Search results for "Nonlinear"

showing 10 items of 3684 documents

Ramsey interferometry of non-Hermitian quantum impurities

2020

We introduce a Ramsey pulse scheme which extracts the non-Hermitian Hamiltonian associated to an arbitrary Lindblad dynamics. We propose a realted protocol to measure via interferometry a generalised Loschmidt echo of a generic state evolving in time with the non-Hermitian Hamiltonian itself, and we apply the scheme to a one-dimensional weakly interacting Bose gas coupled to a stochastic atomic impurity. The Loschmidt echo is mapped into a functional integral from which we calculate the long-time decohering dynamics at arbitrary impurity strengths. For strong dissipation we uncover the phenomenology of a quantum many-body Zeno effect: corrections to the decoherence exponent resulting from t…

PhysicsQuantum PhysicsBose gasEcho (computing)FOS: Physical sciences01 natural sciencesHermitian matrix010305 fluids & plasmasPulse (physics)Nonlinear Sciences::Chaotic DynamicsRamsey interferometryQuantum Gases (cond-mat.quant-gas)Quantum mechanics0103 physical sciencesAtom010306 general physicsQuantum Physics (quant-ph)Condensed Matter - Quantum GasesQuantumQuantum Zeno effect
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Cross-Kerr nonlinearity in optomechanical systems

2015

We consider the response of a nanomechanical resonator interacting with an electromagnetic cavity via a radiation pressure coupling and a cross-Kerr coupling. Using a mean field approach we solve the dynamics of the system, and show the different corrections coming from the radiation pressure and the cross-Kerr effect to the usually considered linearized dynamics.

PhysicsQuantum PhysicsCondensed Matter - Mesoscale and Nanoscale Physicsta114Kerr nonlinearitynanomechanical resonatorsDynamics (mechanics)FOS: Physical sciencesPhysics::Optics01 natural sciencesAtomic and Molecular Physics and Optics010309 opticsNanomechanical resonatorCoupling (physics)Classical mechanicsRadiation pressureElectromagnetic cavityMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciencesQuantum Physics (quant-ph)010306 general physicsPhysical Review A
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Macroscopic conductivity of free fermions in disordered media

2014

We conclude our analysis of the linear response of charge transport in lattice systems of free fermions subjected to a random potential by deriving general mathematical properties of its conductivity at the macroscopic scale. The present paper belongs to a succession of studies on Ohm and Joule's laws from a thermodynamic viewpoint. We show, in particular, the existence and finiteness of the conductivity measure $\mu _{\mathbf{\Sigma }}$ for macroscopic scales. Then we prove that, similar to the conductivity measure associated to Drude's model, $\mu _{\mathbf{\Sigma }}$ converges in the weak$^{\ast } $-topology to the trivial measure in the case of perfect insulators (strong disorder, compl…

PhysicsQuantum PhysicsCondensed matter physics82C70 82C44 82C20FOS: Physical sciencesStatistical and Nonlinear PhysicsMathematical Physics (math-ph)FermionConductivityMacroscopic scaleLattice (order)Quantum mechanicsTrivial measureOhmQuantum Physics (quant-ph)Electrical conductorAnderson impurity modelMathematical Physics
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Vacuum induced spin-1/2 Berry's phase.

2002

We calculate the Berry phase of a spin-1/2 particle in a magnetic field considering the quantum nature of the field. The phase reduces to the standard Berry phase in the semiclassical limit and eigenstate of the particle acquires a phase in the vacuum. We also show how to generate a vacuum induced Berry phase considering two quantized modes of the field which has a interesting physical interpretation.

PhysicsQuantum PhysicsCondensed matter physicsField (physics)Phase (waves)General Physics and AstronomySemiclassical physicsFOS: Physical sciencesVacuum Geometric phaseNonlinear Sciences::Chaotic DynamicsQuantization (physics)Geometric phaseQuantum mechanicsQuantum theoryBerry connection and curvatureQuantum field theorySpin (physics)Quantum Physics (quant-ph)Physical review letters
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Nonadiabatic Transitions for a Decaying Two-Level-System: Geometrical and Dynamical Contributions

2006

We study the Landau-Zener Problem for a decaying two-level-system described by a non-hermitean Hamiltonian, depending analytically on time. Use of a super-adiabatic basis allows to calculate the non-adiabatic transition probability P in the slow-sweep limit, without specifying the Hamiltonian explicitly. It is found that P consists of a ``dynamical'' and a ``geometrical'' factors. The former is determined by the complex adiabatic eigenvalues E_(t), only, whereas the latter solely requires the knowledge of \alpha_(+-)(t), the ratio of the components of each of the adiabatic eigenstates. Both factors can be split into a universal one, depending only on the complex level crossing points, and a…

