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Featured researches published by L. Morescalchi.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016

Design and status of the Mu2e electromagnetic calorimeter

N. Atanov; V. Baranov; J. Budagov; R. Carosi; F. Cervelli; F. Colao; M. Cordelli; G. Corradi; E. Danè; Yu. I. Davydov; S. Di Falco; S. Donati; R. Donghia; B. Echenard; K. T. Flood; S. Giovannella; V. Glagolev; F. Grancagnolo; F. Happacher; D. G. Hitlin; M. Martini; S. Miscetti; T. Miyashita; L. Morescalchi; P. Murat; D. Pasciuto; G. Pezzullo; F. C. Porter; A. Saputi; I. Sarra

The Mu2e experiment at Fermilab aims at measuring the neutrinoless conversion of a negative muon into an electron and reach a single event sensitivity of 2.5×10^(-17) after three years of data taking. The monoenergetic electron produced in the final state, is detected by a high precision tracker and a crystal calorimeter, all embedded in a large superconducting solenoid (SD) surrounded by a cosmic ray veto system. The calorimeter is complementary to the tracker, allowing an independent trigger and powerful particle identification, while seeding the track reconstruction and contributing to remove background tracks mimicking the signal. In order to match these requirements, the calorimeter should have an energy resolution of O(5)% and a time resolution better than 500 ps at 100 MeV. The baseline solution is a calorimeter composed of two disks of BaF_2 crystals read by UV extended, solar blind, Avalanche Photodiode (APDs), which are under development from a JPL, Caltech, RMD consortium. In this paper, the calorimeter design, the R&D studies carried out so far and the status of engineering are described. A backup alternative setup consisting of a pure CsI crystal matrix read by UV extended Hamamatsu MPPC׳s is also presented.


Journal of Instrumentation | 2017

The calorimeter of the Mu2e experiment at Fermilab

N. Atanov; V. Baranov; J. Budagov; F. Cervelli; F. Colao; M. Cordelli; G. Corradi; E. Danè; Yu. I. Davydov; S. Di Falco; E. Diociaiuti; S. Donati; R. Donghia; B. Echenard; K. T. Flood; S. Giovannella; V. Glagolev; F. Grancagnolo; F. Happacher; D. G. Hitlin; M. Martini; S. Miscetti; T. Miyashita; L. Morescalchi; P. Murat; G. Pezzullo; F. C. Porter; F. Raffaelli; T. Radicioni; M. Ricci

The Mu2e experiment at Fermilab looks for Charged Lepton Flavor Violation (CLFV) improving by 4 orders of magnitude the current experimental sensitivity for the muon to electron conversion in a muonic atom. A positive signal could not be explained in the framework of the current Standard Model of particle interactions and therefore would be a clear indication of new physics. In 3 years of data taking, Mu2e is expected to observe less than one background event mimicking the electron coming from muon conversion. Achieving such a level of background suppression requires a deep knowledge of the experimental apparatus: a straw tube tracker, measuring the electron momentum and time, a cosmic ray veto system rejecting most of cosmic ray background and a pure CsI crystal calorimeter, that will measure time of flight, energy and impact position of the converted electron. The calorimeter has to operate in a harsh radiation environment, in a 10^(−4) Torr vacuum and inside a 1 T magnetic field. The results of the first qualification tests of the calorimeter components are reported together with the energy and time performances expected from the simulation and measured in beam tests of a small scale prototype.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016

Measurement of time resolution of the Mu2e LYSO calorimeter prototype

N. Atanov; V. Baranov; F. Colao; M. Cordelli; G. Corradi; E. Danè; Yu. I. Davydov; K. T. Flood; S. Giovannella; V. Glagolev; F. Happacher; D. G. Hitlin; M. Martini; S. Miscetti; T. Miyashita; L. Morescalchi; G. Pezzullo; A. Saputi; I. Sarra; S. R. Soleti; G. Tassielli; V. Tereshchenko

