Constraint on the Matter-Antimatter Symmetry-Violating Phase in Neutrino Oscillations

ArXiv 1910.03887 (2019)

Authors:

K Abe, R Akutsu, A Ali, C Alt, C Andreopoulos, L Anthony, M Antonova, S Aoki, A Ariga, Y Asada, Y Ashida, ET Atkin, Y Awataguchi, S Ban, M Barbi, GJ Barker, G Barr, C Barry, M Batkiewicz-Kwasniak, A Beloshapkin, F Bench, V Berardi, S Berkman, L Berns, S Bhadra, S Bienstock, A Blondel, S Bolognesi, B Bourguille, SB Boyd, D Brailsford, A Bravar, D Bravo Bergu帽o, C Bronner, A Bubak, M Buizza Avanzini, J Calcutt, T Campbell, S Cao, SL Cartwright, MG Catanesi, A Cervera, A Chappell, C Checchia, D Cherdack, N Chikuma, G Christodoulou, J Coleman, G Collazuol, L Cook, D Coplowe, A Cudd, A Dabrowska, G De Rosa, T Dealtry, PF Denner, SR Dennis, C Densham, F Di Lodovico, N Dokania, S Dolan, O Drapier, J Dumarchez, P Dunne, L Eklund, S Emery-Schrenk, A Ereditato, P Fernandez, T Feusels, AJ Finch, GA Fiorentini, G Fiorillo, C Francois, M Friend, Y Fujii, R Fujita, D Fukuda, R Fukuda, Y Fukuda, K Gameil, C Giganti, T Golan, M Gonin, A Gorin, M Guigue, DR Hadley, JT Haigh, P Hamacher-Baumann, M Hartz, T Hasegawa, NC Hastings, T Hayashino, Y Hayato, A Hiramoto, M Hogan, J Holeczek, NT Hong Van, F Iacob, AK Ichikawa, M Ikeda, T Ishida, T Ishii, M Ishitsuka, K Iwamoto, A Izmaylov, B Jamieson, SJ Jenkins, C Jes煤s-Valls, M Jiang, S Johnson, P Jonsson, CK Jung, M Kabirnezhad, AC Kaboth, T Kajita, H Kakuno, J Kameda, D Karlen, SP Kasetti, Y Kataoka, T Katori, Y Kato, E Kearns, M Khabibullin, A Khotjantsev, T Kikawa, H Kim, J Kim, S King, J Kisiel, A Knight, A Knox, T Kobayashi, L Koch, T Koga, A Konaka, LL Kormos, Y Koshio, K Kowalik, H Kubo, Y Kudenko, N Kukita, S Kuribayashi, R Kurjata, T Kutter, M Kuze, L Labarga, J Lagoda, M Lamoureux, M Laveder, M Lawe, M Licciardi, T Lindner, RP Litchfield, SL Liu, X Li, A Longhin, L Ludovici, X Lu, T Lux, LN Machado, L Magaletti, K Mahn, M Malek, S Manly, L Maret, AD Marino, JF Martin, T Maruyama, T Matsubara, K Matsushita, V Matveev, K Mavrokoridis, E Mazzucato, M McCarthy, N McCauley, KS McFarland, C McGrew, A Mefodiev, C Metelko, M Mezzetto, A Minamino, O Mineev, S Mine, M Miura, L Molina Bueno, S Moriyama, J Morrison, Th A Mueller, L Munteanu, S Murphy, Y Nagai, T Nakadaira, M Nakahata, Y Nakajima, A Nakamura, KG Nakamura, K Nakamura, S Nakayama, T Nakaya, K Nakayoshi, C Nantais, TV Ngoc, K Niewczas, K Nishikawa, Y Nishimura, TS Nonnenmacher, F Nova, P Novella, J Nowak, JC Nugent, HM O'Keeffe, L O'Sullivan, T Odagawa, K Okumura, T Okusawa, SM Oser, RA Owen, Y Oyama, V Palladino, JL Palomino, V Paolone, WC Parker, P Paudyal, M Pavin, D Payne, GC Penn, L Pickering, C Pidcott, G Pintaudi, ES Pinzon Guerra, C Pistillo, B Popov, K Porwit, M Posiadala-Zezula, A Pritchard, B Quilain, T Radermacher, E Radicioni, B Radics, PN Ratoff, E Reinherz-Aronis, C Riccio, E Rondio, S Roth, A Rubbia, AC Ruggeri, A Rychter, K Sakashita, F S谩nchez, CM Schloesser, K Scholberg, J Schwehr, M Scott, Y Seiya, T Sekiguchi, H Sekiya, D Sgalaberna, R Shah, A Shaikhiev, F Shaker, A Shaykina, M Shiozawa, W Shorrock, A Shvartsman, A Smirnov, M Smy, JT Sobczyk, H Sobel, FJP Soler, Y Sonoda, J Steinmann, S Suvorov, A Suzuki, SY Suzuki, Y Suzuki, AA Sztuc, M Tada, M Tajima, A Takeda, Y Takeuchi, HK Tanaka, HA Tanaka, S Tanaka, LF Thompson, W Toki, C Touramanis, KM Tsui, T Tsukamoto, M Tzanov, Y Uchida, W Uno, M Vagins, S Valder, Z Vallari, D Vargas, G Vasseur, C Vilela, WGS Vinning, T Vladisavljevic, VV Volkov, T Wachala, J Walker, JG Walsh, Y Wang, D Wark, MO Wascko, A Weber, R Wendell, MJ Wilking, C Wilkinson, JR Wilson, RJ Wilson, K Wood, C Wret, Y Yamada, K Yamamoto, C Yanagisawa, G Yang, T Yano, K Yasutome, S Yen, N Yershov, M Yokoyama, T Yoshida, M Yu, A Zalewska, J Zalipska, K Zaremba, G Zarnecki, M Ziembicki, ED Zimmerman, M Zito, S Zsoldos, A Zykova

