0000000001003386

AUTHOR

A. Mooser

showing 29 related works from this author

Observation of Spin Flips with a Single Trapped Proton

2011

Radio-frequency induced spin transitions of one individual proton are observed for the first time. The spin quantum jumps are detected via the continuous Stern-Gerlach effect, which is used in an experiment with a single proton stored in a cryogenic Penning trap. This is an important milestone towards a direct high-precision measurement of the magnetic moment of the proton and a new test of the matter-antimatter symmetry in the baryon sector.

PhysicsProtonAtomic Physics (physics.atom-ph)Proton magnetic momentNuclear TheoryGeneral Physics and AstronomyFOS: Physical sciencesPenning trapPhysics - Atomic PhysicsNuclear physicsNuclear magnetic momentPhysics::Atomic and Molecular ClustersPhysics::Accelerator PhysicsSpin-flipAtomic physicsProton emissionNucleonNuclear ExperimentSpin-½
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LC circuit mediated sympathetic cooling of a proton via image currents

2021

Abstract Efficient cooling of trapped charged particles is essential in many fundamental physics experiments, for high-precision metrology, and for quantum technology. Until now, ion-ion coupling for sympathetic cooling or quantum state control has been limited to ion species with accessible optical transitions or has required close-range Coulomb interactions. To overcome this limitation and further develop scalable quantum control techniques, there has been a sustained desire to extend laser-cooling techniques to particles in macroscopically separated traps, opening quantum control techniques to previously inaccessible particles such as highly charged ions, molecular ions, and antimatter p…

Sympathetic coolingMaterials scienceProtonbusiness.industryOptoelectronicsPhysics::Atomic PhysicsLC circuitbusiness
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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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A test of charge-parity-time invariance at the atto-electronvolt scale

2017

We developed a novel fast measurement procedure for cyclotron frequency comparisons of two individual particles in a Penning trap, which enabled us to compare the charge-to-mass ratio of the proton and the antiproton with a fractional precision of 69 parts per trillion. To date this is the most precise test of charge-parity-time invariance using baryons. Our measurements were performed at cyclotron frequencies of about 30 MHz, which means that charge-parity-time symmetry holds at the atto-electronvolt scale.

Nuclear physicsPhysicsBaryonAntiparticleScale (ratio)Physics in GeneralAntimatterElectronvoltPräzisionsexperimente - Abteilung BlaumParity (mathematics)NucleonNuclear ExperimentAtto-
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Sixfold improved single particle measurement of the magnetic moment of the antiproton

2017

Our current understanding of the Universe comes, among others, from particle physics and cosmology. In particle physics an almost perfect symmetry between matter and antimatter exists. On cosmological scales, however, a striking matter/antimatter imbalance is observed. This contradiction inspires comparisons of the fundamental properties of particles and antiparticles with high precision. Here we report on a measurement of the g-factor of the antiproton with a fractional precision of 0.8 parts per million at 95% confidence level. Our value /2=2.7928465(23) outperforms the previous best measurement by a factor of 6. The result is consistent with our proton g-factor measurement gp/2=2.7928473…

AntiparticleParticle physicsLorentz transformationSciencelorentzGeneral Physics and Astronomysystem01 natural sciencesArticleGeneral Biochemistry Genetics and Molecular BiologyCosmologyNuclear physicssymbols.namesakeStandard-Model Extension0103 physical sciencesNuclear Physics - Experimentcpt010306 general physicsNuclear ExperimentPhysicsMultidisciplinary010308 nuclear & particles physicsQpenning trapParity (physics)General ChemistryPenning trapAntiprotonAntimattersymbolstestsddc:500Präzisionsexperimente - Abteilung Blaum
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A reservoir trap for antiprotons

