Search results for "Quantum physic"

showing 10 items of 1596 documents

Theory of quantum fluctuations of optical dissipative structures and its application to the squeezing properties of bright cavity solitons

2007

We present a method for the study of quantum fluctuations of dissipative structures forming in nonlinear optical cavities, which we illustrate in the case of a degenerate, type I optical parametric oscillator. The method consists in (i) taking into account explicitly, through a collective variable description, the drift of the dissipative structure caused by the quantum noise, and (ii) expanding the remaining -internal- fluctuations in the biorthonormal basis associated to the linear operator governing the evolution of fluctuations in the linearized Langevin equations. We obtain general expressions for the squeezing and intensity fluctuations spectra. Then we theoretically study the squeezi…

PhysicsQuantum PhysicsField (physics)Degenerate energy levelsQuantum noiseFOS: Physical sciencesAtomic and Molecular Physics and OpticsLangevin equationDissipative solitonQuantum mechanicsQuantum electrodynamicsDissipative systemSolitonQuantum Physics (quant-ph)Quantum fluctuation
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Electric quantum walks in two dimensions

2015

We study electric quantum walks in two dimensions considering Grover, Alternate, Hadamard, and DFT quantum walks. In the Grover walk the behaviour under an electric field is easy to summarize: when the field direction coincides with the x or y axes, it produces a transient trapping of the probability distribution along the direction of the field, while when it is directed along the diagonals, a perfect 2D trapping is frustrated. The analysis of the alternate walk helps to understand the behaviour of the Grover walk as both walks are partially equivalent; in particular, it helps to understand the role played by the existence of conical intersections in the dispersion relations, as we show th…

PhysicsQuantum PhysicsField (physics)DiagonalFOS: Physical sciences01 natural sciences010305 fluids & plasmasDiscrete Fourier transform (general)Hadamard transformQuantum mechanicsDispersion relationElectric field0103 physical sciencesProbability distributionQuantum walkStatistical physics010306 general physicsQuantum Physics (quant-ph)
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Control of molecular dynamics with zero-area fields: Application to molecular orientation and photofragmentation

2014

The constraint of time-integrated zero-area on the laser field is a fundamental, both theoretical and experimental requirement in the control of molecular dynamics. By using techniques of local and optimal control theory, we show how to enforce this constraint on two benchmark control problems, namely molecular orientation and photofragmentation. The origin and the physical implications on the dynamics of this zero-area control field are discussed.

PhysicsQuantum PhysicsField (physics)Dynamics (mechanics)Zero (complex analysis)FOS: Physical sciences02 engineering and technology021001 nanoscience & nanotechnologyOptimal control01 natural sciencesAtomic and Molecular Physics and OpticsConstraint (information theory)Molecular dynamicsOrientation (geometry)0103 physical sciencesBenchmark (computing)Statistical physicsAtomic physicsQuantum Physics (quant-ph)010306 general physics0210 nano-technologyPhysical Review A
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Theory of slow-light solitons

2005

In the framework of the nonlinear $\Lambda$-model we investigate propagation of solitons in atomic vapors and Bose-Einstein condensates. We show how the complicated nonlinear interplay between fast solitons and slow-light solitons in the $\Lambda$-type media points to the possibility to create optical gates and, thus, to control the optical transparency of the $\Lambda$-type media. We provide an exact analytic description of decelerating, stopping and re-accelerating of slow-light solitons in atomic media in the nonadiabatic regime. Dynamical control over slow-light solitons is realized via a controlling field generated by an auxiliary laser. For a rather general time dependence of the fiel…

PhysicsQuantum PhysicsField (physics)FOS: Physical sciencesLambdaLaserSlow lightSignallaw.inventionNonlinear systemClassical mechanicslawMoment (physics)SolitonQuantum Physics (quant-ph)
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Device-independent quantum reading and noise-assisted quantum transmitters

2014

In quantum reading, a quantum state of light (transmitter) is applied to read classical information. In the presence of noise or for sufficiently weak signals, quantum reading can outperform classical reading by enhanced state distinguishability. Here we show that the enhanced quantum efficiency depends on the presence in the transmitter of a particular type of quantum correlations, the discord of response. Different encodings and transmitters give rise to different levels of efficiency. Considering noisy quantum probes we show that squeezed thermal transmitters with non-symmetrically distributed noise among the field modes yield a higher quantum efficiency compared to coherent thermal quan…

PhysicsQuantum PhysicsField (physics)TransmitterGeneral Physics and AstronomyFOS: Physical sciencesMathematical Physics (math-ph)Noise (electronics)Condensed Matter - Other Condensed MatterQuantum technologyQuantum stateQuantum mechanicsChernoff boundQuantum efficiencyQuantum Physics (quant-ph)QuantumMathematical PhysicsQCOther Condensed Matter (cond-mat.other)
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Field-free molecular orientation by THz laser pulses at high temperature

2012

We investigate to which extend a THz laser pulse can be used to produce field-free molecular orientation at high temperature. We consider laser pulses that can be implemented with the state of the art technology and we show that the efficiency of the control scheme crucially depends on the parameters of the molecule. We analyze the temperature effects on molecular dynamics and we demonstrate that, for some molecules, a noticeable orientation can be achieved at high temperature.

