193 research outputs found

    Digital Pixel Test Structures implemented in a 65 nm CMOS process

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    The ALICE ITS3 (Inner Tracking System 3) upgrade project and the CERN EP R&D on monolithic pixel sensors are investigating the feasibility of the Tower Partners Semiconductor Co. 65 nm process for use in the next generation of vertex detectors. The ITS3 aims to employ wafer-scale Monolithic Active Pixel Sensors thinned down to 20 to 40 um and bent to form truly cylindrical half barrels. Among the first critical steps towards the realisation of this detector is to validate the sensor technology through extensive characterisation both in the laboratory and with in-beam measurements. The Digital Pixel Test Structure (DPTS) is one of the prototypes produced in the first sensor submission in this technology and has undergone a systematic measurement campaign whose details are presented in this article. The results confirm the goals of detection efficiency and non-ionising and ionising radiation hardness up to the expected levels for ALICE ITS3 and also demonstrate operation at +20 C and a detection efficiency of 99% for a DPTS irradiated with a dose of 101510^{15} 1 MeV neq/_{\mathrm{eq}}/cm2^2. Furthermore, spatial, timing and energy resolutions were measured at various settings and irradiation levels.Comment: Updated threshold calibration method. Implemented colorblind friendly color palette in all figures. Updated reference

    Design and optimisation of a dielectric focusing structure for relativistic electron beams

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    Abweichender Titel nach Übersetzung der Verfasserin/des VerfassersParticle accelerators are used in a vast amount of fields in research and industry, everywhere where high energy particles are needed to probe materials, produce radiation for experiments or treatment of patients or simply to test the current understanding of Physics. They typically consist of a huge amount of different components, but most prominently of RF-units to accelerate and dipole and quadrupole magnets to deflect and focus the particles. Though, as conventional particle accelerators, which achieve high energies, are huge and costly to built and operate, a cheap and compact particle accelerator option would be great to revolutionise several fields of research as it would grant access to high energy particles for nearly any laboratory. [3] One idea to solve this problem is the DLA (dielectric laser acceleration). This new type of accelerator design uses the electromagnetic fields of modern lasers in clever combination of dielectric materials to accelerate and focus the particles [4, 5, 6]. This master’s thesis focused on optimisation of focusing structures for relativistic electrons in such dielectric laser accelerators within the ACHIP experiment. As accelerators not only need accelerating structures, but also focusing structures to keep the beam well collimated, the idea of this thesis was to model a laser based focusing structure, do electromagnetic simulations with it and use the discretised electromagnetic fields [7] to simulate the particles propagating through the simulation volume to track their path and deflection. The design of the focusing structure was proposed by Joshua McNeur, a Postoctoral Researcher at the Chair of Laser Physics at the University of Erlangen-Nuremberg who conducted research on a similar design [8]. The construction of the design was done in Autodesk Inventor [9], a computer aided design application for 3D design. The electromagnetic simulations were performed with Lumerical FDTD Solutions [10], a finite difference time domain solver for electromagnetic problems using the Maxwell’s equations, because sample files and some experience were already available. The particle tracking code was written from scratch during this thesis in Matlab [11], a numerical computing environment, using a discretised Lorentz force equation and the Boris algorithm for time propagation [7]. The main work of this thesis was about setting up the electromagnetic simulations and the particle tracker for ultra-relativistic electrons, as lower velocities would lead to further difficulties in fabrication, to optimise said focusing structure to figure out the most appropriate design, featuring the highest deflection, the best combined quadrupole like deflection behaviour in both transversal directions as well as not too fragile setup for fabrication. Apart from the computational work, some time was also invested in fabrication possibilities and their limits, possible experiment setups to verify the computational results and theoretical description of the deflection behaviour. The results of this work include several points. The deflection at highest offsets from the centre increased by up to a factor 60. The so called parallel effect, which shifts the deflection curves independently of the offset depending on the laser phase the particle enters the structure at was strongly decreased. The behaviour of the structure at two different wavelengths to investigate scaling possibilities of parameters was investigated.Complications when using different refractive indices were described. A mathematical model to figure out the crucial aspects of the electric and magnetic fields was created. Also how deflection in one direction contributes to deflection in the other direction was investigated. Finally first fabrication results and one possible experiment to verify the simulated results were elaborated.7