Abstract:

The current laws of physics do not explain the observed imbalance of matter and antimatter in the universe. Sakharov proposed that an explanation would require the violation of CP symmetry between matter and antimatter. The only CP violation observed so far is in the weak interactions of quarks, and it is too small to explain the matter-antimatter imbalance of the universe. It has been shown that CP violation in the lepton sector could generate the matter-antimatter disparity through the process called leptogenesis. The quantum mixing of neutrinos, the neutral leptons in the Standard Model, provides a potential source of CP violation through a complex phase dCP, which may have consequences for theoretical models of leptogenesis. This CP violation can be measured in muon neutrino to electron neutrino oscillations and the corresponding antineutrino oscillations, which are experimentally accessible with accelerator-produced beams as established by the T2K experiment. Until now, the value of dCP has not been significantly constrained by neutrino oscillation experiments. Here the T2K collaboration reports a measurement that favors large enhancement of the neutrino oscillation probability, excluding values of dCP which result in a large enhancement of the observed anti-neutrino oscillation probability at three standard deviations (3 sigma). The 3 sigma confidence level interval for dCP, which is cyclic and repeats every 2pi, is [-3.41,-0.03] for the so-called normal mass ordering, and [-2.54,-0.32] for the inverted mass ordering. Our results show an indication of CP violation in the lepton sector. Herein we establish methods for sensitive searches for matter-antimatter asymmetry in neutrino oscillations using accelerator-produced neutrino beams. Future measurements with larger data samples will determine whether the leptonic CP violation is larger than the quark sector CP violation.

Search for the production of Higgs-portal scalar bosons in the NuMI beam using the MicroBooNE detector

Physical Review D American Physical Society (APS) 113:7 (2026) 075007

Authors:

