Mauro Paternostro
Queen's University Belfast
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Mauro Paternostro.
Physical Review Letters | 2009
Robert Prevedel; G. Cronenberg; Mark Tame; Mauro Paternostro; Philip Walther; M. S. Kim; Anton Zeilinger
We report the first experimental generation and characterization of a six-photon Dicke state. The produced state shows a fidelity of F=0.56+/-0.02 with respect to an ideal Dicke state and violates a witness detecting genuine six-qubit entanglement by 4 standard deviations. We confirm characteristic Dicke properties of our resource and demonstrate its versatility by projecting out four- and five-photon Dicke states, as well as four-photon Greenberger-Horne-Zeilinger and W states. We also show that Dicke states have interesting applications in multiparty quantum networking protocols such as open-destination teleportation, telecloning, and quantum secret sharing.
Physical Review Letters | 2014
Tiago B. Batalhão; Alexandre M. Souza; Laura Mazzola; R. Auccaise; R. S. Sarthour; I. S. Oliveira; John Goold; Gabriele De Chiara; Mauro Paternostro; R. M. Serra
We report the experimental reconstruction of the nonequilibrium work probability distribution in a closed quantum system, and the study of the corresponding quantum fluctuation relations. The experiment uses a liquid-state nuclear magnetic resonance platform that offers full control on the preparation and dynamics of the system. Our endeavors enable the characterization of the out-of-equilibrium dynamics of a quantum spin from a finite-time thermodynamics viewpoint.
Physical Review Letters | 2012
T K Chuan; J P Maillard; Kavan Modi; Tomasz Paterek; Mauro Paternostro; Marco Piani
The ability to distribute quantum entanglement is a prerequisite for many fundamental tests of quantum theory and numerous quantum information protocols. Two distant parties can increase the amount of entanglement between them by means of quantum communication encoded in a carrier that is sent from one party to the other. Intriguingly, entanglement can be increased even when the exchanged carrier is not entangled with the parties. However, in light of the defining property of entanglement stating that it cannot increase under classical communication, the carrier must be quantum. Here we show that, in general, the increase of relative entropy of entanglement between two remote parties is bounded by the amount of nonclassical correlations of the carrier with the parties as quantified by the relative entropy of discord. We study implications of this bound, provide new examples of entanglement distribution via unentangled states, and put further limits on this phenomenon.
Physical Review Letters | 2007
Mauro Paternostro; David Vitali; Sylvain Gigan; M. S. Kim; C. Brukner; Jens Eisert; M. Aspelmeyer
We propose an immediately realizable scheme showing signatures of multipartite entanglement generated by radiation pressure in a cavity system with a movable mirror. We show how the entanglement involving the inaccessible massive object is unraveled by means of field-field quantum correlations and persists within a wide range of working conditions. Our proposal provides an operative way to infer the quantum behavior of a system that is only partially accessible.
Physical Review Letters | 2007
Mark Tame; Robert Prevedel; Mauro Paternostro; P. Böhi; M. S. Kim; Anton Zeilinger
We report the first experimental demonstration of an all-optical one-way implementation of Deutschs quantum algorithm on a four-qubit cluster state. All the possible configurations of a balanced or constant function acting on a two-qubit register are realized within the measurement-based model for quantum computation. The experimental results are in excellent agreement with the theoretical model, therefore demonstrating the successful performance of the algorithm.
Physical Review Letters | 2013
Laura Mazzola; G. De Chiara; Mauro Paternostro
We propose an interferometric setting for the ancilla-assisted measurement of the characteristic function of the work distribution following a time-dependent process experienced by a quantum system. We identify how the configuration of the effective interferometer is linked to the symmetries enjoyed by the Hamiltonian ruling the process and provide the explicit form of the operations to implement in order to accomplish our task. We finally discuss two physical settings, based on hybrid optomechanical-electromechanical devices, where the theoretical proposals discussed in our work could find an experimental demonstration.
Physical Review A | 2013
Salvatore Lorenzo; Francesco Plastina; Mauro Paternostro
We introduce a new tool for the quantitative characterisation of the departure form Markovianity of a given dynamical process. Our tool can be applied to a generic
Journal of Physics A | 2011
Davide Girolami; Mauro Paternostro; Gerardo Adesso
N
Physical Review Letters | 2004
Mauro Paternostro; Woo-Chan Son; Myung K. Kim
-level system and extended straightforwardly to Gaussian continuous-variable systems. It is linked to the change of the volume of physical states that are dynamically accessible to a system and provides qualitative expectations in agreement with some of the analogous tools proposed so far. We illustrate its prediticve power by tackling a few canonical examples.
Scientific Reports | 2015
A. del Campo; John Goold; Mauro Paternostro
The state disturbance induced by locally measuring a quantum system yields a signature of nonclassical correlations beyond entanglement. Here, we present a detailed study of such correlations for two-qubit mixed states. To overcome the asymmetry of quantum discord and the unfaithfulness of measurement-induced disturbance (severely overestimating quantum correlations), we propose an ameliorated measurement-induced disturbance as nonclassicality indicator, optimized over joint local measurements, and we derive its closed expression for relevant two-qubit states. We study its analytical relation with discord, and characterize the maximally quantum-correlated mixed states, that simultaneously extremize both quantifiers at given von Neumann entropy: among all two-qubit states, these states possess the most robust quantum correlations against noise.