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% This file was created with JabRef 2.10.
% Encoding: UTF-8
@Article{t2kOsc,
Title = {{Measurements of neutrino oscillation in appearance and disappearance channels by the T2K experiment with $6.6\ifmmode\times\else\texttimes\fi{}1{0}^{20}$ protons on target}},
Author = {Abe, K. and Adam, J. and Aihara, H. and Akiri, T. and Andreopoulos, C. and Aoki, S. and Ariga, A. and Assylbekov, S. and Autiero, D. and Barbi, M. and Barker, G. J. and Barr, G. and Bartet-Friburg, P. and Bass, M. and Batkiewicz, M. and Bay, F. and Berardi, V. and Berger, B. E. and Berkman, S. and Bhadra, S. and Blaszczyk, F. d. M. and Blondel, A. and Bolognesi, S. and Bordoni, S. and Boyd, S. B. and Brailsford, D. and Bravar, A. and Bronner, C. and Buchanan, N. and Calland, R. G. and Caravaca Rodr\'{\i}guez, J. and Cartwright, S. L. and Castillo, R. and Catanesi, M. G. and Cervera, A. and Cherdack, D. and Chikuma, N. and Christodoulou, G. and Clifton, A. and Coleman, J. and Coleman, S. J. and Collazuol, G. and Connolly, K. and Cremonesi, L. and Dabrowska, A. and Danko, I. and Das, R. and Davis, S. and de Perio, P. and De Rosa, G. and Dealtry, T. and Dennis, S. R. and Densham, C. and Dewhurst, D. and Di Lodovico, F. and Di Luise, S. and Dolan, S. and Drapier, O. and Duboyski, T. and Duffy, K. and Dumarchez, J. and Dytman, S. and Dziewiecki, M. and Emery-Schrenk, S. and Ereditato, A. and Escudero, L. and Ferchichi, C. and Feusels, T. and Finch, A. J. and Fiorentini, G. A. and Friend, M. and Fujii, Y. and Fukuda, Y. and Furmanski, A. P. and Galymov, V. and Garcia, A. and Giffin, S. and Giganti, C. and Gilje, K. and Goeldi, D. and Golan, T. and Gonin, M. and Grant, N. and Gudin, D. and Hadley, D. R. and Haegel, L. and Haesler, A. and Haigh, M. D. and Hamilton, P. and Hansen, D. and Hara, T. and Hartz, M. and Hasegawa, T. and Hastings, N. C. and Hayashino, T. and Hayato, Y. and Hearty, C. and Helmer, R. L. and Hierholzer, M. and Hignight, J. and Hillairet, A. and Himmel, A. and Hiraki, T. and Hirota, S. and Holeczek, J. and Horikawa, S. and Hosomi, F. and Huang, K. and Ichikawa, A. K. and Ieki, K. and Ieva, M. and Ikeda, M. and Imber, J. and Insler, J. and Irvine, T. J. and Ishida, T. and Ishii, T. and Iwai, E. and Iwamoto, K. and Iyogi, K. and Izmaylov, A. and Jacob, A. and Jamieson, B. and Jiang, M. and Johnson, S. and Jo, J. H. and Jonsson, P. and Jung, C. K. and Kabirnezhad, M. and Kaboth, A. C. and Kajita, T. and Kakuno, H. and Kameda, J. and Kanazawa, Y. and Karlen, D. and Karpikov, I. and Katori, T. and Kearns, E. and Khabibullin, M. and Khotjantsev, A. and Kielczewska, D. and Kikawa, T. and Kilinski, A. and Kim, J. and King, S. and Kisiel, J. and Kitching, P. and Kobayashi, T. and Koch, L. and Koga, T. and Kolaceke, A. and Konaka, A. and Kopylov, A. and Kormos, L. L. and Korzenev, A. and Koshio, Y. and Kropp, W. and Kubo, H. and Kudenko, Y. and Kurjata, R. and Kutter, T. and Lagoda, J. and Lamont, I. and Larkin, E. and Laveder, M. and Lawe, M. and Lazos, M. and Lindner, T. and Lister, C. and Litchfield, R. P. and Longhin, A. and Lopez, J. P. and Ludovici, L. and Magaletti, L. and Mahn, K. and Malek, M. and Manly, S. and Marino, A. D. and Marteau, J. and Martin, J. F. and Martins, P. and Martynenko, S. and Maruyama, T. and Matveev, V. and Mavrokoridis, K. and Mazzucato, E. and McCarthy, M. and McCauley, N. and McFarland, K. S. and McGrew, C. and Mefodiev, A. and Metelko, C. and Mezzetto, M. and Mijakowski, P. and Miller, C. A. and Minamino, A. and Mineev, O. and Missert, A. and Miura, M. and Moriyama, S. and Mueller, Th. A. and Murakami, A. and Murdoch, M. and Murphy, S. and Myslik, J. and Nakadaira, T. and Nakahata, M. and Nakamura, K. G. and Nakamura, K. and Nakayama, S. and Nakaya, T. and Nakayoshi, K. and Nantais, C. and Nielsen, C. and Nirkko, M. and Nishikawa, K. and Nishimura, Y. and Nowak, J. and O'Keeffe, H. M. and Ohta, R. and Okumura, K. and Okusawa, T. and Oryszczak, W. and Oser, S. M. and Ovsyannikova, T. and Owen, R. A. and Oyama, Y. and Palladino, V. and Palomino, J. L. and Paolone, V. and Payne, D. and Perevozchikov, O. and Perkin, J. D. and Petrov, Y. and Pickard, L. and Pinzon Guerra, E. S. and Pistillo, C. and Plonski, P. and Poplawska, E. and Popov, B. and Posiadala-Zezula, M. and Poutissou, J.-M. and Poutissou, R. and Przewlocki, P. and Quilain, B. and Radicioni, E. and Ratoff, P. N. and Ravonel, M. and Rayner, M. A. M. and Redij, A. and Reeves, M. and Reinherz-Aronis, E. and Riccio, C. and Rodrigues, P. A. and Rojas, P. and Rondio, E. and Roth, S. and Rubbia, A. and Ruterbories, D. and Rychter, A. and Sacco, R. and Sakashita, K. and S\'anchez, F. and Sato, F. and Scantamburlo, E. and Scholberg, K. and Schoppmann, S. and Schwehr, J. D. and Scott, M. and Seiya, Y. and Sekiguchi, T. and Sekiya, H. and Sgalaberna, D. and Shah, R. and Shaker, F. and Shaw, D. and Shiozawa, M. and Short, S. and Shustrov, Y. and Sinclair, P. and Smith, B. and Smy, M. and Sobczyk, J. T. and Sobel, H. and Sorel, M. and Southwell, L. and Stamoulis, P. and Steinmann, J. and Still, B. and Suda, Y. and Suzuki, A. and Suzuki, K. and Suzuki, S. Y. and Suzuki, Y. and Tacik, R. and Tada, M. and Takahashi, S. and Takeda, A. and Takeuchi, Y. and Tanaka, H. K. and Tanaka, H. A. and Tanaka, M. M. and Terhorst, D. and Terri, R. and Thompson, L. F. and Thorley, A. and Tobayama, S. and Toki, W. and Tomura, T. and Touramanis, C. and Tsukamoto, T. and Tzanov, M. and Uchida, Y. and Vacheret, A. and Vagins, M. and Vasseur, G. and Wachala, T. and Wakamatsu, K. and Walter, C. W. and Wark, D. and Warzycha, W. and Wascko, M. O. and Weber, A. and Wendell, R. and Wilkes, R. J. and Wilking, M. J. and Wilkinson, C. and Williamson, Z. and Wilson, J. R. and Wilson, R. J. and Wongjirad, T. and Yamada, Y. and Yamamoto, K. and Yanagisawa, C. and Yano, T. and Yen, S. and Yershov, N. and Yokoyama, M. and Yoo, J. and Yoshida, K. and Yuan, T. and Yu, M. and Zalewska, A. and Zalipska, J. and Zambelli, L. and Zaremba, K. and Ziembicki, M. and Zimmerman, E. D. and Zito, M. and \ifmmode \dot{Z}\else \.{Z}\fi{}muda, J.},
Journal = {Phys. Rev. D},
Year = {2015},
Month = {Apr},
Pages = {072010},
Volume = {91},
Collaboration = {T2K Collaboration},
Doi = {10.1103/PhysRevD.91.072010},
Issue = {7},
Numpages = {50},
Publisher = {American Physical Society},
Url = {https://link.aps.org/doi/10.1103/PhysRevD.91.072010}
}
@Article{protodune-sp,
Title = {{The Single-Phase ProtoDUNE Technical Design Report}},
Author = {Abi, B. and others},
Year = {2017},
Archiveprefix = {arXiv},
Collaboration = {DUNE},
Eprint = {1706.07081},
Primaryclass = {physics.ins-det},
Reportnumber = {FERMILAB-DESIGN-2017-02},
Slaccitation = {%%CITATION = ARXIV:1706.07081;%%}
}
@Article{pandora,
Title = {{The Pandora multi-algorithm approach to automated pattern recognition of cosmic-ray muon and neutrino events in the MicroBooNE detector}},
Author = {Acciarri, R.
and Adams, C.
and An, R.
and Anthony, J.
and Asaadi, J.
and Auger, M.
and Bagby, L.
and Balasubramanian, S.
and Baller, B.
and Barnes, C.
and Barr, G.
and Bass, M.
and Bay, F.
and Bishai, M.
and Blake, A.
and Bolton, T.
and Camilleri, L.
and Caratelli, D.
and Carls, B.
and Castillo Fernandez, R.
and Cavanna, F.
and Chen, H.
and Church, E.
and Cianci, D.
and Cohen, E.
and Collin, G. H.
and Conrad, J. M.
and Convery, M.
and Crespo-Anad{\'o}n, J. I.
and Del Tutto, M.
and Devitt, D.
and Dytman, S.
and Eberly, B.
and Ereditato, A.
and Escudero Sanchez, L.
and Esquivel, J.
and Fadeeva, A. A.
and Fleming, B. T.
and Foreman, W.
and Furmanski, A. P.
and Garcia-Gamez, D.
and Garvey, G. T.
and Genty, V.
and Goeldi, D.
and Gollapinni, S.
and Graf, N.
and Gramellini, E.
and Greenlee, H.
and Grosso, R.
and Guenette, R.
and Hackenburg, A.
and Hamilton, P.
and Hen, O.
and Hewes, J.
and Hill, C.
and Ho, J.
and Horton-Smith, G.
and Hourlier, A.
and Huang, E.-C.
and James, C.
and Jan de Vries, J.
and Jen, C.-M.
and Jiang, L.
and Johnson, R. A.
and Joshi, J.
and Jostlein, H.
and Kaleko, D.
and Karagiorgi, G.
and Ketchum, W.
and Kirby, B.
and Kirby, M.
and Kobilarcik, T.
and Kreslo, I.
and Laube, A.
and Li, Y.
and Lister, A.
and Littlejohn, B. R.
and Lockwitz, S.
and Lorca, D.
and Louis, W. C.
and Luethi, M.
and Lundberg, B.
and Luo, X.
and Marchionni, A.
and Mariani, C.
and Marshall, J.
