M. Tytgat - ULB

M. Tytgat
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M. Tytgat
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High Energy Physics - Experiment (32)
 
Physics - Instrumentation and Detectors (24)
 
High Energy Physics - Phenomenology (16)
 
Cosmology and Nongalactic Astrophysics (7)
 
Nuclear Experiment (6)
 
General Relativity and Quantum Cosmology (2)
 
Astrophysics of Galaxies (2)
 
High Energy Physics - Theory (2)

Publications Authored By M. Tytgat

Exclusive $\rho^0$-meson electroproduction is studied by the HERMES experiment, using the 27.6 GeV longitudinally polarized electron/positron beam of HERA and a transversely polarized hydrogen target, in the kinematic region 1.0 GeV$^2$Read More

We embed a thermal dark matter (DM) candidate within the clockwork framework. This mechanism allows to stabilize the DM particle over cosmological time because it suppresses its decay into Standard Model (SM) particles. At the same time, pair annihilations are unsuppressed, so that the relic density is set by the usual freeze-out of the DM particle from the thermal bath. Read More

The high pseudo-rapidity region of the CMS muon system is covered by Cathode Strip Chambers (CSC) only and lacks redundant coverage despite the fact that it is a challenging region for muons in terms of backgrounds and momentum resolution. In order to maintain good efficiency for the muon trigger in this region additional RPCs are planned to be installed in the two outermost stations at low angle named RE3/1 and RE4/1. These stations will use RPCs with finer granularity and good timing resolution to mitigate background effects and to increase the redundancy of the system. Read More

One of the key predictions of the WIMP paradigm for Dark Matter (DM) is that DM particles can annihilate into charged particles. These annihilations will proceed in e.g. Read More

2016Jun
Authors: F. Lagarde1, M. Gouzevitch2, I. Laktineh3, V. Buridon4, X. Chen5, C. Combaret6, A. Eynard7, L. Germani8, G. Grenier9, H. Mathez10, L. Mirabito11, A. Petrukhin12, A. Steen13, W. Tromeuraa14, Y. Wang15, A. Gongab16, N. Moreau17, C. de la Taille18, F. Dulucqac19, A. Cimmino20, S. Crucy21, A. Fagot22, M. Gul23, A. A. O. Rios24, M. Tytgat25, N. Zaganidisb26, S. Aly27, Y. Assran28, A. Radi29, A. Sayedc30, G. Singhd31, M. Abbrescia32, G. Iaselli33, M. Maggi34, G. Pugliese35, P. Verwilligene36, W. Van Doninck37, S. Colafranceschi38, A. Sharmag39, L. Benussi40, S. Bianco41, D. Piccolo42, F. Primaverah43, V. Bhatnagar44, R. Kumari45, A. Mehta46, J. Singhi47, A. Ahmad48, W. Ahmed49, H. M. I. Asghar50, I. M. Awan51, R. Hoorani52, S. Muhammad53, H. Shahzad54, M. A. Shah55, S. W. Cho56, S. Y. Choi57, B. Hong58, M. H. Kang59, K. S. Lee60, J. H. Lim61, S. K. Parkk62, M. S. Kiml63, S. Carpinteyro Bernardino64, I. Pedraza65, C. Uribe Estradam66, S. Carrillo Moreno67, F. Vazquez Valencian68, L. M. Panto69, S. Buontempo70, N. Cavallo71, M. Esposito72, F. Fabozzi73, G. Lanza74, I. Orso75, L. Lista76, S. Meola77, M. Merola78, P. Paolucci79, F. Thyssen80, A. Braghieri81, A. Magnani82, P. Montagna83, C. Riccardi84, P. Salvini85, I. Vai86, P. Vituloq87, Y. Ban88, S. J. Qianr89, M. Choi90, Y. Choi91, J. Goh92, D. Kimt93, A. Aleksandrov94, R. Hadjiiska95, P. Iaydjiev96, M. Rodozov97, S. Stoykova98, G. Sultanov99, M. Vutovau100, A. Dimitrov101, L. Litov102, B. Pavlov103, P. Petkovv104, I. Bagaturia105, D. Lomidzew106, C. Avila107, A. Cabrera108, J. C. Sanabria109, I. Crottyy110, J. Vaitkusz111
Affiliations: 1on behalf of CMS RPC collaboration, 2on behalf of CMS RPC collaboration, 3on behalf of CMS RPC collaboration, 4on behalf of CMS RPC collaboration, 5on behalf of CMS RPC collaboration, 6on behalf of CMS RPC collaboration, 7on behalf of CMS RPC collaboration, 8on behalf of CMS RPC collaboration, 9on behalf of CMS RPC collaboration, 10on behalf of CMS RPC collaboration, 11on behalf of CMS RPC collaboration, 12on behalf of CMS RPC collaboration, 13on behalf of CMS RPC collaboration, 14on behalf of CMS RPC collaboration, 15on behalf of CMS RPC collaboration, 16on behalf of CMS RPC collaboration, 17on behalf of CMS RPC collaboration, 18on behalf of CMS RPC collaboration, 19on behalf of CMS RPC collaboration, 20on behalf of CMS RPC collaboration, 21on behalf of CMS RPC collaboration, 22on behalf of CMS RPC collaboration, 23on behalf of CMS RPC collaboration, 24on behalf of CMS RPC collaboration, 25on behalf of CMS RPC collaboration, 26on behalf of CMS RPC collaboration, 27on behalf of CMS RPC collaboration, 28on behalf of CMS RPC collaboration, 29on behalf of CMS RPC collaboration, 30on behalf of CMS RPC collaboration, 31on behalf of CMS RPC collaboration, 32on behalf of CMS RPC collaboration, 33on behalf of CMS RPC collaboration, 34on behalf of CMS RPC collaboration, 35on behalf of CMS RPC collaboration, 36on behalf of CMS RPC collaboration, 37on behalf of CMS RPC collaboration, 38on behalf of CMS RPC collaboration, 39on behalf of CMS RPC collaboration, 40on behalf of CMS RPC collaboration, 41on behalf of CMS RPC collaboration, 42on behalf of CMS RPC collaboration, 43on behalf of CMS RPC collaboration, 44on behalf of CMS RPC collaboration, 45on behalf of CMS RPC collaboration, 46on behalf of CMS RPC collaboration, 47on behalf of CMS RPC collaboration, 48on behalf of CMS RPC collaboration, 49on behalf of CMS RPC collaboration, 50on behalf of CMS RPC collaboration, 51on behalf of CMS RPC collaboration, 52on behalf of CMS RPC collaboration, 53on behalf of CMS RPC collaboration, 54on behalf of CMS RPC collaboration, 55on behalf of CMS RPC collaboration, 56on behalf of CMS RPC collaboration, 57on behalf of CMS RPC collaboration, 58on behalf of CMS RPC collaboration, 59on behalf of CMS RPC collaboration, 60on behalf of CMS RPC collaboration, 61on behalf of CMS RPC collaboration, 62on behalf of CMS RPC collaboration, 63on behalf of CMS RPC collaboration, 64on behalf of CMS RPC collaboration, 65on behalf of CMS RPC collaboration, 66on behalf of CMS RPC collaboration, 67on behalf of CMS RPC collaboration, 68on behalf of CMS RPC collaboration, 69on behalf of CMS RPC collaboration, 70on behalf of CMS RPC collaboration, 71on behalf of CMS RPC collaboration, 72on behalf of CMS RPC collaboration, 73on behalf of CMS RPC collaboration, 74on behalf of CMS RPC collaboration, 75on behalf of CMS RPC collaboration, 76on behalf of CMS RPC collaboration, 77on behalf of CMS RPC collaboration, 78on behalf of CMS RPC collaboration, 79on behalf of CMS RPC collaboration, 80on behalf of CMS RPC collaboration, 81on behalf of CMS RPC collaboration, 82on behalf of CMS RPC collaboration, 83on behalf of CMS RPC collaboration, 84on behalf of CMS RPC collaboration, 85on behalf of CMS RPC collaboration, 86on behalf of CMS RPC collaboration, 87on behalf of CMS RPC collaboration, 88on behalf of CMS RPC collaboration, 89on behalf of CMS RPC collaboration, 90on behalf of CMS RPC collaboration, 91on behalf of CMS RPC collaboration, 92on behalf of CMS RPC collaboration, 93on behalf of CMS RPC collaboration, 94on behalf of CMS RPC collaboration, 95on behalf of CMS RPC collaboration, 96on behalf of CMS RPC collaboration, 97on behalf of CMS RPC collaboration, 98on behalf of CMS RPC collaboration, 99on behalf of CMS RPC collaboration, 100on behalf of CMS RPC collaboration, 101on behalf of CMS RPC collaboration, 102on behalf of CMS RPC collaboration, 103on behalf of CMS RPC collaboration, 104on behalf of CMS RPC collaboration, 105on behalf of CMS RPC collaboration, 106on behalf of CMS RPC collaboration, 107on behalf of CMS RPC collaboration, 108on behalf of CMS RPC collaboration, 109on behalf of CMS RPC collaboration, 110on behalf of CMS RPC collaboration, 111on behalf of CMS RPC collaboration

The HL-LHC phase is designed to increase by an order of magnitude the amount of data to be collected by the LHC experiments. To achieve this goal in a reasonable time scale the instantaneous luminosity would also increase by an order of magnitude up to $6.10^{34} cm^{-2} s^{-1}$ . Read More

The operations of Resistive Plate Chambers in LHC experiments require Fluorine based (F-based) gases for optimal performance. Recent European regulations demand the use of environmentally unfriendly F-based gases to be limited or banned. In view of the CMS experiment upgrade, several tests are ongoing to measure the performance of the detector with these new ecological gas mixtures, in terms of efficiency, streamer probability, induced charge and time resolution. Read More

