Literatura académica sobre el tema "Quarkonium production"
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Artículos de revistas sobre el tema "Quarkonium production"
Mattioli, Kara R. "Towards Experimental Confirmation of Quarkonia Melting in Quark–Gluon Plasma: A Review of Recent Measurements of Quarkonia Production in Relativistic Heavy-Ion Collisions". Symmetry 16, n.º 2 (13 de febrero de 2024): 225. http://dx.doi.org/10.3390/sym16020225.
Texto completoFionda, F. "Quarkonium Production Measurements with the ALICE Detector at the LHC". Ukrainian Journal of Physics 64, n.º 7 (17 de septiembre de 2019): 566. http://dx.doi.org/10.15407/ujpe64.7.566.
Texto completoSHEN, XIAOYAN. "HEAVY FLAVOR, QUARKONIUM PRODUCTION AND DECAY". International Journal of Modern Physics A 21, n.º 08n09 (10 de abril de 2006): 1710–23. http://dx.doi.org/10.1142/s0217751x06032708.
Texto completoCastellanos, Javier Castillo. "Hidden heavy flavour production in heavy-ion collisions". EPJ Web of Conferences 171 (2018): 04002. http://dx.doi.org/10.1051/epjconf/201817104002.
Texto completoCeliberto, Francesco Giovanni. "Vector Quarkonia at the LHC with Jethad: A High-Energy Viewpoint". Universe 9, n.º 7 (7 de julio de 2023): 324. http://dx.doi.org/10.3390/universe9070324.
Texto completoNejad, S. Mohammad Moosavi y Mahdi Delpasand. "Spin-dependent fragmentation functions of gluon splitting into heavy quarkonia considering three different scenarios". International Journal of Modern Physics A 30, n.º 32 (17 de noviembre de 2015): 1550179. http://dx.doi.org/10.1142/s0217751x15501791.
Texto completoZhao, Jiaxing. "Recent theoretical developments in quarkonia production in relativistic heavy ion collisions". EPJ Web of Conferences 316 (2025): 01013. https://doi.org/10.1051/epjconf/202531601013.
Texto completoMassacrier, Laure. "Measurements of quarkonia production". EPJ Web of Conferences 316 (2025): 01014. https://doi.org/10.1051/epjconf/202531601014.
Texto completoMcKibben Lofnes, Ingrid. "Quarkonia as probes of the QGP and of the initial stages of the heavy-ion collision with ALICE". EPJ Web of Conferences 259 (2022): 12004. http://dx.doi.org/10.1051/epjconf/202225912004.
Texto completoManca, G. "Quarkonia production at LHCb". International Journal of Modern Physics A 29, n.º 11n12 (25 de abril de 2014): 1430014. http://dx.doi.org/10.1142/s0217751x14300142.
Texto completoTesis sobre el tema "Quarkonium production"
Teklishyn, Maksym. "Measurement of the η c (1S) production cross-section via the decay η c to proton-antiproton final state". Thesis, Paris 11, 2014. http://www.theses.fr/2014PA112224/document.
