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1

Y, Kuno, Molzon William Richard 1952-, and Pakvasa S, eds. The proceedings of new initiatives on lepton flavor violation and neutrino oscillation with high intense muon and neutrino sources: Honolulu, Hawaii, 2-6 October 2000. World Scientific, 2002.

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2

Ginneken, A. Van. Shielding calculations for multi-TeV hadron colliders. Fermi National Accelerator Laboratory, 1987.

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3

High, Intensity Frontier Workshop (2004 Isola d'Elba Italy). HIF 2004: Proceedings of the High Intensity Frontier Workshop, La Biodala, Isola d'Elba, Italy, 5-8 June, 2004. Elsevier, 2005.

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4

Robson, R. E. Physics of reacting particle swarms II: The Muon-catalyzed cold fusion cycle. Physics Dept., James Cook University of North Queensland, 1987.

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5

Karlsson, E. Solid state phenomena: As seen by muons, protons, and excited nuclei. Clarendon Press, 1995.

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6

International Workshop on Neutrino Factories, Superbeams, and Betabeams (9th 2007 Okayama-shi, Japan). Neutrino factories, superbeams and betabeams: 9th International Workshop on Neutrino Factories, Superbeams, and Betabeams, NuFact 07, Okayama University, Okayama, Japan, 6-11 August 2007. Edited by Yasuda Osamu, Ohmori Chihiro, and Mondal N. K. American Institute of Physics, 2008.

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7

International Workshop on Neutrino Factories, Superbeams, and Betabeams (12th 2010 Mumbai, India). 12th International Workshop on Neutrino Factories, Superbeams, and Betabeams: NuFact 10 : Mumbai, India, 20-25 October 2010. Edited by Acharya B. S, Goodman, Maury C. (Maury Charles), 1950-, and Mondal, N. K. (Naba K.). American Institute of Physics, 2011.

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8

International Workshop on Neutrino Factories, Superbeams, and Betabeams (11th 2009 Chicago, Ill.). Neutrino factories, superbeams and beta beams: 11th International Workshop on Neutrino Factories, Superbeams, and Beta Beams, NuFact09, Fermilab and Illinois Institute of Technology, Chicago, Illinois, 20-25 July 2009. Edited by Goodman, Maury C. (Maury Charles), 1950-, Kaplan, Daniel M. (Daniel Moshe), and Sullivan Zack 1971-. American Institute of Physics, 2010.

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9

Pietro, Carretta, and Lascialfari Alessandra, eds. NMR-MRI, þSR and Mössbauer spectroscopies in molecular magnets. Springer, 2007.

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10

1935-, Schaller L. A., and Petitjean C. 1941-, eds. Muonic atoms and molecules. Birkhäuser Verlag, 1993.

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11

Hillier, Stephen James. The detection and analysis of muons in leptonic decays of the Z [superior 0] particle at opal. University of Birmingham, 1992.

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12

International, School of Physics of Exotic Atoms (5th 1989 Erice Italy). Electromagnetic cascade and chemistry of exotic atoms. Plenum Press, 1990.

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13

service), SpringerLink (Online, ed. Muonium-antimuonium Oscillations in an Extended Minimal Supersymmetric Standard Model. Springer Science+Business Media, LLC, 2011.

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14

Blundell, Stephen J., Roberto De Renzi, Tom Lancaster, and Francis L. Pratt, eds. Muon Spectroscopy. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780198858959.001.0001.

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Muons, radioactive particles produced in accelerators, have emerged as an important tool to study problems in condensed matter physics and chemistry. Beams of muons with all their spins polarized can be prepared and implanted in various types of sample. The subsequent precession and relaxation of the spins of these particles can used to investigate a variety of static and dynamic effects in a sample and hence to deduce properties concerning magnetism, superconductivity, molecular or chemical dynamics, and many other properties. The technique was originally the preserve of a few specialists loc
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15

Muon catalyzed fusion. J.C. Baltzer A.G., Scientific Pub. Co., 1987.

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16

The Anomalous Magnetic Moment of the Muon. Springer, 2007.

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17

Melnikov, Kirill, and Arkady Vainshtein. Theory of the Muon Anomalous Magnetic Moment. Springer Berlin / Heidelberg, 2010.

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18

Melnikov, Kirill, and Arkady Vainshtein. Theory of the Muon Anomalous Magnetic Moment. Springer London, Limited, 2007.

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19

Theory of the Muon Anomalous Magnetic Moment (Springer Tracts in Modern Physics). Springer, 2006.

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20

Wu, Honggong. Study of single electron, photon and muon events and search for supersymmetric particles. 1986.

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21

(Editor), Yoshitaka Kuno, William R. Molzon (Editor), and Sandip Pakvasa (Editor), eds. New Initiatives on Lepton Flavor Violation and Neutrino Oscillation With High Intensity Muon and Neutrino Sources. World Scientific Publishing Company, 2003.

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22

Faessler, A. Progress in Particle & Nuclear Physics. Elsevier Science Pub Co, 1995.

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23

Wigmans, Richard. The Physics of Shower Development. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786351.003.0002.

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The processes that play a role in the absorption of different types of particles in dense matter are described, with emphasis on the aspects that are important for calorimetry. A distinction is made between particles that develop electromagnetic showers (electrons, photons) and particles that are subject to the strong nuclear interaction, such as pions and protons. A separate section is dedicated to muons, which are typically not fully absorbed in practical calorimeters. The energy dependence of the various processes, and the consequences for the size requirements of detectors, are discussed i
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24

Caminada, Lea. Study of the Inclusive Beauty Production at CMS and Construction and Commissioning of the CMS Pixel Barrel Detector. Springer, 2014.

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25

Horváth, D. Electromagnetic Cascade and Chemistry of Exotic Atoms. Springer, 2014.

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26

Simons, L. M., G. Torelli, and D. Horváth. Electromagnetic Cascade and Chemistry of Exotic Atoms. Springer London, Limited, 2013.

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27

(Editor), Pietro Carretta, and Alessandro Lascialfari (Editor), eds. NMR-MRI, µSR and Mössbauer Spectroscopies in Molecular Magnets. Springer, 2007.

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28

Wright, A. G. PMT background. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.003.0006.

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Photomultiplier (PMT) background derives from sources of photons, and from photoelectrons generation within a PMT. These may also act as a source of optical and radioactive background for neighbouring detectors. Dark count and dark current are reconciled by allowing for leakage currents flowing into the anode. The optimal gain setting follows from these considerations. Sources of background generated by the photocathode include thermionic emission; light generated within the PMT; gamma rays; muons and minimum ionizing particles (MIPs); insulator glow in the region of the anode; and residual ga
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29

Maselli, Silvia. Study of two-particle correlations and multiplicity distributions of hadrons produced in deep inelastic muon-proton scattering at 280 GeV. 1988.

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30

(Editor), D. Horváth, L. M. Simons (Editor), and G. Torelli (Editor), eds. Electromagnetic Cascade and Chemistry of Exotic Atoms (Ettore Majorana International Science Series: Physical Sciences). Springer, 1991.

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31

Liu, Boyang. Muonium-antimuonium Oscillations in an Extended Minimal Supersymmetric Standard Model. Springer, 2014.

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