Search results for "Functional analysis"

showing 10 items of 1059 documents

Many-qubit quantum state transfer via spin chains

2015

The transfer of an unknown quantum state, from a sender to a receiver, is one of the main requirements to perform quantum information processing tasks. In this respect, the state transfer of a single qubit by means of spin chains has been widely discussed, and many protocols aiming at performing this task have been proposed. Nevertheless, the state transfer of more than one qubit has not been properly addressed so far. In this paper, we present a modified version of a recently proposed quantum state transfer protocol [Phys. Rev. A 87, 062309 (2013)] to obtain a quantum channel for the transfer of two qubits. This goal is achieved by exploiting Rabi-like oscillations due to excitations induc…

PhysicsQuantum PhysicsAngular momentumFOS: Physical sciencesQuantum channelState (functional analysis)quantum state transferCondensed Matter PhysicsAtomic and Molecular Physics and OpticsMagnetic fieldPhysics and Astronomy (all)quantum spin chainmany-body systemquantum informationQuantum stateQuantum mechanicsQubitQuantum informationmany-body systems; quantum information; quantum spin chain; quantum state transfer; Physics and Astronomy (all)Quantum Physics (quant-ph)many-body systemsMathematical PhysicsSpin-½Physica Scripta
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Connection among entanglement, mixedness, and nonlocality in a dynamical context

2010

We investigate the dynamical relations among entanglement, mixedness and nonlocality, quantifed by concurrence C, purity P and maximum of Bell function B, respectively, in a system of two qubits in a common structured reservoir. To this aim we introduce the C-P-B parameter space and analyze the time evolution of the point representative of the system state in such a space. The dynamical interplay among entanglement, mixedness and nonlocality strongly depends on the initial state of the system. For a two-excitation Bell state the representative point draws a multi-branch curve in the C-P-B space and we show that a closed relation among these quantifers does not hold. By extending the known r…

PhysicsQuantum PhysicsBell stateSettore FIS/02 - Fisica Teorica Modelli E Metodi MatematiciQuantum decoherenceEntanglement Purity Non-locality Open quantum systemsFOS: Physical sciencesContext (language use)Quantum entanglementState (functional analysis)Parameter spaceAtomic and Molecular Physics and OpticsQuantum nonlocalityQubitQuantum mechanicsStatistical physicsQuantum Physics (quant-ph)Physical Review A
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Time-optimal control of SU(2) quantum operations

2013

We propose an analysis of the time-optimal control of SU(2) quantum operations. By using the Pontryagin Maximum Principle, we show how to determine the optimal trajectory reaching a given target state. Explicit analytical solutions are given for two specific examples. We discuss the role of the detuning in the construction of the optimal synthesis.

PhysicsQuantum PhysicsClassical mechanicsOptimal trajectoryFOS: Physical sciencesState (functional analysis)Control (linguistics)Time optimalQuantum Physics (quant-ph)QuantumAtomic and Molecular Physics and OpticsSpecial unitary groupPontryagin's minimum principle
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Master equation approach to the three-state open Majorana model

2019

The three-state Majorana model in the presence of dissipation is considered. Different models of system-environment interaction are explored, ranging from a situation where dissipation is the main effect to regimes where dephasing is mainly produced. It is shown that the detrimental effects of the noise are stronger in the presence of dissipation than in the presence of dephasing. The role of temperature is also discussed.

PhysicsQuantum PhysicsDephasingquantum noiseFOS: Physical sciencesState (functional analysis)Dissipation01 natural sciencesNoise (electronics)spin systemSettore FIS/03 - Fisica Della Materia010305 fluids & plasmasMAJORANALandau-ZenerQuantum mechanics0103 physical sciencesMaster equationMain effect010306 general physicsQuantum Physics (quant-ph)decoherence
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Oscillatory Localization of Quantum Walks Analyzed by Classical Electric Circuits

2016

We examine an unexplored quantum phenomenon we call oscillatory localization, where a discrete-time quantum walk with Grover's diffusion coin jumps back and forth between two vertices. We then connect it to the power dissipation of a related electric network. Namely, we show that there are only two kinds of oscillating states, called uniform states and flip states, and that the projection of an arbitrary state onto a flip state is bounded by the power dissipation of an electric circuit. By applying this framework to states along a single edge of a graph, we show that low effective resistance implies oscillatory localization of the quantum walk. This reveals that oscillatory localization occ…

PhysicsQuantum PhysicsFOS: Physical sciencesState (functional analysis)Edge (geometry)Dissipation01 natural sciencesProjection (linear algebra)010305 fluids & plasmasQuantum mechanicsBounded function0103 physical sciencesQuantum walkStatistical physics010306 general physicsQuantum Physics (quant-ph)QuantumElectronic circuit
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Quantum Computation with Generalized Binomial States in Cavity Quantum Electrodynamics

2008

We study universal quantum computation in the cavity quantum electrodynamics (CQED) framework exploiting two orthonormal two-photon generalized binomial states as qubit and dispersive interactions of Rydberg atoms with high-$Q$ cavities. We show that an arbitrary qubit state may be generated and that controlled-NOT and 1-qubit rotation gates can be realized via standard atom-cavity interactions.