The CMS experiment, located at the CERN Large Hadron Collider, has a redundant muon system composed by three different detector technologies: Cathode Strip Chambers (in the forward regions), Drift Tubes (in the central region) and Resistive Plate Chambers (both its central and forward regions). All three are used for muon reconstruction and triggering. During the first long shutdown (LS1) of the LHC (2013-2014) the CMS muon system has been upgraded with 144 newly installed RPCs on the forth forward stations. Read More

We report on a systematic study of double-gap and four-gap phenolic resistive plate chambers (RPCs) for future high-{\eta} RPC triggers in the CMS. In the present study, we constructed real-sized double-gap and four-gap RPCs with gap thicknesses of 1.6 and 0. Read More

2016Apr
Authors: Z. Deng, Y. Li, Y. Wang, Q. Yue, Z. Yang, J. Apostolakis, G. Folger, C. Grefe, V. Ivantchenko, A. Ribon, V. Uzhinskiy, D. Boumediene, C. Carloganu, V. Français, G. Cho, D-W. Kim, S. C. Lee, W. Park, S. Vallecorsa, S. Cauwenbergh, M. Tytgat, A. Pingault, N. Zaganidis, E. Brianne, A. Ebrahimi, K. Gadow, P. Göttlicher, C. Günter, O. Hartbrich, B. Hermberg, A. Irles, F. Krivan, K. Krüger, J. Kvasnicka, S. Lu, B. Lutz, V. Morgunov, C. Neubüser, A. Provenza, M. Reinecke, F. Sefkow, S. Schuwalow, H. L. Tran, E. Garutti, S. Laurien, M. Matysek, M. Ramilli, S. Schroeder, B. Bilki, E. Norbeck, D. Northacker, Y. Onel, S. Chang, A. Khan, D. H. Kim, D. J. Kong, Y. D. Oh, K. Kawagoe, H. Hirai, Y. Sudo, T. Suehara, H. Sumida, T. Yoshioka, E. Cortina Gil, S. Mannai, V. Buridon, C. Combaret, L. Caponetto, R. Eté, G. Garillot, G. Grenier, R. Han, J. C. Ianigro, R. Kieffer, I. Laktineh, N. Lumb, H. Mathez, L. Mirabito, A. Petrukhin, A. Steen, J. Berenguer Antequera, E. Calvo Alamillo, M. -C. Fouz, J. Marin, J. Puerta-Pelayo, A. Verdugo, M. Chadeeva, M. Danilov, M. Gabriel, P. Goecke, C. Kiesling, N. vanderKolk, F. Simon, M. Szalay, S. Bilokin, J. Bonis, P. Cornebise, F. Richard, R. Pöschl, J. Rouëné, A. Thiebault, D. Zerwas, M. Anduze, V. Balagura, K. Belkadhi, V. Boudry, J-C. Brient, R. Cornat, M. Frotin, F. Gastaldi, Y. Haddad, F. Magniette, M. Ruan, M. Rubio-Roy, K. Shpak, H. Videau, D. Yu, S. Callier, S. Conforti di Lorenzo, F. Dulucq, G. Martin-Chassard, Ch. de la Taille, L. Raux, N. Seguin-Moreau, K. Kotera, H. Ono, T. Takeshita, F. Corriveau

The CALICE Semi-Digital Hadron Calorimeter (SDHCAL) technological prototype is a sampling calorimeter using Glass Resistive Plate Chamber detectors with a three-threshold readout as the active medium. This technology is one of the two options proposed for the hadron calorimeter of the International Large Detector for the International Linear Collider. The prototype was exposed to beams of muons, electrons and pions of different energies at the CERN Super Proton Synchrotron. Read More

2016Feb
Authors: V. Buridon1, C. Combaret2, L. Caponetto3, R. Eté4, G. Garillot5, G. Grenier6, R. Han7, J. C. Ianigro8, R. Kieffer9, I. Laktineh10, N. Lumb, H. Mathez, L. Mirabito, A. Petrukhin, A. Steen, J. Berenguer Antequera, E. Calvo Alamillo, M. -C. Fouz, J. Marin, J. Puerta-Pelayo, A. Verdugo, E. Cortina Gil, S. Mannai, S. Cauwenbergh, M. Tytgat, A. Pingault, N. Zaganidis, M. Anduze, V. Balagura, K. Belkadhi, V. Boudry, J-C. Brient, R. Cornat, M. Frotin, F. Gastaldi, Y. Haddad, M. Ruan, K. Shpak, H. Videau, D. Yu, S. Callier, S. Conforti di Lorenzo, F. Dulucq, G. Martin-Chassard, Ch. de la Taille, L. Raux, N. Seguin-Moreau, D. Boumediene, C. Carloganu, V. Français, J. Bonis, B. Bouquet, P. Cornebise, Ph. Doublet, M. Faucci-Giannelli, T. Frisson, G. Guilhem, H. Li, F. Richard, R. Pöschl, J. Rouëné, F. Wicek, Z. Zhang, Z. Deng, Y. Li, Y. Wang, Q. Yue, Z. Yang, G. Cho, D-W. Kim, S. C. Lee, W. Park, S. Vallecorsa, E. Brianne, A. Ebrahimi, K. Gadow, P. Göttlicher, C. Günter, O. Hartbrich, B. Hermberg, A. Irles, F. Krivan, K. Krüger, J. Kvasnicka, S. Lu, B. Lutz, V. Morgunov, C. Neubüser A. Provenza, M. Reinecke, F. Sefkow, S. Schuwalow, H. L. Tran, E. Garutti, S. Laurien, M. Matysek, M. Ramilli, S. Schroeder, B. Bilki, E. Norbeck, D. Northacker, Y. Onel, N. Kirikova, V. Kozlov, P. Smirnov, Y. Soloviev, M. Chadeeva, M. Danilov, M. Gabriel, P. Goecke, C. Kiesling, N. van der Kolk, F. Simon, C. Soldner, M. Szalay, L. Weuste, D. Jeans, S. Komamiya, H. Nakanishi, D. Benchekroun, A. Hoummada, Y. Khoulaki
Affiliations: 1Corresponding author, 2Corresponding author, 3Corresponding author, 4Corresponding author, 5Corresponding author, 6Corresponding author, 7Corresponding author, 8Corresponding author, 9Corresponding author, 10Corresponding author

The CALICE Semi-Digital Hadronic Calorimeter (SDHCAL) prototype, built in 2011, was exposed to beams of hadrons, electrons and muons in two short periods in 2012 on two different beam lines of the CERN SPS. The prototype with its 48 active layers, made of Glass Resistive Plate Chambers and their embedded readout electronics, was run in triggerless and power-pulsing mode. The performance of the SDHCAL during the test beam was found to be very satisfactory with an efficiency exceeding 90% for almost all of the 48 active layers. Read More

2015Dec
Authors: D. Abbaneo1, M. Abbas2, M. Abbrescia3, A. A. Abdelalim4, M. Abi Akl5, O. Aboamer6, D. Acosta7, A. Ahmad8, W. Ahmed9, W. Ahmed10, A. Aleksandrov11, R. Aly12, P. Altieri13, C. Asawatangtrakuldee14, P. Aspell15, Y. Assran16, I. Awan17, S. Bally18, Y. Ban19, S. Banerjee20, V. Barashko21, P. Barria22, G. Bencze23, N. Beni24, L. Benussi25, V. Bhopatkar, S. Bianco, J. Bos, O. Bouhali, A. Braghieri, S. Braibant, S. Buontempo, C. Calabria, M. Caponero, C. Caputo, F. Cassese, A. Castaneda, S. Cauwenbergh, F. R. Cavallo, A. Celik, M. Choi, S. Choi, J. Christiansen, A. Cimmino, S. Colafranceschi, A. Colaleo, A. Conde Garcia, S. Czellar, M. M. Dabrowski, G. De Lentdecker, R. De Oliveira, G. de Robertis, S. Dildick, B. Dorney, W. Elmetenawee, G. Endroczi, F. Errico, A. Fenyvesi, S. Ferry, I. Furic, P. Giacomelli, V. Golovtsov, L. Guiducci, F. Guilloux, A. Gutierrez, R. M. Hadjiiska, A. Hassan, J. Hauser, K. Hoepfner, M. Hohlmann, H. Hoorani, P. Iaydjiev, Y. G. Jeng, T. Kamon, P. Karchin, A. Korytov, S. Krutelyov, A. Kumar, H. Kim, J. Lee, T. Lenzi, L. Litov, F. Loddo, A. Madorsky, T. Maerschalk, M. Maggi, A. Magnani, P. K. Mal, K. Mandal, A. Marchioro, A. Marinov, R. Masod, N. Majumdar, J. A. Merlin, G. Mitselmakher, A. K. Mohanty, S. Muhammad, A. Mohapatra, J. Molnar, S. Mukhopadhyay, M. Naimuddin, S. Nuzzo, E. Oliveri, L. M. Pant, P. Paolucci, I. Park, G. Passeggio, L. Passamonti, B. Pavlov, B. Philipps, D. Piccolo, D. Pierluigi, H. Postema, A. Puig Baranac, A. Radi, R. Radogna, G. Raffone, A. Ranieri, G. Rashevski, C. Riccardi, M. Rodozov, A. Rodrigues, L. Ropelewski, S. RoyChowdhury, A. Russo, G. Ryu, M. S. Ryu, A. Safonov, S. Salva, G. Saviano, A. Sharma, A. Sharma, R. Sharma, A. H. Shah, M. Shopova, J. Sturdy, G. Sultanov, S. K. Swain, Z. Szillasi, A. Tatarinov, T. Tuuva, M. Tytgat, I. Vai, M. Van Stenis, R. Venditti, E. Verhagen, P. Verwilligen, P. Vitulo, S. Volkov, A. Vorobyev, D. Wang, M. Wang, U. Yang, Y. Yang, R. Yonamine, N. Zaganidis, F. Zenoni, A. Zhang
Affiliations: 1Corresponding Author, 2Corresponding Author, 3Corresponding Author, 4Corresponding Author, 5Corresponding Author, 6Corresponding Author, 7Corresponding Author, 8Corresponding Author, 9Corresponding Author, 10Corresponding Author, 11Corresponding Author, 12Corresponding Author, 13Corresponding Author, 14Corresponding Author, 15Corresponding Author, 16Corresponding Author, 17Corresponding Author, 18Corresponding Author, 19Corresponding Author, 20Corresponding Author, 21Corresponding Author, 22Corresponding Author, 23Corresponding Author, 24Corresponding Author, 25Corresponding Author

