Search results for "Quantum Decoherence"

showing 10 items of 159 documents

Geometrical characterization of non-Markovianity

2013

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 $N$-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.

PhysicsQuantum PhysicsN-LEVEL SYSTEMSQuantum decoherenceGaussianProcess (computing)FOS: Physical sciencesAtomic and Molecular Physics and OpticsSettore FIS/03 - Fisica Della MateriaCharacterization (materials science)DYNAMICAL SEMIGROUPSsymbols.namesakeN-LEVEL SYSTEMS; DYNAMICAL SEMIGROUPSMeasurement theorysymbolsStatistical physicsQuantum Physics (quant-ph)
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Spatially Dependent Decoherence and Anomalous Diffussion of Quantum Walks

2013

We analyze the long time behavior of a discrete time quantum walk subject to decoherence with a strong spatial dependence, acting on one half of the lattice. We show that, except for limiting cases on the decoherence parameter, the quantum walk at late times behaves sub-ballistically, meaning that the characteristic features of the quantum walk are not completely spoiled. Contrarily to expectations, the asymptotic behavior is non Markovian, and depends on the amount of decoherence. This feature can be clearly shown on the long time value of the Generalized Chiral Distribution (GCD).

PhysicsQuantum PhysicsQuantum WalkWork (thermodynamics)Quantum decoherenceNon-Translational InvarianceFísicaFOS: Physical sciencesDecoherenceGeneral ChemistryCondensed Matter PhysicsComputational MathematicsQuantum mechanicsGeneral Materials ScienceQuantum walkElectrical and Electronic EngineeringQuantum Physics (quant-ph)Journal of Computational and Theoretical Nanoscience
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Interaction-free evolving states of a bipartite system

2014

We show that two interacting physical systems may admit entangled pure or non separable mixed states evolving in time as if the mutual interaction hamiltonian were absent. In this paper we define these states Interaction Free Evolving (IFE) states and characterize their existence for a generic binary system described by a time independent Hamiltonian. A comparison between IFE subspace and the decoherence free subspace is reported. The set of all pure IFE states is explicitly constructed for a non homogeneous spin star system model.

PhysicsQuantum PhysicsQuantum decoherenceBipartite systemPhysical systemFOS: Physical sciencesAtomic and Molecular Physics and OpticsStar systemSeparable spacesymbols.namesakeTheoretical physicsNon homogeneoussymbolsQuantum Physics (quant-ph)Hamiltonian (quantum mechanics)DECOHERENCE FREE SUBSPACESubspace topologySUBRADIANCE
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Reversible and irreversible dynamics of a qubit interacting with a small environment

2006

We analyze the dynamics of a system qubit interacting by means a sequence of pairwise collisions with an environment consisting of just two qubits. We show that the density operator of the qubits approaches a common time averaged equilibrium state, characterized by large fluctuations, only for a random sequence of collisions. For a regular sequence of collisions the qubitstates of the system and of the reservoir undergo instantaneous periodic oscillations and do not relax to a common state. Furthermore we show that pure bipartite entanglement is developed only when at least two qubits are initially in the same purestate while otherwise also genuine multipartite entanglement builds up.

PhysicsQuantum PhysicsQuantum decoherenceCharge qubitFOS: Physical sciencesQuantum entanglementQuantum PhysicsMultipartite entanglementAtomic and Molecular Physics and OpticsPhase qubitComputer Science::Emerging TechnologiesQUANTUM CHAOSQubitQuantum mechanicsW stateQuantum Physics (quant-ph)Quantum computer
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Entanglement degradation in the solid state: Interplay of adiabatic and quantum noise

2010

We study entanglement degradation of two non-interacting qubits subject to independent baths with broadband spectra typical of solid state nanodevices. We obtain the analytic form of the concurrence in the presence of adiabatic noise for classes of entangled initial states presently achievable in experiments. We find that adiabatic (low frequency) noise affects entanglement reduction analogously to pure dephasing noise. Due to quantum (high frequency) noise, entanglement is totally lost in a state-dependent finite time. The possibility to implement on-chip both local and entangling operations is briefly discussed.

