Search results for "DIPOLE"

showing 10 items of 982 documents

Lattice QCD and the anomalous magnetic moment of the muon

2019

The anomalous magnetic moment of the muon, a_mu, has been measured with an overall precision of 540 ppb by the E821 experiment at BNL. Since the publication of this result in 2004 there has been a persistent tension of 3.5 standard deviations with the theoretical prediction of a_mu based on the Standard Model. The uncertainty of the latter is dominated by the effects of the strong interaction, notably the hadronic vacuum polarisation (HVP) and the hadronic light-by-light (HLbL) scattering contributions, which are commonly evaluated using a data-driven approach and hadronic models, respectively. Given that the discrepancy between theory and experiment is currently one of the most intriguing …

PhysicsQuantum chromodynamicsNuclear and High Energy PhysicsParticle physicsMuonAnomalous magnetic dipole moment010308 nuclear & particles physicsHadronLattice field theoryStrong interactionHigh Energy Physics - Lattice (hep-lat)FOS: Physical sciencesLattice QCD01 natural sciencesHigh Energy Physics - PhenomenologyHigh Energy Physics - LatticeHigh Energy Physics - Phenomenology (hep-ph)Lattice (order)0103 physical sciencesHigh Energy Physics::Experiment010306 general physics
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Lattice QCD calculation of hadronic light-by-light scattering

2015

We perform a lattice QCD calculation of the hadronic light-by-light scattering amplitude in a broad kinematical range. At forward kinematics, the results are compared to a phenomenological analysis based on dispersive sum rules for light-by-light scattering. The size of the pion pole contribution is investigated for momenta of typical hadronic size. The presented numerical methods can be used to compute the hadronic light-by-light contribution to the anomalous magnetic moment of the muon. Our calculations are carried out in two-flavor QCD with the pion mass in the range of 270 to 450MeV, and contain so far only the diagrams with fully connected quark lines.

PhysicsQuantum chromodynamicsParticle physicsAnomalous magnetic dipole momentScatteringHigh Energy Physics::LatticeLattice field theoryNuclear TheoryHigh Energy Physics::PhenomenologyHigh Energy Physics - Lattice (hep-lat)General Physics and AstronomyFOS: Physical sciencesLattice QCDLight scatteringScattering amplitudeHigh Energy Physics - PhenomenologyHigh Energy Physics - LatticePionHigh Energy Physics - Phenomenology (hep-ph)High Energy Physics::ExperimentNuclear Experiment
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Anomalous magnetic moment of the muon: A hybrid approach

2017

A new QCD sum rule determination of the leading order hadronic vacuum polarization contribution to the anomalous magnetic moment of the muon, $a_{\mu}^{\rm hvp}$, is proposed. This approach combines data on $e^{+}e^{-}$ annihilation into hadrons, perturbative QCD and lattice QCD results for the first derivative of the electromagnetic current correlator at zero momentum transfer, $\Pi_{\rm EM}^\prime(0)$. The idea is based on the observation that, in the relevant kinematic domain, the integration kernel $K(s)$, entering the formula relating $a_{\mu}^{\rm hvp}$ to $e^{+}e^{-}$ annihilation data, behaves like $1/s$ times a very smooth function of $s$, the squared energy. We find an expression …

PhysicsQuantum chromodynamicsParticle physicsMuonAnnihilationAnomalous magnetic dipole moment010308 nuclear & particles physicsHigh Energy Physics::LatticeHigh Energy Physics - Lattice (hep-lat)Hadronhep-latFOS: Physical sciencesPerturbative QCDhep-phLattice QCD01 natural sciencesHigh Energy Physics - PhenomenologyHigh Energy Physics - LatticeHigh Energy Physics - Phenomenology (hep-ph)0103 physical sciencesHigh Energy Physics::ExperimentSum rule in quantum mechanics010306 general physicsPhysical Review D
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A lattice calculation of the hadronic vacuum polarization contribution to (g - 2)μ

2017

We present results of calculations of the hadronic vacuum polarisation contribution to the muon anomalous magnetic moment. Specifically, we focus on controlling the infrared regime of the vacuum polarisation function. Our results are corrected for finite-size effects by combining the Gounaris-Sakurai parameterisation of the timelike pion form factor with the Lüscher formalism. The impact of quark-disconnected diagrams and the precision of the scale determination is discussed and included in our final result in two-flavour QCD, which carries an overall uncertainty of 6%. We present preliminary results computed on ensembles with Nf = 2 + 1 dynamical flavours and discuss how the long-distance …

PhysicsQuantum chromodynamicsParticle physicsMuonAnomalous magnetic dipole moment010308 nuclear & particles physicsPhysicsQC1-999High Energy Physics::LatticeHadronHigh Energy Physics - Lattice (hep-lat)High Energy Physics::PhenomenologyLattice (group)Form factor (quantum field theory)FOS: Physical sciences01 natural sciencesHigh Energy Physics - PhenomenologyPionHigh Energy Physics - Phenomenology (hep-ph)High Energy Physics - Lattice0103 physical sciencesHigh Energy Physics::ExperimentVacuum polarization010306 general physics
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Direct calculation of hadronic light-by-light scattering

2015

We report calculations of hadronic light-by-light scattering amplitudes via lattice QCD evaluation of Euclidean four-point functions of vector currents. These initial results include only the fully quark-connected contribution. Particular attention is given to the case of forward scattering, which can be related via dispersion relations to the $\gamma^* \gamma^* \to$ hadrons cross section, and thus allows lattice data to be compared with phenomenology. We also present a strategy for computing the hadronic light-by-light contribution to the muon anomalous magnetic moment.