and Martinez Caicedo, D. A.
and Meddage, V.
and Miceli, T.
and Mills, G. B.
and Moon, J.
and Mooney, M.
and Moore, C. D.
and Mousseau, J.
and Murrells, R.
and Naples, D.
and Nienaber, P.
and Nowak, J.
and Palamara, O.
and Paolone, V.
and Papavassiliou, V.
and Pate, S. F.
and Pavlovic, Z.
and Piasetzky, E.
and Porzio, D.
and Pulliam, G.
and Qian, X.
and Raaf, J. L.
and Rafique, A.
and Rochester, L.
and Rudolf von Rohr, C.
and Russell, B.
and Schmitz, D. W.
and Schukraft, A.
and Seligman, W.
and Shaevitz, M. H.
and Sinclair, J.
and Smith, A.
and Snider, E. L.
and Soderberg, M.
and S{\"o}ldner-Rembold, S.
and Soleti, S. R.
and Spentzouris, P.
and Spitz, J.
and St. John, J.
and Strauss, T.
and Szelc, A. M.
and Tagg, N.
and Terao, K.
and Thomson, M.
and Toups, M.
and Tsai, Y.-T.
and Tufanli, S.
and Usher, T.
and Van De Pontseele, W.
and Van de Water, R. G.
and Viren, B.
and Weber, M.
and Wickremasinghe, D. A.
and Wolbers, S.
and Wongjirad, T.
and Woodruff, K.
and Yang, T.
and Yates, L.
and Zeller, G. P.
and Zennamo, J.
and Zhang, C.},
Journal = {The European Physical Journal C},
Year = {2018},
Month = {Jan},
Number = {1},
Pages = {82},
Volume = {78},
Abstract = {The development and operation of liquid-argon time-projection chambers for neutrino physics has created a need for new approaches to pattern recognition in order to fully exploit the imaging capabilities offered by this technology. Whereas the human brain can excel at identifying features in the recorded events, it is a significant challenge to develop an automated, algorithmic solution. The Pandora Software Development Kit provides functionality to aid the design and implementation of pattern-recognition algorithms. It promotes the use of a multi-algorithm approach to pattern recognition, in which individual algorithms each address a specific task in a particular topology. Many tens of algorithms then carefully build up a picture of the event and, together, provide a robust automated pattern-recognition solution. This paper describes details of the chain of over one hundred Pandora algorithms and tools used to reconstruct cosmic-ray muon and neutrino events in the MicroBooNE detector. Metrics that assess the current pattern-recognition performance are presented for simulated MicroBooNE events, using a selection of final-state event topologies.},
Day = {29},
Doi = {10.1140/epjc/s10052-017-5481-6},
ISSN = {1434-6052},
Url = {https://doi.org/10.1140/epjc/s10052-017-5481-6}
}
@Article{uboone,
Title = {{Design and construction of the MicroBooNE detector}},
Author = {R. Acciarri and C. Adams and R. An and A. Aparicio and S. Aponte and J. Asaadi and M. Auger and N. Ayoub and L. Bagby and B. Baller and R. Barger and G. Barr and M. Bass and F. Bay and K. Biery and M. Bishai and A. Blake and V. Bocean and D. Boehnlein and V.D. Bogert and T. Bolton and L. Bugel and C. Callahan and L. Camilleri and D. Caratelli and B. Carls and R. Castillo Fernandez and F. Cavanna and S. Chappa and H. Chen and K. Chen and C.-Y. Chi and C.S. Chiu and E. Church and D. Cianci and G.H. Collin and J.M. Conrad and M. Convery and J. Cornele and P. Cowan and J.I. Crespo-Anadón and G. Crutcher and C. Darve and R. Davis and M. Del Tutto and D. Devitt and S. Duffin and S. Dytman and B. Eberly and A. Ereditato and D. Erickson and L. Escudero Sanchez and J. Esquivel and S. Farooq and J. Farrell and D. Featherston and B.T. Fleming and W. Foreman and A.P. Furmanski and V. Genty and M. Geynisman and D. Goeldi and B. Goff and S. Gollapinni and N. Graf and E. Gramellini and J. Green and A. Greene and H. Greenlee and T. Griffin and R. Grosso and R. Guenette and A. Hackenburg and R. Haenni and P. Hamilton and P. Healey and O. Hen and E. Henderson and J. Hewes and C. Hill and K. Hill and L. Himes and J. Ho and G. Horton-Smith and D. Huffman and C.M. Ignarra and C. James and E. James and J. Jan de Vries and W. Jaskierny and C.-M. Jen and L. Jiang and B. Johnson and M. Johnson and R.A. Johnson and B.J.P. Jones and J. Joshi and H. Jostlein and D. Kaleko and L.N. Kalousis and G. Karagiorgi and T. Katori and P. Kellogg and W. Ketchum and J. Kilmer and B. King and B. Kirby and M. Kirby and E. Klein and T. Kobilarcik and I. Kreslo and R. Krull and R. Kubinski and G. Lange and F. Lanni and A. Lathrop and A. Laube and W.M. Lee and Y. Li and D. Lissauer and A. Lister and B.R. Littlejohn and S. Lockwitz and D. Lorca and W.C. Louis and G. Lukhanin and M. Luethi and B. Lundberg and X. Luo and G. Mahler and I. Majoros and D. Makowiecki and A. Marchionni and C. Mariani and D. Markley and J. Marshall and D.A. Martinez Caicedo and K.T. McDonald and D. McKee and A. McLean and J. Mead and V. Meddage and T. Miceli and G.B. Mills and W. Miner and J. Moon and M. Mooney and C.D. Moore and Z. Moss and J. Mousseau and R. Murrells and D. Naples and P. Nienaber and B. Norris and N. Norton and J. Nowak and M. O'Boyle and T. Olszanowski and O. Palamara and V. Paolone and V. Papavassiliou and S.F. Pate and Z. Pavlovic and R. Pelkey and M. Phipps and S. Pordes and D. Porzio and G. Pulliam and X. Qian and J.L. Raaf and V. Radeka and A. Rafique and R. A Rameika and B. Rebel and R. Rechenmacher and S. Rescia and L. Rochester and C. Rudolf von Rohr and A. Ruga and B. Russell and R. Sanders and W.R. Sands III and M. Sarychev and D.W. Schmitz and A. Schukraft and R. Scott and W. Seligman and M.H. Shaevitz and M. Shoun and J. Sinclair and W. Sippach and T. Smidt and A. Smith and E.L. Snider and M. Soderberg and M. Solano-Gonzalez and S. Söldner-Rembold and S.R. Soleti and J. Sondericker and P. Spentzouris and J. Spitz and J. St. John and T. Strauss and K. Sutton and A.M. Szelc and K. Taheri and N. Tagg and K. Tatum and J. Teng and K. Terao and M. Thomson and C. Thorn and J. Tillman and M. Toups and Y.-T. Tsai and S. Tufanli and T. Usher and M. Utes and R.G. Van de Water and C. Vendetta and S. Vergani and E. Voirin and J. Voirin and B. Viren and P. Watkins and M. Weber and T. Wester and J. Weston and D.A. Wickremasinghe and S. Wolbers and T. Wongjirad and K. Woodruff and K.C. Wu and T. Yang and B. Yu and G.P. Zeller and J. Zennamo and C. Zhang and M. Zuckerbrot},
Journal = {Journal of Instrumentation},
Year = {2017},
Number = {02},
Pages = {P02017},
Volume = {12},
Abstract = {This paper describes the design and construction of the MicroBooNE liquid argon time projection chamber and associated systems. MicroBooNE is the first phase of the Short Baseline Neutrino program, located at Fermilab, and will utilize the capabilities of liquid argon detectors to examine a rich assortment of physics topics. In this document details of design specifications, assembly procedures, and acceptance tests are reported.},
Url = {http://stacks.iop.org/1748-0221/12/i=02/a=P02017}
}
@Article{argoneutReco,
Title = {{A study of electron recombination using highly ionizing particles in the ArgoNeuT Liquid Argon TPC}},
Author = {R Acciarri and C Adams and J Asaadi and B Baller and T Bolton and C Bromberg and F Cavanna and E Church and D Edmunds and A Ereditato and S Farooq and B Fleming and H Greenlee and G Horton-Smith and C James and E Klein and K Lang and P Laurens and D McKee and R Mehdiyev and B Page and O Palamara and K Partyka and G Rameika and B Rebel and M Soderberg and J Spitz and A M Szelc and M Weber and M Wojcik and T Yang and G P Zeller},
Journal = {Journal of Instrumentation},
Year = {2013},
Number = {08},
Pages = {P08005},
Volume = {8},
Abstract = {Electron recombination in highly ionizing stopping protons and deuterons is studied in the ArgoNeuT detector. The data are well modeled by either a Birks model or a modified form of the Box model. The dependence of recombination on the track angle with respect to the electric field direction is much weaker than the predictions of the Jaffe columnar theory and by theoretical-computational simulations.},
Url = {http://stacks.iop.org/1748-0221/8/i=08/a=P08005}
}
@Article{FNAL-hv-paper,
Title = {{Liquid argon dielectric breakdown studies with the MicroBooNE purification system}},
Author = {R. Acciarri and B. Carls and C. James and B. Johnson and H. Jostlein and S. Lockwitz and B. Lundberg and J.L. Raaf and R. Rameika and B. Rebel and G.P. Zeller and M. Zuckerbrot},
Journal = {Journal of Instrumentation},
Year = {2014},
Number = {11},
Pages = {P11001},
Volume = {9},
Abstract = {The proliferation of liquid argon time projection chamber detectors makes the characterization of the dielectric properties of liquid argon a critical task. To improve understanding of these properties, a systematic study of the breakdown electric field in liquid argon was conducted using a dedicated cryostat connected to the MicroBooNE cryogenic system at Fermilab. An electrode sphere-plate geometry was implemented using spheres with diameters of 1.3 mm, 5.0 mm, and 76 mm. The MicroBooNE cryogenic system allowed measurements to be taken at a variety of electronegative contamination levels ranging from a few parts-per-million to tens of parts-per-trillion. The cathode-anode distance was varied from 0.1 mm to 2.5 cm. The results demonstrate a geometric dependence of the electric field strength at breakdown. This study is the first time that the dependence of the breakdown field on stressed cathode area has been shown for liquid argon.},