A novel approach which uses Fibre Bragg Grating (FBG) sensors has been utilised to assess and monitor the flatness of Gaseous Electron Multipliers (GEM) foils. The setup layout and preliminary results are presented. Read More

2015Dec
Authors: D. Abbaneo1, M. Abbas2, M. Abbrescia3, A. A. Abdelalim4, M. Abi Akl5, O. Aboamer6, D. Acosta7, A. Ahmad8, W. Ahmed9, W. Ahmed10, A. Aleksandrov11, R. Aly12, P. Altieri13, C. Asawatangtrakuldee14, P. Aspell15, Y. Assran16, I. Awan17, S. Bally18, Y. Ban19, S. Banerjee20, V. Barashko21, P. Barria22, G. Bencze23, N. Beni24, L. Benussi25, V. Bhopatkar, S. Bianco, J. Bos, O. Bouhali, A. Braghieri, S. Braibant, S. Buontempo, C. Calabria, M. Caponero, C. Caputo, F. Cassese, A. Castaneda, S. Cauwenbergh, F. R. Cavallo, A. Celik, M. Choi, S. Choi, J. Christiansen, A. Cimmino, S. Colafranceschi, A. Colaleo, A. Conde Garcia, S. Czellar, M. M. Dabrowski, G. De Lentdecker, R. De Oliveira, G. de Robertis, S. Dildick, B. Dorney, W. Elmetenawee, G. Endroczi, F. Errico, A. Fenyvesi, S. Ferry, I. Furic, P. Giacomelli, V. Golovtsov, L. Guiducci, F. Guilloux, A. Gutierrez, R. M. Hadjiiska, A. Hassan, J. Hauser, K. Hoepfner, M. Hohlmann, H. Hoorani, P. Iaydjiev, Y. G. Jeng, T. Kamon, P. Karchin, A. Korytov, S. Krutelyov, A. Kumar, H. Kim, J. Lee, T. Lenzi, L. Litov, F. Loddo, A. Madorsky, T. Maerschalk, M. Maggi, A. Magnani, P. K. Mal, K. Mandal, A. Marchioro, A. Marinov, R. Masod, N. Majumdar, J. A. Merlin, G. Mitselmakher, A. K. Mohanty, S. Muhammad, A. Mohapatra, J. Molnar, S. Mukhopadhyay, M. Naimuddin, S. Nuzzo, E. Oliveri, L. M. Pant, P. Paolucci, I. Park, G. Passeggio, L. Passamonti, B. Pavlov, B. Philipps, D. Piccolo, D. Pierluigi, H. Postema, A. Puig Baranac, A. Radi, R. Radogna, G. Raffone, A. Ranieri, G. Rashevski, C. Riccardi, M. Rodozov, A. Rodrigues, L. Ropelewski, S. RoyChowdhury, A. Russo, G. Ryu, M. S. Ryu, A. Safonov, S. Salva, G. Saviano, A. Sharma, A. Sharma, R. Sharma, A. H. Shah, M. Shopova, J. Sturdy, G. Sultanov, S. K. Swain, Z. Szillasi, A. Tatarinov, T. Tuuva, M. Tytgat, I. Vai, M. Van Stenis, R. Venditti, E. Verhagen, P. Verwilligen, P. Vitulo, S. Volkov, A. Vorobyev, D. Wang, M. Wang, U. Yang, Y. Yang, R. Yonamine, N. Zaganidis, F. Zenoni, A. Zhang
Affiliations: 1Corresponding Author, 2Corresponding Author, 3Corresponding Author, 4Corresponding Author, 5Corresponding Author, 6Corresponding Author, 7Corresponding Author, 8Corresponding Author, 9Corresponding Author, 10Corresponding Author, 11Corresponding Author, 12Corresponding Author, 13Corresponding Author, 14Corresponding Author, 15Corresponding Author, 16Corresponding Author, 17Corresponding Author, 18Corresponding Author, 19Corresponding Author, 20Corresponding Author, 21Corresponding Author, 22Corresponding Author, 23Corresponding Author, 24Corresponding Author, 25Corresponding Author

We present a novel application of Fiber Bragg Grating (FBG) sensors in the construction and characterisation of Micro Pattern Gaseous Detector (MPGD), with particular attention to the realisation of the largest triple (Gas electron Multiplier) GEM chambers so far operated, the GE1/1 chambers of the CMS experiment at LHC. The GE1/1 CMS project consists of 144 GEM chambers of about 0.5 m2 active area each, employing three GEM foils per chamber, to be installed in the forward region of the CMS endcap during the long shutdown of LHC in 2108-2019. Read More

We present a comprehensive study of a model where the dark matter is composed of a singlet real scalar that couples to the Standard Model predominantly via a Yukawa interaction with a light quark and a colored vector-like fermion. A distinctive feature of this scenario is that thermal freeze-out in the early universe may be driven by annihilation both into gluon pairs at one-loop ($gg$) and by virtual internal Bremsstrahlung of a gluon ($q \bar{q} g$). Such a dark matter candidate may also be tested through direct and indirect detection and at the LHC; viable candidates have either a mass nearly degenerate with that of the fermionic mediator or a mass above about 2 TeV. Read More

Hard exclusive electroproduction of $\omega$ mesons is studied with the HERMES spectrometer at the DESY laboratory by scattering 27.6 GeV positron and electron beams off a transversely polarized hydrogen target. The amplitudes of five azimuthal modulations of the single-spin asymmetry of the cross section with respect to the transverse proton polarization are measured. Read More

We consider the annihilation into gamma rays of Minimal Dark Matter candidates in the fermionic 5-plet and scalar 7-plet representations of $SU(2)_L$, taking into account both the Sommerfeld effect and the internal bremsstrahlung. Assuming the Einasto profile, we show that present measurements of the Galactic Center by the H.E. Read More

2015Jun
Affiliations: 1corresponding author, 2corresponding author, 3corresponding author, 4corresponding author, 5corresponding author, 6corresponding author, 7corresponding author, 8corresponding author, 9corresponding author, 10corresponding author, 11corresponding author, 12corresponding author, 13corresponding author, 14corresponding author, 15corresponding author, 16corresponding author, 17corresponding author, 18corresponding author, 19corresponding author, 20corresponding author, 21corresponding author, 22corresponding author, 23corresponding author, 24corresponding author, 25corresponding author, 26corresponding author, 27corresponding author, 28corresponding author, 29corresponding author, 30corresponding author

A large prototype of 1.3m3 was designed and built as a demonstrator of the semi-digital hadronic calorimeter (SDHCAL) concept proposed for the future ILC experiments. The prototype is a sampling hadronic calorimeter of 48 units. Read More

2015May
Authors: HERMES Collaboration, A. Airapetian, N. Akopov, Z. Akopov, E. C. Aschenauer, W. Augustyniak, R. Avakian, A. Avetissian, E. Avetisyan, S. Belostotski, N. Bianchi, H. P. Blok, A. Borissov, V. Bryzgalov, J. Burns, M. Capiluppi, G. P. Capitani, E. Cisbani, G. Ciullo, M. Contalbrigo, P. F. Dalpiaz, W. Deconinck, R. De Leo, E. De Sanctis, M. Diefenthaler, P. Di Nezza, M. Düren, G. Elbakian, F. Ellinghaus, E. Etzelmüller, R. Fabbri, A. Fantoni, L. Felawka, S. Frullani, G. Gapienko, V. Gapienko, J. Garay García, F. Garibaldi, G. Gavrilov, V. Gharibyan, F. Giordano, S. Gliske, M. Hartig, D. Hasch, Y. Holler, I. Hristova, Y. Imazu, A. Ivanilov, H. E. Jackson, S. Joosten, R. Kaiser, G. Karyan, T. Keri, E. Kinney, A. Kisselev, V. Korotkov, V. Kozlov, P. Kravchenko, V. G. Krivokhijine, L. Lagamba, L. Lapikás, I. Lehmann, P. Lenisa, A. López Ruiz, W. Lorenzon, X. -G. Lu, B. -Q. Ma, D. Mahon, N. C. R. Makins, Y. Mao, B. Marianski, A. Martinez de la Ossa, H. Marukyan, Y. Miyachi, A. Movsisyan, M. Murray, A. Mussgiller, E. Nappi, Y. Naryshkin, A. Nass, M. Negodaev, W. -D. Nowak, L. L. Pappalardo, R. Perez-Benito, A. Petrosyan, P. E. Reimer, A. R. Reolon, C. Riedl, K. Rith, G. Rosner, A. Rostomyan, J. Rubin, D. Ryckbosch, Y. Salomatin, A. Schäfer, G. Schnell, B. Seitz, T. -A. Shibata, V. Shutov, M. Stahl, M. Stancari, M. Statera, J. J. M. Steijger, S. Taroian, A. Terkulov, R. Truty, A. Trzcinski, M. Tytgat, Y. Van Haarlem, C. Van Hulse, D. Veretennikov, V. Vikhrov, I. Vilardi, S. Wang, S. Yaschenko, Z. Ye, S. Yen, B. Zihlmann, P. Zupranski

Bose-Einstein correlations of like-sign charged hadrons produced in deep-inelastic electron and positron scattering are studied in the HERMES experiment using nuclear targets of $^1$H, $^2$H, $^3$He, $^4$He, N, Ne, Kr, and Xe. A Gaussian approach is used to parametrize a two-particle correlation function determined from events with at least two charged hadrons of the same sign charge. This correlation function is compared to two different empirical distributions that do not include the Bose-Einstein correlations. Read More

