Search results for "quant-ph"

showing 10 items of 1378 documents

Dissipative structures in optomechanical cavities

2012

Motivated by the increasing interest in the properties of multimode optomechanical devices, here we study a system in which a driven mode of a large-area optical cavity is despersively coupled to a deformable mechanical element. Two different models naturally appear in such scenario, for which we predict the formation of periodic patterns, localized structures (cavity solitons), and domain walls, among other complex nonlinear phenomena. Further, we propose a realistic design based on intracavity membranes where our models can be studied experimentally. Apart from its relevance to the field of nonlinear optics, the results put forward here are a necessary step towards understanding the quant…

PhysicsQuantum PhysicsMulti-mode optical fiberField (physics)FOS: Physical sciencesNonlinear opticsPhysics::OpticsPattern Formation and Solitons (nlin.PS)Degrees of freedom (mechanics)01 natural sciencesNonlinear Sciences - Pattern Formation and Solitonslaw.invention010309 opticsLongitudinal modeClassical mechanicslawOptical cavity0103 physical sciencesDissipative systemQuantum Physics (quant-ph)010306 general physicsQuantumOptics (physics.optics)Physics - Optics
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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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Phase Locking between Two All-Optical Quantum Memories.

2020

Optical approaches to quantum computation require the creation of multi-mode photonic quantum states in a controlled fashion. Here we experimentally demonstrate phase locking of two all-optical quantum memories, based on a concatenated cavity system with phase reference beams, for the time-controlled release of two-mode entangled single-photon states. The release time for each mode can be independently determined. The generated states are characterized by two-mode optical homodyne tomography. Entanglement and nonclassicality are preserved for release-time differences up to 400 ns, confirmed by logarithmic negativities and Wigner-function negativities, respectively.

PhysicsQuantum PhysicsMulti-mode optical fiberbusiness.industryPhase (waves)FOS: Physical sciencesPhysics::OpticsGeneral Physics and AstronomyQuantum entanglement01 natural sciencesDirect-conversion receiverQuantum stateQuantum mechanics0103 physical sciencesPhotonicsQuantum Physics (quant-ph)010306 general physicsbusinessQuantumQuantum computerPhysical review letters
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Direct high-precision measurement of the magnetic moment of the proton

2014

The spin-magnetic moment of the proton $\mu_p$ is a fundamental property of this particle. So far $\mu_p$ has only been measured indirectly, analysing the spectrum of an atomic hydrogen maser in a magnetic field. Here, we report the direct high-precision measurement of the magnetic moment of a single proton using the double Penning-trap technique. We drive proton-spin quantum jumps by a magnetic radio-frequency field in a Penning trap with a homogeneous magnetic field. The induced spin-transitions are detected in a second trap with a strong superimposed magnetic inhomogeneity. This enables the measurement of the spin-flip probability as a function of the drive frequency. In each measurement…

PhysicsQuantum PhysicsMultidisciplinaryAnomalous magnetic dipole momentNeutron magnetic momentMagnetic energyAtomic Physics (physics.atom-ph)Proton magnetic momentFOS: Physical sciencesphysics.atom-phElectron magnetic dipole momentSpin magnetic momentPhysics - Atomic PhysicsNuclear magnetic momentAtomic physicsPräzisionsexperimente - Abteilung BlaumQuantum Physics (quant-ph)Magnetic dipole
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Analytic estimation of transition between instantaneous eigenstates of quantum two-level system

2018

AbstractTransition amplitudes between instantaneous eigenstates of a quantum two-level system are evaluated analytically on the basis of a new parametrization of its evolution operator, which has recently been proposed to construct exact solutions. In particular, the condition under which the transitions are suppressed is examined analytically. It is shown that the analytic expression of the transition amplitude enables us, not only to confirm the adiabatic theorem, but also to derive the necessary and sufficient condition for quantum two-level system to remain in one of the instantaneous eigenstates.

PhysicsQuantum PhysicsMultidisciplinaryBasis (linear algebra)Transition (fiction)Operator (physics)lcsh:Rlcsh:MedicineFOS: Physical sciences01 natural sciencesArticle010305 fluids & plasmasAdiabatic theoremAmplitude0103 physical scienceslcsh:Q010306 general physicslcsh:ScienceQuantum Physics (quant-ph)ParametrizationQuantumEigenvalues and eigenvectorsMathematical physics
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Emergent hydrodynamics in a strongly interacting dipolar spin ensemble.