    Digital Pixel Test Structures implemented in a 65 nm CMOS process

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    The ALICE ITS3 (Inner Tracking System 3) upgrade project and the CERN EP R&D on monolithic pixel sensors are investigating the feasibility of the Tower Partners Semiconductor Co. 65 nm process for use in the next generation of vertex detectors. The ITS3 aims to employ wafer-scale Monolithic Active Pixel Sensors thinned down to 20 to 40 um and bent to form truly cylindrical half barrels. Among the first critical steps towards the realisation of this detector is to validate the sensor technology through extensive characterisation both in the laboratory and with in-beam measurements. The Digital Pixel Test Structure (DPTS) is one of the prototypes produced in the first sensor submission in this technology and has undergone a systematic measurement campaign whose details are presented in this article. The results confirm the goals of detection efficiency and non-ionising and ionising radiation hardness up to the expected levels for ALICE ITS3 and also demonstrate operation at +20 C and a detection efficiency of 99% for a DPTS irradiated with a dose of 101510^{15} 1 MeV neq/_{\mathrm{eq}}/cm2^2. Furthermore, spatial, timing and energy resolutions were measured at various settings and irradiation levels

    Multiplicity dependence of light (anti-)nuclei production in p–Pb collisions at sNN=5.02 TeV

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    The measurement of the deuteron and anti-deuteron production in the rapidity range −1 < y < 0 as a function of transverse momentum and event multiplicity in p–Pb collisions at √sNN = 5.02 TeV is presented. (Anti-)deuterons are identified via their specific energy loss dE/dx and via their time-of- flight. Their production in p–Pb collisions is compared to pp and Pb–Pb collisions and is discussed within the context of thermal and coalescence models. The ratio of integrated yields of deuterons to protons (d/p) shows a significant increase as a function of the charged-particle multiplicity of the event starting from values similar to those observed in pp collisions at low multiplicities and approaching those observed in Pb–Pb collisions at high multiplicities. The mean transverse particle momenta are extracted from the deuteron spectra and the values are similar to those obtained for p and particles. Thus, deuteron spectra do not follow mass ordering. This behaviour is in contrast to the trend observed for non-composite particles in p–Pb collisions. In addition, the production of the rare 3He and 3He nuclei has been studied. The spectrum corresponding to all non-single diffractive p-Pb collisions is obtained in the rapidity window −1 < y < 0 and the pT-integrated yield dN/dy is extracted. It is found that the yields of protons, deuterons, and 3He, normalised by the spin degeneracy factor, follow an exponential decrease with mass number

    Measurement of the Cross Sections of Ξc0\Xi^0_{c} and Ξc+\Xi^+_{c} Baryons and of the Branching-Fraction Ratio BR(Ξc0Ξe+νe\Xi^0_{c} \rightarrow \Xi^-{e}^+\nu_{ e})/BR(Ξc0Ξπ+\Xi^0_{c} \rightarrow \Xi^-\pi^+) in pp collisions at 13 TeV

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    The pTp_T-differential cross sections of prompt charm-strange baryons Ξc0_c^0 and Ξc+_c^+ were measured at midrapidity (|y|<0.5) in proton-proton (pp) collisions at a center-of-mass energy s\sqrt{s} = 13 TeV with the ALICE detector at the LHC. The Ξc0_c^0 baryon was reconstructed via both the semileptonic decay (Ξ^-e+^+νe_e) and the hadronic decay (Ξ^-π+^+) channels. The Ξc+_c^+ baryon was reconstructed via the hadronic decay (Ξ^-π+^+π+^+) channel. The branching-fraction ratio BR(Ξc0_c^0→Ξ^-e+^+νe_e)/BR(Ξc0_c^0→Ξ^-π+^+) = 1.38±0.14(stat)±0.22(syst) was measured with a total uncertainty reduced by a factor of about 3 with respect to the current world average reported by the Particle Data Group. The transverse momentum (pTp_T) dependence of the Ξc0_c^0- and Ξc+_c^+-baryon production relative to the D0^0 meson and to the Σc0,+,++_c^{0,+,++}- and Λc+_c^+-baryon production are reported. The baryon-to-meson ratio increases toward low pTp_T up to a value of approximately 0.3. The measurements are compared with various models that take different hadronization mechanisms into consideration. The results provide stringent constraints to these theoretical calculations and additional evidence that different processes are involved in charm hadronization in electron-positron (e+^+e^-) and hadronic collisions

