Literature DB >> 31386510

Magnetic Monopole Search with the Full MoEDAL Trapping Detector in 13 TeV pp Collisions Interpreted in Photon-Fusion and Drell-Yan Production.

B Acharya1, J Alexandre1, S Baines1, P Benes2, B Bergmann2, J Bernabéu3, A Bevan4, H Branzas5, M Campbell6, S Cecchini7, Y M Cho8, M de Montigny9, A De Roeck6, J R Ellis1,10, M El Sawy6, M Fairbairn1, D Felea5, M Frank11, J Hays4, A M Hirt12, J Janecek2, D-W Kim13, A Korzenev14, D H Lacarrère6, S C Lee13, C Leroy15, G Levi16, A Lionti14, J Mamuzic3, A Margiotta16, N Mauri7, N E Mavromatos1, P Mermod14, M Mieskolainen17, L Millward4, V A Mitsou3, R Orava17, I Ostrovskiy18, J Papavassiliou3, B Parker19, L Patrizii7, G E Păvălaş5, J L Pinfold9, V Popa5, M Pozzato7, S Pospisil2, A Rajantie20, R Ruiz de Austri3, Z Sahnoun7, M Sakellariadou1, A Santra3, S Sarkar1, G Semenoff21, A Shaa9, G Sirri7, K Sliwa22, R Soluk9, M Spurio16, M Staelens9, M Suk2, M Tenti23, V Togo7, J A Tuszyński9, V Vento3, O Vives3, Z Vykydal2, A Wall18, I S Zgura5.   

Abstract

MoEDAL is designed to identify new physics in the form of stable or pseudostable highly ionizing particles produced in high-energy Large Hadron Collider (LHC) collisions. Here we update our previous search for magnetic monopoles in Run 2 using the full trapping detector with almost four times more material and almost twice more integrated luminosity. For the first time at the LHC, the data were interpreted in terms of photon-fusion monopole direct production in addition to the Drell-Yan-like mechanism. The MoEDAL trapping detector, consisting of 794 kg of aluminum samples installed in the forward and lateral regions, was exposed to 4.0  fb^{-1} of 13 TeV proton-proton collisions at the LHCb interaction point and analyzed by searching for induced persistent currents after passage through a superconducting magnetometer. Magnetic charges equal to or above the Dirac charge are excluded in all samples. Monopole spins 0, ½, and 1 are considered and both velocity-independent and-dependent couplings are assumed. This search provides the best current laboratory constraints for monopoles with magnetic charges ranging from two to five times the Dirac charge.

Entities:  

Year:  2019        PMID: 31386510     DOI: 10.1103/PhysRevLett.123.021802

Source DB:  PubMed          Journal:  Phys Rev Lett        ISSN: 0031-9007            Impact factor:   9.161


  4 in total

1.  Monopole-antimonopole pair production by magnetic fields.

Authors:  Arttu Rajantie
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2019-11-11       Impact factor: 4.226

2.  Relativistic motions of spin-zero quantum oscillator field in a global monopole space-time with external potential and AB-effect.

Authors:  Faizuddin Ahmed
Journal:  Sci Rep       Date:  2022-05-25       Impact factor: 4.996

3.  Prospects for discovering supersymmetric long-lived particles with MoEDAL.

Authors:  D Felea; J Mamuzic; R Masełek; N E Mavromatos; V A Mitsou; J L Pinfold; R Ruiz de Austri; K Sakurai; A Santra; O Vives
Journal:  Eur Phys J C Part Fields       Date:  2020-05-17       Impact factor: 4.590

4.  An effective field theory treatment of the production and annihilation of magnetic monopoles and their relic abundance.

Authors:  Luciano M Abreu; Pedro C S Brandão; Marc de Montigny; Pierre-Philippe A Ouimet
Journal:  Eur Phys J C Part Fields       Date:  2022-10-06       Impact factor: 4.991

  4 in total

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