Texto completoThis thesis addresses a study of the η c (1S) charmonium state using decays to proton-antiproton final state at the LHCb experiment. The production cross-section of the η c meson in parton interactions and in b-hadron decays are reported. Production of the η c (1S) state is measured via the decay to ppbar with the LHCb detector, using an integrated luminosity of 0.7 fb⁻¹ accumulated at 7 TeV centre-of-mass energy in 2011, and an integrated luminosity of 2 fb⁻¹ accumulated at 8 TeV centre-of-mass energy in 2012. The measurements are performed using the J/ψ → ppbar decay as a reference channel. High centre-of-mass energies available in proton-proton collisions at the LHC allow models describing charmonium production to be tested. We distinguish promptly produced charmonia from those originating from b-hadron decays. Promptly produced charmonia include charmonia directly produced in parton interactions and those originating from the decays of heavier quarkonium states, which are in turn produced in parton interactions. Prompt charmonium production comprises direct production in the parton interaction and charmonium originating from decays of heavier states. The relative rate of prompt production of the η c and J/ψ states in the LHCb acceptance (rapidity range 2.0 < y < 4.5) and for p T (J/ψ , η c ) > 6.5 GeV/c is measured for the first time to be σ (η c) /σ (J/ψ) = 1.74 ± 0.29 stat ± 0.28 syst ± 0.18 B at a centre-of-mass energy 7 TeV, and σ (η c) /σ (J/ψ) = 1.60 ± 0.29 stat ± 0.25 syst ± 0.17 B at a centre-of-mass energy s = 8 TeV. Using the J/ψ production cross-section measured by LHCb and assuming no J/ψ polarization, the absolute η c prompt production cross-section in the same kinematic regime is found to be σ η c = 0.52 ± 0.09 stat ± 0.08 syst ± 0.06 σ J/ψ , B at a centre-of-mass energy 7 TeV, and σ η c = 0.59 ± 0.11 stat ± 0.09 syst ± 0.08 σ J/ψ , B at a centre-of-mass energy s = 8 TeV. The third error component corresponds to the uncertainty in the J/ψ → pp and η c → pp branching fractions and the J/ψ cross-section measurement. The relative η c to J/ψ inclusive branching fraction from b-hadron decays is measured to be B(b→η c X) /B(b→J/ψ X) = 0.42 ± 0.06 stat ± 0.02 syst ± 0.05 B. Using the J/ψ inclusive branching fraction from b-hadron decays measured with the J/ψ → μμ decay channel, the inclusive η c branching fraction from b-hadron decays is found to be B(b→η c X) = (4.9 ± 0.6 stat ± 0.3 syst ± 0.7 B) × 10 ⁻³ ,where the third error component corresponds to the uncertainty in the J/ψ → pp and η c → pp branching fractions (and the J/ψ inclusive branching fraction from b-hadron decays). The measurement of the relative η c inclusive branching fraction from b-hadron decays is the most precise to date. Using low-background sample of η c from b-hadron decays, the J/ψ and η c mass difference, ∆M J/ψ , η c = 114.7 ± 1.5 ± 0.1 MeV/c² , is measured. The value of the relative inclusive η c production to J/ψ is important for distinguishing between a variety of theoretical models. The η c cross-section is measured in bins of transverse momentum. It exhibits a similar behaviour to those obtained in the J/ψ production analysis, though with significantly larger uncertainties. The upper limits on the production of some other charmonium states are addressed
Price, Darren David. "Studies of quarkonium production and polarisation with early data at Atlas". Thesis, Lancaster University, 2008. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.527159.
Texto completoScarpa, Florent. "Probing the gluon Transverse Momentum-Dependent distributions inside the proton through quarkonium-pair production at the LHC". Thesis, université Paris-Saclay, 2020. http://www.theses.fr/2020UPASS104.
Texto completoTransverse momentum-dependent factorisation is used to describe hadronic collisions while taking into account the intrinsic transverse momentum of partons inside hadrons. This requires the use of Transverse Momentum-Dependent Parton Distribution Functions (TMDPDFs or simply TMDs) in order to parametrise the parton correlator. Such distributions need to be extracted from experimental data. Quark TMDs are relatively well known thanks to processes such as semi-inclusive deep inelastic scattering (SIDIS) and Drell-Yan for which numerous data exist. Gluon TMDs remain poorly known, since there is no ideal process to probe them in the operating colliders. The future Electron-Ion Collider (EIC) will offer a much better access to them, but its first run remains at least 10 years from now. It is also important to study TMDs in various kinds of processes in order to check their universality which is not as trivial as that of collinear PDFs.We propose to use quarkonium-pair production to study the two leading-twist gluon TMDs