Url = {http://stacks.iop.org/1748-0221/9/i=11/a=P11001}
}
@Article{dune1,
Title = {{Long-Baseline Neutrino Facility (LBNF) and Deep Underground Neutrino Experiment (DUNE): Volume 1: The LBNF and DUNE Projects}},
Author = {Acciarri, R. and others},
Year = {2016},
Archiveprefix = {arXiv},
Collaboration = {DUNE},
Eprint = {1601.05471},
Primaryclass = {physics.ins-det},
Reportnumber = {FERMILAB-DESIGN-2016-01},
Slaccitation = {%%CITATION = ARXIV:1601.05471;%%}
}
@Article{dune4,
Title = {{Long-Baseline Neutrino Facility (LBNF) and Deep Underground Neutrino Experiment (DUNE): Volume 4: The DUNE Detectors at LBNF}},
Author = {Acciarri, R. and others},
Year = {2016},
Archiveprefix = {arXiv},
Collaboration = {DUNE},
Eprint = {1601.02984},
Primaryclass = {physics.ins-det},
Reportnumber = {FERMILAB-DESIGN-2016-04},
Slaccitation = {%%CITATION = ARXIV:1601.02984;%%}
}
@Article{dune2,
Title = {{Long-Baseline Neutrino Facility (LBNF) and Deep Underground Neutrino Experiment (DUNE): Volume 2: The Physics Program for DUNE at LBNF}},
Author = {Acciarri, R. and others},
Year = {2015},
Archiveprefix = {arXiv},
Collaboration = {DUNE},
Eprint = {1512.06148},
Primaryclass = {physics.ins-det},
Reportnumber = {FERMILAB-DESIGN-2016-02},
Slaccitation = {%%CITATION = ARXIV:1512.06148;%%}
}
@Article{nona,
Title = {{First measurement of muon-neutrino disappearance in NOvA}},
Author = {Adamson, P. and Ader, C. and Andrews, M. and Anfimov, N. and Anghel, I. and Arms, K. and Arrieta-Diaz, E. and Aurisano, A. and Ayres, D. S. and Backhouse, C. and Baird, M. and Bambah, B. A. and Bays, K. and Bernstein, R. and Betancourt, M. and Bhatnagar, V. and Bhuyan, B. and Bian, J. and Biery, K. and Blackburn, T. and Bocean, V. and Bogert, D. and Bolshakova, A. and Bowden, M. and Bower, C. and Broemmelsiek, D. and Bromberg, C. and Brunetti, G. and Bu, X. and Butkevich, A. and Capista, D. and Catano-Mur, E. and Chase, T. R. and Childress, S. and Choudhary, B. C. and Chowdhury, B. and Coan, T. E. and Coelho, J. A. B. and Colo, M. and Cooper, J. and Corwin, L. and Cronin-Hennessy, D. and Cunningham, A. and Davies, G. S. and Davies, J. P. and Del Tutto, M. and Derwent, P. F. and Deepthi, K. N. and Demuth, D. and Desai, S. and Deuerling, G. and Devan, A. and Dey, J. and Dharmapalan, R. and Ding, P. and Dixon, S. and Djurcic, Z. and Dukes, E. C. and Duyang, H. and Ehrlich, R. and Feldman, G. J. and Felt, N. and Fenyves, E. J. and Flumerfelt, E. and Foulkes, S. and Frank, M. J. and Freeman, W. and Gabrielyan, M. and Gallagher, H. R. and Gebhard, M. and Ghosh, T. and Gilbert, W. and Giri, A. and Goadhouse, S. and Gomes, R. A. and Goodenough, L. and Goodman, M. C. and Grichine, V. and Grossman, N. and Group, R. and Grudzinski, J. and Guarino, V. and Guo, B. and Habig, A. and Handler, T. and Hartnell, J. and Hatcher, R. and Hatzikoutelis, A. and Heller, K. and Howcroft, C. and Huang, J. and Huang, X. and Hylen, J. and Ishitsuka, M. and Jediny, F. and Jensen, C. and Jensen, D. and Johnson, C. and Jostlein, H. and Kafka, G. K. and Kamyshkov, Y. and Kasahara, S. M. S. and Kasetti, S. and Kephart, K. and Koizumi, G. and Kotelnikov, S. and Kourbanis, I. and Krahn, Z. and Kravtsov, V. and Kreymer, A. and Kulenberg, Ch. and Kumar, A. and Kutnink, T. and Kwarciancy, R. and Kwong, J. and Lang, K. and Lee, A. and Lee, W. M. and Lee, K. and Lein, S. and Liu, J. and Lokajicek, M. and Lozier, J. and Lu, Q. and Lucas, P. and Luchuk, S. and Lukens, P. and Lukhanin, G. and Magill, S. and Maan, K. and Mann, W. A. and Marshak, M. L. and Martens, M. and Martincik, J. and Mason, P. and Matera, K. and Mathis, M. and Matveev, V. and Mayer, N. and McCluskey, E. and Mehdiyev, R. and Merritt, H. and Messier, M. D. and Meyer, H. and Miao, T. and Michael, D. and Mikheyev, S. P. and Miller, W. H. and Mishra, S. R. and Mohanta, R. and Moren, A. and Mualem, L. and Muether, M. and Mufson, S. and Musser, J. and Newman, H. B. and Nelson, J. K. and Niner, E. and Norman, A. and Nowak, J. and Oksuzian, Y. and Olshevskiy, A. and Oliver, J. and Olson, T. and Paley, J. and Pandey, P. and Para, A. and Patterson, R. B. and Pawloski, G. and Pearson, N. and Perevalov, D. and Pershey, D. and Peterson, E. and Petti, R. and Phan-Budd, S. and Piccoli, L. and Pla-Dalmau, A. and Plunkett, R. K. and Poling, R. and Potukuchi, B. and Psihas, F. and Pushka, D. and Qiu, X. and Raddatz, N. and Radovic, A. and Rameika, R. A. and Ray, R. and Rebel, B. and Rechenmacher, R. and Reed, B. and Reilly, R. and Rocco, D. and Rodkin, D. and Ruddick, K. and Rusack, R. and Ryabov, V. and Sachdev, K. and Sahijpal, S. and Sahoo, H. and Samoylov, O. and Sanchez, M. C. and Saoulidou, N. and Schlabach, P. and Schneps, J. and Schroeter, R. and Sepulveda-Quiroz, J. and Shanahan, P. and Sherwood, B. and Sheshukov, A. and Singh, J. and Singh, V. and Smith, A. and Smith, D. and Smolik, J. and Solomey, N. and Sotnikov, A. and Sousa, A. and Soustruznik, K. and Stenkin, Y. and Strait, M. and Suter, L. and Talaga, R. L. and Tamsett, M. C. and Tariq, S. and Tas, P. and Tesarek, R. J. and Thayyullathil, R. B. and Thomsen, K. and Tian, X. and Tognini, S. C. and Toner, R. and Trevor, J. and Tzanakos, G. and Urheim, J. and Vahle, P. and Valerio, L. and Vinton, L. and Vrba, T. and Waldron, A. V. and Wang, B. and Wang, Z. and Weber, A. and Wehmann, A. and Whittington, D. and Wilcer, N. and Wildberger, R. and Wildman, D. and Williams, K. and Wojcicki, S. G. and Wood, K. and Xiao, M. and Xin, T. and Yadav, N. and Yang, S. and Zadorozhnyy, S. and Zalesak, J. and Zamorano, B. and Zhao, A. and Zirnstein, J. and Zwaska, R.},
Journal = {Phys. Rev. D},
Year = {2016},
Month = {Mar},
Pages = {051104},
Volume = {93},
Collaboration = {NOvA Collaboration},
Doi = {10.1103/PhysRevD.93.051104},
Issue = {5},
Numpages = {8},
Publisher = {American Physical Society},
Url = {https://link.aps.org/doi/10.1103/PhysRevD.93.051104}
}
@Article{opera,
Title = {{Discovery of $\ensuremath{\tau}$ Neutrino Appearance in the CNGS Neutrino Beam with the OPERA Experiment}},
Author = {Agafonova, N. and Aleksandrov, A. and Anokhina, A. and Aoki, S. and Ariga, A. and Ariga, T. and Bender, D. and Bertolin, A. and Bodnarchuk, I. and Bozza, C. and Brugnera, R. and Buonaura, A. and Buontempo, S. and B\"uttner, B. and Chernyavsky, M. and Chukanov, A. and Consiglio, L. and D'Ambrosio, N. and De Lellis, G. and De Serio, M. and Del Amo Sanchez, P. and Di Crescenzo, A. and Di Ferdinando, D. and Di Marco, N. and Dmitrievski, S. and Dracos, M. and Duchesneau, D. and Dusini, S. and Dzhatdoev, T. and Ebert, J. and Ereditato, A. and Fini, R. A. and Fornari, F. and Fukuda, T. and Galati, G. and Garfagnini, A. and Goldberg, J. and Gornushkin, Y. and Grella, G. and Guler, A. M. and Gustavino, C. and Hagner, C. and Hara, T. and Hayakawa, H. and Hollnagel, A. and Hosseini, B. and Ishiguro, K. and Jakovcic, K. and Jollet, C. and Kamiscioglu, C. and Kamiscioglu, M. and Kim, J. H. and Kim, S. H. and Kitagawa, N. and Klicek, B. and Kodama, K. and Komatsu, M. and Kose, U. and Kreslo, I. and Laudisio, F. and Lauria, A. and Ljubicic, A. and Longhin, A. and Loverre, P. F. and Malgin, A. and Malenica, M. and Mandrioli, G. and Matsuo, T. and Matsushita, T. and Matveev, V. and Mauri, N. and Medinaceli, E. and Meregaglia, A. and Mikado, S. and Miyanishi, M. and Mizutani, F. and Monacelli, P. and Montesi, M. C. and Morishima, K. and Muciaccia, M. T. and Naganawa, N. and Naka, T. and Nakamura, M. and Nakano, T. and Nakatsuka, Y. and Niwa, K. and Ogawa, S. and Olchevsky, A. and Omura, T. and Ozaki, K. and Paoloni, A. and Paparella, L. and Park, B. D. and Park, I. G. and Pasqualini, L. and Pastore, A. and Patrizii, L. and Pessard, H. and Pistillo, C. and Podgrudkov, D. and Polukhina, N. and Pozzato, M. and Pupilli, F. and Roda, M. and Roganova, T. and Rokujo, H. and Rosa, G. and Ryazhskaya, O. and Sato, O. and Schembri, A. and Schmidt-Parzefall, W. and Shakirianova, I. and Shchedrina, T. and Sheshukov, A. and Shibuya, H. and Shiraishi, T. and Shoziyoev, G. and Simone, S. and Sioli, M. and Sirignano, C. and Sirri, G. and Sotnikov, A. and Spinetti, M. and Stanco, L. and Starkov, N. and Stellacci, S. M. and Stipcevic, M. and Strolin, P. and Takahashi, S. and Tenti, M. and Terranova, F. and Tioukov, V. and Tufanli, S. and Vilain, P. and Vladymyrov, M. and Votano, L. and Vuilleumier, J. L. and Wilquet, G. and Wonsak, B. and Yoon, C. S. and Zemskova, S.},
Journal = {Phys. Rev. Lett.},
Year = {2015},
Month = {Sep},
Pages = {121802},
Volume = {115},
Collaboration = {OPERA Collaboration},
Doi = {10.1103/PhysRevLett.115.121802},
Issue = {12},
Numpages = {7},
Publisher = {American Physical Society},
Url = {https://link.aps.org/doi/10.1103/PhysRevLett.115.121802}
}
@Article{snoSolar,
Title = {{Direct Evidence for Neutrino Flavor Transformation from Neutral-Current Interactions in the Sudbury Neutrino Observatory}},