P Abratenko, D Andrade Aldana, L Arellano, J Asaadi, A Ashkenazi, S Balasubramanian, B Baller, A Barnard, G Barr, D Barrow, J Barrow, V Basque, J Bateman, O Benevides Rodrigues, S Berkman, A Bhanderi, A Bhat, M Bhattacharya, M Bishai, A Blake, B Bogart, T Bolton, MB Brunetti, L Camilleri, D Caratelli, F Cavanna, G Cerati, A Chappell, Y Chen, JM Conrad, M Convery, L Cooper-Troendle, JI Crespo-Anad贸n, R Cross, M Del Tutto, SR Dennis, P Detje, R Diurba, Z Djurcic, K Duffy, S Dytman, B Eberly, P Englezos, A Ereditato, JJ Evans, C Fang, W Foreman, BT Fleming, D Franco, AP Furmanski, F Gao, D Garcia-Gamez, S Gardiner, G Ge, S Gollapinni, E Gramellini, P Green, H Greenlee, L Gu, W Gu, R Guenette, P Guzowski, L Hagaman, MD Handley, O Hen, C Hilgenberg, GA Horton-Smith, B Irwin, MS Ismail, C James, X Ji, JH Jo, RA Johnson, Y-J Jwa, D Kalra, G Karagiorgi, W Ketchum, M Kirby, T Kobilarcik, N Lane, J-Y Li, Y Li, K Lin, BR Littlejohn, L Liu, WC Louis, X Luo, T Mahmud, C Mariani, D Marsden, J Marshall, N Martinez, DA Martinez Caicedo, S Martynenko, A Mastbaum, I Mawby, N McConkey, L Mellet, J Mendez, J Micallef, A Mogan, T Mohayai, M Mooney, AF Moor, CD Moore, L Mora Lepin, MM Moudgalya, S Mulleriababu, D Naples, A Navrer-Agasson, N Nayak, M Nebot-Guinot, C Nguyen, J Nowak, N Oza, O Palamara, N Pallat, V Paolone, A Papadopoulou, V Papavassiliou, HB Parkinson, SF Pate, N Patel, Z Pavlovic, E Piasetzky, K Pletcher, I Pophale, X Qian, JL Raaf, V Radeka, A Rafique, M Reggiani-Guzzo, L Rochester, J Rodriguez Rondon, M Rosenberg, M Ross-Lonergan, I Safa, DW Schmitz, A Schukraft, W Seligman, MH Shaevitz, R Sharankova, J Shi, EL Snider, M Soderberg, S S枚ldner-Rembold, J Spitz, M Stancari, J St. John, T Strauss, AM Szelc, N Taniuchi, K Terao, C Thorpe, D Torbunov, D Totani, M Toups, A Trettin, Y-T Tsai, J Tyler, MA Uchida, T Usher, B Viren, J Wang, M Weber, H Wei, AJ White, S Wolbers, T Wongjirad, M Wospakrik, K Wresilo, W Wu, E Yandel, T Yang, LE Yates, HW Yu, GP Zeller, J Zennamo, C Zhang

Abstract:

We present the strongest experimental limits to date on the mixing angle, , with which a new scalar particle, S , mixes with the Higgs field in the mass range 110 MeV < m S < 155 MeV . This result uses the MicroBooNE liquid argon time projection chamber to search for decays of these Higgs-portal scalar particles through the S e + e channel with the decays of kaons in the NuMI neutrino beam acting as the source of the scalar particles. The analysis uses an exposure of 2.01 10 21 protons on target of NuMI beam data including periods when the beam focusing system was configured to focus positively charged hadrons and separate periods when negatively charged hadrons were focused. The analysis searches for scalar particles produced from kaons decaying in flight in the beam鈥檚 decay volume and at rest in the target and absorber. At m S = 125 MeV ( m S = 150 MeV ) we set a limit of < 3.19 10 4 ( < 2.79 10 4 ) at the 95%聽confidence level.

First Search for Dark Sector e+e- Explanations of the MiniBooNE Anomaly at MicroBooNE

Physical Review Letters American Physical Society (APS) 136:12 (2026) 121804

Authors:

AM Abdullahi, P Abratenko, D Andrade Aldana, L Arellano, J Asaadi, A Ashkenazi, S Balasubramanian, B Baller, A Barnard, G Barr, D Barrow, J Barrow, V Basque, J Bateman, O Benevides Rodrigues, S Berkman, A Bhat, M Bhattacharya, M Bishai, A Blake, B Bogart, T Bolton, MB Brunetti, L Camilleri, D Caratelli, F Cavanna, G Cerati, A Chappell, Y Chen, JM Conrad, M Convery, L Cooper-Troendle, JI Crespo-Anad贸n, R Cross, M Del Tutto, SR Dennis, P Detje, R Diurba, Z Djurcic, K Duffy, S Dytman, B Eberly, P Englezos, A Ereditato, JJ Evans, C Fang, W Foreman, BT Fleming, D Franco, AP Furmanski, F Gao, D Garcia-Gamez, S Gardiner, G Ge, S Gollapinni, E Gramellini, P Green, H Greenlee, L Gu, W Gu, R Guenette, P Guzowski, L Hagaman, MD Handley, O Hen, C Hilgenberg, J Hoefken Zink, GA Horton-Smith, M Hostert, A Hussain, B Irwin, MS Ismail, C James, X Ji, JH Jo, RA Johnson, D Kalra, G Karagiorgi, W Ketchum, M Kirby, T Kobilarcik, N Lane, J-Y Li, Y Li, K Lin, BR Littlejohn, L Liu, WC Louis, X Luo, T Mahmud, N Majeed, C Mariani, J Marshall, N Martinez, DA Martinez Caicedo, S Martynenko, D Massaro, A Mastbaum, I Mawby, N McConkey, L Mellet, J Mendez, J Micallef, A Mogan, T Mohayai, M Mooney, AF Moor, CD Moore, L Mora Lepin, MM Moudgalya, S Mulleriababu, D Naples, A Navrer-Agasson, N Nayak, M Nebot-Guinot, C Nguyen, J Nowak, N Oza, O Palamara, N Pallat, V Paolone, A Papadopoulou, V Papavassiliou, S Pascoli, HB Parkinson, SF Pate, N Patel, Z Pavlovic, E Piasetzky, K Pletcher, I Pophale, X Qian, JL Raaf, V Radeka, A Rafique, M Reggiani-Guzzo, J Rodriguez Rondon, M Rosenberg, M Ross-Lonergan, I Safa, DW Schmitz, A Schukraft, W Seligman, MH Shaevitz, R Sharankova, J Shi, EL Snider, M Soderberg, S S枚ldner-Rembold, J Spitz, M Stancari, J St. John, T Strauss, AM Szelc, N Taniuchi, K Terao, C Thorpe, D Torbunov, D Totani, M Toups, A Trettin, Y-T Tsai, J Tyler, MA Uchida, T Usher, B Viren, J Wang, M Weber, H Wei, AJ White, S Wolbers, T Wongjirad, K Wresilo, W Wu, E Yandel, T Yang, LE Yates, HW Yu, GP Zeller, J Zennamo, C Zhang

Abstract:

We present MicroBooNE鈥檚 first search for dark sector e + e explanations of the long-standing MiniBooNE anomaly. The MiniBooNE anomaly has garnered significant attention over the past 20聽years including previous MicroBooNE investigations into both anomalous electron and photon excesses, but its origin still remains unclear. In this Letter, we provide the first direct test of dark sector models in which dark neutrinos, produced through neutrino-induced scattering, decay into missing energy and visible e + e pairs comprising the MiniBooNE anomaly. Many such models have recently gained traction as a viable solution to the anomaly while evading past bounds. Using an exposure of 6.87 10 20 protons-on-target in the Booster Neutrino Beam, we implement a selection targeting forward-going, coherently produced e + e events. After unblinding, we observe 95 events, which we compare with the constrained background-only prediction of 69.7 17.3 . This analysis sets the world鈥檚 first direct limits on these dark sector models and, at the 95% confidence level, excludes the entirety of the single dark neutrino and majority of the dual dark neutrino, parameter space that is viable as a solution to the MiniBooNE anomaly.