The existence of Dark Matter (DM) in the form of Strongly Interacting Massive Particles (SIMPs) may be motivated by astrophysical observations that challenge the classical Cold DM scenario. Other observations greatly constrain, but do not completely exclude, the SIMP alternative. The signature of SIMPs at the LHC may consist of neutral, hadron-like, trackless jets produced in pairs. Read More

2014Dec
Affiliations: 1a, Corresponding author, 2a, 3a, 4a, 5a, 6a, 7a, 8a, 9b, 10b, 11b, 12b, 13b, 14b, 15b, 16b, 17c, 18c, 19d, 20d, 21d, 22d, 23d, 24d, 25d, 26e, 27f, 28f, 29f, 30f, 31f, 32f, 33f, 34f, 35f, 36f, 37f, 38g, 39g, 40g, 41g, 42h, 43i, 44i, 45i, 46i, 47i, 48i, 49i, 50i, 51i, 52l, 53l, 54l, 55l, 56l, 57l, 58m, 59m, 60n, 61n, 62o, 63o, 64p, 65p, 66p, 67p, 68p, 69q, 70q, 71q, 72q, 73q, 74r, 75r, 76r, 77r, 78r, 79r, 80r, 81s, 82s, 83s, 84t, 85t

The RPC muon detector of the CMS experiment at the LHC (CERN, Geneva, Switzerland) is equipped with a Gas Gain Monitoring (GGM) system. A report on the stability of the system during the 2011-2012 data taking run is given, as well as the observation of an effect which suggests a novel method for the monitoring of gas mixture composition. Read More

The earlier search at HERMES for narrow baryon states excited in quasi-real photoproduction, decaying through the channel $pK_S^0\rightarrow p\pi^+\pi^-$, has been extended with improved decay-particle reconstruction, more advanced particle identification, and increased event samples. The structure observed earlier at an invariant mass of 1528 MeV shifts to 1522 MeV and the statistical significance drops to about 2$\sigma$ for data taken with a deuterium target. The number of events above background is $68_{-31}^{+98}\text{(stat)}\pm13\text{(sys)}$. Read More

2014Nov
Authors: D. Abbaneo, M. Abbas, M. Abbrescia, A. A. Abdelalim, M. Abi Akl, W. Ahmed, W. Ahmed, P. Altieri, R. Aly, C. Asawatangtrakuldee, A. Ashfaq, P. Aspell, Y. Assran, I. Awan, S. Bally, Y. Ban, S. Banerjee, P. Barria, L. Benussi, V. Bhopatkar, S. Bianco, J. Bos, O. Bouhali, S. Braibant, S. Buontempo, C. Calabria, M. Caponero, C. Caputo, F. Cassese, A. Castaneda, S. Cauwenbergh, F. R. Cavallo, A. Celik, M. Choi, K. Choi, S. Choi, J. Christiansen, A. Cimmino, S. Colafranceschi, A. Colaleo, A. Conde Garcia, M. M. Dabrowski, G. De Lentdecker, R. De Oliveira, G. de Robertis, S. Dildick, B. Dorney, W. Elmetenawee, G. Fabrice, M. Ferrini, S. Ferry, P. Giacomelli, J. Gilmore, L. Guiducci, A. Gutierrez, R. M. Hadjiiska, A. Hassan, J. Hauser, K. Hoepfner, M. Hohlmann, H. Hoorani, Y. G. Jeng, T. Kamon, P. E. Karchin, H. S. Kim, S. Krutelyov, A. Kumar, J. Lee, T. Lenzi, L. Litov, F. Loddo, T. Maerschalk, G. Magazzu, M. Maggi, Y. Maghrbi, A. Magnani, N. Majumdar, P. K. Mal, K. Mandal, A. Marchioro, A. Marinov, J. A. Merlin, A. K. Mohanty, A. Mohapatra, S. Muhammad, S. Mukhopadhyay, M. Naimuddin, S. Nuzzo, E. Oliveri, L. M. Pant, P. Paolucci, I. Park, G. Passeggio, B. Pavlov, B. Philipps, M. Phipps, D. Piccolo, H. Postema, G. Pugliese, A. Puig Baranac, A. Radi, R. Radogna, G. Raffone, S. Ramkrishna, A. Ranieri, C. Riccardi, A. Rodrigues, L. Ropelewski, S. RoyChowdhury, M. S. Ryu, G. Ryu, A. Safonov, A. Sakharov, S. Salva, G. Saviano, A. Sharma, S. K. Swain, J. P. Talvitie, C. Tamma, A. Tatarinov, N. Turini, T. Tuuva, J. Twigger, M. Tytgat, I. Vai, M. van Stenis, R. Venditi, E. Verhagen, P. Verwilligen, P. Vitulo, D. Wang, M. Wang, U. Yang, Y. Yang, R. Yonamine, N. Zaganidis, F. Zenoni, A. Zhang

Gas Electron Multiplier (GEM) technology is being considered for the forward muon upgrade of the CMS experiment in Phase 2 of the CERN LHC. Its first implementation is planned for the GE1/1 system in the $1.5 < \mid\eta\mid < 2. Read More

