Search results for "Condensate"

showing 10 items of 208 documents

The ridge in proton-proton collisions at the LHC

2010

We show that the key features of the CMS result on the ridge correlation seen for high multiplicity events in sqrt(s)=7TeV proton-proton collisions at the LHC can be understood in the Color Glass Condensate framework of high energy QCD. The same formalism underlies the explanation of the ridge events seen in A+A collisions at RHIC, albeit it is likely that flow effects may enhance the magnitude of the signal in the latter.

Quantum chromodynamicsPhysicsNuclear and High Energy PhysicsHigh energyParticle physicsLarge Hadron ColliderNuclear Theoryta114010308 nuclear & particles physicsFOS: Physical sciencesHigh multiplicityKey features01 natural sciencesColor-glass condensateHigh Energy Physics - ExperimentNuclear physicsNuclear Theory (nucl-th)Formalism (philosophy of mathematics)High Energy Physics - PhenomenologyHigh Energy Physics - Experiment (hep-ex)High Energy Physics - Phenomenology (hep-ph)0103 physical sciences010306 general physicsNuclear ExperimentNuclear theoryPhysics Letters B
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Initial conditions of heavy ion collisions and small x

2009

The Color Glass Condensate (CGC), describing the physics of the nonlinear gluonic interactions of QCD at high energy, provides a consistent first-principles framework to understand the initial conditions of heavy ion collisions. This talk reviews some aspects of the initial conditions at RHIC and discusses implications for LHC heavy ion phenomenology. The CGC provides a way compute bulk particle production and understand recent experimental observations of long range rapidity correlations in terms of the classical glasma field in the early stages of the collision.

Quantum chromodynamicsPhysicsNuclear and High Energy PhysicsParticle physicsLarge Hadron ColliderHigh Energy Physics::PhenomenologyFOS: Physical sciencesCollisionColor-glass condensateNuclear physicsNonlinear systemHigh Energy Physics - PhenomenologyHigh Energy Physics - Phenomenology (hep-ph)Quark–gluon plasmaRapidityNuclear ExperimentPhenomenology (particle physics)
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Strange quark mass from Finite Energy QCD sum rules to five loops

2007

The strange quark mass is determined from a new QCD Finite Energy Sum Rule (FESR) optimized to reduce considerably the systematic uncertainties arising from the hadronic resonance sector. As a result, the main uncertainty in this determination is due to the value of $\Lambda_{QCD}$. The correlator of axial-vector divergences is used in perturbative QCD to five-loop order, including quark and gluon condensate contributions, in the framework of both Fixed Order (FOPT), and Contour Improved Perturbation Theory (CIPT). The latter exhibits very good convergence, leading to a remarkably stable result in the very wide range $s_0 = 1.0 - 4.0 {GeV}^2$, where $s_0$ is the radius of the integration co…

Quantum chromodynamicsQuarkPhysicsNuclear and High Energy PhysicsParticle physicsQCD sum rulesStrange quarkHigh Energy Physics::LatticeHadronNuclear TheoryHigh Energy Physics::PhenomenologyHigh Energy Physics - Lattice (hep-lat)Perturbative QCDFOS: Physical sciencesGluon condensateHigh Energy Physics - PhenomenologyHigh Energy Physics - LatticeHigh Energy Physics - Phenomenology (hep-ph)High Energy Physics::ExperimentSum rule in quantum mechanicsNuclear Experiment
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Unveiling two-dimensional discrete quantum walks dynamics via dispersion relations

2011

The discrete, or coined, quantum walk (QW) [1] is a process originally introduced as the quantum counterpart of the classical random walk (RW). In both cases there is a walker and a coin: at every time step the coin is tossed and the walker moves depending on the toss output. Unlike the RW, in the QW the walker and coin are quantum in nature what allows the coherent superpositions right/left and head/tail happen. This feature endows the QW with outstanding properties, such as making the standard deviation of the position of an initially localized walker grow linearly with time t, unlike the RW in which this growth goes as t1/2. This has strong consequences in algorithmics and is one of the …

