Search results for "QUANTUM INFORMATION"

showing 10 items of 267 documents

Quantum benchmark for teleportation and storage of squeezed states.

2007

We provide a quantum benchmark for teleportation and storage of single-mode squeezed states with zero displacement and a completely unknown degree of squeezing along a given direction. For pure squeezed input states, a fidelity higher than 81.5% has to be attained in order to outperform any classical strategy based on an estimation of the unknown squeezing and repreparation of squeezed states. For squeezed thermal input states, we derive an upper and a lower bound on the classical average fidelity which tighten for moderate degree of mixedness. These results enable a critical discussion of recent experiments with squeezed light.

PhysicsCondensed Matter::Quantum GasesQuantum Physicsmedia_common.quotation_subjectGeneral Physics and AstronomyFidelityFOS: Physical sciencesQuantum PhysicsUpper and lower boundsTeleportationDisplacement (vector)Quantum mechanicsBenchmark (computing)Quantum information scienceQuantum Physics (quant-ph)QuantumSqueezed coherent statemedia_commonPhysical review letters
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Effect of Static Disorder in an Electron-Fabry Perot Interferometr with Two Quantum Scattering Centers

2007

In a recent paper -- F. Ciccarello \emph{et al.}, New J. Phys. \textbf{8}, 214 (2006) -- we have demonstrated that the electron transmission properties of a one-dimensional (1D) wire with two identical embedded spin-1/2 impurities can be significantly affected by entanglement between the spins of the scattering centers. Such effect is of particular interest in the control of transmission of quantum information in nanostructures and can be used as a detection scheme of maximally entangled states of two localized spins. In this letter, we relax the constraint that the two magnetic impurities are equal and investigate how the main results presented in the above paper are affected by a static d…

PhysicsCoupling constantQuantum PhysicsCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsSpinsScatteringFOS: Physical sciencesQuantum entanglementElectronCondensed Matter Physics01 natural sciencesIndustrial and Manufacturing EngineeringAtomic and Molecular Physics and Optics3. Good health010305 fluids & plasmasMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciencesCondensed Matter::Strongly Correlated ElectronsScattering theoryQuantum informationQuantum Physics (quant-ph)010306 general physicsInstrumentationFabry–Pérot interferometer
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Control of the coupling strength and linewidth of a cavity magnon-polariton

2020

The full coherent control of hybridized systems such as strongly coupled cavity photon-magnon states is a crucial step to enable future information processing technologies. Thus, it is particularly interesting to engineer deliberate control mechanisms such as the full control of the coupling strength as a measure for coherent information exchange. In this work, we employ cavity resonator spectroscopy to demonstrate the complete control of the coupling strength of hybridized cavity photon-magnon states. For this, we use two driving microwave inputs which can be tuned at will. Here, only the first input couples directly to the cavity resonator photons, whilst the second tone exclusively acts …

PhysicsCouplingCondensed Matter - Mesoscale and Nanoscale PhysicsCondensed matter physicsMagnonFOS: Physical sciences02 engineering and technologyCoherent information021001 nanoscience & nanotechnology01 natural sciencesResonatorLaser linewidthCoherent controlMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciencesPolaritonQuantum information010306 general physics0210 nano-technologyPhysical Review Research
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Quantumness and memory of one qubit in a dissipative cavity under classical control

2019

Hybrid quantum-classical systems constitute a promising architecture for useful control strategies of quantum systems by means of a classical device. Here we provide a comprehensive study of the dynamics of various manifestations of quantumness with memory effects, identified by non-Markovianity, for a qubit controlled by a classical field and embedded in a leaky cavity. We consider both Leggett-Garg inequality and quantum witness as experimentally-friendly indicators of quantumness, also studying the geometric phase of the evolved (noisy) quantum state. We show that, under resonant qubit-classical field interaction, a stronger coupling to the classical control leads to enhancement of quant…

PhysicsCouplingQuantum PhysicsField (physics)010308 nuclear & particles physicsNon-MarkovianityFOS: Physical sciencesGeneral Physics and Astronomy01 natural sciencesSettore FIS/03 - Fisica Della MateriaGeometric phaseQuantum stateOpen quantum systemQuantum mechanicsQubit0103 physical sciencesDissipative systemQuantum informationQuantum witnessQuantum Physics (quant-ph)010306 general physicsClassical controlQuantumLeggett–Garg inequalityAnnals of Physics
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Transition behavior in the channel capacity of two-quibit channels with memory

2004

We prove that a general upper bound on the maximal mutual information of quantum channels is saturated in the case of Pauli channels with an arbitrary degree of memory. For a subset of such channels we explicitly identify the optimal signal states. We show analytically that for such a class of channels entangled states are indeed optimal above a given memory threshold.

