Search results for "Quantum physic"

showing 10 items of 1596 documents

Controlled insertion and retrieval of atoms coupled to a high-finesse optical resonator

2008

We experimentally investigate the interaction between one and two atoms and the field of a high-finesse optical resonator. Laser-cooled caesium atoms are transported into the cavity using an optical dipole trap. We monitor the interaction dynamics of a single atom strongly coupled to the resonator mode for several hundred milliseconds by observing the cavity transmission. Moreover, we investigate the position-dependent coupling of one and two atoms by shuttling them through the cavity mode. We demonstrate an alternative method, which suppresses heating effects, to analyze the atom-field interaction by retrieving the atom from the cavity and by measuring its final state.

Condensed Matter::Quantum GasesQuantum PhysicsMaterials scienceField (physics)Resonator modeFOS: Physical sciencesGeneral Physics and Astronomychemistry.chemical_elementPhysics::Opticslaw.inventionDipoleFinesseCoupling (physics)chemistrylawCaesiumOptical cavityAtomPhysics::Atomic and Molecular ClustersPhysics::Atomic PhysicsAtomic physicsQuantum Physics (quant-ph)
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Robust creation of atomic W state in a cavity by adiabatic passage

2009

We propose two robust schemes to generate controllable (deterministic) atomic W-states of three three-level atoms interacting with an optical cavity and a laser beam. Losses due to atomic spontaneous emissions and to cavity decay are efficiently suppressed by employing adiabatic passage technique and appropriately designed atom-field couplings. In these schemes the three atoms traverse the cavity-mode and the laser beam and become entangled in the free space outside the cavity.

Condensed Matter::Quantum GasesQuantum PhysicsPhysics::Atomic and Molecular ClustersFOS: Physical sciencesPhysics::Accelerator PhysicsPhysics::OpticsPhysics::Atomic PhysicsQuantum Physics (quant-ph)
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Quantum state transfer with ultracold atoms in optical lattices

2016

Ultracold atoms can be used to perform quantum simulations of a variety of condensed matter systems, including spin systems. These progresses point to the implementation of the manipulation of quantum states and to observe and exploit the effect of quantum correlations. A natural direction along this line is provided by the possibility to perform quantum state transfer (QST). After presenting a brief discussion of the simulation of quantum spin chains with ultracold gases and reminding the basic facts of QST, we discuss how to potentially use the tools of present-day ultracold technology to implement the QST between two regions of the atomic system (the sender and the receiver). The fidelit…

Condensed Matter::Quantum GasesQuantum PhysicsQuantum Gases (cond-mat.quant-gas)FOS: Physical sciencesCondensed Matter - Quantum GasesQuantum Physics (quant-ph)
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Simulating quantum-optical phenomena with cold atoms in optical lattices

2010

We propose a scheme involving cold atoms trapped in optical lattices to observe different phenomena traditionally linked to quantum-optical systems. The basic idea consists of connecting the trapped atomic state to a non-trapped state through a Raman scheme. The coupling between these two types of atoms (trapped and free) turns out to be similar to that describing light–matter interaction within the rotating-wave approximation, the role of matter and photons being played by the trapped and free atoms, respectively. We explain in particular how to observe phenomena arising from the collective spontaneous emission of atomic and harmonic oscillator samples, such as superradiance and directiona…

Condensed Matter::Quantum GasesQuantum PhysicsQuantum opticsDDC 530 / PhysicsFísicaFOS: Physical sciencesddc:530Physics::Atomic PhysicsQuantum Physics (quant-ph)Quantenoptik
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A concise review on pseudo-bosons, pseudo-fermions and their relatives

2017

We review some basic definitions and few facts recently established for $\D$-pseudo bosons and for pseudo-fermions. We also discuss an extended version of these latter, based on biorthogonal bases, which lives in a finite dimensional Hilbert space. Some examples are described in details.

Condensed Matter::Quantum GasesQuantum Physicspseudoboson010308 nuclear & particles physicsComputer scienceHigh Energy Physics::LatticeHilbert spaceFOS: Physical sciencesStatistical and Nonlinear PhysicsMathematical Physics (math-ph)01 natural sciencesAlgebrasymbols.namesakepseudofermionBiorthogonal system0103 physical sciencessymbolsCondensed Matter::Strongly Correlated Electrons010306 general physicsQuantum Physics (quant-ph)Mathematical PhysicsStatistical and Nonlinear Physic
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Coherent and squeezed vibrations for discrete variable harmonic oscillators

2009

In this work we study different types of coherent and squeezed states for the Charlier, Kravchuk and Meixner oscillators. We calculate the average values of different observables corresponding to the coherent states. We found that the coherent and squeezed states of the Kravchuk oscillator are unstable. There are also coherent and squeezed states that are similar to the coherent and squeezed states of the harmonic oscillator. We have introduced a discrete variable model for the biophoton coherent radiation, and the coherent thermal and squeezed thermal states. © 2009 Taylor & Francis.

