0000000000165035

AUTHOR

Peter W. Graham

showing 9 related works from this author

Search for axionlike dark matter with a liquid-state nuclear spin comagnetometer

2019

Physical review letters 122(19), 191302 (2019). doi:10.1103/PhysRevLett.122.191302

PhysicsParticle physicsField (physics)SpinsDark matterGeneral Physics and AstronomyOrder (ring theory)FOS: Physical sciencesCoupling (probability)01 natural sciences530High Energy Physics - ExperimentHigh Energy Physics - PhenomenologyHigh Energy Physics - Experiment (hep-ex)High Energy Physics - Phenomenology (hep-ph)0103 physical sciencesddc:530010306 general physicsNucleonSpin (physics)Axion
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Overview of the Cosmic Axion Spin Precession Experiment (CASPEr)

2020

An overview of our experimental program to search for axion and axion-like-particle (ALP) dark matter using nuclear magnetic resonance (NMR) techniques is presented. An oscillating axion field can exert a time-varying torque on nuclear spins either directly or via generation of an oscillating nuclear electric dipole moment (EDM). Magnetic resonance techniques can be used to detect such an effect. The first-generation experiments explore many decades of ALP parameter space beyond the current astrophysical and laboratory bounds. It is anticipated that future versions of the experiments will be sensitive to the axions associated with quantum chromodynamics (QCD) having masses \({\lesssim }10^{…

Quantum chromodynamicsPhysicsParticle physicsElectric dipole momentSpinsField (physics)High Energy Physics::PhenomenologyDark matterPrecessionSpin (physics)Axion
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Gravity Probe Spin: Prospects for measuring general-relativistic precession of intrinsic spin using a ferromagnetic gyroscope

2020

An experimental test at the intersection of quantum physics and general relativity is proposed: measurement of relativistic frame dragging and geodetic precession using intrinsic spin of electrons. The behavior of intrinsic spin in spacetime dragged and warped by a massive rotating body is an experimentally open question, hence the results of such a measurement could have important theoretical consequences. Such a measurement is possible by using mm-scale ferromagnetic gyroscopes in orbit around the Earth. Under conditions where the rotational angular momentum of a ferromagnet is sufficiently small, a ferromagnet's angular momentum is dominated by atomic electron spins and is predicted to e…

Angular momentumGeneral relativityFOS: Physical sciencesElectronFrame-draggingGeneral Relativity and Quantum Cosmology (gr-qc)01 natural sciences7. Clean energyGeneral Relativity and Quantum Cosmologylaw.inventionPhysics::Geophysicslaw0103 physical sciencesddc:530010306 general physicsSpin (physics)Geodetic effectPhysicsQuantum Physics010308 nuclear & particles physicsGyroscopeQuantum electrodynamicsPhysics::Space PhysicsPrecessionCondensed Matter::Strongly Correlated ElectronsQuantum Physics (quant-ph)
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Wu et al. Reply:

2019

PhysicsMEDLINECalculusGeneral Physics and AstronomyMathematical physicsPhysical Review Letters
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The cosmic axion spin precession experiment (CASPEr): a dark-matter search with nuclear magnetic resonance

2017

The Cosmic Axion Spin Precession Experiment (CASPEr) is a nuclear magnetic resonance experiment (NMR) seeking to detect axion and axion-like particles which could make up the dark matter present in the universe. We review the predicted couplings of axions and axion-like particles with baryonic matter that enable their detection via NMR. We then describe two measurement schemes being implemented in CASPEr. The first method, presented in the original CASPEr proposal, consists of a resonant search via continuous-wave NMR spectroscopy. This method offers the highest sensitivity for frequencies ranging from a few Hz to hundreds of MHz, corresponding to masses $ m_{\rm a} \sim 10^{-14}$--$10^{-6}…

Physics - Instrumentation and DetectorsPhysics and Astronomy (miscellaneous)Physics::Instrumentation and DetectorsMagnetometerMaterials Science (miscellaneous)Dark matterFOS: Physical sciencesApplied Physics (physics.app-ph)7. Clean energy01 natural scienceslaw.inventionHigh Energy Physics - Phenomenology (hep-ph)Nuclear magnetic resonancelaw0103 physical sciencesElectrical and Electronic Engineering010306 general physicsAxionPhysicsQuantum PhysicsCOSMIC cancer database010308 nuclear & particles physicsBandwidth (signal processing)RangingInstrumentation and Detectors (physics.ins-det)Physics - Applied PhysicsNuclear magnetic resonance spectroscopyAtomic and Molecular Physics and OpticsBaryonHigh Energy Physics - PhenomenologyPhysics - Data Analysis Statistics and ProbabilityQuantum Physics (quant-ph)Data Analysis Statistics and Probability (physics.data-an)Quantum Science and Technology
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Proposal for a Cosmic Axion Spin Precession Experiment (CASPEr)

