CMS physics technical design report, volume II:: Physics performance

被引:761
|
作者
Bayatian, G. L. [1 ]
Chatrchyan, S.
Hmayakyan, G.
Sirunyan, A. M.
Adam, W.
Bergauer, T.
Dragicevic, M.
Eroe, J.
Friedl, M.
Fruehwirth, R.
Ghete, V.
Glaser, P.
Hrubec, J.
Jeitler, M.
Krammer, M.
Magrans, I.
Mikulec, I.
Mitaroff, W.
Noebauer, T.
Pernicka, M.
Porth, P.
Rohringer, H.
Strauss, J.
Taurok, A.
Waltenberger, W.
Walzel, G.
Widl, E.
Wulz, C-E
Fedorov, A.
Korzhik, M.
Missevitch, O.
Zuyeuski, R.
Chekhovsky, V.
Dvornikov, O.
Emeliantchik, I.
Litomin, A.
Mossolov, V.
Shumeiko, N.
Solin, A.
Stefanovitch, R.
Gonzalez, J. Suarez
Tikhonov, A.
Petrov, V.
D'Hondt, J.
De Weirdt, S.
Goorens, R.
Heyninck, J.
Lowette, S.
Tavernier, S.
Van Doninck, W.
机构
[1] Yerevan Phys Inst, Yerevan 375036, Armenia
[2] OeAW, Inst Hochenergie Phys, Vienna, Austria
[3] Res Inst Nucl Problems, Minsk, BELARUS
[4] Natl Ctr Particle & High Energy Phys, Minsk, BELARUS
[5] Byelarussian State Univ, Minsk, BELARUS
[6] Vrije Univ Brussels, Brussels, Belgium
[7] Univ Libre Bruxelles, Brussels, Belgium
[8] Catholic Univ Louvain, B-3000 Louvain, Belgium
[9] Univ Mons Hainaut, Mons, Belgium
[10] Univ Antwerp, Antwerp, Belgium
[11] Ctr Brasileiro Pesquisas Fis, Rio De Janeiro, Brazil
[12] Univ Estado Rio de Janeiro, Rio De Janeiro, Brazil
[13] Univ Fed Rio de Janeiro, Inst Fis, Rio De Janeiro, Brazil
[14] Univ Estadual Paulista, Inst Fis Teor, BR-01405 Sao Paulo, SP, Brazil
[15] Inst Nucl Energy Res, Sofia, Bulgaria
[16] Univ Sofia, BU-1126 Sofia, Bulgaria
[17] Inst High Energy Phys, Beijing 100039, Peoples R China
[18] Peking Univ, Beijing 100871, Peoples R China
[19] Univ Sci & Technol China, Hefei 230026, Anhui, Peoples R China
[20] Tech Univ Split, Split, Croatia
[21] Univ Split, Split, Croatia
[22] Rudjer Boskovic Inst, Zagreb, Croatia
[23] Univ Cyprus, Nicosia, Cyprus
[24] NICPB, Tallinn, Estonia
[25] Aalto Univ, Lab Adv Energy Syst, FIN-02150 Espoo, Finland
[26] Helsinki Inst Phys, Helsinki, Finland
[27] Lappeenranta Univ Technol, Lappeenranta, Finland
[28] CNRS, IN2P3, Lab Annecy Vieux Phys Particules, Annecy Le Vieux, France
[29] CEA Saclay, DSM, DAPNIA, F-91191 Gif Sur Yvette, France
[30] Univ Zagreb, Zagreb 41000, Croatia
[31] CALTECH, Pasadena, CA 91125 USA
[32] Ecole Polytech, CNRS, IN2P3, Lab Leprince Ringuet, F-91128 Palaiseau, France
[33] ULP, UHA Mulhouse, CNRS, IN2P3,Inst Pluridisciplinaire Hubert Curien, Strasbourg, France
[34] Univ Lyon 1, CNRS, IN2P3, Inst Nucl Phys, F-69622 Villeurbanne, France
[35] Tbilisi State Univ, Inst High Energy Phys & Informatizat, Tbilisi, Georgia
[36] Georgian Acad Sci, Inst Phys, GE-380077 Tbilisi, Georgia
[37] Rhein Westfal TH Aachen, Inst Phys 1, D-5100 Aachen, Germany
[38] Rhein Westfal TH Aachen, Inst Phys A 3, D-5100 Aachen, Germany
[39] Rhein Westfal TH Aachen, Inst Phys B 3, D-5100 Aachen, Germany
[40] Deutsch Elekt Synchrotron, Hamburg, Germany
[41] Univ Hamburg, Hamburg, Germany
[42] Univ Haute Alsace, Mulhouse, France
[43] Univ Strasbourg, Strasbourg, France
[44] Inst Expt Kernphys, Karlsruhe, Germany
[45] Univ Athens, Athens, Greece
[46] Inst Nucl Phys Demokritos, Athens, Greece
[47] Univ Ioannina, GR-45110 Ioannina, Greece
[48] KFKI Res Inst Particle & Nucl Phys, Budapest, Hungary
[49] Inst Nucl Res ATOMKI, Debrecen, Hungary
