抄録
Particles beyond the Standard Model (SM) can generically have lifetimes that are long compared to SM particles at the weak scale. When produced at experiments such as the Large Hadron Collider (LHC) at CERN, these long-lived particles (LLPs) can decay far from the interaction vertex of the primary proton-proton collision. Such LLP signatures are distinct from those of promptly decaying particles that are targeted by the majority of searches for new physics at the LHC, often requiring customized techniques to identify, for example, significantly displaced decay vertices, tracks with atypical properties, and short track segments. Given their non-standard nature, a comprehensive overview of LLP signatures at the LHC is beneficial to ensure that possible avenues of the discovery of new physics are not overlooked. Here we report on the joint work of a community of theorists and experimentalists with the ATLAS, CMS, and LHCb experiments-as well as those working on dedicated experiments such as MoEDAL, milliQan, MATHUSLA, CODEX-b, and FASER-to survey the current state of LLP searches at the LHC, and to chart a path for the development of LLP searches into the future, both in the upcoming Run 3 and at the high-luminosity LHC. The work is organized around the current and future potential capabilities of LHC experiments to generally discover new LLPs, and takes a signature-based approach to surveying classes of models that give rise to LLPs rather than emphasizing any particular theory motivation. We develop a set of simplified models; assess the coverage of current searches; document known, often unexpected backgrounds; explore the capabilities of proposed detector upgrades; provide recommendations for the presentation of search results; and look towards the newest frontiers, namely high-multiplicity 'dark showers', highlighting opportunities for expanding the LHC reach for these signals.
本文言語 | English |
---|---|
論文番号 | 090501 |
ジャーナル | Journal of Physics G: Nuclear and Particle Physics |
巻 | 47 |
号 | 9 |
DOI | |
出版ステータス | Published - 2020 9月 |
外部発表 | はい |
ASJC Scopus subject areas
- 核物理学および高エネルギー物理学
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In: Journal of Physics G: Nuclear and Particle Physics, Vol. 47, No. 9, 090501, 09.2020.
研究成果: Article › 査読
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TY - JOUR
T1 - Searching for long-lived particles beyond the Standard Model at the Large Hadron Collider
AU - Alimena, Juliette
AU - Beacham, James
AU - Borsato, Martino
AU - Cheng, Yangyang
AU - Vidal, Xabier Cid
AU - Cottin, Giovanna
AU - Curtin, David
AU - De Roeck, Albert
AU - Desai, Nishita
AU - Evans, Jared A.
AU - Knapen, Simon
AU - Kraml, Sabine
AU - Lessa, Andre
AU - Liu, Zhen
AU - Mehlhase, Sascha
AU - Ramsey-Musolf, Michael J.
AU - Russell, Heather
AU - Shelton, Jessie
AU - Shuve, Brian
AU - Verducci, Monica
AU - Zurita, Jose
AU - Adams, Todd
AU - Adersberger, Michael
AU - Alpigiani, Cristiano
AU - Apresyan, Artur
AU - Bainbridge, Robert John
AU - Batozskaya, Varvara
AU - Beauchesne, Hugues
AU - Benato, Lisa
AU - Berlendis, S.
AU - Bhal, Eshwen
AU - Blekman, Freya
AU - Borovilou, Christina
AU - Boyd, Jamie
AU - Brau, Benjamin P.
AU - Bryngemark, Lene
AU - Buchmueller, Oliver
AU - Buschmann, Malte
AU - Buttinger, William
AU - Campanelli, Mario
AU - Cesarotti, Cari
AU - Chen, Chunhui
AU - Cheng, Hsin Chia
AU - Cheong, Sanha
AU - Citron, Matthew
AU - Coccaro, Andrea
AU - Coco, V.
AU - Conte, Eric
AU - Cormier, Félix
AU - Corpe, Louie D.
AU - Craig, Nathaniel
AU - Cui, Yanou
AU - Dall'occo, Elena
AU - Dallapiccola, C.