2014

We propose an experiment to search for QCD axion and axionlike-particle dark matter. Nuclei that are interacting with the background axion dark matter acquire time-varying CP-odd nuclear moments such as an electric dipole moment. In analogy with nuclear magnetic resonance, these moments cause precession of nuclear spins in a material sample in the presence of an electric field. Precision magnetometry can be used to search for such precession. An initial phase of this experiment could cover many orders of magnitude in axionlike-particle parameter space beyond the current astrophysical and laboratory limits. And with established techniques, the proposed experimental scheme has sensitivity to …

PhysicsParticle physicsCOSMIC cancer database010308 nuclear & particles physicsPhysicsQC1-999Dark matterGeneral Physics and Astronomy7. Clean energy01 natural sciencesElectric field0103 physical sciencesPrecession010306 general physicsSpin (physics)AxionBosonPhysical Review X
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Search for Axionlike Dark Matter Using Solid-State Nuclear Magnetic Resonance.

2021

Physical review letters 126(14), 141802 (2021). doi:10.1103/PhysRevLett.126.141802

Quantum chromodynamicsPhysicsPhysics - Instrumentation and DetectorsNeutron electric dipole momentRelaxation (NMR)FOS: Physical sciencesGeneral Physics and AstronomyInstrumentation and Detectors (physics.ins-det)Coupling (probability)01 natural sciences530High Energy Physics - ExperimentCondensed Matter - Other Condensed MatterHigh Energy Physics - Experiment (hep-ex)Electric dipole moment0103 physical sciencesddc:530Atomic physics010306 general physicsSpin (physics)AxionExcitationOther Condensed Matter (cond-mat.other)Physical review letters
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Constraints on bosonic dark matter from ultralow-field nuclear magnetic resonance

2019

The nature of dark matter, the invisible substance making up over $80\%$ of the matter in the Universe, is one of the most fundamental mysteries of modern physics. Ultralight bosons such as axions, axion-like particles or dark photons could make up most of the dark matter. Couplings between such bosons and nuclear spins may enable their direct detection via nuclear magnetic resonance (NMR) spectroscopy: as nuclear spins move through the galactic dark-matter halo, they couple to dark-matter and behave as if they were in an oscillating magnetic field, generating a dark-matter-driven NMR signal. As part of the Cosmic Axion Spin Precession Experiment (CASPEr), an NMR-based dark-matter search, w…

Particle physicsPhotonField (physics)Atomic Physics (physics.atom-ph)Dark matterFOS: Physical sciencesAstrophysics::Cosmology and Extragalactic Astrophysics01 natural sciences7. Clean energyHigh Energy Physics - ExperimentPhysics - Atomic PhysicsHigh Energy Physics - Experiment (hep-ex)Computer Science::Emerging TechnologiesNuclear magnetic resonancePhysics - Chemical Physics0103 physical sciences010306 general physicsSpin (physics)AxionResearch ArticlesBosonPhysicsChemical Physics (physics.chem-ph)MultidisciplinarySpins010308 nuclear & particles physicsPhysicsSciAdv r-articlesHaloddc:500Research Article
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Millicharged dark matter detection with ion traps

2022

We propose the use of trapped ions for detection of millicharged dark matter. Millicharged particles will scatter off the ions, giving a signal either in individual events or in the overall heating rate of the ions. Ion traps have several properties which make them ideal detectors for such a signal. First, ion traps have demonstrated significant isolation of the ions from the environment, greatly reducing the background heating and event rates. Second, ion traps can have low thresholds for detection of energy deposition, down to $\sim \text{neV}$. Third, since the ions are charged, they naturally have large cross sections for scattering with the millicharged particles, further enhanced by t…

Quantum PhysicsCosmology and Nongalactic Astrophysics (astro-ph.CO)Atomic Physics (physics.atom-ph)General EngineeringFOS: Physical sciences530Physics - Atomic PhysicsHigh Energy Physics - PhenomenologyHigh Energy Physics - Phenomenology (hep-ph)General Earth and Planetary Sciencesddc:530Quantum Physics (quant-ph)General Environmental ScienceAstrophysics - Cosmology and Nongalactic Astrophysics
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