Operation of a Modular 3D-Pixelated Liquid Argon Time-Projection Chamber in a Neutrino Beam

Instruments MDPI 10:1 (2026) 18

Authors:

S Abbaslu, A Abed Abud, R Acciarri, LP Accorsi, MA Acero, MR Adames, G Adamov, M Adamowski, C Adriano, F Akbar, F Alemanno, NS Alex, K Allison, M Alrashed, A Alton, R Alvarez, T Alves, A Aman, H Amar, P Amedo, J Anderson, DA Andrade, C Andreopoulos, M Andreotti, MP Andrews, F Andrianala, S Andringa, F Anjarazafy, S Ansarifard, D Antic, M Antoniassi, A Aranda-Fernandez, L Arellano, E Arrieta Diaz, MA Arroyave, M Arteropons, J Asaadi, M Ascencio, A Ashkenazi, D Asner, L Asquith, E Atkin, D Auguste, A Aurisano, V Aushev, D Autiero, D 脕vila G贸mez, MB Azam, F Azfar, A Back, JJ Back, Y Bae, I Bagaturia, L Bagby, D Baigarashev, S Balasubramanian, A Balboni, P Baldi, W Baldini, J Baldonedo, B Baller, B Bambah, F Barao, D Barbu, G Barenboim, P B虄arham Alz谩s, GJ Barker, W Barkhouse, G Barr, A Barros, N Barros, D Barrow, JL Barrow, A Basharina-Freshville, A Bashyal, V Basque, M Bassani, D Basu, C Batchelor, L Bathe-Peters, JBR Battat, F Battisti, J Bautista, F Bay, JLL Bazo Alba, JF Beacom, E Bechetoille, B Behera, E Belchior, B Bell, G Bell, L Bellantoni, G Bellettini, V Bellini, O Beltramello, A Belyaev, C Benitez Montiel, D Benjamin, F Bento Neves, J Berger, S Berkman, J Bermudez, J Bernal, P Bernardini, A Bersani, E Bertholet, E Bertolini, S Bertolucci, M Betancourt, A Betancur Rodr铆guez, Y Bezawada, AT Bezerra, A Bhat, V Bhatnagar, M Bhattacharjee, S Bhattacharjee, M Bhattacharya, S Bhuller, B Bhuyan, S Biagi, J Bian, K Biery, B Bilki, M Bishai, A Blake, FD Blaszczyk, GC Blazey, E Blucher, B Bogart, J Boissevain, S Bolognesi, T Bolton, L Bomben, M Bonesini, C Bonilla-Diaz, A Booth, F Boran, R Borges Merlo, N Bostan, G Botogoske, B Bottino, R Bouet, J Boza, J Bracinik, B Brahma, D Brailsford, F Bramati, A Branca, A Brandt, J Bremer, SJ Brice, V Brio, C Brizzolari, C Bromberg, J Brooke, A Bross, G Brunetti, MB Brunetti, N Buchanan, H Budd, J Buergi, A Bundock, D Burgardt, S Butchart, G Caceres V., R Calabrese, R Calabrese, J Calcutt, L Calivers, E Calvo, A Caminata, AF Camino, W Campanelli, A Campani, A Campos Benitez, N Canci, J Cap贸, I Caracas, D Caratelli, D Carber, JM Carceller, G Carini, B Carlus, MF Carneiro, P Carniti, I Caro Terrazas, H Carranza, N Carrara, L Carroll, T Carroll, A Carter, E Casarejos, D Casazza, JF Casta帽o Forero, FA Casta帽o, C Castromonte, E Catano-Mur, C Cattadori, F Cavalier, F Cavanna, S Centro, G Cerati, C Cerna, A Cervelli, A Cervera Villanueva, J Chakrani, M Chalifour, A Chappell, A Chatterjee, B Chauhan, C Chavez Barajas, H Chen, M Chen, WC Chen, Y Chen, Z Chen, D Cherdack, SS Chhibra, C Chi, F Chiapponi, R Chirco, N Chitirasreemadam, K Cho, S Choate, G Choi, D Chokheli, PS Chong, B Chowdhury, D Christian, M Chung, E Church, MF Cicala, M Cicerchia, V Cicero, R Ciolini, P Clarke, G Cline, AG Cocco, JAB Coelho, A Cohen, J Collazo, J Collot, H Combs, JM Conrad, L Conti, T Contreras, M Convery, K Conway, S Copello, P Cova, C Cox, L Cremonesi, JI Crespo-Anad贸n, M Crisler, E Cristaldo, J Crnkovic, G Crone, R Cross, A Cudd, C Cuesta, Y Cui, F Curciarello, D Cussans, J Dai, O Dalager, W Dallaway, R D鈥橝mico, H da Motta, ZA Dar, R Darby, L Da Silva Peres, Q David, GS Davies, S Davini, J Dawson, R De Aguiar, P Debbins, MP Decowski, A de Gouv锚a, PC De Holanda, P De Jong, P Del Amo Sanchez, G De Lauretis, A Delbart, M Delgado, A Dell鈥橝cqua, G Delle Monache, N Delmonte, P De Lurgio, R Demario, G De Matteis, JRT de Mello Neto, APA De Mendonca, DM DeMuth, S Dennis, C Densham, P Denton, GW Deptuch, A De Roeck, V De Romeri, JP Detje, J Devine, K Dhanmeher, R Dharmapalan, M Dias, A Diaz, JS D铆az, F D铆az, F Di Capua, A Di Domenico, S Di Domizio, S Di Falco, L Di Giulio, P Ding, L Di Noto, E Diociaiuti, G Di Sciascio, V Di Silvestre, C Distefano, R Di Stefano, R Diurba, M Diwan, Z Djurcic, S Dolan, M Dolce, MJ Dolinski, D Domenici, S Dominguez, S Donati, S Doran, D Douglas, TA Doyle, F Drielsma, D Duchesneau, K Duffy, K Dugas, P Dunne, B Dutta, DA Dwyer, AS Dyshkant, S Dytman, M Eads, A Earle, S Edayath, D Edmunds, J Eisch, W Emark, P Englezos, A Ereditato, T Erjavec, CO Escobar, JJ Evans, E Ewart, AC Ezeribe, K Fahey, A Falcone, M Fani鈥, D Faragher, C Farnese, Y Farzan, J Felix, Y Feng, M Ferreira da Silva, G Ferry, E Fialova, L Fields, P Filip, A Filkins, F Filthaut, G Fiorillo, M Fiorini, S Fogarty, W Foreman, J Fowler, J Franc, K Francis, D Franco, J Franklin, J Freeman, J Fried, A Friedland, M Fucci, S Fuess, IK Furic, K Furman, AP Furmanski, R Gaba, A Gabrielli, AM