Author = {Ahmad, Q. R. and Allen, R. C. and Andersen, T. C. and D.Anglin, J. and Barton, J. C. and Beier, E. W. and Bercovitch, M. and Bigu, J. and Biller, S. D. and Black, R. A. and Blevis, I. and Boardman, R. J. and Boger, J. and Bonvin, E. and Boulay, M. G. and Bowler, M. G. and Bowles, T. J. and Brice, S. J. and Browne, M. C. and Bullard, T. V. and B\"uhler, G. and Cameron, J. and Chan, Y. D. and Chen, H. H. and Chen, M. and Chen, X. and Cleveland, B. T. and Clifford, E. T. H. and Cowan, J. H. M. and Cowen, D. F. and Cox, G. A. and Dai, X. and Dalnoki-Veress, F. and Davidson, W. F. and Doe, P. J. and Doucas, G. and Dragowsky, M. R. and Duba, C. A. and Duncan, F. A. and Dunford, M. and Dunmore, J. A. and Earle, E. D. and Elliott, S. R. and Evans, H. C. and Ewan, G. T. and Farine, J. and Fergani, H. and Ferraris, A. P. and Ford, R. J. and Formaggio, J. A. and Fowler, M. M. and Frame, K. and Frank, E. D. and Frati, W. and Gagnon, N. and Germani, J. V. and Gil, S. and Graham, K. and Grant, D. R. and Hahn, R. L. and Hallin, A. L. and Hallman, E. D. and Hamer, A. S. and Hamian, A. A. and Handler, W. B. and Haq, R. U. and Hargrove, C. K. and Harvey, P. J. and Hazama, R. and Heeger, K. M. and Heintzelman, W. J. and Heise, J. and Helmer, R. L. and Hepburn, J. D. and Heron, H. and Hewett, J. and Hime, A. and Howe, M. and Hykawy, J. G. and Isaac, M. C. P. and Jagam, P. and Jelley, N. A. and Jillings, C. and Jonkmans, G. and Kazkaz, K. and Keener, P. T. and Klein, J. R. and Knox, A. B. and Komar, R. J. and Kouzes, R. and Kutter, T. and Kyba, C. C. M. and Law, J. and Lawson, I. T. and Lay, M. and Lee, H. W. and Lesko, K. T. and Leslie, J. R. and Levine, I. and Locke, W. and Luoma, S. and Lyon, J. and Majerus, S. and Mak, H. B. and Maneira, J. and Manor, J. and Marino, A. D. and McCauley, N. and McDonald, A. B. and McDonald, D. S. and McFarlane, K. and McGregor, G. and Meijer Drees, R. and Mifflin, C. and Miller, G. G. and Milton, G. and Moffat, B. A. and Moorhead, M. and Nally, C. W. and Neubauer, M. S. and Newcomer, F. M. and Ng, H. S. and Noble, A. J. and Norman, E. B. and Novikov, V. M. and O'Neill, M. and Okada, C. E. and Ollerhead, R. W. and Omori, M. and Orrell, J. L. and Oser, S. M. and Poon, A. W. P. and Radcliffe, T. J. and Roberge, A. and Robertson, B. C. and Robertson, R. G. H. and Rosendahl, S. S. E. and Rowley, J. K. and Rusu, V. L. and Saettler, E. and Schaffer, K. K. and Schwendener, M. H. and Sch\"ulke, A. and Seifert, H. and Shatkay, M. and Simpson, J. J. and Sims, C. J. and Sinclair, D. and Skensved, P. and Smith, A. R. and Smith, M. W. E. and Spreitzer, T. and Starinsky, N. and Steiger, T. D. and Stokstad, R. G. and Stonehill, L. C. and Storey, R. S. and Sur, B. and Tafirout, R. and Tagg, N. and Tanner, N. W. and Taplin, R. K. and Thorman, M. and Thornewell, P. M. and Trent, P. T. and Tserkovnyak, Y. I. and Van Berg, R. and Van de Water, R. G. and Virtue, C. J. and Waltham, C. E. and Wang, J.-X. and Wark, D. L. and West, N. and Wilhelmy, J. B. and Wilkerson, J. F. and Wilson, J. R. and Wittich, P. and Wouters, J. M. and Yeh, M.},
Journal = {Phys. Rev. Lett.},
Year = {2002},
Month = {Jun},
Pages = {011301},
Volume = {89},
Collaboration = {SNO Collaboration},
Doi = {10.1103/PhysRevLett.89.011301},
Issue = {1},
Numpages = {6},
Publisher = {American Physical Society},
Url = {https://link.aps.org/doi/10.1103/PhysRevLett.89.011301}
}
@Article{Akhmedov,
Title = {{Paradoxes of neutrino oscillations}},
Author = {Akhmedov, E. Kh.
and Smirnov, A. Yu.},
Journal = {Physics of Atomic Nuclei},
Year = {2009},
Month = {Aug},
Number = {8},
Pages = {1363--1381},
Volume = {72},
Abstract = {Despite the theory of neutrino oscillations being rather old, some of its basic issues are still being debated in the literature. We discuss a number of such issues, including the relevance of the ``same energy'' and ``same momentum'' assumptions, the role of quantum-mechanical uncertainty relations in neutrino oscillations, the dependence of the coherence and localization conditions that ensure the observability of neutrino oscillations on neutrino energy and momentum uncertainties, the question of (in)dependence of the oscillation probabilities on the neutrino production and detection processes, and the applicability limits of the stationary-source approximation. We also develop a novel approach to calculation of the oscillation probability in the wave-packet approach, based on the summation/integration conventions different from the standard one, which allows a new insight into the ``same energy'' vs. ``same momentum'' problem. We also discuss a number of apparently paradoxical features of the theory of neutrino oscillations.},
Day = {01},
Doi = {10.1134/S1063778809080122},
ISSN = {1562-692X},
Url = {https://doi.org/10.1134/S1063778809080122}
}
@Article{minerna,
Title = {{Design, calibration, and performance of the MINERvA detector}},
Author = {L. Aliaga and L. Bagby and B. Baldin and A. Baumbaugh and A. Bodek and R. Bradford and W.K. Brooks and D. Boehnlein and S. Boyd and H. Budd and A. Butkevich and D.A. Martinez Caicedo and C.M. Castromonte and M.E. Christy and J. Chvojka and H. da Motta and D.S. Damiani and I. Danko and M. Datta and R. DeMaat and J. Devan and E. Draeger and S.A. Dytman and G.A. Díaz and B. Eberly and D.A. Edmondson and J. Felix and L. Fields and G.A. Fiorentini and R.S. Flight and A.M. Gago and H. Gallagher and C.A. George and J.A. Gielata and C. Gingu and B. Gobbi and R. Gran and J. Grange and N. Grossman and D.A. Harris and J. Heaton and A. Higuera and J.A. Hobbs and I.J. Howley and K. Hurtado and M. Jerkins and T. Kafka and M.O. Kantner and C. Keppel and J. Kilmer and M. Kordosky and A.H. Krajeski and G.J. Kumbartzki and H. Lee and A.G. Leister and G. Locke and G. Maggi and E. Maher and S. Manly and W.A. Mann and C.M. Marshall and K.S. McFarland and C.L. McGivern and A.M. McGowan and A. Mislivec and J.G. Morfín and J. Mousseau and D. Naples and J.K. Nelson and G. Niculescu and I. Niculescu and C.D. O'Connor and N. Ochoa and J. Olsen and B. Osmanov and J. Osta and J.L. Palomino and V. Paolone and J. Park and G.N. Perdue and C. Peña and A. Pla-Dalmau and L. Rakotondravohitra and R.D. Ransome and H. Ray and L. Ren and P. Rubinov and C. Rude and K.E. Sassin and H. Schellman and D.W. Schmitz and R.M. Schneider and E.C. Schulte and C. Simon and F.D. Snider and M.C. Snyder and C.J. Solano Salinas and N. Tagg and B.G. Tice and R.N. Tilden and G. Tzanakos and J.P. Velásquez and T. Walton and A. Westerberg and J. Wolcott and B.A. Wolthuis and N. Woodward and T. Wytock and G. Zavala and H.B. Zeng and D. Zhang and L.Y. Zhu and B.P. Ziemer},
Journal = {Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment},
Year = {2014},
Pages = {130 - 159},
Volume = {743},
Doi = {10.1016/j.nima.2013.12.053},
ISSN = {0168-9002},
Keywords = {NuMI, MINERvA, Neutrinos, Cross-sections, Nuclear effects},
Url = {http://www.sciencedirect.com/science/article/pii/S0168900214000035}
}
@TechReport{dune_ndtfr,
Title = {{DUNE Near Detector Task Force Report}},
Author = {T. Alion and C. Andreopoulos and J. Asaadi and A. Bashyal and M. Bass and D. Brailsford and S. J. Brice and D. Cherdack and G. Christodoulou and E. Davenport and S. R. Dennis and L. Escudero and L. Fields and R. Hatcher and S. Lockwitz and P. Madigan and K. Mahn and C. M. Marshall and J. Mart\'{i}n-Albo and B. Rebel and J. R. Sinclair and T. Yang},
Institution = {DUNE},
Year = {2017},
Number = {1792},
Type = {DUNE document},
Owner = {damian},
Timestamp = {2018.02.24},
Url = {https://web.archive.org/web/20180224162141/http://www.neutrino.bnl.gov/q/DUNE/DUNE-doc-1792-v2.pdf}
}
@Article{icarus,
Title = {{Design, construction and tests of the ICARUS T600 detector}},
Author = {S. Amerio and S. Amoruso and M. Antonello and P. Aprili and M. Armenante and F. Arneodo and A. Badertscher and B. Baiboussinov and M. Baldo Ceolin and G. Battistoni and B. Bekman and P. Benetti and E. Bernardini and M. Bischofberger and A. Borio di Tigliole and R. Brunetti and R. Bruzzese and A. Bueno and E. Calligarich and M. Campanelli and F. Carbonara and C. Carpanese and D. Cavalli and F. Cavanna and P. Cennini and S. Centro and A. Cesana and C. Chen and D. Chen and D.B. Chen and Y. Chen and R. Cid and D.B. Cline and K. Cieślik and A.G. Cocco and D. Corti and Z. Dai and C. De Vecchi and A. Da̧browska and A. Di Cicco and R. Dolfini and A. Ereditato and M. Felcini and A. Ferella and A. Ferrari and F. Ferri and G. Fiorillo and S. Galli and D. Garcia Gamez and Y. Ge and D. Gibin and A. Gigli Berzolari and I. Gil-Botella and K. Graczyk and L. Grandi and A. Guglielmi and K. He and J. Holeczek and X. Huang and C. Juszczak and D. Kiełczewska and J. Kisiel and T. Kozłowski and H. Kuna-Ciskał and M. Laffranchi and J. Łagoda and Z. Li and B. Lisowski and F. Lu and J. Ma and G. Mangano and G. Mannocchi and M. Markiewicz and A. Martinez de la Ossa and C. Matthey and F. Mauri and D. Mazza and A.J. Melgarejo and A. Menegolli and G. Meng and M. Messina and J.W. Mietelski and C. Montanari and S. Muraro and S. Navas-Concha and M. Nicoletto and J. Nowak and G. Nurzia and C. Osuna and S. Otwinowski and Q. Ouyang and O. Palamara and D. Pascoli and L. Periale and G. Piano Mortari and A. Piazzoli and P. Picchi and F. Pietropaolo and W. Półchłopek and M. Prata and T. Rancati and A. Rappoldi and G.L. Raselli and J. Rico and E. Rondio and M. Rossella and A. Rubbia and C. Rubbia and P. Sala and R. Santorelli and D. Scannicchio and E. Segreto and Y. Seo and F. Sergiampietri and J. Sobczyk and N. Spinelli and J. Stepaniak and R. Sulej and M. Szeptycka and M. Szarska and M. Terrani and G. Trinchero and R. Velotta and S. Ventura and C. Vignoli and H. Wang and X. Wang and J. Woo and G. Xu and Z. Xu and X. Yang and A. Zalewska and J. Zalipska and C. Zhang and Q. Zhang and S. Zhen and W. Zipper},