In this paper we present the time resolution measurements of the Lutetium–Yttrium Oxyorthosilicate (LYSO) calorimeter prototype for the Mu2e experiment. The measurements have been performed using the e− beam of the Beam Test Facility (BTF) in Frascati, Italy in the energy range from 100 to 400 MeV. The calorimeter prototype consisted of twenty five 30 x 30 x 130 mm^3, LYSO crystals read out by 10 × 10 mm^2 Hamamatsu Avalanche Photodiodes (APDs). The energy dependence of the measured time resolution can be parametrized as σ_t(E)=a/√E/GeV⊕b, with the stochastic and constant terms a=(51 ± 1)ps and b=(10 ± 4)ps, respectively. This corresponds to the time resolution of (162 ±4 )ps at 100 MeV.


arXiv: Instrumentation and Detectors | 2017

Design, status and test of the Mu2e crystal calorimeter

N. Atanov; V. Baranov; J. Budagov; R. Carosi; F. Cervelli; F. Colao; M. Cordelli; G. Corradi; E. Danè; Yu. I. Davydov; S. Di Falco; S. Donati; R. Donghia; B. Echenard; K. T. Flood; S. Giovannella; V. Glagolev; F. Grancagnolo; F. Happacher; D. G. Hitlin; M. Martini; S. Miscetti; T. Miyashita; L. Morescalchi; P. Murat; G.M. Piacentino; G. Pezzullo; F. Raffaelli; A. Saputi; I. Sarra

The Mu2e experiment at Fermilab searches for the charged-lepton flavor violating neutrino-less conversion of a negative muon into an electron in the field of a aluminum nucleus. The dynamic of such a process is well modeled by a two-body decay, resulting in a monoenergetic electron with an energy slightly below the muon rest mass (104.967 MeV). The calorimeter of this experiment plays an important role to provide excellent particle identification capabilities and an online trigger filter while aiding the track reconstruction capabilities. The baseline calorimeter configuration consists of two disks each made with about 700 undoped CsI crystals read out by two large area UV-extended Silicon Photomultipliers. These crystals match the requirements for stability of response, high resolution and radiation hardness. In this paper we present the final calorimeter design.


Journal of Instrumentation | 2017

Measurement of the energy and time resolution of a undoped CsI + MPPC array for the Mu2e experiment

O. Atanova; M. Cordelli; G. Corradi; F. Colao; Yu. I. Davydov; R. Donghia; S. Di Falco; S. Giovannella; F. Happacher; M. Martini; S. Miscetti; L. Morescalchi; P. Murat; G. Pezzullo; A. Saputi; I. Sarra; S. R. Soleti; D. Tagnani; V. Tereshchenko; Z. Usubov

This paper describes the measurements of energy and time response and resolution of a 3×3 array made of undoped CsI crystals 3×3×20 cm3 coupled to large area Hamamatsu Multi Pixel Photon Counters 12×12 mm2. The measurements have been performed using the electron beam of the Beam Test Facility in Frascati (Rome, Italy) in the energy range 80–120 MeV. The measured energy resolution, estimated with the FWHM, at 100 MeV is 16.4%. This resolution is dominated by the energy leakage due to the small dimensions of the prototype. The time is reconstructed by fitting the leading edge of the digitized signals and applying a digital constant fraction discrimination technique. A time resolution of about 110 ps at 100 MeV is achieved.


Journal of Instrumentation | 2017

Components Qualification for a Possible use in the Mu2e Calorimeter Waveform Digitizer

S. Di Falco; S. Donati; L. Morescalchi; E. Pedreschi; G. Pezzullo; F. Spinella

The Mu2e experiment at Fermilab searches for the charged flavor violating conversion of a muon into an electron in the Coulomb field of a nucleus. The detector consists of a straw tube tracker and a CSI crystal electromagnetic calorimeter, both housed in a superconducting solenoid. Both the front-end and the digital electronics, located inside the cryostat, will be operated in vacuum under a 1 T magnetic field, having to sustain the high flux of neutrons and ionizing particles coming from the muons stopping target. These harsh experimental conditions make the design of the calorimeter waveform digitizer quite challenging. All the selected commercial devices must be tested individually and qualified for radiation hardness and operation in high magnetic field. At the moment the expected particles flux and spectra at the digitizers location are not completely simulated and we are using initial rough estimates to select the components for the first prototype. We are gaining experience in the qualification procedures using the selected components but the choice will be frozen only when dose and neutron flux simulations will be completed. The experimental results of the first qualification campaign are presented.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016