Gago, F Galizzi, H Gallagher, M Galli, N Gallice, V Galymov, E Gamberini, T Gamble, R Gandhi, S Ganguly, F Gao, S Gao, D Garcia-Gamez, M脕 Garc铆a-Peris, S Gardiner, A Gartman, A Gauch, P Gauzzi, S Gazzana, G Ge, N Geffroy, B Gelli, S Gent, L Gerlach, A Ghosh, T Giammaria, D Gibin, I Gil-Botella, A Gioiosa, S Giovannella, AK Giri, V Giusti, D Gnani, O Gogota, S Gollapinni, K Gollwitzer, RA Gomes, LS Gomez Fajardo, D Gonzalez-Diaz, J Gonzalez-Santome, MC Goodman, S Goswami, C Gotti, J Goudeau, C Grace, E Gramellini, R Gran, P Granger, C Grant, DR Gratieri, G Grauso, P Green, S Greenberg, WC Griffith, K Grzelak, L Gu, W Gu, V Guarino, M Guarise, R Guenette, M Guerzoni, D Guffanti, A Guglielmi, FY Guo, A Gupta, V Gupta, G Gurung, D Gutierrez, P Guzowski, MM Guzzo, S Gwon, A Habig, L Haegel, R Hafeji, L Hagaman, A Hahn, J Hakenm眉ller, T Hamernik, P Hamilton, J Hancock, M Handley, F Happacher, B Harris, DA Harris, L Harris, AL Hart, J Hartnell, T Hartnett, J Harton, T Hasegawa, CM Hasnip, R Hatcher, S Hawkins, J Hays, M He, A Heavey, KM Heeger, A Heindel, J Heise, P Hellmuth, L Henderson, K Herner, V Hewes, A Higuera, A Himmel, E Hinkle, LR Hirsch, J Ho, J Hoefken Zink, J Hoff, A Holin, T Holvey, C Hong, S Horiuchi, GA Horton-Smith, R Hosokawa, T Houdy, B Howard, R Howell, I Hristova, MS Hronek, H Hua, J Huang, RG Huang, X Huang, Z Hulcher, A Hussain, G Iles, N Ilic, AM Iliescu, R Illingworth, G Ingratta, A Ioannisian, M Ismerio Oliveira, CM Jackson, V Jain, E James, W Jang, B Jargowsky, D Jena, I Jentz, C Jiang, J Jiang, A Jipa, JH Jo, FR Joaquim, W Johnson, C Jollet, R Jones, N Jovancevic, M Judah, CK Jung, KY Jung, T Junk, Y Jwa, M Kabirnezhad, AC Kaboth, I Kadenko, O Kalikulov, D Kalra, M Kandemir, S Kar, G Karagiorgi, G Karaman, A Karcher, Y Karyotakis, SP Kasetti, L Kashur, A Kauther, N Kazaryan, L Ke, E Kearns, PT Keener, KJ Kelly, R Keloth, E Kemp, O Kemularia, Y Kermaidic, W Ketchum, SH Kettell, N Khan, A Khvedelidze, D Kim, J Kim, MJ Kim, S Kim, B King, M King, M Kirby, A Kish, J Klein, J Kleykamp, A Klustova, T Kobilarcik, L Koch, K Koehler, LW Koerner, DH Koh, M Kordosky, T Kosc, VA Kosteleck媒, I Kotler, W Krah, R Kralik, M Kramer, F Krennrich, T Kroupova, S Kubota, M Kubu, VA Kudryavtsev, G Kufatty, S Kuhlmann, A Kumar, J Kumar, M Kumar, P Kumar, P Kumar, S Kumaran, J Kunzmann, V Kus, T Kutter, J Kvasnicka, T Labree, M Lachat, T Lackey, I Lal膬u, A Lambert, BJ Land, CE Lane, N Lane, K Lang, T Langford, M Langstaff, F Lanni, J Larkin, P Lasorak, D Last, A Laundrie, G Laurenti, E Lavaut, H Lay, I Lazanu, R LaZur, M Lazzaroni, S Leardini, J Learned, T LeCompte, G Lehmann Miotto, R Lehnert, M Leitner, H Lemoine, D Leon Silverio, LM Lepin, J-Y Li, SW Li, Y Li, R Lima, CS Lin, D Lindebaum, S Linden, RA Lineros, A Lister, BR Littlejohn, J Liu, Y Liu, S Lockwitz, I Lomidze, K Long, J Lopez, I L贸pez de Rego, N L贸pez-March, JM LoSecco, A Lozano Sanchez, X-G Lu, KB Luk, X Luo, E Luppi, AA Machado, P Machado, CT Macias, JR Macier, M MacMahon, S Magill, C Magueur, K Mahn, A Maio, N Majeed, A Major, K Majumdar, A Malige, S Mameli, M Man, RC Mandujano, J Maneira, S Manly, K Manolopoulos, M Manrique Plata, S Manthey Corchado, L Manzanillas-Velez, E Mao, M Marchan, A Marchionni, D Marfatia, C Mariani, J Maricic, F Marinho, AD Marino, T Markiewicz, F Das Chagas Marques, M Marshak, CM Marshall, J Marshall, L Martina, J Mart铆n-Albo, DA Martinez Caicedo, M Martinez-Casales, F Mart铆nez L贸pez, S Martynenko, V Mascagna, A Mastbaum, M Masud, F Matichard, G Matteucci, J Matthews, C Mauger, N Mauri, K Mavrokoridis, I Mawby, F Mayhew, T McAskill, N McConkey, B McConnell, KS McFarland, C McGivern, C McGrew, A McNab, C McNulty, J Mead, L Meazza, VCN Meddage, A Medhi, M Mehmood, B Mehta, P Mehta, F Mei, P Melas, L Mellet, TCD Melo, O Mena, H Mendez, DP M茅ndez, A Menegolli, G Meng, ACEA Mercuri, A Meregaglia, MD Messier, S Metallo, W Metcalf, M Mewes, H Meyer, T Miao, J Micallef, A Miccoli, G Michna, R Milincic, F Miller, G Miller, W Miller, A Minotti, L Miralles Verge, C Mironov, S Miscetti, CS Mishra, P Mishra, SR Mishra, D Mladenov, I Mocioiu, A Mogan, R Mohanta, TA Mohayai, N Mokhov, J Molina, L Molina Bueno, E Montagna, A Montanari, C Montanari, D Montanari, D Montanino, LM Monta帽o Zetina, M Mooney, AF Moor, M Moore, Z Moore, D Moreno, G Moreno-Granados, O Moreno-Palacios, L Morescalchi, C Morris, E Motuk, CA Moura, G Mouster, W Mu, L Mualem, J Mueller, M Muether, A Muir, Y Mukhamejanov, A Mukhamejanova, M Mulhearn, D Munford, LJ Munteanu, H Muramatsu, J Muraz, M 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Abstract:

The 2x2 Demonstrator, a prototype for the Deep Underground Neutrino Experiment (DUNE) liquid argon (LAr) Near Detector, was exposed to the Neutrinos from the Main Injector (NuMI) neutrino beam at Fermi National Accelerator Laboratory (Fermilab). This detector is a prototype of a new modular design for a liquid argon time-projection chamber (LArTPC), comprising a two-by-two array of four modules, each further segmented into two optically isolated LArTPCs. The 2x2 Demonstrator features a number of pioneering technologies, including a low-profile resistive field shell to establish drift fields, native 3D ionization pixelated imaging, and a high-coverage dielectric light readout system. The 2.4-tonne active mass detector is flanked upstream and downstream by supplemental solid-scintillator tracking planes, repurposed from the MINERvA experiment, which track ionizing particles exiting the argon volume. The antineutrino beam data collected by the detector over a 4.5 day period in 2024 include over 30,000 neutrino interactions in the LAr active volume鈥攖he first neutrino interactions reported by a DUNE detector prototype. During its physics-quality run, the 2x2 Demonstrator operated at a nominal drift field of 500 V/cm and maintained good LAr purity, with a stable electron lifetime of approximately 1.25 ms. This paper describes the detector and 91探花ing systems, summarizes the installation and commissioning, and presents the initial validation of collected NuMI beam and off-beam self-triggers. In addition, it highlights observed interactions in the detector volume, including candidate muon antineutrino events.

