Results 11 to 20 of about 193,894 (380)
Effect of Inhaled Xenon on Cerebral White Matter Damage in Comatose Survivors of Out-of-Hospital Cardiac Arrest: A Randomized Clinical Trial [PDF]
Journal of the American Medical Association (JAMA), 2016 IMPORTANCE: Evidence from preclinical models indicates that xenon gas can prevent the development of cerebral damage after acute global hypoxic-ischemic brain injury but, thus far, these putative neuroprotective properties have not been reported in human Airaksinen, J, Arola, O, Bäcklund, M, Grönlund, J, Harjola, VP, Hynninen, M, Inkinen, O, Korpi, K, Laitio, R, Laitio, T, Martola, J, Maze, M, Niiranen, J, Nukarinen, E, Olkkola, KT, Parkkola, R, Pietilä, M, Roine, RO, Saraste, A, Saunavaara, J, Scheinin, H, Silvasti, P, Silvennoinen, H, Tiainen, M, Vahlberg, T, Valanne, L, Varpula, M, Virtanen, S, Wennervirta, J, Ylikoski, E +29 morecore +3 more sourcesNeuroprotective Properties of Xenon [PDF]
Molecular Neurobiology, 2019 Xenon is a rare noble gas that was introduced into clinical practice more than 70 years ago. Xenon's clinical properties are predicated by its ability to fit into preformed cavities of macromolecules thereby altering their biological functions. One such action targets the NMDA-subtype of the glutamate receptors thereby inhibiting its excitatory action. Maze, Mervyn, Laitio, Timoopenaire +6 more sourcesRemoving krypton from xenon by cryogenic distillation to the ppq level [PDF]
The European Physical Journal C, 2017 The XENON1T experiment aims for the direct detection of dark matter in a
cryostat filled with 3.3 tons of liquid xenon. In order to achieve the desired
sensitivity, the background induced by radioactive decays inside the detector
has to be sufficiently ...A. Brown, A. D. Ferella, A. Di Giovanni, A. Fieguth, A. Gallo Rosso, A. Kish, A. Manfredini, A. Molinario, A. P. Colijn, A. Rizzo, A. Stein, A. Tiseni, B. Bauermeister, B. Kaminsky, B. Miguez, B. Pelssers, C. Geis, C. Grignon, C. Hasterok, C. Huhmann, C. Reuter, C. Tunnell, C. Weinheimer, D. Cichon, D. Coderre, D. Franco, D. Lellouch, D. Masson, D. Mayani, D. Thers, E. Aprile, E. Brown, E. Duchovni, E. Hogenbirk, E. Shockley, F. Agostini, F. Arneodo, F. D. Amaro, F. Gao, F. Piastra, F. V. Massoli, G. Bruno, G. Eurin, G. Kessler, G. Plante, G. Sartorelli, G. Trinchero, H. Landsman, H. Simgen, H. Wang, I. Cristescu, I. Maris, J. A. M. Lopes, J. Aalbers, J. Calvén, J. Conrad, J. Fei, J. M. F. dos Santos, J. M. R. Cardoso, J. Masbou, J. Naganoma, J. P. Cussonneau, J. Pienaar, J. Schreiner, J. Wulf, J. Ye, K. Micheneau, K. Ni, L. Baudis, L. Bütikofer, L. Grandi, L. Levinson, L. Rauch, L. Scotto Lavina, L. W. Goetzke, M. Alfonsi, M. Anthony, M. Cervantes, M. Galloway, M. Garbini, M. L. Benabderrahmane, M. Le Calloch, M. Lindner, M. Messina, M. Murra, M. P. Decowski, M. Scheibelhut, M. Schumann, M. Selvi, M. Silva, M. v. Sivers, M.