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Featured researches published by P. Sapienza.


Astroparticle Physics | 2007

Deep seawater inherent optical properties in the Southern Ionian Sea

G. Riccobene; A. Capone; S. Aiello; M. Ambriola; F. Ameli; I. Amore; M. Anghinolfi; A. Anzalone; C. Avanzini; G.C. Barbarino; E. Barbarito; M. Battaglieri; R. Bellotti; Nicolo' Beverini; M. Bonori; B. Bouhadef; Massimo Brescia; G. Cacopardo; F. Cafagna; L. Caponetto; E. Castorina; A. Ceres; T. Chiarusi; M. Circella; R. Cocimano; R. Coniglione; M. Cordelli; M. Costa; S. Cuneo; A. D’Amico

Abstract The NEMO (NEutrino Mediterranean Observatory) Collaboration has been carrying out since 1998 an evaluation programme of deep sea sites suitable for the construction of the future Mediterranean km 3 Cerenkov neutrino telescope. We investigated the seawater optical and oceanographic properties of several deep sea marine areas close to the Italian Coast. Inherent optical properties (light absorption and attenuation coefficients) have been measured as a function of depth using an experimental apparatus equipped with standard oceanographic probes and the commercial transmissometer AC9 manufactured by WETLabs. This paper reports on the visible light absorption and attenuation coefficients measured in deep seawater of a marine region located in the Southern Ionian Sea, 60–100xa0km SE of Capo Passero (Sicily). Data show that blue light absorption coefficient is about 0.015xa0m −1 (corresponding to an absorption length of 67xa0m) close to the one of optically pure water and it does not show seasonal variation.


IEEE Journal of Oceanic Engineering | 2013

NEMO-SN1 Abyssal Cabled Observatory in the Western Ionian Sea

P. Favali; Francesco Chierici; G. Marinaro; Gabriele Giovanetti; A. Azzarone; Laura Beranzoli; A. De Santis; Davide Embriaco; S. Monna; Nadia Lo Bue; T. Sgroi; G. Cianchini; L. Badiali; E. Qamili; M. G. De Caro; G. Falcone; C. Montuori; F. Frugoni; G. Riccobene; M. Sedita; G. Barbagallo; G. Cacopardo; Claudio Calì; R. Cocimano; R. Coniglione; M. Costa; Antonio D'Amico; F. Del Tevere; Carla Distefano; F. Ferrera

The NEutrino Mediterranean Observatory-Submarine Network 1 (NEMO-SN1) seafloor observatory is located in the central Mediterranean Sea, Western Ionian Sea, off Eastern Sicily (Southern Italy) at 2100-m water depth, 25 km from the harbor of the city of Catania. It is a prototype of a cabled deep-sea multiparameter observatory and the first one operating with real-time data transmission in Europe since 2005. NEMO-SN1 is also the first-established node of the European Multidisciplinary Seafloor Observatory (EMSO), one of the incoming European large-scale research infrastructures included in the Roadmap of the European Strategy Forum on Research Infrastructures (ESFRI) since 2006. EMSO will specifically address long-term monitoring of environmental processes related to marine ecosystems, climate change, and geohazards. NEMO-SN1 has been deployed and developed over the last decade thanks to Italian funding and to the European Commission (EC) project European Seas Observatory NETwork-Network of Excellence (ESONET-NoE, 2007-2011) that funded the Listening to the Deep Ocean-Demonstration Mission (LIDO-DM) and a technological interoperability test (http://www.esonet-emso.org). NEMO-SN1 is performing geophysical and environmental long-term monitoring by acquiring seismological, geomagnetic, gravimetric, accelerometric, physico-oceanographic, hydroacoustic, and bioacoustic measurements. Scientific objectives include studying seismic signals, tsunami generation and warnings, its hydroacoustic precursors, and ambient noise characterization in terms of marine mammal sounds, environmental and anthropogenic sources. NEMO-SN1 is also an important test site for the construction of the Kilometre-Cube Underwater Neutrino Telescope (KM3NeT), another large-scale research infrastructure included in the ESFRI Roadmap based on a large volume neutrino telescope. The description of the observatory and its most recent implementations is presented. On June 9, 2012, NEMO-SN1 was successfully deployed and is working in real time.