    Pseudorapidity distributions of charged particles as a function of mid- and forward rapidity multiplicities in pp collisions at s\sqrt{s} = 5.02, 7 and 13 TeV

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    The multiplicity dependence of the pseudorapidity density of charged particles in proton–proton (pp) collisions at centre-of-mass energies s = 5.02\sqrt{s}~=~5.02, 7 and 13 TeV measured by ALICE is reported. The analysis relies on track segments measured in the midrapidity range (η<1.5|\eta | < 1.5). Results are presented for inelastic events having at least one charged particle produced in the pseudorapidity interval η<1|\eta |<1. The multiplicity dependence of the pseudorapidity density of charged particles is measured with mid- and forward rapidity multiplicity estimators, the latter being less affected by autocorrelations. A detailed comparison with predictions from the PYTHIA 8 and EPOS LHC event generators is also presented. The results can be used to constrain models for particle production as a function of multiplicity in pp collisions

    Measurement of the low-energy antideuteron inelastic cross section

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    In this Letter, we report the first measurement of the inelastic cross section for antideuteron-nucleus interactions at low particle momenta, covering a range of 0.3 ≤ p < 4 GeV/c. The measurement is carried out using p-Pb collisions at a center-of-mass energy per nucleon–nucleon pair of sNN\sqrt{s_{\rm NN}} = 5.02 TeV, recorded with the ALICE detector at the CERN LHC and utilizing the detector material as an absorber for antideuterons and antiprotons. The extracted raw primary antiparticle-to-particle ratios are compared to the results from detailed ALICE simulations based on the geant4 toolkit for the propagation of (anti)particles through the detector material. The analysis of the raw primary (anti)proton spectra serves as a benchmark for this study, since their hadronic interaction cross sections are well constrained experimentally. The first measurement of the inelastic cross section for antideuteron-nucleus interactions averaged over the ALICE detector material with atomic mass numbers ⟨A⟩ = 17.4 and 31.8 is obtained. The measured inelastic cross section points to a possible excess with respect to the Glauber model parametrization used in geant4 in the lowest momentum interval of 0.3 ≤ p < 0.47 GeV/c up to a factor 2.1. This result is relevant for the understanding of antimatter propagation and the contributions to antinuclei production from cosmic ray interactions within the interstellar medium. In addition, the momentum range covered by this measurement is of particular importance to evaluate signal predictions for indirect dark-matter searches

    Jet fragmentation transverse momentum distributions in pp and p-Pb collisions at s \sqrt{s} , sNN \sqrt{s_{\mathrm{NN}}} = 5.02 TeV

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    Jet fragmentation transverse momentum (jT_{T}) distributions are measured in proton-proton (pp) and proton-lead (p-Pb) collisions at sNN \sqrt{s_{\mathrm{NN}}} = 5.02 TeV with the ALICE experiment at the LHC. Jets are reconstructed with the ALICE tracking detectors and electromagnetic calorimeter using the anti-kT_{T} algorithm with resolution parameter R = 0.4 in the pseudorapidity range |η| < 0.25. The jT_{T} values are calculated for charged particles inside a fixed cone with a radius R = 0.4 around the reconstructed jet axis. The measured jT_{T} distributions are compared with a variety of parton-shower models. Herwig and Pythia 8 based models describe the data well for the higher jT_{T} region, while they underestimate the lower jT_{T} region. The jT_{T} distributions are further characterised by fitting them with a function composed of an inverse gamma function for higher jT_{T} values (called the “wide component”), related to the perturbative component of the fragmentation process, and with a Gaussian for lower jT_{T} values (called the “narrow component”), predominantly connected to the hadronisation process. The width of the Gaussian has only a weak dependence on jet transverse momentum, while that of the inverse gamma function increases with increasing jet transverse momentum. For the narrow component, the measured trends are successfully described by all models except for Herwig. For the wide component, Herwig and PYTHIA 8 based models slightly underestimate the data for the higher jet transverse momentum region. These measurements set constraints on models of jet fragmentation and hadronisation