-C. Piro, N. Priel, N. Rupp, N. Upole, P. A. Breur, P. Barrow, P. de Perio, P. Di Gangi, P. Pakarha, P. Shagin, Q. Lin, R. Budnik, R. F. Lang, R. Itay, R. Persiani, R. Saldanha, S. Bruenner, S. Diglio, S. E. A. Orrigo, S. Lindemann, S. Reichard, S. Rosendahl, S. Schindler, T. Berger, T. Marrodán Undagoitia, U. Oberlack, V. Pizzella, W. Fulgione, XENON Collaboration, Y. Meng, Y. Wei, Y. Zhang, Z. Greene +123 morecore +7 more sourcesExtraction efficiency of drifting electrons in a two-phase xenon time
projection chamber [PDF]
, 2018 We present a measurement of the extraction efficiency of quasi-free electrons
from the liquid into the gas phase in a two-phase xenon time-projection
chamber.Bernard, E., Boulton, E. M., Destefano, N., Edwards, B. N. V., Gai, M., Horn, M., Larsen, N., McKinsey, D. N., Tennyson, B., Tvrznikova, L., Wahl, C. +10 morecore +2 more sourcesDARWIN – a next-generation liquid xenon observatory for dark matter and neutrino physics [PDF]
International Conference on Rebooting Computing, 2021
The nature of dark matter and properties of neutrinos are among the most pressing issues in contemporary particle physics. The dual-phase xenon time-projection chamber is the leading technology to cover the available parameter space for weakly ...J. Aalbers, K. Abe, V. Aerne, F. Agostini, S. A. Maouloud, D. Akerib, D. Akimov, J. Akshat, A. K. A. Musalhi, F. Alder, S. Alsum, L. Althueser, C. Amarasinghe, F. Amaro, A. Ames, T. Anderson, B. Andrieu, N. Angelides, E. Angelino, J. Angevaare, V. C. Antochi, D. Martin, B. Antunović, E. Aprile, H. Ara'ujo, J. E. Armstrong, F. Arneodo, M. Arthurs, P. Asadi, S. Baek, X. Bai, D. Bajpai, A. Baker, J. Balajthy, S. Balashov, M. Balzer, A. Bandyopadhyay, J. Bang, E. Barberio, J. Bargemann, L. Baudis, D. Bauer, D. Baur, A. Baxter, A. Baxter, M. Bazyk, K. Beattie, J. Behrens, N. Bell, L. Bellagamba, P. Beltrame, M. Benabderrahmane, E. Bernard, G. Bertone, P. Bhattacharjee, A. Bhatti, A. Biekert, T. P. Biesiadzinski, A. R. Binau, R. Biondi, Y. Biondi, H. Birch, F. Bishara, A. Bismark, C. Blanco, G. Blockinger, E. Bodnia, C. Boehm, A. Bolozdynya, P. Bolton, S. Bottaro, C. Bourgeois, B. Boxer, P. Br'as, A. Breskin, P. Breur, C. Brew, J. Brod, E. Brookes, A. Brown, E. Brown, S. Bruenner, G. Bruno, R. Budnik, T. Bui, S. Burdin, S. Buse, J. Busenitz, D. Buttazzo, M. Buuck, A. Buzulutskov, R. Cabrita, C. Cai, D. Cai, C. Capelli, J. Cardoso, M. Carmona-Benitez, M. Cascella, R. Catena, S. Chakraborty, C. Chan, S. Chang, A. Chauvin, A. Chawla, H. Chen, V. Chepel, N. Chott, D. Cichon, A. Chavez, B. Cimmino, M. Clark, R. Co, A. Colijn, J. Conrad, M. Converse, M. Costa, A. Cottle, G. Cox, O. Creaner