Energy and time resolution of a LYSO matrix prototype for the Mu2e experiment

N. Atanov; V. Baranov; F. Colao; M. Cordelli; G. Corradi; E. Danè; Yu. I. Davydov; K. T. Flood; S. Giovannella; V. Glagolev; F. Happacher; D. G. Hitlin; M. Martini; S. Miscetti; T. Miyashita; L. Morescalchi; P. Ott; G. Pezzullo; A. Saputi; I. Sarra; S. R. Soleti; G. Tassielli; V. Tereshchenko; A. W. Thomas

We have measured the performances of a LYSO crystal matrix prototype tested with electron and photon beams in the energy range 60–450 MeV. This study has been carried out to determine the achievable energy and time resolutions for the calorimeter of the Mu2e experiment.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2018

The Mu2e calorimeter: Quality assurance of production crystals and SiPMs

N. Atanov; V. Baranov; J. Budagov; D. Caiulo; F. Cervelli; F. Colao; M. Cordelli; G. Corradi; Yu.I. Davydov; S. Di Falco; E. Diociaiuti; S. Donati; R. Donghia; B. Echenard; S. Giovannella; V. Glagolev; F. Grancagnolo; F. Happacher; D. G. Hitlin; M. Martini; S. Miscetti; T. Miyashita; L. Morescalchi; P. Murat; E. Pedreschi; G. Pezzullo; F. C. Porter; F. Raffaelli; M. Ricci; A. Saputi

The Mu2e calorimeter is composed of two disks each containing 1348 pure CsI crystals, each crystal read out by two arrays of 6x6 mm^2 monolithic SiPMs. The experimental requirements have been translated in a series of technical specifications for both crystals and SiPMs. Quality assurance tests, on first crystal and then SiPM production batches, confirm the performances of preproduction samples previously assembled in a calorimeter prototype and tested with an electron beam. The production yield is sufficient to allow the construction of a calorimeter of the required quality in the expected times.


IEEE Transactions on Nuclear Science | 2018

Quality Assurance on Undoped CsI Crystals for the Mu2e Experiment

N. Atanov; V. Baranov; J. Budagov; Yu. I. Davydov; V. Glagolev; V. Tereshchenko; Z. Usubov; F. Cervelli; S. Di Falco; S. Donati; L. Morescalchi; E. Pedreschi; G. Pezzullo; F. Raffaelli; F. Spinella; F. Colao; M. Cordelli; G. Corradi; E. Diociaiuti; R. Donghia; S. Giovannella; F. Happacher; M. Martini; S. Miscetti; M. Ricci; A. Saputi; I. Sarra; B. Echenard; D. G. Hitlin; Chen Hu

The Mu2e experiment is constructing a calorimeter consisting of 1348 undoped cesium iodide (CsI) crystals in two disks. Each crystal has a dimension of


arXiv: Instrumentation and Detectors | 2017

Design, Status and Perspective of the Mu2e Crystal Calorimeter

G. Pezzullo; N. Atanov; V. Baranov; J. Budagov; F. Cervelli; F. Colao; E. Diociaiuti; M. Cordelli; G. Corradi; E. Danè; Yu. I. Davydov; S. Donati; R. Donghia; S. Di Falco; B. Echenard; L. Morescalchi; S. Giovannella; V. Glagolev; F. Grancagnolo; F. Happacher; D. G. Hitlin; M. Martini; S. Miscetti; T. Miyashita; P Murat; E. Pedreschi; F. C. Porter; F. Raffaelli; M. Ricci; A. Saputi

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Dive into the L. Morescalchi's collaboration.

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M. Cordelli

Istituto Nazionale di Fisica Nucleare

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S. Giovannella

Istituto Nazionale di Fisica Nucleare

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F. Happacher

Istituto Nazionale di Fisica Nucleare

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F. Colao

Istituto Nazionale di Fisica Nucleare

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S. Miscetti

Istituto Nazionale di Fisica Nucleare

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M. Martini

Université libre de Bruxelles

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N. Atanov

Joint Institute for Nuclear Research

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V. Baranov

Joint Institute for Nuclear Research

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V. Glagolev

Joint Institute for Nuclear Research

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