2015

We have developed techniques to extract arbitrary fractions of antiprotons from an accumulated reservoir, and to inject them into a Penning-trap system for high-precision measurements. In our trap-system antiproton storage times > 1.08 years are estimated. The device is fail-safe against power-cuts of up to 10 hours. This makes our planned comparisons of the fundamental properties of protons and antiprotons independent from accelerator cycles, and will enable us to perform experiments during long accelerator shutdown periods when background magnetic noise is low. The demonstrated scheme has the potential to be applied in many other precision Penning trap experiments dealing with exotic p…

Speichertechnik - Abteilung BlaumPhysics - Instrumentation and DetectorsMagnetic noiseAtomic Physics (physics.atom-ph)Other Fields of PhysicsFOS: Physical sciences7. Clean energy01 natural sciencesIon trappingphysics.atom-ph010305 fluids & plasmasPhysics - Atomic PhysicsNuclear physicsTrap (computing)0103 physical sciencesPhysics::Atomic PhysicsPhysical and Theoretical ChemistryDetectors and Experimental Techniques010306 general physicsNuclear ExperimentInstrumentationphysics.ins-detSpectroscopyPhysicsInstrumentation and Detectors (physics.ins-det)Condensed Matter PhysicsPenning trapAntiprotonPhysics::Accelerator Physics
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A New Experiment for the Measurement of the g-Factors of 3He+ and 3He2+.

2018

We describe a new experiment that aims at a parts per billion measurement of the nuclear magnetic moment of 3He2+ and a 100 parts per trillion measurement of the Zeeman effect of the ground-state hyperfine splitting of 3He+. To enable ultrafast and efficient experiment cycles the experiment relies on new technologies such as sympathetic laser cooling of single 3He-ions coupled to a cloud of Doppler-cooled 9Be-ions in a Penning trap or a novel spin-state detection scheme.

0301 basic medicinePhysicsHistoryZeeman effectPenning trap01 natural sciencesComputer Science ApplicationsEducation03 medical and health sciencessymbols.namesake030104 developmental biologyLaser coolingTheoryofComputation_ANALYSISOFALGORITHMSANDPROBLEMCOMPLEXITY0103 physical sciencesNuclear magnetic momentsymbolsPhysics::Atomic PhysicsAtomic physicsPräzisionsexperimente - Abteilung Blaum010306 general physicsUltrashort pulseHyperfine structure
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Direct Measurement of the Free Cyclotron Frequency of a Single Particle in a Penning Trap

2011

A measurement scheme for the direct determination of the free cyclotron frequency ${\ensuremath{\nu}}_{c}$ of a single particle stored in a Penning trap is described. The method is based on the dressed states of mode coupling. In this novel measurement scheme both radial modes of the single trapped particle are simultaneously coupled to the axial oscillation mode.

Condensed Matter::Quantum GasesPhysicsOscillationCyclotronGeneral Physics and AstronomyPenning trapIon trappingFourier transform ion cyclotron resonancelaw.inventionlawMode couplingParticlePhysics::Atomic PhysicsIon trapAtomic physicsPhysical Review Letters
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Resolution of Single Spin Flips of a Single Proton

2013

The spin magnetic moment of a single proton in a cryogenic Penning trap was coupled to the particle's axial motion with a superimposed magnetic bottle. Jumps in the oscillation frequency indicate spin-flips and were identified using a Bayesian analysis.

PhysicsProtonAtomic Physics (physics.atom-ph)010308 nuclear & particles physicsOscillationProton magnetic momentResolution (electron density)Other Fields of PhysicsFOS: Physical sciencesGeneral Physics and AstronomyPenning trap01 natural sciencesIon trappingPhysics - Atomic PhysicsSpin magnetic moment0103 physical sciencesPhysics::Atomic PhysicsAtomic physicsNuclear Experiment010306 general physicsSpin-½Physical Review Letters
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Improved limit on the directly measured antiproton lifetime

2017

Continuous monitoring of a cloud of antiprotons stored in a Penning trap for 405 days enables us to set an improved limit on the directly measured antiproton lifetime. From our measurements we extract a storage time of $3.15\times {10}^{8}$ equivalent antiproton-seconds, resulting in a lower lifetime limit of ${\tau }_{\bar{{\rm{p}}}}\gt 10.2\,{\rm{a}}$ with a confidence level of $68 \% $. This result improves the limit on charge-parity-time violation in antiproton decays based on direct observation by a factor of 7.