AU - Darwish, M. R.
AU - Davoli, Alessandro
AU - Cosa, Annapaola De
AU - De Simone, Andrea
AU - Rose, Luigi Delle
AU - Deppisch, Frank F.
AU - Dey, Biplab
AU - Diamond, Miriam D.
AU - Dienes, Keith R.
AU - Dildick, Sven
AU - Döbrich, Babette
AU - Drewes, Marco
AU - Eich, Melanie
AU - Elsawy, M.
AU - Valle, Alberto Escalante Del
AU - Facini, Gabriel
AU - Farina, Marco
AU - Feng, Jonathan L.
AU - Fischer, Oliver
AU - Flaecher, H. U.
AU - Foldenauer, Patrick
AU - Freytsis, Marat
AU - Fuks, Benjamin
AU - Galon, Iftah
AU - Gershtein, Yuri
AU - Giagu, Stefano
AU - Giammanco, Andrea
AU - Gligorov, Vladimir V.
AU - Golling, Tobias
AU - Grancagnolo, Sergio
AU - Gustavino, Giuliano
AU - Haas, Andrew
AU - Hahn, Kristian
AU - Hajer, Jan
AU - Hammad, Ahmed
AU - Heinrich, Lukas
AU - Heisig, Jan
AU - Helo, J. C.
AU - Hesketh, Gavin
AU - Hill, Christopher S.
AU - Hirsch, Martin
AU - Hohlmann, M.
AU - Holmes, Tova
AU - Hulsbergen, W.
AU - Huth, John
AU - Ilten, Philip
AU - Jacques, Thomas
AU - Jayatilaka, Bodhitha
AU - Jeng, Geng Yuan
AU - Johns, K. A.
AU - Kaji, Toshiaki
AU - Kasieczka, Gregor
AU - Kats, Yevgeny
AU - Kazana, Malgorzata
AU - Keller, Henning
AU - Khlopov, Maxim Yu
AU - Kling, Felix
AU - Kolberg, Ted R.
AU - Kostiuk, Igor
AU - Kuwertz, Emma Sian
AU - Kvam, Audrey
AU - Landsberg, Greg
AU - Lanfranchi, Gaia
AU - Lara, Inaki
AU - Ledovskoy, Alexander
AU - Linthorne, Dylan
AU - Liu, Jia
AU - Longarini, Iacopo
AU - Lowette, Steven
AU - Lubatti, Henry
AU - Lutz, Margaret
AU - Luo, Jingyu
AU - Mamuzić, Judita
AU - Marinangeli, Matthieu
AU - Mariotti, Alberto
AU - Marlow, Daniel
AU - McCullough, Matthew
AU - McDermott, Kevin
AU - Mermod, P.
AU - Milstead, David
AU - Mishra-Sharma, Siddharth
AU - Mitsou, Vasiliki A.
AU - Berlingen, Javier Montejo
AU - Moortgat, Filip
AU - Morandini, Alessandro
AU - Morris, Alice Polyxeni
AU - Morse, David Michael
AU - Mrenna, Stephen
AU - Nachman, Benjamin
AU - Nemevsek, Miha
AU - Nesti, Fabrizio
AU - Ohm, Christian
AU - Pascoli, Silvia
AU - Pedro, Kevin
AU - Pena, Cristián
AU - Rodriguez, Karla Josefina Pena
AU - Piedra, Jónatan
AU - Pinfold, James L.
