65 research outputs found

    Measurement of the gamma ray background in the Davis Cavern at the Sanford Underground Research Facility

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    Deep underground environments are ideal for low background searches due to the attenuation of cosmic rays by passage through the earth. However, they are affected by backgrounds from Îł-rays emitted by 40K and the 238U and 232Th decay chains in the surrounding rock. The LUX-ZEPLIN (LZ) experiment will search for dark matter particle interactions with a liquid xenon TPC located within the Davis campus at the Sanford Underground Research Facility, Lead, South Dakota, at the 4,850-foot level. In order to characterise the cavern background, in-situ Îł-ray measurements were taken with a sodium iodide detector in various locations and with lead shielding. The integral count rates (0--3300~keV) varied from 596~Hz to 1355~Hz for unshielded measurements, corresponding to a total flux in the cavern of 1.9±0.4~Îł cm−2s−1. The resulting activity in the walls of the cavern can be characterised as 220±60~Bq/kg of 40K, 29±15~Bq/kg of 238U, and 13±3~Bq/kg of 232Th

    Measurement of forward charged hadron flow harmonics in peripheral PbPb collisions at √sNN = 5.02 TeV with the LHCb detector

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    Flow harmonic coefficients, v n , which are the key to studying the hydrodynamics of the quark-gluon plasma (QGP) created in heavy-ion collisions, have been measured in various collision systems and kinematic regions and using various particle species. The study of flow harmonics in a wide pseudorapidity range is particularly valuable to understand the temperature dependence of the shear viscosity to entropy density ratio of the QGP. This paper presents the first LHCb results of the second- and the third-order flow harmonic coefficients of charged hadrons as a function of transverse momentum in the forward region, corresponding to pseudorapidities between 2.0 and 4.9, using the data collected from PbPb collisions in 2018 at a center-of-mass energy of 5.02 TeV . The coefficients measured using the two-particle angular correlation analysis method are smaller than the central-pseudorapidity measurements at ALICE and ATLAS from the same collision system but share similar features

    Helium identification with LHCb

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    The identification of helium nuclei at LHCb is achieved using a method based on measurements of ionisation losses in the silicon sensors and timing measurements in the Outer Tracker drift tubes. The background from photon conversions is reduced using the RICH detectors and an isolation requirement. The method is developed using pp collision data at √(s) = 13 TeV recorded by the LHCb experiment in the years 2016 to 2018, corresponding to an integrated luminosity of 5.5 fb-1. A total of around 105 helium and antihelium candidates are identified with negligible background contamination. The helium identification efficiency is estimated to be approximately 50% with a corresponding background rejection rate of up to O(10^12). These results demonstrate the feasibility of a rich programme of measurements of QCD and astrophysics interest involving light nuclei

    Curvature-bias corrections using a pseudomass method

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    Momentum measurements for very high momentum charged particles, such as muons from electroweak vector boson decays, are particularly susceptible to charge-dependent curvature biases that arise from misalignments of tracking detectors. Low momentum charged particles used in alignment procedures have limited sensitivity to coherent displacements of such detectors, and therefore are unable to fully constrain these misalignments to the precision necessary for studies of electroweak physics. Additional approaches are therefore required to understand and correct for these effects. In this paper the curvature biases present at the LHCb detector are studied using the pseudomass method in proton-proton collision data recorded at centre of mass energy √(s)=13 TeV during 2016, 2017 and 2018. The biases are determined using Z→Ό + ÎŒ - decays in intervals defined by the data-taking period, magnet polarity and muon direction. Correcting for these biases, which are typically at the 10-4 GeV-1 level, improves the Z→Ό + ÎŒ - mass resolution by roughly 18% and eliminates several pathological trends in the kinematic-dependence of the mean dimuon invariant mass

    Study of the doubly charmed tetraquark T+cc

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    Quantum chromodynamics, the theory of the strong force, describes interactions of coloured quarks and gluons and the formation of hadronic matter. Conventional hadronic matter consists of baryons and mesons made of three quarks and quark-antiquark pairs, respectively. Particles with an alternative quark content are known as exotic states. Here a study is reported of an exotic narrow state in the D0D0π+ mass spectrum just below the D*+D0 mass threshold produced in proton-proton collisions collected with the LHCb detector at the Large Hadron Collider. The state is consistent with the ground isoscalar T+cc tetraquark with a quark content of ccu⎯⎯⎯d⎯⎯⎯ and spin-parity quantum numbers JP = 1+. Study of the DD mass spectra disfavours interpretation of the resonance as the isovector state. The decay structure via intermediate off-shell D*+ mesons is consistent with the observed D0π+ mass distribution. To analyse the mass of the resonance and its coupling to the D*D system, a dedicated model is developed under the assumption of an isoscalar axial-vector T+cc state decaying to the D*D channel. Using this model, resonance parameters including the pole position, scattering length, effective range and compositeness are determined to reveal important information about the nature of the T+cc state. In addition, an unexpected dependence of the production rate on track multiplicity is observed