2014Nov
Authors: The CALICE Collaboration, B. Bilki1, J. Repond2, J. Schlereth3, L. Xia4, Z. Deng5, Y. Li6, Y. Wang7, Q. Yue8, Z. Yang9, G. Eigen10, Y. Mikami11, T. Price12, N. K. Watson13, M. A. Thomson14, D. R. Ward15, D. Benchekroun16, A. Hoummada17, Y. Khoulaki18, C. Cârloganu19, S. Chang20, A. Khan21, D. H. Kim22, D. J. Kong23, Y. D. Oh24, G. C. Blazey25, A. Dyshkant26, K. Francis27, J. G. R. Lima28, P. Salcido29, V. Zutshi30, V. Boisvert31, B. Green32, A. Misiejuk33, F. Salvatore34, K. Kawagoe35, Y. Miyazaki36, Y. Sudo37, T. Suehara38, T. Tomita39, H. Ueno40, T. Yoshioka41, J. Apostolakis42, G. Folger43, G. Folger44, V. Ivantchenko45, A. Ribon46, V. Uzhinskiy47, S. Cauwenbergh48, M. Tytgat49, N. Zaganidis50, J. -Y. Hostachy51, L. Morin52, K. Gadow53, P. Göttlicher54, C. Günter55, K. Krüger56, B. Lutz57, M. Reinecke58, F. Sefkow59, N. Feege60, E. Garutti61, S. Laurien62, S. Lu63, I. Marchesini64, M. Matysek65, M. Ramilli66, A. Kaplan67, E. Norbeck68, D. Northacker69, Y. Onel70, E. J. Kim71, B. van Doren72, G. W. Wilson73, M. Wing74, B. Bobchenko75, M. Chadeeva76, R. Chistov77, M. Danilov78, A. Drutskoy79, A. Epifantsev80, O. Markin81, R. Mizuk82, E. Novikov83, V. Popov84, V. Rusinov85, E. Tarkovsky86, D. Besson87, E. Popova88, M. Gabriel89, C. Kiesling90, F. Simon91, C. Soldner92, M. Szalay93, M. Tesar94, L. Weuste95, M. S. Amjad96, J. Bonis97, S. Callier98, S. Conforti di Lorenzo99, P. Cornebise100, Ph. Doublet101, F. Dulucq102, M. Faucci-Giannelli103, J. Fleury104, T. Frisson105, B. Kégl106, N. van der Kolk107, H. Li108, G. Martin-Chassard109, F. Richard110, Ch. de la Taille111, R. Pöschl112, L. Raux113, J. Rouëné114, N. Seguin-Moreau115, M. Anduze116, V. Balagura117, E. Becheva118, V. Boudry119, J-C. Brient120, R. Cornat121, M. Frotin122, F. Gastaldi123, F. Magniette124, A. Matthieu125, P. Mora de Freitas126, H. Videau127, J-E. Augustin128, J. David129, P. Ghislain130, D. Lacour131, L. Lavergne132, J. Zacek133, J. Cvach134, P. Gallus135, M. Havranek136, M. Janata137, J. Kvasnicka138, D. Lednicky139, M. Marcisovsky140, I. Polak141, J. Popule142, L. Tomasek143, M. Tomasek144, P. Ruzicka145, P. Sicho146, J. Smolik147, V. Vrba148, J. Zalesak149, D. Jeans150, M. Götze151
Affiliations: 1Argonne National Laboratory, Argonne, USA, 2Argonne National Laboratory, Argonne, USA, 3Argonne National Laboratory, Argonne, USA, 4Argonne National Laboratory, Argonne, USA, 5Tsinghua University, Beijing, P.R. China, 6Tsinghua University, Beijing, P.R. China, 7Tsinghua University, Beijing, P.R. China, 8Tsinghua University, Beijing, P.R. China, 9Tsinghua University, Beijing, P.R. China, 10University of Bergen, Bergen, Norway, 11University of Birmingham, Birmingham, UK, 12University of Birmingham, Birmingham, UK, 13University of Birmingham, Birmingham, UK, 14University of Cambridge, Cambridge, UK, 15University of Cambridge, Cambridge, UK, 16Université Hassan II Aïn Chock, Faculté des sciences, Casablanca, Morocco, 17Université Hassan II Aïn Chock, Faculté des sciences, Casablanca, Morocco, 18Université Hassan II Aïn Chock, Faculté des sciences, Casablanca, Morocco, 19Clermont Université, Université Blaise Pascal, Clermont-Ferrand, France, 20Department of Physics, Kyungpook National University, Daegu, Republic of Korea, 21Department of Physics, Kyungpook National University, Daegu, Republic of Korea, 22Department of Physics, Kyungpook National University, Daegu, Republic of Korea, 23Department of Physics, Kyungpook National University, Daegu, Republic of Korea, 24Department of Physics, Kyungpook National University, Daegu, Republic of Korea, 25NICADD, Northern Illinois University, Department of Physics, DeKalb, USA, 26NICADD, Northern Illinois University, Department of Physics, DeKalb, USA, 27NICADD, Northern Illinois University, Department of Physics, DeKalb, USA, 28NICADD, Northern Illinois University, Department of Physics, DeKalb, USA, 29NICADD, Northern Illinois University, Department of Physics, DeKalb, USA, 30NICADD, Northern Illinois University, Department of Physics, DeKalb, USA, 31Royal Holloway University of London, Dept. of Physics, Egham, UK, 32Royal Holloway University of London, Dept. of Physics, Egham, UK, 33Royal Holloway University of London, Dept. of Physics, Egham, UK, 34Royal Holloway University of London, Dept. of Physics, Egham, UK, 35Department of Physics, Kyushu University, Fukuoka, Japan, 36Department of Physics, Kyushu University, Fukuoka, Japan, 37Department of Physics, Kyushu University, Fukuoka, Japan, 38Department of Physics, Kyushu University, Fukuoka, Japan, 39Department of Physics, Kyushu University, Fukuoka, Japan, 40Department of Physics, Kyushu University, Fukuoka, Japan, 41Department of Physics, Kyushu University, Fukuoka, Japan, 42CERN, Genève, Switzerland, 43CERN, Genève, Switzerland, 44CERN, Genève, Switzerland, 45CERN, Genève, Switzerland, 46CERN, Genève, Switzerland, 47CERN, Genève, Switzerland, 48Ghent University, Department of Physics and Astronomy, Gent, Belgium, 49Ghent University, Department of Physics and Astronomy, Gent, Belgium, 50Ghent University, Department of Physics and Astronomy, Gent, Belgium, 51Laboratoire de Physique Subatomique et de Cosmologie - Université Grenoble-Alpes, Grenoble, France, 52Laboratoire de Physique Subatomique et de Cosmologie - Université Grenoble-Alpes, Grenoble, France, 53DESY, Hamburg, Germany, 54DESY, Hamburg, Germany, 55DESY, Hamburg, Germany, 56DESY, Hamburg, Germany, 57DESY, Hamburg, Germany, 58DESY, Hamburg, Germany, 59DESY, Hamburg, Germany, 60Univ. Hamburg, Physics Department, Institut für Experimentalphysik, Hamburg, Germany, 61Univ. Hamburg, Physics Department, Institut für Experimentalphysik, Hamburg, Germany, 62Univ. Hamburg, Physics Department, Institut für Experimentalphysik, Hamburg, Germany, 63Univ. Hamburg, Physics Department, Institut für Experimentalphysik, Hamburg, Germany, 64Univ. Hamburg, Physics Department, Institut für Experimentalphysik, Hamburg, Germany, 65Univ. Hamburg, Physics Department, Institut für Experimentalphysik, Hamburg, Germany, 66Univ. Hamburg, Physics Department, Institut für Experimentalphysik, Hamburg, Germany, 67University of Heidelberg, Fakultät für Physik und Astronomie, Heidelberg, Germany, 68University of Iowa, Dept. of Physics and Astronomy, Iowa City, USA, 69University of Iowa, Dept. of Physics and Astronomy, Iowa City, USA, 70University of Iowa, Dept. of Physics and Astronomy, Iowa City, USA, 71Chonbuk National University, Jeonju, South Korea, 72University of Kansas, Department of Physics and Astronomy, Lawrence, USA, 73University of Kansas, Department of Physics and Astronomy, Lawrence, USA, 74Department of Physics and Astronomy, University College London, London, UK, 75Institute of Theoretical and Experimental Physics, Moscow, Russia, 76Institute of Theoretical and Experimental Physics, Moscow, Russia, 77Institute of Theoretical and Experimental Physics, Moscow, Russia, 78Institute of Theoretical and Experimental Physics, Moscow, Russia, 79Institute of Theoretical and Experimental Physics, Moscow, Russia, 80Institute of Theoretical and Experimental Physics, Moscow, Russia, 81Institute of Theoretical and Experimental Physics, Moscow, Russia, 82Institute of Theoretical and Experimental Physics, Moscow, Russia, 83Institute of Theoretical and Experimental Physics, Moscow, Russia, 84Institute of Theoretical and Experimental Physics, Moscow, Russia, 85Institute of Theoretical and Experimental Physics, Moscow, Russia, 86Institute of Theoretical and Experimental Physics, Moscow, Russia, 87MEPhI, Moscow, Russia, 88MEPhI, Moscow, Russia, 89Max Planck Inst. für Physik, Munich, Germany, 90Max Planck Inst. für Physik, Munich, Germany, 91Max Planck Inst. für Physik, Munich, Germany, 92Max Planck Inst. für Physik, Munich, Germany, 93Max Planck Inst. für Physik, Munich, Germany, 94Max Planck Inst. für Physik, Munich, Germany, 95Max Planck Inst. für Physik, Munich, Germany, 96Laboratoire de l'Accélérateur Linéaire, 97Laboratoire de l'Accélérateur Linéaire, 98Laboratoire de l'Accélérateur Linéaire, 99Laboratoire de l'Accélérateur Linéaire, 100Laboratoire de l'Accélérateur Linéaire, 101Laboratoire de l'Accélérateur Linéaire, 102Laboratoire de l'Accélérateur Linéaire, 103Laboratoire de l'Accélérateur Linéaire, 104Laboratoire de l'Accélérateur Linéaire, 105Laboratoire de l'Accélérateur Linéaire, 106Laboratoire de l'Accélérateur Linéaire, 107Laboratoire de l'Accélérateur Linéaire, 108Laboratoire de l'Accélérateur Linéaire, 109Laboratoire de l'Accélérateur Linéaire, 110Laboratoire de l'Accélérateur Linéaire, 111Laboratoire de l'Accélérateur Linéaire, 112Laboratoire de l'Accélérateur Linéaire, 113Laboratoire de l'Accélérateur Linéaire, 114Laboratoire de l'Accélérateur Linéaire, 115Laboratoire de l'Accélérateur Linéaire, 116Laboratoire Leprince-Ringuet, 117Laboratoire Leprince-Ringuet, 118Laboratoire Leprince-Ringuet, 119Laboratoire Leprince-Ringuet, 120Laboratoire Leprince-Ringuet, 121Laboratoire Leprince-Ringuet, 122Laboratoire Leprince-Ringuet, 123Laboratoire Leprince-Ringuet, 124Laboratoire Leprince-Ringuet, 125Laboratoire Leprince-Ringuet, 126Laboratoire Leprince-Ringuet, 127Laboratoire Leprince-Ringuet, 128Laboratoire de Physique Nucléaire et de Hautes Energies, 129Laboratoire de Physique Nucléaire et de Hautes Energies, 130Laboratoire de Physique Nucléaire et de Hautes Energies, 131Laboratoire de Physique Nucléaire et de Hautes Energies, 132Laboratoire de Physique Nucléaire et de Hautes Energies, 133Charles University, Institute of Particle \& Nuclear Physics, Prague, Czech Republic, 134Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 135Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 136Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 137Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 138Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 139Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 140Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 141Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 142Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 143Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 144Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 145Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 146Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 147Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 148Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 149Institute of Physics, Academy of Sciences of the Czech Republic, Prague, Czech Republic, 150Department of Physics, Graduate School of Science, The University of Tokyo, Tokyo, Japan, 151Bergische Universität Wuppertal, Wuppertal, Germany

A detailed study of hadronic interactions is presented using data recorded with the highly granular CALICE silicon-tungsten electromagnetic calorimeter. Approximately 350,000 selected negatively charged pion events at energies between 2 and 10 GeV have been studied. The predictions of several physics models available within the Geant4 simulation tool kit are compared to this data. Read More