accessible through unpolarised proton collisions at the Large Hadron Collider (LHC). Quarkonia are mesons, i.e. bound states of a quark-antiquark pair. In the case of a quarkonium, the pair is made of heavy flavours: charmonia combine a charm with an anticharm, while bottomonia combine a bottom with an antibottom. J/psi mesons are the lowest lying vector state of charmonia and are produced in large amounts at the LHC. J/psi pairs originate from gluon fusion in vast majority, which is important in order to focus on gluon TMDs. Studying two-particle final states also allows one to tune the hard scale of the process commensurate to the pair mass, which in turn allows one to study TMD evolution.We first use a model of Gaussian-based TMDs to compute observables in J/psi-pair production that are sensitive to the TMDs. These observables are the transverse-momentum spectrum of the pair, mostly sensitive to the unpolarised gluon TMD, and azimuthal asymmetries, whose existence requires the linearly-polarised gluon TMD. We see that J/psi pair production is an ideal process to probe the linearly-polarised gluon distribution through one azimuthal asymmetry that is maximal at large hard scales. We also use the LHCb data on the J/psi pair transverse momentum to fit the average gluon transverse momentum using our Gaussian-based model. The large value that is obtained is interpreted as a consequence of TMD evolution that perturbatively enhances the intrinsic transverse momentum of the gluon at such large hard scales.We then improve our predictions by including TMD evolution in the formalism used to describe the gluon TMDs in our calculations. In this picture, the unpolarised gluon distribution is a leading contribution in an expansion of the strong coupling, while the linearly-polarised distribution is subleading. The remaining nonperturbative component is modelled using a Gaussian. We observe that the computed magnitude of the azimuthal asymmetries in J/psi-pair production are lower than when using the purely Gaussian model. However, we observe that these asymmetries remain sizeable and could be detected at the LHC. We also provide predictions for Upsilon-pair production (the Upsilon is the bottomonium equivalent of the J/psi).We finally study the helicity structure of the quarkonium-pair production amplitude. It can be written as a sum of sub-amplitudes corresponding to various helicity states of the initial-state gluons and final-state quarkonia. In the high-mass limit of the pair, the amplitudes greatly simplify and explain how the hard-scattering coefficients of J/psi-pair production maximise the size of one azimuthal asymmetry, as previously observed. Moreover, it is shown that the amplitude zero for longitudinally polarised pairs predicted at leading order in the collinear regime exists as well in TMD factorisation. It should survive for intermediate masses as hard gluon emissions are suppressed in the TMD regime
钱Qian, 文斌Wenbin. "J/ψ production study at the LHCb experimentJ/ψ production study at the LHCb experiment". Paris 11, 2010. http://www.theses.fr/2010PA112109.
Texto completoIn this thesis, the study of the J/ψ production at the LHCb is presented, based on a sample of fully simulated Monte Carlo events. The procedure developped in this thesis will be use to analyze real data when enough statistics will be accumulated. J/ψ events are reconstructed using selection criteria optimized to reach the best discrimitaion against background processes. The stude done shows that 6. 5 million J/ψ can be reconstructed per pb-1 of data. The production cross section of prompt J/ψ and of J/ψ from b is measured in pT and η 28 bins covering the region 0 < pT < 7 GeV/c and 3 < η < 5. In each bin, a variable is defined to distinguish prompt J/ψ and b decays. The analysis show also that J/ polarization plays an important role in the cross section determination. It can contribute to a systematic error up to 30% in some of the bins. Such an effect can be greatly reduced if a J/ψ polarization analysis is done simultaneously. The measurement of the polarization parameters will also help to understand J/ψ production mechanisms. The LHCb experiment already recorded 14 nbֿ¹ of data, part of the analysis can already be done. Approximately 3000 J/ψ candidates are reconstructed. Using this sample, the cross section as a function of pT is measured. The preliminary measurement of the J/ψ cross section in the region pT between 0 and 9 GeV/c and y between 2. 5 and 4 is 7. 6±0. 3 µb where only the statistical error is reported
Bor, Jelle. "Gluon-induced quarkonium production in transverse-momentum-dependent factorisation : applications to the LHC and EIC". Electronic Thesis or Diss., université Paris-Saclay, 2025. http://www.theses.fr/2025UPASP010.