Journal = {Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment},
Year = {2004},
Number = {3},
Pages = {329 - 410},
Volume = {527},
Doi = {10.1016/j.nima.2004.02.044},
ISSN = {0168-9002},
Keywords = {Liquid Argon, TPC, Calorimetry, Neutrino interaction, Nucleon decay},
Owner = {damian},
Timestamp = {2017.10.28},
Url = {http://www.sciencedirect.com/science/article/pii/S0168900204004966}
}
@Article{dielConst,
Title = {{Dielectric Constants of Liquefied Noble Gases and Methane}},
Author = {Ralph L. Amey and Robert H. Cole},
Journal = {The Journal of Chemical Physics},
Year = {1964},
Number = {1},
Pages = {146-148},
Volume = {40},
Doi = {10.1063/1.1724850},
Eprint = {https://doi.org/10.1063/1.1724850},
Url = {https://doi.org/10.1063/1.1724850}
}
@Article{icarusReco,
Title = {{Study of electron recombination in liquid argon with the ICARUS TPC}},
Author = {S. Amoruso and M. Antonello and P. Aprili and F. Arneodo and A. Badertscher and B. Baiboussinov and M. Baldo Ceolin and G. Battistoni and B. Bekman and P. Benetti and M. Bischofberger and A. Borio di Tigliole and R. Brunetti and R. Bruzzese and A. Bueno and M. Buzzanca and E. Calligarich and M. Campanelli and F. Carbonara and C. Carpanese and D. Cavalli and F. Cavanna and P. Cennini and S. Centro and A. Cesana and C. Chen and D. Chen and D.B. Chen and Y. Chen and K. Cieślik and D. Cline and A.G. Cocco and Z. Dai and C. De Vecchi and A. Dąbrowska and A. Di Cicco and R. Dolfini and A. Ereditato and M. Felcini and A. Ferrari and F. Ferri and G. Fiorillo and S. Galli and Y. Ge and D. Gibin and A. Gigli Berzolari and I. Gil-Botella and K. Graczyk and L. Grandi and A. Guglielmi and K. He and J. Holeczek and X. Huang and C. Juszczak and D. Kiełczewska and J. Kisiel and T. Kozłowski and M. Laffranchi and J. Łagoda and Z. Li and F. Lu and J. Ma and G. Mangano and M. Markiewicz and A. Martinez de la Ossa and C. Matthey and F. Mauri and G. Meng and M. Messina and C. Montanari and S. Muraro and S. Navas-Concha and S. Otwinowski and Q. Ouyang and O. Palamara and D. Pascoli and L. Periale and G.B. Piano Mortari and A. Piazzoli and P. Picchi and F. Pietropaolo and W. Półchłopek and T. Rancati and A. Rappoldi and G.L. Raselli and J. Rico and E. Rondio and M. Rossella and A. Rubbia and C. Rubbia and P.R. Sala and R. Santorelli and D. Scannicchio and E. Segreto and Y. Seo and F. Sergiampietri and J. Sobczyk and N. Spinelli and J. Stepaniak and R. Sulej and M. Szarska and M. Szeptycka and M. Terrani and R. Velotta and S. Ventura and C. Vignoli and H. Wang and X. Wang and J. Woo and G. Xu and Z. Xu and A. Zalewska and C. Zhang and Q. Zhang and S. Zhen and W. Zipper},
Journal = {Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment},
Year = {2004},
Number = {3},
Pages = {275 - 286},
Volume = {523},
Doi = {10.1016/j.nima.2003.11.423},
ISSN = {0168-9002},
Keywords = {Liquid argon, Electron recombination, TPC},
Url = {http://www.sciencedirect.com/science/article/pii/S0168900204000506}
}
@Article{dayabayRecent,
Title = {{Measurement of electron antineutrino oscillation based on 1230 days of operation of the Daya Bay experiment}},
Author = {An, F. P. and Balantekin, A. B. and Band, H. R. and Bishai, M. and Blyth, S. and Cao, D. and Cao, G. F. and Cao, J. and Cen, W. R. and Chan, Y. L. and Chang, J. F. and Chang, L. C. and Chang, Y. and Chen, H. S. and Chen, Q. Y. and Chen, S. M. and Chen, Y. X. and Chen, Y. and Cheng, J.-H. and Cheng, J. and Cheng, Y. P. and Cheng, Z. K. and Cherwinka, J. J. and Chu, M. C. and Chukanov, A. and Cummings, J. P. and de Arcos, J. and Deng, Z. Y. and Ding, X. F. and Ding, Y. Y. and Diwan, M. V. and Dolgareva, M. and Dove, J. and Dwyer, D. A. and Edwards, W. R. and Gill, R. and Gonchar, M. and Gong, G. H. and Gong, H. and Grassi, M. and Gu, W. Q. and Guan, M. Y. and Guo, L. and Guo, X. H. and Guo, Y. H. and Guo, Z. and Hackenburg, R. W. and Han, R. and Hans, S. and He, M. and Heeger, K. M. and Heng, Y. K. and Higuera, A. and Hor, Y. K. and Hsiung, Y. B. and Hu, B. Z. and Hu, T. and Hu, W. and Huang, E. C. and Huang, H. X. and Huang, X. T. and Huber, P. and Huo, W. and Hussain, G. and Jaffe, D. E. and Jaffke, P. and Jen, K. L. and Jetter, S. and Ji, X. P. and Ji, X. L. and Jiao, J. B. and Johnson, R. A. and Jones, D. and Joshi, J. and Kang, L. and Kettell, S. H. and Kohn, S. and Kramer, M. and Kwan, K. K. and Kwok, M. W. and Kwok, T. and Langford, T. J. and Lau, K. and Lebanowski, L. and Lee, J. and Lee, J. H. C. and Lei, R. T. and Leitner, R. and Leung, J. K. C. and Li, C. and Li, D. J. and Li, F. and Li, G. S. and Li, Q. J. and Li, S. and Li, S. C. and Li, W. D. and Li, X. N. and Li, Y. F. and Li, Z. B. and Liang, H. and Lin, C. J. and Lin, G. L. and Lin, S. and Lin, S. K. and Lin, Y.-C. and Ling, J. J. and Link, J. M. and Littenberg, L. and Littlejohn, B. R. and Liu, D. W. and Liu, J. L. and Liu, J. C. and Loh, C. W. and Lu, C. and Lu, H. Q. and Lu, J. S. and Luk, K. B. and Lv, Z. and Ma, Q. M. and Ma, X. Y. and Ma, X. B. and Ma, Y. Q. and Malyshkin, Y. and Martinez Caicedo, D. A. and McDonald, K. T. and McKeown, R. D. and Mitchell, I. and Mooney, M. and Nakajima, Y. and Napolitano, J. and Naumov, D. and Naumova, E. and Ngai, H. Y. and Ning, Z. and Ochoa-Ricoux, J. P. and Olshevskiy, A. and Pan, H.-R. and Park, J. and Patton, S. and Pec, V. and Peng, J. C. and Pinsky, L. and Pun, C. S. J. and Qi, F. Z. and Qi, M. and Qian, X. and Raper, N. and Ren, J. and Rosero, R. and Roskovec, B. and Ruan, X. C. and Steiner, H. and Sun, G. X. and Sun, J. L. and Tang, W. and Taychenachev, D. and Treskov, K. and Tsang, K. V. and Tull, C. E. and Viaux, N. and Viren, B. and Vorobel, V. and Wang, C. H. and Wang, M. and Wang, N. Y. and Wang, R. G. and Wang, W. and Wang, X. and Wang, Y. F. and Wang, Z. and Wang, Z. and Wang, Z. M. and Wei, H. Y. and Wen, L. J. and Whisnant, K. and White, C. G. and Whitehead, L. and Wise, T. and Wong, H. L. H. and Wong, S. C. F. and Worcester, E. and Wu, C.-H. and Wu, Q. and Wu, W. J. and Xia, D. M. and Xia, J. K. and Xing, Z. Z. and Xu, J. Y. and Xu, J. L. and Xu, Y. and Xue, T. and Yang, C. G. and Yang, H. and Yang, L. and Yang, M. S. and Yang, M. T. and Ye, M. and Ye, Z. and Yeh, M. and Young, B. L. and Yu, Z. Y. and Zeng, S. and Zhan, L. and Zhang, C. and Zhang, H. H. and Zhang, J. W. and Zhang, Q. M. and Zhang, X. T. and Zhang, Y. M. and Zhang, Y. X. and Zhang, Y. M. and Zhang, Z. J. and Zhang, Z. Y. and Zhang, Z. P. and Zhao, J. and Zhao, Q. W. and Zhao, Y. B. and Zhong, W. L. and Zhou, L. and Zhou, N. and Zhuang, H. L. and Zou, J. H.},
Journal = {Phys. Rev. D},
Year = {2017},
Month = {Apr},
Pages = {072006},
Volume = {95},
Collaboration = {Daya Bay Collaboration},
Doi = {10.1103/PhysRevD.95.072006},
Issue = {7},
Numpages = {46},
Publisher = {American Physical Society},
Url = {https://link.aps.org/doi/10.1103/PhysRevD.95.072006}
}
@Article{argoneut,
Title = {{The ArgoNeuT detector in the NuMI low-energy beam line at Fermilab}},
Author = {C Anderson and M Antonello and B Baller and T Bolton and C Bromberg and F Cavanna and E Church and D Edmunds and A Ereditato and S
Farooq and B Fleming and H Greenlee and R Guenette and S Haug and G Horton-Smith and C James and E Klein and K Lang and A Lathrop and P
Laurens and S Linden and D McKee and R Mehdiyev and B Page and O Palamara and K Partyka and S Pordes and G Rameika and B Rebel and B Rossi and R
Sanders and M Soderberg and J Spitz and A M Szelc and M Weber and T Wongjirad and T Yang and G P Zeller},
Journal = {Journal of Instrumentation},
Year = {2012},
Number = {10},
Pages = {P10019},
Volume = {7},
Abstract = {The ArgoNeuT liquid argon time projection chamber has collected thousands of neutrino and anti-neutrino events during an extended run period in the NuMI beam-line at Fermilab. This paper focuses on the main aspects of the detector layout and related technical features, including the cryogenic equipment, time projection chamber, read-out electronics, and off-line data treatment. The detector commissioning phase, physics run, and first neutrino event displays are also reported. The characterization of the main working parameters of the detector during data-taking, the ionization electron drift velocity and lifetime in liquid argon, as obtained from through-going muon data complete the present report.},
