We report the first measurement of the temperature dependence of muon transfer rate from muonic hydrogen atoms to oxygen between 100 and 300 K. Data were obtained from the X-ray spectra of delayed events in a gaseous target, made of a H2/O2 mixture, exposed to a muon beam. This work sets constraints on theoretical models of muon transfer and is of fundamental importance for the measurement of the hyperfine splitting of muonic hydrogen ground state as proposed by the FAMU collaboration.

First measurement of the temperature dependence of muon transfer rate from muonic hydrogen atoms to oxygen / E. Mocchiutti, A. Adamczak, D. Bakalov, G. Baldazzi, R. Benocci, R. Bertoni, M. Bonesini, V. Bonvicini, H. Cabrera Morales, F. Chignoli, M. Clemenza, L. Colace, M. Danailov, P. Danev, A. [de Bari], C. [De Vecchi], M. [De Vincenzi], E. Furlanetto, F. Fuschino, K.S. Gadedjisso-Tossou, D. Guffanti, K. Ishida, C. Labanti, V. Maggi, R. Mazza, A. Menegolli, G. Morgante, M. Nastasi, J. Niemela, C. Pizzolotto, A. Pullia, R. Ramponi, L.P. Rignanese, M. Rossella, N. Rossi, M. Stoilov, L. Stoychev, L. Tortora, E. Vallazza, G. Zampa, A. Vacchi. - In: PHYSICS LETTERS A. - ISSN 0375-9601. - STAMPA. - 384:26(2020), pp. 126667.1-126667.6. [https://doi.org/10.1016/j.physleta.2020.126667]

First measurement of the temperature dependence of muon transfer rate from muonic hydrogen atoms to oxygen

G. Baldazzi
Project Administration
;
L. P. Rignanese;
2020

Abstract

We report the first measurement of the temperature dependence of muon transfer rate from muonic hydrogen atoms to oxygen between 100 and 300 K. Data were obtained from the X-ray spectra of delayed events in a gaseous target, made of a H2/O2 mixture, exposed to a muon beam. This work sets constraints on theoretical models of muon transfer and is of fundamental importance for the measurement of the hyperfine splitting of muonic hydrogen ground state as proposed by the FAMU collaboration.
2020
First measurement of the temperature dependence of muon transfer rate from muonic hydrogen atoms to oxygen / E. Mocchiutti, A. Adamczak, D. Bakalov, G. Baldazzi, R. Benocci, R. Bertoni, M. Bonesini, V. Bonvicini, H. Cabrera Morales, F. Chignoli, M. Clemenza, L. Colace, M. Danailov, P. Danev, A. [de Bari], C. [De Vecchi], M. [De Vincenzi], E. Furlanetto, F. Fuschino, K.S. Gadedjisso-Tossou, D. Guffanti, K. Ishida, C. Labanti, V. Maggi, R. Mazza, A. Menegolli, G. Morgante, M. Nastasi, J. Niemela, C. Pizzolotto, A. Pullia, R. Ramponi, L.P. Rignanese, M. Rossella, N. Rossi, M. Stoilov, L. Stoychev, L. Tortora, E. Vallazza, G. Zampa, A. Vacchi. - In: PHYSICS LETTERS A. - ISSN 0375-9601. - STAMPA. - 384:26(2020), pp. 126667.1-126667.6. [https://doi.org/10.1016/j.physleta.2020.126667]
E. Mocchiutti, A. Adamczak, D. Bakalov, G. Baldazzi, R. Benocci, R. Bertoni, M. Bonesini, V. Bonvicini, H. Cabrera Morales, F. Chignoli, M. Clemenza, L. Colace, M. Danailov, P. Danev, A. [de Bari], C. [De Vecchi], M. [De Vincenzi], E. Furlanetto, F. Fuschino, K.S. Gadedjisso-Tossou, D. Guffanti, K. Ishida, C. Labanti, V. Maggi, R. Mazza, A. Menegolli, G. Morgante, M. Nastasi, J. Niemela, C. Pizzolotto, A. Pullia, R. Ramponi, L.P. Rignanese, M. Rossella, N. Rossi, M. Stoilov, L. Stoychev, L. Tortora, E. Vallazza, G. Zampa, A. Vacchi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/763018
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