Texto completoWith the Large Hadron Collider (LHC) and the upcoming Electron-Ion Collider (EIC) high-energy experiments we can investigate the elementary structure of protons. In the past, protons were thought to comprise three valence quarks (two up, one down), but now we know they also contain short-lived quark-antiquark pairs of all six quark types and gluons, the mediators of the strong nuclear force, described by quantum chromodynamics (QCD). To probe the internal structure of a nucleon, parton distribution functions (PDFs) quantify how momentum is distributed among partons (quarks and gluons) longitudinally in a reaction, while transverse-momentum-dependent PDFs (TMDs) add transverse momentum information. While quark TMDs are getting better understood, our knowledge of gluon TMDs is still very limited. This study focuses on extracting gluon TMDs through quarkonium production, particularly J/psi mesons, at the LHC and EIC, since quarkonium, a meson formed by a heavy quark-antiquark pair of the same heavy flavour, mainly originates from partonic gluons. To study such processes, it is essential that they can be factorised. This means that the cross section, representing process likelihood, is a convolution of a perturbative QCD term, that can be theoretically calculated, and nonperturbative terms like the TMDs and the long-distance matrix elements (LDMEs) which describe the formation of the quarkonium, that need to be extracted from an experiment. For J/psi production in electron-proton collisions, colour neutrality requires low-energy gluon emission. This introduces the shape function, crucial for reconciling TMD and collinear frameworks (in terms of PDFs) in their overlapping regime. Calculations show the shape function is universal, while accompanied by a process-dependent factor, and it is expected to play a role in direct colour-neutral quarkonium production at higher orders as well. Predictions of an azimuthal asymmetry, linked to the ratio of linearly polarised to unpolarised gluon TMDs, suggest measurable effects at the EIC to probe these TMDs and shape functions. Additionally, a novel nonperturbative Sudakov factor was developed for the TMD evolution formalism, improving upon Gaussian models by extrapolating known perturbative behaviour into the nonperturbative regime. While innovative, this factor remains to be determined by experiment. Employing this novel Sudakov factor agreement with recent normalised cross-section data for J/psi-pair production at the LHCb is found. However, scale variation uncertainties necessitate higher-order corrections. Future LHC studies, such as Upsilon-pair production and J/psi-pair production with one stationary proton, may reveal more about gluon TMDs at higher energies and momentum fractions. For the EIC, progress was made toward a complete spectrum for J/psi production, focusing on angle-independent contributions. Although the TMD and collinear cross sections follow significantly different power laws in the kinematic regime to be probed by the EIC, we find no matching issues, because the TMD cross sections lie above the collinear ones in the region where matching is expected to occur
Robbe, P. "Generators, Calorimeter Trigger and J/ψ production at LHCb". Habilitation à diriger des recherches, Université Paris Sud - Paris XI, 2012. http://tel.archives-ouvertes.fr/tel-00683350.
Texto completoFeuillard, Victor. "Measurement of the ψ(2S) production in presence of a Quark-Gluon Plasma". Thesis, Université Clermont Auvergne (2017-2020), 2017. http://www.theses.fr/2017CLFAC079/document.
Texto completoThe nuclear matter, which constitues the atomic nuclei, is composed of quarks and gluons and interactions between them are described by quantum chromo-dynamics (QCD). Under ordinary conditions, quarks and gluons cannot be observed isolated and are confined inside hadrons such as protons and neutrons. The Quark-Gluon Plasma (QGP) is a state of nuclear matter predicted by QCD where quarks and gluons are deconfined. Experimentally, a QGP can be created in ultra-relativistic heavy ion collisions such as the lead-lead collisions delivered at the LHC, corresponding to speeds close to the speed of light. It is possible to obtain information on the characteris- tics of the QGP by measuring a large number of observables. In particular, the production of charmonium states such as the J/ψ and the ψ(2S), heavy particles composed of a charm and anti-charm pair (), is studied to investigate the plasma. Indeed, the presence of QGP is expected to modify the charmonium production yields, due to a balance between the mechanism of color screening of the charm quark potential and a mechanism called recombination. This balance depends on the collision energy, the temperature of the plasma and nature on the considered particle, in particular one expects the ψ(2S) to be more suppressed than the J/ψ. In this thesis the inclusive production of ψ(2S) in Pb − Pb collisions at an energy per nucleon-nucleon collision in the center of mass frame of TeV is measured in the dimuon-decay channel, using the ALICE Muon Spectrometer. The analysis is based on the data collected in ALICE (A Large Ion Collider Experiment) at the LHC in 2015 with an integrated luminosity of 225 μb−1. The nuclear modification factor RAA is studied as a function of centrality. The ratio of the ψ(2S) and J/ψ RAA is also evaluated and shows that the ψ(2S) is more suppressed than the J/ψ for mid-central and central events. Compared with theoretical predictions, the measurements are, within uncertainty, in agreement with theoretical model. The upgrade of the Muon Trigger, the MID (Muon Identifier), is also studied, in particular the expected data flow at a collisions rate of 100 kHz. Based on the Pb − Pb data at a collision energy of TeV, the estimations predict that the technology that will be implemented in the MID provides a sufficient bandwidth to sustain the data flow
Yedelkina, Yelyzaveta. "Vector-quarkonium production in photon-photon and photon-proton collisions up to one loop in quantum chromodynamics". Electronic Thesis or Diss., université Paris-Saclay, 2024. http://www.theses.fr/2024UPASP077.
