Search results for " atom"

showing 10 items of 1526 documents

Characterization of the global network of optical magnetometers to search for exotic physics (GNOME)

2018

The Global Network of Optical Magnetometers to search for Exotic physics (GNOME) is a network of geographically separated, time-synchronized, optically pumped atomic magnetometers that is being used to search for correlated transient signals heralding exotic physics. The GNOME is sensitive to nuclear- and electron-spin couplings to exotic fields from astrophysical sources such as compact dark-matter objects (for example, axion stars and domain walls). Properties of the GNOME sensors such as sensitivity, bandwidth, and noise characteristics are studied in the present work, and features of the network's operation (e.g., data acquisition, format, storage, and diagnostics) are described. Charac…

PhysicsQuantum PhysicsPhysics - Instrumentation and DetectorsAtomic Physics (physics.atom-ph)010308 nuclear & particles physicsMagnetometerBandwidth (signal processing)FOS: Physical sciencesAstronomy and AstrophysicsInstrumentation and Detectors (physics.ins-det)01 natural sciencesPhysics - Atomic Physicslaw.inventionStarsData acquisitionSpace and Planetary Sciencelaw0103 physical sciencesGlobal networkQuantum Physics (quant-ph)010306 general physicsAxionTransient signalGnomeRemote sensingPhysics of the Dark Universe
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Dynamics of an unbalanced two-ion crystal in a Penning trap for application in optical mass spectrometry

2019

In this article, the dynamics of an unbalanced two-ion crystal comprising the 'target' and the 'sensor' ions confined in a Penning trap has been studied. First, the low amplitude regime is addressed. In this regime, the overall potential including the Coulomb repulsion between the ions can be considered harmonic and the axial, magnetron and reduced-cyclotron modes split up into the so-called 'stretch' and 'common' modes, that are generalizations of the well-known 'breathing' and 'center-of-mass' motions of a balanced crystal made of two ions. By measuring the frequency modes of the crystal and the sensor ion eigenfrequencies using optical detection, it will be possible to determine the targ…

PhysicsQuantum PhysicsPhysics - Instrumentation and DetectorsAtomic Physics (physics.atom-ph)FOS: Physical sciencesInstrumentation and Detectors (physics.ins-det)Penning trapMass spectrometry01 natural sciences010305 fluids & plasmas3. Good healthIonPhysics - Atomic PhysicsCrystalAmplitudePhysics::Plasma Physics0103 physical sciencesHarmonicCoulombddc:530Atomic physics010306 general physicsGround stateQuantum Physics (quant-ph)
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Oscillations of the purity in the repeated-measurement-based generation of quantum states

2008

Repeated observations of a quantum system interacting with another one can drive the latter toward a particular quantum state, irrespectively of its initial condition, because of an {\em effective non-unitary evolution}. If the target state is a pure one, the degree of purity of the system approaches unity, even when the initial condition of the system is a mixed state. In this paper we study the behavior of the purity from the initial value to the final one, that is unity. Depending on the parameters, after a finite number of measurements, the purity exhibits oscillations, that brings about a lower purity than that of the initial state, which is a point to be taken care of in concrete appl…

PhysicsQuantum PhysicsQuantum opticFOS: Physical sciencesTransition of stateQuantum capacitySettore FIS/03 - Fisica Della MateriaAtomic and Molecular Physics and OpticsQuantum stateQuantum mechanicsQuantum processFoundations of quantum mechanicCoherent control of atomic interactions with photonQuantum systemQuantum operationInitial value problemQuantum Physics (quant-ph)Quantum computer
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Collective spontaneous emission of two entangled atoms near an oscillating mirror

2020

We consider the cooperative spontaneous emission of a system of two identical atoms, interacting with the electromagnetic field in the vacuum state and in the presence of an oscillating mirror. We assume that the two atoms, one in the ground state and the other in the excited state, are prepared in a correlated (symmetric or antisymmetric) {\em Bell}-type state. We also suppose that the perfectly reflecting plate oscillates adiabatically, with the field modes satisfying the boundary conditions at the mirror surface at any given instant, so that the time-dependence of the interaction Hamiltonian is entirely enclosed in the instantaneous atoms-wall distance. Using time-dependent perturbation …

PhysicsQuantum PhysicsSettore FIS/02 - Fisica Teorica Modelli E Metodi MatematiciOscillationAntisymmetric relationAtomic Physics (physics.atom-ph)Vacuum stateFOS: Physical sciencesSpontaneous emission Superradiance and Subradiance dynamical external environments01 natural sciences010305 fluids & plasmasPhysics - Atomic PhysicsExcited state0103 physical sciencesRadiative transferSpontaneous emissionBoundary value problemAtomic physics010306 general physicsGround stateQuantum Physics (quant-ph)
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Stern-Gerlach splitting of low-energy ion beams

2019

We present a feasibility study with several magnetic field configurations for creating spin-dependent forces that can split a low-energy ion beam by the Stern-Gerlach effect. To the best of our knowledge, coherent spin-splittings of charged particles have yet to be realised. Our proposal is based on ion source parameters taken from a recent experiment that demonstrated single-ion implantation from a high-brightness ion source combined with a radio-frequency Paul trap. The inhomogeneous magnetic fields can be created by permanently magnetised microstructures or from current-carrying wires with sizes in the micron range, such as those recently used in a successful implementation of the Stern-…