2014Nov
Authors: The CMS, LHCb Collaborations, :, V. Khachatryan, A. M. Sirunyan, A. Tumasyan, W. Adam, T. Bergauer, M. Dragicevic, J. Erö, M. Friedl, R. Frühwirth, V. M. Ghete, C. Hartl, N. Hörmann, J. Hrubec, M. Jeitler, W. Kiesenhofer, V. Knünz, M. Krammer, I. Krätschmer, D. Liko, I. Mikulec, D. Rabady, B. Rahbaran, H. Rohringer, R. Schöfbeck, J. Strauss, W. Treberer-Treberspurg, W. Waltenberger, C. -E. Wulz, V. Mossolov, N. Shumeiko, J. Suarez Gonzalez, S. Alderweireldt, S. Bansal, T. Cornelis, E. A. De Wolf, X. Janssen, A. Knutsson, J. Lauwers, S. Luyckx, S. Ochesanu, R. Rougny, M. Van De Klundert, H. Van Haevermaet, P. Van Mechelen, N. Van Remortel, A. Van Spilbeeck, F. Blekman, S. Blyweert, J. D'Hondt, N. Daci, N. Heracleous, J. Keaveney, S. Lowette, M. Maes, A. Olbrechts, Q. Python, D. Strom, S. Tavernier, W. Van Doninck, P. Van Mulders, G. P. Van Onsem, I. Villella, C. Caillol, B. Clerbaux, G. De Lentdecker, D. Dobur, L. Favart, A. P. R. Gay, A. Grebenyuk, A. Léonard, A. Mohammadi, L. Perniè, A. Randle-conde, T. Reis, T. Seva, L. Thomas, C. Vander Velde, P. Vanlaer, J. Wang, F. Zenoni, V. Adler, K. Beernaert, L. Benucci, A. Cimmino, S. Costantini, S. Crucy, S. Dildick, A. Fagot, G. Garcia, J. Mccartin, A. A. Ocampo Rios, D. Ryckbosch, S. Salva Diblen, M. Sigamani, N. Strobbe, F. Thyssen, M. Tytgat, E. Yazgan, N. Zaganidis, S. Basegmez, C. Beluffi, G. Bruno, R. Castello, A. Caudron, L. Ceard, G. G. Da Silveira, C. Delaere, T. du Pree, D. Favart, L. Forthomme, A. Giammanco, J. Hollar, A. Jafari, P. Jez, M. Komm, V. Lemaitre, C. Nuttens, D. Pagano, L. Perrini, A. Pin, K. Piotrzkowski, A. Popov, L. Quertenmont, M. Selvaggi, M. Vidal Marono, J. M. Vizan Garcia, N. Beliy, T. Caebergs, E. Daubie, G. H. Hammad, W. L. Aldá Júnior, G. A. Alves, L. Brito, M. Correa Martins Junior, T. Dos Reis Martins, C. Mora Herrera, M. E. Pol, P. Rebello Teles, W. Carvalho, J. Chinellato, A. Custódio, E. M. Da Costa, D. De Jesus Damiao, C. De Oliveira Martins, S. Fonseca De Souza, H. Malbouisson, D. Matos Figueiredo, L. Mundim, H. Nogima, W. L. Prado Da Silva, J. Santaolalla, A. Santoro, A. Sznajder, E. J. Tonelli Manganote, A. Vilela Pereira, C. A. Bernardes, S. Dogra, T. R. Fernandez Perez Tomei, E. M. Gregores, P. G. Mercadante, S. F. Novaes, Sandra S. Padula, A. Aleksandrov, V. Genchev, R. Hadjiiska, P. Iaydjiev, A. Marinov, S. Piperov, M. Rodozov, G. Sultanov, M. Vutova, A. Dimitrov, I. Glushkov, L. Litov, B. Pavlov, P. Petkov, J. G. Bian, G. M. Chen, H. S. Chen, M. Chen, T. Cheng, R. Du, C. H. Jiang, R. Plestina, F. Romeo, J. Tao, Z. Wang, C. Asawatangtrakuldee, Y. Ban, Q. Li, S. Liu, Y. Mao, S. J. Qian, D. Wang, Z. Xu, W. Zou, C. Avila, A. Cabrera, L. F. Chaparro Sierra, C. Florez, J. P. Gomez, B. Gomez Moreno, J. C. Sanabria, N. Godinovic, D. Lelas, D. Polic, I. Puljak, Z. Antunovic, M. Kovac, V. Brigljevic, K. Kadija, J. Luetic, D. Mekterovic, L. Sudic, A. Attikis, G. Mavromanolakis, J. Mousa, C. Nicolaou, F. Ptochos, P. A. Razis, M. Bodlak, M. Finger, M. Finger Jr., Y. Assran, A. Ellithi Kamel, M. A. Mahmoud, A. Radi, M. Kadastik, M. Murumaa, M. Raidal, A. Tiko, P. Eerola, G. Fedi, M. Voutilainen, J. Härkönen, V. Karimäki, R. Kinnunen, M. J. Kortelainen, T. Lampén, K. Lassila-Perini, S. Lehti, T. Lindén, P. Luukka, T. Mäenpää, T. Peltola, E. Tuominen, J. Tuominiemi, E. Tuovinen, L. Wendland, J. Talvitie, T. Tuuva, M. Besancon, F. Couderc, M. Dejardin, D. Denegri, B. Fabbro, J. L. Faure, C. Favaro, F. Ferri, S. Ganjour, A. Givernaud, P. Gras, G. Hamel de Monchenault, P. Jarry, E. Locci, J. Malcles, J. Rander, A. Rosowsky, M. Titov, S. Baffioni, F. Beaudette, P. Busson, C. Charlot, T. Dahms, M. Dalchenko, L. Dobrzynski, N. Filipovic, A. Florent, R. Granier de Cassagnac, L. Mastrolorenzo, P. Miné, C. Mironov, I. N. Naranjo, M. Nguyen, C. Ochando, G. Ortona, P. Paganini, S. Regnard, R. Salerno, J. B. Sauvan, Y. Sirois, C. Veelken, Y. Yilmaz, A. Zabi, J. -L. Agram, J. Andrea, A. Aubin, D. Bloch, J. -M. Brom, E. C. Chabert, C. Collard, E. Conte, J. -C. Fontaine, D. Gelé, U. Goerlach, C. Goetzmann, A. -C. Le Bihan, K. Skovpen, P. Van Hove, S. Gadrat, S. Beauceron, N. Beaupere, G. Boudoul, E. Bouvier, S. Brochet, C. A. Carrillo Montoya, J. Chasserat, R. Chierici, D. Contardo, P. Depasse, H. El Mamouni, J. Fan, J. Fay, S. Gascon, M. Gouzevitch, B. Ille, T. Kurca, M. Lethuillier, L. Mirabito, S. Perries, J. D. Ruiz Alvarez, D. Sabes, L. Sgandurra, V. Sordini, M. Vander Donckt, P. Verdier, S. Viret, H. Xiao, Z. Tsamalaidze, C. Autermann, S. Beranek, M. Bontenackels, M. Edelhoff, L. Feld, A. Heister, O. Hindrichs, K. Klein, A. Ostapchuk, F. Raupach, J. Sammet, S. Schael, J. F. Schulte, H. Weber, B. Wittmer, V. Zhukov, M. Ata, M. Brodski, E. Dietz-Laursonn, D. Duchardt, M. Erdmann, R. Fischer, A. Güth, T. Hebbeker, C. Heidemann, K. Hoepfner, D. Klingebiel, S. Knutzen, P. Kreuzer, M. Merschmeyer, A. Meyer, P. Millet, M. Olschewski, K. Padeken, P. Papacz, H. Reithler, S. A. Schmitz, L. Sonnenschein, D. Teyssier, S. Thüer, M. Weber, V. Cherepanov, Y. Erdogan, G. Flügge, H. Geenen, M. Geisler, W. Haj Ahmad, F. Hoehle, B. Kargoll, T. Kress, Y. Kuessel, A. Künsken, J. Lingemann, A. Nowack, I. M. Nugent, O. Pooth, A. Stahl, M. Aldaya Martin, I. Asin, N. Bartosik, J. Behr, U. Behrens, A. J. Bell, A. Bethani, K. Borras, A. Burgmeier, A. Cakir, L. Calligaris, A. Campbell, S. Choudhury, F. Costanza, C. Diez Pardos, G. Dolinska, S. Dooling, T. Dorland, G. Eckerlin, D. Eckstein, T. Eichhorn, G. Flucke, J. Garay Garcia, A. Geiser, P. Gunnellini, J. Hauk, M. Hempel, H. Jung, A. Kalogeropoulos, M. Kasemann, P. Katsas, J. Kieseler, C. Kleinwort, I. Korol, D. Krücker, W. Lange, J. Leonard, K. Lipka, A. Lobanov, W. Lohmann, B. Lutz, R. Mankel, I. Marfin, I. -A. Melzer-Pellmann, A. B. Meyer, G. Mittag, J. Mnich, A. Mussgiller, S. Naumann-Emme, A. Nayak, E. Ntomari, H. Perrey, D. Pitzl, R. Placakyte, A. Raspereza, P. M. Ribeiro Cipriano, B. Roland, E. Ron, M. Ö. Sahin, J. Salfeld-Nebgen, P. Saxena, T. 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Oyanguren, P. Ruiz Valls, C. Sanchez Mayordomo, C. J. G. Onderwater, H. W. Wilschut, E. Pesen

A joint measurement is presented of the branching fractions $B^0_s\to\mu^+\mu^-$ and $B^0\to\mu^+\mu^-$ in proton-proton collisions at the LHC by the CMS and LHCb experiments. The data samples were collected in 2011 at a centre-of-mass energy of 7 TeV, and in 2012 at 8 TeV. The combined analysis produces the first observation of the $B^0_s\to\mu^+\mu^-$ decay, with a statistical significance exceeding six standard deviations, and the best measurement of its branching fraction so far. Read More

The fraction of primordial black holes (PBHs) of masses $10^{17} - 10^{26}$ g in the total amount of dark matter may be constrained by considering their capture by neutron stars (NSs), which leads to the rapid destruction of the latter. The constraints depend crucially on the capture rate which, in turn, is determined by the energy loss by a PBH passing through a NS. Two alternative approaches to estimate the energy loss have been used in the literature: the one based on the dynamical friction mechanism, and another on tidal deformations of the NS by the PBH. Read More

2014Jul

Exclusive electroproduction of $\omega$ mesons on unpolarized hydrogen and deuterium targets is studied in the kinematic region of Q$^2$>1.0 GeV$^2$, 3.0 GeV < W < 6. Read More

2014Jun
Authors: The HERMES Collaboration, A. Airapetian, N. Akopov, Z. Akopov, E. C. Aschenauer, W. Augustyniak, R. Avakian, A. Avetissian, E. Avetisyan, S. Belostotski, N. Bianchi, H. P. Blok, A. Borissov, J. Bowles, I. Brodski, V. Bryzgalov, J. Burns, M. Capiluppi, G. P. Capitani, E. Cisbani, G. Ciullo, M. Contalbrigo, P. F. Dalpiaz, W. Deconinck, R. De Leo, L. De Nardo, E. De Sanctis, M. Diefenthaler, P. Di Nezza, M. Düren, M. Ehrenfried, G. Elbakian, F. Ellinghaus, R. Fabbri, A. Fantoni, L. Felawka, S. Frullani, D. Gabbert, G. Gapienko, V. Gapienko, F. Garibaldi, G. Gavrilov, V. Gharibyan, F. Giordano, S. Gliske, M. Golembiovskaya, C. Hadjidakis, M. Hartig, D. Hasch, A. Hillenbrand, M. Hoek, Y. Holler, I. Hristova, Y. Imazu, A. Ivanilov, H. E. Jackson, H. S. Jo, S. Joosten, R. Kaiser, G. Karyan, T. Keri, E. Kinney, A. Kisselev, N. Kobayashi, V. Korotkov, V. Kozlov, P. Kravchenko, V. G. Krivokhijine, L. Lagamba, L. Lapikás, I. Lehmann, P. Lenisa, A. López Ruiz, W. Lorenzon, X. -G. Lu, B. -Q. Ma, D. Mahon, N. C. R. Makins, S. I. Manaenkov, Y. Mao, B. Marianski, A. Martinez de la Ossa, H. Marukyan, C. A. Miller, Y. Miyachi, A. Movsisyan, V. Muccifora, M. Murray, A. Mussgiller, E. Nappi, Y. Naryshkin, A. Nass, M. Negodaev, W. -D. Nowak, L. L. Pappalardo, R. Perez-Benito, P. E. Reimer, A. R. Reolon, C. Riedl, K. Rith, G. Rosner, A. Rostomyan, J. Rubin, D. Ryckbosch, Y. Salomatin, F. Sanftl, A. Schäfer, G. Schnell, K. P. Schüler, B. Seitz, T. -A. Shibata, V. Shutov, M. Stancari, M. Statera, E. Steffens, J. J. M. Steijger, J. Stewart, F. Stinzing, S. Taroian, A. Terkulov, R. Truty, A. Trzcinski, M. Tytgat, A. Vandenbroucke, Y. Van Haarlem, C. Van Hulse, D. Veretennikov, V. Vikhrov, I. Vilardi, S. Wang, S. Yaschenko, Z. Ye, W. Yu, V. Zagrebelnyy, D. Zeiler, B. Zihlmann, P. Zupranski