Texto completoThe thesis focuses on one of the most studied particles at high-energy colliders, the quarkonium, which is a bound state of a heavy quark-antiquark pair. Part I starts with a review of the main features of QCD, the theory of the strong interaction and discusses the Non-Relativistic QCD (NRQCD) framework for the calculation of the quarkonium-production cross sections and decay widths, restricted to the leading Fock state of the quark-antiquark pair, as in the Colour-Singlet Model (CSM). We then present our methodology for the computation of the next-to-leading order (NLO) corrections in the strong coupling to vector quarkonium production. In particular, the main steps of the calculation methodology of virtual and real corrections are described. To perform such calculations, we have developed an algorithm based on the Catani-Seymour dipole subtraction and a numerically efficient implementation of the NLO cross section with the scaling-function formalism. Part II presents a selection of our results for quarkonium production at various experimental facilities such as the LHC, HERA, the CEPC, the FCC, the EIC and the CLIC. We have studied the production of the vector quarkonium states J/psi and Upsilon in the photoproduction limit of lepton-hadron collisions, where a quasi on-shell photon breaks a proton to produce the quarkonium with at least one recoiling hard parton. In particular, we show that the CSM can describe the HERA2 H1 data. For this study we have included a QED-induced contribution via an off-shell photon which was thought to be negligible but which becomes the leading contribution at the largest transverse momenta accessible with the EIC. Another novel contribution we have considered is a J/psi and another charm quark associated production with the variable-flavour-number scheme. This process can be observed at the future EIC and can be used to probe the non-perturbative charm content of the proton at high momentum fractions. Furthermore, we have studied the origin of an unphysical behaviour of the photoproduction cross sections, which has been found to be related to an over-subtraction of collinear divergences in the parton distribution functions (PDFs). The scale-fixing method we have used solves this problem at NLO in the strong coupling, so we could provide a qualitative analysis of the possibility of constraining the PDFs using future J/psi and Upsilon (1S) photoproduction data. The cross sections we obtained show that the corresponding yields are expected to be measured at high energies with very good accuracy at the future EIC and other future facilities such as the LHeC or the FCC-eh. In addition, we have shown that the lower energy measurements at AMBER-COMPASS++ and the EicC can be useful to probe the valence region. The second part also includes a review of our study which revisits the inclusive NLO calculation for the J/psi production via direct photon and single-resolved photon in photon fusion in electron-positron collisions. Our study includes all significant direct-photon contributions: the direct-photon production of J/psi and a photon, the associated production of J/psi and a charm quark-antiquark pair, and the production of J/psi along with three gluons. We have also considered the single-resolved-photon contributions up to NLO in the coupling constant. We have provided phenomenological predictions for the kinematics of the DELPHI, the future CEPC, the FCC-ee and the CLIC experiments, where all these CS contributions have been brought together for the first time
Qian, W. "J/ψ production study at the LHCb experiment". Phd thesis, Université Paris Sud - Paris XI, 2010. http://tel.archives-ouvertes.fr/tel-00525609.
Texto completoFronze, Gabriele Gaetano. "Study of quarkonium production in ultra-relativistic nuclear collisions with ALICE at the LHC : and optimization of the muon identification algorithm". Thesis, Ecole nationale supérieure Mines-Télécom Atlantique Bretagne Pays de la Loire, 2019. http://www.theses.fr/2019IMTA0132/document.