CPT symmetryPenning trapGeneral Physics and Astronomypenning traps01 natural sciencesLower limit010305 fluids & plasmasNuclear physicsContinuous monitoring0103 physical sciencesddc:530Limit (mathematics)Physics::Atomic Physics010306 general physicsNuclear ExperimentPhysicsCPT invariancePhysicsResearchContinuous monitoringDirect observationsDirect observationConfidence levelsPenning trapCharge parityAntiprotonlifetimesPhysics::Accelerator PhysicsCP violationHigh Energy Physics::ExperimentDewey Decimal Classification::500 | Naturwissenschaften::530 | PhysikPräzisionsexperimente - Abteilung BlaumantiprotonsParticle Physics - Experiment
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High-precision comparison of the antiproton-to-proton charge-to-mass ratio

2015

Invariance under the charge, parity, time-reversal (CPT) transformation$^{1}$ is one of the fundamental symmetries of the standard model of particle physics. This CPT invariance implies that the fundamental properties of antiparticles and their matter-conjugates are identical, apart from signs. There is a deep link between CPT invariance and Lorentz symmetry—that is, the laws of nature seem to be invariant under the symmetry transformation of spacetime—although it is model dependent$^{2}$. A number of high-precision CPT and Lorentz invariance tests—using a co-magnetometer, a torsion pendulum and a maser, among others—have been performed$^{3}$, but only a few direct high-precision CPT tests …

PhysicsAntiparticleParticle physicsMultidisciplinaryCPT symmetryLorentz transformationLorentz covarianceBaryonsymbols.namesakeStandard-Model ExtensionAntiprotonQuantum mechanicsAntimattersymbolsPräzisionsexperimente - Abteilung BlaumParticle Physics - Experiment
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Double-trap measurement of the proton magnetic moment at 0.3 parts per billion precision

2017

Precise knowledge of the fundamental properties of the proton is essential for our understanding of atomic structure as well as for precise tests of fundamental symmetries. We report on a direct high-precision measurement of the magnetic moment μp of the proton in units of the nuclear magneton μN. The result, μp = 2.79284734462 (±0.00000000082) μN, has a fractional precision of 0.3 parts per billion, improves the previous best measurement by a factor of 11, and is consistent with the currently accepted value. This was achieved with the use of an optimized double–Penning trap technique. Provided a similar measurement of the antiproton magnetic moment can be performed, this result will enable…

PhysicsMultidisciplinaryMagnetic momentProton010308 nuclear & particles physicsProton magnetic moment7. Clean energy01 natural sciencesSymmetry (physics)Nuclear physicsBaryonAntiprotonAntimatter0103 physical sciencesPräzisionsexperimente - Abteilung BlaumAtomic physics010306 general physicsNuclear magnetonScience
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Towards an Improved Measurement of the Proton Magnetic Moment

2017

The BASE collaboration performed the most precise measurement of the proton magnetic moment. By applying the so-called double Penning-trap method with a single proton a fractional precision of 3.3 parts-per-billion was reached. This article describes the primary limitations of the last measurement and discusses improvements to reach the sub-parts-per-billion level.

