2019arXiv (Cornell University)Open access

Higgs Physics at the HL-LHC and HE-LHC

M. Cepeda, Stefania Gori, P. Ilten, M. Kado, Francesco Riva, Rabah Abdul Khalek, Amin Aboubrahim, J. Alimena, Simone Alioli, Alexandre Alves, C. Asawatangtrakuldee, Aleksandr Azatov, P. Azzi, S. Bailey, Shankha Banerjee, E Barberio, Daniele Barducci, G. Barone, Martin Bauer, Carlos Palomino Bautista, P. Bechtle, K. Becker, A. Benaglia, M. Bengala, N. Berger, C. Bertella, A. Bethani, A. Betti, Anke Biekötter, Fady Bishara, D. Blöch, Petar Bokan, Olivier Bondu, Marco Bonvini, L. Borgonovi, M. Borsato, S. Boselli, S. Braibant-Giacomelli, Gerhard Buchalla, L. Cadamuro, C. Caillol, A. Calandri, Alicia Calderon Tazon, J.M. Campbell, Fabrizio Caola, Matteo Capozi, Marcela Carena, C. M. Carloni Calame, Adrián Carmona, E. Carquín, A. Carvalho Antunes De Oliveira, A. Castaneda Hernandez, Oscar Catà, Alejandro Celis, A. Cerri, F. Cerutti, G. S. Chahal, Amit Chakraborty, G. Chaudhary, Xuan Chen, A. S. Chisholm, Roberto Contino, A.J. Costa, R. Covarelli, Nathaniel Craig, David Curtin, L. D’Eramo, N. P. Dang, P. Das, S. Dawson, O. A. De Aguiar Francisco, J F Blas, S De Angelis Curtis, N De filippis, H. De la Torre, L. Lima, A. De Wit, C Delaere, M Delcourt, M. Delmastro, S. Demers, N. Dev, R Di Nardo, S. Di Vita, S. Dildick, L. A. F. do Prado, M. Donadelli, D. Du, Dong Sheng Du, M. Dührssen, Otto Eberhardt, K. El Morabit, Joan Elias Miró, J. Ellis, Christoph Englert, R. Essig, S. Falke, M. Farina, A. Ferrari, A. Ferroglia, M. C. N. Fiolhais, M. Flechl, S. Folgueras, E. Fontanesi, P. Francavilla, R. Franceschini, R. Frederix, S. Frixione, G. Gómez-Ceballos, A. Gabrielli, S. Gadatsch, M. Gallinaro, A Gandrakota, J. Gao, F. M. Garay Walls, T. Gehrmann, Y Gershtein, T. Ghosh, A J Gilbert, R. Glein, E W.N. Glover, R. Gomez-Ambrosio, R. Gonçalo, D. Gonçalves, M. Gorbahn, E. Gouveia, M Gouzevitch, P Govoni, M. Grazzini, B P Greenberg, K H Grimm, A Gritsan, A. Grohsjean, C. Grojean, R. Gugel, R. Gugel, R. S. Gupta, C. B. Gwilliam, S Höche, M. Haacke, Y Haddad, U. Haisch, G. N. Hamity, T. Han, L. A. Harland-Lang, R. Harnik, S. Heinemeyer, G Heinrich, B. Henning, V. Hirschi, K Hoepfner, J M Hogan, S. Homiller, Y. Huang, A. Huss, S. Jézéquel, Sa. Jain, S. P. Jones, K. Köneke, J. Kalinowski, J. F. Kamenik, M. Kaplan, A. Karlberg, M. Kaur, P. Keicher, M. Kerner, A. Khanov, J Kieseler, J. H. Kim, M. Kim, T. Klijnsma, F. Kling, M. Klute, J. R. Komaragiri, K. Kong, J. Kozaczuk, P