Search results for "Linear system"

showing 10 items of 1558 documents

Dynamics of breather modes in a nonlinear “helicoidal” model of DNA

1991

Via a recent model with an additional helicoidal coupling, the dynamics of breathers modes in DNA are studied analytically and with the use of numerical simulations. It is shown that these excitations are longlived and can match experimentally observed fluctuational openings.

PhysicsQuantitative Biology::BiomoleculesCoupling (physics)Nonlinear systemClassical mechanicsDna dynamicsBreatherDynamics (mechanics)General Physics and AstronomyMorse potentialPhysics Letters A
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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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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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Spatial localization and pattern formation in discrete optomechanical cavities and arrays

2020

We investigate theoretically the generation of nonlinear dissipative structures in optomechanical (OM) systems containing discrete arrays of mechanical resonators. We consider both hybrid models in which the optical system is a continuous multimode field, as it would happen in an OM cavity containing an array of micro-mirrors, and also fully discrete models in which each mechanical resonator interacts with a single optical mode, making contact with Ludwig & Marquardt [Phys. Rev. Lett. 101, 073603 (2013)]. Also, we study the connections between both types of models and continuous OM models. While all three types of models merge naturally in the limit of a large number of densely distribu…

PhysicsQuantum PhysicsMulti-mode optical fiberField (physics)Mode (statistics)FOS: Physical sciencesGeneral Physics and AstronomyPattern formationÒpticaTopologySolitons01 natural sciences[PHYS.PHYS.PHYS-GEN-PH]Physics [physics]/Physics [physics]/General Physics [physics.gen-ph]010305 fluids & plasmasNonlinear systemResonator0103 physical sciencesLimit (music)Dissipative systemQuantum Physics (quant-ph)010306 general physicsPhysics - OpticsOptics (physics.optics)
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Robust control of unstable nonlinear quantum systems

2020

Adiabatic passage is a standard tool for achieving robust transfer in quantum systems. We show that, in the context of driven nonlinear Hamiltonian systems, adiabatic passage becomes highly non-robust when the target is unstable. We show this result for a generic (1:2) resonance, for which the complete transfer corresponds to a hyperbolic fixed point in the classical phase space featuring an adiabatic connectivity strongly sensitive to small perturbations of the model. By inverse engineering, we devise high-fidelity and robust partially non-adiabatic trajectories. They localize at the approach of the target near the stable manifold of the separatrix, which drives the dynamics towards the ta…

PhysicsQuantum PhysicsNonlinear opticsFOS: Physical sciences01 natural sciencesResonance (particle physics)Stable manifold010305 fluids & plasmasNonlinear system0103 physical sciencesStatistical physicsRobust control010306 general physicsAdiabatic processQuantum Physics (quant-ph)QuantumHyperbolic equilibrium pointPhysical Review A
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Measurement-induced optical Kerr interaction

2013

We present a method for implementing a weak optical Kerr interaction (single-mode Kerr Hamiltonian) in a measurement-based fashion using the common set of universal elementary interactions for continuous-variable quantum computation. Our scheme is a conceptually distinct alternative to the use of naturally occurring, weak Kerr nonlinearities or specially designed nonlinear media. Instead, we propose to exploit suitable offline prepared quartic ancilla states together with beam splitters, squeezers, and homodyne detectors. For perfect ancilla states and ideal operations, our decompositions for obtaining the measurement-based Kerr Hamiltonian lead to a realization with near-unit fidelity. Non…

PhysicsQuantum PhysicsPhotonFOS: Physical sciencesPhysics::OpticsAtomic and Molecular Physics and Opticslaw.inventionsymbols.namesakeSuperposition principleNonlinear systemClassical mechanicslawQuartic functionQuantum mechanicssymbolsCoherent statesQuantum Physics (quant-ph)Hamiltonian (quantum mechanics)Beam splitterQuantum computerPhysical Review A
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Steepest entropy ascent for two-state systems with slowly varying Hamiltonians.

2018

The steepest entropy ascent approach is considered and applied to two-state systems. When the Hamiltonian of the system is time-dependent, the principle of maximum entropy production can still be exploited; arguments to support this fact are given. In the limit of slowly varying Hamiltonians, which allows for the adiabatic approximation for the unitary part of the dynamics, the system exhibits significant robustness to the thermalization process. Specific examples such as a spin in a rotating field and a generic two-state system undergoing an avoided crossing are considered.

PhysicsQuantum PhysicsSettore FIS/02 - Fisica Teorica Modelli E Metodi MatematiciPrinciple of maximum entropyAvoided crossingNon-linear dynamicAdiabatic EvolutionsNon-equilibrium thermodynamicsFOS: Physical sciences01 natural sciencesUnitary stateSettore FIS/03 - Fisica Della Materia010305 fluids & plasmasAdiabatic theoremNonlinear systemThermalisation0103 physical sciencesStatistical physics010306 general physicsQuantum Physics (quant-ph)Entropy (arrow of time)Statistical and Nonlinear PhysicNon-Equilibrium thermodynamicPhysical review. E
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Steady-state generation of negative-Wigner-function light using feedback

2016

We propose a method of producing steady-state coherent light with negative Wigner functions in nonlinear media combined with feedback control. While the nonlinearities are essential to produce the Wigner negativities, this alone is insufficient to stabilize steady-state light with negativities. Using feedback control to control the phase in the cavity, we find that this produces significant total negativities for reasonable experimental parameters. The negative Wigner function is produced continuously and does not appear to be restricted to low-amplitude light. The technique is applicable to systems such as exciton-polaritons, where strong natural nonlinearities are present.

PhysicsQuantum PhysicsSteady state (electronics)business.industryFeedback controlPhase (waves)FOS: Physical sciences02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesNonlinear systemOpticsQuantum Gases (cond-mat.quant-gas)Quantum mechanics0103 physical sciencesWigner distribution function010306 general physics0210 nano-technologybusinessCondensed Matter - Quantum GasesQuantum Physics (quant-ph)
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