The Long Journey of ICARUS: From the LAr-TPC Concept to the First Full-Scale Detector
Abstract
:1. Introduction
2. LAr-TPC: First Concepts
3. The First Working ICARUS Prototypes
- Liquid argon purification. This was ensured by using clean and non de-gassing materials for all inner instrumentation like feed-throughs flanges, cables, holders, etc. Feed-throughs had to be tight to avoid leaks between the clean argon and the outside.
- Wire chambers. The mechanics of the inner TPC had to grant a high precision, providing a non-destructive readout with different wire planes and a wire pitch of few millimeters, to be made unaffected by the thermal stress when going from room to cryogenic temperature.
- Electronics. The development of a low noise amplifier was necessary to obtain a good signal-to-noise ratio, given the absence of amplification inside the liquid argon.
- Software. A brand new software infrastructure, data management and reduction and track reconstruction algorithms were developed to cope with the large number of 3D digitized images.
4. ICARUS T600 Pavia Surface Run
5. ICARUS T600 Operations at LNGS
- Drift electron lifetime. This was measured continuously and with high precision, using the residual cosmic rays crossing the detector at the rate of ∼3100 muons per day [34]. The lifetime was measured to be around 7 ms, corresponding to 40 ppt (O equivalent) for most of the time, resulting in a 12% maximum charge attenuation. Moreover, at the end of the ICARUS physics run in 2013, a new re-circulation pump allowed to obtain the record electron lifetime of 15 ms, corresponding to ∼20 ppt.
- Multiple scattering. An innovative algorithm to measure the effect of the Multiple Coulomb Scattering (MCS) for charged-current muons exiting the detector was developed. It was validated with ∼400 muons produced in CNGS neutrino interactions in the rock upstream the Hall B and stopping inside the LAr active volume. The ability to measure the stopping muon momentum also through calorimetry (-dE/dx) allowed to have a benchmark for the MCS measurements, providing a momentum resolution p/p ∼ 15% in the few-GeV energy range [35].
- Atmospheric neutrino detection. Atmospheric neutrinos were identified in ICARUS-T600 by inspecting the cosmic ray data collected with an overall exposure of 0.73 kton year, where ∼200 atmospheric neutrino events were expected. These kind of events, where selected using new methods for the automatic identification of the neutrinos, needed to filter out the overcoming cosmic tracks. Apart from the interest of the search itself, these methods demonstrated that automatic tools might be used to identify neutrinos having energies similar to the one expected from the Fermilab neutrino beams, in view of the following Short-Baseline Neutrino (SBN) program. The time needed for a visual event identification was effectively reduced, allowing to identify both CC and CC candidates [36]. An example of downward-going quasi elastic CC event is shown in Figure 9.
- Search for LSND-like events in CNGS. One of the major features of the ICARUS-T600 as a LAr-TPC, which makes this technology highly competitive with the Ring Water Cherenkov detectors for neutrino searches, is the capability in the electron/photon separation through the measurement of the energy loss in the very first centimeters of the e.m. shower, which is developing in a liquid argon medium with a radiation length of ∼18 cm. In general, this allows a LAr-TPC to effectively reject the neutral current background to events. This feature was successfully applied to a sample of electron neutrinos collected in coincidence with the CNGS muon neutrino beam, where a small intrinsic contamination of was expected. The measurement was motivated by the possibility to search for anomalous → oscillations, hinting to the existence of sterile neutrino states, as reported by a number of past and present experiments at the accelerators like LSND [37] and MiniBooNE [38], and recently investigated by the MicroBooNE LAr-TPC [39]. Seven events were identified in ICARUS-T600 as CC candidates, in agreement with the 8.5 ± 1.1 events expected from the intrinsic CNGS beam component and a standard framework of three flavor mixing. ICARUS-T600 then provided a limit on the oscillation probability P(→) ≤ 3.86 × 10 at 90% CL [40,41], whose effect on the oscillation parameter space is shown in Figure 10. One of the seven CC candidates is shown in Figure 11 (top): the evolution from the single m.i.p. CC electron to the e.m. shower is evident by looking at the energy loss in the individual wires, see Figure 11 (bottom).
6. ICARUS at Fermilab within the SBN Project
- A layer of 2.85 m concrete overburden placed on top of the detector to remove all primary photons and to effectively reduce the neutron background by a factor ∼200. The muon component is reduced by the overburden by ∼25%;
- A ∼4 segmented Cosmic Ray Tagging (CRT) detector surrounding ICARUS-T600, composed by two layers of plastic scintillators arranged in XY configuration, with a total surface of ∼1100 m. The CRT is expected to tag about 95% of cosmic muons entering in the detector;
- A brand new LAr VUV scintillation light detection system, made of 90 Hamamatsu R5912-MOD (8”) PMTs in each TPC [47,48], see Figure 13 (left). This system is characterized by a ∼1 ns time resolution and a detection capability of very low energy events, below 100 MeV, being effective in tagging neutrino events in coincidence with the beam spill, while rejecting the cosmic ray events occurring out of time. PMTs are equalized in gain and calibrated in time by using a dedicated laser system illuminating the PMT windows through an optical fiber [49];
- New TPC electronics, designed and optimized for the ICARUS-T600 shallow depths operations, with an improvement of the performance of the system in terms of signal-to-noise ratio. The integration of advanced electronic components also allowed to reduce costs and volumes with respect to the LNGS configuration [50,51].
7. Conclusions
Funding
Conflicts of Interest
References
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Menegolli, A. The Long Journey of ICARUS: From the LAr-TPC Concept to the First Full-Scale Detector. Universe 2023, 9, 74. https://doi.org/10.3390/universe9020074
Menegolli A. The Long Journey of ICARUS: From the LAr-TPC Concept to the First Full-Scale Detector. Universe. 2023; 9(2):74. https://doi.org/10.3390/universe9020074
Chicago/Turabian StyleMenegolli, Alessandro. 2023. "The Long Journey of ICARUS: From the LAr-TPC Concept to the First Full-Scale Detector" Universe 9, no. 2: 74. https://doi.org/10.3390/universe9020074
APA StyleMenegolli, A. (2023). The Long Journey of ICARUS: From the LAr-TPC Concept to the First Full-Scale Detector. Universe, 9(2), 74. https://doi.org/10.3390/universe9020074