Condensed Matter::Quantum GasesQuantum opticsPhysicsObservableQuantum Physicsharmonic oscillator coherent statesAtomic and Molecular Physics and OpticsBiophotonVibrationQuantum mechanicsQuantum electrodynamicsThermalCoherent statesHarmonic oscillatorSqueezed coherent stateJournal of Modern Optics
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Three-mode two-boson Jaynes–Cummings model in trapped ions

2006

In this paper, we analyse a two-boson three-mode Jaynes–Cummings model which can be implemented in the context of trapped ions. The symmetries of the Hamiltonian are brought to light and analysed in detail in order to solve the eigenvalue problem. The calculation of the time evolution operator shows the possibility of realizing interesting applications, such as the generation of nonclassical states.

Condensed Matter::Quantum GasesStatistics and ProbabilityPhysicsSettore FIS/02 - Fisica Teorica Modelli E Metodi MatematiciJaynes–Cummings modelsuperposition (mathematics)modesGeneral Physics and AstronomyStatistical and Nonlinear PhysicsQuantum PhysicsSettore FIS/03 - Fisica Della MateriaIonsymbols.namesakeharmonic oscillatorModeling and SimulationQuantum mechanicsQuantum electrodynamicsHomogeneous spacesymbolsHamiltonian (quantum mechanics)Mathematical PhysicsEigenvalues and eigenvectorsBosonJournal of Physics A: Mathematical and Theoretical
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(Regular) pseudo-bosons versus bosons

2012

We discuss in which sense the so-called {\em regular pseudo-bosons}, recently introduced by Trifonov and analyzed in some details by the author, are related to ordinary bosons. We repeat the same analysis also for {\em pseudo-bosons}, and we analyze the role played by certain intertwining operators, which may be bounded or not.

Condensed Matter::Quantum GasesStatistics and ProbabilityQuantum PhysicsHigh Energy Physics::PhenomenologyFOS: Physical sciencesGeneral Physics and AstronomyStatistical and Nonlinear PhysicsMathematical Physics (math-ph)Theoretical physicsModeling and SimulationBounded functionpseudo-bosonsQuantum Physics (quant-ph)Settore MAT/07 - Fisica MatematicaMathematical PhysicsBosonMathematics
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Fermi-type interaction in molecular and atomic Hamiltonians. Application to molecular systems and Bose-Einstein condensates.

2008

International audience; We present a simple prescription to build phenomenological Hamiltonians describing Fermi-type interactions and apply the developed formalism to two distinct physical systems. First, in a very simple way, we derive equations describing time dynamics of two coherently coupled Bose-Einstein condensates. Further, for bent XY2 molecules, we reproduce all the experimental data with an excellent precision.

Condensed Matter::Quantum Gases[ PHYS.QPHY ] Physics [physics]/Quantum Physics [quant-ph]Fermi-type Interaction. XY2. BEC[PHYS.QPHY]Physics [physics]/Quantum Physics [quant-ph][PHYS.QPHY] Physics [physics]/Quantum Physics [quant-ph]
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Moдель демкова–кунике для ассоциации холодных атомов: режим слабого взаимодействия.

2009

International audience; We examine the nonlinear dynamics of molecule formation at coherent photo- and magneto-association of an atomic Bose–Einstein condensate when the external field configuration is defined by the quasi-linear level crossing Demkov–Kunike model, characterized by a bell-shaped pulse and finite variation of the detuning. We present an approach to construct an approximation describing the temporal dynamics of the molecule formation in the weak interaction regime and apply the developed method to the nonlinear Demkov–Kunike problem. The presented approximation, written as a scaled solution to the linear problem associated to the nonlinear one we treat, contains adjustable pa…

Condensed Matter::Quantum Gases[ PHYS.QPHY ] Physics [physics]/Quantum Physics [quant-ph][PHYS.QPHY]Physics [physics]/Quantum Physics [quant-ph][PHYS.QPHY] Physics [physics]/Quantum Physics [quant-ph]
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