PhysicsQuantum PhysicsField (physics)business.industryOrientation (computer vision)Far-infrared laserFOS: Physical sciencesLaserAtomic and Molecular Physics and Opticslaw.inventionPulse (physics)PhotomixingMolecular dynamicslawOptoelectronicsMoleculebusinessQuantum Physics (quant-ph)Computer Science::Databases
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Resonant effects in a SQUID qubit subjected to nonadiabatic changes

2013

By quickly modifying the shape of the effective potential of a double SQUID flux qubit from a single-well to a double-well condition, we experimentally observe an anomalous behavior, namely an alternance of resonance peaks, in the probability to find the qubit in a given flux state. The occurrence of Landau-Zener transitions as well as resonant tunneling between degenerate levels in the two wells may be invoked to partially justify the experimental results. A quantum simulation of the time evolution of the system indeed suggests that the observed anomalous behavior can be imputable to quantum coherence effects. The interplay among all these mechanisms has a practical implication for quantum…

PhysicsQuantum PhysicsFlux qubitCharge qubitCondensed Matter - SuperconductivityTime evolutionSuperconducting devices; SQUID qubit; Landau-Zener transitions; resonant tunneling.Quantum simulatorFOS: Physical sciencesSQUID qubitresonant tunneling.Condensed Matter PhysicsCondensed Matter::Mesoscopic Systems and Quantum Hall EffectElectronic Optical and Magnetic MaterialsPhase qubitSuperconductivity (cond-mat.supr-con)Quantum mechanicsQubitqubit; supeconductvity; squidQuantum Physics (quant-ph)Landau-Zener transitionQuantumSuperconducting deviceQuantum computer
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Application of the small-tip-angle approximation in the toggling frame for the design of analytic robust pulses in quantum control

2021

We apply the Small Tip-Angle Approximation in the Toggling Frame in order to analytically design robust pulses against resonance offsets for state to state transfer in two-level quantum systems. We show that a broadband or a local robustness up to an arbitrary order can be achieved. We provide different control parameterizations to satisfy experimental constraints and limitations on the amplitude or energy of the pulse. A comparison with numerical optimal solutions is made.

PhysicsQuantum PhysicsFrame (networking)FOS: Physical sciencesTopology01 natural sciencesResonance (particle physics)030218 nuclear medicine & medical imagingPulse (physics)03 medical and health sciences0302 clinical medicineAmplitude[PHYS.QPHY]Physics [physics]/Quantum Physics [quant-ph]Robustness (computer science)0103 physical sciencesBroadbandQuantum Physics (quant-ph)010306 general physicsQuantumEnergy (signal processing)Physical Review A
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Information geometry of Gaussian channels

2009

We define a local Riemannian metric tensor in the manifold of Gaussian channels and the distance that it induces. We adopt an information-geometric approach and define a metric derived from the Bures-Fisher metric for quantum states. The resulting metric inherits several desirable properties from the Bures-Fisher metric and is operationally motivated from distinguishability considerations: It serves as an upper bound to the attainable quantum Fisher information for the channel parameters using Gaussian states, under generic constraints on the physically available resources. Our approach naturally includes the use of entangled Gaussian probe states. We prove that the metric enjoys some desir…

PhysicsQuantum PhysicsGaussianFOS: Physical sciencesMathematical Physics (math-ph)01 natural sciencesAtomic and Molecular Physics and Optics010305 fluids & plasmasStatistical manifoldIntrinsic metricCondensed Matter - Other Condensed Mattersymbols.namesakeQuantum mechanics0103 physical sciencesMetric (mathematics)symbolsApplied mathematicsInformation geometryFidelity of quantum statesQuantum Physics (quant-ph)010306 general physicsQuantum information scienceFisher information metricMathematical PhysicsOther Condensed Matter (cond-mat.other)
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Non-isospectral Hamiltonians, intertwining operators and hidden hermiticity

2011

We have recently proposed a strategy to produce, starting from a given hamiltonian $h_1$ and a certain operator $x$ for which $[h_1,xx^\dagger]=0$ and $x^\dagger x$ is invertible, a second hamiltonian $h_2$ with the same eigenvalues as $h_1$ and whose eigenvectors are related to those of $h_1$ by $x^\dagger$. Here we extend this procedure to build up a second hamiltonian, whose eigenvalues are different from those of $h_1$, and whose eigenvectors are still related as before. This new procedure is also extended to crypto-hermitian hamiltonians.

PhysicsQuantum PhysicsGeneral Physics and AstronomyFOS: Physical sciencesMathematical Physics (math-ph)Eigenvalues and eigenvectors of the second derivativeMathematics::Geometric Topologylaw.inventionGood quantum numbersymbols.namesakeintertwining relationsOperator (computer programming)IsospectralInvertible matrixlawQuantum electrodynamicssymbolsHamiltonian (quantum mechanics)Quantum Physics (quant-ph)Settore MAT/07 - Fisica MatematicaEigenvalues and eigenvectorsEigenvalue perturbationMathematical PhysicsMathematical physics
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