The transverse polarization of $\Lambda$ hyperons was measured in inclusive quasireal photoproduction for various target nuclei ranging from hydrogen to xenon. The data were obtained by the HERMES experiment at HERA using the 27.6 GeV lepton beam and nuclear gas targets internal to the lepton storage ring. Read More

Gamma ray spectral features are of interest for indirect searches of dark matter (DM). Following Barger et al, we consider 3 simple scenarios of DM that annihilates into Standard Model (SM) fermion pairs. Scenario 1 is a Majorana DM candidate coupled to a charged scalar, scenario 2 is a Majorana DM coupled to a charged gauge boson and scenario 3 is a real scalar DM coupled a charged vector-like fermion. Read More

2014Apr
Authors: C. Adloff1, J. -J. Blaising2, M. Chefdeville3, C. Drancourt4, R. Gaglione5, N. Geffroy6, Y. Karyotakis7, I. Koletsou8, J. Prast9, G. Vouters J. Repond10, J. Schlereth11, L. Xia E. Baldolemar12, J. Li13, S. T. Park14, M. Sosebee15, A. P. White16, J. Yu17, G. Eigen18, M. A. Thomson19, D. R. Ward20, D. Benchekroun21, A. Hoummada22, Y. Khoulaki J. Apostolakis23, S. Arfaoui24, M. Benoit25, D. Dannheim26, K. Elsener27, G. Folger28, C. Grefe29, V. Ivantchenko30, M. Killenberg31, W. Klempt32, E. van der Kraaij33, L. Linssen34, A. -I. Lucaci-Timoce35, A. Münnich36, S. Poss37, A. Ribon38, P. Roloff39, A. Sailer40, D. Schlatter41, E. Sicking42, J. Strube43, V. Uzhinskiy44, C. Carloganu45, P. Gay46, S. Manen47, L. Royer48, U. Cornett49, D. David50, A. Ebrahimi51, G. Falley52, N. Feege53, K. Gadow54, P. Göttlicher55, C. Günter56, O. Hartbrich57, B. Hermberg58, S. Karstensen59, F. Krivan60, K. Krüger61, S. Lu62, B. Lutz63, S. Morozov64, V. Morgunov65, C. Neubüser66, M. Reinecke67, F. Sefkow68, P. Smirnov69, M. Terwort70, A. Fagot71, M. Tytgat72, N. Zaganidis73, J. -Y. Hostachy74, L. Morin75, E. Garutti76, S. Laurien77, I. Marchesini78, M. Matysek79, M. Ramilli80, K. Briggl81, P. Eckert82, T. Harion83, H. -Ch. Schultz-Coulon84, W. Shen85, R. Stamen86, S. Chang87, A. Khan88, D. H. Kim89, D. J. Kong90, Y. D. Oh91, B. Bilki92, E. Norbeck93, D. Northacker94, Y. Onel95, G. W. Wilson96, K. Kawagoe97, Y. Miyazaki98, Y. Sudo99, H. Ueno100, T. Yoshioka101, P. D. Dauncey102, E. Cortina Gil103, S. Mannai104, G. Baulieu105, P. Calabria106, L. Caponetto107, C. Combaret108, R. Della Negra109, R. Ete110, G. Grenier111, R. Han112, J-C. Ianigro113, R. Kieffer114, I. Laktineh115, N. Lumb116, H. Mathez117, L. Mirabito118, A. Petrukhin119, A. Steen120, W. Tromeur121, M. Vander Donckt122, Y. Zoccarato J. Berenguer Antequera123, E. Calvo Alamillo124, M. -C. Fouz125, J. Puerta-Pelayo126, F. Corriveau127, B. Bobchenko128, M. Chadeeva129, M. Danilov130, A. Epifantsev131, O. Markin132, R. Mizuk133, E. Novikov134, V. Rusinov135, E. Tarkovsky136, V. Kozlov137, Y. Soloviev138, D. Besson139, P. Buzhan140, A. Ilyin141, V. Kantserov142, V. Kaplin143, E. Popova144, V. Tikhomirov145, M. Gabriel146, C. Kiesling147, K. Seidel148, F. Simon149, C. Soldner150, M. Szalay151, M. Tesar152, L. Weuste153, M. S. Amjad154, J. Bonis155, S. Conforti di Lorenzo156, P. Cornebise157, J. Fleury158, T. Frisson159, N. van der Kolk160, F. Richard161, R. Pöschl162, J. Rouene163, M. Anduze164, V. Balagura165, E. Becheva166, V. Boudry167, J-C. Brient168, R. Cornat169, M. Frotin170, F. Gastaldi171, E. Guliyev172, Y. Haddad173, F. Magniette174, M. Ruan175, T. H. Tran176, H. Videau177, S. Callier178, F. Dulucq179, G. Martin-Chassard180, Ch. de la Taille181, L. Raux182, N. Seguin-Moreau183, J. Zacek184, J. Cvach185, P. Gallus186, M. Havranek187, M. Janata188, J. Kvasnicka189, D. Lednicky190, M. Marcisovsky191, I. Polak192, J. Popule193, L. Tomasek194, M. Tomasek195, P. Ruzicka196, P. Sicho197, J. Smolik198, V. Vrba199, J. Zalesak200, . Belhorma201, H. Ghazlane202, K. Kotera203, H. Ono204, T. Takeshita205, S. Uozumi206, J. S. Chai207, H. S. Song208, S. H. Lee209, M. Götze210, J. Sauer211, S. Weber212, C. Zeitnitz213
Affiliations: 1The CALICE Collaboration, 2The CALICE Collaboration, 3The CALICE Collaboration, 4The CALICE Collaboration, 5The CALICE Collaboration, 6The CALICE Collaboration, 7The CALICE Collaboration, 8The CALICE Collaboration, 9The CALICE Collaboration, 10The CALICE Collaboration, 11The CALICE Collaboration, 12The CALICE Collaboration, 13The CALICE Collaboration, 14The CALICE Collaboration, 15The CALICE Collaboration, 16The CALICE Collaboration, 17The CALICE Collaboration, 18The CALICE Collaboration, 19The CALICE Collaboration, 20The CALICE Collaboration, 21The CALICE Collaboration, 22The CALICE Collaboration, 23The CALICE Collaboration, 24The CALICE Collaboration, 25The CALICE Collaboration, 26The CALICE Collaboration, 27The CALICE Collaboration, 28The CALICE Collaboration, 29The CALICE Collaboration, 30The CALICE Collaboration, 31The CALICE Collaboration, 32The CALICE Collaboration, 33The CALICE Collaboration, 34The CALICE Collaboration, 35The CALICE Collaboration, 36The CALICE 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CALICE Collaboration, 73The CALICE Collaboration, 74The CALICE Collaboration, 75The CALICE Collaboration, 76The CALICE Collaboration, 77The CALICE Collaboration, 78The CALICE Collaboration, 79The CALICE Collaboration, 80The CALICE Collaboration, 81The CALICE Collaboration, 82The CALICE Collaboration, 83The CALICE Collaboration, 84The CALICE Collaboration, 85The CALICE Collaboration, 86The CALICE Collaboration, 87The CALICE Collaboration, 88The CALICE Collaboration, 89The CALICE Collaboration, 90The CALICE Collaboration, 91The CALICE Collaboration, 92The CALICE Collaboration, 93The CALICE Collaboration, 94The CALICE Collaboration, 95The CALICE Collaboration, 96The CALICE Collaboration, 97The CALICE Collaboration, 98The CALICE Collaboration, 99The CALICE Collaboration, 100The CALICE Collaboration, 101The CALICE Collaboration, 102The CALICE Collaboration, 103The CALICE Collaboration, 104The CALICE Collaboration, 105The CALICE Collaboration, 106The CALICE Collaboration, 107The CALICE 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142The CALICE Collaboration, 143The CALICE Collaboration, 144The CALICE Collaboration, 145The CALICE Collaboration, 146The CALICE Collaboration, 147The CALICE Collaboration, 148The CALICE Collaboration, 149The CALICE Collaboration, 150The CALICE Collaboration, 151The CALICE Collaboration, 152The CALICE Collaboration, 153The CALICE Collaboration, 154The CALICE Collaboration, 155The CALICE Collaboration, 156The CALICE Collaboration, 157The CALICE Collaboration, 158The CALICE Collaboration, 159The CALICE Collaboration, 160The CALICE Collaboration, 161The CALICE Collaboration, 162The CALICE Collaboration, 163The CALICE Collaboration, 164The CALICE Collaboration, 165The CALICE Collaboration, 166The CALICE Collaboration, 167The CALICE Collaboration, 168The CALICE Collaboration, 169The CALICE Collaboration, 170The CALICE Collaboration, 171The CALICE Collaboration, 172The CALICE Collaboration, 173The CALICE Collaboration, 174The CALICE Collaboration, 175The CALICE Collaboration, 176The CALICE Collaboration, 177The CALICE Collaboration, 178The CALICE Collaboration, 179The CALICE Collaboration, 180The CALICE Collaboration, 181The CALICE Collaboration, 182The CALICE Collaboration, 183The CALICE Collaboration, 184The CALICE Collaboration, 185The CALICE Collaboration, 186The CALICE Collaboration, 187The CALICE Collaboration, 188The CALICE Collaboration, 189The CALICE Collaboration, 190The CALICE Collaboration, 191The CALICE Collaboration, 192The CALICE Collaboration, 193The CALICE Collaboration, 194The CALICE Collaboration, 195The CALICE Collaboration, 196The CALICE Collaboration, 197The CALICE Collaboration, 198The CALICE Collaboration, 199The CALICE Collaboration, 200The CALICE Collaboration, 201The CALICE Collaboration, 202The CALICE Collaboration, 203The CALICE Collaboration, 204The CALICE Collaboration, 205The CALICE Collaboration, 206The CALICE Collaboration, 207The CALICE Collaboration, 208The CALICE Collaboration, 209The CALICE Collaboration, 210The CALICE Collaboration, 211The CALICE Collaboration, 212The CALICE Collaboration, 213The CALICE Collaboration