PhysicsQuantum PhysicsFOS: Physical sciencesGeneral Physics and AstronomyStatistical and Nonlinear PhysicsLevel crossingCritical valuesymbols.namesakesymbolsDamping constantQuantum Physics (quant-ph)Hamiltonian (quantum mechanics)Adiabatic processMathematical PhysicsHarmonic oscillatorEigenvalues and eigenvectorsMathematical physics
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Nonlinear optical Galton board

2007

We generalize the concept of optical Galton board (OGB), first proposed by Bouwmeester et al. {[}Phys. Rev. A \textbf{61}, 013410 (2000)], by introducing the possibility of nonlinear self--phase modulation on the wavefunction during the walker evolution. If the original Galton board illustrates classical diffusion, the OGB, which can be understood as a grid of Landau--Zener crossings, illustrates the influence of interference on diffusion, and is closely connected with the quantum walk. Our nonlinear generalization of the OGB shows new phenomena, the most striking of which is the formation of non-dispersive pulses in the field distribution (soliton--like structures). These exhibit a variety…

PhysicsQuantum PhysicsField (physics)ChaoticFOS: Physical sciencesOptical chaosAtomic and Molecular Physics and OpticsChaos theoryÒptica quànticaNonlinear systemClassical mechanicsQuantum walkStatistical physicsQuantum Physics (quant-ph)Self-phase modulationQuantum computer
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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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Quadrature and polarization squeezing in a dispersive optical bistability model

2007

We theoretically study quadrature and polarization squeezing in dispersive optical bistability through a vectorial Kerr cavity model describing a nonlinear cavity filled with an isotropic chi(3) medium in which self-phase and cross-phase modulation, as well as four--wave mixing, occur. We derive expressions for the quantum fluctuations of the output field quadratures as a function of which we express the spectrum of fluctuations of the output field Stokes parameters. We pay particular attention to study how the bifurcations affecting the non-null linearly polarized output mode squeezes the orthogonally polarized vacuum mode, and show how this produces polarization squeezing.

PhysicsQuantum PhysicsLinear polarizationIsotropyFOS: Physical sciencesPolarization (waves)Atomic and Molecular Physics and OpticsSpectral lineOptical bistabilityNonlinear systemsymbols.namesakeQuantum mechanicssymbolsStokes parametersQuantum Physics (quant-ph)Quantum fluctuationPhysical Review A
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Nonlocally-induced (fractional) bound states: Shape analysis in the infinite Cauchy well

2015

Fractional (L\'{e}vy-type) operators are known to be spatially nonlocal. This becomes an issue if confronted with a priori imposed exterior Dirichlet boundary data. We address spectral properties of the prototype example of the Cauchy operator $(-\Delta )^{1/2}$ in the interval $D=(-1,1) \subset R$, with a focus on functional shapes of lowest eigenfunctions and their fall-off at the boundaries of $D$. New high accuracy formulas are deduced for approximate eigenfunctions. We analyze how their shape reproduction fidelity is correlated with the evaluation finesse of the corresponding eigenvalues.

PhysicsQuantum PhysicsMathematical analysisCauchy distributionFOS: Physical sciencesStatistical and Nonlinear PhysicsMathematical Physics (math-ph)EigenfunctionMathematics::Spectral TheoryDirichlet distributionMathematics - Spectral Theorysymbols.namesakeOperator (computer programming)Bound statesymbolsFOS: MathematicsA priori and a posterioriQuantum Physics (quant-ph)Spectral Theory (math.SP)Mathematical PhysicsEigenvalues and eigenvectorsShape analysis (digital geometry)
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Comparative study of monotonically convergent optimization algorithms for the control of molecular rotation

2013

We apply two different monotonically convergent optimization algorithms to the control of molecular rotational dynamics by laser pulses. This example represents a quantum control problem where the interaction of the system with the external field is non-linear. We test the validity and accuracy of the two methods on the key control targets of producing molecular orientation and planar delocalization at zero temperature, and maximizing permanent alignment at non-zero temperature.

PhysicsQuantum PhysicsMathematical analysisFOS: Physical sciencesMonotonic functionLaserAtomic and Molecular Physics and Opticslaw.inventionNonlinear systemDelocalized electronPlanarlawOrientation (geometry)Key (cryptography)Quantum Physics (quant-ph)Control (linguistics)Physical Review A
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