Search results for "physics.atom-ph"

showing 10 items of 395 documents

Recent progress in laser spectroscopy of the actinides

2020

The interest to perform laser spectroscopy in the heaviest elements arises from the strong impact of relativistic effects, electron correlations and quantum electrodynamics on their atomic structure. Once this atomic structure is well understood, laser spectroscopy also provides access to nuclear properties such as spins, mean square charge radii and electromagnetic moments in a nuclear-model independent way. This is of particular interest for the heaviest actinides around $N = 152$, a region of shell stabilized deformed nuclei. The experimental progress of laser spectroscopy in this region benefitted from continuous methodological and technical developments such as the introduction of buff…

PhysicsNuclear and High Energy PhysicsSpins010308 nuclear & particles physicsAtomic Physics (physics.atom-ph)Nuclear Theorychemistry.chemical_elementFOS: Physical sciencesCharge (physics)ActinideElectron01 natural sciencesPhysics - Atomic Physics3. Good healthNuclear physicschemistry0103 physical sciencesddc:530NobeliumNuclide010306 general physicsRelativistic quantum chemistrySpectroscopyNuclear ExperimentProgress in Particle and Nuclear Physics
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Engineering NonBinary Rydberg Interactions via Phonons in an Optical Lattice

2019

Coupling electronic and vibrational degrees of freedom of Rydberg atoms held in optical tweezer arrays offers a flexible mechanism for creating and controlling atom-atom interactions. We find that the state-dependent coupling between Rydberg atoms and local oscillator modes gives rise to two- and three-body interactions which are controllable through the strength of the local confinement. This approach even permits the cancellation of two-body terms such that three-body interactions become dominant. We analyze the structure of these interactions on two-dimensional bipartite lattice geometries and explore the impact of three-body interactions on system ground state on a square lattice. Focus…

PhysicsOptical latticeAtomic Physics (physics.atom-ph)PhononFOS: Physical sciencesGeneral Physics and AstronomyQuantum simulator01 natural sciencesMolecular physicsSquare latticePhysics - Atomic Physics3. Good healthsymbols.namesakeOptical tweezersQuantum Gases (cond-mat.quant-gas)0103 physical sciencesRydberg atomRydberg formulasymbolsPhysics::Atomic PhysicsCondensed Matter - Quantum Gases010306 general physicsGround statePhysical Review Letters
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Phase-stable free-space optical lattices for trapped ions

2015

We demonstrate control of the absolute phase of an optical lattice with respect to a single trapped ion. The lattice is generated by off-resonant free-space laser beams, we actively stabilize its phase by measuring its ac-Stark shift on a trapped ion. The ion is localized within the standing wave to better than 2\% of its period. The locked lattice allows us to apply displacement operations via resonant optical forces with a controlled direction in phase space. Moreover, we observe the lattice-induced phase evolution of spin superposition states in order to analyze the relevant decoherence mechanisms. Finally, we employ lattice-induced phase shifts for inferring the variation of the ion pos…

PhysicsOptical latticeQuantum PhysicsQuantum decoherenceAbsolute phaseAtomic Physics (physics.atom-ph)General Physics and AstronomyFOS: Physical sciencesNanotechnology01 natural sciencesIonPhysics - Atomic Physics010309 opticsStanding waveSuperposition principleLattice (order)Phase space0103 physical sciencesAtomic physics010306 general physicsQuantum Physics (quant-ph)
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Direct limits on the interaction of antiprotons with axion-like dark matter

2019

Astrophysical observations indicate that there is roughly five times more dark matter in the Universe than ordinary baryonic matter, with an even larger amount of the Universe's energy content due to dark energy. So far, the microscopic properties of these dark components have remained shrouded in mystery. In addition, even the five percent of ordinary matter in our Universe has yet to be understood, since the Standard Model of particle physics lacks any consistent explanation for the predominance of matter over antimatter. Inspired by these central problems of modern physics, we present here a direct search for interactions of antimatter with dark matter, and place direct constraints on th…