Quantum opticsPhysicsAnderson localizationlawAlgorithmicsQuantum mechanicsQuantum walkRandom walkQuantumBose–Einstein condensateQuantum chaoslaw.invention
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Experimental demonstration of single-site addressability in a two-dimensional optical lattice

2009

We demonstrate single site addressability in a two-dimensional optical lattice with 600 nm lattice spacing. After loading a Bose-Einstein condensate in the lattice potential we use a focused electron beam to remove atoms from selected sites. The patterned structure is subsequently imaged by means of scanning electron microscopy. This technique allows us to create arbitrary patterns of mesoscopic atomic ensembles. We find that the patterns are remarkably stable against tunneling diffusion. Such micro-engineered quantum gases are a versatile resource for applications in quantum simulation, quantum optics and quantum information processing with neutral atoms.

Quantum opticsPhysicsCondensed Matter::Quantum GasesOptical latticeMesoscopic physicsQuantum PhysicsGeneral Physics and AstronomyQuantum simulatorFOS: Physical scienceslaw.inventionCondensed Matter - Other Condensed MatterLattice constantlawAtomic physicsQuantum informationQuantum Physics (quant-ph)Bose–Einstein condensateQuantum tunnellingOther Condensed Matter (cond-mat.other)
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Quantum Criticality in a Bosonic Josephson Junction

2011

In this paper we consider a bosonic Josephson junction described by a two-mode Bose-Hubbard model, and we thoroughly analyze a quantum phase transition occurring in the system in the limit of infinite bosonic population. We discuss the relation between this quantum phase transition and the dynamical bifurcation occurring in the spectrum of the Discrete Self Trapping equations describing the system at the semiclassical level. In particular, we identify five regimes depending on the strength of the effective interaction among bosons, and study the finite-size effects arising from the finiteness of the bosonic population. We devote a special attention to the critical regime which reduces to th…

Quantum phase transitionJosephson effectPhysicsDYNAMICSCondensed Matter::Quantum Gaseseducation.field_of_studySPECTRUMStatistical Mechanics (cond-mat.stat-mech)PopulationSELF-TRAPPING EQUATIONSemiclassical physicsFOS: Physical sciencesFLUCTUATIONSEntropy of entanglementAtomic and Molecular Physics and OpticsBifurcation theoryQuantum mechanicsThermodynamic limitQuantum informationeducationBOSE-EINSTEIN CONDENSATECondensed Matter - Statistical Mechanics
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Diffractive dijet production and Wigner distributions from the color glass condensate

2019

Experimental processes that are sensitive to parton Wigner distributions provide a powerful tool to advance our understanding of proton structure. In this work, we compute gluon Wigner and Husimi distributions of protons within the Color Glass Condensate framework, which includes a spatially dependent McLerran-Venugopalan initial configuration and the explicit numerical solution of the JIMWLK equations. We determine the leading anisotropy of the Wigner and Husimi distributions as a function of the angle between impact parameter and transverse momentum. We study experimental signatures of these angular correlations at a proposed Electron Ion Collider by computing coherent diffractive dijet p…

QuarkCOLLISIONSprotonitNuclear TheoryHIGH-ENERGY FACTORIZATIONFOS: Physical sciencesPartonhiukkasfysiikka01 natural sciences114 Physical sciencesColor-glass condensateNuclear Theory (nucl-th)Nuclear physicsDEEP-INELASTIC SCATTERINGUNITARITYHigh Energy Physics - Phenomenology (hep-ph)Recoil0103 physical sciences010306 general physicsNuclear Experimentproton structureQuantum chromodynamicsPhysicsta114010308 nuclear & particles physicsQUARKNONLINEAR GLUON EVOLUTIONQCDGluonHigh Energy Physics - Phenomenologyparton Wigner distributionsEP SCATTERINGSATURATIONPHOTOPRODUCTIONcolor glass condensateImpact parameterNucleonPhysical Review D
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Tests of quark-hadron duality in tau-decays

