Search results for "fluctuation"

showing 10 items of 357 documents

Plasmon mass scale and quantum fluctuations of classical fields on a real time lattice

2018

Classical real-time lattice simulations play an important role in understanding non-equilibrium phenomena in gauge theories and are used in particular to model the prethermal evolution of heavy-ion collisions. Above the Debye scale the classical Yang-Mills (CYM) theory can be matched smoothly to kinetic theory. First we study the limits of the quasiparticle picture of the CYM fields by determining the plasmon mass of the system using 3 different methods. Then we argue that one needs a numerical calculation of a system of classical gauge fields and small linearized fluctuations which correspond to quantum fluctuations, in a way that keeps the separation between the two manifest. We demonstra…

QC1-999hep-latFOS: Physical sciencesplasmafysiikka114 Physical sciences01 natural sciencessymbols.namesakeHigh Energy Physics - LatticeHigh Energy Physics - Phenomenology (hep-ph)LinearizationLattice (order)0103 physical sciencesGauge theory010306 general physicsQuantum fluctuationPlasmonplasmaParticle Physics - PhenomenologyDebyePhysicsta114010308 nuclear & particles physicsplasma physicsPhysicsGaussHigh Energy Physics - Lattice (hep-lat)hep-phParticle Physics - LatticeoscillationHigh Energy Physics - PhenomenologyClassical mechanicsQuasiparticlesymbols
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A method for fitting multi-component decay curves

1982

Abstract A generalization of a non-iterative method recently proposed by Mukoyama for the fitting of two-component decay curve is presented. Two modifications of the procedure are also suggested, by which the influence of the statistical fluctuations of the data may be reduced. Results of fairly good quality are obtained also for three- and, to a lesser extent, for four-component decay curves.

Quality (physics)GeneralizationComponent (thermodynamics)General EngineeringStatistical physicsStatistical fluctuationsDecay curveMathematicsNuclear Instruments and Methods in Physics Research
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Fluctuation theorems for non-Markovian quantum processes

2013

Exploiting previous results on Markovian dynamics and fluctuation theorems, we study the consequences of memory effects on single realizations of nonequilibrium processes within an open system approach. The entropy production along single trajectories for forward and backward processes is obtained with the help of a recently proposed classical-like non-Markovian stochastic unravelling, which is demonstrated to lead to a correction of the standard entropic fluctuation theorem. This correction is interpreted as resulting from the interplay between the information extracted from the system through measurements and the flow of information from the environment to the open system: Due to memory e…

Quantum PhysicsFluctuation theorems non-Markovianity Open Quantum Systems Memory effects Entropy Quantum ThermodynamicsQuantum decoherenceStatistical Mechanics (cond-mat.stat-mech)Entropy productionFluctuation theoremFOS: Physical sciencesNon-equilibrium thermodynamicsMarkov processOpen system (systems theory)symbols.namesakesymbolsStatistical physicsQuantum Physics (quant-ph)QuantumEntropy (arrow of time)Condensed Matter - Statistical MechanicsMathematics
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General Linearized Theory of Quantum Fluctuations around Arbitrary Limit Cycles

2017

The theory of Gaussian quantum fluctuations around classical steady states in nonlinear quantum-optical systems (also known as standard linearization) is a cornerstone for the analysis of such systems. Its simplicity, together with its accuracy far from critical points or situations where the nonlinearity reaches the strong coupling regime, has turned it into a widespread technique, which is the first method of choice in most works on the subject. However, such a technique finds strong practical and conceptual complications when one tries to apply it to situations in which the classical long-time solution is time dependent, a most prominent example being spontaneous limit-cycle formation. H…

Quantum PhysicsVan der Pol oscillatorGaussianFOS: Physical sciencesGeneral Physics and Astronomy01 natural sciencesSymmetry (physics)Òptica quàntica010305 fluids & plasmasNonlinear systemsymbols.namesakeLinearizationQuantum mechanics0103 physical sciencessymbolsSymmetry breakingStatistical physicsLimit (mathematics)Quantum Physics (quant-ph)010306 general physicsQuantum fluctuationMathematicsPhysical Review Letters
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GHZ state generation of three Josephson qubits in the presence of bosonic baths

2013

We analyze an entangling protocol to generate tripartite Greenberger-Horne-Zeilinger states in a system consisting of three superconducting qubits with pairwise coupling. The dynamics of the open quantum system is investigated by taking into account the interaction of each qubit with an independent bosonic bath with an ohmic spectral structure. To this end a microscopic master equation is constructed and exactly solved. We find that the protocol here discussed is stable against decoherence and dissipation due to the presence of the external baths.