Astroparticle Physics | 2010

Measurement of the atmospheric muon flux with the NEMO Phase-1 detector

Sebastiano Aiello; Fabrizio Ameli; I. Amore; M. Anghinolfi; A. Anzalone; G.C. Barbarino; M. Battaglieri; M. Bazzotti; A. Bersani; Nicolo' Beverini; S. Biagi; M. Bonori; B. Bouhadef; M. Brunoldi; G. Cacopardo; A. Capone; L. Caponetto; G. Carminati; T. Chiarusi; M. Circella; R. Cocimano; R. Coniglione; M. Cordelli; M. Costa; A. D’Amico; G. De Bonis; C. De Marzo; G. De Rosa; G. De Ruvo; R. De Vita

Abstract The NEMO Collaboration installed and operated an underwater detector including prototypes of the critical elements of a possible underwater km3 neutrino telescope: a four-floor tower (called Mini-Tower) and a Junction Box. The detector was developed to test some of the main systems of the km3 detector, including the data transmission, the power distribution, the timing calibration and the acoustic positioning systems as well as to verify the capabilities of a single tridimensional detection structure to reconstruct muon tracks. We present results of the analysis of the data collected with the NEMO Mini-Tower. The position of photomultiplier tubes (PMTs) is determined through the acoustic position system. Signals detected with PMTs are used to reconstruct the tracks of atmospheric muons. The angular distribution of atmospheric muons was measured and results compared to Monte Carlo simulations.


IEEE Transactions on Nuclear Science | 2008

The Data Acquisition and Transport Design for NEMO Phase 1

F. Ameli; S. Aiello; A. Aloisio; I. Amore; M. Anghinolfi; A. Anzalone; C. Avanzini; G.C. Barbarino; E. Barbarito; M. Battaglieri; M. Bazzotti; R. Bellotti; A. Bersani; Nicolo' Beverini; S. Biagi; M. Bonori; B. Bouhadef; G. Cacopardo; A. Capone; L. Caponetto; G. Carminati; B. Cassano; E. Castorina; A. Ceres; T. Chiarusi; M. Circella; R. Cocimano; R. Coniglione; M. Cordelli; M. Costa

The NEMO collaboration proposes to build an underwater neutrino telescope located South-East off the Sicily coast. This paper describes the concepts underlying the communication link design going over the whole data acquisition and transport from the front-end electronics to the module sending data on-shore through a fiber optic link which relies on Dense Wavelength Division Multiplexing. An on-shore board, plugged into a PC, extracts and distributes data both to first-level trigger and control systems. Underwater apparatus monitoring and controls are guaranteed by oceanographic instruments and dedicated sensors, whose data are packed and sent back to shore using the same optical link. The communication is fully bidirectional, allowing transmission of timing and control commands. The architecture described here provides a complete real-time data transport layer between the onshore laboratory and the underwater detector. During winter 2006 a first prototype of the apparatus has been deployed: calibration results from the currently working system are here reported.


Astroparticle Physics | 2007

Sensitivity of an underwater Čerenkov km3 telescope to TeV neutrinos from Galactic microquasars

S. Aiello; M. Ambriola; F. Ameli; I. Amore; M. Anghinolfi; A. Anzalone; G.C. Barbarino; E. Barbarito; M. Battaglieri; R. Bellotti; Nicolo' Beverini; M. Bonori; B. Bouhadef; Massimo Brescia; G. Cacopardo; F. Cafagna; A. Capone; L. Caponetto; E. Castorina; A. Ceres; T. Chiarusi; M. Circella; R. Cocimano; R. Coniglione; M. Cordelli; M. Costa; S. Cuneo; A. D’Amico; G. De Bonis; C. De Marzo