Texto completoALICE is devoted to the study of a deconfined state of nuclear matter called Quark Gluon Plasma (QGP), in which quarks and gluons behave as free particles. The bottomonium (bound states of beauty-anti beauty quark) production is affected by the presence of the QGP, since bottomonium states are produced sooner than the QGP and witness the whole evolution of the plasma. In this analysis the data coming from Pb-Pb collisions have been analysed in order to detect possible modifications of the production rates in the dimuon decay channel, with respect to the rates observed in proton-proton collisions. Furthermore, the performances of the detectors involved in the muon identification during the LHC RUN1 and RUN2 has been tested using a new analysis framework implemented as part of this thesis. Finally, in order to optimize the results of future analyses, a new muon identification algorithm has been developed and tested. This algorithm will become necessary in the LHC RUN3 running conditions, when the much higher luminosity will require a quasi online reconstruction of data
Libros sobre el tema "Quarkonium production"
Shao, Hua-Sheng. Heavy Quarkonium Production Phenomenology and Automation of One-Loop Scattering Amplitude Computations. Singapore: Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-1624-0.
Texto completoBarbara, Jacak y Wang Xin-Nian, eds. Quarkonium production in high-energy nuclear collisions: Proceedings of the RHIC/INT 1998 Winter Workshop, Seattle, Washington, 11-15 May 1998. Singapore: World Scientific, 1999.
Buscar texto completoWang, Xin-Niam y Barbara Jacak. Quarkonium Production in High-Energy Nuclear Collisions. World Scientific Publishing Company, 1999.
Buscar texto completoShao, Hua-Sheng. Heavy Quarkonium Production Phenomenology and Automation of One-Loop Scattering Amplitude Computations. Springer London, Limited, 2016.
Buscar texto completoShao, Hua-Sheng. Heavy Quarkonium Production Phenomenology and Automation of One-Loop Scattering Amplitude Computations. Springer, 2018.
Buscar texto completoShao, Hua-Sheng. Heavy Quarkonium Production Phenomenology and Automation of One-Loop Scattering Amplitude Computations. Springer, 2016.
Buscar texto completoCapítulos de libros sobre el tema "Quarkonium production"
Signori, Andrea. "Gluon TMDs in Quarkonium Production". En Light Cone 2015, 297–301. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-50699-9_47.
Texto completoShao, Hua-Sheng. "Heavy Quarkonium Production in Hadronic Collisions". En Heavy Quarkonium Production Phenomenology and Automation of One-Loop Scattering Amplitude Computations, 37–71. Singapore: Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-1624-0_4.
Texto completoShao, Hua-Sheng. "Background of Heavy Quarkonium Physics". En Heavy Quarkonium Production Phenomenology and Automation of One-Loop Scattering Amplitude Computations, 9–19. Singapore: Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-1624-0_2.
Texto completoLourenço, Carlos, Pietro Faccioli y Hermine K. Wöhri. "Quarkonium Production and Absorption in Proton-Nucleus collisions". En The Physics of the Quark-Gluon Plasma, 199–218. Berlin, Heidelberg: Springer Berlin Heidelberg, 2009. http://dx.doi.org/10.1007/978-3-642-02286-9_6.
Texto completoSingh, Captain R., S. Ganesh y M. Mishra. "Sequential Quarkonium Production via Recombination in Heavy-Ion Collisions". En XXII DAE High Energy Physics Symposium, 479–84. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-73171-1_112.
Texto completoKumar, Vineet. "Quarkonium Production and Suppression with CMS Detector at LHC". En XXII DAE High Energy Physics Symposium, 219–22. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-73171-1_49.
Texto completoShao, Hua-Sheng. "Inclusive $${J/\psi }$$ J / ψ Production at B Factories". En Heavy Quarkonium Production Phenomenology and Automation of One-Loop Scattering Amplitude Computations, 73–85. Singapore: Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-1624-0_5.
Texto completoShukla, Prashant. "Results on Quarkonium and Heavy Meson Production in PbPb Collisions by CMS Experiment". En XXII DAE High Energy Physics Symposium, 39–42. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-73171-1_8.
Texto completoShao, Hua-Sheng. "Introduction". En Heavy Quarkonium Production Phenomenology and Automation of One-Loop Scattering Amplitude Computations, 1–5. Singapore: Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-1624-0_1.
Texto completoShao, Hua-Sheng. "Automation of NLO Computations". En Heavy Quarkonium Production Phenomenology and Automation of One-Loop Scattering Amplitude Computations, 139–50. Singapore: Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-1624-0_10.