PhysicsQuantum PhysicsGeneralized binomial states cavity QEDPhysics and Astronomy (miscellaneous)Binomial (polynomial)Cavity quantum electrodynamicsPhysics::OpticsFOS: Physical sciencesState (functional analysis)Quantum PhysicsComputer Science::Emerging TechnologiesQuantum mechanicsQubitRydberg atomOrthonormal basisQuantum Physics (quant-ph)Rotation (mathematics)Quantum computer
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Single-shot generation and detection of a two-photon generalized binomial state in a cavity

2006

A "quasi-deterministic" scheme to generate a two-photon generalized binomial state in a single-mode high-Q cavity is proposed. We also suggest a single-shot scheme to measure the generated state based on a probe two-level atom that "reads" the cavity field. The possibility of implementing the schemes is discussed.

PhysicsQuantum PhysicsPhotonField (physics)Binomial (polynomial)Single shotQUANTUM INFORMATIONFOS: Physical sciencesPhysics::OpticsELECTROMAGNETIC-FIELDState (functional analysis)PHOTONSMeasure (mathematics)GeneralLiterature_MISCELLANEOUSAtomic and Molecular Physics and OpticsATOMSRADIATION-FIELDTwo-photon excitation microscopyQuantum mechanicsAtomQuantum Physics (quant-ph)PHASE PROPERTIESENTANGLEMENTPhysical Review A
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Exploring a new regime for processing optical qubits: squeezing and unsqueezing single photons

2012

We implement the squeezing operation as a genuine quantum gate, deterministically and reversibly acting `online' upon an input state no longer restricted to the set of Gaussian states. More specifically, by applying an efficient and robust squeezing operation for the first time to non-Gaussian states, we demonstrate a two-way conversion between a particle-like single-photon state and a wave-like superposition of coherent states. Our squeezing gate is reliable enough to preserve the negativities of the corresponding Wigner functions. This demonstration represents an important and necessary step towards hybridizing discrete and continuous quantum protocols.

PhysicsQuantum PhysicsPhotonGaussianGeneral Physics and AstronomyFOS: Physical sciencesState (functional analysis)symbols.namesakeSuperposition principleQuantum gateQubitQuantum mechanicssymbolsCoherent statesQuantum informationQuantum Physics (quant-ph)
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Class of exact memory-kernel master equations

2016

A well-known situation in which a non-Markovian dynamics of an open quantum system $S$ arises is when this is coherently coupled to an auxiliary system $M$ in contact with a Markovian bath. In such cases, while the joint dynamics of $S$-$M$ is Markovian and obeys a standard (bipartite) Lindblad-type master equation (ME), this is in general not true for the reduced dynamics of $S$. Furthermore, there are several instances (\eg the dissipative Jaynes-Cummings model) in which a {\it closed} ME for the $S$'s state {\it cannot} even be worked out. Here, we find a class of bipartite Lindblad-type MEs such that the reduced ME of $S$ can be derived exactly and in a closed form for any initial produ…

PhysicsQuantum PhysicsPure mathematicsClass (set theory)Kernel (set theory)FOS: Physical sciencesState (functional analysis)open quantum systems01 natural sciencesmarkovian dynamicsSettore FIS/03 - Fisica Della Materia010305 fluids & plasmas3. Good healthopen quantum systemsOpen quantum systemcollision modelsProduct (mathematics)Quantum mechanics0103 physical sciencesMaster equationDissipative systemBipartite graphQuantum Physics (quant-ph)010306 general physicsnon markovian dynamicsPhysical Review A
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Reconstructing the vibrational state of a trapped ion

2002

A new approach for reconstructing the vibrational quantum state of a trapped ion is proposed. The method rests upon the current ability of manipulating the trapped ion state and on the possibility of effectively measuring the scalar product of the two vibrational cofactors of a vibronic entangled state. The experimental feasibility of the method is briefly discussed.

PhysicsQuantum PhysicsQuantum stateScalar (mathematics)HadronFOS: Physical sciencesState (functional analysis)Atomic physicstrapped ions coherences measurementPhysics::Chemical PhysicsCondensed Matter PhysicsQuantum Physics (quant-ph)Ion
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