    Measurement of the D∗D^* longitudinal polarization in B0→D∗−τ+ΜτB^0 \to D^{* -}\tau^+\nu_{\tau} decays  

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    The longitudinal polarization fraction of the D∗D^* meson is measured in B0→D∗−τ+ΜτB^0 \to D^{* -}\tau^+\nu_{\tau} decays, where the τ\tau lepton decays to three charged pions and a neutrino, using proton-proton collision data collected by the LHCb experiment at center-of-mass energies of 7, 8 and 13 TeV and corresponding to an integrated luminosity of 5 fb−1^{-1}. The D∗D^* polarization fraction FLD∗F_L^{D^*} is measured in two q2q^2 regions, below and above 7 GeV2^2/c4^4, where q2q^2 is defined as the squared invariant mass of the τΜτ\tau\nu_{\tau} system. The FLD∗F_L^{D^*} values are measured to be 0.51±0.07±0.030.51 \pm 0.07 \pm 0.03 and 0.35±0.08±0.020.35 \pm 0.08 \pm 0.02 for the lower and higher q2q^2 regions, respectively. The first uncertainties are statistical and the second systematic. The average value over the whole q2q^2 range is: FLD∗=0.43±0.06±0.03.F_L^{D^*} = 0.43 \pm 0.06 \pm 0.03. These results are compatible with the Standard Model predictions.The longitudinal polarization fraction of the D∗D^{*} meson is measured in B0→D∗−τ+ΜτB^0\to D^{*-}\tau^{+}\nu_{\tau} decays, where the τ\tau lepton decays to three charged pions and a neutrino, using proton-proton collision data collected by the LHCb experiment at center-of-mass energies of 7, 8 and 13 TeV and corresponding to an integrated luminosity of 5 fb−1^{-1}. The D∗D^{*} polarization fraction FLD∗F_{L}^{D^{*}} is measured in two q2q^{2} regions, below and above 7 GeV2/c4^{2}/c^{4}, where q2q^{2} is defined as the squared invariant mass of the τΜτ\tau\nu_{\tau} system. The FLD∗F_{L}^{D^{*}} values are measured to be 0.51±0.07±0.030.51 \pm 0.07 \pm 0.03 and 0.35±0.08±0.020.35 \pm 0.08 \pm 0.02 for the lower and higher q2q^{2} regions, respectively. The first uncertainties are statistical and the second systematic. The average value over the whole q2q^{2} range is: FLD∗=0.43±0.06±0.03.F_{L}^{D^{*}} = 0.43 \pm 0.06 \pm 0.03. These results are compatible with the Standard Model predictions

    Analysis of Neutral B-Meson Decays into Two Muons

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    Branching fraction and effective lifetime measurements of the rare decay Bs0→Ό+Ό−B^0_s\to\mu^+\mu^- and searches for the decays B0→Ό+Ό−B^0\to\mu^+\mu^- and Bs0→Ό+ÎŒâˆ’ÎłB^0_s\to\mu^+\mu^-\gamma are reported using proton-proton collision data collected with the LHCb detector at centre-of-mass energies of 77 TeV, 88 TeV and 1313 TeV, corresponding to a luminosity of 99 fb−1^{-1}. The branching fraction B(Bs0→Ό+Ό−)=(3.09−0.43−0.11+0.46+0.15)×10−9{\mathcal{B}}(B^0_s\to\mu^+\mu^-)=\left(3.09^{+0.46+0.15}_{-0.43-0.11}\right)\times 10^{-9} and the effective lifetime τ(Bs0→Ό+Ό−)=(2.07±0.29±0.03)\tau(B^0_s\to\mu^+\mu^-)=(2.07\pm 0.29\pm 0.03) are measured, where the first uncertainty is statistical and the second systematic. No significant signal for B0→Ό+Ό−B^0\to\mu^+\mu^- and Bs0→Ό+ÎŒâˆ’ÎłB^0_s\to\mu^+\mu^-\gamma decays is found and upper limits B(B0→Ό+Ό−)<2.6×10−10\mathcal{B}(B^0\to\mu^+\mu^-)<2.6\times 10^{-10} and B(Bs0→Ό+ÎŒâˆ’Îł)<2.0×10−9\mathcal{B}(B^0_s\to\mu^+\mu^-\gamma)<2.0\times 10^{-9} at the 95% CL are determined, where the latter is limited to the range mΌΌ>4.9m_{\mu\mu} > 4.9 GeV/c2/c^2. The results are in agreement with the Standard Model expectations.Comment: All figures and tables, along with machine-readable versions and any supplementary material and additional information, are available at https://cern.ch/lhcbproject/Publications/p/LHCb-PAPER-2021-007.html (LHCb public pages
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