Quantum decoherencequantum statistical methodFOS: Physical sciencesQuantum entanglement01 natural sciences010305 fluids & plasmasSuperconductivity (cond-mat.supr-con)quantum fluctuations quantum noise quantum jumpQuantum nonlocalityOpen quantum systemQuantum mechanics0103 physical sciencesMaster equationdecoherence010306 general physicsSuperconductivityPhysicsQuantum PhysicsCondensed Matter - Superconductivityquantum nonlocalityQuantum PhysicsCondensed Matter PhysicsAtomic and Molecular Physics and OpticsGreenberger–Horne–Zeilinger stateQubitopen systemQuantum Physics (quant-ph)entanglementquantum state engineering and measurementJournal of Physics B: Atomic, Molecular and Optical Physics
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Type I optical parametric oscillators above threshold are perfect squeezers for empty gauss-hermite modes at any pumping level

2007

A type I optical parametric oscillator pumped by a Gaussian beam above threshold and tuned to its first transverse mode family is shown to yield a perfectly squeezed, empty Gauss-Hermite mode at any pumping level.

Quantum opticsPhysicsHermite polynomialsQuantum mechanicsQuantum noiseOptical parametric oscillatorPhysics::OpticsQuantum fluctuationParametric statisticsTransverse modeGaussian beam
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Quantum fluctuations in cavity solitons

2005

Quantum fluctuations of degenerate optical parametric oscillators' cavity solitons (CS) are studied. We show that CSs are sources of perfectly squeezed light that exhibit photon fluctuations below the shot-noise level as well.

Quantum opticsPhysicsPhotonSpontaneous parametric down-conversionQuantum electrodynamicsQuantum mechanicsDegenerate energy levelsPhysics::OpticsFresnel numberCondensed Matter::Mesoscopic Systems and Quantum Hall EffectQuantum fluctuationSqueezed coherent stateParametric statistics
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Quantum noise properties of cavity solitons

2006

General method for studying quantum fluctuations of dissipative structures formed in nonlinear optical cavities is presented. Application to cavity soliton supported by degenerate optical parametric oscillator is presented. Squeezing and intensity fluctuations spectra are discussed.

Quantum opticsPhysicsQuantum mechanicsQuantum noiseDegenerate energy levelsCavity quantum electrodynamicsDissipative systemOptical parametric oscillatorPhysics::OpticsSolitonQuantum fluctuation
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The influence of quantum fluctuations on phase transition temperature in disordered ferroelectrics

2014

We consider the disordered ferroelectric, where the impurity dipoles interact via quantum optical phonons. We show that quantum fluctuations are amplified by the effects of disorder so that they can be important up to the ferroelectric phase transition temperature. In this paper, we calculate the ferroelectric phase transition temperature as a function of impurity dipole concentration. We show that quantum effects change the character of concentrational dependence of . Namely, they cause the discontinuity in so that the critical concentration is reached abruptly. We have shown that quantum effects inhibit the ferroelectricity so that larger (than that in purely classical disordered ferroele…

Quantum phase transitionCondensed Matter::Materials ScienceDipoleMaterials scienceCondensed matter physicsPhononQuantum critical pointGeneral Materials ScienceQuantum phasesInstrumentationQuantumFerroelectricityQuantum fluctuationPhase Transitions
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Quantum Criticality in a Bosonic Josephson Junction

2011

In this paper we consider a bosonic Josephson junction described by a two-mode Bose-Hubbard model, and we thoroughly analyze a quantum phase transition occurring in the system in the limit of infinite bosonic population. We discuss the relation between this quantum phase transition and the dynamical bifurcation occurring in the spectrum of the Discrete Self Trapping equations describing the system at the semiclassical level. In particular, we identify five regimes depending on the strength of the effective interaction among bosons, and study the finite-size effects arising from the finiteness of the bosonic population. We devote a special attention to the critical regime which reduces to th…

Quantum phase transitionJosephson effectPhysicsDYNAMICSCondensed Matter::Quantum Gaseseducation.field_of_studySPECTRUMStatistical Mechanics (cond-mat.stat-mech)PopulationSELF-TRAPPING EQUATIONSemiclassical physicsFOS: Physical sciencesFLUCTUATIONSEntropy of entanglementAtomic and Molecular Physics and OpticsBifurcation theoryQuantum mechanicsThermodynamic limitQuantum informationeducationBOSE-EINSTEIN CONDENSATECondensed Matter - Statistical Mechanics
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