PhysicsLarmor precessionMagnetic momentProton magnetic momentCyclotronMagnetic fieldlaw.inventionPhysics in GenerallawAntimatterPrecessionPräzisionsexperimente - Abteilung BlaumAtomic physicsNucleonProceedings of the 12th International Conference on Low Energy Antiproton Physics (LEAP2016)
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Measurement of ultra-low heating rates of a single antiproton in a cryogenic Penning trap

2019

Physical review letters 122(4), 043201 (2019). doi:10.1103/PhysRevLett.122.043201

Electric fieldsField noiseCryogenicsAtomic Physics (physics.atom-ph)Penning trapOther Fields of PhysicsGeneral Physics and AstronomyFOS: Physical sciences01 natural sciences530physics.atom-phPhysics - Atomic PhysicsSpectral densityNoise spectral densityTheoryofComputation_ANALYSISOFALGORITHMSANDPROBLEMCOMPLEXITY0103 physical sciencesddc:530010306 general physicsPhysicsComputer Science::Information RetrievalSpectral densityComputer Science::Computation and Language (Computational Linguistics and Natural Language and Speech Processing)Penning trapOrders of magnitudeAntiprotonQuantum transition rateDewey Decimal Classification::500 | Naturwissenschaften::530 | PhysikAtomic physicsPräzisionsexperimente - Abteilung BlaumIon traps
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Sympathetic cooling of protons and antiprotons with a common endcap Penning trap.

2017

We present an experiment to sympathetically cool protons and antiprotons in a Penning trap by resonantly coupling the particles to laser cooled beryllium ions using a common endcap technique. Our analysis shows that preparation of (anti)protons at mK temperatures on timescales of tens of seconds is feasible. Successful implementation of the technique will have immediate and significant impact on high-precision comparisons of the fundamental properties of protons and antiprotons. This in turn will provide some of the most stringent tests of the fundamental symmetries of the Standard Model.

Sympathetic coolingSpeichertechnik - Abteilung BlaumProtonAtomic Physics (physics.atom-ph)Other Fields of PhysicsFOS: Physical scienceschemistry.chemical_element7. Clean energy01 natural sciencesphysics.atom-ph010305 fluids & plasmaslaw.inventionIonPhysics - Atomic PhysicsNuclear physicslawLaser cooling0103 physical sciencesddc:530Physics::Atomic Physics010306 general physicsNuclear ExperimentPhysicsLaserPenning trapAtomic and Molecular Physics and OpticschemistryAntiprotonPhysics::Accelerator PhysicsBeryllium
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A Novel Penning‐Trap Design for the High‐Precision Measurement of the 3 He 2 + Nuclear Magnetic Moment

2019

PhysicsHelium-3Nuclear magnetic momentGeneral Physics and AstronomyAtomic physicsPenning trapNMR - Nuclear magnetic resonanceAnnalen der Physik
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Observation of individual spin quantum transitions of a single antiproton

2017

We report on the detection of individual spin quantum transitions of a single trapped antiproton in a Penning trap. The spin-state determination, which is based on the unambiguous detection of axial frequency shifts in presence of a strong magnetic bottle, reaches a fidelity of 92.1% . Spin-state initialization with >99.9% fidelity and an average initialization time of 24 min are demonstrated. This is a major step towards an antiproton magnetic moment measurement with a relative uncertainty on the part-per-billion level. We report on the detection of individual spin quantum transitions of a single trapped antiproton in a Penning trap. The spin-state determination, which is based on the unam…

Nuclear and High Energy PhysicsAtomic Physics (physics.atom-ph)Spin transitionOther Fields of PhysicsInitializationFOS: Physical sciences01 natural sciencesphysics.atom-phPhysics - Atomic Physics010309 optics0103 physical sciencesddc:530Physics::Atomic Physics010306 general physicsQuantumSpin-½PhysicsMeasurement methodMagnetic momentPenning traplcsh:QC1-999AntiprotonDewey Decimal Classification::500 | Naturwissenschaften::530 | PhysikAtomic physicsPräzisionsexperimente - Abteilung Blaumlcsh:Physics
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A high-Q superconducting toroidal medium frequency detection system with a capacitively adjustable frequency range >180 kHz

2022

We describe a newly developed polytetrafluoroethylene/copper capacitor driven by a cryogenic piezoelectric slip-stick stage and demonstrate with the chosen layout cryogenic capacitance tuning of ≈60 pF at ≈10 pF background capacitance. Connected to a highly sensitive superconducting toroidal LC circuit, we demonstrate tuning of the resonant frequency between 345 and 685 kHz, at quality factors Q > 100 000. Connected to a cryogenic ultra low noise amplifier, a frequency tuning range between 520 and 710 kHz is reached, while quality factors Q > 86 000 are achieved. This new device can be used as a versatile image current detector in high-precision Penning-trap experiments or as …

