous variable systems
- Nonlinear quantum metrology using coupled nanomechanical resonators
- Homodyne estimation of Gaussian quantum discord
- Experimental Investigation of the Evolution of Gaussian Quantum Discord in an Open System
- Superconducting resonators as beam splitters for linear-optics quantum computation
- Quantumness of Gaussian Discord: Experimental Evidence and Role of System-Environment Correlations
Cited by in corpus (18)
- Conservation relation of nonclassicality and entanglement for Gaussian states in a beam-splitter
- Quantum correlations in separable multi-mode states and in classically entangled light
- Operational Resource Theory of Nonclassicality via Quantum Metrology
- Nonlinearity as a resource for nonclassicality in anharmonic systems
- Interplay of nonclassicality and entanglement of two-mode Gaussian fields generated in optical parametric processes
- Entanglement and nonclassicality: A mutual impression
- Gaussian Discriminating Strength
- Non-divisibility vs backflow of information in understanding revivals of quantum correlations for continuous-variable systems interacting with fluctuating environments
- Homodyning the of Gaussian states
- Multiphoton Bell-type inequality: a tool to unearth nonlocality of continuous variable quantum optical systems
- Entangling the whole by beam splitting a part
- Maximum entanglement of formation for a two-mode Gaussian state over passive operations
- Formal relation between Pegg-Barnett and Paul quantum phase frameworks
- Relating the Glauber-Sudarshan, Wigner and Husimi quasiprobability distributions operationally through the quantum limited amplifier and attenuator channels
- Measuring nonclasicality of single-mode systems
- Reduced state of the field and classicality of quantum Gaussian evolution
- Entanglement, loss, and quantumness: When balanced beam splitters are best
- Advantage in two-way communication using non-classical states of light