Data-driven core-collapse supernova multilateration with first neutrino events

Physical Review D American Physical Society (APS) 113:6 (2026) 063005

Authors:

Farrukh Azfar, Jeff Tseng, Marta Colomer Molla, Kate Scholberg, Alec Habig, Segev BenZvi, Melih Kara, James Kneller, Jost Migenda, Dan Milisavljevic, Evan O鈥機onnor

Abstract:

A Galactic core-collapse supernova (CCSN) is likely to be observed in neutrino detectors around the world minutes to hours before the electromagnetic radiation arrives. The SuperNova Early Warning System (SNEWS2.0) network of neutrino and dark matter detectors aims to use the relative arrival times of the neutrinos at the different experiments to point back to the supernova so as to facilitate follow-up observation. One of the simplest methods to estimate the CCSN direction is to use the first neutrino events detected through the inverse decay (IBD) process, e p e + n . We will consider neutrino detectors sensitive to IBD interactions with low backgrounds. The difference in signal arrival times between a large and a small detector will be biased, however, with the first event at the smaller detector, on average, arriving later than that at the larger detector. This bias can be mitigated by using these first events in a data-driven approach without recourse to simulations or models. The resulting method requires, at minimum, only the times of the first events at most detectors, along with a longer time series of events from one larger detector to act as a reference lightcurve. In this article, we demonstrate this method and its uncertainty estimate using pairs of detectors of different sizes and with different supernova distances. Finally, we use this method to calculate probability skymaps using four detectors currently in operation, Super-Kamiokande, Jiangmen Underground Neutrino Observatory (JUNO), Large Volume Detector (LVD), and SNO + , and show that the calculated probabilities yield appropriate confidence intervals for all supernova directions. The area of the 68%聽confidence interval varies by distance and direction, but is expected to be a few thousand square degrees. The resulting skymaps should be useful for the multimessenger community as a rapid, initial pointing to follow up on the SNEWS2.0 Galactic CCSN neutrino alert.