PhysicsQuantum chromodynamicsParticle physicsMuonAnomalous magnetic dipole momentNuclear TheoryLattice field theoryHigh Energy Physics - Lattice (hep-lat)High Energy Physics::PhenomenologyFOS: Physical sciencesLattice QCDLight scatteringScattering amplitudeNuclear Theory (nucl-th)High Energy Physics - PhenomenologyHigh Energy Physics - Phenomenology (hep-ph)High Energy Physics - LatticeHigh Energy Physics::ExperimentPhenomenology (particle physics)
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Review of Lattice QCD Studies of Hadronic Vacuum Polarization Contribution to Muon g-2

2019

Lattice QCD (LQCD) studies for the hadron vacuum polarization (HVP) and its contribution to the muon anomalous magnetic moment (muon g-2) are reviewed. There currently exists more than 3-sigma deviations in the muon g-2 between the BNL experiment with 0.5 ppm precision and the Standard Model (SM) predictions, where the latter relies on the QCD dispersion relation for the HVP. The LQCD provides an independent crosscheck of the dispersive approaches and important indications for assessing the SM prediction with measurements at ongoing/forthcoming experiments at Fermilab/J-PARC (0.14/0.1 ppm precision). The LQCD has made significant progress, in particular, in the long distance and finite volu…

PhysicsQuantum chromodynamicsParticle physicsMuonAnomalous magnetic dipole momentPhysics beyond the Standard ModelHigh Energy Physics - Lattice (hep-lat)FOS: Physical sciencesLattice QCDHigh Energy Physics - LatticeIsospinHigh Energy Physics::ExperimentFermilabVacuum polarization
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Pseudoscalar transition form factors: (g − 2) of the muon, pseudoscalar decays into lepton pairs, and the η – η′ mixing

2015

We present our model-independent and data-driven method to describe pseudoscalar meson transition form factors in the space- and (low-energy) time-like regions. The method is general and conforms a toolkit applicable to any other form factor, of one and two variables, with the potential to include both high- and low-energy QCD constraints altogether. The method makes use of analyticity and unitary properties of form factors, it is simple, systematic and can be improved upon by including new data. In the present discussion, the method is used to show the impact of experimental data for precision calculations in the low-energy sector of the Standard Model. In particular, due to its relevance …

PhysicsQuantum chromodynamicsParticle physicsMuonNuclear TheoryAnomalous magnetic dipole moment010308 nuclear & particles physicsPhysics beyond the Standard ModelPhysicsQC1-999High Energy Physics::PhenomenologyForm factor (quantum field theory)01 natural sciencesPseudoscalar mesonHigh Energy Physics - ExperimentPseudoscalarHigh Energy Physics - Phenomenology0103 physical sciencesHigh Energy Physics::Experiment010306 general physicsLeptonEPJ Web of Conferences
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Decoherence from dipolar interspin interactions in molecular spin qubits

2019

The realization of spin-based logical gates crucially depends on magnetically coupled spin qubits. Thus, understanding decoherence when spin qubits are in close proximity will become a roadblock to overcome. Herein, we propose a method free of fitting parameters to evaluate the qubit phase memory time ${T}_{m}$ in samples with high electron spin concentrations. The method is based on a model aimed to estimate magnetic nuclear decoherence [P. C. E. Stamp and I. S. Tupitsyn, Phys. Rev. B 69, 014401 (2004)]. It is applied to a ground-spin $J=8$ magnetic molecule 1 displaying atomic clock transitions, namely ${{[\mathrm{H}{\mathrm{o}}^{\mathrm{III}}{({\mathrm{W}}_{5}{\mathrm{O}}_{18})}_{2}]}^{9…

PhysicsQuantum decoherenceCondensed matter physicsQuàntums Teoria dels02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesInductive couplingAtomic clockDipoleQubit0103 physical sciencesMolecule010306 general physics0210 nano-technologyHigh electronPhysical Review B
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SIMPRE1.2: Considering the hyperfine and quadrupolar couplings and the nuclear spin bath decoherence

2016

SIMPRE is a fortran77code which uses an effective electrostatic model of point charges to predict the magnetic behavior of rare-earth-based mononuclear complexes. In this manuscript, we present SIMPRE1.2, which now takes into account two further phenomena.Firstly, SIMPRE now considers the hyperfine and quadrupolar interactions within the rare-earth ion, resulting in a more complete and realistic set of energy levels and wave functions. Secondly,and in order to widen SIMPRE’s predictive capabilities regarding potential molecular spin qubits, it now includes a routine that calculates an upper-bound estimate of the decoherence time considering only the dipolar coupling between the electron spi…

PhysicsQuantum decoherenceField (physics)UNESCO::QUÍMICA02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences:QUÍMICA [UNESCO]0104 chemical sciencesComputational MathematicsQubitMagnetAtomic physics0210 nano-technologyWave functionSpin (physics)Hyperfine structureMagnetic dipole–dipole interactionJournal of Computational Chemistry
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Parton showers from the dipole formalism

2007

We present an implementation of a parton shower algorithm for hadron colliders and electron-positron colliders based on the dipole factorisation formulae. The algorithm treats initial-state partons on equal footing with final-state partons. We implemented the algorithm for massless and massive partons.

PhysicsQuarkNuclear and High Energy PhysicsParticle physicsPhysics::Instrumentation and DetectorsHigh Energy Physics::PhenomenologyFOS: Physical sciencesPartonGluonNuclear physicsMassless particleHigh Energy Physics - PhenomenologyDipoleHigh Energy Physics - Phenomenology (hep-ph)FactorizationPhysics::Accelerator PhysicsHigh Energy Physics::ExperimentInvariant massNuclear ExperimentParton showerPhysical Review D
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