Kozow, C Krause, S. Lai, J M Langford, L. Lechner, L. Lechner, W. A. Leight, K. J. C. Leney, T. Lenz, H. Li, Q. Li, Stefan Liebler, Q. Li, J. Lindert, J. Liu, Y. Liu, Zhen Liu, Z. Liu, D. Lombardo, K. Long, K D Long, I. Low, G. Luisoni, L. L. Ma, A Magnan, D. Majumder, A. Malinauskas, F. Maltoni, M Mangano, G. Marchiori, A Aisyah Marini, A. Martin, S. Marzani, A. Massironi, K. T. Matchev, R. D. Matheus, K. Mazumdar, J. Mazzitelli, A. E. Mcdougall, P MEADE, P. Meridiani, A. B. Meyer, E. Michielin, P. Milenovic, V Milosevic, K. Mimasu, B. Mistlberger, M. Mlynarikova, M. Mondragon, P. F. Monni, G. Montagna, F Monti, M. Moreno Llacer, A. Mueck, P. C. Muiño, C E Murphy Jr, W. J. Murray, P Musella, M. Narain, R. F. Naranjo Garcia, P. Nath, M. Neubert, O. Nicrosini, K Nikolopoulos, A. Nisati, J. M. No, M. L. Ojeda, SA Olivares Pino, A. Onofre, G Ortona, S. Pagan Griso, D. Pagani, E. Palencia Cortezon, C. Palmer, C. Pandini, Panico G., L. Panwar, D. Pappadopulo, M. Park, R. Patel, F. Paucar-Velasquez, K J Pedro, L. Pernie, L. Perrozzi, B. A. Petersen, E Petit, G Petrucciani, G. Piacquadio, F. Piccinini, M. Pieri, T Plehn, S. Pokorski, A. Pomarol, E. Ponton, S. Pozzorini, S. Prestel, K. Prokofiev, M. Ramsey-Musolf, Diego Redigolo, N. P. Readioff, D. Redigolo, L REINA, E. Reynolds, M. Riembau, F. Rikkert, T. Robens, R. Roentsch, J. Rojo, N. Rompotis, J. Rorie, J. Rosiek, J S Roskes, J. T. Ruderman, N. Sahoo, S Saito, R. Salerno, P. H. Sales De Bruin, A Salvucci, K. Sandeep, Santiago Jl, R. Santo, V. Sanz, U. Sarica, A. Savin, A. Savoy-Navarro, S G Sawant, A. C. Schaffer, M. Schlaffer, A. Schmidt, B. Schneider, R. Schoefbeck, M. Schröder, M. Scodeggio, E. Scott, L. Scyboz, M Selvaggi, L. Sestini, H Shao, A. Shivaji, L. Silvestrini, L. Simon, Kanu Sinha, Y. Soreq, M. Spannowsky, M. Spira, D. Spitzbart, E. Stamou, J. Stark, T. Stefaniak, B. Stieger, G. Strong, M Szleper, K. Tackmann, M. Takeuchi, S. Taroni, M. Testa, A. Thamm, V. Theeuwes, L K Thomsen, S. Tkaczyk, R Torre, F Tramontano, K A Ulmer, T. Vantalon, L. Vecchi, R. Vega-Morales, E. Venturini, M. Verducci, C. Vernieri, T. Vickey, MV Marono, P Vischia, E. Vryonidou, P. Wagner, V. M. Walbrecht, L.-T. Wang, N Wardle, D. R. Wardrope, G. Weiglein, S. Wertz, M. Wielers, Mike Williams, R. Wolf, A. Wulzer, M. Xiao, H. T. Yang, E. Yazgan, Z. Yin, T. You, F. Yu, G. Zanderighi, D. Zanzi, M. Zaro, SC Zenz, D. Zerwas, M. Zgubič, J. Zhang, L. Zhang, W. Zhang, Xiaoran Zhao, Y.-M. Zhong