Url = {http://stacks.iop.org/1748-0221/7/i=10/a=P10019}
}
@Book{NobleGasDetectors,
Title = {{Noble Gas Detectors}},
Author = {Aprile, E. and Bolotnikov, A.E. and Bolozdynya, A.I. and Doke, T.},
Publisher = {Wiley},
Year = {2007},
ISBN = {9783527609635},
Url = {https://books.google.ch/books?id=tsnHM8x6cHAC}
}
@Article{pixel_proceedings,
Title = {{A pixelated charge readout for Liquid Argon Time Projection Chambers}},
Author = {J. Asaadi and M. Auger and A. Ereditato and D. Goeldi and R. Hänni and U. Kose and I. Kreslo and D. Lorca and M. Luethi and C. Rudolf
von Rohr and J. Sinclair and F. Stocker and C. Tognina and M. Weber},
Journal = {Journal of Instrumentation},
Year = {2018},
Number = {02},
Pages = {C02008},
Volume = {13},
Abstract = {Liquid Argon Time Projection Chambers (LArTPCs) are ideally suited to perform long-baseline neutrino experiments aiming to measure CP violation in the lepton sector, and determine the ordering of the three neutrino mass eigenstates. LArTPCs have used projective wire readouts for charge detection since their conception in 1977. However, wire readouts are notoriously fragile and therefore a limiting factor in the design of any large mass detectors. Furthermore, a wire readout also introduces intrinsic ambiguities in event reconstruction. Within the ArgonCube concept—the liquid argon component of the DUNE near detector—we are developing a pixelated charge readout for LArTPCs. Pixelated charge readout systems represent the single largest advancement in the sensitivity of LArTPCs. They are mechanically robust and provide direct 3D readout, serving to minimise reconstruction ambiguities, enabling more advanced triggers, further reducing event pile-up and improving background rejection. This article presents first results from a pixelated LArTPC prototype built and operated in Bern.},
Url = {http://stacks.iop.org/1748-0221/13/i=02/a=C02008}
}
@Article{pixel_paper,
Title = {{First Demonstration of a Pixelated Charge Readout for
Single-Phase Liquid Argon Time Projection Chambers}},
Author = {Asaadi, J. and others},
Year = {2018},
Archiveprefix = {arXiv},
Eprint = {1801.08884},
Primaryclass = {physics.ins-det},
Slaccitation = {%%CITATION = ARXIV:1801.08884;%%}
}
@PhdThesis{maplesyrup,
Title = {{New Micromegas based Readout techniques for Imaging in Time Projection Chambers}},
Author = {Martin Auger},
School = {University of Bern, Switzerland},
Year = {2012}
}
@Article{breakdown_16,
Title = {{On the Electric Breakdown in Liquid Argon at Centimeter Scale}},
Author = {Auger, M. and Blatter, A. and Ereditato, A. and Goeldi, D. and Janos, S. and Kreslo, I. and Luethi, M. and von Rohr, C. Rudolf and Strauss, T. and Weber, M. S.},
Journal = {JINST},
Year = {2016},
Number = {03},
Pages = {P03017},
Volume = {11},
Archiveprefix = {arXiv},
Doi = {10.1088/1748-0221/11/03/P03017},
Eprint = {1512.05968},
Primaryclass = {physics.ins-det},
Slaccitation = {%%CITATION = ARXIV:1512.05968;%%}
}
@Article{arclight,
Title = {{ArCLight—A Compact Dielectric Large-Area Photon Detector}},
Author = {Auger, Martin and Chen, Yifan and Ereditato, Antonio and Goeldi, Damian and Kreslo, Igor and Lorca, David and Luethi, Matthias and Mettler, Thomas and Sinclair, James and Weber, Michele},
Journal = {Instruments},
Year = {2018},
Number = {1},
Pages = {3},
Volume = {2},
Abstract = {ArgonCube Light readout system (ArCLight) is a novel device for detecting scintillation light over large areas with Photon Detection Efficiency (PDE) of the order of a few percent. Its robust technological design allows for efficient use in large-volume particle detectors, such as Liquid Argon Time Projection Chambers (LArTPCs) or liquid scintillator detectors. Due to its dielectric structure it can be placed inside volumes with high electric field. It could potentially replace vacuum PhotoMultiplier Tubes (PMTs) in applications where high PDE is not required. The photon detection efficiency for a 10 × 10 cm2 detector prototype was measured to be in the range of 0.8 percent to 2.2 percent across the active area.},
Doi = {10.3390/instruments2010003},
ISSN = {2410-390X},
Url = {http://www.mdpi.com/2410-390X/2/1/3}
}
@Article{crt,
Title = {{A Novel Cosmic Ray Tagger System for Liquid Argon TPC Neutrino Detectors}},
Author = {Auger, Martin and Del Tutto, Marco and Ereditato, Antonio and Fleming, Bonnie T. and Goeldi, Damian and Gramellini, Elena and Guenette, Roxanne and Ketchum, Wesley and Kreslo, Igor and Laube, Ann and Lorca, David and Luethi, Matthias and Rudolf Von Rohr, Christoph and Sinclair, James and Soleti, Stefano Roberto and Weber, Michele},
Journal = {Instruments},
Year = {2017},
Number = {1},
Pages = {2},
Volume = {1},
Abstract = {The Fermilab Short Baseline Neutrino (SBN) program aims to observe and reconstruct thousands of neutrino-argon interactions with its three detectors (SBND, MicroBooNE, and ICARUS-T600), using their hundred-ton scale Liquid Argon Time Projection Chambers to perform a rich physics analysis program, in particular focused on the search for sterile neutrinos. Given the relatively shallow depth of the detectors, the continuous flux of cosmic ray particles crossing their volumes introduces a constant background which can be falsely identified as part of the event of interest. Here we present the Cosmic Ray Tagger (CRT) system, a novel technique to tag and identify these crossing particles using scintillation modules which measure their time and coordinates relative to the internal events to the neutrino detector, with the intent of mitigating their effect in the event tracking reconstruction.},
Doi = {10.3390/instruments1010002},
ISSN = {2410-390X},
Url = {http://www.mdpi.com/2410-390X/1/1/2}
}
@Article{latex,
Title = {{A method to suppress dielectric breakdowns in liquid argon ionization detectors for cathode to ground distances of several millimeters}},
Author = {Auger, M. and Ereditato, A. and Goeldi, D. and Janos, S. and Kreslo, I. and Luethi, M. and Rudolf von Rohr, C. and Strauss, T. and Tolba, T. and Weber, M. S.},
Journal = {JINST},
Year = {2014},
Pages = {P07023},
Volume = {9},
Archiveprefix = {arXiv},
Doi = {10.1088/1748-0221/9/07/P07023},
Eprint = {1406.3929},
Primaryclass = {physics.ins-det},
Slaccitation = {%%CITATION = ARXIV:1406.3929;%%}
}
@Article{crt_feb,
Title = {{Multi-channel front-end board for SiPM readout}},
Author = {M. Auger and A. Ereditato and D. Goeldi and I. Kreslo and D. Lorca and M. Luethi and C. Rudolf von Rohr and J. Sinclair and M. S. Weber},
Journal = {Journal of Instrumentation},
Year = {2016},
Number = {10},
Pages = {P10005},
Volume = {11},
Abstract = {We describe a novel high-speed front-end electronic board (FEB) for interfacing an array of 32 Silicon Photo-multipliers (SiPM) with a computer. The FEB provides individually adjustable bias for the SiPMs, and performs low-noise analog signal amplification, conditioning and digitization. It provides event timing information accurate to 1.3 ns RMS. The signal-to-noise ratio of 12 is attained for the first photo-electron peak. The back-end data interface is realized on the basis of 100 Mbps Ethernet. The design allows daisy-chaining of up to 256 units into one network interface, thus enabling compact and efficient readout schemes for multi-channel scintillating detectors, using SiPMs as photo-sensors.},
Url = {http://stacks.iop.org/1748-0221/11/i=10/a=P10005}
}
@Article{2photonAbs,
Title = {{Measurement of the two-photon absorption cross-section of liquid argon with a time projection chamber}},
Author = {I Badhrees and A Ereditato and I Kreslo and M Messina and U Moser and B Rossi and M S Weber and M Zeller and C Altucci and S Amoruso and R Bruzzese and R Velotta},
Journal = {New Journal of Physics},
Year = {2010},
Number = {11},
Pages = {113024},
Volume = {12},
Abstract = {This paper reports on laser-induced multiphoton ionization at 266 nm of liquid argon in a time projection chamber (LAr TPC) detector. The electron signal produced by the laser beam is a formidable tool for the calibration and monitoring of next-generation large-mass LAr TPCs. The detector that we designed and tested allowed us to measure the two-photon absorption cross-section of LAr with unprecedented accuracy and precision: σ ex =(1.24±0.10 stat ±0.30 syst )×10 − 56 cm 4 s − 1 .},
Url = {http://stacks.iop.org/1367-2630/12/i=11/a=113024}
}
@Article{duneT2HKSens,
Title = {{Sensitivities and synergies of DUNE and T2HK}},
Author = {Ballett, Peter and King, Stephen F. and Pascoli, Silvia and Prouse, Nick W. and Wang, TseChun},
Journal = {Phys. Rev. D},
Year = {2017},
Month = {Aug},
Pages = {033003},
Volume = {96},
Doi = {10.1103/PhysRevD.96.033003},
Issue = {3},
Numpages = {32},
Publisher = {American Physical Society},
Url = {https://link.aps.org/doi/10.1103/PhysRevD.96.033003}
}
@Article{lar_lro4,
Title = {{Benchmarking TPB-coated Light Guides for Liquid Argon
TPC Light Detection Systems}},
Author = {Baptista, B. and Bugel, L. and Chiu, C. and Conrad, J. M.