The intrinsic time structure of hadronic showers influences the timing capability and the required integration time of hadronic calorimeters in particle physics experiments, and depends on the active medium and on the absorber of the calorimeter. With the CALICE T3B experiment, a setup of 15 small plastic scintillator tiles read out with Silicon Photomultipliers, the time structure of showers is measured on a statistical basis with high spatial and temporal resolution in sampling calorimeters with tungsten and steel absorbers. The results are compared to GEANT4 (version 9. Read More

We consider a simple, yet generic scenario in which a new heavy $Z'$ gauge boson couples both to SM fermions and to dark matter. In this framework we confront the best LHC limits on an extra gauge boson $Z'$ to the constraints on couplings to dark matter from direct detection experiments. In particular we show that the LHC searches for resonant production of dileptons and the recent exclusion limits obtained by the LUX collaboration give complementary constraints. Read More

2013Dec

An earlier extraction from the HERMES experiment of the polarization-averaged parton distribution of strange quarks in the nucleon has been reevaluated using final data on the multiplicities of charged kaons in semi-inclusive deep-inelastic scattering obtained with a kinematically more comprehensive method of correcting for experimental effects. General features of the distribution are confirmed, but the rise at low x is less pronounced than previously reported. Read More

2013Nov
Authors: CALICE Collaboration, K. Francis, J. Repond, J. Schlereth, J. Smith, L. Xia, E. Baldolemar, J. Li, S. T. Park, M. Sosebee, A. P. White, J. Yu, G. Eigen, Y. Mikami, N. K. Watson, M. A. Thomson, D. R. Ward, D. Benchekroun, A. Hoummada, Y. Khoulaki, J. Apostolakis, A. Dotti, G. Folger, V. Ivantchenko, A. Ribon, V. Uzhinskiy, C. Carloganu, P. Gay, S. Manen, L. Royer, M. Tytgat, N. Zaganidis, G. C. Blazey, A. Dyshkant, J. G. R. Lima, V. Zutshi, J. -Y. Hostachy, L. Morin, U. Cornett, D. David, A. Ebrahimi, G. Falley, K. Gadow, P. Goettlicher, C. Guenter, O. Hartbrich, B. Hermberg, S. Karstensen, F. Krivan, K. Krueger, B. Lutz, S. Morozov, V. Morgunov, C. Neubueser, M. Reinecke, F. Sefkow, P. Smirnov, M. Terwort, E. Garutti, S. Laurien, S. Lu, I. Marchesini, M. Matysek, M. Ramilli, K. Briggl, P. Eckert, T. Harion, H. -Ch. Schultz-Coulon, W. Shen, R. Stamen, B. Bilki, E. Norbeck, D. Northacker, Y. Onel, G. W. Wilson, K. Kawagoe, Y. Sudo, T. Yoshioka, P. D. Dauncey, M. Wing, F. Salvatore, E. Cortina Gil, S. Mannai, G. Baulieu, P. Calabria, L. Caponetto, C. Combaret, R. Della Negra, G. Grenier, R. Han, J-C. Ianigro, R. Kieffer, I. Laktineh, N. Lumb, H. Mathez, L. Mirabito, A. Petrukhin, A. Steen, W. Tromeur, M. Vander Donckt, Y. Zoccarato, E. Calvo Alamillo, M. -C. Fouz, J. Puerta-Pelayo, F. Corriveau, B. Bobchenko, M. Chadeeva, M. Danilov, A. Epifantsev, O. Markin, R. Mizuk, E. Novikov, V. Popov, V. Rusinov, E. Tarkovsky, D. Besson, P. Buzhan, A. Ilyin, V. Kantserov, V. Kaplin, A. Karakash, E. Popova, V. Tikhomirov, C. Kiesling, K. Seidel, F. Simon, C. Soldner, L. Weuste, M. S. Amjad, J. Bonis, S. Callier, S. Conforti di Lorenzo, P. Cornebise, Ph. Doublet, F. Dulucq, J. Fleury, T. Frisson, N. van der Kolk, H. Li, G. Martin-Chassard, F. Richard, Ch. de la Taille, R. Poeschl, L. Raux, J. Rouene, N. Seguin-Moreau, M. Anduze, V. Balagura, V. Boudry, J-C. Brient, R. Cornat, M. Frotin, F. Gastaldi, E. Guliyev, Y. Haddad, F. Magniette, G. Musat, M. Ruan, T. H. Tran, H. Videau, B. Bulanek, J. Zacek, J. Cvach, P. Gallus, M. Havranek, M. Janata, J. Kvasnicka, D. Lednicky, M. Marcisovsky, I. Polak, J. Popule, L. Tomasek, M. Tomasek, P. Ruzicka, P. Sicho, J. Smolik, V. Vrba, J. Zalesak, B. Belhorma, H. Ghazlane, K. Kotera, H. Ono, T. Takeshita, S. Uozumi, D. Jeans, S. Chang, A. Khan, D. H. Kim, D. J. Kong, Y. D. Oh, M. Goetze, J. Sauer, S. Weber, C. Zeitnitz

A first prototype of a scintillator strip-based electromagnetic calorimeter was built, consisting of 26 layers of tungsten absorber plates interleaved with planes of 45x10x3 mm3 plastic scintillator strips. Data were collected using a positron test beam at DESY with momenta between 1 and 6 GeV/c. The prototype's performance is presented in terms of the linearity and resolution of the energy measurement. Read More

2013Nov
Authors: C. Adloff, J. -J. Blaising, M. Chefdeville, C. Drancourt, R. Gaglione, N. Geffroy, Y. Karyotakis, I. Koletsou, J. Prast, G. Vouters, J. Repond, J. Schlereth, J. Smith, L. Xia, E. Baldolemar, J. Li, S. T. Park, M. Sosebee, A. P. White, J. Yu, G. Eigen, M. A. Thomson, D. R. Ward, D. Benchekroun, A. Hoummada, Y. Khoulaki, J. Apostolakis, D. Dannheim, A. Dotti, K. Elsener, G. Folger, C. Grefe, V. Ivantchenko, M. Killenberg, W. Klempt, E. van der Kraaij, C. B. Lam, L. Linssen, A. -I. Lucaci-Timoce, A. Muennich, S. Poss, A. Ribon, A. Sailer, D. Schlatter, J. Strube, V. Uzhinskiy, C. Carloganu, P. Gay, S. Manen, L. Royer, M. Tytgat, N. Zaganidis, G. C. Blazey, A. Dyshkant, J. G. R. Lima, V. Zutshi, J. -Y. Hostachy, L. Morin, U. Cornett, D. David, A. Ebrahimi, G. Falley, N. Feege, K. Gadow, P. Goettlicher, C. Guenter, O. Hartbrich, B. Hermberg, S. Karstensen, F. Krivan, K. Krueger, S. Lu, B. Lutz, S. Morozov, V. Morgunov, C. Neubueser, M. Reinecke, F. Sefkow, P. Smirnov, M. Terwort, E. Garutti, S. Laurien, I. Marchesini, M. Matysek, M. Ramilli, K. Briggl, P. Eckert, T. Harion, H. -Ch. Schultz-Coulon, W. Shen, R. Stamen, B. Bilki, E. Norbeck, D. Northacker, Y. Onel, G. W. Wilson, K. Kawagoe, Y. Sudo, T. Yoshioka, P. D. Dauncey, M. Wing, F. Salvatore, E. Cortina Gil, S. Mannai, G. Baulieu, P. Calabria, L. Caponetto, C. Combaret, R. Della Negra, G. Grenier, R. Han, J-C. Ianigro, R. Kieffer, I. Laktineh, N. Lumb, H. Mathez, L. Mirabito, A. Petrukhin, A. Steen, W. Tromeur, M. Vander Donckt, Y. Zoccarato, E. Calvo Alamillo, M. -C. Fouz, J. Puerta-Pelayo, F. Corriveau, B. Bobchenko, M. Chadeeva, M. Danilov, A. Epifantsev, O. Markin, R. Mizuk, E. Novikov, V. Popov, V. Rusinov, E. Tarkovsky, N. Kirikova, V. Kozlov, P. Smirnov, Y. Soloviev, D. Besson, P. Buzhan, A. Ilyin, V. Kantserov, V. Kaplin, A. Karakash, E. Popova, V. Tikhomirov, C. Kiesling, K. Seidel, F. Simon, C. Soldner, M. Szalay, M. Tesar, L. Weuste, M. S. Amjad, J. Bonis, S. Callier, S. Conforti di Lorenzo, P. Cornebise, Ph. Doublet, F. Dulucq, J. Fleury, T. Frisson, N. van der Kolk, H. Li, G. Martin-Chassard, F. Richard, Ch. de la Taille, R. Poeschl, L. Raux, J. Rouene, N. Seguin-Moreau, M. Anduze, V. Balagura, V. Boudry, J-C. Brient, R. Cornat, M. Frotin, F. Gastaldi, E. Guliyev, Y. Haddad, F. Magniette, G. Musat, M. Ruan,