Open full text 367 citations

Abstract

The discovery of the Higgs boson in 2012, by the ATLAS and CMS experiments, was a success achieved with only a percent of the entire dataset foreseen for the LHC. It opened a landscape of possibilities in the study of Higgs boson properties, Electroweak Symmetry breaking and the Standard Model in general, as well as new avenues in probing new physics beyond the Standard Model. Six years after the discovery, with a conspicuously larger dataset collected during LHC Run 2 at a 13 TeV centre-of-mass energy, the theory and experimental particle physics communities have started a meticulous exploration of the potential for precision measurements of its properties. This includes studies of Higgs boson production and decays processes, the search for rare decays and production modes, high energy observables, and searches for an extended electroweak symmetry breaking sector. This report summarises the potential reach and opportunities in Higgs physics during the High Luminosity phase of the LHC, with an expected dataset of pp collisions at 14 TeV, corresponding to an integrated luminosity of 3~ab$^{-1}$. These studies are performed in light of the most recent analyses from LHC collaborations and the latest theoretical developments. The potential of an LHC upgrade, colliding protons at a centre-of-mass energy of 27 TeV and producing a dataset corresponding to an integrated luminosity of 15~ab$^{-1}$, is also discussed.

Open-access reader

About this research paper

What this paper is about

The discovery of the Higgs boson in 2012, by the ATLAS and CMS experiments, was a success achieved with only a percent of the entire dataset foreseen for the LHC. It opened a landscape of possibilities in the study of Higgs boson properties, Electroweak Symmetry breaking and the Standard Model in general, as well as new avenues in probing new physics beyond the Standard Model. Six years after the discovery, with a conspicuously larger dataset collected during LHC Run 2 at a 13 TeV centre-of-mass energy, the theory and experimental particle physics communities have started a meticulous exploration of the potential for precision measurements of its properties. This includes studies of Higgs boson production and decays processes, the search for rare decays and production modes, high energy observables, and searches for an extended electroweak symmetry breaking sector. This report summarises the potential reach and opportunities in Higgs physics during the High Luminosity phase of the LHC, with an expected dataset of pp collisions at 14 TeV, corresponding to an integrated luminosity of 3~ab$^{-1}$. These studies are performed in light of the most recent analyses from LHC collaborations and the latest theoretical developments. The potential of an LHC upgrade, colliding protons at a centre-of-mass energy of 27 TeV and producing a dataset corresponding to an integrated luminosity of 15~ab$^{-1}$, is also discussed.

Why it matters

OpenAlex reports 367 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

The discovery of the Higgs boson in 2012, by the ATLAS and CMS experiments, was a success achieved with only a percent of the entire dataset foreseen for the LHC. It opened a landscape of possibilities in the study of Higgs boson properties, Electroweak Symmetry breaking and the Standard Model in general, as well as new avenues in probing new physics beyond the Standard Model. Six years after the discovery, with a conspicuously larger dataset collected during LHC Run 2 at a 13 TeV centre-of-mass energy, the theory and experimental particle physics communities have started a meticulous exploration of the potential for precision measurements of its properties. This includes studies of Higgs boson production and decays processes, the search for rare decays and production modes, high energy observables, and searches for an extended electroweak symmetry breaking sector. This report summarises the potential reach and opportunities in Higgs physics during the High Luminosity phase of the LHC, with an expected dataset of pp collisions at 14 TeV, corresponding to an integrated luminosity of 3~ab$^{-1}$. These studies are performed in light of the most recent analyses from LHC collaborations and the latest theoretical developments. The potential of an LHC upgrade, colliding protons at a centre-of-mass energy of 27 TeV and producing a dataset corresponding to an integrated luminosity of 15~ab$^{-1}$, is also discussed.

Key concepts: Physics, Higgs boson, Electroweak interaction, Large Hadron Collider, Particle physics, Physics beyond the Standard Model, Luminosity, Higgs sector

Related papers

Back to paper searchBrowse research topicsOriginal source
Higgs Physics at the HL-LHC and HE-LHC — Research Paper | ScholarLens