and Ignarra, C. M. and Jones, B. J. P. and Katori, T. and
Mufson, S.},
Year = {2012},
Archiveprefix = {arXiv},
Eprint = {1210.3793},
Primaryclass = {physics.ins-det},
Slaccitation = {%%CITATION = ARXIV:1210.3793;%%}
}
@Article{sbnd,
Title = {{The Short Baseline Neutrino Oscillation Program at Fermilab}},
Author = {Bass, Matthew},
Journal = {PoS},
Year = {2016},
Pages = {481},
Volume = {ICHEP2016},
Archiveprefix = {arXiv},
Booktitle = {{Proceedings, 38th International Conference on High Energy Physics (ICHEP 2016): Chicago, IL, USA, August 3-10, 2016}},
Eprint = {1702.00990},
Primaryclass = {physics.ins-det},
Slaccitation = {%%CITATION = ARXIV:1702.00990;%%}
}
@Article{breakdown_14,
Title = {{Experimental study of electric breakdowns in liquid argon at centimeter scale}},
Author = {A Blatter and A Ereditato and C -C Hsu and S Janos and I Kreslo and M Luethi and C Rudolf von Rohr and M Schenk and T Strauss and M S Weber and M Zeller},
Journal = {Journal of Instrumentation},
Year = {2014},
Number = {04},
Pages = {P04006},
Volume = {9},
Abstract = {In this paper we present results on measurements of the dielectric strength of liquid argon near its boiling point and cathode-anode distances in the range of 0.1 mm to 40 mm with spherical cathode and plane anode. We show that at such distances the applied electric field at which breakdowns occur is as low as 40 kV/cm. Flash-overs across the ribbed dielectric of the high voltage feed-through are observed for a length of 300 mm starting from a voltage of 55 kV. These results contribute to set reference for the breakdown-free design of ionization detectors, such as Liquid Argon Time Projection Chambers (LAr TPC).},
Url = {http://stacks.iop.org/1748-0221/9/i=04/a=P04006}
}
@Article{Boffard,
Title = {{Electron-impact excitation of argon: Optical emission cross sections in the range of 300-2500 nm}},
Author = {Boffard, John B. and Chiaro, B. and Weber, Tobin and Lin, Chun C.},
Journal = {Atomic Data and Nuclear Data Tables},
Year = {2007},
Month = {Nov},
Number = {6},
Volume = {93},
Abstractnote = {We present measurements of optical emission cross sections for excitation from the ground state of the Ar atom into over 185 excited atomic and ionic levels. Measurements were made at electron energies of 25, 50, and 100 eV, at a gas pressure of 5 mTorr. Due to radiation trapping of resonance levels, many of the cross sections depend on the target pressure. Detailed pressure dependence for over 50 levels is also provided. The energy dependence of the excitation cross sections for over 175 levels in the energy range of 0-250 eV are provided as fitted parameters for a standard analytical function.},
Doi = {10.1016/j.adt.2007.06.004},
Place = {United States}
}
@Article{buzulutskov2,
Title = {{Study of infrared scintillations in gaseous and liquid argon. Part II: light yield and possible applications}},
Author = {A Bondar and A Buzulutskov and A Dolgov and A Grebenuk and S Peleganchuk and V Porosev and L Shekhtman and E Shemyakina and A Sokolov},
Journal = {Journal of Instrumentation},
Year = {2012},
Number = {06},
Pages = {P06014},
Volume = {7},
Abstract = {We present here a comprehensive study of the light yield of primary and secondary scintillations produced in gaseous and liquid Ar in the near infrared (NIR) and visible region, at cryogenic temperatures. The measurements were performed using Geiger-mode avalanche photodiodes (GAPDs) and pulsed X-ray irradiation. The primary scintillation yield of the fast emission component in gaseous Ar was found to be independent of temperature in the range of 87–160 K; it amounted to 17000±3000 photon/MeV in the NIR in the range of 690–1000 nm. In liquid Ar at 87 K, the primary scintillation yield of the fast component was considerably reduced, amounting to 510±90 photon/MeV, in the range of 400–1000 nm. Proportional NIR scintillations (electroluminescence) in gaseous Ar were also observed; their amplification parameter at 160 K was measured to be 13 photons per drifting electron per kV. No proportional scintillations were observed in liquid Ar up to the electric fields of 30 kV/cm. The applications of NIR scintillations in dark matter search and coherent neutrino-nucleus scattering experiments and in ion beam radiotherapy are considered.},
Url = {http://stacks.iop.org/1748-0221/7/i=06/a=P06014}
}
@Article{buzulutskov1,
Title = {{Study of infrared scintillations in gaseous and liquid argon. Part I: methodology and time measurements}},
Author = {A Bondar and A Buzulutskov and A Dolgov and A Grebenuk and E Shemyakina and A Sokolov},
Journal = {Journal of Instrumentation},
Year = {2012},
Number = {06},
Pages = {P06015},
Volume = {7},
Abstract = {A methodology to measure Near Infrared (NIR) scintillations in gaseous and liquid Ar, using Geiger-mode APDs (GAPDs) sensitive in the NIR and pulsed X-ray irradiation, is described. This study has been triggered by the development of Cryogenic Avalanche Detectors (CRADs) with optical readout in the NIR using combined THGEM/GAPD multiplier, which may come to be in demand in coherent neutrino-nucleus scattering and dark matter search experiments. A new approach to measure the NIR scintillation yield at cryogenic temperatures has been developed, namely using GAPDs in single photoelectron counting mode with time resolution. The time structure of NIR scintillations and their light yield were measured both for primary scintillations and that of secondary at moderate electric fields (electroluminescence), in gaseous and liquid Ar.},
Url = {http://stacks.iop.org/1748-0221/7/i=06/a=P06015}
}
@Article{lar_lro6,
Title = {{Demonstration of a lightguide detector for liquid argon TPCs}},
Author = {L. Bugel and J.M. Conrad and C. Ignarra and B.J.P. Jones and T. Katori and T. Smidt and H.-K. Tanaka},
Journal = {Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment},
Year = {2011},
Number = {1},
Pages = {69 - 75},
Volume = {640},
Doi = {10.1016/j.nima.2011.03.003},
ISSN = {0168-9002},
Keywords = {Liquid argon, Light detection},
Url = {http://www.sciencedirect.com/science/article/pii/S0168900211005158}
}
@Article{buzulutskov3,
Title = {{Advances in Cryogenic Avalanche Detectors}},
Author = {A Buzulutskov},
Journal = {Journal of Instrumentation},
Year = {2012},
Number = {02},
Pages = {C02025},
Volume = {7},
Abstract = {Cryogenic Avalanche Detectors (CRADs) are referred to as a new class of noble-gas detectors operated at cryogenic temperatures with electron avalanching performed directly in the detection medium, the latter being in gaseous, liquid or two-phase (liquid-gas) state. Electron avalanching is provided by Micro-Pattern Gas Detector (MPGD) multipliers, in particular GEMs and THGEMs, operated at cryogenic temperatures in dense noble gases. The final goal for this kind of detectors is the development of large-volume detectors of ultimate sensitivity for rare-event experiments and medical applications, such as coherent neutrino-nucleus scattering, direct dark matter search, astrophysical (solar and supernova) neutrino detection experiments and Positron Emission Tomography technique. This review is the first attempt to summarize the results on CRAD performances obtained by different groups. A brief overview of the available CRAD concepts is also given and the most remarkable CRAD physics effects are discussed.},
Url = {http://stacks.iop.org/1748-0221/7/i=02/a=C02025}
}
@Article{imb,
Title = {{Measurement of atmospheric neutrino composition with the IMB-3 detector}},
Author = {Casper, D. and Becker-Szendy, R. and Bratton, C. B. and Cady, D. R. and Claus, R. and Dye, S. T. and Gajewski, W. and Goldhaber, M. and Haines, T. J. and Halverson, P. G. and Jones, T. W. and Kielczewska, D. and Kropp, W. R. and Learned, J. G. and LoSecco, J. M. and McGrew, C. and Matsuno, S. and Matthews, J. and Mudan, M. S. and Price, L. and Reines, F. and Schultz, J. and Sinclair, D. and Sobel, H. W. and Stone, J. L. and Sulak, L. R. and Svoboda, R. and Thornton, G. and van der Velde, J. C.},
Journal = {Phys. Rev. Lett.},
Year = {1991},
Month = {May},
Pages = {2561--2564},
Volume = {66},
Doi = {10.1103/PhysRevLett.66.2561},
Issue = {20},
Numpages = {0},
Publisher = {American Physical Society},
Url = {https://link.aps.org/doi/10.1103/PhysRevLett.66.2561}
}
@Article{lariat,
Title = {{LArIAT: Liquid Argon In A Testbeam}},
Author = {Cavanna, F. and Kordosky, M. and Raaf, J. and Rebel, B.},
Year = {2014},
Archiveprefix = {arXiv},
Collaboration = {LArIAT},
Eprint = {1406.5560},
Primaryclass = {physics.ins-det},
Reportnumber = {FERMILAB-PUB-14-268-E},
Slaccitation = {%%CITATION = ARXIV:1406.5560;%%}
}
@Article{neutron,
Title = {{Possible Existence of a Neutron}},
Author = {Chadwick, J.},
Journal = {Nature},
Year = {1932},
Pages = {312},
Volume = {129},
Doi = {10.1038/129312a0},
Slaccitation = {%%CITATION = NATUA,129,312;%%}
}
@Article{contBeta,
Title = {{The intensity distribution in the magnetic spectrum of beta particles from radium (B + C)}},
Author = {Chadwick, J.},
Journal = {Verh. Phys. Gesell.},
Year = {1914},
Pages = {383-391},
Volume = {16},
Slaccitation = {%%CITATION = VDPEA,16,383;%%}
}
@Article{mwpc,
Title = {{The use of multiwire proportional counters to select and localize charged particles}},
Author = {G. Charpak and R. Bouclier and T. Bressani and J. Favier and Č. Zupančič},
Journal = {Nuclear Instruments and Methods},
Year = {1968},
Number = {3},
Pages = {262 - 268},
Volume = {62},
Doi = {10.1016/0029-554X(68)90371-6},
ISSN = {0029-554X},
Url = {http://www.sciencedirect.com/science/article/pii/0029554X68903716}
}
@Article{lngDet,
Title = {{Liquid noble gas detectors for low energy particle physics}},
Author = {V Chepel and H Araújo},
Journal = {Journal of Instrumentation},
Year = {2013},
Number = {04},
Pages = {R04001},
Volume = {8},
Abstract = {We review the current status of liquid noble gas radiation detectors with energy threshold in the keV range, which are of interest for direct dark matter searches, measurement of coherent neutrino scattering and other low energy particle physics experiments. Emphasis is given to the operation principles and the most important instrumentation aspects of these detectors, principally of those operated in the double-phase mode. Recent technological advances and relevant developments in photon detection and charge readout are discussed in the context of their applicability to those experiments.},
Owner = {damian},
Timestamp = {2017.10.31},
Url = {http://stacks.iop.org/1748-0221/8/i=04/a=R04001}
}
@Article{homestake98,
Title = {{Measurement of the Solar Electron Neutrino Flux with the Homestake Chlorine Detector}},
Author = {Bruce T. Cleveland and Timothy Daily and Raymond Davis, Jr. and James R. Distel and Kenneth Lande and C. K. Lee and Paul S. Wildenhain and Jack Ullman},
Journal = {The Astrophysical Journal},
Year = {1998},
Number = {1},
Pages = {505},
Volume = {496},
Abstract = {The Homestake Solar Neutrino Detector, based on the inverse beta-decay reaction ν e + 37 Cl → 37 Ar + e - , has been measuring the flux of solar neutrinos since 1970. The experiment has operated in a stable manner throughout this time period. All aspects of this detector are reviewed, with particular emphasis on the determination of the extraction and counting efficiencies, the key experimental parameters that are necessary to convert the measured 37 Ar count rate to the solar neutrino production rate. A thorough consideration is also given to the systematics of the detector, including the measurement of the extraction and counting efficiencies and the nonsolar production of 37 Ar. The combined result of 108 extractions is a solar neutrino-induced 37 Ar production rate of 2.56 ± 0.l6 (statistical) ± 0.16 (systematic) SNU.},
Owner = {damian},
Timestamp = {2017.08.10},
Url = {http://stacks.iop.org/0004-637X/496/i=1/a=505}
}
@Article{numu,
Title = {{Observation of High-Energy Neutrino Reactions and the Existence of Two Kinds of Neutrinos}},
Author = {Danby, G. and Gaillard, J-M. and Goulianos, K. and Lederman, L. M. and Mistry, N. and Schwartz, M. and Steinberger, J.},
Journal = {Phys. Rev. Lett.},
Year = {1962},
Month = {Jul},
Pages = {36--44},
Volume = {9},
Doi = {10.1103/PhysRevLett.9.36},
Issue = {1},
Numpages = {0},
Publisher = {American Physical Society},
Url = {https://link.aps.org/doi/10.1103/PhysRevLett.9.36}
}
@Article{homestake68,
Title = {{Search for Neutrinos from the Sun}},
Author = {Davis, Raymond and Harmer, Don S. and Hoffman, Kenneth C.},
Journal = {Phys. Rev. Lett.},
Year = {1968},
Month = {May},
Pages = {1205--1209},
Volume = {20},
Doi = {10.1103/PhysRevLett.20.1205},
Issue = {21},
Numpages = {0},
Publisher = {American Physical Society},
Url = {https://link.aps.org/doi/10.1103/PhysRevLett.20.1205}
}
@InProceedings{dan_larpix_duneCM,
Title = {{LArTPC - Pixel R/O electronics}},
Author = {Dwyer, D.},
Booktitle = {DUNE Collaboration Meeting},
Year = {2018},
Month = {2},
Owner = {damian},
Timestamp = {2018.03.05},
Url = {https://indico.fnal.gov/event/14581/session/5/contribution/85}
}
@InProceedings{dan_larpix_arcCM,
Title = {{Front End Electronics (LArPix)}},
Author = {Dwyer, D.},
Booktitle = {ArgonCube Collaboration Meeting},
Year = {2017},
Month = {10},
Owner = {damian},
Timestamp = {2018.03.05},
Url = {https://indico.cern.ch/event/665009/contributions/2734411}
}
@Misc{danLarpix,
Author = {Dwyer, D. A.},
HowPublished = {Personal Memo},
Month = {2},
Note = {Lawrence Berkeley National Laboratory, Berkeley, CA, USA},
Year = {2018},
Owner = {damian},
Timestamp = {2018.01.12}
}
@Article{AT_larasic,
Title = {{Performance of cryogenic charge readout electronics with the ARGONTUBE LAr TPC}},
Author = {A. Ereditato and D. Goeldi and S. Janos and I. Kreslo and M. Luethi and C. Rudolf von Rohr and M. Schenk and T. Strauss and M.S. Weber and M. Zeller},
Journal = {Journal of Instrumentation},
Year = {2014},
Number = {11},
Pages = {P11022},
Volume = {9},
Abstract = {ARGONTUBE is a liquid argon time projection chamber (TPC) with an electron drift length of up to 5 m equipped with cryogenic charge-sensitive preamplifiers. In this work, we present results on its performance, including a comparison of the new cryogenic charge-sensitive preamplifiers with the previously used room-temperature-operated charge preamplifiers.},
Url = {http://stacks.iop.org/1748-0221/9/i=11/a=P11022}
}
@Article{AT_field,
Title = {{Measurement of the drift field in the ARGONTUBE LAr TPC with 266 nm pulsed laser beams}},
Author = {A. Ereditato and D. Goeldi and S. Janos and I. Kreslo and M. Luethi and C. Rudolf von Rohr and M. Schenk and T. Strauss and M. S.