Speichertechnik - Abteilung BlaumDetectors and Experimental TechniquesInstrumentationReview of Scientific Instruments
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Highly sensitive superconducting circuits at ∼700 kHz with tunable quality factors for image-current detection of single trapped antiprotons

2016

We developed highly-sensitive image-current detection systems based on superconducting toroidal coils and ultra-low noise amplifiers for non-destructive measurements of the axial frequencies (550$\sim$800$\,$kHz) of single antiprotons stored in a cryogenic multi-Penning-trap system. The unloaded superconducting tuned circuits show quality factors of up to 500$\,$000, which corresponds to a factor of 10 improvement compared to our previously used solenoidal designs. Connected to ultra-low noise amplifiers and the trap system, signal-to-noise-ratios of 30$\,$dB at quality factors of > 20$\,$000 are achieved. In addition, we have developed a superconducting switch which allows continuous tu…

SuperconductivityPhysicsSpeichertechnik - Abteilung BlaumPhysics - Instrumentation and DetectorsSolenoidal vector fieldbusiness.industryAmplifierDetectorFOS: Physical sciencesInstrumentation and Detectors (physics.ins-det)01 natural sciencesNoise (electronics)010305 fluids & plasmasQuality (physics)Antiproton0103 physical sciencesOptoelectronicsDetectors and Experimental Techniques010306 general physicsbusinessphysics.ins-detInstrumentationElectronic circuit
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Constraints on the Coupling between Axionlike Dark Matter and Photons Using an Antiproton Superconducting Tuned Detection Circuit in a Cryogenic Penn…

2021

We constrain the coupling between axionlike particles (ALPs) and photons, measured with the superconducting resonant detection circuit of a cryogenic Penning trap. By searching the noise spectrum of our fixed-frequency resonant circuit for peaks caused by dark matter ALPs converting into photons in the strong magnetic field of the Penning-trap magnet, we are able to constrain the coupling of ALPs with masses around $2.7906-2.7914\,\textrm{neV/c}^2$ to $g_{a\gamma}< 1 \times 10^{-11}\,\textrm{GeV}^{-1}$. This is more than one order of magnitude lower than the best laboratory haloscope and approximately 5 times lower than the CERN axion solar telescope (CAST), setting limits in a mass and cou…

Astrophysics and AstronomyCosmology and Nongalactic Astrophysics (astro-ph.CO)PhotonAtomic Physics (physics.atom-ph)Dark matterOther Fields of PhysicsFOS: Physical sciencesGeneral Physics and Astronomyphysics.atom-ph01 natural sciences7. Clean energyPhysics - Atomic PhysicsNuclear physicsHigh Energy Physics - Phenomenology (hep-ph)0103 physical sciencesddc:530Physics::Atomic Physics010306 general physicsParticle Physics - PhenomenologySuperconductivityPhysicshep-phPenning trapCoupling (probability)Magnetic fieldHigh Energy Physics - PhenomenologyAntiprotonastro-ph.COPräzisionsexperimente - Abteilung BlaumCERN Axion Solar TelescopeAstrophysics - Cosmology and Nongalactic AstrophysicsPhysical Review Letters
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High-precision measurement of the proton's atomic mass

2017

We report on the precise measurement of the atomic mass of a single proton with a purpose-built Penning-trap system. With a precision of 32 parts-per-trillion our result not only improves on the current CODATA literature value by a factor of three, but also disagrees with it at a level of about 3 standard deviations.