2016

An exhaustive number of QCD finite energy sum rules for $\tau$-decay together with the latest updated ALEPH data is used to test the assumption of global duality. Typical checks are the absence of the dimension $d=2$ condensate, the equality of the gluon condensate extracted from vector or axial vector spectral functions, the Weinberg sum rules, the chiral condensates of dimensions $d=6$ and $d=8$, as well as the extraction of some low-energy parameters of chiral perturbation theory. Suitable pinched linear integration kernels are introduced in the sum rules in order to suppress potential quark-hadron duality violations and experimental errors. We find no compelling indications of duality v…

QuarkNuclear and High Energy PhysicsParticle physicsChiral perturbation theoryHadronLinearity of integrationGeneral Physics and AstronomyDuality (optimization)FOS: Physical sciences01 natural sciencesHigh Energy Physics - ExperimentHigh Energy Physics - Experiment (hep-ex)High Energy Physics - Phenomenology (hep-ph)High Energy Physics - Lattice0103 physical sciences010306 general physicsPseudovectorPhysicsQuantum chromodynamics010308 nuclear & particles physicsHigh Energy Physics - Lattice (hep-lat)High Energy Physics::PhenomenologyAstronomy and AstrophysicsGluon condensateHigh Energy Physics - PhenomenologyHigh Energy Physics::Experiment
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Color glass condensate at next-to-leading order meets HERA data

2020

We perform the first dipole picture fit to HERA inclusive cross section data using the full next-to-leading order (NLO) impact factor combined with an improved Balitsky-Kovchegov evolution including the dominant effects beyond leading logarithmic accuracy at low $x$. We find that three different formulations of the evolution equation that have been proposed in the recent literature result in a very similar description of HERA data, and robust predictions for future deep inelastic scattering experiments. We find evidence pointing towards a significant nonperturbative contribution to the structure function for light quarks, which stresses the need to extend the NLO impact factor calculation t…

QuarkParticle physicsLogarithmNuclear TheoryFOS: Physical scienceshiukkasfysiikka01 natural sciences114 Physical sciencesperturbative QCDColor-glass condensateNuclear Theory (nucl-th)High Energy Physics - Phenomenology (hep-ph)0103 physical sciences010306 general physicsPhysics010308 nuclear & particles physicsHigh Energy Physics::PhenomenologyOrder (ring theory)HERADeep inelastic scatteringDipoleHigh Energy Physics - PhenomenologyQCD in nuclear reactionsEvolution equationHigh Energy Physics::Experimentydinfysiikka
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Ultrarelativistic quark-nucleus scattering in a light-front Hamiltonian approach

2020

We investigate the scattering of a quark on a heavy nucleus at high energies using the time-dependent basis light-front quantization (tBLFQ) formalism, which is the first application of the tBLFQ formalism in QCD. We present the real-time evolution of the quark wave function in a strong classical color field of the relativistic nucleus, described as the color glass condensate. The quark and the nucleus color field are simulated in the QCD SU(3) color space. We calculate the total and the differential cross sections, and the quark distribution in coordinate and color spaces using the tBLFQ approach. We recover the eikonal cross sections in the eikonal limit. We find that the differential cro…

QuarkParticle physicsNuclear TheoryHigh Energy Physics::LatticeNuclear TheoryFOS: Physical scienceshiukkasfysiikka01 natural sciencesColor-glass condensateNuclear Theory (nucl-th)Quantization (physics)symbols.namesakeHigh Energy Physics - Phenomenology (hep-ph)0103 physical sciencessironta010306 general physicsWave functionPhysicsQuantum chromodynamics010308 nuclear & particles physicsEikonal equationkvarkitHigh Energy Physics::PhenomenologyDeep inelastic scatteringHigh Energy Physics - PhenomenologysymbolskvanttikenttäteoriaHamiltonian (quantum mechanics)ydinfysiikkaPhysical Review D
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