AU - Policicchio, Antonio
AU - Popara, Goran
AU - Prisciandaro, Jessica
AU - Proffitt, Mason
AU - Rauco, Giorgia
AU - Redi, Federico
AU - Reece, Matthew
AU - Hall, Allison Reinsvold
AU - Sfar, H. Rejeb
AU - Renner, Sophie
AU - Robinson, Dean
AU - Roepe, Amber
AU - Ronzani, Manfredi
AU - Salvioni, Ennio
AU - Santra, Arka
AU - Sawada, Ryu
AU - Scholtz, Jakub
AU - Schuster, Philip
AU - Schwaller, Pedro
AU - Sebastiani, Cristiano
AU - Sekmen, Sezen
AU - Selvaggi, Michele
AU - Si, Weinan
AU - Soffi, Livia
AU - Stolarski, Daniel
AU - Stuart, David
AU - Iii, John Stupak
AU - Sung, Kevin
AU - Taylor, Wendy
AU - Templ, Sebastian
AU - Thomas, Brooks
AU - Torró-Pastor, Emma
AU - Trocino, Daniele
AU - Trojanowski, Sebastian
AU - Trovato, Marco
AU - Tsai, Yuhsin
AU - Tully, C. G.
AU - Vámi, Tamás Álmos
AU - Vasquez, Juan Carlos
AU - Sierra, Carlos Vázquez
AU - Vellidis, K.
AU - Vermassen, Basile
AU - Vit, Martina
AU - Walker, Devin G.E.
AU - Wang, Xiao Ping
AU - Watts, Gordon
AU - Xie, Si
AU - Yexley, Melissa
AU - Young, Charles
AU - Yu, Jiang Hao
AU - Zalewski, Piotr
AU - Zhang, Yongchao
N1 - Funding Information: Original content from this work may be used under the terms of the . Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI. European Cooperation in Science and Technology https://doi.org/10.13039/501100000921 CA15108 CA16201 Javna Agencija za Raziskovalno Dejavnost RS https://doi.org/10.13039/501100004329 J1-8137 P1-0035 Ministry of Education and Science of the Russian Federation https://doi.org/10.13039/501100003443 02.a03.21.0005 27.08.2013 Fondo Nacional de Desarrollo Cient�fico y Tecnol�gico https://doi.org/10.13039/501100002850 1161463 Deutsche Forschungsgemeinschaft https://doi.org/10.13039/501100001659 39083149 Agence Nationale de la Recherche https://doi.org/10.13039/501100001665 ANR-11-IDEX-0001-02 ANR-11-LABX-0060 Conseller�a de Cultura, Educaci�n e Ordenaci�n Universitaria, Xunta de Galicia https://doi.org/10.13039/501100008425 ED431F 2018/01 Ministerio de Econom�a y Competitividad https://doi.org/10.13039/501100003329 FPA2015-65652-C4-1-R RYC-2016-20073 Simons Foundation https://doi.org/10.13039/100000893 376204 National Science Foundation https://doi.org/10.13039/100000001 PHY-1620074 PHY-1620638 PHY-1820770 U.S. Department of Energy https://doi.org/10.13039/100000015 DE-AC02-07CH11359 DE-SC0008541 DE-SC0009988 DE-SC0010008 DE-SC0011095 DE-SC0011784 DE-SC0011925 DE-SC0013607 DE-SC0015973 DE-SC0017840 Ministerstwo Nauki i Szkolnictwa Wyższego https://doi.org/10.13039/501100004569 W17065 Science and Technology Facilities Council https://doi.org/10.13039/501100000271 ST/L000520/1 Horizon 2020 Framework Programme https://doi.org/10.13039/100010661 674896 724777 Generalitat Valenciana https://doi.org/10.13039/501100003359 PROMETEO-II/2017/033 Narodowe Centrum Nauki https://doi.org/10.13039/501100004281 2014/15/B/ST2/03998 Ministry of Science and Technology, Taiwan https://doi.org/10.13039/501100004663 MOST-106-2811-M-002-035 MOST-107-2811-M-002-3120 Funda��o de Amparo � Pesquisa do Estado de S�o Paulo https://doi.org/10.13039/501100001807 2015/20570-1 Schweizerischer Nationalfonds zur F�rderung der Wissenschaftlichen Forschung https://doi.org/10.13039/501100001711 PP00P2_150583 yes � 2020 The Author(s). Published by IOP Publishing Ltd Creative Commons Attribution 3.0 licence Publisher Copyright: © 2020 The Author(s). Published by IOP Publishing Ltd.