Abstract In this paper are presented the results of Monte Carlo simulations on the capability of the proposed NEMO-km3 telescope to detect TeV muon neutrinos from Galactic microquasars. For each known microquasar we compute the number of detectable events, together with the atmospheric neutrino and muon background events. We also discuss the detector sensitivity to neutrino fluxes expected from known microquasars, optimizing the event selection also to reject the background; the number of events surviving the event selection are given. The best candidates are the steady microquasars SS433 and GX339-4 for which we estimate a sensitivity of about 5xa0×xa010−11xa0erg/cm2xa0s; the predicted fluxes are expected to be well above this sensitivity. For bursting microquasars the most interesting candidates are Cygnus X-3, GRO J1655-40 and XTE J1118+480: their analyses are more complicated because of the stochastic nature of the bursts.


Astroparticle Physics | 2015

Measurement of the atmospheric muon depth intensity relation with the NEMO Phase-2 tower

S. Aiello; F. Ameli; M. Anghinolfi; G.C. Barbarino; E. Barbarito; F. Barbato; Nicolo' Beverini; S. Biagi; Bachir Bouhadef; C. Bozza; G. Cacopardo; M. Calamai; C. Calì; A. Capone; F. Caruso; A. Ceres; T. Chiarusi; M. Circella; R. Cocimano; R. Coniglione; M. Costa; G. Cuttone; C. D’Amato; A. D’Amico; G. De Bonis; V. De Luca; N. Deniskina; G. De Rosa; F. Di Capua; C. Distefano

Abstract The results of the analysis of the data collected with the NEMO Phase-2 tower, deployed at 3500xa0m depth about 80xa0km off-shore Capo Passero (Italy), are presented. Cerenkov photons detected with the photomultipliers tubes were used to reconstruct the tracks of atmospheric muons. Their zenith-angle distribution was measured and the results compared with Monte Carlo simulations. An evaluation of the systematic effects due to uncertainties on environmental and detector parameters is also included. The associated depth intensity relation was evaluated and compared with previous measurements and theoretical predictions. With the present analysis, the muon depth intensity relation has been measured up to 13xa0km of water equivalent.


International Journal of Modern Physics A | 2007

NEMO: A PROJECT FOR A KM3 UNDERWATER DETECTOR FOR ASTROPHYSICAL NEUTRINOS IN THE MEDITERRANEAN SEA

I. Amore; S. Aiello; M. Ambriola; F. Ameli; M. Anghinolfi; A. Anzalone; G.C. Barbarino; E. Barbarito; M. Battaglieri; R. Bellotti; Nicolo' Beverini; M. Bonori; B. Bouhadef; M. Brescia; G. Cacopardo; F. Cafagna; A. Capone; L. Caponetto; E. Castorina; A. Ceres; T. Chiarusi; M. Circella; R. Cocimano; R. Coniglione; M. Cordelli; M. Costa; S. Cuneo; A. D'Amico; G. De Bonis; C. De Marzo

The status of the project is described: the activity on long term characterization of water optical and oceanographic parameters at the Capo Passero site candidate for the Mediterranean km3 neutrino telescope; the feasibility study; the physics performances and underwater technology for the km3; the activity on NEMO Phase 1, a technological demonstrator that has been deployed at 2000 m depth 25 km offshore Catania; the realization of an underwater infrastructure at 3500 m depth at the candidate site (NEMO Phase 2).