[50] Univ Debrecen, Debrecen, Hungary
基金
英国科学技术设施理事会;
关键词
D O I
10.1088/0954-3899/34/6/S01
中图分类号
O57 [原子核物理学、高能物理学];
学科分类号
070202 ;
摘要
CMS is a general purpose experiment, designed to study the physics of pp collisions at 14 TeV at the Large Hadron Collider ( LHC). It currently involves more than 2000 physicists from more than 150 institutes and 37 countries. The LHC will provide extraordinary opportunities for particle physics based on its unprecedented collision energy and luminosity when it begins operation in 2007. The principal aim of this report is to present the strategy of CMS to explore the rich physics programme offered by the LHC. This volume demonstrates the physics capability of the CMS experiment. The prime goals of CMS are to explore physics at the TeV scale and to study the mechanism of electroweak symmetry breaking - through the discovery of the Higgs particle or otherwise. To carry out this task, CMS must be prepared to search for new particles, such as the Higgs boson or supersymmetric partners of the Standard Model particles, from the start- up of the LHC since new physics at the TeV scale may manifest itself with modest data samples of the order of a few fb(-1) or less. The analysis tools that have been developed are applied to study in great detail and with all the methodology of performing an analysis on CMS data specific benchmark processes upon which to gauge the performance of CMS. These processes cover several Higgs boson decay channels, the production and decay of new particles such as Z' and supersymmetric particles, B-s production and processes in heavy ion collisions. The simulation of these benchmark processes includes subtle effects such as possible detector miscalibration and misalignment. Besides these benchmark processes, the physics reach of CMS is studied for a large number of signatures arising in the Standard Model and also in theories beyond the Standard Model for integrated luminosities ranging from 1 fb(-1) to 30 fb(-1). The Standard Model processes include QCD, B-physics, diffraction, detailed studies of the top quark properties, and electroweak physics topics such as the W and Z(0) boson properties. The production and decay of the Higgs particle is studied for many observable decays, and the precision with which the Higgs boson properties can be derived is determined. About ten different supersymmetry benchmark points are analysed using full simulation. The CMS discovery reach is evaluated in the SUSY parameter space covering a large variety of decay signatures. Furthermore, the discovery reach for a plethora of alternative models for new physics is explored, notably extra dimensions, new vector boson high mass states, little Higgs models, technicolour and others. Methods to discriminate between models have been investigated. This report is organized as follows. Chapter 1, the Introduction, describes the context of this document. Chapters 2-6 describe examples of full analyses, with photons, electrons, muons, jets, missing E-T, B-mesons and tau's, and for quarkonia in heavy ion collisions. Chapters 7-15 describe the physics reach for Standard Model processes, Higgs discovery and searches for new physics beyond the Standard Model.
引用
收藏
页码:995 / 1579
页数:585
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