2021

Conventional wisdom holds that macroscopic classical phenomena naturally emerge from microscopic quantum laws. However, despite this mantra, building direct connections between these two descriptions has remained an enduring scientific challenge. In particular, it is difficult to quantitatively predict the emergent "classical" properties of a system (e.g. diffusivity, viscosity, compressibility) from a generic microscopic quantum Hamiltonian. Here, we introduce a hybrid solid-state spin platform, where the underlying disordered, dipolar quantum Hamiltonian gives rise to the emergence of unconventional spin diffusion at nanometer length scales. In particular, the combination of positional di…

PhysicsQuantum PhysicsMultidisciplinaryRandom fieldCondensed Matter - Mesoscale and Nanoscale PhysicsQuantum simulatorFOS: Physical sciencesDisordered Systems and Neural Networks (cond-mat.dis-nn)Condensed Matter - Disordered Systems and Neural NetworksFick's laws of diffusionDipolesymbols.namesakeClassical mechanicsMesoscale and Nanoscale Physics (cond-mat.mes-hall)Spin diffusionsymbolsddc:500Spin (physics)Hamiltonian (quantum mechanics)Quantum Physics (quant-ph)QuantumNature
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Topological Signatures in the Electronic Structure of Graphene Spirals

2013

Topology is familiar mostly from mathematics, but also natural sciences have found its concepts useful. Those concepts have been used to explain several natural phenomena in biology and physics, and they are particularly relevant for the electronic structure description of topological insulators and graphene systems. Here, we introduce topologically distinct graphene forms - graphene spirals - and employ density-functional theory to investigate their geometric and electronic properties. We found that the spiral topology gives rise to an intrinsic Rashba spin-orbit splitting. Through a Hamiltonian constrained by space curvature, graphene spirals have topologically protected states due to tim…

PhysicsQuantum PhysicsMultidisciplinaryta114Condensed Matter - Mesoscale and Nanoscale PhysicsGrapheneFOS: Physical sciencesElectronic structureTopologyCurvatureArticlelaw.inventionsymbols.namesakelawTopological insulatorMesoscale and Nanoscale Physics (cond-mat.mes-hall)symbolsNatural scienceHamiltonian (quantum mechanics)Quantum Physics (quant-ph)Electronic properties
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N-dimensional alternate coined quantum walks from a dispersion-relation perspective

2013

We propose an alternative definition of an N-dimensional coined quantum walk by generalizing a recent proposal [Di Franco et al., Phys. Rev. Lett. 106, 080502 (2011)]. This N-dimensional alternate quantum walk, AQW_N, in contrast with the standard definition of the N-dimensional quantum walk, QW_N, requires only a coin-qubit. We discuss the quantum diffusion properties of AQW_2 and AQW_3 by analyzing their dispersion relations that reveal, in particular, the existence of diabolical points. This allows us to highlight interesting similarities with other well known physical phenomena. We also demonstrate that AQW_3 generates genuine multipartite entanglement. Finally we discuss the implementa…

PhysicsQuantum PhysicsN dimensionalFOS: Physical sciencesQuantum diffusion01 natural sciencesMultipartite entanglementAtomic and Molecular Physics and OpticsÒptica quàntica010305 fluids & plasmasPerspective (geometry)Standard definitionQubitQuantum mechanicsDispersion relation0103 physical sciencesQuantum walkQuantum Physics (quant-ph)010306 general physicsPhysical Review A
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Geometrical characterization of non-Markovianity

2013

We introduce a new tool for the quantitative characterisation of the departure form Markovianity of a given dynamical process. Our tool can be applied to a generic $N$-level system and extended straightforwardly to Gaussian continuous-variable systems. It is linked to the change of the volume of physical states that are dynamically accessible to a system and provides qualitative expectations in agreement with some of the analogous tools proposed so far. We illustrate its prediticve power by tackling a few canonical examples.

PhysicsQuantum PhysicsN-LEVEL SYSTEMSQuantum decoherenceGaussianProcess (computing)FOS: Physical sciencesAtomic and Molecular Physics and OpticsSettore FIS/03 - Fisica Della MateriaCharacterization (materials science)DYNAMICAL SEMIGROUPSsymbols.namesakeN-LEVEL SYSTEMS; DYNAMICAL SEMIGROUPSMeasurement theorysymbolsStatistical physicsQuantum Physics (quant-ph)
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Dressed states of a quantum emitter strongly coupled to a metal nanoparticle

2016

Hybrid molecule-plasmonic nanostructures have demonstrated their potential for surface enhanced spectroscopies, sensing, or quantum control at the nanoscale. In this Letter, we investigate the strong coupling regime and explicitly describe the hybridization between the localized plasmons of a metal nanoparticle and the excited state of a quantum emitter, offering a simple and precise understanding of the energy exchange in full analogy with cavity quantum electrodynamics treatment and a dressed atom picture. Both near-field emission and far-field radiation are discussed, revealing the richness of such optical nanosources.

PhysicsQuantum PhysicsNanostructureCondensed Matter - Mesoscale and Nanoscale PhysicsCavity quantum electrodynamicsFOS: Physical sciencesPhysics::OpticsNanoparticleNear and far field02 engineering and technologyRadiation021001 nanoscience & nanotechnology01 natural sciencesMolecular physicsAtomic and Molecular Physics and OpticsExcited stateMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciencesAtomQuantum Physics (quant-ph)010306 general physics0210 nano-technologyPlasmonOptics (physics.optics)Physics - OpticsOptics Letters
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