Search results for "quant-ph"

showing 10 items of 1378 documents

Visibility of Young's interference fringes: Scattered light from small ion crystals

2015

We observe interference in the light scattered from trapped $^{40}$Ca$^+$ ion crystals. By varying the intensity of the excitation laser, we study the influence of elastic and inelastic scattering on the visibility of the fringe pattern and discriminate its effect from that of the ion temperature and wave-packet localization. In this way we determine the complex degree of coherence and the mutual coherence of light fields produced by individual atoms. We obtain interference fringes from crystals consisting of two, three and four ions in a harmonic trap. Control of the trapping potential allows for the adjustment of the interatomic distances and thus the formation of linear arrays of atoms s…

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsMutual coherenceAtomic Physics (physics.atom-ph)General Physics and AstronomyFOS: Physical sciencesDegree of coherenceGratingInelastic scatteringInterference (wave propagation)Laser01 natural sciencesIonlaw.inventionPhysics - Atomic Physics010309 opticslaw0103 physical sciencesPhysics::Atomic PhysicsAtomic physics010306 general physicsQuantum Physics (quant-ph)Excitation
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Anyons and transmutation of statistics via vacuum induced Berry phase

2004

We show that bosonic fields may present anyonic behavior when interacting with a fermion in a Jaynes-Cummings-like model. The proposal is accomplished via the interaction of a two-level system with two quantized modes of a harmonic oscillator; under suitable conditions, the system acquires a fractional geometric phase. A crucial role is played by the entanglement of the system eigenstates, which provides a two-dimensional confinement in the effective evolution of the system, leading to the anyonic behavior. For a particular choice of parameters, we show that it is possible to transmute the statistics of the system continually from fermions to bosons. We also present an experimental proposal…

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsNuclear transmutationFOS: Physical sciencesQuantum PhysicsFermionQuantum entanglementTopological quantum computerAtomic and Molecular Physics and OpticsBosonic excitationHigh Energy Physics::TheoryGeometric phaseQuantum mechanicsStatisticsAnyonQuantum Physics (quant-ph)Harmonic oscillatorEigenvalues and eigenvectorsBoson
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Observation of coherent quench dynamics in a metallic many-body state of fermionic atoms

2014

Quantum simulation with ultracold atoms has become a powerful technique to gain insight into interacting many-body systems. In particular, the possibility to study nonequilibrium dynamics offers a unique pathway to understand correlations and excitations in strongly interacting quantum matter. So far, coherent nonequilibrium dynamics has exclusively been observed in ultracold many-body systems of bosonic atoms. Here we report on the observation of coherent quench dynamics of fermionic atoms. A metallic state of ultracold spin-polarised fermions is prepared along with a Bose-Einstein condensate in a shallow three-dimensional optical lattice. After a quench that suppresses tunnelling between …

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsOptical latticeMultidisciplinaryCondensed matter physicsHigh Energy Physics::LatticeGeneral Physics and AstronomyQuantum simulatorFOS: Physical sciencesGeneral ChemistryFermionGeneral Biochemistry Genetics and Molecular BiologyFermionic condensateQuantum stateUltracold atomQuantum Gases (cond-mat.quant-gas)Quantum mechanicsQuantum metrologyCondensed Matter - Quantum GasesQuantum Physics (quant-ph)Boson
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Free fermion antibunching in a degenerate atomic Fermi gas released from an optical lattice

2006

Noise in a quantum system is fundamentally governed by the statistics and the many-body state of the underlying particles. Whereas for bosonic particles the correlated noise observed for e.g. photons or bosonic neutral atoms can still be explained within a classical field description with fluctuating phases, the anticorrelations in the detection of fermionic particles have no classical analogue. The observation of such fermionic antibunching is so far scarce and has been confined to electrons and neutrons. Here we report on the first direct observation of antibunching of neutral fermionic atoms. Through an analysis of the atomic shot noise in a set of standard absorption images, of a gas of…

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsOptical latticeMultidisciplinaryDegenerate energy levelsFOS: Physical sciencesQuantum phasesFermionCondensed Matter - Soft Condensed MatterFermionic condensateCondensed Matter - Other Condensed MatterQuantum mechanicsQuantum systemSoft Condensed Matter (cond-mat.soft)Fermi gasQuantum Physics (quant-ph)QuantumOther Condensed Matter (cond-mat.other)
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Shaking the entropy out of a lattice:atomic filtering by vibrational excitations

2012

We present a simple and efficient scheme to reduce atom-number fluctuations in optical lattices. The interaction-energy difference for atoms in different vibrational states is used to remove excess atomic occupation. The remaining vacant sites are then filled with atoms by merging adjacent wells, for which we implement a protocol that circumvents the constraints of unitarity. The preparation of large regions with precisely one atom per lattice site is discussed for both bosons and fermions. The resulting low-entropy Mott-insulating states may serve as high-fidelity register states for quantum computing and as a starting point for investigations of many-body physics.