Journal of Instrumentation | 2014

Status and first results of the NEMO Phase-2 tower

T. Chiarusi; S. Aiello; F. Ameli; M. Anghinolfi; G.C. Barbarino; E. Barbarito; F. Barbato; Nicolo' Beverini; S. Biagi; B. Bouhadef; C. Bozza; G. Cacopardo; M. Calamai; C. Calì; A. Capone; F. Caruso; A. Ceres; M. Circella; R. Cocimano; R. Coniglione; M. Costa; G. Cuttone; C. D'Amato; V. D'Amato; A. D'Amico; G. Debonis; V. De Luca; N. Deniskina; G. De Rosa; C. Distefano

In March 2013, the NEMO Phase 2 tower has been successfully installed in the Capo Passero site, at a depth of 3500 m and 80 km off from the southern coast of Sicily. The unfurled tower is 450 m high; it is composed of 8 mechanical floors, for a total amount of 32 PMTs and various instruments for environmental measurements. The tower positioning is achieved by an acoustic system. The tower is continuously acquiring and transmitting all the measured signals to shore. Data reduction is completely performed in the Portopalo shore station by a dedicated computing facility connected to the persistent storage system at LNS, in Catania. Results from the last 9 months of acquisition will be presented. In particular, the analyzed optical rates, showing stable and low baseline values, are compatible with the contribution mainly of 40K light emission, with a small percentage of light bursts due to bioluminescence. These features reveal the optimal nature of the Capo Passero abyssal site to host a km3-sized Neutrino Telescope.


Journal of Instrumentation | 2013

The optical modules of the phase-2 of the NEMO project

S. Aiello; E. Leonora; F. Ameli; M. Anghinolfi; A. Anzalone; G.C. Barbarino; E. Barbarito; F. Barbato; A. Bersani; Nicolo' Beverini; S. Biagi; M. Bonori; B. Bouhadef; C. Bozza; G. Cacopardo; A. Capone; F. Caruso; A. Ceres; T. Chiarusi; M. Circella; R. Cocimano; R. Coniglione; M. Cordelli; M. Costa; A. D'Amico; R. de Asmundis; G. De Bonis; G. De Rosa; R. De Vita; C. Distefano

A 13-inch Optical Module (OM) containing a large-area (10-inch) photomultiplier was designed as part of Phase-2 of the NEMO project. An intense R&D activity on the photomultipliers, the voltage supply boards, the optical coupling as well as the study of the influences of the Earths magnetic field has driven the choice of each single component of the OM. Following a well-established production procedure, 32 OMs were assembled and their functionality tested. The design, the testing and the production phases are thoroughly described in this paper.


Nuclear Physics B - Proceedings Supplements | 2000

Feasibility studies for a Mediterranean neutrino observatory — the NEMO.RD Project

C. De Marzo; M. Ambriola; R. Bellotti; F. Cafagna; M. Calicchio; F. Ciacio; M. Circella; T. Montaruli; D. Falchieri; A. Gabrielli; E. Gandolfi; M. Masetti; C. Vitullo; G. Zanarini; R. Habel; I. Usai; S. Aiello; G. Burrafato; L. Caponetto; E. Costanzo; D. LoPresti; L. Pappalardo; C. Petta; N. Randazzo; G. Russo; O. Troia; R. Barnà; V. D'Amico; E. De Domenico; D. De Pasquale

Abstract The NEMO.RD Project is a feasibility study of a km 3 underwater telescope for high energy astrophysical neutrinos to be located in the Mediterranea Sea. At present this study concerns: i) Monte Carlo simulation study of the capabilities of various arrays of phototubes in order to determine the detector geometry that can optimize performance and cost; ii) design of low power consumption electronic cards for data acquisition and transmission to shore; iii) feasibility study of mechanics, deployment, connection and maintenance of such a detector in collaboration with petrol industries having experience of undersea operations; iv) oceanographic exploration of various sites in search for the optimal one. A brief report on the status of points i) and iv) is presented here.

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R. Cocimano

Istituto Nazionale di Fisica Nucleare

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R. Coniglione

University of Nice Sophia Antipolis

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A. Capone

Sapienza University of Rome

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G. Cacopardo

Istituto Nazionale di Fisica Nucleare

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S. Aiello

Istituto Nazionale di Fisica Nucleare

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F. Ameli

Sapienza University of Rome

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M. Anghinolfi

University of Nice Sophia Antipolis

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