PhysicsQuantum PhysicsStern–Gerlach experimentIon beamAtomic Physics (physics.atom-ph)Institut für Physik und AstronomieGeneral Physics and AstronomyFOS: Physical sciences01 natural sciencesIon sourceCharged particlePhysics - Atomic Physics010305 fluids & plasmasMagnetic fieldIonsymbols.namesake0103 physical sciencessymbolsddc:530Ion trapAtomic physics010306 general physicsQuantum Physics (quant-ph)Lorentz force
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Trapping and sympathetic cooling of single thorium ions for spectroscopy

2018

Precision optical spectroscopy of exotic ions reveals accurate information about nuclear properties such as charge radii and magnetic and quadrupole moments. Thorium ions exhibit unique nuclear properties with high relevance for testing symmetries of nature. We report loading and trapping of single $^{232}$Th$^+$ ions in a linear Paul trap, embedded into and sympathetically cooled by small crystals of trapped $^{40}$Ca$^+$ ions. Trapped Th ions are identified in a non-destructive manner from the voids in the laser-induced Ca fluorescence pattern emitted by the crystal, and alternatively, by means of a time-of-flight signal when extracting ions from the Paul trap and steering them into an ex…

PhysicsQuantum PhysicsSympathetic coolingAtomic Physics (physics.atom-ph)Thoriumchemistry.chemical_elementFOS: Physical sciences01 natural sciencesPhysics - Atomic Physics010305 fluids & plasmasIonCrystalchemistry0103 physical sciencesQuadrupoleQuantum efficiencyIon trapPhysics::Atomic PhysicsAtomic physics010306 general physicsSpectroscopyQuantum Physics (quant-ph)
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Controlled transport of stored light

2020

Controlled manipulation, storage, and retrieval of quantum information is essential for quantum communication and computing. Quantum memories for light, realized with cold atomic samples as the storage medium, are prominent for their high storage efficiencies and lifetime. We demonstrate the controlled transport of stored light over 1.2 mm in such a storage system and show that the transport process and its dynamics only have a minor effect on the coherence of the storage. Extending the presented concept to longer transport distances and augmenting the number of storage sections will allow for the development of novel quantum devices such as optical racetrack memories or optical quantum reg…

PhysicsQuantum Physicsbusiness.industryAtomic Physics (physics.atom-ph)General Physics and AstronomyFOS: Physical sciencesQuantum devices01 natural sciencesPhysics - Atomic Physics0103 physical sciencesComputer data storageOptoelectronicsQuantum information010306 general physicsbusinessQuantum information scienceQuantum Physics (quant-ph)QuantumCoherence (physics)
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Mechanism of decoherence-free coupling between giant atoms

2020

Giant atoms are a new paradigm of quantum optics going beyond the usual local coupling. Building on this, a new type of decoherence-free (DF) many-body Hamiltonians was shown in a broadband waveguide. Here, these are incorporated in a general framework (not relying on master equations) and contrasted to dispersive DF Hamiltonians with normal atoms: the two schemes are shown to correspond to qualitatively different ways to match the same general condition for suppressing decoherence. Next, we map the giant atoms dynamics into a cascaded collision model (CM), providing an intuitive interpretation of the connection between non-trivial DF Hamiltonians and coupling points topology. The braided c…

PhysicsQuantum Physicssymbols.namesakeQuantum decoherenceQuantum mechanicssymbolsFOS: Physical sciencesPhysics::OpticsPhysics::Atomic PhysicsWaveguide Quantum Optics Giant atoms Decoherence-Free interactionQuantum Physics (quant-ph)Hamiltonian (quantum mechanics)Physical Review Research
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Spontaneous emission rates and energy shifts of a Rydberg rubidium atom close to an optical nanofiber

2020

The influence of an optical nanofiber on the spontaneous emission rates and Lamb shifts of a Rydberg rubidium atom in its close vicinity is investigated, in view of the implementation of a Rydberg-blockade-based quantum network.

PhysicsQuantum networkPhysics::OpticsQuantum PhysicsQuantum memorysymbols.namesakeNanofiberPhysics::Atomic and Molecular ClustersRydberg formulasymbolsSpontaneous emissionPhysics::Atomic PhysicsRubidium atomAtomic physicsEnergy (signal processing)OSA Quantum 2.0 Conference
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Collisional picture of quantum optics with giant emitters

2020

The effective description of the weak interaction between an emitter and a bosonic field as a sequence of two-body collisions provides a simple intuitive picture compared to traditional quantum optics methods as well as an effective calculation tool of the joint emitter-field dynamics. Here, this collisional approach is extended to many emitters (atoms or resonators), each generally interacting with the field at many coupling points ("giant" emitter). In the regime of negligible delays, the unitary describing each collision in particular features a contribution of a chiral origin resulting in an effective Hamiltonian. The picture is applied to derive a Lindblad master equation (ME) of a set…

PhysicsQuantum opticsQuantum PhysicsWaveguide quantum optics giant atoms collisional modelFOS: Physical sciences01 natural sciences010305 fluids & plasmasQuantum mechanics0103 physical sciencesPhysics::Accelerator PhysicsMathematics::Metric GeometryQuantum Physics (quant-ph)Nuclear Experiment010306 general physicsPhysical Review Research
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