PhysicsQuantum PhysicsQuantum decoherenceCondensed Matter - Mesoscale and Nanoscale PhysicsQuantum noiseFOS: Physical sciencesQuantum entanglementQuantum PhysicsSquashed entanglementSettore FIS/03 - Fisica Della MateriaAtomic and Molecular Physics and OpticsQuantum electrodynamicsQuantum mechanicsQubitMesoscale and Nanoscale Physics (cond-mat.mes-hall)Coincidence countingSuperconducting qubit entanglement open quantum systemsW stateAdiabatic processQuantum Physics (quant-ph)
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Landauer’s Principle in Multipartite Open Quantum System Dynamics

2015

We investigate the link between information and thermodynamics embodied by Landauer's principle in the open dynamics of a multipartite quantum system. Such irreversible dynamics is described in terms of a collisional model with a finite temperature reservoir. We demonstrate that Landauer's principle holds, for such a configuration, in a form that involves the flow of heat dissipated into the environment and the rate of change of the entropy of the system. Quite remarkably, such a principle for {\it heat and entropy power} can be explicitly linked to the rate of creation of correlations among the elements of the multipartite system and, in turn, the non-Markovian nature of their reduced evol…

PhysicsQuantum PhysicsQuantum decoherenceCondensed Matter - Mesoscale and Nanoscale PhysicsStatistical Mechanics (cond-mat.stat-mech)Open Quantum System DynamicsFOS: Physical sciencesGeneral Physics and AstronomyLandauer's principle01 natural sciences010305 fluids & plasmasPhysics and Astronomy (all)Open quantum systemMultipartiteLandauer's Principle in MultipartiteClassical mechanicsMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciencesQuantum systemQuantum informationQuantum Physics (quant-ph)010306 general physicsQuantum statistical mechanicsCondensed Matter - Statistical MechanicsPhysical Review Letters
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Stabilization of quantum metastable states by dissipation

2015

Normally, quantum fluctuations enhance the escape from metastable states in the presence of dissipation. Here we show that dissipation can enhance the stability of a quantum metastable system, consisting of a particle moving in a strongly asymmetric double well potential, interacting with a thermal bath. We find that the escape time from the metastable state has a nonmonotonic behavior versus the system-bath coupling and the temperature, producing a stabilizing effect.

PhysicsQuantum PhysicsQuantum decoherenceCondensed matter physicsStatistical Mechanics (cond-mat.stat-mech)FOS: Physical sciencesDouble-well potentialCondensed Matter PhysicDissipationCondensed Matter PhysicsElectronic Optical and Magnetic MaterialsCoupling (physics)MetastabilityThermalQuantum Physics (quant-ph)QuantumCondensed Matter - Statistical MechanicsQuantum fluctuation
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Initial correlations effects on decoherence at zero temperature

2004

We consider a free charged particle interacting with an electromagnetic bath at zero temperature. The dipole approximation is used to treat the bath wavelengths larger than the width of the particle wave packet. The effect of these wavelengths is described then by a linear Hamiltonian whose form is analogous to phenomenological Hamiltonians previously adopted to describe the free particle-bath interaction. We study how the time dependence of decoherence evolution is related with initial particle-bath correlations. We show that decoherence is related to the time dependent dressing of the particle. Moreover because decoherence induced by the T=0 bath is very rapid, we make some considerations…

PhysicsQuantum PhysicsQuantum decoherenceFOS: Physical sciencesGeneral Physics and AstronomyStatistical and Nonlinear PhysicsDiscrete dipole approximationharmonic oscillators.Charged particlesymbols.namesakeWavelengthWave–particle dualityQuantum mechanicsoscillatorsymbolsZero temperatureQuantum Physics (quant-ph)Hamiltonian (quantum mechanics)bathMathematical Physics
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Experimental realization of high-fidelity teleportation via non-Markovian open quantum system

2020

Open quantum systems and study of decoherence are important for our fundamental understanding of quantum physical phenomena. For practical purposes, there exists a large number of quantum protocols exploiting quantum resources, e.g. entanglement, which allows to go beyond what is possible to achieve by classical means. We combine concepts from open quantum systems and quantum information science, and give a proof-of-principle experimental demonstration -- with teleportation -- that it is possible to implement efficiently a quantum protocol via non-Markovian open system. The results show that, at the time of implementation of the protocol, it is not necessary to have the quantum resource in …

PhysicsQuantum PhysicsQuantum decoherenceFOS: Physical sciencesQuantum entanglementQuantum PhysicsTopology01 natural sciencesTeleportationOpen system (systems theory)010305 fluids & plasmasOpen quantum systemQubit0103 physical sciences010306 general physicsQuantum information scienceQuantum Physics (quant-ph)Quantum
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Simulating quantum Brownian motion with single trapped ions

2004

We study the open system dynamics of a harmonic oscillator coupled with an artificially engineered reservoir. We single out the reservoir and system variables governing the passage between Lindblad type and non-Lindblad type dynamics of the reduced system's oscillator. We demonstrate the existence of conditions under which virtual exchanges of energy between system and reservoir take place. We propose to use a single trapped ion coupled to engineered reservoirs in order to simulate quantum Brownian motion.

PhysicsQuantum PhysicsQuantum decoherenceFOS: Physical sciencesTrappingOpen system (systems theory)Atomic and Molecular Physics and OpticsIonMeasurement theoryClassical mechanicsdynamics environments system-environment correlationsQuantum Physics (quant-ph)QuantumBrownian motionHarmonic oscillator
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