, J. J. García, J. Cussonneau, J. Cutter, C. Dahl, V. D’Andrea, A. David, M. Decowski, J. Dent, F. Deppisch, L. D. Viveiros, P. Gangi, A. Giovanni, S. D. Pede, J. Dierle, S. Diglio, J. Dobson, M. Doerenkamp, D. Douillet, G. Drexlin, E. Druszkiewicz, D. Dunsky, K. Eitel, A. Elykov, T. Emken, R. Engel, S. R. Eriksen, M. Fairbairn, A. Fan, J. J. Fan, S. Farrell, S. Fayer, N. Fearon, A. Ferella, C. Ferrari, A. Fieguth, S. Fiorucci, H. Fischer, H. Flaecher, M. Flierman, T. Florek, R. Foot, P. J. Fox, R. Franceschini, E. Fraser, C. Frenk, S. Frohlich, T. Fruth, W. Fulgione, C. Fuselli, P. Gaemers, R. Gaior, R. Gaitskell, M. Galloway, F. Gao, I. G. Garcia, J. Genovesi, C. Ghag, S. Ghosh, E. Gibson, W. Gil, D. Giovagnoli, F. Girard, R. Glade-Beucke, F. Gluck, S. Gokhale, A. Gouvea, L. Gr'af, L. Grandi, J. Grigat, B. Grinstein, M. D. Grinten, R. Grossle, H. Guan, M. Guida, R. Gumbsheimer, C. Gwilliam, C. Hall, L. Hall, R. Hammann, K. Han, V. Hannen, S. Hansmann-Menzemer, R. Harata, S. Hardin, E. Hardy, C. Hardy, K. Harigaya, R. Harnik, S. Haselschwardt, M. Hernandez, S. Hertel, A. Higuera, C. Hils, S. Hochrein, L. Hoetzsch, M. Hoferichter, N. Hood, D. Hooper, M. Horn, J. Howlett, D. Huang, Y. Huang, D. Hunt, M. Iacovacci, G. Iaquaniello, R. Ide, C. Ignarra, G. Iloglu, Y. Itow, E. Jacquet, O. Jahangir, J. Jakob, R. James, A. Jansen, Wei Ji, X. Ji, F. Joerg, J. Johnson, A. Joy, A. Kaboth, A. Kamaha, K. Kanezaki, K. Kar, M. Kara, N. Kato, P. Kavrigin, S. Kazama, A. Keaveney, J. Kellerer, D. Khaitan, A. Khazov, G. Khundzakishvili, I. Khurana, B. Kilminster, M. Kleifges, P. Ko, M. Kobayashi, D. Kodroff, G. Koltmann, A. Kopec, A. Kopmann, J. Kopp, L. Korley, V. Kornoukhov, E. Korolkova, H. Kraus, L. Krauss, S. Kravitz, L. Kreczko, V. Kudryavtsev, F. Kuger, J. Kumar, B. Paredes, L. LaCascio, Q. Laine, H. Landsman, R. Lang, E. Leason, J. Lee, D. Leonard, K. Lesko, L. Levinson, C. Levy, I. Li, S. C. Li, Tao Li, S. Liang, C. Liebenthal, J. Lin, Q. Lin, S. Lindemann, M. Lindner, A. Lindote, R. Linehan, W. Lippincott, X. Liu, K. Liu, J. Liu, J. Loizeau, F. Lombardi, J. Long, M. Lopes, E. Asamar, W. Lorenzon, C. Lu, S. Luitz, Y. Ma, P. Machado, C. Macolino, T. Maeda, J. Mahlstedt, P. Majewski, A. Manalaysay, A. Mancuso, L. Manenti, A. Manfredini, R. Mannino, N. Marangou, J. March-Russell, F. Marignetti, T. M. Undagoitia, K. Martens, R. Martín, I. Martinez-Soler, J. Masbou, D. Masson, E. Masson, S. Mastroianni, M. Mastronardi, J. Matias-Lopes, M. McCarthy, N. McFadden, E. McGinness, D. McKinsey, J. Mclaughlin, K. McMichael, P. Meinhardt, J. Men'endez, Y. Meng, M. Messina, R. Midha, D. Milisavljevic, E. Miller, B. Milosevic, S. Milutinović, S. Mitra, K. Miuchi, E. Mizrachi, K. Mizukoshi, A. Molinario, A. Monte, C. Monteiro, M. Monzani, J. S. Moore, K. Morra, J. Morad, J. D. Mendoza, S. Moriyama, E. Morrison, E. Morteau, Y. Mosbacher, B. Mount, J. Müller, A. Murphy, M. Murra, D. Naim, S. Nakamura, E. Nash, N. Navaieelavasani, A. Naylor, C. Nedlik, H. Nelson, F. Neves, J. Newstead, K. Ni, J. Nikoleyczik, V. Niro, U. Oberlack, M. Obradović, K. Odgers, C. O’Hare, P. Oikonomou, I. Olcina, K. Oliver-Mallory, A. Oranday, J. Orpwood, I. Ostrovskiy, K. Ozaki, B. Paetsch, S. Pal, J. Palacio, K. Palladino, J. Palmer, P. Panci, M. Pandurović, A. Parlati, N. Parveen, S. Patton, V. Pvevc, Q. Pellegrini, B. Penning, G. Pereira, R. Peres, Y. Perez-Gonzalez, E. Perry, T. Pershing, R. Petrossian-Byrne, J. Pienaar, A. Piepke, G. Pieramico, M. Pierre, M. Piotter, V. Pizella, G. Plante, T. Pollmann, D. Porzio, J. Qi, Y. Qie, J. Qin, N. Raj, M. R. Silva, K. Ramanathan, D. Garc'ia, J. Ravanis, L. Redard-Jacot, D. Redigolo, S. Reichard, J. Reichenbacher, C. Rhyne, A. Richards, Q. Riffard, G. Rischbieter, A. Rocchetti, S. Rosenfeld, R. Rosero, N. Rupp, T. Rushton, S. Saha, L. Sanchez, P. Sanchez-Lucas, D. Santone, J. Santos, I. Sarnoff, G. Sartorelli, A. Sazzad, M. Scheibelhut, R. Schnee, M. Schrank, J. Schreiner, P. Schulte, D. Schulte, H. Eissing, M. Schumann, T. Schwemberger, A. Schwenk, T. Schwetz, L. Lavina, P. Scovell, H. Sekiya, M. Selvi, E. Semenov, F. Semeria, P. Shagin, S. Shaw, S. Shi, E. Shockley, T. Shutt, R. Si-Ahmed, J. Silk, C. Silva, M. C. Silva, H. Simgen, F. vSimkovic, G. Sinev, R. Singh, W. Skulski, J. Smirnov, R. Smith, M. Solmaz, V. Solovov, P. Sorensen, J. Soria, T. Sparmann, I. Stancu, M. Steidl, A. Stevens, K. Stifter, L. Strigari, D. Subotić, B. Suerfu, A. M. Suliga, T. Sumner, P. Szabó, M. Szydagis, A. Takeda, Y. Takeuchi, P. Tan, C. Taricco, W. Taylor, D. Temples, A. Terliuk +499 moresemanticscholar +1 more sourceFirst ground-level laboratory test of the two-phase xenon emission detector RED-100 [PDF]
Journal of Instrumentation, 2019 RED-100 is a two-phase detector for study of coherent elastic scattering of reactor electron antineutrinos off xenon atomic nuclei. The detector contains a total of 200 kg of liquid xenon in a titanium cryostat with 160 kg of xenon in active volume ...D. Akimov, D. Akimov, V. Belov, V. Belov, A. Bolozdynya, A. Dolgolenko, Y. Efremenko, A. Etenko, A. Etenko, A. Galavanov, A. Galavanov, D. V. Gouss, Y. Gusakov, Y. Gusakov, D. E. Kdib, A. Khromov, A. Konovalov, A. Konovalov, A. Konovalov, V. Kornoukhov, V. Kornoukhov, A. Kovalenko, A. Kovalenko, E. Kozlova, E. Kozlova, A. Kumpan, A. Lukyashin, A. Lukyashin, Y. A. Melikyan, Y. A. Melikyan, V. V. Moramzin, D. A. Nischeta, O. Razuvaeva, O. Razuvaeva, D. Rudik, D. Rudik, A. Shakirov, G. Simakov, G. Simakov, G. Simakov, V. Sosnovtsev, Y. Stogov, A. A. Vasin, A. A. Vasin +43 moresemanticscholar +1 more source