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsOptical latticeUnitarityCluster stateFOS: Physical sciencesFermion01 natural sciencesAtomic and Molecular Physics and Optics010305 fluids & plasmasquant-phQuantum Gases (cond-mat.quant-gas)Lattice (order)Quantum mechanics0103 physical sciencesAtomAtomic physicsCondensed Matter - Quantum GasesQuantum Physics (quant-ph)010306 general physicscond-mat.quant-gasQuantum computerBoson
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Manipulation of optical solitons in Bose-Einstein condensates

2004

We propose a method to control the optical transparency of a Bose-Einstein condensate with working energy levels of the Lambda-type. The reported effects are essentially nonlinear and are considered in the framework of an exactly solvable model describing the interaction of light with a Lambda-type medium. We show how the complicated nonlinear interplay between fast and slow solitons in the $\Lambda$-type medium points to a possibility to create optical gates as well as to a possibility to store optical information.

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsPhysics and Astronomy (miscellaneous)FOS: Physical sciencesOptical transparencyAtomic and Molecular Physics and Opticslaw.inventionNonlinear systemlawQuantum mechanicsQuantum Physics (quant-ph)Bose–Einstein condensateEnergy (signal processing)
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Collective decoherence of cold atoms coupled to a Bose-Einstein condensate

2009

We examine the time evolution of cold atoms (impurities) interacting with an environment consisting of a degenerate bosonic quantum gas. The impurity atoms differ from the environment atoms, being of a different species. This allows one to superimpose two independent trapping potentials, each being effective only on one atomic kind, while transparent to the other. When the environment is homogeneous and the impurities are confined in a potential consisting of a set of double wells, the system can be described in terms of an effective spin-boson model, where the occupation of the left or right well of each site represents the two (pseudo)-spin states. The irreversible dynamics of such system…

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsQuantum decoherenceDephasingDegenerate energy levelsTime evolutionGeneral Physics and AstronomyFOS: Physical sciencesBose Einstein condensates open quantum systems quantum information theoryCondensed Matter::Mesoscopic Systems and Quantum Hall Effectddc:law.inventionlawQuantum Gases (cond-mat.quant-gas)Quantum mechanicsMaster equationCondensed Matter - Quantum GasesQuantum Physics (quant-ph)Bose–Einstein condensateBosonCoherence (physics)
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Quantum dynamics of an atomic double-well system interacting with a trapped ion

2014

We theoretically analyze the dynamics of an atomic double-well system with a single ion trapped in its center. We find that the atomic tunnelling rate between the wells depends both on the spin of the ion via the short-range spin-dependent atom-ion scattering length and on its motional state with tunnelling rates reaching hundreds of Hz. A protocol is presented that could transport an atom from one well to the other depending on the motional (Fock) state of the ion within a few ms. This phonon-atom coupling is of interest for creating atom-ion entangled states and may form a building block in constructing a hybrid atom-ion quantum simulator. We also analyze the effect of imperfect ground st…

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsQuantum dynamicsQuantum simulatorFOS: Physical sciences7. Clean energyIon trappingAtomic and Molecular Physics and OpticsIonPhysics::Plasma PhysicsAtomIon trapPhysics::Atomic PhysicsAtomic physicsSpin (physics)Quantum Physics (quant-ph)Trapped ion quantum computer
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A quantum random walk of a Bose-Einstein condensate in momentum space

2016

Each step in a quantum random walk is typically understood to have two basic components: a ``coin toss'' which produces a random superposition of two states, and a displacement which moves each component of the superposition by different amounts. Here we suggest the realization of a walk in momentum space with a spinor Bose-Einstein condensate subject to a quantum ratchet realized with a pulsed, off-resonant optical lattice. By an appropriate choice of the lattice detuning, we show how the atomic momentum can be entangled with the internal spin states of the atoms. For the coin toss, we propose to use a microwave pulse to mix these internal states. We present experimental results showing an…

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsQuantum dynamicsQuantum simulatorFOS: Physical sciencesNonlinear Sciences - Chaotic Dynamics01 natural sciences010305 fluids & plasmasOpen quantum systemQuantum error correctionQuantum Gases (cond-mat.quant-gas)QubitQuantum mechanicsQuantum process0103 physical sciencesQuantum algorithmQuantum walkChaotic Dynamics (nlin.CD)010306 general physicsCondensed Matter - Quantum GasesQuantum Physics (quant-ph)
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Emulating Solid-State Physics with a Hybrid System of Ultracold Ions and Atoms

2013

We propose and theoretically investigate a hybrid system composed of a crystal of trapped ions coupled to a cloud of ultracold fermions. The ions form a periodic lattice and induce a band structure in the atoms. This system combines the advantages of scalability and tunability of ultracold atomic systems with the high fidelity operations and detection offered by trapped ion systems. It also features close analogies to natural solid-state systems, as the atomic degrees of freedom couple to phonons of the ion lattice, thereby emulating a solid-state system. Starting from the microscopic many-body Hamiltonian, we derive the low energy Hamiltonian including the atomic band structure and give an…

PhysicsCondensed Matter::Quantum GasesQuantum PhysicsSolid-state physicsPhononGeneral Physics and AstronomyFOS: Physical sciencesFermion01 natural sciences010305 fluids & plasmasIonsymbols.namesakeQuantum Gases (cond-mat.quant-gas)Hybrid systemLattice (order)0103 physical sciencessymbolsPhysics::Atomic PhysicsAtomic physics010306 general physicsHamiltonian (quantum mechanics)Electronic band structureCondensed Matter - Quantum GasesQuantum Physics (quant-ph)
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