PhysicsParticle physicsAstrophysics and AstronomyCosmology and Nongalactic Astrophysics (astro-ph.CO)MultidisciplinaryAtomic Physics (physics.atom-ph)010308 nuclear & particles physicsDark matterFOS: Physical sciences01 natural sciencesPhysics - Atomic PhysicsStandard ModelBaryonHigh Energy Physics - PhenomenologyHigh Energy Physics - Phenomenology (hep-ph)Baryon asymmetryOrders of magnitude (time)AntiprotonAntimatter0103 physical sciencesPräzisionsexperimente - Abteilung Blaum010306 general physicsAxionParticle Physics - ExperimentAstrophysics - Cosmology and Nongalactic Astrophysics
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One-Particle Measurement of the Antiproton Magnetic Moment

2013

\DeclareRobustCommand{\pbar}{\HepAntiParticle{p}{}{}\xspace} \DeclareRobustCommand{\p}{\HepParticle{p}{}{}\xspace} \DeclareRobustCommand{\mup}{$\mu_{p}${}{}\xspace} \DeclareRobustCommand{\mupbar}{$\mu_{\pbar}${}{}\xspace} \DeclareRobustCommand{\muN}{$\mu_N${}{}\xspace For the first time a single trapped \pbar is used to measure the \pbar magnetic moment ${\bm\mu}_{\pbar}$. The moment ${\bm\mu}_{\pbar} = \mu_{\pbar} {\bm S}/(\hbar/2)$ is given in terms of its spin ${\bm S}$ and the nuclear magneton (\muN) by $\mu_{\pbar}/\mu_N = -2.792\,845 \pm 0.000\,012$. The 4.4 parts per million (ppm) uncertainty is 680 times smaller than previously realized. Comparing to the proton moment measured using…

PhysicsParticle physicsProtonMagnetic momentAtomic Physics (physics.atom-ph)010308 nuclear & particles physicsOther Fields of PhysicsFOS: Physical sciencesGeneral Physics and Astronomy01 natural sciencesPhysics - Atomic PhysicsCrystallographyAntiproton0103 physical sciencesddc:550010306 general physicsNuclear magneton
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Search for axion-like dark matter with spin-based amplifiers

2021

Ultralight axion-like particles (ALPs) are well-motivated dark matter candidates introduced by theories beyond the standard model. However, the constraints on the existence of ALPs through existing laboratory experiments are hindered by their current sensitivities, which are usually weaker than astrophysical limits. Here, we demonstrate a new quantum sensor to search for ALPs in the mass range that spans about two decades from 8.3 feV to 744 feV. Our sensor makes use of hyperpolarized long-lived nuclear spins as a pre-amplifier that effectively enhances coherently oscillating axion-like dark-matter field by a factor of >100. Using spin-based amplifiers, we achieve an ultrahigh magnetic s…

PhysicsParticle physicsQuantum PhysicsPhoton010308 nuclear & particles physicsAtomic Physics (physics.atom-ph)Physics beyond the Standard ModelQuantum sensorDark matterGeneral Physics and AstronomyFOS: Physical sciencesParameter space7. Clean energy01 natural sciencesPhysics - Atomic PhysicsHigh Energy Physics - PhenomenologyHigh Energy Physics - Phenomenology (hep-ph)0103 physical sciencesddc:530010306 general physicsNucleonSpin (physics)Quantum Physics (quant-ph)Axion
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g Factor of Lithiumlike Silicon: New Challenge to Bound-State QED

2019

The recently established agreement between experiment and theory for the $g$ factors of lithiumlike silicon and calcium ions manifests the most stringent test of the many-electron bound-state quantum electrodynamics (QED) effects in the presence of a magnetic field. In this Letter, we present a significant simultaneous improvement of both theoretical $g_\text{th} = 2.000\,889\,894\,4\,(34)$ and experimental $g_\text{exp} = 2.000\,889\,888\,45\,(14)$ values of the $g$ factor of lithiumlike silicon $^{28}$Si$^{11+}$. The theoretical precision now is limited by the many-electron two-loop contributions of the bound-state QED. The experimental value is accurate enough to test these contributions…