PhysicsProtonAtomic Physics (physics.atom-ph)General Physics and AstronomyFOS: Physical sciences01 natural sciencesAtomic massStandard deviationPhysics - Atomic Physics010305 fluids & plasmasNuclear physicsAtomic mass constant0103 physical sciencesAtomic physicsPräzisionsexperimente - Abteilung Blaum010306 general physics
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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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Superconducting Solenoid System with Adjustable Shielding Factor for Precision Measurements of the Properties of the Antiproton

2019

Physical review applied 12(4), 044012 (2019). doi:10.1103/PhysRevApplied.12.044012

MAGNETIC-MOMENTSpeichertechnik - Abteilung BlaumPenning trapNuclear engineeringGeneral Physics and Astronomy02 engineering and technologyPROTON53001 natural sciencesNoise (electronics)Physics AppliedTrap (computing)External magnetic field0103 physical sciencesPENNING TRAP TECHNIQUEFACILITYddc:530Physics::Atomic PhysicsSolenoidsDetectors and Experimental TechniquesNuclear Experiment010306 general physicsSuperconductivityPhysicsScience & TechnologyLarge Hadron ColliderPhysics021001 nanoscience & nanotechnologyMagnetic fieldElectromagnetic coilAntiprotonPhysical SciencesMagnetic momentsElectromagnetic shieldingPhysics::Accelerator PhysicsCharge-to-mass ratiosDewey Decimal Classification::500 | Naturwissenschaften::530 | PhysikATOMIC MASSPARTICLE0210 nano-technologyMASS MEASUREMENTSPhysical Review Applied
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Sympathetic cooling of a trapped proton mediated by an LC circuit

2021

Efficient cooling of trapped charged particles is essential to many fundamental physics experiments1,2, to high-precision metrology3,4 and to quantum technology5,6. Until now, sympathetic cooling has required close-range Coulomb interactions7,8, but there has been a sustained desire to bring laser-cooling techniques to particles in macroscopically separated traps5,9,10, extending quantum control techniques to previously inaccessible particles such as highly charged ions, molecular ions and antimatter. Here we demonstrate sympathetic cooling of a single proton using laser-cooled Be+ ions in spatially separated Penning traps. The traps are connected by a superconducting LC circuit that enable…

Sympathetic coolingProtonAtomic Physics (physics.atom-ph)FOS: Physical sciencesLC circuit7. Clean energy01 natural sciencesArticle010305 fluids & plasmasIonPhysics - Atomic PhysicsPhysics in General0103 physical sciencesAtomic and molecular physicsPhysics::Atomic Physics010306 general physicsPhysicsQuantum PhysicsMultidisciplinaryCharged particleQuantum technologyAntiprotonAntimatterExotic atoms and moleculesddc:500Atomic physicsPräzisionsexperimente - Abteilung BlaumQuantum Physics (quant-ph)
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The quality factor of a superconducting rf resonator in a magnetic field.

2010

The quality factor of a superconducting NbTi resonator at 1.6 MHz in a magnetic field up to 1.2 T as well as its temperature dependence is investigated. A hysteresis effect in the superconducting surface resistance as a function of the magnetic field is observed. An unloaded Q-value of the resonator of 40,500 is achieved at 3.9 K. It is shown that this Q-value is limited by dielectric losses in the FORMVAR insulation of the coils wire. The details of the Q-value optimization are discussed. In the temperature dependence of the Q-value a steep decrease is observed above T approximately = 7.5 K. Finally, the implications of these measurements for real trap experiments are discussed in detail.

SuperconductivityResonatorNuclear magnetic resonanceMaterials scienceFormvarCondensed matter physicsQ factorDielectric lossSuperconducting magnetic energy storageMagnetic hysteresisInstrumentationMagnetic fieldThe Review of scientific instruments
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Towards a direct measurement of the g-factor of a single isolated protonThis paper was presented at the International Conference on Precision Physics…

2011

Our Penning trap experiment aims at a direct high-precision measurement of the proton g-factor. We present the experimental setup and the measurement technique using the continuous Stern-Gerlach effect. Recent test measurements with a single proton stored in a Penning trap with a strong magnetic bottle and a new toroidal detection system are discussed. For a stringent test of the CPT symmetry the described technique can also be applied to the antiproton.

