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QCD and Spin physics are playing important role in our understanding of hadron structure. I will give a short overview of origin of hadron structure in QCD and highlight modern understanding of the subject. Jefferson Laboratory is…

高能物理 - 唯象学 · 物理学 2015-06-12 A. Prokudin

This white paper summarizes the scientific opportunities for utilization of the upgraded 12 GeV Continuous Electron Beam Accelerator Facility (CEBAF) and associated experimental equipment at Jefferson Lab. It is based on the 52 proposals…

This document presents the initial scientific case for upgrading the Continuous Electron Beam Accelerator Facility (CEBAF) at Jefferson Lab (JLab) to 22 GeV. It is the result of a community effort, incorporating insights from a series of…

核实验 · 物理学 2023-08-28 A. Accardi , P. Achenbach , D. Adhikari , A. Afanasev , C. S. Akondi , N. Akopov , M. Albaladejo , H. Albataineh , M. Albrecht , B. Almeida-Zamora , M. Amaryan , D. Androić , W. Armstrong , D. S. Armstrong , M. Arratia , J. Arrington , A. Asaturyan , A. Austregesilo , H. Avagyan , T. Averett , C. Ayerbe Gayoso , A. Bacchetta , A. B. Balantekin , N. Baltzell , L. Barion , P. C. Barry , A. Bashir , M. Battaglieri , V. Bellini , I. Belov , O. Benhar , B. Benkel , F Benmokhtar , W. Bentz , V. Bertone , H. Bhatt , A. Bianconi , L. Bibrzycki , R. Bijker , D. Binosi , D. Biswas , M. Boër , W. Boeglin , S. A. Bogacz , M. Boglione , M. Bondí , E. E. Boos , P. Bosted , G. Bozzi , E. J. Brash , R. A. Briceño , P. D. Brindza , W. J. Briscoe , S. J Brodsky , W. K. Brooks , V. D. Burkert , A. Camsonne , T. Cao , L. S. Cardman , D. S. Carman , M Carpinelli , G. D. Cates , J. Caylor , A. Celentano , F. G. Celiberto , M. Cerutti , Lei Chang , P. Chatagnon , C. Chen , J-P Chen , T. Chetry , A. Christopher , E. Christy , E. Chudakov , E. Cisbani , I. C. Cloët , J. J. Cobos-Martinez , E. O. Cohen , P. Colangelo , P. L. Cole , M. Constantinou , M. Contalbrigo , G. Costantini , W. Cosyn , C. Cotton , A. Courtoy , S. Covrig Dusa , V. Crede , Z. -F. Cui , A. D'Angelo , M. Döring , M. M. Dalton , I. Danilkin , M. Davydov , D. Day , F. De Fazio , M. De Napoli , R. De Vita , D. J. Dean , M. Defurne , A. Deur , B. Devkota , S. Dhital , P. Di Nezza , M. Diefenthaler , S. Diehl , C. Dilks , M. Ding , C. Djalali , S. Dobbs , R. Dupré , D. Dutta , R. G. Edwards , H. Egiyan , L. Ehinger , G. Eichmann , M. Elaasar , L. Elouadrhiri , A. El Alaoui , L. El Fassi , A. Emmert , M. Engelhardt , R. Ent , D. J Ernst , P. Eugenio , G. Evans , C. Fanelli , S. Fegan , C. Fernández-Ramírez , L. A. Fernandez , I. P. Fernando , A. Filippi , C. S. Fischer , C. Fogler , N. Fomin , L. Frankfurt , T. Frederico , A. Freese , Y. Fu , L. Gamberg , L. Gan , F. Gao , H. Garcia-Tecocoatzi , D. Gaskell , A. Gasparian , K Gates , G. Gavalian , P. K. Ghoshal , A. Giachino , F. Giacosa , F. Giannuzzi , G. -P. Gilfoyle , F-X Girod , D. I. Glazier , C. Gleason , S. Godfrey , J. L. Goity , A. A. Golubenko , S. Gonzàlez-Solís , R. W. Gothe , Y. Gotra , K. Griffioen , O. Grocholski , B. Grube , P. Guèye , F. -K. Guo , Y. Guo , L. Guo , T. J. Hague , N. Hammoud , J. -O. Hansen , M. Hattawy , F. Hauenstein , T. Hayward , D. Heddle , N. Heinrich , O. Hen , D. W. Higinbotham , I. M. Higuera-Angulo , A. N. Hiller Blin , A. Hobart , T. Hobbs , D. E Holmberg , T. Horn , P. Hoyer , G. M. Huber , P. Hurck , P. T. P. Hutauruk , Y. Ilieva , I. Illari , D. G Ireland , E. L. Isupov , A. Italiano , I. Jaegle , N. S. Jarvis , DJ Jenkins , S. Jeschonnek , C-R. Ji , H. S. Jo , M. Jones , R. T. Jones , D. C. Jones , K. Joo , M. Junaid , T. Kageya , N. Kalantarians , A. Karki , G. Karyan , A. T. Katramatou , S. J. D Kay , R. Kazimi , C. D. Keith , C. Keppel , A. Kerbizi , V. Khachatryan , A. Khanal , M. Khandaker , A. Kim , E. R. Kinney , M. Kohl , A. Kotzinian , B. T. Kriesten , V. Kubarovsky , B. Kubis , S. E. Kuhn , V. Kumar , T. Kutz , M. Leali , R. F. Lebed , P. Lenisa , L. Leskovec , S. Li , X. Li , J. Liao , H. -W. Lin , L. Liu , S. Liuti , N. Liyanage , Y. Lu , I. J. D. MacGregor , D. J. Mack , L Maiani , K. A. Mamo , G. Mandaglio , C. Mariani , P. Markowitz , H. Marukyan , V. Mascagna , V. Mathieu , J. Maxwell , M. Mazouz , M. McCaughan , R. D. McKeown , B. McKinnon , D. Meekins , W. Melnitchouk , A. Metz , C. A. Meyer , Z. -E. Meziani , C. Mezrag , R. Michaels , G. A. Miller , T. Mineeva , A. S. Miramontes , M. Mirazita , K. Mizutani , H. Mkrtchyan , A. Mkrtchyan , B. Moffit , P. Mohanmurthy , V. I. Mokeev , P. Monaghan , G. Montaña , R. Montgomery , A. Moretti , J. M. Morgado Chàvez , U. Mosel , A. Movsisyan , P. Musico , S. A Nadeeshani , P. M. Nadolsky , S. X. Nakamura , J. Nazeer , A. V. Nefediev , K. Neupane , D. Nguyen , S. Niccolai , I. Niculescu , G. Niculescu , E. R. Nocera , M. Nycz , F. I. Olness , P. G. Ortega , M. Osipenko , E. Pace , B Pandey , P. Pandey , Z. Papandreou , J. Papavassiliou , L. L. Pappalardo , G. Paredes-Torres , R. Paremuzyan , S. Park , B. Parsamyan , K. D. Paschke , B. Pasquini , E. Passemar , E. Pasyuk , T. Patel , C. Paudel , S. J. Paul , J-C. Peng , L. Pentchev , R. Perrino , R. J. Perry , K. Peters , G. G. Petratos , W. Phelps , E. Piasetzky , A. Pilloni , B. Pire , D. Pitonyak , M. L. Pitt , A. D. Polosa , M. Pospelov , A. C. Postuma , J. Poudel , L. Preet , S. Prelovsek , J. W. Price , A. Prokudin , A. J. R. Puckett , J. R. Pybus , S. -X. Qin , J. -W. Qiu , M. Radici , H. Rashidi , A. D Rathnayake , B. A. Raue , T. Reed , P. E. Reimer , J. Reinhold , J. -M. Richard , M. Rinaldi , F. Ringer , M. Ripani , J. Ritman , J. Rittenhouse West , A. Rivero-Acosta , C. D. Roberts , A. Rodas , S. Rodini , J. Rodríguez-Quintero , T. C. Rogers , J. Rojo , P. Rossi , G. C. Rossi , G. Salmè , S. N. Santiesteban , E. Santopinto , M. Sargsian , N. Sato , S. Schadmand , A. Schmidt , S. M Schmidt , G. Schnell , R. A. Schumacher , P. Schweitzer , I. Scimemi , K. C Scott , D. A Seay , J. Segovia , K. Semenov-Tian-Shansky , A. Seryi , A. S Sharda , M. R. Shepherd , E. V. Shirokov , S. Shrestha , U. Shrestha , V. I. Shvedunov , A. Signori , K. J. Slifer , W. A. Smith , A. Somov , P. Souder , N. Sparveris , F. Spizzo , M. Spreafico , S. Stepanyan , J. R. Stevens , I. I. Strakovsky , S. Strauch , M. Strikman , S. Su , B. C. L. Sumner , E. Sun , M. Suresh , C. Sutera , E. S. Swanson , A. P Szczepaniak , P. Sznajder , H. Szumila-Vance , L. Szymanowski , A. -S. Tadepalli , V. Tadevosyan , B. Tamang , V. V. Tarasov , A. Thiel , X. -B. Tong , R. Tyson , M. Ungaro , G. M. Urciuoli , A. Usman , A. Valcarce , S. Vallarino , C. A. Vaquera-Araujo , L. Venturelli , F. Vera , A. Vladimirov , A. Vossen , J. Wagner , X. Wei , L. B. Weinstein , C. Weiss , R. Williams , D. Winney , B. Wojtsekhowski , M. H. Wood , T. Xiao , S. -S. Xu , Z. Ye , C. Yero , C. -P. Yuan , M. Yurov , N. Zachariou , Z. Zhang , Z. W. Zhao , Y. Zhao , X. Zheng , X. Zhou , V. Ziegler , B. Zihlmann , W de Paula , G. F. de Téramond

The Jefferson Lab facilities have undergone a substantial upgrade, both of accelerator, CEBAF, and of the experimental installations. We will discuss the progress to completion of these facilities, the status of accelerator commissioning,…

核实验 · 物理学 2017-01-20 Hugh E. Montgomery

We discuss the connection between the understanding of TeV scale physics to be found at the LHC and a high energy e+e- linear collider, using Higgs physics, low energy supersymmetry, and the top quark sector as examples.