PhysicsData_CODINGANDINFORMATIONTHEORYCoherent informationQuantum channelQuantum capacityTopologyUpper and lower boundsAtomic and Molecular Physics and OpticsClassical capacityQuantum mechanicsQuantum informationAmplitude damping channelQuantum mutual informationComputer Science::Information Theory
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Gain tuning for continuous-variable quantum teleportation of discrete-variable states

2013

We present a general formalism to describe continuous-variable (CV) quantum teleportation of discrete-variable (DV) states with gain tuning, taking into account experimental imperfections. Here the teleportation output is given by independently transforming each density matrix element of the initial state. This formalism allows us to accurately model various teleportation experiments and to analyze the gain dependence of their respective figures of merit. We apply our formalism to the recent experiment of CV teleportation of qubits [S. Takeda et al., Nature 500, 315 (2013)] and investigate the optimal gain for the transfer fidelity. We also propose and model an experiment for CV teleportati…

PhysicsDensity matrixQuantum PhysicsFOS: Physical sciencesQuantum entanglementQuantum PhysicsQuantum energy teleportationTeleportationAtomic and Molecular Physics and OpticsComputer Science::Emerging TechnologiesSuperdense codingQubitQuantum mechanicsQuantum information scienceQuantum Physics (quant-ph)Quantum teleportation
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Continuous variable quantum teleportation with non-Gaussian resources

2007

We investigate continuous variable quantum teleportation using non-Gaussian states of the radiation field as entangled resources. We compare the performance of different classes of degaussified resources, including two-mode photon-added and two-mode photon-subtracted squeezed states. We then introduce a class of two-mode squeezed Bell-like states with one-parameter dependence for optimization. These states interpolate between and include as subcases different classes of degaussified resources. We show that optimized squeezed Bell-like resources yield a remarkable improvement in the fidelity of teleportation both for coherent and nonclassical input states. The investigation reveals that the …

PhysicsEXCITATIONSPODOLSKY-ROSEN CHANNELS STATES EXCITATIONS COMPUTATIONQuantum PhysicsPhotonGaussianFOS: Physical sciencesQuantum entanglementQuantum PhysicsQuantum energy teleportationCOMPUTATIONTeleportationAtomic and Molecular Physics and OpticsPODOLSKY-ROSEN CHANNELSsymbols.namesakeSTATESBell's theoremQuantum mechanicssymbolsStatistical physicsQuantum Physics (quant-ph)Quantum information scienceQuantum teleportation
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Resilience of singlet-state extraction against non-optimal resonance conditions

2008

We have recently presented a protocol for extracting the singlet state of two non-interacting high-dimensional spins through post-selection of the internal state of interaction mediators sent in succession [F. Ciccarello et al., arXiv:0710.3855v1]. The scheme requires each mediator's wavevector to obey appropriate resonance conditions. Here we show the robustness of the scheme in the realistic case where such conditions are not sharply fulfilled.

PhysicsFABRY-PEROT-INTERFEROMETERPhysics and Astronomy (miscellaneous)SpinsCondensed matter physicsquantum information theory transport in mesoscopic systemsState (functional analysis)Resonance (particle physics)Robustness (computer science)Quantum mechanicsSCATTERINGWave vectorResilience (materials science)Singlet stateENTANGLEMENT
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Infinite projected entangled pair states algorithm improved: Fast full update and gauge fixing

2015

© 2015 American Physical Society. ©2015 American Physical Society. The infinite projected entangled pair states (iPEPS) algorithm [J. Jordan, Phys. Rev. Lett. 101, 250602 (2008)PRLTAO0031-900710.1103/PhysRevLett.101.250602] has become a useful tool in the calculation of ground-state properties of two-dimensional quantum lattice systems in the thermodynamic limit. Despite its many successful implementations, the method has some limitations in its present formulation which hinder its application to some highly entangled systems. The purpose of this paper is to unravel some of these issues, in turn enhancing the stability and efficiency of iPEPS methods. For this, we first introduce the fast f…

PhysicsFluids & PlasmasQuantum entanglementCondensed Matter Physics01 natural sciencesSquare lattice010305 fluids & plasmasElectronic Optical and Magnetic Materials0103 physical sciencesThermodynamic limitIsing modelTensorQuantum information010306 general physicsAlgorithmQuantumGauge fixingPhysical Review B
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Freezing the dynamics of a rf SQUID qubit via its strong coupling to a quantized microwave field

2004

In this paper we show the results concerning the study of the dynamics of a rf SQUID qubit exposed to a quantized monochromatic microwave source in the strong coupling limit. We bring out more details of the possibility both of controlling and hindering the oscillations between the two qubit flux states when we consider opportunely prepared initial field states. The importance of conceiving of such kinds of theoretical schemes in view of possible applications in the context of quantum computing is briefly discussed.

PhysicsFlux qubitCharge qubitPhysics and Astronomy (miscellaneous)Quantum computers Quantum optics flux qubitsAtomic and Molecular Physics and OpticsPhase qubitsymbols.namesakeQuantum mechanicsQubitsymbolsQuantum informationHamiltonian (quantum mechanics)MicrowaveQuantum computerJournal of Optics B: Quantum and Semiclassical Optics
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