PhysicsNuclear physicsToroidProtonAntiprotonCPT symmetryPhysics::Atomic and Molecular ClustersMeasure (physics)General Physics and AstronomyPhysics::Atomic PhysicsAtomic physicsNuclear ExperimentPenning trapCanadian Journal of Physics
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Demonstration of the double Penning Trap technique with a single proton

2013

Spin flips of a single proton were driven in a Penning trap with a homogeneous magnetic field. For the spin-state analysis the proton was transported into a second Penning trap with a superimposed magnetic bottle, and the continuous Stern-Gerlach effect was applied. This first demonstration of the double Penning trap technique with a single proton suggests that the antiproton magnetic moment measurement can potentially be improved by three orders of magnitude or more. Spin flips of a single proton were driven in a Penning trap with a homogeneous magnetic field. For the spin-state analysis the proton was transported into a second Penning trap with a superimposed magnetic bottle, and the cont…

Nuclear and High Energy PhysicsProtonOrders of magnitude (temperature)Atomic Physics (physics.atom-ph)Other Fields of PhysicsFOS: Physical sciencesGeonium atomPenning traps01 natural sciencesphysics.atom-phPhysics - Atomic Physics010305 fluids & plasmasFundamental symmetries0103 physical sciencesPhysics::Atomic and Molecular ClustersPhysics::Atomic Physics010306 general physicsSpin (physics)Nuclear ExperimentPhysicsPenning trapCPT testsMagnetic fieldAntiprotonPhysics::Accelerator PhysicsIon trapAtomic physicsPhysics Letters B
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A parts-per-billion measurement of the antiproton magnetic moment

2017

The magnetic moment of the antiproton is measured at the parts-per-billion level, improving on previous measurements by a factor of about 350. Comparing the fundamental properties of normal-matter particles with their antimatter counterparts tests charge–parity–time (CPT) invariance, which is an important part of the standard model of particle physics. Many properties have been measured to the parts-per-billion level of uncertainty, but the magnetic moment of the antiproton has not. Christian Smorra and colleagues have now done so, and report that it is −2.7928473441 ± 0.0000000042 in units of the nuclear magneton. This is consistent with the magnetic moment of the proton, 2.792847350 ± 0.0…

ProtonCPT symmetry01 natural sciencesddc:070Standard ModelNuclear physicsPhysics in Generalcharge–parity–time (CPT) invariance0103 physical sciencesddc:530atomic and molecular physicsddc:510010306 general physicsNuclear magnetonPhysicsMultidisciplinaryMagnetic moment010308 nuclear & particles physicsDewey Decimal Classification::500 | Naturwissenschaften::510 | MathematikSymmetry (physics)AntiprotonAntimatterHigh Energy Physics::ExperimentDewey Decimal Classification::500 | Naturwissenschaften::530 | PhysikPräzisionsexperimente - Abteilung BlaumAntiproton Decelerator facility
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Testing CPT Invariance by High-Precision Comparisons of Fundamental Properties of Protons and Antiprotons at BASE

2023

The BASE collaboration at the Antiproton Decelerator facility of CERN compares the fundamental properties of protons and antiprotons using advanced Penning-trap systems. In previous measurement campaigns, we measured the magnetic moments of the proton and the antiproton, reaching (sub-)parts-in-a-billion fractional uncertainty. In the latest campaign, we have compared the proton and antiproton charge-to-mass ratios with a fractional uncertainty of 16 parts in a trillion. In this contribution, we give an overview of the measurement campaign, and detail how its results are used to constrain nine spin-independent coefficients of the Standard-Model Extension in the proton and electron sector.

High Energy Physics - PhenomenologyHigh Energy Physics - Experiment (hep-ex)High Energy Physics - Phenomenology (hep-ph)FOS: Physical sciencesHigh Energy Physics - Experiment
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