Texto completoActas de conferencias sobre el tema "Quarkonium production"
Flett, Chris. "Impact studies of the gluon PDF using exclusive heavy-quarkonium production data". En 42nd International Conference on High Energy Physics, 585. Trieste, Italy: Sissa Medialab, 2024. https://doi.org/10.22323/1.476.0585.
Texto completoBodwin, Geoffrey. "Quarkonium production". En VIIIth Conference Quark Confinement and the Hadron Spectrum. Trieste, Italy: Sissa Medialab, 2012. http://dx.doi.org/10.22323/1.077.0001.
Texto completoChao, K. T. "Quarkonium production review". En Xth Quark Confinement and the Hadron Spectrum. Trieste, Italy: Sissa Medialab, 2013. http://dx.doi.org/10.22323/1.171.0003.
Texto completoLansberg, Jean-Philippe. "Associated-quarkonium production". En XXII. International Workshop on Deep-Inelastic Scattering and Related Subjects. Trieste, Italy: Sissa Medialab, 2014. http://dx.doi.org/10.22323/1.203.0151.
Texto completoChung, H. S. "Status of quarkonium production". En The 18th International Conference on Hadron Spectroscopy and Structure (HADRON2019). WORLD SCIENTIFIC, 2020. http://dx.doi.org/10.1142/9789811219313_0064.
Texto completoZhang, Yanxi. "Quarkonium production at LHCb". En XXIst International Europhysics Conference on High Energy Physics. Trieste, Italy: Sissa Medialab, 2012. http://dx.doi.org/10.22323/1.134.0314.
Texto completoPowell, Christopher. "Quarkonium Production at STAR". En XXIst International Europhysics Conference on High Energy Physics. Trieste, Italy: Sissa Medialab, 2012. http://dx.doi.org/10.22323/1.134.0485.
Texto completoZakareishvili, T. "Associated quarkonium production at ATLAS". En The 18th International Conference on Hadron Spectroscopy and Structure (HADRON2019). WORLD SCIENTIFIC, 2020. http://dx.doi.org/10.1142/9789811219313_0065.
Texto completoFleming, Sean. "Production & decay of quarkonium". En HEAVY FLAVOR PHYSICS: Ninth International Symposium on Heavy Flavor Physics. AIP, 2002. http://dx.doi.org/10.1063/1.1478859.
Texto completoBIAN, Jianguo. "CMS results on Quarkonium production". En LHC on the March. Trieste, Italy: Sissa Medialab, 2013. http://dx.doi.org/10.22323/1.186.0013.
Texto completoInformes sobre el tema "Quarkonium production"
Gavai, R., G. A. Schuler y K. Sridhar. Quarkonium production in hadronic collisions. Office of Scientific and Technical Information (OSTI), julio de 1995. http://dx.doi.org/10.2172/192031.
Texto completoCheung, K., W. Y. Keung y T. C. Yuan. Color-octet quarkonium production at the Z pole. Office of Scientific and Technical Information (OSTI), septiembre de 1995. http://dx.doi.org/10.2172/244627.
Texto completoDumitru, A., C. Lourenco, P. Petreczky y J. ,. Ruan, L. Qiu. Proceedings of RIKEN BNL Research Center Workshop: Brookhaven Summer Program on Quarkonium Production in Elementary and Heavy Ion Collisions. Office of Scientific and Technical Information (OSTI), agosto de 2011. http://dx.doi.org/10.2172/1029247.
Texto completoDemina, R. Quarkonia production at CDF. Office of Scientific and Technical Information (OSTI), agosto de 1996. http://dx.doi.org/10.2172/371181.
Texto completoJohns, K. A. Quarkonia production at D0. Office of Scientific and Technical Information (OSTI), agosto de 1996. http://dx.doi.org/10.2172/385453.
Texto completoSansoni, A. Quarkonia production at Fermilab. Office of Scientific and Technical Information (OSTI), julio de 1995. http://dx.doi.org/10.2172/102432.
Texto completoBauer, G. Quarkonia production in p{bar p}-collisions with CDF. Office of Scientific and Technical Information (OSTI), julio de 1995. http://dx.doi.org/10.2172/102435.
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