    Multiplicity dependence of (multi-)strange hadron production in proton-proton collisions at s\sqrt{s} = 13 TeV

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    The production rates and the transverse momentum distribution of strange hadrons at mid-rapidity (y<0.5\left| y\right| < 0.5) are measured in proton-proton collisions at s\sqrt{s} = 13 TeV as a function of the charged particle multiplicity, using the ALICE detector at the LHC. The production rates of KS0\mathrm{K}^{0}_{S}, Λ\Lambda , Ξ\Xi , and Ω\Omega increase with the multiplicity faster than what is reported for inclusive charged particles. The increase is found to be more pronounced for hadrons with a larger strangeness content. Possible auto-correlations between the charged particles and the strange hadrons are evaluated by measuring the event-activity with charged particle multiplicity estimators covering different pseudorapidity regions. When comparing to lower energy results, the yields of strange hadrons are found to depend only on the mid-rapidity charged particle multiplicity. Several features of the data are reproduced qualitatively by general purpose QCD Monte Carlo models that take into account the effect of densely-packed QCD strings in high multiplicity collisions. However, none of the tested models reproduce the data quantitatively. This work corroborates and extends the ALICE findings on strangeness production in proton-proton collisions at 7 TeV

    Production of charged pions, kaons, and (anti-)protons in Pb-Pb and inelastic pppp collisions at sNN\sqrt {s_{NN}} = 5.02 TeV

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    International audienceMid-rapidity production of π±\pi^{\pm}, K±\rm{K}^{\pm} and (pˉ\bar{\rm{p}})p measured by the ALICE experiment at the LHC, in Pb-Pb and inelastic pp collisions at sNN\sqrt{s_{\rm{NN}}} = 5.02 TeV, is presented. The invariant yields are measured over a wide transverse momentum (pTp_{\rm{T}}) range from hundreds of MeV/cc up to 20 GeV/cc. The results in Pb-Pb collisions are presented as a function of the collision centrality, in the range 0-90%. The comparison of the pTp_{\rm{T}}-integrated particle ratios, i.e. proton-to-pion (p/π\pi) and kaon-to-pion (K/π\pi) ratios, with similar measurements in Pb-Pb collisions at sNN\sqrt{s_{\rm{NN}}} = 2.76 TeV show no significant energy dependence. Blast-wave fits of the pTp_{\rm{T}} spectra indicate that in the most central collisions radial flow is slightly larger at 5.02 TeV with respect to 2.76 TeV. Particle ratios (p/π\pi, K/π\pi) as a function of pTp_{\rm{T}} show pronounced maxima at pTp_{\rm{T}} \approx 3 GeV/cc in central Pb-Pb collisions. At high pTp_{\rm{T}}, particle ratios at 5.02 TeV are similar to those measured in pp collisions at the same energy and in Pb-Pb collisions at sNN\sqrt{s_{\rm{NN}}} = 2.76 TeV. Using the pp reference spectra measured at the same collision energy of 5.02 TeV, the nuclear modification factors for the different particle species are derived. Within uncertainties, the nuclear modification factor is particle species independent for high pTp_{\rm{T}} and compatible with measurements at sNN\sqrt{s_{\rm{NN}}} = 2.76 TeV. The results are compared to state-of-the-art model calculations, which are found to describe the observed trends satisfactorily
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