Weber and M. Zeller},
Journal = {Journal of Instrumentation},
Year = {2014},
Number = {11},
Pages = {P11010},
Volume = {9},
Abstract = {ARGONTUBE is a liquid argon time projection chamber (LAr TPC) with a drift field generated in-situ by a Greinacher voltage multiplier circuit. We present results on the measurement of the drift-field distribution inside ARGONTUBE using straight ionization tracks generated by an intense UV laser beam. Our analysis is based on a simplified model of the charging of a multi-stage Greinacher circuit to describe the voltages on the field cage rings.},
Url = {http://stacks.iop.org/1748-0221/9/i=11/a=P11010}
}
@Article{hardon,
Title = {{Calorimetry in High-Energy Physics}},
Author = {C W Fabjan and T Ludlam},
Journal = {Annual Review of Nuclear and Particle Science},
Year = {1982},
Number = {1},
Pages = {335-389},
Volume = {32},
Doi = {10.1146/annurev.ns.32.120182.002003},
Eprint = { https://doi.org/10.1146/annurev.ns.32.120182.002003
},
Url = { https://doi.org/10.1146/annurev.ns.32.120182.002003
}
}
@Article{betaDecay,
Title = {{Versuch einer Theorie der $\beta$-Strahlen. I}},
Author = {Fermi, E.},
Journal = {Zeitschrift f{\"u}r Physik},
Year = {1934},
Month = {Mar},
Number = {3},
Pages = {161--177},
Volume = {88},
Abstract = {Eine quantitative Theorie des $\beta$-Zerfalls wird vorgeschlagen, in welcher man die Existenz des Neutrinos annimmt, und die Emission der Elektronen und Neutrinos aus einem Kern beim $\beta$-Zerfall mit einer {\"a}hnlichen Methode behandelt, wie die Emission eines Lichtquants aus einem angeregten Atom in der Strahlungstheorie. Formeln f{\"u}r die Lebensdauer und f{\"u}r die Form des emittierten kontinuierlichen $\beta$- Strahlenspektrums werden abgeleitet und mit der Erfahrung verglichen.},
Day = {01},
Doi = {10.1007/BF01351864},
ISSN = {0044-3328},
Owner = {damian},
Timestamp = {2017.08.08},
Url = {https://doi.org/10.1007/BF01351864}
}
@Misc{lauraNDRates,
Author = {Fields, L.},
HowPublished = {Personal Memo},
Month = {1},
Note = {Fermi National Accelerator Laboratory, Batavia, IL, USA},
Year = {2018},
Owner = {damian},
Timestamp = {2018.01.12}
}
@Article{Foerstel,
Title = {{Energy band dispersion in photoemission spectra of argon clusters}},
Author = {Marko Förstel and Melanie Mucke and Tiberiu Arion and Toralf Lischke and Silko Barth and Volker Ulrich and Gunnar Öhrwall and Olle Björneholm and Uwe Hergenhahn and Alex M. Bradshaw},
Journal = {Journal of Electron Spectroscopy and Related Phenomena },
Year = {2011},
Note = {Advances in Vacuum Ultraviolet and X-ray PhysicsThe 37th International Conference on Vacuum Ultraviolet and X-ray Physics (VUVX2010) },
Number = {3–6},
Pages = {107 - 112},
Volume = {184},
Doi = {10.1016/j.elspec.2010.09.001},
ISSN = {0368-2048},
Keywords = {Cluster},
Url = {http://www.sciencedirect.com/science/article/pii/S0368204810001969}
}
@Article{tpb,
Title = {{VUV-Vis optical characterization of Tetraphenyl-butadiene films on glass and specular reflector substrates from room to liquid Argon temperature}},
Author = {R Francini and R M Montereali and E Nichelatti and M A Vincenti and N Canci and E Segreto and F Cavanna and F Di Pompeo and F Carbonara and G Fiorillo and F Perfetto},
Journal = {Journal of Instrumentation},
Year = {2013},
Number = {09},
Pages = {P09006},
Volume = {8},
Abstract = {The use of efficient wavelength-shifters from the vacuum-ultraviolet to the photo-sensor's range of sensitivity is a key feature in detectors for Dark Matter search and neutrino physics based on liquid argon scintillation detection. Thin film of Tetraphenyl-butadiene (TPB) deposited onto the surface delimiting the active volume of the detector and/or onto the photosensor optical window is the most common solution in current and planned experiments. Detector design and response can be evaluated and correctly simulated only when the properties of the optical system in use (TPB film + substrate) are fully understood. Characterization of the optical system requires specific, sometimes sophisticated optical methodologies. In this paper the main features of TPB coatings on different, commonly used substrates is reported, as a result of two independent campaigns of measurements at the specialized optical metrology labs of ENEA and University of Tor Vergata. Measured features include TPB emission spectra with lineshape and relative intensity variation recorded as a function of the film thickness and for the first time down to LAr temperature, as well as optical reflectance and transmittance spectra of the TPB coated substrates in the wavelength range of the TPB emission.},
Url = {http://stacks.iop.org/1748-0221/8/i=09/a=P09006}
}
@Article{superKAtmos1,
Title = {{Measurement of a small atmospheric $\nu_{\mu}/\nu_e$ ratio}},
Author = {Y. Fukuda and T. Hayakawa and E. Ichihara and K. Inoue and K. Ishihara and H. Ishino and Y. Itow and T. Kajita and J. Kameda and S. Kasuga and K. Kobayashi and Y. Kobayashi and Y. Koshio and K. Martens and M. Miura and M. Nakahata and S. Nakayama and A. Okada and M. Oketa and K. Okumura and M. Ota and N. Sakurai and M. Shiozawa and Y. Suzuki and Y. Takeuchi and Y. Totsuka and S. Yamada and M. Earl and A. Habig and J.T. Hong and E. Kearns and S.B. Kim and M. Masuzawa and M.D. Messier and K. Scholberg and J.L. Stone and L.R. Sulak and C.W. Walter and M. Goldhaber and T. Barszczak and W. Gajewski and P.G. Halverson and J. Hsu and W.R. Kropp and L.R. Price and F. Reines and H.W. Sobel and M.R. Vagins and K.S. Ganezer and W.E. Keig and R.W. Ellsworth and S. Tasaka and J.W. Flanagan and A. Kibayashi and J.G. Learned and S. Matsuno and V. Stenger and D. Takemori and T. Ishii and J. Kanzaki and T. Kobayashi and K. Nakamura and K. Nishikawa and Y. Oyama and A. Sakai and M. Sakuda and O. Sasaki and S. Echigo and M. Kohama and A.T. Suzuki and T.J. Haines and E. Blaufuss and R. Sanford and R. Svoboda and M.L. Chen and Z. Conner and J.A. Goodman and G.W. Sullivan and M. Mori and F. Goebel and J. Hill and C.K. Jung and C. Mauger and C. McGrew and E. Sharkey and B. Viren and C. Yanagisawa and W. Doki and T. Ishizuka and Y. Kitaguchi and H. Koga and K. Miyano and H. Okazawa and C. Saji and M. Takahata and A. Kusano and Y. Nagashima and M. Takita and T. Yamaguchi and M. Yoshida and M. Etoh and K. Fujita and A. Hasegawa and T. Hasegawa and S. Hatakeyama and T. Iwamoto and T. Kinebuchi and M. Koga and T. Maruyama and H. Ogawa and M. Saito and A. Suzuki and F. Tsushima and M. Koshiba and M. Nemoto and K. Nishijima and T. Futagami and Y. Hayato and Y. Kanaya and K. Kaneyuki and Y. Watanabe and D. Kielczewska and R. Doyle and J. George and A. Stachyra and L. Wai and J. Wilkes and K. Young},
Journal = {Physics Letters B},
Year = {1998},
Number = {1},
Pages = {9 - 18},
Volume = {433},
Doi = {10.1016/S0370-2693(98)00476-6},
ISSN = {0370-2693},
Owner = {damian},
Timestamp = {2017.08.21},
Url = {http://www.sciencedirect.com/science/article/pii/S0370269398004766}
}