Search results for "scattering"

showing 10 items of 8332 documents

"Table 19" of "Search for heavy Higgs bosons decaying into two tau leptons with the ATLAS detector using $pp$ collisions at $\sqrt{s}=13$ TeV"

2020

Acceptance times efficiency for a scalar boson produced by gluon-gluon fusion as a function of the scalar boson mass.

Condensed Matter::Quantum GasesInclusiveP P --> TAU+ TAU- X13000.0Proton-Proton ScatteringHigh Energy Physics::LatticeHigh Energy Physics::PhenomenologyEFFHigh Energy Physics::ExperimentNuclear ExperimentACCHiggs
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"Table 5" of "Search for heavy Higgs bosons decaying into two tau leptons with the ATLAS detector using $pp$ collisions at $\sqrt{s}=13$ TeV"

2020

Observed and expected 95% CL upper limits on the gluon-gluon fusion Higgs boson production cross section times ditau branching fraction as a function of the Higgs boson mass.

Condensed Matter::Quantum GasesInclusiveP P --> TAU+ TAU- X13000.0Proton-Proton ScatteringHigh Energy Physics::LatticeHigh Energy Physics::PhenomenologyIntegrated Cross SectionHigh Energy Physics::ExperimentCross SectionNuclear ExperimentSIGHiggs
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"Table 5" of "Search for heavy Higgs bosons decaying into two tau leptons with the ATLAS detector using $pp$ collisions at $\sqrt{s}=13$ TeV"

2020

Observed and expected 95% CL upper limits on the gluon-gluon fusion Higgs boson production cross section times ditau branching fraction as a function of the Higgs boson mass.

Condensed Matter::Quantum GasesInclusiveP P --> TAU+ TAU- X13000.0Proton-Proton ScatteringHigh Energy Physics::LatticeHigh Energy Physics::PhenomenologyIntegrated Cross SectionHigh Energy Physics::ExperimentCross SectionNuclear ExperimentSIGHiggs
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"Table 5" of "Search for heavy Higgs bosons decaying into two tau leptons with the ATLAS detector using $pp$ collisions at $\sqrt{s}=13$ TeV"

2020

Observed and expected 95% CL upper limits on the gluon-gluon fusion Higgs boson production cross section times ditau branching fraction as a function of the Higgs boson mass.

Condensed Matter::Quantum GasesInclusiveP P --> TAU+ TAU- X13000.0Proton-Proton ScatteringHigh Energy Physics::LatticeHigh Energy Physics::PhenomenologyIntegrated Cross SectionHigh Energy Physics::ExperimentCross SectionNuclear ExperimentSIGHiggs
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"Table 5" of "Search for heavy Higgs bosons decaying into two tau leptons with the ATLAS detector using $pp$ collisions at $\sqrt{s}=13$ TeV"

2020

Observed and expected 95% CL upper limits on the gluon-gluon fusion Higgs boson production cross section times ditau branching fraction as a function of the Higgs boson mass.

Condensed Matter::Quantum GasesInclusiveP P --> TAU+ TAU- X13000.0Proton-Proton ScatteringHigh Energy Physics::LatticeHigh Energy Physics::PhenomenologyIntegrated Cross SectionHigh Energy Physics::ExperimentCross SectionNuclear ExperimentSIGHiggs
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"Table 8" of "Search for high-mass resonances decaying to dilepton final states in pp collisions at s**(1/2) = 7-TeV with the ATLAS detector"

2012

Expected sigma*B for Z* boson production.

Condensed Matter::Quantum GasesInclusiveProton-Proton ScatteringHigh Energy Physics::Phenomenology7000.0NP P --> LEPTON+ LEPTON- XDrell Yan
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"Table 2" of "Study of $e^+e^- \rightarrow p\bar{p}$ in the vicinity of $\psi(3770)$"

2014

The two solutions of the dressed cross section and the corresponding phase angles, PHI.

Condensed Matter::Quantum GasesNonlinear Sciences::Exactly Solvable and Integrable SystemsE+ E- --> P PBARE+ E- Scattering3.65-3.9Integrated Cross SectionExclusivePsiPhysics::Atomic PhysicsCross SectionSIG
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Nanofiber-based optical trapping of cold neutral atoms

2012

We present experimental techniques and results related to the optimization and characterization of our nanofiber-based atom trap [Vetsch et al., Phys. Rev. Lett. 104, 203603 (2010)]. The atoms are confined in an optical lattice which is created using a two-color evanescent field surrounding the optical nanofiber. For this purpose, the polarization state of the trapping light fields has to be properly adjusted. We demonstrate that this can be accomplished by analyzing the light scattered by the nanofiber. Furthermore, we show that loading the nanofiber trap from a magneto-optical trap leads to sub-Doppler temperatures of the trapped atomic ensemble and yields a sub-Poissonian distribution of…

Condensed Matter::Quantum GasesOptical latticeQuantum PhysicsMaterials scienceAtomic Physics (physics.atom-ph)NanophotonicsFOS: Physical sciencesPhysics::OpticsTrapping01 natural sciencesAtomic and Molecular Physics and OpticsLight scatteringPhysics - Atomic Physics010309 opticsOptical tweezersNanofiber0103 physical sciencesAtomAtom opticsPhysics::Atomic PhysicsElectrical and Electronic EngineeringAtomic physics010306 general physicsQuantum Physics (quant-ph)
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"Table 7" of "Measurement of the inclusive W+- and Z/gamma cross sections in the electron and muon decay channels in pp collisions at sqrt(s) = 7 TeV…

2014

Combined lepton charge asymmetry from W boson decays.

Condensed Matter::Quantum GasesP P --> W+ XInclusiveProton-Proton ScatteringAsymmetry MeasurementHigh Energy Physics::PhenomenologyP P --> W- XHigh Energy Physics::ExperimentW ProductionASYM
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Singularity formation in the Gross-Pitaevskii equation and collapse in Bose-Einstein condensates

2004

We study the mechanisms of collapse of the condensate wave function in the Gross-Pitaevskii theory with attractive interparticle interaction. We reformulate the Gross-Pitaevskii equation as Newton's equations for a flux of particles, and introduce the collapsing fraction of particles. We assume that this collapsing fraction is expelled from the condensate due to dissipation. Using this hypothesis we analyze the dependence of the collapse behavior on the initial conditions. We find that, for a properly chosen negative scattering length, the remnant fraction of atoms becomes larger when the initial aspect ratio of the condensate is increased.

Condensed Matter::Quantum GasesPhysicsCondensed Matter::OtherCollapse (topology)Scattering lengthWave equationAtomic and Molecular Physics and Opticslaw.inventionGross–Pitaevskii equationSingularityClassical mechanicsRadiation pressurelawWave functionBose–Einstein condensatePhysical Review A
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