高能物理 - 唯象学 · 物理学 2007-05-23 S. Dawson

The LHC brings nuclear collisions to the TeV scale for the first time and the first data show the qualitative differences of this new regime. The corresponding phase-space available encompasses completely uncharted regions of QCD in which…

高能物理 - 唯象学 · 物理学 2015-05-30 Carlos A. Salgado

The project to upgrade the CEBAF accelerator at Jefferson Lab to 12 GeV is presented. Most of the research program supporting that upgrade, will require a highly polarized beam, as will be illustrated by a few selected examples. To carry…

核实验 · 物理学 2014-11-18 Kees de Jager

With the LHC up and running, the focus of experimental and theoretical high energy physics will soon turn to an interpretation of LHC data in terms of the physics of electroweak symmetry breaking and the TeV scale. We present here a broad…

高能物理 - 唯象学 · 物理学 2015-05-14 David E. Morrissey , Tilman Plehn , Tim M. P. Tait

The upgrade of the CEBAF Accelerator at Jefferson Lab to 12 GeV will deliver high luminosity and high quality beams, which will open unique opportunities for studies of the quark and gluon structure of hadrons in the valence region. Such…

核实验 · 物理学 2010-02-25 Elton S. Smith

Recent results on studies of the structure of nucleons and nuclei in the regime of strong interaction QCD are discussed. Use of high current polarized electron beams, polarized targets, and recoil polarimeters, in conjunction with modern…

核理论 · 物理学 2008-11-26 Volker D. Burkert

The major open questions in particle physics are summarized, as are the abilities of linear colliders of different energies to add to the knowledge obtainable from the LHC in various scenarios for physics beyond the Standard Model. A TeV…

高能物理 - 唯象学 · 物理学 2007-05-23 John Ellis

This article summarises the physics at future linear colliders. It will be shown that in all studied physics scenarios a 1 TeV linear collider in addition to the LHC will enhance our knowledge significantly and helps to reconstruct the…

高能物理 - 唯象学 · 物理学 2011-02-09 Klaus Moenig

The LHeC is a proposed upgrade of the LHC to study $ep/eA$ collisions in the TeV regime, by adding a 60 GeV electron beam through an energy recovery linac. In $ep$, high precision top and electroweak physics can be performed, such as…

高能物理 - 实验 · 物理学 2015-11-18 Zhiqing Zhang

The astounding Physics results obtained with high-energy colliders in the last two decades owe much to an impressive progress in the understanding of the dynamics of strong interactions. I give here a personal overview of how the advance in…

高能物理 - 唯象学 · 物理学 2012-02-28 Andrea Banfi

The good performance of the LHC provided enough data at 7 TeV and 8 TeV to allow the experiments to perform very competitive measurements and to expand the knowledge about the fundamental interaction far beyond that from previous colliders.…

高能物理 - 实验 · 物理学 2013-07-29 O. Gonzalez

Strong interaction physics will be ubiquitous at the Large Hadron Collider since the colliding beams consist of confined quarks and gluons. Although the main purpose of the LHC is to study the mechanism of electroweak symmetry breaking and…

高能物理 - 唯象学 · 物理学 2013-05-29 J. M. Butterworth , T. Carli

Physics issues at the upcoming and planned colliders are discussed. We critically review the the different arguments that suggest that New Physics is bound to materialise at the TeV scale and why we should keep an open minded approach. The…

高能物理 - 唯象学 · 物理学 2007-05-23 Fawzi Boudjema

The Large Hadron Collider, a 7 + 7 TeV proton-proton collider under construction at CERN (the European Laboratory for Particle Physics in Geneva), will take experiments squarely into a new energy domain where mysteries of the electroweak…

高能物理 - 唯象学 · 物理学 2008-11-26 Chris Quigg

Experiments on the Large Hadron Collider at CERN represent our furthest excursion yet along the energy frontier of particle physics. The goal of probing physical processes at the TeV energy scale puts strict requirements on the performance…

高能物理 - 实验 · 物理学 2017-08-23 Jason Nielsen

If the gamma-gamma resonance at 750 GeV suggested by 2015 LHC data turns out to be a real effect, what are the implications for the physics case and upgrade path of the International Linear Collider? Whether or not the resonance is…

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