PhysicsParticle physicsSiliconAtomic Physics (physics.atom-ph)g factorFOS: Physical sciencesGeneral Physics and Astronomychemistry.chemical_element01 natural sciencesPhysics - Atomic PhysicsMagnetic fieldchemistry0103 physical sciencesBound statePräzisionsexperimente - Abteilung Blaum010306 general physicsPhysical Review Letters
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Detection system for forward emitted photons at the Experimental Storage Ring at GSI

2013

A single photon counting system has been developed for efficient detection of forward emitted fluorescence photons at the Experimental Storage Ring (ESR) at GSI. The system employs a movable parabolic mirror with a central slit that can be positioned around the ion beam and a selected low noise photomultiplier for detection of the collected photons. Compared to the previously used system of mirror segments installed inside the ESR the collection efficiency for forward-emitted photons is improved by more than a factor of 5. No adverse effects on the stored ion beam have been observed during operation besides a small drop in the ion current of about 5% during movement of the mirror into the b…

PhysicsPhotomultiplierPhysics - Instrumentation and DetectorsPhotonIon beamAtomic Physics (physics.atom-ph)business.industryParabolic reflectorFOS: Physical sciencesIon currentInstrumentation and Detectors (physics.ins-det)Photon countingPhysics - Atomic PhysicsOpticsbusinessInstrumentationMathematical PhysicsBeam (structure)Storage ringJournal of Instrumentation
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Atomic and molecular transitions induced by axions via oscillating nuclear moments

2020

The interaction of standard model's particles with the axionic Dark Matter field may generate oscillating nuclear electric dipole moments (EDMs), oscillating nuclear Schiff moments and oscillating nuclear magnetic quadrupole moments (MQMs) with a frequency corresponding to the axion's Compton frequency. Within an atom or a molecule an oscillating EDM, Schiff moment or MQM can drive transitions between atomic or molecular states. The excitation events can be detected, for example, via subsequent fluorescence or photoionization. Here we calculate the rates of such transitions. If the nucleus has octupole deformation or quadrupole deformation then the transition rate due to Schiff moment and M…

PhysicsPhoton010308 nuclear & particles physicsAtomic Physics (physics.atom-ph)Nuclear TheoryFOS: Physical sciencesPhotoionization01 natural sciences530Physics - Atomic PhysicsDipoleHigh Energy Physics - PhenomenologyHigh Energy Physics - Phenomenology (hep-ph)0103 physical sciencesQuadrupoleMoment (physics)Atomddc:530Physics::Atomic PhysicsAtomic physics010306 general physicsAxionExcitation
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Search for Ultralight Scalar Dark Matter with Atomic Spectroscopy

2015

We report new limits on ultralight scalar dark matter (DM) with dilaton-like couplings to photons that can induce oscillations in the fine-structure constant alpha. Atomic dysprosium exhibits an electronic structure with two nearly degenerate levels whose energy splitting is sensitive to changes in alpha. Spectroscopy data for two isotopes of dysprosium over a two-year span is analyzed for coherent oscillations with angular frequencies below 1 rad/s. No signal consistent with a DM coupling is identified, leading to new constraints on dilaton-like photon couplings over a wide mass range. Under the assumption that the scalar field comprises all of the DM, our limits on the coupling exceed tho…

PhysicsPhotonAtomic Physics (physics.atom-ph)Scalar (mathematics)Dark matterScalar field dark matterFOS: Physical sciencesGeneral Physics and AstronomyAtomic spectroscopyPhysics - Atomic PhysicsHigh Energy Physics - ExperimentHigh Energy Physics - PhenomenologyHigh Energy Physics - Experiment (hep-ex)High Energy Physics - Phenomenology (hep-ph)Orders of magnitude (time)Quantum mechanicsAtomic physicsSpectroscopyScalar fieldPhysical Review Letters
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