PY - 2020/9
Y1 - 2020/9
N2 - Particles beyond the Standard Model (SM) can generically have lifetimes that are long compared to SM particles at the weak scale. When produced at experiments such as the Large Hadron Collider (LHC) at CERN, these long-lived particles (LLPs) can decay far from the interaction vertex of the primary proton-proton collision. Such LLP signatures are distinct from those of promptly decaying particles that are targeted by the majority of searches for new physics at the LHC, often requiring customized techniques to identify, for example, significantly displaced decay vertices, tracks with atypical properties, and short track segments. Given their non-standard nature, a comprehensive overview of LLP signatures at the LHC is beneficial to ensure that possible avenues of the discovery of new physics are not overlooked. Here we report on the joint work of a community of theorists and experimentalists with the ATLAS, CMS, and LHCb experiments-as well as those working on dedicated experiments such as MoEDAL, milliQan, MATHUSLA, CODEX-b, and FASER-to survey the current state of LLP searches at the LHC, and to chart a path for the development of LLP searches into the future, both in the upcoming Run 3 and at the high-luminosity LHC. The work is organized around the current and future potential capabilities of LHC experiments to generally discover new LLPs, and takes a signature-based approach to surveying classes of models that give rise to LLPs rather than emphasizing any particular theory motivation. We develop a set of simplified models; assess the coverage of current searches; document known, often unexpected backgrounds; explore the capabilities of proposed detector upgrades; provide recommendations for the presentation of search results; and look towards the newest frontiers, namely high-multiplicity 'dark showers', highlighting opportunities for expanding the LHC reach for these signals.
AB - Particles beyond the Standard Model (SM) can generically have lifetimes that are long compared to SM particles at the weak scale. When produced at experiments such as the Large Hadron Collider (LHC) at CERN, these long-lived particles (LLPs) can decay far from the interaction vertex of the primary proton-proton collision. Such LLP signatures are distinct from those of promptly decaying particles that are targeted by the majority of searches for new physics at the LHC, often requiring customized techniques to identify, for example, significantly displaced decay vertices, tracks with atypical properties, and short track segments. Given their non-standard nature, a comprehensive overview of LLP signatures at the LHC is beneficial to ensure that possible avenues of the discovery of new physics are not overlooked. Here we report on the joint work of a community of theorists and experimentalists with the ATLAS, CMS, and LHCb experiments-as well as those working on dedicated experiments such as MoEDAL, milliQan, MATHUSLA, CODEX-b, and FASER-to survey the current state of LLP searches at the LHC, and to chart a path for the development of LLP searches into the future, both in the upcoming Run 3 and at the high-luminosity LHC. The work is organized around the current and future potential capabilities of LHC experiments to generally discover new LLPs, and takes a signature-based approach to surveying classes of models that give rise to LLPs rather than emphasizing any particular theory motivation. We develop a set of simplified models; assess the coverage of current searches; document known, often unexpected backgrounds; explore the capabilities of proposed detector upgrades; provide recommendations for the presentation of search results; and look towards the newest frontiers, namely high-multiplicity 'dark showers', highlighting opportunities for expanding the LHC reach for these signals.
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UR - http://www.scopus.com/inward/citedby.url?scp=85091764659&partnerID=8YFLogxK
U2 - 10.1088/1361-6471/ab4574
DO - 10.1088/1361-6471/ab4574
M3 - Article
AN - SCOPUS:85091764659
SN - 0954-3899
VL - 47
JO - Journal of Physics G: Nuclear and Particle Physics
JF - Journal of Physics G: Nuclear and Particle Physics
IS - 9
M1 - 090501
ER -